CN115437411A - Wireless sensing network and related gas flow control method - Google Patents
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Abstract
Description
技术领域technical field
本发明涉及一种无线感测网络及其相关气体流量控制方法,尤指一种达成一资料中心的一机柜装置的气体流量平衡的无线感测网络及其相关气体流量控制方法。The invention relates to a wireless sensing network and a related gas flow control method, in particular to a wireless sensing network and a related gas flow control method for achieving gas flow balance of a cabinet device in a data center.
背景技术Background technique
现有的资料中心的运作需要大量的电力,用电量的分布包含有信息设备(如运算伺服器、储存设备及网络设备)、冷却设备(如冷气空调、风扇、冷水供应帮浦)等。现有的资料中心的用电效率可藉由功率使用效率(Power Usage Efficiency,PUE)作为一指标,功率使用效率为总用电量与信息设备用电量的比值(即PUE=总用电量/信息设备用电量),一般而言PUE值大于等于1,当PUE的值为1时代表冷却设备的用电量为零,属于能源效率佳的资料中心。The operation of existing data centers requires a large amount of electricity, and the distribution of electricity consumption includes information equipment (such as computing servers, storage equipment, and network equipment), cooling equipment (such as air-conditioning, fans, cold water supply pumps), etc. The power consumption efficiency of the existing data center can be used as an index by the Power Usage Efficiency (PUE), which is the ratio of the total power consumption to the power consumption of information equipment (ie, PUE=total power consumption / information equipment power consumption), generally speaking, the PUE value is greater than or equal to 1. When the PUE value is 1, it means that the power consumption of the cooling equipment is zero, which belongs to the data center with good energy efficiency.
请参考图1及图2,图1及图2分别为现有的资料中心的一机房配置10的俯视图及侧视图。如图1所示,机房配置10可包含有机柜伺服器102、冷气空调设备CRAC、高架地板RF、冷通道隔离设备CI以及热通道隔离设备HI。其中,高架地板RF、冷通道隔离设备CI以及热通道隔离设备HI是为了管理空气流量(airflow),以减少机柜伺服器102出口的热风回流(hotair recirculation)以及降低机柜伺服器102的入口的冷气溢散(cold air leakage)。然而,资料中心于实际运作时,冷通道隔离设备CI及热通道隔离设备HI虽然可以增加气体流量循环的效率,却也造成机柜伺服器102所需的气体流量与冷通道隔离设备CI所供应的流量不匹配,导致机柜伺服器102的入口及出口之间的压力差而产生局部热风回流或冷空气溢散的情形,此外现有的资料中心的冷却设备的用电约占总用电量的三成以上。Please refer to FIG. 1 and FIG. 2 . FIG. 1 and FIG. 2 are respectively a top view and a side view of a
因此,如何在相同的硬件条件下,提升冷却效率并同时降低冷却设备的用电量即成为一重要课题。Therefore, under the same hardware conditions, how to improve the cooling efficiency and reduce the power consumption of the cooling device at the same time has become an important issue.
发明内容Contents of the invention
因此,本发明提供一种无线感测网络及其相关气体流量控制方法,将无线感测网络设置于资料中心以提升资料中心的冷却效率,并同时降低冷却设备的用电量。Therefore, the present invention provides a wireless sensing network and its related gas flow control method. The wireless sensing network is installed in the data center to improve the cooling efficiency of the data center and reduce the power consumption of the cooling equipment at the same time.
