TWM513991U - Refrigerant type heat dissipation device - Google Patents

Refrigerant type heat dissipation device Download PDF

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Publication number
TWM513991U
TWM513991U TW104207847U TW104207847U TWM513991U TW M513991 U TWM513991 U TW M513991U TW 104207847 U TW104207847 U TW 104207847U TW 104207847 U TW104207847 U TW 104207847U TW M513991 U TWM513991 U TW M513991U
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Taiwan
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refrigerant
evaporator
heat dissipating
heat
condenser
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TW104207847U
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Chinese (zh)
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Zheng-Qian Wan
zheng-feng Wan
Hao-Hui Lin
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Man Zai Ind Co Ltd
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Priority to TW104207847U priority Critical patent/TWM513991U/en
Publication of TWM513991U publication Critical patent/TWM513991U/en

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Description

冷媒式散熱裝置Refrigerant heat sink

本創作係關於一種散熱裝置,尤指一種冷媒式散熱裝置。This creation relates to a heat sink, especially a refrigerant heat sink.

為避免電子裝置等物品因工作時產生高溫而不正常運作或損壞,在電子裝置之主要發熱源處皆會裝設散熱裝置,藉以利用散熱裝置快速將發熱源產生的熱予以散發,達到冷卻降溫之目的。In order to prevent the electronic device and other items from being abnormally operated or damaged due to the high temperature during operation, a heat dissipating device is installed at the main heat source of the electronic device, so that the heat generated by the heat source can be quickly dissipated by the heat dissipating device to cool down and cool down. The purpose.

目前應用於電子裝置中提供散熱功用的冷媒式散熱裝置組成構造,其主要係於一蒸發器與一冷凝器之間以複數冷媒管串接組成一密閉的冷媒循環迴路,並藉由充填於該密閉的冷媒循環迴路的冷媒於蒸發器中吸熱,位於蒸發器中之冷媒吸熱轉化為氣態,氣態的冷媒通過冷媒管快速流向冷凝器,通過冷凝器散熱後,使冷媒降溫而轉化為液態,液態的冷媒再回流至蒸發器中重新再吸熱,藉由冷媒的液氣相變及循環流動的散熱機制為電子裝置之發熱源提供冷卻功能。At present, it is applied to a refrigerant heat dissipating device structure for providing a heat dissipating function in an electronic device, which is mainly composed of a plurality of refrigerant tubes connected in series between an evaporator and a condenser to form a closed refrigerant circulation loop, and is filled in the refrigerant circuit. The refrigerant in the closed refrigerant circulation circuit absorbs heat in the evaporator, and the refrigerant in the evaporator absorbs heat into a gaseous state, and the gaseous refrigerant rapidly flows to the condenser through the refrigerant tube, and after the heat is dissipated through the condenser, the refrigerant is cooled and converted into a liquid state, a liquid state. The refrigerant is then returned to the evaporator to re-absorb, and the cooling function of the heat source of the electronic device is provided by the liquid-gas phase change of the refrigerant and the heat dissipation mechanism of the circulating flow.

前揭冷媒式散熱裝置中,其主要係利用複數冷媒管連接於蒸發器與冷凝器之間提供冷媒循環流動的路徑。現有冷媒式散熱裝置還進一步利用蒸發器連接二冷媒管之位置呈一上一下之設置方式,以期藉由氣態冷媒上升、液態冷媒下降之原理,利用在上的冷媒管導引氣態冷媒自蒸發器流向冷凝器,以及利用在下的冷媒管導引液態冷媒自冷凝器回流至蒸發器。In the previously disclosed refrigerant heat dissipating device, the main refrigerant system is connected between the evaporator and the condenser by a plurality of refrigerant tubes to provide a circulating flow path of the refrigerant. The existing refrigerant heat dissipating device further utilizes the position where the evaporator is connected to the two refrigerant tubes in a one-up manner, in order to guide the gaseous refrigerant self-evaporator by the refrigerant tube on the principle of rising gaseous refrigerant and liquid refrigerant. The flow to the condenser and the use of a lower refrigerant tube to direct the liquid refrigerant back from the condenser to the evaporator.

