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CN202474014U - monitor - Google Patents

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Publication number
CN202474014U
CN202474014U CN2011201870526U CN201120187052U CN202474014U CN 202474014 U CN202474014 U CN 202474014U CN 2011201870526 U CN2011201870526 U CN 2011201870526U CN 201120187052 U CN201120187052 U CN 201120187052U CN 202474014 U CN202474014 U CN 202474014U
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CN
China
Prior art keywords
led
reflective cup
led package
display
encapsulant
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CN2011201870526U
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Chinese (zh)
Inventor
C·K·陈
Y·K·刘
Z·张
X·颜
H·刘
X·费
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Cree Huizhou Solid State Lighting Co Ltd
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Cree Huizhou Opto Ltd
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Priority claimed from PCT/CN2010/001009 external-priority patent/WO2011003277A1/en
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Priority to CN2011201870526U priority Critical patent/CN202474014U/en
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Abstract

The utility model discloses a display, comprising an LED package body, wherein the LED package body comprises a plastic housing, and a reflection cup located inside the plastic housing, wherein the reflection cup is provided with an LED, and the Led is arranged to deviate from the center of the reflection cup. According to the technical scheme, the peak value emission of the LED package body can tilt or shift, and thereby the peak value emission can be customized according to the mounting height or position of the LED display. According to the technical scheme, the LED package body and the display can be used for a plurality of different applications, and especially for applications for emission deviating from a vertical shaft through using a small size high output light source.

Description

显示器monitor

技术领域 technical field

本实用新型涉及发光二极管(LED),且具体涉及采用LED的LED封装体及显示器。  The utility model relates to a light-emitting diode (LED), in particular to an LED packaging body and a display using the LED. the

背景技术 Background technique

发光二极管(LED)是将电能转化成光的固态器件,且通常包括一个或多个夹在相反掺杂层之间的半导体材料的有源层。当跨过掺杂层施加偏压时,空穴和电子注入进有源层,它们在有源层中复合,从而产生光。光从有源层以及从LED的所有表面发射出来。  Light emitting diodes (LEDs) are solid state devices that convert electrical energy into light, and typically include one or more active layers of semiconductor material sandwiched between oppositely doped layers. When a bias voltage is applied across the doped layers, holes and electrons are injected into the active layer, where they recombine to generate light. Light is emitted from the active layer and from all surfaces of the LED. the

过去的十年或更长时间的技术进步导致LED具有更小的占地面积、增加的发射效率以及降低的成本。相比其他发射器,LED还具有增加了的工作寿命。例如,LED的工作寿命可超过50000小时,而白炽灯泡的工作寿命约为2000小时。LED还比其他光源更耐用,且可消耗更少的功率。基于这些和其他原因,LED变得更受欢迎且如今已经应用于越来越多的应用中,这些应用传统上是白炽、荧光、卤素及其它发射器的领域。  Technological advancements over the past decade or more have resulted in LEDs with smaller footprints, increased emission efficiencies, and reduced costs. LEDs also have an increased operating life compared to other emitters. For example, the operating life of LEDs can exceed 50,000 hours, while the operating life of incandescent bulbs is about 2,000 hours. LEDs are also more durable than other light sources and consume less power. For these and other reasons, LEDs have become more popular and are used today in a growing number of applications that have traditionally been the domain of incandescent, fluorescent, halogen, and other emitters. the

LED还用于大型和小型显示器中。基于LED的大屏幕显示器(通常称为巨屏)在许多室内和室外场所(例如体育比赛、赛道、音乐会以及诸如纽约时代广场这样的大型公共区域)变得越来越普遍。许多这样的显示器或屏幕可达到60英尺高乘60英尺宽。这些屏幕可包括成千上万个“像素”或“像素模块”,其中每一个“像素”或“像素模块”可包含多个LED。像素模块可使用高效率和高亮度的LED,这样的LED使得即使在白天的阳 光照射的情况下,也能从相对较远的地方清晰地看到该显示器。像素模块中的LED可少至三或四个LED(一个红色、一个绿色以及一个蓝色),这些LED允许像素发射由红、绿和/或蓝色光组合而成的多种不同颜色的光。在最大的巨型屏幕中,每个像素模块都可具有许多LED。像素模块排列成矩形网格。例如,网格可以是640个模块宽乘以480个模块高,而屏幕的最终尺寸则取决于像素模块的实际尺寸。  LEDs are also used in large and small displays. LED-based large-screen displays (often referred to as jumbo screens) are becoming increasingly common in many indoor and outdoor venues such as sports games, race tracks, concerts, and large public areas such as Times Square in New York. Many of these displays or screens can be up to 60 feet high by 60 feet wide. These screens can include thousands of "pixels" or "pixel modules," each of which can contain multiple LEDs. The pixel modules can use high-efficiency and high-brightness LEDs, which allow the display to be clearly seen from relatively far away, even under sunlight during the day. The LEDs in a pixel module can be as few as three or four LEDs (one red, one green, and one blue), which allow the pixel to emit light of many different colors combining red, green, and/or blue light. In the largest jumbo screens, each pixel module can have many LEDs. Pixel modules are arranged in a rectangular grid. For example, the grid could be 640 modules wide by 480 modules high, while the final size of the screen depends on the actual size of the pixel modules. the

基于LED的常规显示器由计算机系统控制,该计算机系统接收输入信号(例如TV信号),且根据像素模块所需的特定颜色形成整体显示图像,计算机系统决定每个像素模块中的哪个LED发光以及发射多亮的光。还可包括电源系统,其将电能提供给每个像素模块,以及提供给每个LED的电能可被调制,从而使其以所需亮度发射光。提供导体,从而将适当的电源信号提供给像素模块中的每个LED。  Conventional LED-based displays are controlled by a computer system that receives an input signal (such as a TV signal) and forms an overall display image based on the specific colors required by the pixel modules. The computer system determines which LEDs in each pixel module emit light and emit light. What a light. A power system may also be included to provide electrical power to each pixel module, and the power provided to each LED may be modulated so that it emits light at a desired brightness. Conductors are provided to provide appropriate power signals to each LED in the pixel module. the

LED显示器很少安装于观众的视高度处,而更普遍地安装于视高度以上的高度,例如安装于建筑物的侧面上或体育场的看台顶上。现在参考图1和2,其示出安装于观众12的视高度以上的高处的常规LED显示器10。观众12通常位于显示器10下,并向上看显示器,使得观众观看显示器10的视线14与垂直于显示器表面的显示器发射方向16成θ角。现在参考图2,如图1中所示的LED显示器通常包括多个诸如LED封装体20的发射器,而该封装体20通常包括安装于反射杯24中的LED 22,上述反射杯24封闭在通常为子弹形的密封剂26中。LED封装体20的峰值发射通常沿着封装体纵轴28。图3是LED封装体20的极坐标iso-坎德拉(candelar)图30,其示出典型峰值发射沿着发射器纵轴。  LED displays are rarely installed at the viewing height of the audience, but are more commonly installed at a height above the viewing height, such as on the side of a building or on the top of a stadium stand. Referring now to FIGS. 1 and 2 , there is shown a conventional LED display 10 mounted high above the viewing height of a viewer 12 . A viewer 12 is generally positioned below the display 10 and looks upwards at the display such that the viewer's line of sight 14 looking at the display 10 is at an angle Θ with a display emission direction 16 perpendicular to the display surface. Referring now to FIG. 2, LED displays as shown in FIG. 1 typically include a plurality of emitters such as LED packages 20, which typically include LEDs 22 mounted in reflective cups 24 enclosed in In a generally bullet-shaped sealant 26 . The peak emission of LED package 20 is generally along package longitudinal axis 28 . FIG. 3 is a polar iso-candelar plot 30 of LED package 20 showing typical peak emission along the emitter longitudinal axis. the

再次参考图1,示出一种显示器,其包括多个LED封装体20,LED封装体20以图30中示出的特性发射,导致在垂直方向16上的显示器峰值发射特性垂线,如图所示。LED显示器10的Iv和远场图(FFP)峰值发射特性也沿着垂直轴16垂直于显示器。观众的视线14在显示器10安装在高处时位于垂线之下,显示器发射的许多光没有被观众看到并浪费 掉。一种减少被浪费的光的数量的方法是以与观众的视线14更匹配的角度来安装显示器,但这可能需要难以使用的复杂且昂贵的安装硬件,特别是对于位于高处的非常巨大的显示器而言。  Referring again to FIG. 1, there is shown a display comprising a plurality of LED packages 20 emitting with the characteristic shown in FIG. shown. The Iv and Far Field Figure (FFP) peak emission characteristics of LED display 10 are also perpendicular to the display along vertical axis 16 . The viewer's line of sight 14 is below the vertical when the display 10 is mounted high, and much of the light emitted by the display is not seen by the viewer and is wasted. One way to reduce the amount of wasted light is to mount the display at an angle that more closely matches the viewer's line of sight 14, but this can require complex and expensive mounting hardware that is difficult to use, especially for very large As far as the display is concerned. the

实用新型内容 Utility model content

本实用新型涉及LED封装体以及采用该LED封装体的LED显示器,其中LED的峰值发射是倾斜的或偏移的,从而将其峰值发射定制为与LED显示器的安装高度或位置相匹配。根据本实用新型的LED显示器的一个实施例包括多个LED封装体,其中至少一些LED封装体的峰值发射从封装体中心线倾斜。以这种方式将LED封装体安装在显示器中,以便产生具有从显示器平面的垂线倾斜的峰值发射的图像。公开了可用于根据本实用新型的LED显示器中的LED封装体实施例的多种不同类型和设置。可以理解的是,还可应用许多其他实施例。  The utility model relates to an LED packaging body and an LED display using the LED packaging body, wherein the peak emission of the LED is inclined or shifted, so that the peak emission can be customized to match the installation height or position of the LED display. One embodiment of an LED display according to the present invention includes a plurality of LED packages, wherein at least some of the LED packages have peak emissions that are sloped from a package centerline. The LED package is mounted in a display in such a way as to produce an image with peak emission slanted from perpendicular to the plane of the display. A number of different types and arrangements of embodiments of LED packages that can be used in LED displays according to the invention are disclosed. It is understood that many other embodiments are also applicable. the

LED封装体的一个实施例包括位于反射杯中的LED,该LED偏离反射杯的中心。另一实施例包括安装于反射杯内的LED以及覆盖反射杯的至少一部分的密封剂。反射杯可偏离LED封装体的垂直中心线。LED封装体的另一实施例包括安装于反射杯内的LED以及覆盖反射杯的至少一部分的密封剂。反射杯可偏离密封剂的中心线。  One embodiment of the LED package includes an LED located in a reflective cup that is offset from the center of the reflective cup. Another embodiment includes an LED mounted within a reflective cup and an encapsulant covering at least a portion of the reflective cup. The reflective cup can deviate from the vertical centerline of the LED package. Another embodiment of an LED package includes an LED mounted within a reflective cup and an encapsulant covering at least a portion of the reflective cup. The reflector cup can be offset from the centerline of the encapsulant. the

LED封装体的其他实施例可包括安装于反射杯中的LED以及覆盖所述反射杯的至少一部分的密封剂,且反射杯在密封剂中旋转。其他实施例包括可不对称的反射杯或密封剂。LED封装体还可包括安装在反射杯内的LED、导线引线框架以及围绕反射杯以及所述导线引线框架的至少一部分的密封剂。在这些实施例中,密封剂可围绕反射杯和引线框架旋转。  Other embodiments of the LED package may include an LED mounted in a reflective cup and an encapsulant covering at least a portion of the reflective cup in which the reflective cup rotates. Other embodiments include reflective cups or sealants that may be asymmetric. The LED package may also include an LED mounted within the reflective cup, a wire lead frame, and an encapsulant surrounding the reflective cup and at least a portion of the wire lead frame. In these embodiments, the encapsulant is rotatable around the reflective cup and lead frame. the

根据本实用新型的另一方面提供了一种显示器,包括LED封装体,其中所述LED封装体包括:塑料壳体、位于塑料壳体中的反射杯以及反 射杯中的LED,其中所述LED偏离所述反射杯的中心放置,使得所述封装体的峰值发射从封装体中心线倾斜。  According to another aspect of the present utility model, a display is provided, including an LED package, wherein the LED package includes: a plastic housing, a reflective cup located in the plastic housing, and an LED in the reflective cup, wherein the The LED is placed off-center of the reflective cup such that the peak emission of the package is tilted from the package centerline. the