本发明的一实施例公开一种无线感测网络,用于一资料中心的一机柜装置,其中该机柜装置包含有复数个伺服器,该无线感测网络包含有一主系统;一无线协调装置,耦接于该主系统,包含一协调通讯模组;以及复数个无线终端装置,以一无线连结与该无线协调装置连结,其中复数个无线终端装置分别设置于该机柜装置的复数个伺服器,并且每一无线终端装置包含有一通讯模组,用来与该无线协调装置进行沟通;一感测模组,用来感测一伺服器的一入口温度及一出口温度,并且将该入口温度及该出口温度传送至该通讯模组;以及一致动模组,耦接于一风扇装置,用来根据一转速信息调整该风扇装置的转速。An embodiment of the present invention discloses a wireless sensor network for a cabinet device in a data center, wherein the cabinet device includes a plurality of servers, the wireless sensor network includes a main system; a wireless coordinating device, coupled to the main system, including a coordinating communication module; and a plurality of wireless terminal devices connected to the wireless coordinating device through a wireless connection, wherein the plurality of wireless terminal devices are respectively arranged in a plurality of servers of the cabinet device, And each wireless terminal device includes a communication module, which is used to communicate with the wireless coordinating device; a sensing module, which is used to sense an inlet temperature and an outlet temperature of a server, and the inlet temperature and The outlet temperature is sent to the communication module; and an actuation module, coupled to a fan device, is used to adjust the speed of the fan device according to a speed information.
其中无线协调装置用来与主系统进行沟通,以根据对应于每一伺服器的入口温度及出口温度,决定对应于每一无线终端装置的风扇装置的转速信息。The wireless coordinating device is used to communicate with the main system to determine the rotation speed information of the fan device corresponding to each wireless terminal device according to the inlet temperature and outlet temperature corresponding to each server.
其中对应于复数个伺服器的一第一伺服器的入口温度高于一预设值时,主系统决定增加对应于第一伺服器的风扇装置的转速。When the inlet temperature of a first server corresponding to the plurality of servers is higher than a preset value, the main system decides to increase the rotation speed of the fan device corresponding to the first server.
其另包含:一循环风扇无线终端装置,设置于资料中心的一高架地板,其包含有:一循环风扇通讯模组,用来与无线协调装置进行沟通;一循环风扇感测模组,用来感测资料中心的一通风通道的一冷风进气温度,并且将冷风进气温度传送至主系统;以及一循环风扇致动模组,耦接于一循环风扇装置,用来根据一散热指标调整循环风扇装置的转速。It also includes: a circulating fan wireless terminal device, which is installed on a raised floor of the data center, which includes: a circulating fan communication module, used to communicate with the wireless coordination device; a circulating fan sensing module, used to Sensing a cold air intake temperature of a ventilation channel in the data center, and transmitting the cold air intake temperature to the main system; and a circulation fan actuation module, coupled to a circulation fan device, used to adjust according to a heat dissipation index Speed of the circulating fan unit.
其中散热指标是由主系统根据通风通道的冷风进气温度、每一伺服器的入口温度的一平均值以及每一伺服器的出口温度的一平均值决定,并且主系统根据散热指标决定循环风扇无线终端装置的循环风扇装置的转速。The heat dissipation index is determined by the main system according to the cold air intake temperature of the ventilation channel, an average value of the inlet temperature of each server, and an average value of the outlet temperature of each server, and the main system determines the circulation fan according to the heat dissipation index The rotation speed of the circulation fan unit of the wireless terminal device.
其中当散热指标的每一伺服器的入口温度的平均值大于冷风进气温度时,增加循环风扇装置的转速。Wherein, when the average value of the inlet temperature of each server in the heat dissipation index is greater than the intake temperature of the cold air, the rotating speed of the circulating fan device is increased.
其中主系统根据一比例-积分-微分控制器决定散热指标以及循环风扇无线终端装置的循环风扇装置的转速。Wherein the main system determines the heat dissipation index and the speed of the circulation fan device of the circulation fan wireless terminal device according to a proportional-integral-derivative controller.