惟現有冷媒式散熱裝置中,連接於蒸發器上下兩側之冷媒管係採取相同口徑的管件,當蒸發器中吸熱後的氣態冷媒因氣體壓力大,氣態冷媒仍會分別朝上下側二冷媒管方向流動,難以控制冷媒依循一定方向循環流動。再者,現有的冷媒式散熱裝置使用的過程中,蒸發器中吸熱轉化為氣態的冷 媒,通過位置在上的冷媒管流向冷凝器後,冷媒必須自冷凝器中一側的冷凝基管通過散熱導管散熱後流向另一側冷凝基管,再通過另一位置在下的冷媒管回流至蒸發器,其冷媒循環路徑一定且距離長,以致氣態冷媒自蒸發器通過位置在上的冷媒管流向冷凝器後,部分氣態冷媒因先冷凝相變為液態冷媒,該些液態冷媒難以立即回流至蒸發器中重新吸熱,而須依循冷媒循環路徑回流至蒸發器,造成冷媒式散熱裝置之散熱效能難以提昇。However, in the existing refrigerant heat dissipating device, the refrigerant pipes connected to the upper and lower sides of the evaporator adopt the pipe fittings of the same diameter. When the gas refrigerant in the evaporator absorbs heat, the gaseous refrigerant will still face the upper and lower sides of the two refrigerant tubes respectively due to the gas pressure. Flowing in the direction, it is difficult to control the refrigerant to circulate in a certain direction. Furthermore, in the process of using the existing refrigerant heat sink, the heat absorption in the evaporator is converted into a gaseous cold. After passing through the refrigerant pipe at the upper position to the condenser, the refrigerant must be radiated from the condensing base pipe on one side of the condenser to the other side of the condensing base pipe through the heat dissipation pipe, and then returned to the lower refrigerant pipe through another position. In the evaporator, the refrigerant circulation path is constant and the distance is long, so that after the gaseous refrigerant flows from the evaporator to the condenser through the position of the upper refrigerant tube, part of the gaseous refrigerant changes to the liquid refrigerant due to the first condensation phase, and the liquid refrigerant is difficult to immediately return to the liquid refrigerant. The evaporator re-absorbs heat and has to follow the refrigerant circulation path to return to the evaporator, which makes it difficult to improve the heat dissipation performance of the refrigerant heat sink.

本創作之主要目的在於提供一種冷媒式散熱裝置,解決現有冷媒式散熱裝置難以控制控制冷媒朝向一定方向循環流動以及散熱效能不佳等問題。The main purpose of the present invention is to provide a refrigerant heat dissipating device, which solves the problems that the conventional refrigerant heat dissipating device is difficult to control and control the circulating flow of the refrigerant in a certain direction and the heat dissipating performance is not good.