进一步地,所述LED封装体进一步包括至少部分地覆盖所述反射杯的密封剂。  Further, the LED package further includes an encapsulant at least partially covering the reflective cup. the

进一步地,所述LED封装体进一步包括至少部分地覆盖所述反射杯的透镜。  Further, the LED package further includes a lens at least partially covering the reflective cup. the

进一步地,所述LED偏离所述反射杯的中心放置,使得所述峰值发射在与所述LED偏离中心的方向相反的方向上倾斜。  Further, the LED is positioned off-center of the reflective cup such that the peak emission is inclined in a direction opposite to the off-center direction of the LED. the

根据本实用新型的再一方面提供了一种显示器,包括LED封装体,所述LED封装体包括:塑料壳体、位于塑料壳体中的反射杯和安装在反射杯中的LED以及至少部分地覆盖所述反射杯的密封剂,所述反射杯偏离所述封装体的封装体中心线放置,使得所述封装体的峰值发射从封装体中心线倾斜。  According to yet another aspect of the present utility model, a display is provided, which includes an LED package, and the LED package includes: a plastic housing, a reflective cup located in the plastic housing, an LED installed in the reflective cup, and at least partially An encapsulant covering the reflective cup, the reflective cup being positioned offset from the package centerline of the package such that the package's peak emission is slanted from the package centerline. the

进一步地,所述反射杯偏离封装体中心线定位,使得所述峰值发射在与所述反射杯偏离中心的方向相反的方向上倾斜。  Further, the reflective cup is positioned away from the centerline of the package such that the peak emission is inclined in a direction opposite to the off-center direction of the reflective cup. the

根据本实用新型的又一个方面提供了一种显示器,包括LED封装体,LED封装体包括:塑料壳体、位于壳体中的反射杯和安装在反射杯中的LED以及至少部分地覆盖所述反射杯的密封剂,所述密封剂偏离封装体中心线放置,使得所述封装体的峰值发射从封装体中心线倾斜。  According to another aspect of the present invention, a display is provided, which includes an LED package, and the LED package includes: a plastic housing, a reflective cup located in the housing, an LED installed in the reflective cup and at least partially covering the An encapsulant for the reflective cup, the encapsulant being positioned off the package centerline such that the package's peak emission is slanted from the package centerline. the

进一步地,所述密封剂偏离封装体中心线放置,使得所述峰值发射在与所述密封剂偏离中心的方向相同的方向上倾斜。  Further, the encapsulant is placed off-centre from the package so that the peak emission is inclined in the same direction as the encapsulant is off-center. the

根据本实用新型的另一方面提供了一种显示器,包括LED封装体,LED封装体包括:塑料壳体、位于塑料壳体中的反射杯和安装在反射杯中 的LED以及至少部分地覆盖所述反射杯的密封剂,所述反射杯相对于封装体中心线旋转,使得所述封装体的峰值发射从封装体中心线倾斜。  According to another aspect of the present utility model, a display is provided, which includes an LED package, and the LED package includes: a plastic housing, a reflective cup located in the plastic housing, an LED installed in the reflective cup and at least partially covering the An encapsulant for the reflective cup that is rotated relative to the package centerline such that the peak emission of the package is tilted from the package centerline. the

进一步地,所述密封剂包括透镜。  Further, the sealant includes a lens. the

进一步地,所述峰值发射的所述倾斜与所述反射杯的所述旋转在相同的方向上。  Further, the tilt of the peak emission is in the same direction as the rotation of the reflective cup. the

进一步地,所述LED封装体进一步包括至少部分地位于所述密封剂中的导线引线框架,其中所述引线框架是倾斜的。  Further, the LED package further includes a wire lead frame at least partially in the encapsulant, wherein the lead frame is inclined. the

进一步地,所述LED封装体进一步包括至少部分地位于所述密封剂中的导线引线框架,其中所述密封剂和所述引线框架设置于所述封装体中心线上。  Further, the LED package further includes a wire lead frame at least partially in the encapsulant, wherein the encapsulant and the lead frame are disposed on the center line of the package. the

根据本实用新型的另一方面还提供了一种显示器,包括LED封装体,LED封装体包括塑料壳体、位于壳体中的反射杯和安装在反射杯中的LED,其中所述反射杯是非对称的,使得所述封装体的峰值发射从封装体中心线倾斜。  According to another aspect of the present utility model, a display is also provided, which includes an LED package body, the LED package body includes a plastic housing, a reflective cup located in the housing, and an LED installed in the reflective cup, wherein the reflective cup is a non- Symmetrical such that the peak emission of the package is sloped from the package centerline. the

进一步地,所述反射杯包括有角度的反射表面,该反射表面的至少一部分具有不同的角度以使得所述峰值发射倾斜。  Further, the reflective cup includes an angled reflective surface, at least a portion of which has a different angle to tilt the peak emission. the

进一步地,所述峰值发射倾斜与所述反射杯的非对称性相反。  Further, the peak emission slope is opposite to the asymmetry of the reflective cup. the

进一步地,所述峰值发射倾斜与所述反射杯的非对称性在相同的方向上。  Further, the peak emission tilt is in the same direction as the asymmetry of the reflective cup. the

进一步地,所述反射杯的反射杯侧壁的至少一部分具有不同于所述反射杯侧壁的剩余部分的高度。  Further, at least a part of the reflective cup sidewall of the reflective cup has a height different from the remaining part of the reflective cup sidewall. the

进一步地,所述反射杯的至少一个反射表面具有反射角度不同的部分。  Further, at least one reflective surface of the reflective cup has portions with different reflection angles. the

进一步地,所述反射杯的至少一个反射表面具有曲率不同的部分。  Further, at least one reflective surface of the reflective cup has portions with different curvatures. the

根据本实用新型的再一方面提供了一种显示器,包括LED封装体,该LED封装体包括:塑料壳体、位于塑料壳体中的反射杯和安装在反射杯中的LED以及至少部分地覆盖所述反射杯的密封剂,其中所述密封剂是非对称的,使得所述封装体的峰值发射从封装体中心线倾斜。  According to still another aspect of the present utility model, a display is provided, comprising an LED package, the LED package comprising: a plastic housing, a reflective cup located in the plastic housing, an LED installed in the reflective cup and at least partially covering The encapsulant of the reflective cup, wherein the encapsulant is asymmetric such that the peak emission of the package is tilted from the package centerline. the

进一步地,所述密封剂的非对称包括具有不同曲率的部分。  Further, the asymmetry of the encapsulant includes portions having different curvatures. the

进一步地,所述峰值发射的倾斜与所述密封剂的非对称性相反。  Further, the slope of the peak emission is opposite to the asymmetry of the encapsulant. the

进一步地,所述峰值发射的倾斜与所述密封剂的非对称性在相同的方向上。  Further, the slope of the peak emission is in the same direction as the asymmetry of the encapsulant. the

根据本实用新型的又一个方面提供了一种显示器,包括LED封装体,该LED封装体包括:塑料壳体、位于壳体中的反射杯和安装在反射杯中的LED以及至少部分地覆盖所述反射杯的密封剂,所述密封剂相对于所述封装体的中心线旋转使得所述发射倾斜。  According to yet another aspect of the present invention, a display is provided, which includes an LED package, the LED package includes: a plastic housing, a reflective cup located in the housing, an LED installed in the reflective cup and at least partially covering the The encapsulant of the reflective cup is rotated relative to the centerline of the package so that the emission is tilted. the

进一步地,所述反射杯位于所述封装体的中心线上并基本上垂直于所述封装体的中心线。  Further, the reflective cup is located on the center line of the package body and is substantially perpendicular to the center line of the package body. the

进一步地,所述LED封装体进一步包括位于所述封装体的中心线上的导线引线框架。  Further, the LED package further includes a wire lead frame located on the center line of the package. the

根据本实用新型的具有LED封装体的显示器,其中LED封装体的峰值发射可倾斜或偏移,从而根据LED显示器的安装高度或位置定制其峰 值发射。根据本实用新型的LED封装体及显示器可用于多种不同的应用中,且特别是那些使用从小尺寸高输出光源偏离垂直轴发射的应用。  According to the display with LED package of the present invention, wherein the peak emission of the LED package can be tilted or shifted, so as to customize its peak emission according to the installation height or position of the LED display. LED packages and displays according to the present invention can be used in a variety of different applications, and particularly those using off-vertical axis emission from small size high output light sources. the

通过下文详细说明和以示例方式示出本实用新型特征的附图,本实用新型的这些和其他方面和优点将变得显而易见。  These and other aspects and advantages of the invention will become apparent from the following detailed description and from the accompanying drawings illustrating by way of example features of the invention. the

附图说明 Description of drawings

图1是安装在观众上方的常规LED显示器的示意图;  Figure 1 is a schematic diagram of a conventional LED display installed above the audience;

图2是可用于图1中的LED显示器的LED封装体的侧视图;  Fig. 2 is the side view of the LED package that can be used for the LED display in Fig. 1;

图3是示出图2中的LED封装体的光发射特性的极坐标iso-坎德拉图;  Figure 3 is a polar iso-candela diagram illustrating the light emission characteristics of the LED package in Figure 2;

图4是根据本实用新型的LED封装体的一个实施例的俯视图;  Figure 4 is a top view of an embodiment of the LED package according to the present invention;

图5是图4中LED封装体的截面图;  Fig. 5 is a sectional view of the LED package body in Fig. 4;

图6的表格示出由于反射杯中LED的偏移而导致的LED封装体的峰值发射的偏移;  The table of Fig. 6 shows the shift of the peak emission of the LED package due to the shift of the LED in the reflective cup;

图7是矩形坎德拉分布图,其示出由于反射器中LED的偏移而导致的LED封装体的峰值发射的偏移;  Fig. 7 is a rectangular candela distribution diagram showing a shift in peak emission of an LED package due to shifting of the LED in the reflector;

图8是根据本实用新型的LED封装体的另一实施例的侧视图;  Figure 8 is a side view of another embodiment of the LED package according to the present invention;

图9是沿着剖面线9-9的图8中示出的LED封装体的截面图;  Figure 9 is a cross-sectional view of the LED package shown in Figure 8 along section line 9-9;

图10是极坐标iso-坎德拉图,其示出通过偏移LED封装体中的反射杯而导致的发射图样的偏移;  Figure 10 is a polar iso-candela plot showing the shift in emission pattern caused by shifting the reflective cup in the LED package;

图11是矩形坎德拉分布图,其示出通过偏移LED封装体中的反射杯而导致的发射图样的偏移;  Figure 11 is a rectangular candela distribution diagram showing the shift of the emission pattern caused by shifting the reflective cup in the LED package;

图12是根据本实用新型的LED封装体的另一实施例的侧视图;  Fig. 12 is a side view of another embodiment of the LED package according to the present invention;

图13是沿着剖面线13-13的图12中示出的LED封装体的截面图;  Figure 13 is a cross-sectional view of the LED package shown in Figure 12 along section line 13-13;

图14的表格示出由反射杯的旋转程度导致的LED封装体的峰值发射的偏移;  The table of Figure 14 shows the shift of the peak emission of the LED package caused by the degree of rotation of the reflective cup;

图15是矩形坎德拉分布图,其示出由反射杯的旋转程度导致的峰值发射图样的偏移;  Figure 15 is a rectangular candela distribution diagram showing the shift of the peak emission pattern caused by the degree of rotation of the reflective cup;

图16是根据本实用新型的LED封装体的另一实施例的侧视图;  Fig. 16 is a side view of another embodiment of the LED package according to the present invention;

图17是可用于根据本实用新型的LED封装体的反射杯的一个实施例的俯视图;  Fig. 17 is a top view of an embodiment of a reflective cup that can be used in an LED package according to the present invention;

图18是极坐标iso-坎德拉图,其示出通过将图17中的反射杯应用于根据本实用新型的LED封装体中而导致的峰值发射图样的偏移;  Fig. 18 is a polar coordinate iso-candela diagram, which shows the shift of the peak emission pattern caused by applying the reflective cup in Fig. 17 to the LED package according to the present invention;

