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CN119556468A - Head-up display system and transportation - Google Patents

Head-up display system and transportation Download PDF

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Publication number
CN119556468A
CN119556468A CN202311118386.1A CN202311118386A CN119556468A CN 119556468 A CN119556468 A CN 119556468A CN 202311118386 A CN202311118386 A CN 202311118386A CN 119556468 A CN119556468 A CN 119556468A
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China
Prior art keywords
layer
sub
polarized light
display
light
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Application number
CN202311118386.1A
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Chinese (zh)
Inventor
吴慧军
徐俊峰
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Futurus Technology Co Ltd
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Futurus Technology Co Ltd
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Priority to CN202311118386.1A priority Critical patent/CN119556468A/en
Publication of CN119556468A publication Critical patent/CN119556468A/en
Pending legal-status Critical Current

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    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/01Head-up displays
    • G02B27/0101Head-up displays characterised by optical features
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60KARRANGEMENT OR MOUNTING OF PROPULSION UNITS OR OF TRANSMISSIONS IN VEHICLES; ARRANGEMENT OR MOUNTING OF PLURAL DIVERSE PRIME-MOVERS IN VEHICLES; AUXILIARY DRIVES FOR VEHICLES; INSTRUMENTATION OR DASHBOARDS FOR VEHICLES; ARRANGEMENTS IN CONNECTION WITH COOLING, AIR INTAKE, GAS EXHAUST OR FUEL SUPPLY OF PROPULSION UNITS IN VEHICLES
    • B60K35/00Instruments specially adapted for vehicles; Arrangement of instruments in or on vehicles
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60RVEHICLES, VEHICLE FITTINGS, OR VEHICLE PARTS, NOT OTHERWISE PROVIDED FOR
    • B60R11/00Arrangements for holding or mounting articles, not otherwise provided for
    • B60R11/02Arrangements for holding or mounting articles, not otherwise provided for for radio sets, television sets, telephones, or the like; Arrangement of controls thereof
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B1/00Optical elements characterised by the material of which they are made; Optical coatings for optical elements
    • G02B1/10Optical coatings produced by application to, or surface treatment of, optical elements
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/28Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00 for polarising
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B5/00Optical elements other than lenses
    • G02B5/08Mirrors
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B5/00Optical elements other than lenses
    • G02B5/30Polarising elements
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/01Head-up displays
    • G02B27/0179Display position adjusting means not related to the information to be displayed
    • G02B2027/0183Adaptation to parameters characterising the motion of the vehicle

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  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Transportation (AREA)
  • Instrument Panels (AREA)

Abstract

本公开涉及抬头显示系统及交通工具,在该抬头显示系统中,通过对背光源的每个发光模组进行单独控制,根据显示面板的每个显示区域的亮度信息确定对应发光模组的目标亮度,提高显示内容区域(即显示图像所在显示区域)对应的发光模组的亮度,降低无内容区域(即透视显示区域)对应的发光模组的亮度,不仅降低了图像生成单元的功耗和产热量,还提高了对比度;还通过在透反成像单元设置P偏振光透反膜,以提高对P偏振光的反射率,从而提高了形成虚像的亮度,减小了背光源提高亮度的程度,也有利于降低图像生成单元的功耗和热量,进而防止显示面板因温度过高而被损坏。

The present disclosure relates to a head-up display system and a means of transport. In the head-up display system, each light-emitting module of a backlight source is individually controlled, and the target brightness of the corresponding light-emitting module is determined according to the brightness information of each display area of a display panel, so that the brightness of the light-emitting module corresponding to the display content area (i.e., the display area where the display image is located) is increased, and the brightness of the light-emitting module corresponding to the content-free area (i.e., the perspective display area) is decreased, thereby not only reducing the power consumption and heat generation of an image generation unit, but also improving the contrast. In addition, a P-polarized light transflective film is provided on the transflective imaging unit to increase the reflectivity of the P-polarized light, thereby increasing the brightness of the virtual image formed, reducing the degree to which the backlight source increases the brightness, and also helping to reduce the power consumption and heat of the image generation unit, thereby preventing the display panel from being damaged due to excessive temperature.

Description

Head-up display system and vehicle
Technical Field
The disclosure relates to the field of display technologies, and in particular, to a head-up display system and a vehicle.
Background
Head up display system (HUD) also is called head up display system, through the light projection that sends the image generation unit of HUD to imaging part on, avoided the driver to look at the distraction that the panel board leads to at driving in-process low to improve driving factor of safety, also can bring better driving experience simultaneously.
In the related art, in order to enable a user to see an image of the HUD when wearing polarized sunglasses, the image light emitted from the HUD image generating unit is controlled to be P-polarized light, but the reflectivity of the P-polarized light is low, so that the brightness of a formed virtual image is low, and the user cannot see a clear virtual image. In the related art, the brightness requirement of the clear virtual image is met by increasing the brightness of the image generating unit, however, the power consumption and the heat generation amount of the image generating unit are also increased, and the display panel of the image generating unit is damaged due to the over-high temperature.
Disclosure of Invention
In order to solve the technical problems, the present disclosure provides a head-up display system and a vehicle.
In a first aspect, the present disclosure provides a heads-up display system comprising:
The device comprises an image generating unit, a display panel and a backlight source, wherein the image generating unit comprises a display panel and a backlight source, the display panel comprises at least two display areas, the backlight source comprises at least two light-emitting modules, the display areas are in one-to-one correspondence with the light-emitting modules, and the backlight source is configured to determine the target brightness of the corresponding light-emitting modules according to the brightness information of each display area of the display panel;
The transflective imaging unit comprises a P polarized light transflective film, wherein the P polarized light transflective film is used for reflecting P polarized light emitted by the display panel to an eye box area to form a virtual image, and the reflectivity of the P polarized light transflective film to the P polarized light is larger than that to the S polarized light.
Optionally, the P-polarized light transreflective film comprises:
The dielectric layer and the metal layer are arranged in a lamination way, and the dielectric layer is positioned at two sides of the metal layer along the lamination direction;
At least one dielectric layer comprises a first sub-dielectric layer and a second sub-dielectric layer which are alternately stacked along the stacking direction, wherein the refractive index of the first sub-dielectric layer is larger than that of the second sub-dielectric layer.
Optionally, the refractive index of the first sub-medium layer is greater than or equal to 2.0, and the refractive index of the second sub-medium layer is less than or equal to 1.7.
Optionally, the first sub-dielectric layer comprises at least one of a titanium dioxide layer, a titanium oxide layer, a tantalum pentoxide layer, a niobium pentoxide layer and a lanthanum titanate layer, and/or,
The second sub-dielectric layer comprises at least one of a silicon dioxide layer, an aluminum oxide layer and a silicon-aluminum mixed layer.
Optionally, the single-layer thickness of the first sub-medium layer is 10 nm-100 nm, and/or the single-layer thickness of the second sub-medium layer is 15 nm-150 nm.
Optionally, along the lamination direction, two sub-dielectric layers contacted with the metal layer are both first sub-dielectric layers or are both second sub-dielectric layers, or one of the first sub-dielectric layers is a second sub-dielectric layer, and/or,
And the number of layers of the first sub-medium layer is smaller than or equal to 10, and the number of layers of the second sub-medium layer is smaller than or equal to 10 in a single medium layer.