本发明的一实施例另外公开一种气体流量控制方法,用于一资料中心的一机柜装置,其中该机柜装置包含有复数个伺服器,该气体流量控制方法包含有感测每一伺服器的一入口温度及一出口温度;将感测到的每一伺服器的该入口温度及该出口温度传送至对应的无线终端装置的一通讯模组;根据对应于每一伺服器的该入口温度及该出口温度决定对应于每一无线终端装置的风扇装置的一转速信息;以及根据对该转速信息,调整对应于每一无线终端装置的风扇装置的转速;其中,对应于该复数个伺服器的一第一伺服器的该入口温度高于一预设值时,增加对应于该第一伺服器的风扇装置的转速。An embodiment of the present invention further discloses a gas flow control method for a cabinet device in a data center, wherein the cabinet device includes a plurality of servers, and the gas flow control method includes sensing each server An inlet temperature and an outlet temperature; sending the sensed inlet temperature and the outlet temperature of each server to a communication module of the corresponding wireless terminal device; according to the inlet temperature and the outlet temperature corresponding to each server The outlet temperature determines a rotational speed information corresponding to the fan device of each wireless terminal device; and according to the rotational speed information, adjusts the rotational speed of the fan device corresponding to each wireless terminal device; wherein, corresponding to the plurality of servers When the inlet temperature of a first server is higher than a preset value, the speed of the fan device corresponding to the first server is increased.
其另包含:感测资料中心的一通风通道的一冷风进气温度,并且将冷风进气温度传送至一循环风扇无线终端装置的一循环风扇通讯模组;根据通风通道的冷风进气温度、每一伺服器的入口温度的一平均值以及每一伺服器的出口温度的一平均值决定一散热指标;以及根据散热指标决定循环风扇无线终端装置的一循环风扇装置的转速;其中,当散热指标的每一伺服器的入口温度的平均值大于冷风进气温度时,增加循环风扇装置的转速。It also includes: sensing a cold air inlet temperature of a ventilation passage in the data center, and transmitting the cold air inlet temperature to a circulation fan communication module of a circulation fan wireless terminal device; according to the cold air inlet temperature of the ventilation passage, An average value of the inlet temperature of each server and an average value of the outlet temperature of each server determine a heat dissipation index; and determine the speed of a circulation fan device of the circulation fan wireless terminal device according to the heat dissipation index; wherein, when heat dissipation When the average value of the inlet temperature of each server of the index is greater than the inlet temperature of the cold air, increase the speed of the circulation fan device.
其中根据一比例-积分-微分控制器决定散热指标以及循环风扇无线终端装置的循环风扇装置的转速。Wherein a proportional-integral-derivative controller is used to determine the heat dissipation index and the rotating speed of the circulating fan device of the circulating fan wireless terminal device.
附图说明Description of drawings
图1及图2分别为现有的资料中心的一机房配置的俯视图及侧视图。1 and 2 are respectively a top view and a side view of a computer room configuration in an existing data center.
图3为本发明实施例的一无线感测网络的示意图。FIG. 3 is a schematic diagram of a wireless sensor network according to an embodiment of the present invention.
图4为本发明实施例的无线感测网络应用于一资料中心的示意图。FIG. 4 is a schematic diagram of a wireless sensor network applied to a data center according to an embodiment of the present invention.
图5为本发明实施例的机柜装置的一侧面示意图。FIG. 5 is a schematic side view of a cabinet device according to an embodiment of the present invention.
图6为本发明实施例的一比例-积分-微分控制器的示意图。FIG. 6 is a schematic diagram of a proportional-integral-derivative controller according to an embodiment of the present invention.
图7为本发明实施例的一气体流量控制方法的示意图。FIG. 7 is a schematic diagram of a gas flow control method according to an embodiment of the present invention.