图19是可用于根据本实用新型的LED封装体中的反射杯的另一实施例的俯视图;  Figure 19 is a top view of another embodiment of the reflective cup that can be used in the LED package according to the present invention;

图20是具有不对称密封剂的根据本实用新型的LED封装体的另一实施例;  20 is another embodiment of an LED package according to the present invention with an asymmetric encapsulant;

图21是极坐标iso-坎德拉图,其示出由于具有图20中所示的非对称密封剂而导致的LED封装体的峰值发射图样的偏移;  Figure 21 is a polar iso-candela plot showing the shift in the peak emission pattern of an LED package due to having the asymmetric encapsulant shown in Figure 20;

图22是根据本实用新型的LED封装体的另一实施例的侧视图;  Figure 22 is a side view of another embodiment of the LED package according to the present invention;

图23是矩形坎德拉分布图,其示出由于根据本实用新型的发射器封装体中的密封剂的旋转而导致的峰值发射图样的偏移;  23 is a rectangular candela distribution diagram showing shifts in peak emission patterns due to rotation of encapsulants in emitter packages according to the present invention;

图24是极坐标iso-坎德拉图,其示出由于根据本实用新型的发射器封装体中的密封剂的旋转而导致的峰值发射图样的偏移;  24 is a polar iso-candela plot showing the shift in peak emission pattern due to rotation of the encapsulant in the emitter package according to the present invention;

图25是示出采用根据本实用新型的LED封装体的LED显示器的示意图;  Fig. 25 is a schematic diagram showing the LED display adopting the LED package according to the present invention;

图26是根据本实用新型的表面安装LED封装体的俯视图;  26 is a top view of a surface mount LED package according to the present invention;

图27是根据本实用新型的表面安装LED封装体的另一实施例的侧视图;  Fig. 27 is a side view of another embodiment of a surface mount LED package according to the present invention;

图28是根据本实用新型的表面安装LED封装体的另一实施例的侧视图;  28 is a side view of another embodiment of a surface mount LED package according to the present invention;

图29是根据本实用新型的表面安装LED封装体的又一实施例的侧视图;  29 is a side view of another embodiment of the surface mount LED package according to the present invention;

图30是根据本实用新型的表面安装LED封装体的另一实施例的俯视图;  30 is a top view of another embodiment of a surface mount LED package according to the present invention;

图31是根据本实用新型的表面安装LED封装体的又一实施例的侧视图;  31 is a side view of another embodiment of a surface mount LED package according to the present invention;

图32是根据本实用新型的表面安装LED封装体的另一实施例的截面图;  32 is a cross-sectional view of another embodiment of a surface mount LED package according to the present invention;

图33是根据本实用新型的表面安装LED封装体的另一实施例的截面图;  33 is a cross-sectional view of another embodiment of a surface mount LED package according to the present invention;

图34是根据本实用新型的表面安装LED封装体的又一实施例;以及  Fig. 34 is another embodiment of the surface mount LED package according to the present invention; and

图35是根据本实用新型的具有标明发射倾斜方向的标记的LED封装体的一个实施例的俯视图。  FIG. 35 is a top view of an embodiment of an LED package with markings indicating emission tilt directions according to the present invention. the

具体实施方式 Detailed ways

本实用新型涉及LED封装体的各种实施例,所述LED封装体的特征在于峰值IV和FFP发射特性从采用了该LED封装体的LED显示器的垂直中心线偏移一角度或倾斜一角度。根据本实用新型的LED显示器可利用LED封装体作为它们的发射器,且通过将LED封装体设置为具有基本上类似的峰值发射偏移或倾斜,所述LED显示器可提供具有相同或相似偏移或倾斜的峰值发射。  The present invention relates to various embodiments of LED packages characterized by peak IV and FFP emission characteristics offset by an angle or tilted by an angle from the vertical centerline of an LED display incorporating the LED package . LED displays according to the present invention can utilize LED packages as their emitters, and by arranging the LED packages to have substantially similar peak emission offsets or tilts, the LED displays can provide or sloped peak emission.

在一些实施例中,相对于显示器平面来说明LED显示器的发射偏移的倾斜,且更具体地,相对于显示器平面的垂线来说明LED显示器的发射偏移的倾斜。对于平板显示器来说,显示器平面是显示器的表面,且当显示器安装到平坦表面时,显示器平面通常平行于显示器的安装表面。对于曲面显示器来说,显示器平面是显示器表面的切面,且在一些实施例中,该切面可平行于显示器的安装表面。在本实施例中,显示器平面(即,切面)的垂线也垂直于安装表面。  In some embodiments, the tilt of the emission offset of the LED display is specified relative to the plane of the display, and more specifically, the tilt of the emission offset of the LED display is specified relative to a perpendicular to the plane of the display. For flat panel displays, the display plane is the surface of the display, and when the display is mounted to a flat surface, the display plane is generally parallel to the surface on which the display is mounted. For curved displays, the display plane is a cut plane of the display surface, and in some embodiments, the cut plane may be parallel to the mounting surface of the display. In this embodiment, the perpendicular to the plane of the display (ie, cut plane) is also perpendicular to the mounting surface. the

在一些实施例中,LED封装体和LED显示器的峰值发射特性相对于显示器平面垂线向下倾斜。这种设置特别适用于显示器安装于可能的观众的视高度上方的应用。这些LED显示器的峰值发射特性更接近与观众看显示器的视线匹配。这增加了射向观众的有用光的数量,且减少了浪费光的数量。这还允许显示器平坦地安装到其高位置处,消除了以一角度安装显示器的成本和复杂性,同时仍允许更多的LED光沿着观众的视线定向。通过使更多的LED光沿着观众的视线定向,相比于具有垂直于显示器的 峰值IV和FFP特性的显示器,处于高处的显示器可显得更亮且具有更多的鲜艳色彩。  In some embodiments, the peak emission characteristics of the LED package and LED display are sloped downward relative to the normal to the plane of the display. This setup is particularly useful in applications where the display is mounted above the viewing height of a potential audience. The peak emission characteristics of these LED displays more closely match the viewer's line of sight to the display. This increases the amount of useful light hitting the viewer and reduces the amount of wasted light. This also allows the display to be mounted flat to its high position, eliminating the cost and complexity of mounting the display at an angle, while still allowing more LED light to be directed along the viewer's line of sight. By directing more of the LED light along the viewer's line of sight, a display at a height can appear brighter and have more vibrant colors than a display with peak IV and FFP characteristics perpendicular to the display.

以下将说明根据本实用新型的具备所需的峰值发射偏移或倾斜的多个不同实施例,但可以理解的是,除了本文说明的那些方式之外,可以不同方式提供倾斜。正如上文所提及的那样,一些实施例说明的是向下倾斜峰值发射,这使得位于高处的显示器可被显示器之下的观众更有效地观看。但是可以理解的是,根据本实用新型的实施例还可用于将峰值发射向上偏移,或将峰值发射向左或向右偏移。虽然参考LED来说明显示器的实施例,但是还可以理解的是,可以使用多种不同类型的发射器。LED也可具有不同的安装设置用于安装于显示器中,例如引线或表面安装设置。  A number of different embodiments according to the invention with a desired peak emission offset or tilt will be described below, but it will be appreciated that the tilt can be provided in different ways than those described herein. As mentioned above, some embodiments describe sloping the peak emission downward, which allows a display located at a height to be viewed more efficiently by a viewer below the display. However, it will be appreciated that embodiments according to the present invention can also be used to shift the peak emission upwards, or shift the peak emission to the left or right. While embodiments of the display are described with reference to LEDs, it will also be appreciated that many different types of emitters may be used. LEDs are also available in different mounting arrangements for mounting in displays, such as lead wire or surface mount arrangements. the

根据不同因素(例如显示器尺寸、显示器高度和一般的观众与显示器之间的距离),可在不同实施例中提供峰值发射的不同偏移或倾斜。峰值发射倾斜的适当范围是5-20度范围的倾斜,用以最佳地适应室外应用,然而可以理解的是,可使用其他的倾斜角度范围。例如,该峰值发射倾斜的范围适于距离显示器25-40米的观众观看的10米高的显示器。  Depending on factors such as display size, display height, and the typical distance between the viewer and the display, different offsets or tilts of peak emission may be provided in different embodiments. A suitable range of peak emission tilt is a tilt in the range of 5-20 degrees to best suit outdoor applications, however it will be appreciated that other ranges of tilt angles may be used. For example, the range of peak emission inclination is suitable for a 10 meter high display viewed by an audience 25-40 meters from the display. the

本文参考特定实施例说明本实用新型,但可以理解的是,本实用新型可以许多不同形式实施,且不应将本实用新型理解为限制于本文公开的这些实施例。特别是,可提供除上文说明的那些以外的许多不同的LED、反射杯和引线框架设置,且密封剂可以提供其他特征,以改变来自LED封装体和应用了该LED封装体的LED显示器的峰值发射的方向。虽然下文讨论的LED封装体的不同实施例都涉及在LED显示器中的使用,但是它们可独立或与具有相同或不同峰值发射倾斜的其他LED封装体一起用于多种其他应用中。  The invention is described herein with reference to specific embodiments, but it will be understood that the invention may be embodied in many different forms and that the invention should not be construed as limited to these embodiments disclosed herein. In particular, many different LED, reflective cup, and lead frame arrangements can be provided other than those described above, and the encapsulant can provide other features to vary the performance from the LED package and the LED display to which the LED package is applied. The direction of the peak emission. Although the different embodiments of LED packages discussed below all relate to use in LED displays, they can be used in a variety of other applications alone or with other LED packages having the same or different peak emission tilt. the

还可以理解的是,当诸如层、区域或衬底的元件被称为位于另一元件“上”时,其可直接位于该另一元件上,或还可存在插入元件。而且,诸如“内部”、“外部”、“上部”、“之上”、“下部”、“在……下方”和“之下”的相对 术语以及类似术语都可用于本文中,用以说明一层或另一区域的关系。可以理解的是,这些术语旨在涵盖除描述于附图中的取向之外的器件的不同取向。  It will also be understood that when an element such as a layer, region or substrate is referred to as being "on" another element, it can be directly on the other element or intervening elements may also be present. Also, relative terms such as "inner," "outer," "upper," "above," "lower," "below," and "under," and similar terms, may be used herein to illustrate Relationships of one layer or another area. It will be understood that these terms are intended to encompass different orientations of the device in addition to the orientation depicted in the figures. the

虽然第一、第二等术语可用于在本文中说明各种的元件、部件、区域、层和/或部分,但是这些元件、部件、区域、层和/或部分不应被这些术语限制。这些术语仅用于将一个元件、部件、区域、层或部分与另一区域、层或部分区分开来。因此,在不脱离本实用新型所教导的内容的情况下,下文讨论的第一元件、部件、区域、层或部分可被称为第二元件、部件、区域、层或部分。  Although the terms first, second, etc. may be used herein to describe various elements, components, regions, layers and/or sections, these elements, components, regions, layers and/or sections should not be limited by these terms. These terms are only used to distinguish one element, component, region, layer or section from another region, layer or section. Thus, a first element, component, region, layer or section discussed below could be termed a second element, component, region, layer or section without departing from the teachings of the present invention. the

参考截面图说明(这些截面图是本实用新型实施例的示意性说明)描述本实用新型的实施例。因此,例如,由于制造技术和/或容差的原因,预期的是,层的实际厚度可以不同,且所示出的形状可以变化。本实用新型的实施例不应解释为限定于本文说明的区域的特定形状,而是当包括例如由制造导致的形状偏差。因为正常的制造容差,所说明或描述为方形或矩形的区域将通常具有圆形或曲形特征。因此,附图中示出的区域实质上是示意性的,且不意图示出器件的区域的精确形状,且不意图限制本实用新型的范围。  Embodiments of the invention are described with reference to illustrations of cross-sectional illustrations that are schematic illustrations of embodiments of the invention. Thus, it is contemplated that the actual thicknesses of the layers may vary and that the shapes shown may vary, for example, as a result of manufacturing techniques and/or tolerances. Embodiments of the invention should not be construed as limited to the particular shapes of regions illustrated herein but are to include deviations in shapes that result, for example, from manufacturing. A region illustrated or described as square or rectangular will typically have rounded or curved features because of normal manufacturing tolerances. Thus, the regions illustrated in the figures are schematic in nature and are not intended to illustrate the precise shape of regions of a device and are not intended to limit the scope of the invention. the