Optionally, the metal layer includes at least one of a silver reflective layer, a gold reflective layer, a copper reflective layer, and an aluminum reflective layer, and/or,
The thickness of the monolayer of the metal layer is 1 nm-50 nm.
Optionally, the P-polarized light transreflective film further comprises a support layer;
along the lamination direction, the supporting layer is positioned on at least one side of the metal layer, and the supporting layer is in contact with the metal layer.
Optionally, the total layer number of the P-polarized light transreflective film is less than or equal to 30, and/or the overall thickness of the P-polarized light transreflective film is 100 nm-800 nm.
Optionally, when the incident angle of the P-polarized light is 20 ° to 70 °, the reflectivity of the P-polarized light transreflective film to the P-polarized light is greater than or equal to 20%.
Optionally, the head-up display system further comprises a control module, wherein the control module is specifically used for:
determining a pixel group corresponding to each display area according to an image to be displayed by the display panel;
And determining the brightness information of each display area according to the pixel value of the pixel group corresponding to each display area.
Optionally, the control module is specifically configured to determine the luminance information of each display area according to a pixel value of the pixel group corresponding to each display area, and includes:
Determining a brightness value of each pixel according to the pixel value of each pixel in the pixel group corresponding to each display area;
And calculating the weighted average value of the brightness values of all the pixels in the pixel group to obtain the brightness information corresponding to each display area.
Optionally, the control module is specifically configured to determine the luminance information of each display area according to a pixel value of the pixel group corresponding to each display area, and includes:
Determining a brightness value of each pixel according to the pixel value of each pixel in the pixel group corresponding to each display area;
comparing the brightness value of each pixel with a preset threshold value to obtain a comparison result of each display area;
And determining the brightness information of each display area according to the comparison result of each display area.
Optionally, the control module is further configured to:
Determining a brightness adjustment value corresponding to each light-emitting module according to the external environment brightness;
and controlling each light-emitting module based on the target brightness and the brightness adjustment value corresponding to each light-emitting module.
Optionally, each light emitting module comprises at least one light emitting element, the control module controls each light emitting element, and/or,
And each light-emitting module emits polarized light matched with the P polarized light transreflective film.
In a second aspect, the present disclosure also provides a vehicle comprising any one of the head-up display systems described above.
Compared with the prior art, the technical scheme provided by the disclosure has the following advantages:
The head-up display system comprises an image generation unit, wherein the image generation unit comprises a display panel and a backlight source, the display panel comprises at least two display areas, the backlight source comprises at least two light-emitting modules, the display areas are in one-to-one correspondence with the light-emitting modules, the backlight source is configured to determine target brightness of the corresponding light-emitting modules according to brightness information of each display area of the display panel, the display panel at least emits P polarized light, the transflective imaging unit comprises a P polarized light transflective film, the P polarized light transflective film is used for reflecting the P polarized light emitted by the display panel to an eye box area to form a virtual image, and the reflectivity of the P polarized light transflective film to the P polarized light is larger than the reflectivity to the S polarized light. Therefore, on one hand, the target brightness of the corresponding light emitting module is determined according to the brightness information of each display area of the display panel by independently controlling each light emitting module, the brightness of the light emitting module corresponding to the display content area (namely the display area where the display image is located) is improved, the brightness of the light emitting module corresponding to the non-content area (namely the perspective display area) is reduced, the power consumption and the heat generation amount of the image generating unit are reduced, the contrast ratio is improved, and on the other hand, the P polarized light transreflective film is arranged in the transreflective imaging unit to improve the reflectivity of P polarized light, so that the brightness of a virtual image is improved, the brightness improvement degree of a backlight source is reduced, the power consumption and the heat of the image generating unit are reduced, and the display panel is prevented from being damaged due to overhigh temperature.
Drawings
The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the disclosure and together with the description, serve to explain the principles of the disclosure.
In order to more clearly illustrate the embodiments of the present disclosure or the solutions in the prior art, the drawings that are required for the description of the embodiments or the prior art will be briefly described below, and it will be obvious to those skilled in the art that other drawings can be obtained from these drawings without inventive effort.
Fig. 1 is a schematic structural diagram of a head-up display system according to an embodiment of the disclosure;
Fig. 2 is a schematic structural diagram of an image generating unit according to an embodiment of the present disclosure;
fig. 3 is a schematic structural diagram of a display panel according to an embodiment of the disclosure;
fig. 4 is a schematic structural diagram of another display panel according to an embodiment of the disclosure;
Fig. 5 is a schematic structural diagram of a backlight according to an embodiment of the disclosure;
Fig. 6 is a schematic structural diagram of another image generating unit according to an embodiment of the present disclosure;
fig. 7 is a schematic structural diagram of a P-polarized light transreflective film according to an embodiment of the present disclosure;
FIG. 8 is a schematic view of another P-polarized light transreflective film according to an embodiment of the present disclosure;
FIG. 9 is a schematic structural view of yet another P-polarized light transreflective film provided in an embodiment of the present disclosure;
FIG. 10 is a schematic view of a structure of a further P-polarized light transreflective film provided in an embodiment of the present disclosure;
FIG. 11 is a schematic view of a structure of a further P-polarized light transreflective film provided in an embodiment of the present disclosure;
Fig. 12 is a schematic structural view of another P-polarized light transreflective film according to an embodiment of the present disclosure.
Detailed Description
In order that the above objects, features and advantages of the present disclosure may be more clearly understood, a further description of aspects of the present disclosure will be provided below. It should be noted that, without conflict, the embodiments of the present disclosure and features in the embodiments may be combined with each other.
In the following description, numerous specific details are set forth in order to provide a thorough understanding of the present disclosure, but the present disclosure may be practiced otherwise than as described herein, and it is apparent that the embodiments in the specification are only some, rather than all, of the embodiments of the present disclosure.
Exemplary description of the head-up display system and the vehicle provided by the embodiments of the present disclosure is provided below with reference to the accompanying drawings.
In some embodiments, as shown in fig. 1-5, fig. 1 is a schematic structural diagram of a head-up display system provided in an embodiment of the disclosure, fig. 2 is a schematic structural diagram of an image generating unit provided in an embodiment of the disclosure, fig. 3 is a schematic structural diagram of a display panel provided in an embodiment of the disclosure, fig. 4 is a schematic structural diagram of another display panel provided in an embodiment of the disclosure, and fig. 5 is a schematic structural diagram of a backlight provided in an embodiment of the disclosure. Referring to fig. 1-5, the head-up display system comprises an image generating unit 3 and a transflective imaging unit 2, wherein the image generating unit 3 comprises a display panel 31 and a backlight source 32, the display panel 31 comprises at least two display areas 311, the backlight source 32 comprises at least two light emitting modules 321, the display areas 311 are in one-to-one correspondence with the light emitting modules 321, the backlight source 32 is configured to determine target brightness of the corresponding light emitting modules 321 according to brightness information of each display area 311 of the display panel 31, the display panel 31 emits at least P polarized light, the transflective imaging unit 2 comprises a P polarized light transflective film 1, and the P polarized light transflective film 1 is used for reflecting the P polarized light emitted by the display panel 31 to the eye box area 5 so as to form a virtual image 4;P, wherein the reflectivity of the P polarized light transflective film 1 to the P polarized light is larger than that of the S polarized light.