為了達成前揭目的,本創作所提出之冷媒式散熱裝置係包含:一蒸發器,其包含一內有蒸發室的蒸發器本體,蒸發器本體底部具有一導熱底板,蒸發器本體頂部具有一氣態冷媒出口,蒸發器本體於低於氣態冷媒出口之水平方向的相異兩側側壁分別形成一液態冷媒入口,氣態冷媒出口與液態冷媒入口分別連通蒸發室,且液態冷媒入口的開口面積小於氣態冷媒出口的開口面積;一冷凝器,其具有二冷凝基管、複數散熱導管以及複數散熱件,該二冷凝基管水平方向間隔排列設置,該複數散熱導管上下排列地連接於該二冷凝基管之間,所述複數散熱件係分布排列且導熱性接觸該複數散熱導管之外表面;一第一冷媒管,其兩端分別連接蒸發器的氣態冷媒出口與冷凝器一側的冷凝基管上段;二第二冷媒管,該二第二冷媒管之口徑小於第一冷媒管的口徑,該二第二冷媒管分別以其一端連接該蒸發器相異兩側側壁的液態冷媒入口,該二第二冷 媒管之另一端則分別連接該冷凝器兩側之冷凝基管下段,使蒸發器、冷凝器結合第一冷媒管與第二冷媒管構成一多流向的密閉冷媒循環迴路;以及冷媒,係裝填於該密閉的冷媒循環迴路中。In order to achieve the foregoing object, the refrigerant heat dissipating device proposed by the present invention comprises: an evaporator comprising an evaporator body having an evaporation chamber, a bottom of the evaporator body having a heat conducting bottom plate, and a top portion of the evaporator body having a gas state At the outlet of the refrigerant, the evaporator body forms a liquid refrigerant inlet on the opposite side walls of the horizontal direction of the outlet of the gaseous refrigerant, and the gaseous refrigerant outlet and the liquid refrigerant inlet respectively communicate with the evaporation chamber, and the opening area of the liquid refrigerant inlet is smaller than the gaseous refrigerant. An opening area of the outlet; a condenser having a second condensing base pipe, a plurality of heat dissipating ducts, and a plurality of heat dissipating members, wherein the two condensing base tubes are arranged horizontally at intervals, and the plurality of heat dissipating ducts are connected to the two condensing base tubes in an up-and-down manner The plurality of heat dissipating members are arranged and thermally conductively contact the outer surface of the plurality of heat dissipating ducts; a first refrigerant tube having two ends connected to the gaseous refrigerant outlet of the evaporator and the upper portion of the condensing base tube on the condenser side; a second refrigerant tube, wherein the diameter of the second refrigerant tube is smaller than the diameter of the first refrigerant tube, the second Refrigerant pipes are connected at one end thereof a liquid refrigerant inlet of the evaporator distinct lateral walls, the two second cold The other end of the medium pipe is respectively connected to the lower part of the condensing base pipe on both sides of the condenser, so that the evaporator and the condenser are combined with the first refrigerant pipe and the second refrigerant pipe to form a multi-flow closed refrigerant circulation circuit; and the refrigerant is charged. In the closed refrigerant circulation loop.

藉由前揭冷媒式散熱裝置創作,其主要係利用連接蒸發器之第一冷媒管與第二冷媒管為口徑大小不等,且令位置在上的第一冷媒管口徑大於位置在下的第二冷媒管口徑,藉由熱氣自然上升,以及流體朝向口徑大、壓力小的方向流動之白努利定理,使氣態冷媒能自蒸發器快速通過位置在上第一冷媒管流向冷凝器散熱。另一方面,本創作利用二第二冷媒管分別自蒸發器相異兩側側壁連接至冷凝器兩側之冷凝基管下段,形成一多流向的密閉冷媒循環迴路之構造,藉以在氣態冷媒自蒸發器通過位置在上的第一冷媒管流至冷凝器一側的冷凝基管時,部分冷凝相變為液態冷媒能沿著冷凝基管下降,並通過一位置在下的第二冷媒管先行回流至蒸發器之蒸發室中,回補冷媒再重新吸熱。進入冷凝基管中之其餘氣態冷媒則分散通過該複數散熱導管流向冷凝器另一側冷凝基管中而冷凝為液態冷媒,液態的冷媒再沿另一位置在下的第二冷媒管回流至蒸發器中重新再吸熱,藉此多流向的冷媒相變循環流動方式以及液、氣態冷媒確實分流之機制,使該冷媒式散熱裝置達到高效能的散熱效果。By creating a refrigerant heat sink, the first refrigerant tube and the second refrigerant tube connected to the evaporator are sized differently, and the first refrigerant tube having a position above is larger than the second position. The diameter of the refrigerant pipe, by the natural rise of the hot gas, and the white Nuo's theorem of the fluid flowing toward the large diameter and the small pressure, enables the gaseous refrigerant to quickly dissipate from the evaporator to the upper first refrigerant pipe to the condenser. On the other hand, the present invention utilizes two second refrigerant tubes respectively connected from the opposite side walls of the evaporator to the lower portion of the condensing base pipe on both sides of the condenser to form a structure of a multi-flow closed refrigerant circulation loop, whereby the gaseous refrigerant is self-contained. When the evaporator passes through the first refrigerant pipe located at the upper portion to the condensing base pipe on the condenser side, the partial condensed phase becomes liquid refrigerant and can be lowered along the condensing base pipe, and is recirculated through a second refrigerant pipe located below. In the evaporation chamber of the evaporator, the refrigerant is replenished and then reabsorbed. The remaining gaseous refrigerant entering the condensing base pipe is dispersed through the plurality of heat-dissipating conduits to the condensing base pipe on the other side of the condenser to be condensed into a liquid refrigerant, and the liquid refrigerant is returned to the evaporator along the second refrigerant pipe at another position. Re-heating in the middle, the multi-flow refrigerant phase change circulation flow mode and the liquid and gas refrigerants are actually shunted, so that the refrigerant heat sink achieves high-efficiency heat dissipation effect.