图4和5示出根据本实用新型的LED封装体40的一个实施例,其具有偏移的或倾斜的峰值发射。可以理解的是,LED显示器中每个或大多数像素模块都具有多个类似于LED封装体10的LED,且每一个的峰值发射都具有类似的偏移。这种偏移的积累导致通过显示器投影的图像的倾斜。  4 and 5 illustrate one embodiment of an LED package 40 according to the present invention having an offset or sloped peak emission. It can be understood that each or most of the pixel modules in the LED display have a plurality of LEDs similar to the LED package 10, and the peak emission of each has a similar offset. The accumulation of this offset results in a tilt of the image projected through the display. the

LED封装体40包括LED 42,其利用公知的安装方法安装在位于塑料壳体内的反射杯44中,反射杯44具有有角度的侧表面,从而将LED 42的侧面发射的光反射到有助于LED封装体40的所需发射的方向上。反射杯44具有大致椭圆形形状,但可以理解的是,其可具有许多不同的形状和尺寸。包含引线接合用于将电信号施加到LED 42,且LED封装体40 可封闭在透明材料(未示出)上,所述透明材料例如是环氧树脂,其保护LED、反射杯和任何电连接,且可对封装体40发射的光进行整形。  LED package 40 includes LED 42 mounted in a reflective cup 44 within a plastic housing using known mounting methods. Reflective cup 44 has angled side surfaces to reflect light emitted from the side of LED 42 to facilitate In the direction of the desired emission of the LED package 40 . The reflective cup 44 has a generally oval shape, although it is understood that it can have many different shapes and sizes. Wire bonds are included for applying electrical signals to the LED 42, and the LED package 40 may be enclosed in a transparent material (not shown), such as epoxy, which protects the LED, reflective cup, and any electrical connections , and can shape the light emitted by the package body 40 . the

常规LED的制造通常是公知的,且在本文中仅简要说明。可利用公知的工艺制造LED,其中一种合适的工艺是利用金属有机物化学气相沉积(MOCVD)来制造。LED的层通常包括夹在第一和第二相反的掺杂的外延层之间的有源层/区域,所有这些层在生长衬底上依次形成。LED可形成在晶圆上,且随后被单个化,从而安装在封装体中。可以理解的是生长衬底可保留作为最终被单个化的LED的一部分或可完全或部分地除去生长衬底。  The fabrication of conventional LEDs is generally known and only briefly described herein. LEDs can be fabricated using known processes, one suitable process being fabrication using metal organic chemical vapor deposition (MOCVD). The layers of an LED generally comprise an active layer/region sandwiched between first and second oppositely doped epitaxial layers, all of which are sequentially formed on a growth substrate. LEDs can be formed on a wafer and then singulated for mounting in a package. It is understood that the growth substrate may remain as part of the final singulated LED or that the growth substrate may be completely or partially removed. the

还可以理解的是,LED 42中也可包括其他层和元件,包括但不限于缓冲层、成核层、接触层和电流扩展层以及光提取层和元件。有源区域可包括单量子阱(SQW)、多量子阱(MQW)、双异质结构或超晶格结构。有源区域和掺杂层可由不同材料系统来制造,优选的材料系统是Ⅲ族氮化物基材料系统。Ⅲ族氮化物是指氮和周期表的Ⅲ族元素(通常为铝(Al)、镓(Ga)和铟(In))之间形成的那些半导体化合物。该术语还指三元和四元化合物,例如氮化铝镓(AlGaN)和氮化铝铟镓(AlInGaN)。在优选实施例中,掺杂层是氮化镓(GaN)且有源区域是InGaN。在替换实施例中,掺杂层可以是AlGaN,砷化铝镓(AlGaAs)或磷砷化铝镓铟(AlGaInAsP)。  It is also understood that other layers and elements may also be included in the LED 42, including but not limited to buffer layers, nucleation layers, contact layers, and current spreading layers, as well as light extraction layers and elements. The active region may comprise a single quantum well (SQW), multiple quantum well (MQW), double heterostructure or superlattice structure. The active regions and doped layers can be fabricated from different material systems, preferred material systems being Group III nitride based material systems. Group III nitrides refer to those semiconductor compounds formed between nitrogen and a group III element of the periodic table, typically aluminum (Al), gallium (Ga), and indium (In). The term also refers to ternary and quaternary compounds such as aluminum gallium nitride (AlGaN) and aluminum indium gallium nitride (AlInGaN). In a preferred embodiment, the doped layer is gallium nitride (GaN) and the active region is InGaN. In alternative embodiments, the doped layer may be AlGaN, aluminum gallium arsenide (AlGaAs), or aluminum gallium indium arsenide phosphide (AlGaInAsP). the

生长衬底可由多种材料制成,例如蓝宝石、碳化硅、氮化铝(AlN)、氮化镓(GaN),合适的衬底是碳化硅的4H多形体,虽然也可应用其他碳化硅多形体,包括3C、6H和15R多形体。碳化硅具有某些优点,例如与蓝宝石相比,其与Ⅲ族氮化物的晶格更为匹配,且得到具有更高质量的Ⅲ族氮化物薄膜。碳化硅还具有非常高的热导率,使得碳化硅上的Ⅲ族氮化物器件的总输出功率不受衬底的散热限制(对于形成在蓝宝石上的一些器件,总输出功率受衬底的散热限制)。可从North Carolina的Durham的 Cree Research,Inc.获得SiC衬底,且制造它们的方法详细描述于科学文献以及美国专利34861、4946547和5200022中。  Growth substrates can be made of a variety of materials such as sapphire, silicon carbide, aluminum nitride (AlN), gallium nitride (GaN), a suitable substrate is the 4H polymorph of silicon carbide, although other silicon carbide polymorphs can also be used. Shapes, including 3C, 6H and 15R polymorphs. Silicon carbide has certain advantages, such as a better lattice match to Group III nitrides than sapphire, and results in Group III nitride films of higher quality. Silicon carbide also has very high thermal conductivity, so that the total output power of the group III nitride device on silicon carbide is not limited by the heat dissipation of the substrate (for some devices formed on sapphire, the total output power is limited by the heat dissipation of the substrate limit). SiC substrates are available from Cree Research, Inc. of Durham, North Carolina, and methods of making them are described in detail in the scientific literature and in US Patents 34861, 4946547, and 5200022. the

LED还可包括导电电流扩展结构以及顶面上的引线接合焊盘,上述两者都可由可利用公知方法沉积的导电材料制成。可用于这些元件的一些材料包括Au、Cu、Ni、In、Al、Ag或其组合,以及导电氧化物和透明导电氧化物。电流扩展结构可包括以网格状排列在LED 42上的导电指状物,所述导电指状物间隔开以增强从焊盘进入到LED顶面的电流扩展。在操作中,通过上述引线接合将电信号施加到焊盘,且电信号通过电流扩展结构的指状物和顶面扩展进LED中。电流扩展结构通常用于顶面是p型的LED中,但是也可用于n型材料。  The LED may also include conductive current spreading structures and wire bond pads on the top surface, both of which may be made of conductive material that may be deposited using known methods. Some materials that can be used for these elements include Au, Cu, Ni, In, Al, Ag or combinations thereof, as well as conductive oxides and transparent conductive oxides. The current spreading structure may include conductive fingers arranged in a grid pattern over the LEDs 42, the conductive fingers spaced apart to enhance current spreading from the pads into the top surface of the LEDs. In operation, an electrical signal is applied to the pad through the wire bonds described above, and the electrical signal spreads into the LED through the fingers and top surface of the current spreading structure. Current spreading structures are typically used in LEDs where the top surface is p-type, but can also be used with n-type materials. the

本文说明的一些或所有LED可涂覆一种或多种荧光物质,所述荧光物质吸收至少一些LED的光,并发射不同波长的光,使得LED发射来自LED和荧光物质的光的组合。在根据本实用新型的一个实施例中,白光发射LED具有发射蓝色波长光谱内的光的LED,荧光物质吸收一些蓝光并再发射黄光。LED发射蓝光和黄光的白光组合。在其他实施例中,LED芯片发射蓝光和黄光的非白光组合,如美国专利No.7213940中所描述的。在一些实施例中,荧光物质包括市场上可买到的YAG:Ce,当然也能利用由基于(Gd,Y)3(Al,Ga)5O12:Ce系统(例如,Y3Al5O12:Ce,YAG)的荧光物质制成的转换颗粒获得全范围的宽黄色光谱发射。其他可用于白光发射LED芯片的黄色荧光物质包括:Tb3-xRExO12:Ce(TAG);RE=Y、Gd、La、Lu;或Sr2-x-yBaxCaySiO4:Eu。  Some or all of the LEDs described herein may be coated with one or more phosphors that absorb light from at least some of the LEDs and emit light at a different wavelength such that the LEDs emit a combination of light from the LEDs and the phosphor. In one embodiment according to the invention, the white light emitting LED has an LED that emits light in the blue wavelength spectrum, the phosphor absorbs some of the blue light and re-emits yellow light. LEDs emit a white light combination of blue and yellow light. In other embodiments, the LED chips emit a non-white combination of blue and yellow light, as described in US Patent No. 7,213,940. In some embodiments, the fluorescent substance includes commercially available YAG:Ce, of course, it is also possible to utilize a system based on (Gd,Y) 3 (Al,Ga) 5 O 12 :Ce (for example, Y 3 Al 5 O 12 : Ce, YAG) conversion particles made of fluorescent substances to obtain a full range of broad yellow spectral emission. Other yellow phosphors that can be used in white light emitting LED chips include: Tb 3-x RE x O 12 :Ce(TAG); RE=Y, Gd, La, Lu; or Sr 2-xy Ba x Ca y SiO 4 :Eu .

发射红光的LED可包括允许直接从有源区域发射红光的LED结构和材料。可替换地,在其他实施例中,红光发射LED可包括被吸收LED的光并发射红光的荧光物质覆盖的LED。适于这种结构的一些荧光物质可包括:Lu2O3:Eu3+;(Sr2-xLax)(Ce1-xEux)O4;Sr2-xEuxCeO4;SrTiO3:Pr3+,Ga3+;CaAlSiN3:Eu2+;以及Sr2Si5N8:Eu2+。  Red-emitting LEDs may include LED structures and materials that allow red light to be emitted directly from the active area. Alternatively, in other embodiments, a red light emitting LED may comprise an LED covered with a phosphor that absorbs light from the LED and emits red light. Some fluorescent substances suitable for this structure may include: Lu 2 O 3 :Eu 3+ ; (Sr 2-x La x )(Ce 1-x Eu x )O 4 ; Sr 2-x Eu x CeO 4 ; SrTiO 3 : Pr 3+ , Ga 3+ ; CaAlSiN 3 :Eu 2+ ; and Sr 2 Si 5 N 8 :Eu 2+ .