Referring to fig. 2, the image generating unit 3 includes a display panel 31 and a backlight 32, the shape and size of the backlight 32 corresponding to those of the display panel 31, and the backlight 32 for providing backlight to the display panel 31. The side of the display panel 31 close to the backlight 32 is a light-in side, the side far away from the backlight 32 is a light-out side, the backlight 32 emits light source light to the display panel 31, and the light-in side of the display panel 31 allows at least part of polarized light in the light source light to pass through, so that the light-out side of the display panel 31 emits image light with P polarized light.
The display panel 31 includes all types of display panels known to those skilled In the art, such as a Liquid crystal display panel (Liquid CRYSTAL DISPLAY, LCD), a twisted nematic panel (TWISTED NEMATIC, TN), a vertical alignment panel (VERTICAL ALIGNMENT, VA), or a flat panel conversion screen (In-PLANE SWITCHING, IPS), which are not limited herein.
The backlight 32 may be an electroluminescent device such as a light emitting Diode (LIGHT EMITTING Diode), an incandescent lamp, a laser, a quantum dot light source, etc., and in particular, the backlight 32 may be an Organic LIGHT EMITTING Diode (OLED), a Mini light emitting Diode (Mini LED), a Micro light emitting Diode (Micro LED), a Cold Cathode fluorescent tube (Cold Cathode FluorescentLamp, CCFL), an electroluminescent display (Electroluminescent Display, ELD), an LED Cold light source (CLL)), an electroluminescence (Electro Luminescent, EL), an electron emission (Field Emission Display, FED), a halogen lamp, a metal halide lamp, etc. The light emitted by the backlight 32 is typically light having multiple polarization characteristics, such as natural light.
As shown in fig. 3, the entire display area of the display panel 31 includes a display content area (i.e., a display area where a display image is located) and a no-content area (i.e., a see-through display area), wherein most of the display area is the no-content area, and the display area does not need to have a backlight, and only the display content area needs to have a backlight. In the related art, all display areas of a display panel are provided with backlight, namely, all light emitting elements in a backlight source are lighted, and then light source light rays emitted by corresponding light emitting elements in a non-content area are converted into heat energy through shielding, refraction, reflection, absorption and other modes, so that no light rays are emitted from the non-content area, and the problems of high energy consumption, energy waste and the like exist in the mode.
Referring to fig. 4-5, the display panel 31 includes at least two display regions 311, the backlight 32 includes a same number of light emitting modules 321 as the display regions 311, the light emitting modules 321 are in one-to-one correspondence with the display regions 311, the light emitting modules 321 provide backlight to the corresponding display regions 311, and each light emitting module includes at least one light emitting element 3211. The backlight 32 independently adjusts the corresponding light emitting modules 321 of each display area 311, and independently controls the on/off and/or brightness of each light emitting module 321 to realize area control. The backlight 32 can control the light emitting brightness of the corresponding light emitting module 321 to be the target brightness according to the brightness information of each display area 311 of the display panel 31. For example, according to the distribution of the display images on the display panel 31, the brightness of the light emitting module 321 corresponding to the display content area (i.e. the display area where the display images are located) is improved, so as to meet the brightness requirement of the clear virtual image, and the brightness of the light emitting module 321 corresponding to the non-content area (i.e. the see-through display area) is reduced.
The transflective imaging unit 2 comprises a P-polarized light transflective film 1, wherein the reflectivity of the P-polarized light transflective film 1 to P-polarized light is larger than that to S-polarized light, and the reflectivity of the P-polarized light in image light is improved by arranging the P-polarized light transflective film on the transflective imaging unit 2, so that the brightness of the formed virtual image 4 is improved, the clear virtual image 4 is beneficial to a user to see, the brightness improvement degree of the backlight 32 is reduced to a certain extent, the power consumption and the heat of the image generating unit 3 are also beneficial to reducing, and the display panel 31 is prevented from being damaged due to overhigh temperature.
In the related art, when P polarized light enters the windshield at a specific angle within a large incident angle range, a part of the P polarized light entering the windshield becomes S polarized light, and since the reflectivity of the S polarized light is greater than that of the P polarized light, the reflectivity of the part of the S polarized light on the windshield becomes high, so that the generated virtual image generates relatively obvious ghost, thereby affecting the definition of the virtual image and affecting the speed and accuracy of reading information by a user.
According to the embodiment of the disclosure, the P polarized light transreflective film 1 with higher reflectivity for the P polarized light is arranged on the transreflective imaging unit 2, and the image generating unit 3 is controlled to emit the image light with the P polarized light and a proper incidence angle, so that a user can clearly see a virtual image formed by the P polarized light reflected by the P polarized light transreflective film 1, the reflectivity of the transreflective imaging unit 2 for the reflected S polarized light is lower, and the windshield of the transreflective imaging unit 2 hardly reflects the P polarized image light, therefore, the image light does not form ghost or has little influence of ghost after being reflected by the transreflective imaging unit 2, and meanwhile, even if the driver wears a polarized sunglass for projecting the P polarized light, the image formed by the head-up display system can be clearly seen. For example, the "large incident angle range" mentioned above may be 20 ° to 70 °, and a specific angle may be 20 ° or 70 °.
As shown in fig. 1, the P-polarized light transreflective film 1 is positioned on the side of the transreflective imaging unit 2 facing the eye box area 5, and the image generating unit 3 emits image light including at least P-polarized light, which is incident on the P-polarized light transreflective film 1 and reflected to the eye box area 5, and a virtual image 4 positioned on the side of the transreflective imaging unit 2 facing away from the eye box area 5 can be observed by a user in the eye box area 5.
It should be noted that fig. 1 only exemplarily illustrates that the transflective imaging unit 2 is a windshield, and the P-polarized light transflective film 1 is disposed on a side of the windshield facing the eye box area 5, but is not limited to the head-up display system provided by the embodiment of the present disclosure. In other embodiments, the P-polarized light transreflective film 1 may be disposed on a side of the windshield facing away from the eye box region, and if the windshield is a laminated windshield, the windshield may be composed of an inner glass plate and an outer glass plate, or the P-polarized light transreflective film 1 may be disposed on one of two opposite surfaces of the inner glass plate and two opposite surfaces of the outer glass plate, or the transreflective imaging unit 2 may be a rear-mounted imaging plate, which is not limited herein.