符号说明:Symbol Description:
10:机房配置10: Computer room configuration
102:机柜伺服器102: Cabinet server
30:无线感测网络30:Wireless Sensing Network
302:主系统302: Main system
304:无线协调装置304: wireless coordination device
3042:协调通讯模组3042: Coordination communication module
306_1-306_6:无线终端装置306_1-306_6: wireless terminal device
3062:通讯模组3062: Communication module
3064:感测模组3064: Sensing module
3066:致动模组3066:Actuation module
308:循环风扇无线终端装置308: Circulation fan wireless terminal device
3082:循环风扇通讯模组3082:Circulation fan communication module
3084:循环风扇感测模组3084: Circulation fan sensor module
3086:循环风扇致动模组3086: Circulation Fan Actuation Module
3088:循环风扇装置3088:Circulation fan unit
70:气体流量控制方法70: Gas flow control method
702-712:步骤702-712: steps
CI:冷通道隔离设备CI: Cold Aisle Isolation Device
CRAC:冷气空调设备CRAC: Cold Air Conditioning Equipment
DC:资料中心DC: data center
HI:热通道隔离设备HI: Hot Aisle Isolation Device
Inlet_1-Inlet_6,Inlet_1'-Inlet_6':入口温度Inlet_1-Inlet_6, Inlet_1'-Inlet_6': inlet temperature
Outlet_1-Outlet_6,Outlet_1'-Outlet_6':出口温度Outlet_1-Outlet_6, Outlet_1'-Outlet_6': outlet temperature
PID_controller:比例-积分-微分控制器PID_controller: proportional-integral-derivative controller
R,R':机柜装置R, R': cabinet installation
RF:高架地板RF: Raised Floor
S_1-S_6,S_1'-S_6':伺服器S_1-S_6,S_1'-S_6': Servers
SUI:散热指标SUI: thermal index
Tinrack:每一伺服器的入口温度的平均值Tinrack: the average of the inlet temperature of each server
Toutrack:每一伺服器的出口温度的平均值Toutrack: the average of the outlet temperature of each server
Tref:冷风进气温度Tref: cold air intake temperature
VI:通风通道VI: ventilation channel
具体实施方式detailed description
请参考图3及图4,图3为本发明实施例的一无线感测网络30的示意图,图4为本发明实施例的无线感测网络30应用于一资料中心DC的示意图。无线感测网络30可应用于资料中心DC的一机柜装置R,其中资料中心DC的机柜装置R可分别包含有伺服器S_1-S_6。在本发明的实施例中,无线感测网络30为一分散式(distributed)架构,以一无线传输方式传送及接收信息。无线感测网络30包含有一主系统302、一无线协调装置304、复数个无线终端装置306_1-306_6以及一循环风扇无线终端装置308。主系统302可以用来搜集并且分析无线感测网络30的资料,例如具有一处理单元的装置。无线协调装置304耦接于主系统302,可包含一协调通讯模组3042用来与无线终端装置306_1-306_6及主系统302进行沟通。无线终端装置306_1-306_6以一无线连结与无线协调装置304连结,其中每一无线终端装置306_1-306_6是设置于机柜装置R的每一伺服器,并且每一无线终端装置306_1-306_6包含有一通讯模组3062、一感测模组3064以及一致动模组3066。通讯模组3062用来与无线协调装置304进行沟通,感测模组3064可以是一温度感测器,用来感测对应的伺服器的一入口温度及一出口温度,并且将入口温度及出口温度传送至通讯模3062,致动模组3066耦接于一风扇装置,用来根据一转速信息调整风扇装置的一转速,其中转速信息是由主系统302所决定的。循环风扇无线终端装置308设置于资料中心DC的一高架地板RF,且循环风扇无线终端装置308位于机柜装置R的一底部,如图4所示。如此一来,本发明实施例的无线感测网络30即可快速地根据每一无线终端装置所感测到的对应于每一伺服器的入口温度及出口温度,决定对应的风扇装置以及对应于循环风扇无线终端装置308的一循环风扇装置3088的转速,进而快速地消除资料中心DC的热点。Please refer to FIG. 3 and FIG. 4 , FIG. 3 is a schematic diagram of a
在一实施例中,本发明实施例的无线感测网络30的无线协调装置304以及每一无线终端装置306_1-306_6可利用Arduino所开发的ATmega 2560微控制器实现,无线协调装置304的协调通讯模组3042以及各个无线终端装置的的通讯模组3062可由XBee无线模组所实现,因此,本发明实施例的无线感测网络30可实现一星状网络(Star Network)结构,即一个无线协调装置304与多个无线终端装置306_1-306_6的网络拓墣结构。In one embodiment, the