可利用多种不同的方法来涂覆被涂覆的LED,其中一种合适的方法描述于美国专利申请序列号No.11/656759和No.11/899790中,上述两个申请的标题都为“晶圆级荧光物质涂覆方法和利用该方法制造的器件”,且将上述两个申请都通过引用的方式并入本文中。可替换地,可以利用其他方法来涂覆LED,例如电泳沉积(EPD),合适的EPD方法描述于美国专利申请No.11/473089中,标题为“半导体器件的闭环电泳沉积”,也将其通过引用并入本文。可以理解的是,根据本实用新型的LED封装体还可具有不同颜色的多个LED,其中的一个或多个可以发射白光。  Coated LEDs can be coated using a number of different methods, one suitable method being described in U.S. Patent Application Serial Nos. 11/656759 and 11/899790, both titled "Wafer Level Phosphor Coating Method and Devices Fabricated Using the Method", and both of the above applications are incorporated herein by reference. Alternatively, other methods can be utilized to coat the LEDs, such as electrophoretic deposition (EPD), a suitable EPD method is described in U.S. Patent Application No. 11/473089, entitled "Closed-Loop Electrophoretic Deposition of Semiconductor Devices," also referred to as Incorporated herein by reference. It can be understood that the LED package according to the present invention can also have multiple LEDs of different colors, one or more of which can emit white light. the

本文所述的次基座(submount)可由多种不同材料形成,优选的材料是电绝缘的,例如介电元件,次基座位于LED阵列和部件背面之间。次基座可包括例如氧化铝的陶瓷、氮化铝、碳化硅或例如聚酰亚胺(polymide)和聚酯的聚合材料等等。在一个实施例中,介电材料具有高热导率,例如氮化铝和碳化硅。在其他实施例中,次基座可包括高反射性材料,例如反射陶瓷或例如银的金属层,以增强从部件的光提取。在其他实施例中,次基座42可包括印刷电路板(PCB)、氧化铝、蓝宝石或硅或任何其他合适的材料,例如T-Clad热覆(thermal clad)绝缘衬底材料,其可从Chanhassen,Minn的Bergquist公司获得。对于PCB实施例来说,可利用不同类型的PCB,例如标准FR-4PCB、金属芯PCB或任何其他类型的印刷电路板。  The submounts described herein can be formed from a variety of different materials, with preferred materials being electrically insulating, such as dielectric elements, the submount being positioned between the LED array and the back of the component. The submount may include ceramics such as alumina, aluminum nitride, silicon carbide, or polymeric materials such as polymide and polyester, among others. In one embodiment, the dielectric material has high thermal conductivity, such as aluminum nitride and silicon carbide. In other embodiments, the submount may comprise a highly reflective material, such as a reflective ceramic or a metal layer such as silver, to enhance light extraction from the component. In other embodiments, the submount 42 may comprise a printed circuit board (PCB), alumina, sapphire, or silicon or any other suitable material, such as a T-Clad thermal clad insulating substrate material, which may be obtained from Acquired by Bergquist Company of Chanhassen, Minn. For PCB embodiments, different types of PCBs may be utilized, such as standard FR-4 PCBs, metal core PCBs, or any other type of printed circuit board. the

再次参考图4和5,在常规LED封装体中,LED安装在反射杯底部表面的中心或其附近。来自典型LED封装体的峰值发射通常沿着封装体中心线49,其是垂直于反射杯44在密封剂的端部或顶部外的路径。示出反射杯的底部表面的中心,该中心处,水平中间线46和垂直中间线48相交。在常规LED封装体中,LED芯片尽可能靠近这样的位置安装,在该位置处,LED占地面积的一半位于水平中间线46之上且一半位于其下。类似地,对于垂直中间线48来说,LED 42尽可能靠近这样的位置安装,在该位置处,LED占地面积的一半位于垂直中间线48的一侧且一半位于 另一侧。但是对于LED封装体40来说,LED 42从反射杯44的底部的中心点处偏移,这种偏移导致峰值发射特性的相反偏移。在所示实施例中,LED 42在反射杯44中向上偏移,使得LED 42的大部分或全部位于水平中间线46之上。这导致峰值发射特性向下偏移。  Referring again to FIGS. 4 and 5, in a conventional LED package, the LED is mounted at or near the center of the bottom surface of the reflective cup. The peak emission from a typical LED package is generally along the package centerline 49, which is perpendicular to the path of the reflective cup 44 out of the end or top of the encapsulant. The center of the bottom surface of the reflective cup is shown where horizontal median line 46 and vertical median line 48 intersect. In a conventional LED package, the LED chip is mounted as close as possible to a location where half of the LED footprint is above and half below the horizontal median line 46 . Similarly, for the vertical median line 48, the LEDs 42 are mounted as close as possible to a location where half of the LED footprint is on one side of the vertical median line 48 and half is on the other side. But for the LED package 40, the LED 42 is offset from the center point of the bottom of the reflective cup 44, and this offset results in an opposite offset of the peak emission characteristic. In the illustrated embodiment, the LEDs 42 are offset upwardly in the reflective cup 44 such that most or all of the LEDs 42 are above the horizontal midline 46. This results in a downward shift of the peak emission characteristics. the

现在参考图6,表格50示出反射杯中的LED向上偏移的不同距离和相应的峰值发射的偏移或倾斜以及垂直视角(V-V)和水平视角(H-H)的变化的采样。这些测量采用常规尺寸的LED和反射杯,当然,可以理解的是,对于相同偏移距离,具有不同尺寸的LED或反射杯的封装体可能经历不同的峰值发射倾斜。对于小至0.01毫米(mm)的偏移来说,发射图样经历0.5度偏移。在LED向上偏移0.05mm时,峰值发射的偏移是7.7度。这种偏移可能由许多因素导致,其中一个就是随着LED的偏移,变化至不对称的场图。超过0.05mm的LED偏移可进一步增加峰值倾斜,但是可以理解,根据反射杯和密封剂的尺寸,通常到达一个点,在这种情况下,倾斜的变化将随着LED进一步偏移而减小。  Referring now to FIG. 6 , a table 50 shows a sampling of different distances of upward offset of the LEDs in the reflective cup and the corresponding offset or tilt of peak emission and variation in vertical viewing angle (V-V) and horizontal viewing angle (H-H). These measurements were made with conventionally sized LEDs and reflective cups, although it is understood that packages with different sized LEDs or reflective cups may experience different peak emission tilts for the same offset distance. For offsets as small as 0.01 millimeter (mm), the shot pattern experiences a 0.5 degree offset. When the LED is shifted upwards by 0.05 mm, the shift in peak emission is 7.7 degrees. This shift can be caused by many factors, one of which is a change to an asymmetrical field pattern as the LED shifts. LED offsets of more than 0.05mm can further increase peak tilt, but understandably, depending on reflector cup and encapsulant size, there is usually a point reached where the change in tilt will diminish as the LED is offset further . the

如图6中进一步示出,随着向上偏移的增加,垂直视角V-V经历最小的变化。水平视角H-H也随着向上偏移的增加而经历最小的变化,直至偏移到达约0.05mm,在该点处,视角可能减小。水平视角的减小的点可取决于不同的因素,例如LED的尺寸相对于反射杯尺寸。图7是矩形坎德拉分布图55,其示出晶片偏移0.05mm的情况下峰值发射偏移7.7度。  As further shown in FIG. 6, the vertical viewing angle V-V experiences minimal change as the upward excursion increases. The horizontal viewing angle H-H also undergoes minimal change with increasing upward excursion until the excursion reaches about 0.05mm, at which point the viewing angle may decrease. The point of reduction in horizontal viewing angle may depend on different factors, such as the size of the LED relative to the size of the reflective cup. Figure 7 is a rectangular candela profile 55 showing a peak emission shift of 7.7 degrees for a wafer shift of 0.05 mm. the

可以理解的是,LED可在其他方向上偏移,从而导致峰值发射在其他方向上偏移。例如,水平中间线之下的LED的向下偏移会导致峰值发射向上偏移,而向左或向右偏移会导致峰值发射分别向右和向左偏移。如上所述,典型的显示器可包括成百上千或成千上万个LED,且如果每个LED都呈现出类似的峰值发射偏移或倾斜,则显示器发射的图像将经历相应偏移。  It will be appreciated that the LEDs may be shifted in other directions, causing the peak emission to be shifted in other directions. For example, a downward shift of an LED below the horizontal middle line will cause the peak emission to shift upward, while a shift to the left or right will cause the peak emission to shift right and left respectively. As noted above, a typical display may include hundreds or thousands of LEDs, and if each LED exhibits a similar shift or tilt in peak emission, the image emitted by the display will experience a corresponding shift. the

如上所述,这种LED封装体的峰值发射偏移或倾斜还可通过其他封装体设置来实现。常规LED封装体通常具备LED、反射杯以及至少一些密封在透明材料中的引线接合,所述透明材料用于提供保护和/或用于射束成形。图8和9示出根据本实用新型的LED封装体60的另一实施例,其包括LED 62、反射杯64以及用于将电信号施加到LED62的导线引线框架66。密封剂68包围LED、反射杯以及大部分引线接合,且通常为子弹形状。密封剂68可被成形为增强从芯片的光提取,并还保护芯片和相关的接触结构(例如引线接合)免受物理损坏或环境因素(其可能导致腐蚀或退化)的影响。密封剂68的端发射部分通常具有半球形透镜形状,其可增强从封装体的光提取,且在一些情况下,可以提供输出光束成形。  As mentioned above, such peak emission shifting or tilting of LED packages can also be achieved by other package settings. A conventional LED package typically has an LED, a reflective cup, and at least some wire bonds encapsulated in a transparent material for protection and/or for beam shaping. 8 and 9 illustrate another embodiment of an LED package 60 according to the present invention, which includes an LED 62, a reflective cup 64, and a wire lead frame 66 for applying electrical signals to the LED 62. Encapsulant 68 surrounds the LED, reflective cup, and most of the wire bonds, and is generally bullet-shaped. Encapsulant 68 may be shaped to enhance light extraction from the chip, and also protect the chip and associated contact structures (eg, wire bonds) from physical damage or environmental factors that may cause corrosion or degradation. The end-emitting portion of encapsulant 68 typically has a hemispherical lens shape, which can enhance light extraction from the package and, in some cases, can provide output beam shaping. the

如在图9中最佳地所示,密封剂68具有水平中间线70和垂直中间线72,密封剂中心线73沿着密封剂的纵轴。在常规LED封装体中,安装在密封剂68中的反射杯尽可能靠近水平和垂直中间线的交点,即,密封剂的中央。在LED封装体60中,反射杯64偏离密封剂的中央,且在所示实施例中,向上偏移,以致反射杯64整个或大部分都位于水平中间线70之上。这可导致LED 62和导线引线框架(未示出)随着反射杯64一起偏移。这种向上的偏移导致LED封装体60的峰值发射相应的向下偏移。  As best shown in FIG. 9 , encapsulant 68 has a horizontal centerline 70 and a vertical centerline 72 , with encapsulant centerline 73 along the longitudinal axis of the encapsulant. In conventional LED packages, the reflective cup is mounted in the encapsulant 68 as close as possible to the intersection of the horizontal and vertical midlines, ie, the center of the encapsulant. In LED package 60 , reflective cup 64 is offset from the center of the encapsulant and, in the embodiment shown, is offset upwardly such that all or most of reflective cup 64 is above horizontal midline 70 . This can cause the LED 62 and wire lead frame (not shown) to deflect along with the reflective cup 64. This upward shift results in a corresponding downward shift in the peak emission of LED package 60 . the

图10包括LED封装体60的iso-坎德拉图80,且图11包括LED封装体60的矩形坎德拉分布图85,LED封装体60具有常规尺寸的LED 62,其安装在常规尺寸的反射杯64的中心附近。这些图示出LED封装体60的发射特性,LED封装体60的反射杯64偏离密封剂68的中心0.4mm安装。这导致LED 62的相应偏移,且导致峰值发射的约15度的偏移。如果反射杯64安装在密封剂68中的上部,则封装体60的峰值发射会经历向下偏移或倾斜15度。  FIG. 10 includes an iso-candela plot 80 of an LED package 60, and FIG. 11 includes a rectangular candela plot 85 of an LED package 60 having a conventionally sized LED 62 mounted in a conventionally sized reflective cup 64. near the center. These figures illustrate the emission characteristics of the LED package 60 with the reflective cup 64 mounted 0.4 mm off the center of the encapsulant 68 . This results in a corresponding shift of the LED 62, and a shift of about 15 degrees in peak emission. If the reflective cup 64 were mounted on top in the encapsulant 68, the peak emission of the package 60 would experience a downward shift or tilt of 15 degrees. the

如上文实施例所述,这种偏移可由许多因素导致,其中一个因素就是由于反射杯64的偏移导致封装体60产生非对称场图。反射杯进一步偏离密封剂中心线可导致峰值发射的偏移增加,但可能会到达一个点,在该点 处峰值发射偏移不是那么显著,这是因为受到反射杯和密封剂的限制。同样与上述实施例相似,反射杯在不同方向上的偏移会导致峰值发射的不同偏移或倾斜,且其多数LED封装体具有相同偏移或倾斜的显示器的显示器图像也会发生偏移或倾斜。  As described in the above embodiments, this offset can be caused by many factors, one of which is the asymmetric field pattern produced by the package 60 due to the offset of the reflective cup 64 . Moving the cup further away from the centerline of the encapsulant can result in an increased shift in peak emission, but it is possible to reach a point where the shift in peak emission is less pronounced due to the limitations of the cup and encapsulant. Also similar to the above embodiments, shifting of the reflective cup in different directions results in a different shift or tilt of the peak emission, and the display image of a display whose majority of LED packages have the same shift or tilt will also shift or tilt. the