The head-up display system provided by the embodiment of the disclosure comprises an image generating unit 3, wherein the image generating unit comprises a display panel 31 and a backlight source 32, the display panel 31 comprises at least two display areas, the backlight source 32 comprises at least two light emitting modules, the display areas are in one-to-one correspondence with the light emitting modules, the backlight source 32 is configured to determine target brightness of the corresponding light emitting modules according to brightness information of each display area of the display panel 31, the display panel 31 emits at least P polarized light, the transflective imaging unit 2 comprises a P polarized light transflective film 1, the P polarized light transflective film 1 is used for reflecting the P polarized light emitted by the display panel 31 to an eye box area to form a virtual image 4, and the reflectivity of the P polarized light transflective film 1 to the P polarized light is larger than that of the P polarized light to the S polarized light. Therefore, on one hand, the brightness of the light emitting module 321 corresponding to the display content area (i.e. the display area where the display image is located) is improved by individually controlling each light emitting module 321, determining the target brightness of the corresponding light emitting module 321 according to the brightness information of each display area 311 of the display panel 31, reducing the brightness of the light emitting module 321 corresponding to the non-content area (i.e. the perspective display area), not only reducing the power consumption and heat generation amount of the image generating unit 3, but also improving the contrast ratio, and on the other hand, the P-polarized light transreflective film 1 is arranged on the transreflective imaging unit 2 to improve the reflectivity of the P-polarized light, thereby improving the brightness of the virtual image 4, reducing the brightness improvement degree of the backlight source 32, being beneficial to reducing the power consumption and heat of the image generating unit 3, and further preventing the display panel 31 from being damaged due to overhigh temperature.
In some embodiments, the head-up display system further comprises a control module, wherein the control module is specifically configured to determine a pixel group corresponding to each display area according to an image to be displayed by the display panel, and determine brightness information of each display area according to a pixel value of the pixel group corresponding to each display area.
The control module is electrically connected with the image generation unit, and the control of the image generation unit to display images is realized through the control module. The display panel comprises at least two display areas, each display area comprises at least one pixel group, each pixel group comprises at least one pixel, the number of the pixels corresponds to the resolution of the display panel, each pixel comprises a red, green and blue (RGB) light filter, the light filter can filter light source rays emitted by a backlight source so as to display different colors, and the change of the display colors of the pixels is realized by adjusting the light transmittance of the three primary color filters. According to the input video image signals, the control module can refresh the light transmittance of the three primary color filters corresponding to each pixel row by row, so that the pixels with different colors can be combined to present the needed color picture.
In this embodiment, the control module is configured to calculate, according to a distribution of an image to be displayed on the display panel, a pixel value of a pixel group corresponding to each display area (including a display content area and a non-content area), so as to determine brightness information of each display area, and the backlight source controls, according to the brightness information of each display area, a light-emitting brightness of a corresponding display module, where brightness of the light-emitting modules may be different, so as to implement regional control of the backlight source.
The control module calculates a pixel value or a gray value of each display area according to the video image signal by taking the pixel group as a minimum display unit, determines that the pixel value or the gray value exceeds a preset threshold value as a bright area (corresponding to a display content area), or as a dark area (corresponding to a non-content area), and controls the brightness of the light emitting module corresponding to the bright area to be b1, the brightness of the light emitting module corresponding to the dark area to be b2, and b1 is greater than or equal to b2 when the light emitting module is lightened.
Illustratively, the bright and dark regions may be distinguished by:
and performing gamut conversion on RGB data in the received video image signal according to the following formula to obtain a gray scale value corresponding to each display area.
gray=0.299×R+0.587×G+0.114×B;
The method comprises the steps of determining a display area as a bright area when a gray value corresponding to the calculated display area is larger than a first preset value, determining the display area as a dark area when the gray value corresponding to the calculated display area is larger than a second preset value but smaller than the first preset value, determining the display area as a non-content area when the gray value corresponding to the calculated display area is smaller than a third preset value, wherein the third preset value is smaller than or equal to the second preset value, and the second preset value is smaller than the first preset value. Thus, the power consumption of the image generating unit is further saved, and the contrast of the virtual image of the head-up display system is improved.
In some embodiments, the control module is specifically configured to determine luminance information of each display area according to a pixel value of a pixel group corresponding to each display area, and includes determining a luminance value of each pixel according to a pixel value of each pixel in the pixel group corresponding to each display area, and calculating a weighted average of luminance values of all pixels in the pixel group to obtain luminance information corresponding to each display area.
In this embodiment, the pixel is used as the minimum display unit, the pixel values or gray values of all the pixels in each display area are obtained, the brightness value of each pixel is determined according to the pixel values or gray values, then the gray value of each pixel in each display area is weighted (the weight generally takes the square of the gray value), and the average value is calculated according to the number of pixels to be used as the brightness information of the area.
In some embodiments, the control module is specifically configured to determine luminance information of each display area according to a pixel value of a pixel group corresponding to each display area, and includes determining a luminance value of each pixel according to a pixel value of each pixel in the pixel group corresponding to each display area, comparing the luminance value of each pixel with a preset threshold value to obtain a comparison result of each display area, and determining the luminance information of each display area according to the comparison result of each display area.
In this embodiment, a pixel is used as a minimum display unit, a pixel value or a gray value of all pixels in each display area is obtained, and a brightness value of each pixel is determined according to the pixel value or gray value, then a maximum value of the pixels in the display area is compared with a preset threshold value, if the maximum value is greater than the preset threshold value, a light emitting module corresponding to the display area is turned on, otherwise, the light emitting module corresponding to the display area is turned off.
According to the calculation formula of the gray value, gray=0 and RGB are equivalent to 0, so that color gamut conversion can be omitted, RGB can be directly judged, delay is very low, delay processing can be omitted in image data output, and control data of a display module corresponding to each display area can be obtained after pixel statistics in the display area is completed.
In some embodiments, the control module is further configured to determine a brightness adjustment value corresponding to each light emitting module according to the external environment brightness, and control each light emitting module based on the target brightness corresponding to each light emitting module and the brightness adjustment value.
The control module is also used for outputting a brightness adjustment value according to the self-adaptive adjustment of the ambient brightness or receiving manual setting, determining the target brightness of the corresponding light-emitting module according to the brightness information of each display area of the display panel, and independently controlling each light-emitting module according to the target brightness and the brightness modulation value.
In some embodiments, each light emitting module includes at least one light emitting element, and the control module controls each light emitting element.
Illustratively, as shown in fig. 6, each light emitting module 321 includes a light emitting element 3211, and the control module independently controls each light emitting element.
In some embodiments, each light emitting module emits polarized light that is compatible with the P-polarized light transreflective film.
The P-polarized light transreflective film has a high reflectivity for P-polarized light, so that it is necessary to control the image light source emitted by the image generating unit to include at least P-polarized light. When the polarization conversion element is not arranged between the display panel and the backlight source, the light-emitting module is controlled to emit P polarized light, and the P polarized light can be incident to the light-incident side of the display panel, so that the P polarized light is emitted by the display panel.
In other embodiments, a transflective element may be disposed between the display panel and the backlight, the transflective element having a property of transmitting P-polarized light and reflecting S-polarized light, and the transflective element may be disposed such that the P-polarized light of the light source light emitted from the display module is incident on the light incident side of the display panel and is emitted from the light emitting side of the display panel.
In some embodiments, as shown in fig. 6, the backlight 32 further includes collimating structures 323, the collimating structures 323 are located on the light emitting side of the backlight 32, and the collimating structures 323 are located between the display panel 31 and the backlight 32.