1‧‧‧蒸發器1‧‧‧Evaporator

10‧‧‧蒸發器本體10‧‧‧Evaporator body

100‧‧‧蒸發室100‧‧‧Evaporation chamber

11‧‧‧導熱底板11‧‧‧ Thermal base plate

12‧‧‧氣態冷媒出口12‧‧‧Gaseous refrigerant exports

13‧‧‧液態冷媒入口13‧‧‧Liquid refrigerant inlet

14‧‧‧液態冷媒入口14‧‧‧Liquid refrigerant inlet

2‧‧‧冷凝器2‧‧‧Condenser

20A、20B‧‧‧冷凝基管20A, 20B‧‧‧Condensing base pipe

21‧‧‧散熱導管21‧‧‧heat pipe

22‧‧‧散熱件22‧‧‧ Heat sink

3‧‧‧第一冷媒管3‧‧‧First refrigerant tube

4A、4B‧‧‧第二冷媒管4A, 4B‧‧‧second refrigerant tube

5‧‧‧冷媒5‧‧‧Refrigerant

6‧‧‧發熱源6‧‧‧heat source

圖1係本創作冷媒式散熱裝置之一較佳實施例之立體示意圖。1 is a perspective view of a preferred embodiment of the present invention.

圖2係圖1所示冷媒式散熱裝置較佳實施例中之蒸發器設置於發熱源上的局部剖面示意圖。2 is a partial cross-sectional view showing the evaporator of the preferred embodiment of the refrigerant heat dissipating device of FIG. 1 disposed on a heat source.

圖3係圖1所示冷媒式散熱裝置較佳實施例之使用狀態參考圖。Fig. 3 is a view showing the state of use of the preferred embodiment of the refrigerant heat dissipating device shown in Fig. 1.

如圖1及圖2所示,係揭示本創作冷媒式散熱裝置之一較佳實施例,所述冷媒式散熱裝置係包含一蒸發器1、一冷凝器2、一第一冷媒管3、二第二冷媒管4A、4B以及適量的冷媒5。惟所述蒸發器1不以一個為限,蒸發器1的數量依據所需的散熱能力而增加,所述第一冷媒管3與第二冷媒管4A、4B的數量則依據蒸發器1的數量而改變,且所述第一冷媒管3與第二冷媒管4A、4B連接於所述蒸發器1與冷凝器2之間,構成一多流向的密閉冷媒循環迴路,所述冷媒能於該密閉冷媒循環迴路中流動。As shown in FIG. 1 and FIG. 2, a preferred embodiment of the present invention is disclosed. The refrigerant heat dissipating device comprises an evaporator 1, a condenser 2, a first refrigerant tube 3, and a second. The second refrigerant tubes 4A and 4B and an appropriate amount of the refrigerant 5 are provided. However, the evaporator 1 is not limited to one, and the number of the evaporators 1 is increased according to the required heat dissipation capability, and the number of the first refrigerant tubes 3 and the second refrigerant tubes 4A, 4B depends on the number of the evaporators 1. And the first refrigerant pipe 3 and the second refrigerant pipe 4A, 4B are connected between the evaporator 1 and the condenser 2 to form a multi-flow closed refrigerant circulation circuit, and the refrigerant can be sealed. Flow in the refrigerant circulation loop.