图12和13示出LED封装体的另一实施例90,其与图8和9中的LED封装体60类似,并包括LED 92、反射杯94和用于将电信号施加到LED 92的导线引线框架96。子弹形密封剂98包围LED 92、反射杯94和引线框架96的大部分。如图13中最佳地所示,在本实施例中,反射杯94及其LED 92位于密封剂的中心或纵轴100处或位于所述中心或纵轴100附近,或位于水平和垂直中间线102、104的交点处或位于该交点附近(如图13中最佳地所示)。如图12中最佳地所示,反射杯94和引线框架96在密封剂98中倾斜。即,将它们安装为偏离封装体90的纵轴100一角度,这导致来自LED 92的反射杯94的LED 92的主要发射也偏离纵轴一角度,该角度大小通常对应于倾斜角度。  12 and 13 illustrate another embodiment of an LED package 90 that is similar to LED package 60 in FIGS. 8 and 9 and includes an LED 92, a reflective cup 94, and wires for applying an electrical signal to the LED 92. Lead frame 96. Bullet shaped encapsulant 98 surrounds most of LED 92, reflective cup 94 and lead frame 96. As best shown in FIG. 13 , in this embodiment, the reflective cup 94 and its LED 92 are located at or near the central or longitudinal axis 100 of the encapsulant, or intermediate horizontally and vertically. At or near the intersection of lines 102, 104 (as best shown in Figure 13). As best shown in FIG. 12 , reflective cup 94 and lead frame 96 are beveled in encapsulant 98 . That is, they are mounted at an angle away from the longitudinal axis 100 of the package body 90, which causes the primary emission of the LED 92 from the reflective cup 94 of the LED 92 to also be angled away from the longitudinal axis, the magnitude of which typically corresponds to the tilt angle. the

图14和15示出在LED封装体90的不同旋转度情况下的峰值发射的偏移。图14示出表格110,该表格110示出在反射杯和引线框架旋转0、3、5、10和15度的情况下LED封装体90的输出特性。0度倾斜,峰值输出发射处于0度,或沿着密封剂的纵轴。峰值发射随着反射杯和引线框架的每个倾斜程度而发生偏移。也分别示出了不同的垂直视角V-V和水平视角H-H。图15是矩形坎德拉分布图120,其示出在反射杯和引线框架的不同旋转度下的峰值发射波形。这些波形对应于图14的表格中示出的峰值偏移。  14 and 15 show the shift in peak emission for different degrees of rotation of the LED package 90 . Figure 14 shows a table 110 showing the output characteristics of the LED package 90 with the reflective cup and lead frame rotated by 0, 3, 5, 10 and 15 degrees. With 0 degree tilt, the peak output emission is at 0 degrees, or along the longitudinal axis of the encapsulant. The peak emission shifts with each degree of inclination of the reflector cup and lead frame. Also shown are different vertical viewing angles V-V and horizontal viewing angles H-H, respectively. FIG. 15 is a rectangular candela profile 120 showing peak emission waveforms at different degrees of rotation of the reflective cup and lead frame. These waveforms correspond to the peak shifts shown in the table of FIG. 14 . the

图16示出根据本实用新型的LED封装体的另一实施例130,其与图12和13中的LED封装体90类似。LED封装体130包括LED 132、反射杯134和引线框架136,它们都位于密封剂138中。但是在本实施例中,反射杯134是倾斜的,但引线框架并未倾斜,而是沿着密封剂的纵轴设置。反射杯134的不同倾斜角度可导致峰值输出发射发生基本上相同的偏移, 如图14和15中所示。可以理解的是,LED、反射杯和引线框架可以多种不同方式来安装,以提供根据本实用新型的峰值发射倾斜。  FIG. 16 shows another embodiment 130 of an LED package according to the present invention, which is similar to LED package 90 in FIGS. 12 and 13 . LED package 130 includes LED 132, reflective cup 134, and lead frame 136, all within encapsulant 138. In this embodiment, however, the reflector cup 134 is sloped, but the lead frame is not sloped, but is positioned along the longitudinal axis of the encapsulant. Different tilt angles of reflective cup 134 can result in substantially the same shift in peak output emission, as shown in FIGS. 14 and 15 . It will be appreciated that the LEDs, reflective cups and lead frame can be mounted in a number of different ways to provide peak emission tilting in accordance with the present invention. the

LED封装体16中的反射杯的进一步旋转可导致峰值发射进一步倾斜,实际的限制由密封剂的约束呈现。不同尺寸的密封剂可对偏移产生不同约束。例如,在一些实施例中,反射杯旋转局限的极限可达到90度,而优选的范围是10-30度。所包含的LED具有旋转相同量的反射杯的LED显示器可提供对应偏移或倾斜的显示发射。  Further rotation of the reflective cup in the LED package 16 can result in further tilting of the peak emission, the practical limit being presented by the constraints of the encapsulant. Different sized sealants can create different constraints on deflection. For example, in some embodiments, the limit of the reflective cup rotation limit can be up to 90 degrees, while the preferred range is 10-30 degrees. LED displays incorporating LEDs with reflective cups rotated by the same amount can provide correspondingly offset or tilted display emissions. the

根据本实用新型的LED封装体的峰值发射的偏移也能通过利用非对称的LED封装体特征来产生。图17示出根据本实用新型的LED封装体反射杯的一个实施例150,该反射杯是非对称的,并包括底面152和有角度的反射表面154。该反射杯可以类似于上文描述地设置在LED封装体中,LED安装在反射杯150的底面152。还可包括上文所述的导线引线框架和密封剂。有角度的反射表面154设置为反射LED向侧面发出的光,使其对LED封装体的期望发射方向有贡献。  Shifts in the peak emission of LED packages according to the present invention can also be produced by exploiting asymmetrical LED package features. FIG. 17 shows an embodiment 150 of an LED package reflective cup according to the present invention, which is asymmetrical and includes a bottom surface 152 and an angled reflective surface 154 . The reflective cup can be disposed in the LED package similar to the above description, and the LED is mounted on the bottom surface 152 of the reflective cup 150 . A wire lead frame and encapsulant as described above may also be included. The angled reflective surface 154 is configured to reflect light emitted by the LED to the side so that it contributes to the desired emission direction of the LED package. the

在常规LED封装体中,反射杯的有角度的反射表面围绕底面具有大致相同的角度。但是对于反射杯150来说,有角度的反射表面154具有非对称特性,表现为至少一部分相比于反射表面的其他部分具有不同的角度。在所示实施例中,顶部156的反射角度与有角度的表面154的剩余部分的反射角度不同,这导致从顶部156反射的LED的光与从有角度的表面154的剩余部分反射的光相比,以不同的角度被反射。光以更陡的角度反射离开顶部156,这导致峰值发射向下偏移,这种向下偏移在与顶部156相反的方向上。在其他实施例中,峰值发射的偏移可朝向非对称部分。  In conventional LED packages, the angled reflective surfaces of the reflective cup have approximately the same angle around the bottom surface. For reflective cup 150, however, angled reflective surface 154 has an asymmetrical character in that at least one portion is at a different angle than other portions of the reflective surface. In the illustrated embodiment, the angle of reflection of the top 156 is different from the angle of reflection of the remainder of the angled surface 154, which causes the light of the LEDs to reflect from the top 156 to be different from the light reflected from the remainder of the angled surface 154. than, are reflected at different angles. Light reflects off the top 156 at a steeper angle, which causes the peak emission to be shifted downward, in the opposite direction from the top 156 . In other embodiments, the peak emission may be shifted towards the asymmetric portion. the

图18示出常规LED封装体的极坐标iso-坎德拉图160,该常规封装体使用反射杯150,且LED安装在底面152的中心附近。对于使用反射杯150的发射器封装体来说,LED封装体呈现出大约8度的向下的峰值发射偏移或倾斜。  FIG. 18 shows a polar iso-candela plot 160 of a conventional LED package using a reflective cup 150 with the LED mounted near the center of the bottom surface 152 . For an emitter package using reflective cup 150, the LED package exhibits a downward peak emission shift or tilt of about 8 degrees. the

可以理解的是,反射杯中的不同的非对称特征可产生峰值发射的不同偏移。图19示出根据本实用新型的LED封装体反射杯的另一实施例170,其也是非对称的并包括底面172和有角度的反射表面174。在本实施例中,反射表面174的左侧部分176比反射表面的剩余部分的角度更陡。这可以使得左侧部分176比反射表面174的剩余部分以更陡的角度反射LED的光,这会导致峰值发射向右偏移。可以理解的是,反射表面174的不同部分可具有不同的角度,而这又导致LED封装体峰值发射的不同偏移。  It will be appreciated that different asymmetric features in the reflective cup can produce different shifts in peak emission. FIG. 19 shows another embodiment 170 of an LED package reflective cup according to the present invention, which is also asymmetric and includes a bottom surface 172 and an angled reflective surface 174 . In this embodiment, the left side portion 176 of the reflective surface 174 is at a steeper angle than the remainder of the reflective surface. This may cause the left portion 176 to reflect the LED's light at a steeper angle than the remainder of the reflective surface 174, which may cause the peak emission to be shifted to the right. It can be appreciated that different portions of reflective surface 174 can have different angles, which in turn result in different shifts in peak emission from the LED package. the

密封剂也可具有非对称形状,以偏移峰值发射。图20示出根据本实用新型的LED封装体180的一个实施例,其包括密封剂182,其内具有反射杯、位于反射杯中的LED以及引线框架(未示出)。在所示实施例中,密封剂具有第一部分186和第二部分188,第一部分186的曲率半径不同于第二部分188的曲率半径。部分186、188的非对称性导致封装体180的峰值发射的偏移或倾斜。这种偏移可由不同因素导致,例如LED的光在密封剂中经历非对称反射。该非对称反射导致峰值发射的相应偏移。图21是极坐标iso-坎德拉图190,其示出由非对称导致的峰值发射的偏移,且峰值偏移约为8度。  The encapsulant can also have an asymmetric shape to shift the peak emission. FIG. 20 shows an embodiment of an LED package 180 according to the present invention, which includes an encapsulant 182 with a reflective cup, an LED in the reflective cup, and a lead frame (not shown) therein. In the illustrated embodiment, the encapsulant has a first portion 186 and a second portion 188 , the first portion 186 having a different radius of curvature than the second portion 188 . The asymmetry of portions 186 , 188 results in a shift or tilt in the peak emission of package 180 . This shift can be caused by different factors, for example the light of the LED undergoes asymmetric reflection in the encapsulant. This asymmetric reflection results in a corresponding shift of the peak emission. Figure 21 is a polar iso-candela plot 190 showing the shift in peak emission due to asymmetry, with a peak shift of approximately 8 degrees. the

图22示出根据本实用新型的LED封装体的又一实施例200,其包括位于反射杯204中的LED 202、引线框架206和密封剂208。在该实施例中,密封剂208形成为围绕反射杯204和引线框架206旋转。LED封装体200可以常规方式安装在显示器中,且引线框架206垂直于显示器,使得密封剂208与垂直方向成一角度。密封剂208可根据本实用新型处于多种不同角度,且在一个实施例中,所述角度可以选择成与可能的显示器观众视线相匹配。在一个实施例中,观众的视线可从垂直于显示器的方向偏离约15度,且密封剂208的旋转可偏离垂直于显示器的方向15度,从而与该可能的视线相匹配。  22 shows yet another embodiment of an LED package 200 according to the present invention, which includes an LED 202 in a reflective cup 204, a lead frame 206, and an encapsulant 208. In this embodiment, encapsulant 208 is formed to rotate around reflective cup 204 and lead frame 206 . The LED package 200 can be mounted in a display in a conventional manner with the lead frame 206 perpendicular to the display such that the encapsulant 208 is at an angle to the vertical. The encapsulant 208 can be at a variety of different angles in accordance with the invention, and in one embodiment, the angle can be selected to match the likely display viewer's line of sight. In one embodiment, the viewer's line of sight may deviate approximately 15 degrees from normal to the display, and the rotation of encapsulant 208 may be 15 degrees from normal to the display to match this possible line of sight. the