Illustratively, as shown in fig. 6, the image generating unit includes a display panel 31 and a backlight source, the backlight source includes at least a lamp board and a collimation structure 323, the lamp board includes a plurality of light emitting elements 3211 and a backlight circuit board 322, the light emitting elements 3211 are disposed on the backlight circuit board 322, and the on-off and/or brightness of at least two light emitting elements 3211 are independent and can be adjusted independently. By the arrangement, the regional adjustment of the backlight source 32 is realized, and the power consumption is reduced as much as possible under the condition of meeting the brightness requirement of each display content in the virtual image, so that the heat received by the display panel 31 is reduced, and the display panel 31 is prevented from being damaged due to overhigh temperature.
In some embodiments, as shown in fig. 7-9, the P-polarized light transreflective film 1 comprises a dielectric layer 11 and a metal layer 12, wherein the dielectric layer 11 and the metal layer 12 are stacked, the dielectric layer 11 is located at two sides of the metal layer 12 along the stacking direction X, and at least one dielectric layer 11 comprises a first sub-dielectric layer 111 and a second sub-dielectric layer 112 which are alternately stacked along the stacking direction X, and the refractive index of the first sub-dielectric layer 111 is greater than that of the second sub-dielectric layer 112.
The P polarized light transreflective film 1 is of a multi-film structure and comprises dielectric layers 11 and metal layers 12 which are arranged in a laminated mode, wherein the number of the metal layers 12 is at least one, and the dielectric layers 11 are arranged above and below each metal layer 12 along the lamination direction X of the dielectric layers 11 and the metal layers 12. In the multiple film layers of the transflective film, at least one dielectric layer 11 includes a first sub-dielectric layer 111 and a second sub-dielectric layer 112 that are alternately stacked, and the refractive index of the first sub-dielectric layer 111 is greater than the refractive index of the second sub-dielectric layer 112.
The metal layer 12 can integrally improve the reflectivity of the P polarized light transreflective film 1 to P polarized light and S polarized light, and on the basis, the dielectric layers 11 formed by alternately laminating the first sub-dielectric layers 111 and the second sub-dielectric layers 112 with two different refractive indexes can adjust the reflectivity of the P polarized light and the S polarized light so as to obtain higher P polarized light reflectivity and lower S polarized light reflectivity. The reflective film is applied to a head-up display system, and the reflectivity of the image light is improved by adopting the corresponding reflective film according to the polarized light type (P polarized light or S polarized light) of the image light, so that the display brightness and the display effect of the image are improved.
As shown in fig. 7, the P-polarized light transreflective film 1 comprises a metal layer 12 and a dielectric layer 11 stacked with the metal layer 12, wherein the metal layer 12 is located between two dielectric layers 11 along the stacking direction X, the dielectric layer 11 located above the metal layer 12 comprises a first sub-dielectric layer 111 and a second sub-dielectric layer 112 stacked alternately, and the dielectric layer 11 located below the metal layer 12 comprises only the first sub-dielectric layer 111.
As shown in fig. 8, the P-polarized light transreflective film 1 comprises a metal layer 12 and a dielectric layer 11 stacked with the metal layer 12, wherein the metal layer 12 is located between two dielectric layers 11 along the stacking direction X, the dielectric layer 11 located above the metal layer 12 comprises a first sub-dielectric layer 111 and a second sub-dielectric layer 112 stacked alternately, and the dielectric layer 11 located below the metal layer 12 comprises only a second sub-dielectric layer 112.
As shown in fig. 9, the P-polarized light transreflective film 1 comprises a metal layer 12 and a dielectric layer 11 stacked with the metal layer 12, wherein the metal layer 12 is located between two dielectric layers 11 along the stacking direction X, the dielectric layer 11 located above the metal layer 12 comprises a first sub-dielectric layer 111 and a second sub-dielectric layer 112 which are alternately stacked, and the dielectric layer 11 located below the metal layer 12 also comprises a first sub-dielectric layer 111 and a second sub-dielectric layer 112 which are alternately stacked.
It should be noted that, in the embodiment of the present disclosure, the number of layers of the first sub-dielectric layer 111 and the second sub-dielectric layer 112 in the dielectric layer 11 is not limited, and fig. 7-9 only exemplifies that the number of layers of the first sub-dielectric layer 111 is greater than the number of layers of the second sub-dielectric layer 112, and it may also be set that the number of layers of the first sub-dielectric layer 111 is equal to the number of layers of the second sub-dielectric layer 112, or the number of layers of the first sub-dielectric layer 111 is less than the number of layers of the second sub-dielectric layer 112.
The thicknesses of the metal layer 12, the first sub-dielectric layer 111 and the second sub-dielectric layer 112 are all nano-scale, and the P-polarized light transreflective film 1 has higher light transmittance. When the P-polarized light transreflective film 1 is arranged on the transreflective imaging unit 2, the user is not prevented from seeing the object in the external environment clearly.
In other embodiments, the thickness and the arrangement combination mode of the first sub-medium layer 111 and the second sub-medium layer 112 can be adjusted to change the transparent and reflective film into an S-polarized light transparent and reflective film, wherein the reflectivity of the S-polarized light transparent and reflective film is larger than the reflectivity of the P-polarized light, and the application of the S-polarized light transparent and reflective film to the head-up display system can further improve the display brightness and the display effect of the image, or reduce the brightness of the backlight source 32 on the premise of keeping the same display brightness, thereby being beneficial to reducing the power consumption and the heat of the image generating unit 3 and further preventing the display panel 31 from being damaged due to overhigh temperature.
In some embodiments, the P-polarized light transreflective film has a reflectivity of greater than or equal to 20% for P-polarized light and a reflectivity of less than 20% for S-polarized light over at least half of the wavelength range of 390nm to 780nm when the P-polarized light transreflective film is within the first range of incidence angles.
Wherein the first incident angle range is 20-70 degrees. The visible light has a wavelength range of 390 nm-780 nm and a corresponding wavelength span of 390nm, and if the wavelength range is 390 nm-780 nm and the wavelength span is more than or equal to 195nm, the wavelength range covers at least half of the wavelength range of the visible light. Illustratively, the wavelength range is 400nm to 700nm, which corresponds to a wavelength span of 300nm.
It will be appreciated that the angle of incidence of the head-up display system is fixed at a predetermined angle, such as 50 or 60, in use, and is adjustable under different conditions of use, such as in different vehicles, such as 50 in a first vehicle and 60 in a second vehicle. Any number of incidence angles selected within the first range of incidence angles may meet the requirements of the transflective film of the present disclosure for polarized light reflectivity.
The incident angle is in a first incident angle range, the reflectivity of the P polarized light transreflective film to the P polarized light is more than or equal to 20% and the reflectivity to the S polarized light is less than 20% in at least half wave band range of visible light. For example, when the incident angle is 50 °, the reflectance of the P-polarized light transreflective film for P-polarized light is greater than 25% and the reflectance for S-polarized light is less than 20% in at least half the band range of visible light. For another example, when the incident angle is 60 °, the reflectance of the P-polarized light transreflective film for P-polarized light is greater than 30% and the reflectance for S-polarized light is less than 20% in at least half the band range of visible light. For another example, when the incident angle is 60 degrees, the reflectivity of the P polarized light transreflective film to the P polarized light is more than 30% in the wavelength range of 400nm to 700nm, and the reflectivity of the P polarized light transreflective film to the S polarized light is less than 25% in the wavelength range of 450nm to 600 nm.