详细而言,本发明实施例的无线感测网络30的无线协调装置304透过协调通讯模组3042与主系统302进行沟通,以根据对应于每一伺服器的入口温度及出口温度决定对应于每一无线终端装置306_1-306_6的风扇装置的转速信息。举例而言,当无线终端装置306_2的感测模组3064感测到伺服器S_2的入口温度时,无线终端装置306_2的通讯模组3062将感测到的入口温度透过无线协调装置304传送至主系统302,并且于主系统302确定伺服器S_2的入口温度高于一预设值时,主系统302增加对应于该伺服器的风扇装置的转速。在此情形下,主系统302再透过无线协调装置304将调整无线终端装置306_2的转速信息传送至无线终端装置306_2,并且由无线终端装置306_2之致动模组3066调整对应的风扇装置的转速,以快速地消除资料中心DC的热点。In detail, the
在另一实施例中,当无线感测网络30的无线终端装置306_1、无线终端装置306_4分别感测到对应的伺服器S_1、伺服器S_4的入口温度高于预设值时,则将由主系统302增加对应的伺服器的风扇装置的转速。另一方面,无线感测网络30的主系统302也可根据无线终端装置306_1-306_6的感测模组3064所感测到的出口温度,调整对应的伺服器的风扇装置的转速,而不限于上述实施例。In another embodiment, when the wireless terminal device 306_1 and the wireless terminal device 306_4 of the
除了上述透过无线终端装置306_1-306_6感测伺服器S_1-S_6的入口温度及出口温度以调整对应的伺服器的风扇装置的转速,本发明实施例的无线感测网络30也可透过循环风扇无线终端装置308消除资料中心DC中的热点。具体而言,由于循环风扇无线终端装置308设置于机柜装置R的底部,因此,本发明实施例的主系统302也可根据循环风扇无线终端装置308感测到的温度,以及上述无线终端装置306_1-306_6的感测模组3064所感测到的入口温度及出口温度,调整对应的循环风扇无线终端装置308的风扇装置的转速,以快速地消除资料中心DC的热点。In addition to sensing the inlet temperature and outlet temperature of the servers S_1-S_6 through the wireless terminal devices 306_1-306_6 to adjust the rotation speed of the fan device of the corresponding server, the
请参考图5,图5为本发明实施例的机柜装置R的一侧面示意图。在图5的实施例中呈现了资料中心DC中,由机柜装置R与另一机柜装置R'所形成的一通风通道VI,其中机柜装置R'包含有伺服器S_1'-S_6',以及机柜装置R中的每一伺服器S_1-S_6、S_1'-S_6'的入口温度Inlet_1-Inlet_6、Inlet_1'-Inlet_6'及出口温度Outlet_1-Outlet_6、Outlet_1'-Outlet_6'。如图4所示,本发明实施例的循环风扇无线终端装置308包含有一循环风扇通讯模组3082、一循环风扇感测模组3084及一循环风扇致动模组3086。与无线终端装置306_1-306_6相似,循环风扇无线终端装置308的循环风扇通讯模组3082用来透过一无线连结与无线协调装置304进行沟通,循环风扇感测模组3084可以是一温度感测器,用来感测资料中心DC之通风通道的一冷风进气温度Tref,并且将冷风进气温度Tref传送至主系统302。循环风扇致动模组3086耦接于循环风扇装置3088,用来根据一散热指标(Supply Heat Index,SUI)调整循环风扇装置3088的一转速,其中散热指标的可以式(1)表示:Please refer to FIG. 5 , which is a schematic side view of a rack device R according to an embodiment of the present invention. In the embodiment of FIG. 5, a ventilation channel VI formed by a rack device R and another rack device R' in the data center DC is presented, wherein the rack device R' includes servers S_1'-S_6', and cabinets Inlet_1-Inlet_6, Inlet_1'-Inlet_6' and outlet temperatures Outlet_1-Outlet_6, Outlet_1'-Outlet_6' of each server S_1-S_6, S_1'-S_6' in the device R. As shown in FIG. 4 , the circulating fan
其中,温度Tinrack为每一伺服器的入口温度的一平均值,温度Toutrack为每一伺服器发出口温度发一平均值。Wherein, the temperature Tinrack is an average value of the inlet temperature of each server, and the temperature Toutrack is an average value of the outlet temperature of each server.