如圖1及圖2所示,所述蒸發器1包含一蒸發器本體10,該蒸發器本體10係為導熱性材料所製成的部件,所述蒸發器本體10內部具有一蒸發室100,蒸發器本體10底部具有一導熱底板11,蒸發器本體10頂部具有一氣態冷媒出口12,蒸發器本體10於低於氣態冷媒出口12之水平方向的相異兩側側壁分別形成一液態冷媒入口13、14,氣態冷媒出口12與液態冷媒入口13、14分別連通蒸發室100,所述液態冷媒入口13、14的開口面積小於氣態冷媒出口12的開口面積。As shown in FIG. 1 and FIG. 2, the evaporator 1 includes an evaporator body 10, which is a component made of a heat conductive material, and the evaporator body 10 has an evaporation chamber 100 therein. The bottom of the evaporator body 10 has a heat-conducting bottom plate 11, and the top of the evaporator body 10 has a gaseous refrigerant outlet 12, and the evaporator body 10 forms a liquid refrigerant inlet 13 respectively on the opposite side walls of the horizontal direction of the gaseous refrigerant outlet 12. 14. The gaseous refrigerant outlet 12 and the liquid refrigerant inlets 13, 14 respectively communicate with the evaporation chamber 100. The opening areas of the liquid refrigerant inlets 13, 14 are smaller than the opening area of the gaseous refrigerant outlet 12.

如圖1所示,所述冷凝器2具有二冷凝基管20A、20B、複數散熱導管21以及複數散熱件22,所述冷凝基管20A、20B內部各具有一密閉的腔室,該二冷凝基管20A、20B係水平方向間隔排列設置。所述散熱導管21分別為具有導熱性的管體,該複數散熱導管21係上下平行排列地連接於該二冷凝基管20A、20B之間,所述複數散熱件22係分布排列且導熱性接觸該複數散熱導管21之外表面,所述散熱件22可為波浪狀片體或其他具有較大散熱表面之部件。As shown in FIG. 1, the condenser 2 has two condensing base pipes 20A, 20B, a plurality of heat dissipating ducts 21, and a plurality of heat dissipating members 22, each of which has a closed chamber inside, and the two condensing chambers The base pipes 20A and 20B are arranged side by side in the horizontal direction. The heat dissipating ducts 21 are respectively thermally conductive tubes, and the plurality of heat dissipating ducts 21 are connected in parallel between the two condensing base tubes 20A and 20B. The plurality of heat dissipating members 22 are distributed and thermally conductively contacted. The heat radiating member 22 may be a corrugated sheet or other member having a large heat dissipating surface.

如圖1及圖2所示,所述第一冷媒管3之口徑大於第二冷媒管4A、4B的口徑,其中,口徑較大的第一冷媒管3兩端分別連接蒸發器1的氣態冷媒出口12與冷凝器2一側的冷凝基管20A上段,口徑較小的該二第二冷媒管4A、4B分別以其一端連接該蒸發器1相異兩側側壁的液態冷媒入口13、14,該 二第二冷媒管4A、4B之另一端則分別連接該冷凝器2兩側之冷凝基管20A、20B下段,藉此,使蒸發器1、冷凝器2結合第一冷媒管3與第二冷媒管4A、4B構成一多流向的密閉冷媒循環迴路,所述冷媒5係裝填於該密閉的冷媒循環迴路中。As shown in FIG. 1 and FIG. 2, the diameter of the first refrigerant pipe 3 is larger than the diameter of the second refrigerant pipes 4A, 4B, wherein the two ends of the first refrigerant pipe 3 having a larger diameter are respectively connected to the gaseous refrigerant of the evaporator 1. The upper portion of the condensing base pipe 20A on the side of the outlet 12 and the condenser 2, and the second refrigerant tubes 4A, 4B having a smaller diameter are connected to the liquid refrigerant inlets 13, 14 of the opposite side walls of the evaporator 1 at one end thereof, respectively. The The other ends of the second refrigerant tubes 4A, 4B are respectively connected to the lower portions of the condensing base tubes 20A, 20B on both sides of the condenser 2, whereby the evaporator 1 and the condenser 2 are combined with the first refrigerant tube 3 and the second refrigerant. The tubes 4A and 4B constitute a multi-flow sealed refrigerant circulation circuit, and the refrigerant 5 is loaded in the sealed refrigerant circulation circuit.