In some embodiments, the range of reflectance fluctuation for the first polarized light over the wavelength range of 390nm to 780nm is less than 30% for the P-polarized light transreflective film over the second range of incidence angles.
The second incident angle range is smaller than or equal to the first incident angle range, and is within the first incident angle range, i.e. the second incident angle range is included in the first incident angle range. For example, if the first incident angle range is 20 ° to 70 °, the second incident angle range may be 20 ° to 70 °, or may be 20 ° to 50 °, or may be 50 ° to 70 °. The reflectance fluctuation range refers to the difference between the maximum value and the minimum value of the reflectance of the transflective film to P-polarized light in the visible light range, with the incident angle being within the second incident angle range.
Illustratively, when the incident angle is 60 °, the range of the reflectance of the P-polarized light transmitting and reflecting film to P-polarized light in the visible light range (390 nm to 780nm wavelength range) is less than 10%, and the range of the reflectance of the P-polarized light transmitting and reflecting film to P-polarized light in the 400nm to 600nm wavelength range is less than 5%.
In some embodiments, the P-polarized light transreflective film has a first reflectance of the first polarized light in a wavelength range of 420nm to 490nm, a second reflectance of the first polarized light in a wavelength range of 500nm to 560nm, and a third reflectance of the first polarized light in a wavelength range of 580nm to 630nm, wherein the difference between any two of the first, second, and third reflectances is less than or equal to 10%.
The third incident angle range is smaller than or equal to the first incident angle range, and is within the first incident angle range, i.e. the third incident angle range is included in the first incident angle range. For example, if the first incident angle range is 20 ° to 70 °, the third incident angle range may be 20 ° to 70 °, or 50 ° to 65 °, or 50 ° to 70 °.
The wavelength range of blue light corresponds to 420 nm-490 nm, the wavelength range of green light corresponds to 500 nm-560 nm, and the wavelength range of red light corresponds to 630 nm. So set up, in different wavelength ranges, the difference of the reflectivity of P polarized light transreflective film to P polarized light is less, and is less to the difference of the reflectivity of different colour light promptly, and the back is passed through to P polarized light transreflective film to the image light, and the colour of image light can not take place great change, can prevent that image light from taking place the colour to take place to become different colours.
Illustratively, when the incident angle of the image light is 50 °, the reflectance in the blue wavelength range (420 nm to 490 nm) is set to 29% ± 2%, the reflectance in the green wavelength range (500 nm to 560 nm) is set to 29% ± 2%, and the reflectance in the red wavelength range (630 nm to 630 nm) is set to 29% ± 2%. When the incident angle of the image light is 55 DEG, the reflectance in the blue light wavelength range (420 nm to 490 nm) is set to 30% + -2%, the reflectance in the green light wavelength range (500 nm to 560 nm) is set to 30% + -2%, and the reflectance in the red light wavelength range (580 nm to 630 nm) is set to 30% + -2%. When the incident angle of the image light is 60 DEG, the reflectance in the blue light wavelength range (420 nm to 490 nm) is set to 34% + -2%, the reflectance in the green light wavelength range (500 nm to 560 nm) is set to 34% + -2%, and the reflectance in the red light wavelength range (580 nm to 630 nm) is set to 34% + -2%. At an incident angle of 65 degrees of the image light, a reflectance of 41% ± 2% in a blue wavelength range (420 nm to 490 nm), a reflectance of 41% ± 2% in a green wavelength range (500 nm to 560 nm), and a reflectance of 41% ± 2% in a red wavelength range (630 nm to 630 nm) are set.
In some embodiments, the refractive index of the first sub-dielectric layer is greater than or equal to 2.0 and the refractive index of the second sub-dielectric layer is less than or equal to 1.7.
The refractive index of the first sub-medium layer is greater than or equal to 2.0, and at least one of tantalum pentoxide (Ta 2O5), titanium pentoxide (Ti 3O5), titanium dioxide (TiO 2), niobium pentoxide (Nb 2O5) and lanthanum titanate (H 14La2O7Ti2) can be selected. The refractive index range of tantalum pentoxide is 2.05-2.25, preferably 2.1, the refractive index range of titanium pentoxide is 2.35+/-0.5, the refractive index range of titanium dioxide is 2.35+/-0.5, the refractive index range of niobium pentoxide is 2.35+/-0.5, and the refractive index range of lanthanum titanate is 2.05+/-0.5.
The second sub-dielectric layer has a refractive index less than or equal to 1.7, and is selected from at least one of silicon dioxide (SiO 2), aluminum oxide (Al 2O3) and a silicon aluminum mixture. The refractive index of the silicon dioxide ranges from 1.45 to 1.49, preferably 1.47, the refractive index of the aluminum oxide ranges from 1.61 to 1.67, preferably 1.64, and the refractive index of the silicon-aluminum mixture ranges from 1.3 to 1.7, preferably 1.5.
In some embodiments, the first sub-dielectric layer comprises at least one of a titanium dioxide layer, a titanium oxide layer, a tantalum pentoxide layer, a niobium pentoxide layer, and a lanthanum titanate layer, and/or the second sub-dielectric layer comprises at least one of a silicon dioxide layer, an aluminum oxide layer, and a silicon aluminum hybrid layer.
In some embodiments, the first sub-dielectric layer has a monolayer thickness of 10nm to 100nm and/or the second sub-dielectric layer has a monolayer thickness of 15nm to 150nm.
For example, 7-10, the thickness of the first sub-dielectric layer 111 is a distribution length of the first sub-dielectric layer 111 in the stacking direction X, which ranges from 10nm to 100nm, and the thickness of the second sub-dielectric layer 112 is a distribution length of the second sub-dielectric layer 112 in the stacking direction X, which ranges from 15nm to 150nm.
It should be noted that, in the embodiment of the disclosure, the transflective film 1 is a multi-film structure, the thicknesses of the plurality of first sub-dielectric layers 111 are not equal, and the thicknesses thereof are all within the range of 10nm to 100nm, and the thicknesses of the plurality of second sub-dielectric layers 112 are not equal, and the thicknesses thereof are all within the range of 15nm to 150nm, and the size relationship between the thicknesses of the first sub-dielectric layers 111 and the thicknesses of the second sub-dielectric layers 112 is not limited. Illustratively, as shown in FIGS. 1-4, the thicknesses of the plurality of first sub-dielectric layers 111 are small and not equal, as are the thicknesses of the plurality of second sub-dielectric layers 112.
In some embodiments, the minimum monolayer thickness of the first sub-dielectric layer 111 is less than the minimum monolayer thickness of the second sub-dielectric layer 112, and the maximum monolayer thickness of the first sub-dielectric layer 111 is less than the maximum monolayer thickness of the second sub-dielectric layer 112.