图23是矩形坎德拉分布图210,其示出在密封剂旋转约15度的情况下,峰值发射偏移约15度。图24是极坐标iso-坎德拉图220,其示出密 封剂旋转15度的情况下,峰值发射的类似偏移。偏移可由多种因素导致,例如透镜光垂直地或非对称地被密封剂反射并从密封剂出射,且密封剂的旋转通常控制垂直反射和发射的量。密封剂的不同形状和尺寸可导致与密封剂的旋转相关的不同倾斜度,且密封剂的形状和体积也可对旋转量产生实际限制。  FIG. 23 is a rectangular candela profile 210 showing that the peak emission is shifted by about 15 degrees with the encapsulant rotated by about 15 degrees. FIG. 24 is a polar iso-candela plot 220 showing a similar shift in peak emission for a 15 degree rotation of the encapsulant. Offset can be caused by a variety of factors, such as lens light being reflected by and exiting the encapsulant vertically or asymmetrically, and rotation of the encapsulant generally controls the amount of vertical reflection and emission. Different shapes and sizes of the encapsulant can result in different inclinations relative to the rotation of the encapsulant, and the shape and volume of the encapsulant can also create a practical limit to the amount of rotation. the

可以理解的是,除了上文说明的那些之外,还可提供许多其他设置来提供偏移或倾斜的峰值发射。一种这样的设置可包括在显示器中以一角度安装LED封装体,从而提供所需的LED显示器峰值发射的倾斜。其他实施例可包括上述实施例的组合。例如,反射杯可随密封剂的旋转而旋转。LED可随着其他实施例中所述的设置(例如非对称反射杯、非对称密封剂、反射杯旋转等等)一起在反射杯中偏移。这些仅是可用于实现所需峰值发射倾斜的多种组合中的一些。  It will be appreciated that many other arrangements besides those described above may be provided to provide offset or sloped peak emissions. One such arrangement may include mounting the LED packages at an angle in the display to provide the desired tilting of the peak emission of the LED display. Other embodiments may include combinations of the above-described embodiments. For example, the reflective cup may rotate as the encapsulant rotates. The LEDs can be offset within the reflective cup along with the setup described in other embodiments (eg, asymmetrical reflective cup, asymmetrical encapsulant, reflective cup rotation, etc.). These are just a few of the many combinations that can be used to achieve the desired peak emission tilt. the

如上所述,根据本实用新型的LED封装体的实施例可用于多种不同应用,但特别适用于LED显示器中,以提供倾斜的峰值发射图样。图25示出LED显示器的一个实施例240,该显示器安装在观众244之上,且显示器240具有与观众244的视角或视线248更接近匹配的峰值发射图样246。  As mentioned above, embodiments of LED packages according to the present invention can be used in many different applications, but are particularly suitable for use in LED displays to provide a sloped peak emission pattern. FIG. 25 shows an embodiment 240 of an LED display mounted above a viewer 244 with a peak emission pattern 246 that more closely matches the viewing angle or line of sight 248 of the viewer 244 . the

如上所述,多种不同的发射器类型和封装体可用于根据本实用新型的倾斜显示器中。在一些实施例中,可以使用表面安装器件,且图26示出根据本实用新型的常规表面安装LED封装体300的一个实施例。其包括安装到次基座304的LED 302,且反射杯306安装到次基座304,用以提供围绕LED 302的反射表面。反射杯306典型地设置为反射从LED侧面发射的光。可通过次基座上的导电迹线或通过引线接合(未示出)与LED进行电接触。典型地在LED上包含密封剂(未示出)或透镜。与上述偏移的LED封装体40(示出在图4和5中)类似,在封装体300中,LED302在反射杯306中向上偏移,而这又导致峰值发射向下偏移或倾斜。同样与 上述实施例相同,LED的更大偏移会导致峰值发射的更大倾斜,且存在由反射杯的约束呈现的实际限制。  As mentioned above, a variety of different emitter types and packages can be used in tilting displays according to the present invention. In some embodiments, surface mount devices may be used, and FIG. 26 shows one embodiment of a conventional surface mount LED package 300 in accordance with the present invention. It includes an LED 302 mounted to a submount 304, and a reflective cup 306 mounted to the submount 304 to provide a reflective surface around the LED 302. Reflective cup 306 is typically arranged to reflect light emitted from the side of the LED. Electrical contact to the LED can be made through conductive traces on the submount or through wire bonds (not shown). An encapsulant (not shown) or a lens is typically included over the LED. Similar to the offset LED package 40 described above (shown in FIGS. 4 and 5 ), in package 300 the LED 302 is offset upward in the reflective cup 306 , which in turn causes the peak emission to be offset or tilted downward. Also as with the above embodiment, a larger offset of the LED would result in a larger tilt of the peak emission, with a practical limit presented by the constraints of the reflective cup. the

图27示出表面安装LED封装体310的又一实施例,其可用于显示器中以发射偏移或倾斜的峰值发射。该封装体310包括安装到次基座314的LED 312,且反射杯316围绕LED 312。LED 312可被在LED 312之上安装到反射杯的密封剂或透镜318覆盖。在本实施例中,次基座314可具有楔形形状,从而在将其安装在显示器中时,其将会倾斜所需角度,从而产生来自显示器的峰值发射的偏移。可利用次基座上的常规导电迹线或常规引线接合与LED进行电接触。  Figure 27 shows yet another embodiment of a surface mount LED package 310 that can be used in a display to emit a shifted or sloped peak emission. The package 310 includes an LED 312 mounted to a submount 314, and a reflective cup 316 surrounds the LED 312. The LED 312 can be covered by an encapsulant or lens 318 mounted to the reflective cup over the LED 312. In this embodiment, submount 314 may have a wedge shape so that when installed in a display, it will be tilted at a desired angle, resulting in a shift in peak emission from the display. Electrical contact to the LED can be made using conventional conductive traces on the submount or conventional wire bonds. the

图28示出另一表面安装LED封装体320,其可用于显示器中以发射偏移或倾斜的峰值发射,该封装体还包括LED 322、次基座324和反射杯326,密封剂或透镜328位于LED 322之上。在本实施例中,LED 322以一角度安装在反射杯326中。在本实施例中,LED 322可位于反射杯326的基部,该基部以一角度形成。由于LED 322和反射器基部的角度,这导致LED封装体320的峰值发射发生偏移。  Figure 28 shows another surface mount LED package 320 that can be used in a display to emit a shifted or tilted peak emission, the package also includes an LED 322, a submount 324 and a reflective cup 326, an encapsulant or lens 328 Located above LED 322. In this embodiment, LED 322 is mounted in reflective cup 326 at an angle. In this embodiment, the LED 322 may be located at the base of the reflective cup 326, which is formed at an angle. This results in a shift in the peak emission of the LED package 320 due to the angle of the LED 322 and the base of the reflector. the

图29示出根据本实用新型的表面安装LED封装体330的又一实施例,该实施例没有反射杯。而是,LED 332安装到次基座334,且圆顶形密封剂或透镜336位于LED之上。在本实施例中,LED安装在次基座334的中心线338上,且透镜336从中心线338向上偏移。这种密封剂的偏移导致的峰值发射偏移类似于参考上述在图8和9示出的LED封装体60在上面讨论的偏移。可以理解的是,其他表面安装LED封装体的实施例可具有反射杯,且反射杯和LED芯片围绕LED封装体的中心线安装,且透镜从中心线向上偏移。  FIG. 29 shows yet another embodiment of a surface mount LED package 330 according to the present invention without a reflective cup. Instead, the LED 332 is mounted to a submount 334 with a dome-shaped encapsulant or lens 336 over the LED. In this embodiment, the LEDs are mounted on the centerline 338 of the submount 334 and the lens 336 is offset upwardly from the centerline 338 . This shift in encapsulant results in a peak emission shift similar to that discussed above with reference to the LED package 60 shown in FIGS. 8 and 9 described above. It is understood that other surface mount LED package embodiments may have a reflective cup with the reflective cup and LED chip mounted around the centerline of the LED package with the lens offset upward from the centerline. the

如上述的实施例,LED封装体峰值发射的偏移还可通过使用非对称反射杯、封装或密封剂来实现。图30示出表面安装LED封装体350的一个实施例,其具有反射杯352,其顶部反射面354的反射角度与剩余反射 面356的反射角度不同。这种反射面的差异导致LED封装体350的峰值发射向下偏移。图31示出根据本实用新型的表面安装LED封装体370的另一实施例,其具有非对称密封剂或透镜372,透镜372具有第一和第二透镜部分374、376,且第一部分374的曲率半径与第二部分的曲率半径不同。这种非对称性导致LED封装体370的峰值发射发生偏移。  As with the embodiments described above, shifting of the peak emission of the LED package can also be achieved by using an asymmetric reflective cup, encapsulant or encapsulant. Figure 30 shows an embodiment of a surface mount LED package 350 having a reflective cup 352 with a top reflective surface 354 having a different angle of reflection than the remaining reflective surface 356. This difference in reflective surface causes the peak emission of LED package 350 to be shifted downward. 31 shows another embodiment of a surface mount LED package 370 according to the present invention having an asymmetric encapsulant or lens 372 having first and second lens portions 374, 376, and the first portion 374 of The radius of curvature is different from the radius of curvature of the second portion. This asymmetry results in a shift in the peak emission of the LED package 370 . the

图32示出根据本实用新型的表面安装LED封装体390的另一实施例,其具有安装到反射杯394的基部的LED 392,反射杯394具有反射侧壁396。在本实施例中,反射杯侧壁396的各部分可具有不同高度,例如第一反射杯侧壁部分398具有高度x,且第二反射杯部分340具有高度y。在本实施例中,x大于y,这导致LED封装体的峰值发射在第二反射杯部分340的方向上倾斜。可以理解的是,反射杯部分的高度的不同变化可导致峰值发射的不同的倾斜角度,且反射杯可具有两个以上的具有不同高度的侧壁部分。例如,在不同的实施例中,反射杯可具有三个或更多个具有不同高度的侧壁部分。  32 shows another embodiment of a surface mount LED package 390 according to the present invention having an LED 392 mounted to the base of a reflective cup 394 having a reflective sidewall 396. In this embodiment, the portions of the reflective cup sidewall 396 may have different heights, for example, the first reflective cup sidewall portion 398 has a height x, and the second reflective cup portion 340 has a height y. In this embodiment, x is greater than y, which causes the peak emission of the LED package to be sloped in the direction of the second reflective cup portion 340 . It will be appreciated that different variations in the height of the reflective cup sections may result in different tilt angles of the peak emission, and that the reflective cup may have more than two sidewall sections with different heights. For example, in different embodiments, a reflective cup may have three or more sidewall portions of different heights. the

图33示出根据本实用新型的LED封装体410的另一实施例,其也具有安装到反射杯414的基部的LED 412。在该实施例中,反射杯414具有反射杯侧壁416,该侧壁416包含具有不同反射角的部分。第一反射部分418的反射表面与对应于反射杯的基部的平面成角度x°,且第二反射部分420的反射表面也与对应于反射杯414的基部的平面成角度y°。在本实施例中,x°大于y°,这导致在第二反射部分420的方向上的倾斜。可以理解的是,各反射杯部分的反射角的不同变化可导致峰值发射的不同倾斜角度,且反射杯可具有两个以上的具有不同反射角的反射部分。例如,在不同的实施例中,反射杯可具有三个或更多个具有不同反射角的侧壁部分。  33 shows another embodiment of an LED package 410 according to the present invention, which also has an LED 412 mounted to the base of a reflective cup 414. In this embodiment, the reflective cup 414 has a reflective cup sidewall 416 that includes portions having different reflective angles. The reflective surface of the first reflective portion 418 is at an angle x° to the plane corresponding to the base of the reflective cup, and the reflective surface of the second reflective portion 420 is also at an angle y° to the plane corresponding to the base of the reflective cup 414 . In this embodiment, x° is greater than y°, which results in an inclination in the direction of the second reflective portion 420 . It will be appreciated that different variations in the reflection angle of each reflective cup portion may result in different tilt angles of the peak emission, and that the reflective cup may have more than two reflective portions with different reflective angles. For example, in different embodiments, a reflective cup may have three or more sidewall portions with different reflective angles. the