如圖2及圖3所示,該冷媒式散熱裝置於使用時,以應用於電子裝置的提供冷卻降溫功能為例,該冷媒式散熱裝置係以蒸發器1之蒸發器本體10底部之導熱底板11導熱性接觸電子裝置之發熱源6,發熱源6產生的熱通過蒸發器本體10之導熱底板11熱傳導至蒸發室100中的冷媒5,蒸發室100內之冷媒5因吸熱而由液態轉化為氣態。藉由熱氣自然上升之原理,以及流體通過之開口面積大小與流體通過的流速成反比、流體的流速與壓力成反比之白努利定理,基於蒸發器本體10相異兩側之液態冷媒出口13、14的開口面積小於蒸發器本體10頂部氣態冷媒出口12的開口面積,故而蒸發室100中之氣態冷媒會集中朝向頂部壓力較小的氣態冷媒出口12方向流動。As shown in FIG. 2 and FIG. 3 , the refrigerant heat dissipating device is used as an example for providing a cooling and cooling function for an electronic device, and the refrigerant heat dissipating device is a heat conducting bottom plate at the bottom of the evaporator body 10 of the evaporator 1 . 11 The heat source 6 of the thermal contact electronic device, the heat generated by the heat source 6 is thermally conducted to the refrigerant 5 in the evaporation chamber 100 through the heat conducting substrate 11 of the evaporator body 10, and the refrigerant 5 in the evaporation chamber 100 is converted into a liquid state due to heat absorption. Gaseous. Based on the principle that the hot air naturally rises, and the size of the opening area through which the fluid passes is inversely proportional to the flow rate through which the fluid passes, and the flow velocity of the fluid is inversely proportional to the pressure, the white refrigerant theorem is based on the liquid refrigerant outlets on opposite sides of the evaporator body 10. The opening area of the opening 14 is smaller than the opening area of the gaseous refrigerant outlet 12 at the top of the evaporator body 10. Therefore, the gaseous refrigerant in the evaporation chamber 100 concentrates toward the gaseous refrigerant outlet 12 having a small top pressure.

如圖2及圖3所示,當氣態冷媒通過蒸發器1頂部的氣態冷媒出口12後,接續通過第一冷媒管3進入冷凝器2一側的冷凝基管20A,進入冷凝基管20A中之氣態冷媒之部分因遠離熱源而降溫冷凝為液態冷媒,此部分的液態冷媒會先沿著冷凝基管20A下降,並通過第二冷媒管4A先行回流至蒸發器1之蒸發室100中回補冷媒再重新吸熱。進入冷凝基管20A中之其餘氣態冷媒係分散通過該複數散熱導管21流向冷凝器2另一側的冷凝基管20B中。於此流動過程中,藉由熱傳導至接觸該複數散熱導管21的複數散熱件22,以及利用該複數散熱件22擴大散熱表面積而快速散熱,使通過該複數散熱導管21內的氣態冷媒降溫而冷凝為液態,液態冷媒進入冷凝器2另一側的冷凝基管20B中,液態的冷媒再沿第二冷媒管4B回流至蒸發器1的蒸發室10中重新再吸熱,藉此多流向的冷媒相變循環流動方式,使該冷媒式散熱裝置達到高效能的散熱效果。As shown in FIG. 2 and FIG. 3, when the gaseous refrigerant passes through the gaseous refrigerant outlet 12 at the top of the evaporator 1, it passes through the first refrigerant pipe 3 and enters the condensing base pipe 20A on the condenser 2 side, and enters the condensing base pipe 20A. The part of the gaseous refrigerant is cooled and condensed into a liquid refrigerant because it is away from the heat source. The liquid refrigerant in this part is firstly lowered along the condensing base pipe 20A, and is first returned to the evaporation chamber 100 of the evaporator 1 through the second refrigerant pipe 4A to replenish the refrigerant. Re-absorb heat. The remaining gaseous refrigerant entering the condensing base pipe 20A is dispersed through the plurality of heat radiating conduits 21 to the condensing base pipe 20B on the other side of the condenser 2. During the flow, heat is transferred to the plurality of heat dissipating members 22 contacting the plurality of heat dissipating conduits 21, and the heat dissipating surface area is expanded by the plurality of heat dissipating members 22 to rapidly dissipate heat, thereby condensing the gaseous refrigerant in the plurality of heat dissipating ducts 21 to cool down. In the liquid state, the liquid refrigerant enters the condensing base pipe 20B on the other side of the condenser 2, and the liquid refrigerant is returned to the evaporation chamber 10 of the evaporator 1 along the second refrigerant pipe 4B to re-absorb heat, thereby multi-flowing refrigerant phase. The variable circulation flow mode enables the refrigerant heat sink to achieve a high-efficiency heat dissipation effect.