散热指标是由主系统302(透过无线协调装置304)根据通风通道的冷风进气温度Tref、每一伺服器入口温度的平均值以及每一伺服器的出口温度的平均值决定,进而根据散热指标SUI决定循环风扇无线终端装置308的循环风扇装置的转速。如此一来,当散热指标SUI趋近于零时,表示每一伺服器的入口温度的平均值Tinrack大约等于冷风进气温度Tref,也就是说,几乎没有热风回流的情况;当散热指标SUI的每一伺服器的入口温度的平均值(即温度Tinrack)大于冷风进气温度Tref时,表示资料中心DC的一进气流量与伺服器的流量无法匹配,此时可能导致热风回流,而使每一伺服器的入口温度的平均值(即温度Tinrack)上升,在此情形下,主系统302决定增加循环风扇装置的转速,以快速地消除资料中心DC的热点。The heat dissipation index is determined by the main system 302 (through the wireless coordinating device 304) according to the cold air intake temperature Tref of the ventilation channel, the average value of the inlet temperature of each server, and the average value of the outlet temperature of each server, and then according to the heat dissipation The index SUI determines the rotation speed of the circulation fan unit of the circulation fan
在一实施例中,主系统302可透过一比例-积分-微分(Proportional-Integral-Derivative,PID)控制器PID_controller决定散热指标SUI以及循环风扇无线终端装置308的循环风扇装置的转速。请参考图6,图6为本发明实施例的比例-积分-微分控制器PID_controller的示意图。如图6所示,比例-积分-微分控制器PID_controller可根据冷风进气温度Tref及每一伺服器的入口温度的平均值(即温度Tinrack),以决定对应的循环风扇装置的转速。In one embodiment, the
本发明实施例的无线感测网络30的运作方式可归纳为一气体流量控制方法70,如图7所示。气体流量控制方法70的步骤包含有:The operation mode of the
步骤702:开始。Step 702: start.
步骤704:感测每一伺服器的入口温度及出口温度。Step 704: Sensing the inlet temperature and outlet temperature of each server.
步骤706:将感测到的每一伺服器的入口温度及出口温度传送至对应的无线终端装置的通讯模组。Step 706: Send the sensed inlet temperature and outlet temperature of each server to the communication module of the corresponding wireless terminal device.
步骤708:根据对应于每一伺服器的入口温度及出口温度决定对应于每一无线终端装置的风扇装置的转速信息。Step 708: Determine the rotation speed information of the fan device corresponding to each wireless terminal device according to the inlet temperature and outlet temperature corresponding to each server.
步骤710:根据转速信息,调整对应于每一无线终端装置的风扇装置的转速。Step 710: Adjust the rotation speed of the fan device corresponding to each wireless terminal device according to the rotation speed information.
步骤712:结束。Step 712: end.
关于气体流量控制方法70的运作流程,可参考上述无线感测网络30的实施例,在此不再赘述。Regarding the operation process of the gas
如此一来,本发明实施例的无线感测网络30可根据每一无线终端装置306_1-306_6所感测到的伺服器的温度,调整对应的循环风扇无线终端装置308的风扇装置的转速。此外,本发明实施例的无线感测网络30也可根据冷风进气温度Tref、每一伺服器的入口温度及出口温度调整循环风扇装置的转速,进而快速地消除资料中心DC的热点。In this way, the
在本发明的一实施例中,本发明的无线感测网络及其相关气体流量控制方法适用于伺服器可以提升冷却效率,使该伺服器适用于人工智能(Artificial Intelligence,AI)运算、边缘运算(Edge Computing),亦可当作5G伺服器、云端伺服器或车联网伺服器使用。In one embodiment of the present invention, the wireless sensing network and its related gas flow control method of the present invention are applicable to servers to improve cooling efficiency, making the servers suitable for artificial intelligence (AI) computing and edge computing (Edge Computing), and can also be used as a 5G server, cloud server or Internet of Vehicles server.