Illustratively, the transflective film 1 includes a plurality of film layers, wherein the first sub-dielectric layer 111 having the smallest thickness is H 1_min, the second sub-dielectric layer 112 having the smallest thickness is H 2_min,H1_min<H2_min, the first sub-dielectric layer 111 having the largest thickness is H 1_max, and the second sub-dielectric layer 112 having the largest thickness is H 2_max,H1_max<H2_max.
In some embodiments, as shown in fig. 7 and 9, both sub-dielectric layers in contact with the metal layer 12 are first sub-dielectric layers 111 along the lamination direction X.
In some embodiments, as shown in fig. 10, both sub-dielectric layers in contact with metal layer 12 are second sub-dielectric layers 112 along lamination direction X.
In some embodiments, as shown in fig. 8, two sub-dielectric layers in contact with the metal layer 12, one being a first sub-dielectric layer 111 and the other being a second sub-dielectric layer 112, are in the lamination direction X.
In some embodiments, as shown in fig. 7-10, the difference in monolayer thickness between two sub-dielectric layers in contact with metal layer 12 along stack direction X is less than or equal to 50nm.
Wherein the single-layer thickness of the two sub-dielectric layers in contact with the metal layer 12 is not equal, and the difference between the two sub-dielectric layers is less than or equal to 50nm.
As shown in fig. 10, in the transflective film 1, two sub-dielectric layers contacting with the metal layer 12 are the second sub-dielectric layer 112, and the thickness of the second sub-dielectric layer 112 above the metal layer 12 is greater than that of the second sub-dielectric layer 112 below the metal layer 12 by less than or equal to 50nm.
As shown in fig. 8, in the transflective film 1, the sub-dielectric layer above the metal layer 12 and in contact with the metal layer is a first sub-dielectric layer 111, the sub-dielectric layer below the metal layer 12 and in contact with the metal layer is a second sub-dielectric layer 112, and the thickness of the first sub-dielectric layer 111 is greater than that of the second sub-dielectric layer 112, and the difference between the thicknesses is less than or equal to 50nm.
As shown in fig. 7 and 9, in the transflective film 1, two sub-dielectric layers in contact with the metal layer 12 are each a first sub-dielectric layer 111, and the single-layer thickness of the first sub-dielectric layer 111 located above the metal layer 12 is greater than the single-layer thickness of the first sub-dielectric layer 111 located below the metal layer 12 by a thickness difference of less than or equal to 50nm.
It should be noted that fig. 7-10 only exemplarily illustrate that the single layer thickness of the sub-dielectric layer located above the metal layer 12 is greater than the single layer thickness of the sub-dielectric layer located below the metal layer 12, but do not constitute a limitation of the transflective film provided by the embodiments of the present disclosure. In other embodiments, the single-layer thickness of the sub-dielectric layer above the metal layer 12 may be smaller than the single-layer thickness of the sub-dielectric layer below the metal layer 12, which is not limited herein.
In some embodiments, the number of layers of the first sub-dielectric layer is less than or equal to 10 and the number of layers of the second sub-dielectric layer is less than or equal to 10 within a single dielectric layer.
In this embodiment, the number of layers of the first sub-dielectric layer 111 and the number of layers of the second sub-dielectric layer 112 may be equal or different, but the number of layers of both layers is less than or equal to 10. The P polarized light transreflective film 1 has fewer film structures, and can still realize the adjustment of the reflectivity of P polarized light and S polarized light so as to obtain higher reflectivity of P polarized light and lower reflectivity of S polarized light, thereby simplifying the film structure, reducing the film thickness and being beneficial to reducing the cost.
Further, as shown in fig. 7-10, the number of layers of the first sub-dielectric layer 111 is less than or equal to 5 and the number of layers of the second sub-dielectric layer 112 is less than or equal to 5 within a single dielectric layer.
The P-polarized light transreflective film 1 comprises a metal layer 12 and two dielectric layers 11, and the metal layer 12 is located between the two dielectric layers 11 along the lamination direction X of the metal layer 12 and the dielectric layers 11, as shown in fig. 7 to 9. The dielectric layer 11 above the metal layer 12 includes a first sub-dielectric layer 111 and a second sub-dielectric layer 112 that are alternately stacked, in the dielectric layer 11, the number of layers of the first sub-dielectric layer 111 is 5, the number of layers of the second sub-dielectric layer 112 is 4, and the number of layers of both is less than or equal to 10.
As shown in fig. 10, the P-polarized light transreflective film 1 comprises a metal layer 12 and two dielectric layers 11, wherein the metal layer 12 is located between the two dielectric layers 11 along the lamination direction X of the metal layer 12 and the dielectric layers 11. The dielectric layer 11 above the metal layer 12 includes a first sub-dielectric layer 111 and a second sub-dielectric layer 112 that are alternately stacked, in the dielectric layer 11, the number of layers of the first sub-dielectric layer 111 is 4, the number of layers of the second sub-dielectric layer 112 is 5, and the number of layers of both is less than or equal to 10.
In some embodiments, the metal layer includes at least one of a silver reflective layer, a gold reflective layer, a copper reflective layer, and an aluminum reflective layer.
Wherein, the material of the metal layer can be at least one of gold, silver, copper and aluminum, and silver is preferable. In other embodiments, the metal layer may be made of other metal materials known to those skilled in the art, such as titanium or nickel, but not limited thereto.
In some embodiments, the monolayer thickness of the metal layer is 1nm to 50nm.
Further optimizing, the single-layer thickness of the metal layer is 15 nm-30 nm.
In some embodiments, as shown in FIGS. 11-12, the P-polarized light transreflective film 1 further comprises a support layer 13, the support layer 13 being located on at least one side of the metal layer 12 in the lamination direction X, and the support layer 13 being in contact with the metal layer 12.
The supporting layer 13 is used for improving the adhesive force of the metal layer 12 so as to improve the internal bonding force and the structural strength of the transflective film and prevent the cracking between the metal layer 12 and the dielectric layer 11.
Illustratively, as shown in fig. 11, the support layer 13 is provided only under the metal layer 12 in the lamination direction X.
Illustratively, as shown in fig. 12, the support layer 13 is provided above and below the metal layer 12 simultaneously in the lamination direction X.
In some embodiments, the support layer comprises an alumina layer and/or the support layer has a monolayer thickness of 10nm to 100nm.
Further optimizing, the single-layer thickness of the supporting layer is 20 nm-50 nm.
In some embodiments, the total number of layers of the transflective film is less than or equal to 30, and/or the overall thickness of the transflective film is 100nm to 800nm.
The total number of layers of the transflective film is the sum of the number of layers of all film layers in the transflective film, namely the total number of layers of the transflective film is equal to the sum of the number of layers of the first sub-medium layer, the number of layers of the second sub-medium layer, the number of layers of the metal layer and the number of layers of the supporting layer.
Further optimizing, the total layer number of the transflective film is less than or equal to 15, and/or the overall thickness of the transflective film is 300 nm-500 nm.
In some embodiments, the transflective film is an optical coating.
The optical coating film is formed by forming all film structures of any of the above-mentioned transflective films one by one on an optical element or an independent substrate, and changes the transmission characteristics of light, including but not limited to transmission, reflection, absorption, scattering, polarization and phase change of light.