图34示出根据本实用新型的LED封装体430的又一实施例,其也具有安装到反射杯434的基部的LED 432。在本实施例中,反射杯434具有反射杯侧壁436,该侧壁包含具有不同的非对称形状的部分。在所示实施例中,反射杯434可包含具有弯曲反射表面的第一反射部分438以及具有 垂直反射表面的第二反射部分440。根据所需的峰值发射角度的倾斜,反射杯侧壁可包含具有不同非对称性的不同部分。在所示实施例中,这种非对称性导致峰值发射在第一反射部分438的方向上倾斜。在不同的实施例中,反射杯可包含具有不同非对称性的三个或更多个侧壁部分,从而产生所需峰值发射倾斜。  34 shows yet another embodiment of an LED package 430 according to the present invention, which also has an LED 432 mounted to the base of a reflective cup 434. In this embodiment, the reflective cup 434 has a reflective cup sidewall 436 that includes portions having different asymmetric shapes. In the illustrated embodiment, the reflective cup 434 may include a first reflective portion 438 having a curved reflective surface and a second reflective portion 440 having a vertical reflective surface. Depending on the desired slope of the peak emission angle, the reflective cup sidewall may comprise different sections with different asymmetries. In the illustrated embodiment, this asymmetry causes the peak emission to be tilted in the direction of the first reflective portion 438 . In various embodiments, the reflective cup may contain three or more sidewall sections with different asymmetries to produce the desired peak emission slope. the

图35示出根据本实用新型的LED封装体450的另一实施例,其与图26中所示的LED封装体300类似。其包括安装到次基座454的LED 452,且反射杯456安装到次基座454,从而在LED 452周围提供反射表面。在本实施例中,在次基座上包括发射方向标记458,其示出封装体450的发射倾斜的方向。这种标记参与制造利用LED封装体450的LED显示器,使得容易识别倾斜方向。这提供了所需朝向的一致且可靠的定位,从而提供显示器的所需发射倾斜。可以理解的是,这些标记可具有多种不同的形式且可位于封装体上的多个不同位置,包括但不限于反射杯、密封剂或LED。重要的是,所述标记传达特定LED封装体的发射倾斜的方向。  FIG. 35 shows another embodiment of an LED package 450 according to the present invention, which is similar to the LED package 300 shown in FIG. 26 . It includes an LED 452 mounted to a submount 454, and a reflective cup 456 is mounted to the submount 454 to provide a reflective surface around the LED 452. In this embodiment, an emission direction mark 458 is included on the submount, which shows the direction in which the emission of the package 450 is tilted. Such markings contribute to the manufacture of LED displays utilizing the LED package 450, making it easy to identify the tilt direction. This provides consistent and reliable positioning of the desired orientation and thus the desired emission tilt of the display. It will be appreciated that these markings can take many different forms and be located at many different locations on the package, including but not limited to reflective cups, encapsulants or LEDs. Importantly, the marking conveys the direction of emission tilt for a particular LED package. the

可以理解的是,除了上述实施例之外,也可采用许多其他的表面安装设置来提供所需的峰值发射的偏移或倾斜。还可以理解的是,可以将不同封装体实施例的特征组合,从而实现所需的峰值发射偏移。例如,导致某种偏移的非对称密封剂可与具有导致发射倾斜的不同形状的反射杯的任一实施例组合。根据本实用新型存在可用的许多不同的组合,且可以理解的是,本实用新型所公开的内容涵盖这些组合中的每一个。  It will be appreciated that, in addition to the above-described embodiments, many other surface mount arrangements may be used to provide the desired offset or tilt of peak emission. It will also be appreciated that features of different package embodiments may be combined to achieve a desired peak emission shift. For example, an asymmetric encapsulant that causes some offset could be combined with either embodiment having a reflective cup of a different shape that causes the emission to be tilted. There are many different combinations available in accordance with the present invention, and it is to be understood that the present disclosure covers each of these combinations. the

根据本实用新型的显示器还可包括LED封装体的不同组合。即,不同显示器中的LED封装体不必都具有导致发射倾斜的相同特征。在一些实施例中,不是所有的封装体都具有峰值发射倾斜,且一些封装体沿着封装体中心线或封装体或显示器的垂线来发光。在其他实施例中,显示器中不同的LED封装体可具有不同方向上的峰值发射倾斜,且在一些实施例中,LED显示器像素中的不同颜色可沿不同方向发射。  Displays according to the present invention may also include different combinations of LED packages. That is, it is not necessary that the LED packages in different displays all have the same characteristics that cause emission tilt. In some embodiments, not all packages have a peak emission slope, and some packages emit light along the package centerline or perpendicular to the package or display. In other embodiments, different LED packages in a display can have peak emission tilts in different directions, and in some embodiments, different colors in an LED display pixel can emit in different directions. the

根据本实用新型的LED封装体可用于除LED显示器之外的多种不同的照明应用中,且特别是那些使用从小尺寸高输出光源偏离垂直轴发射的应用。这些应用中的一些应用包括但不限于,路灯、建筑灯、家用和办公室照明、显示器照明和背光照明。  LED packages according to the present invention can be used in a variety of different lighting applications other than LED displays, and especially those using off-vertical axis emission from small size high output light sources. Some of these applications include, but are not limited to, street lighting, architectural lighting, home and office lighting, display lighting, and backlighting. the

虽然已经参考某些优选构造说明了本实用新型,但是也可能存在其他形式。因此,本实用新型的精神和范围不应局限于上述形式。  While the invention has been described with reference to certain preferred configurations, other forms are possible. Therefore, the spirit and scope of the present invention should not be limited to the forms described above. the

Claims (18)

1.一种显示器,包括LED封装体,其特征在于,所述LED封装体包括: 1. A display comprising an LED package, characterized in that the LED package comprises: 塑料壳体; plastic shell; 反射杯,位于所述塑料壳体中,所述反射杯中设有LED,其中所述LED偏离所述反射杯的中心放置。 A reflective cup is located in the plastic housing, and an LED is arranged in the reflective cup, wherein the LED is placed away from the center of the reflective cup. 2.根据权利要求1所述的显示器,其特征在于,所述LED封装体进一步包括至少部分地覆盖所述反射杯的密封剂。 2. The display of claim 1, wherein the LED package further comprises an encapsulant at least partially covering the reflective cup. 3.根据权利要求2所述的显示器,其特征在于,所述LED封装体进一步包括至少部分地覆盖所述反射杯的透镜。 3. The display of claim 2, wherein the LED package further comprises a lens at least partially covering the reflective cup. 4.一种显示器,包括LED封装体,其特征在于,所述LED封装体包括: 4. A display comprising an LED package, characterized in that the LED package comprises: 塑料壳体; plastic shell; 反射杯,位于所述塑料壳体中; a reflective cup located in the plastic housing; 安装在所述反射杯中的LED以及至少部分地覆盖所述反射杯的密封剂,所述反射杯偏离所述LED封装体的中心线放置。 An LED mounted in the reflective cup and an encapsulant at least partially covering the reflective cup, the reflective cup being positioned offset from a centerline of the LED package. 5.一种显示器,包括LED封装体,其特征在于,所述LED封装体包括: 5. A display comprising an LED package, characterized in that the LED package comprises: 塑料壳体; plastic shell; 反射杯,位于所述塑料壳体中; a reflective cup located in the plastic housing; 安装在所述反射杯中的LED以及至少部分地覆盖所述反射杯的密封剂,所述密封剂偏离LED封装体的中心线放置。  An LED mounted in the reflective cup and an encapsulant at least partially covering the reflective cup, the encapsulant being positioned offset from the centerline of the LED package. the 6.一种显示器,包括LED封装体,其特征在于,所述LED封装体包括: 6. A display, comprising an LED package, wherein the LED package comprises: 塑料壳体; plastic shell; 反射杯,位于所述塑料壳体中; a reflective cup located in the plastic housing; 安装在所述反射杯中的LED以及至少部分地覆盖所述反射杯的密封剂,所述反射杯相对于所述LED封装体的中心线被旋转。 An LED mounted in the reflective cup and an encapsulant at least partially covering the reflective cup, the reflective cup being rotated relative to a centerline of the LED package. 7.根据权利要求6所述的显示器,其特征在于,所述LED封装体进一步包括至少部分地位于所述密封剂中的导线引线框架,其中所述引线框架是倾斜的。 7. The display of claim 6, wherein the LED package further comprises a wire lead frame at least partially within the encapsulant, wherein the lead frame is angled. 8.根据权利要求6所述的显示器,其特征在于,所述LED封装体进一步包括至少部分地位于所述密封剂中的导线引线框架,其中所述密封剂和所述引线框架设置于所述LED封装体的中心线上。 8. The display of claim 6, wherein the LED package further comprises a wire lead frame at least partially within the encapsulant, wherein the encapsulant and the lead frame are disposed on the Centerline of the LED package. 9.一种显示器,包括LED封装体,其特征在于,所述LED封装体包括: 9. A display, comprising an LED package, wherein the LED package comprises: 塑料壳体; plastic shell; 反射杯,位于所述塑料壳体中; a reflective cup located in the plastic housing; 安装在所述反射杯中的LED,其中所述反射杯是非对称的。 An LED installed in the reflective cup, wherein the reflective cup is asymmetrical. 10.根据权利要求9所述的显示器,其特征在于,所述反射杯包括有角度的反射表面。 10. The display of claim 9, wherein the reflective cup includes an angled reflective surface. 11.根据权利要求9所述的显示器,其特征在于,所述反射杯的反射杯侧壁的至少一个部分具有不同于所述反射杯侧壁的剩余部分的高度。  11. The display of claim 9, wherein at least a portion of the reflective cup sidewall of the reflective cup has a different height than the remaining portion of the reflective cup sidewall. the 12.根据权利要求9所述的显示器,其特征在于,所述反射杯的至少一个反射表面具有反射角度不同的部分。 12. The display according to claim 9, wherein at least one reflective surface of the reflective cup has portions with different reflection angles. 13.根据权利要求9所述的显示器,其特征在于,所述反射杯的至少一个反射表面具有曲率不同的部分。 13. The display according to claim 9, wherein at least one reflective surface of the reflective cup has portions with different curvatures. 14.一种显示器,包括LED封装体,其特征在于,所述LED封装体包括: 14. A display comprising an LED package, characterized in that the LED package comprises: 塑料壳体; plastic shell; 反射杯,位于所述塑料壳体中; a reflective cup located in the plastic housing; 安装在所述反射杯中的LED以及至少部分地覆盖所述反射杯的密封剂,其中所述密封剂是非对称的。 An LED mounted in the reflective cup and an encapsulant at least partially covering the reflective cup, wherein the encapsulant is asymmetrical. 15.根据权利要求14所述的显示器,其特征在于,所述密封剂的非对称包括具有不同曲率的部分。 15. The display of claim 14, wherein the asymmetry of the encapsulant includes portions having different curvatures. 16.一种显示器,包括LED封装体,其特征在于,所述LED封装体包括: 16. A display comprising an LED package, characterized in that the LED package comprises: 塑料壳体; plastic shell; 反射杯,位于所述塑料壳体中; a reflective cup located in the plastic housing; 安装在所述反射杯中的LED;以及 LEDs mounted in the reflective cup; and 至少部分地覆盖所述反射杯的密封剂,所述密封剂相对于所述LED封装体的中心线被旋转。 An encapsulant at least partially covering the reflective cup, the encapsulant being rotated relative to a centerline of the LED package. 17.根据权利要求16所述的显示器,其特征在于,所述反射杯位于所述LED封装体的中心线上并垂直于所述LED封装体的中心线。 17. The display according to claim 16, wherein the reflective cup is located on the centerline of the LED package and is perpendicular to the centerline of the LED package. 18.根据权利要求16所述的显示器,其特征在于,所述LED封装体进一步包括位于所述LED封装体的中心线上的导线引线框架。  18. The display of claim 16, wherein the LED package further comprises a wire lead frame located on a centerline of the LED package. the
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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN109147580A (en) * 2018-08-21 2019-01-04 Oppo广东移动通信有限公司 Display device and electronic device having the same

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN109147580A (en) * 2018-08-21 2019-01-04 Oppo广东移动通信有限公司 Display device and electronic device having the same
CN109147580B (en) * 2018-08-21 2021-06-29 Oppo广东移动通信有限公司 Display device and electronic device having the same

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