需注意的是,本领域具通常知识者可根据不同系统需求适当设计无线感测网络。举例来说,设置于伺服器的无线终端装置的数量,或者设置于无线终端装置的感测模组的数量,以及循环风扇无线终端装置的设置位置不限于高架地板的底部,皆可根据不同的需求进行调整,而不限于此,皆属本发明的范畴。It should be noted that those skilled in the art can properly design the wireless sensor network according to different system requirements. For example, the number of wireless terminal devices installed in the server, or the number of sensing modules installed in the wireless terminal device, and the installation position of the circulating fan wireless terminal device are not limited to the bottom of the raised floor, all can be based on different It is not limited thereto, and all belong to the scope of the present invention.
综上所述,本发明提供一种无线感测网络及其相关气体流量控制方法,将无线感测网络设置于资料中心,以提升资料中心的冷却效率,并同时降低冷却设备的用电量。To sum up, the present invention provides a wireless sensing network and related gas flow control method. The wireless sensing network is installed in the data center to improve the cooling efficiency of the data center and reduce the power consumption of the cooling equipment at the same time.
以上所述仅为本发明的较佳实施例,凡依本发明权利要求书所做的均等变化与修饰,皆应属本发明的涵盖范围。The above descriptions are only preferred embodiments of the present invention, and all equivalent changes and modifications made according to the claims of the present invention shall fall within the scope of the present invention.
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Citations (6)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
EP2345317A1 (en) * | 2008-11-14 | 2011-07-20 | Knürr AG | Method for cooling-air regulation in equipment cabinets and sensor arrangement |
TW201209545A (en) * | 2010-08-23 | 2012-03-01 | Hon Hai Prec Ind Co Ltd | Computer server cabinet |
CN102458084A (en) * | 2010-10-29 | 2012-05-16 | 鸿富锦精密工业(深圳)有限公司 | Data center and cooling system thereof |
TW201242500A (en) * | 2011-04-07 | 2012-10-16 | Hon Hai Prec Ind Co Ltd | Data center and heat dissipating system of the same |
TWM452599U (en) * | 2012-11-20 | 2013-05-01 | Law Chain Comp Technology Co Ltd | Precise ventilating equipment of machinery room |
TW201425731A (en) * | 2012-12-24 | 2014-07-01 | Celestica Technology Consultancy Shanghai Co Ltd | Apparatus for controlling fan module of a rack and method of the same |
-
2021
- 2021-06-05 CN CN202110627751.6A patent/CN115437411A/en active Pending
Patent Citations (6)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
EP2345317A1 (en) * | 2008-11-14 | 2011-07-20 | Knürr AG | Method for cooling-air regulation in equipment cabinets and sensor arrangement |
TW201209545A (en) * | 2010-08-23 | 2012-03-01 | Hon Hai Prec Ind Co Ltd | Computer server cabinet |
CN102458084A (en) * | 2010-10-29 | 2012-05-16 | 鸿富锦精密工业(深圳)有限公司 | Data center and cooling system thereof |
TW201242500A (en) * | 2011-04-07 | 2012-10-16 | Hon Hai Prec Ind Co Ltd | Data center and heat dissipating system of the same |
TWM452599U (en) * | 2012-11-20 | 2013-05-01 | Law Chain Comp Technology Co Ltd | Precise ventilating equipment of machinery room |
TW201425731A (en) * | 2012-12-24 | 2014-07-01 | Celestica Technology Consultancy Shanghai Co Ltd | Apparatus for controlling fan module of a rack and method of the same |
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