For example, the heads-up display system also includes a magnifying assembly that includes, for example, a curved mirror, or a curved mirror and a planar mirror. The magnifying component is used for reflecting the emergent image light of the image generating unit 3 to the transflective imaging unit 2 to magnify the image displayed in the image generating unit 3 into a virtual image, wherein the image light is emergent through an emergent opening of the head-up display system.
For example, the transflective imaging unit 2 may be a windshield of a vehicle, and the eye box area may be an area where an observer needs to view the image, that is, an eye box area (eyebox), according to the actual requirement, where both eyes of the observer can see an image displayed by the display system, for example, may be a planar area or a stereoscopic area.
On the basis of the above implementation manner, the embodiment of the present disclosure further provides a vehicle, which includes any one of the above head-up display systems, and has corresponding beneficial effects, and in order to avoid repeated description, the description is omitted here.
The vehicles include, but are not limited to, vehicles, but also include all vehicles known to those skilled in the art, such as ships, airplanes, spacecraft, etc., without limitation.
It should be noted that in this document, relational terms such as "first" and "second" and the like are used solely to distinguish one entity or action from another entity or action without necessarily requiring or implying any actual such relationship or order between such entities or actions. Moreover, the terms "comprises," "comprising," or any other variation thereof, are intended to cover a non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements does not include only those elements but may include other elements not expressly listed or inherent to such process, method, article, or apparatus. Without further limitation, an element defined by the phrase "comprising one does not exclude the presence of other like elements in a process, method, article, or apparatus that comprises an element.
The foregoing is merely a specific embodiment of the disclosure to enable one skilled in the art to understand or practice the disclosure. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the generic principles defined herein may be applied to other embodiments without departing from the spirit or scope of the disclosure. Thus, the present disclosure is not intended to be limited to the embodiments shown and described herein but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims (16)

1. A heads-up display system, comprising:
The device comprises an image generating unit, a display panel and a backlight source, wherein the image generating unit comprises a display panel and a backlight source, the display panel comprises at least two display areas, the backlight source comprises at least two light-emitting modules, the display areas are in one-to-one correspondence with the light-emitting modules, and the backlight source is configured to determine the target brightness of the corresponding light-emitting modules according to the brightness information of each display area of the display panel;
The transflective imaging unit comprises a P polarized light transflective film, wherein the P polarized light transflective film is used for reflecting P polarized light emitted by the display panel to an eye box area to form a virtual image, and the reflectivity of the P polarized light transflective film to the P polarized light is larger than that to the S polarized light.
2. The heads-up display system of claim 1 wherein the P-polarized light transreflective film comprises:
The dielectric layer and the metal layer are arranged in a lamination way, and the dielectric layer is positioned at two sides of the metal layer along the lamination direction;
At least one dielectric layer comprises a first sub-dielectric layer and a second sub-dielectric layer which are alternately stacked along the stacking direction, wherein the refractive index of the first sub-dielectric layer is larger than that of the second sub-dielectric layer.
3. The heads-up display system of claim 2 wherein a refractive index of the first sub-medium layer is greater than or equal to 2.0 and a refractive index of the second sub-medium layer is less than or equal to 1.7.
4. The head-up display system of claim 3, wherein the first sub-dielectric layer comprises at least one of a titanium dioxide layer, a titanium oxide layer, a tantalum pentoxide layer, a niobium pentoxide layer, and a lanthanum titanate layer, and/or,
The second sub-dielectric layer comprises at least one of a silicon dioxide layer, an aluminum oxide layer and a silicon-aluminum mixed layer.
5. The head-up display system of claim 2, wherein the first sub-dielectric layer has a monolayer thickness of 10nm to 100nm and/or the second sub-dielectric layer has a monolayer thickness of 15nm to 150nm.
6. The head-up display system of claim 2, wherein along the stacking direction, both of the two sub-dielectric layers in contact with the metal layer are first sub-dielectric layers, or are second sub-dielectric layers, or one of the first sub-dielectric layers is a second sub-dielectric layer, and/or,
And the number of layers of the first sub-medium layer is smaller than or equal to 10, and the number of layers of the second sub-medium layer is smaller than or equal to 10 in a single medium layer.
7. The heads-up display system of claim 2 wherein the metal layer comprises at least one of a silver reflective layer, a gold reflective layer, a copper reflective layer, and an aluminum reflective layer, and/or,
The thickness of the monolayer of the metal layer is 1 nm-50 nm.
8. The heads-up display system of claim 2 wherein the P-polarized light transreflective film further comprises a support layer;
along the lamination direction, the supporting layer is positioned on at least one side of the metal layer, and the supporting layer is in contact with the metal layer.
9. The heads-up display system of any of claims 2-8, wherein a total number of layers of the P-polarized light transreflective film is less than or equal to 30 and/or an overall thickness of the P-polarized light transreflective film is 100nm to 800nm.
10. The heads-up display system of claim 1 wherein the P-polarized light transreflective film has a reflectivity of greater than or equal to 20% for the P-polarized light when the angle of incidence of the P-polarized light is 20 ° to 70 °.
11. The head-up display system of claim 1, further comprising a control module, wherein the control module is specifically configured to:
determining a pixel group corresponding to each display area according to an image to be displayed by the display panel;
And determining the brightness information of each display area according to the pixel value of the pixel group corresponding to each display area.
12. The heads-up display system of claim 11 wherein the control module is specifically configured to determine the luminance information for each of the display regions based on pixel values of the pixel groups corresponding to each of the display regions, comprising:
Determining a brightness value of each pixel according to the pixel value of each pixel in the pixel group corresponding to each display area;
And calculating the weighted average value of the brightness values of all the pixels in the pixel group to obtain the brightness information corresponding to each display area.
13. The heads-up display system of claim 11 wherein the control module is specifically configured to determine the luminance information for each of the display regions based on pixel values of the pixel groups corresponding to each of the display regions, comprising:
Determining a brightness value of each pixel according to the pixel value of each pixel in the pixel group corresponding to each display area;
comparing the brightness value of each pixel with a preset threshold value to obtain a comparison result of each display area;
And determining the brightness information of each display area according to the comparison result of each display area.
14. The heads-up display system of claim 11 wherein the control module is further configured to:
Determining a brightness adjustment value corresponding to each light-emitting module according to the external environment brightness;
and controlling each light-emitting module based on the target brightness and the brightness adjustment value corresponding to each light-emitting module.
15. The heads-up display system of claim 14 wherein each of the light modules includes at least one light emitting element, the control module controlling each of the light emitting elements, and/or,
And each light-emitting module emits polarized light matched with the P polarized light transreflective film.
16. A vehicle comprising the heads-up display system of any one of claims 1-15.
CN202311118386.1A 2023-08-31 2023-08-31 Head-up display system and transportation Pending CN119556468A (en)

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Application Number Priority Date Filing Date Title
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Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202311118386.1A CN119556468A (en) 2023-08-31 2023-08-31 Head-up display system and transportation

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CN119556468A true CN119556468A (en) 2025-03-04

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Family Applications (1)

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