1‧‧‧蒸發器1‧‧‧Evaporator

10‧‧‧蒸發器本體10‧‧‧Evaporator body

11‧‧‧導熱底板11‧‧‧ Thermal base plate

12‧‧‧氣態冷媒出口12‧‧‧Gaseous refrigerant exports

14‧‧‧液態冷媒入口14‧‧‧Liquid refrigerant inlet

2‧‧‧冷凝器2‧‧‧Condenser

20A、20B‧‧‧冷凝基管20A, 20B‧‧‧Condensing base pipe

21‧‧‧散熱導管21‧‧‧heat pipe

22‧‧‧散熱件22‧‧‧ Heat sink

3‧‧‧第一冷媒管3‧‧‧First refrigerant tube

4A、4B‧‧‧第二冷媒管4A, 4B‧‧‧second refrigerant tube

Claims (2)

一種冷媒式散熱裝置,係包含:一蒸發器,其包含一內有蒸發室的蒸發器本體,蒸發器本體底部具有一導熱底板,蒸發器本體頂部具有一氣態冷媒出口,蒸發器本體於低於氣態冷媒出口之水平方向的相異兩側側壁分別形成一液態冷媒入口,氣態冷媒出口與液態冷媒入口分別連通蒸發室,且液態冷媒入口的開口面積小於氣態冷媒出口的開口面積;一冷凝器,其具有二冷凝基管、複數散熱導管以及複數散熱件,該二冷凝基管水平方向間隔排列設置,該複數散熱導管上下排列地連接於該二冷凝基管之間,所述複數散熱件係分布排列且導熱性接觸該複數散熱導管之外表面;一第一冷媒管,其兩端分別連接蒸發器的氣態冷媒出口與冷凝器一側的冷凝基管上段;二第二冷媒管,該二第二冷媒管之口徑小於第一冷媒管的口徑,該二第二冷媒管分別以其一端連接該蒸發器相異兩側側壁的液態冷媒入口,該二第二冷媒管之另一端則分別連接該冷凝器兩側之冷凝基管下段,使蒸發器、冷凝器結合第一冷媒管與第二冷媒管構成一多流向的密閉冷媒循環迴路;以及冷媒,係裝填於該密閉的冷媒循環迴路中。 A refrigerant heat dissipating device comprises: an evaporator comprising an evaporator body having an evaporation chamber, a bottom of the evaporator body having a heat conducting bottom plate, a top of the evaporator body having a gaseous refrigerant outlet, and the evaporator body being lower than The opposite side walls of the horizontal direction of the gaseous refrigerant outlet respectively form a liquid refrigerant inlet, the gaseous refrigerant outlet and the liquid refrigerant inlet respectively communicate with the evaporation chamber, and the opening area of the liquid refrigerant inlet is smaller than the opening area of the gaseous refrigerant outlet; a condenser, The utility model has a condensing base pipe, a plurality of heat dissipating ducts and a plurality of heat dissipating members, wherein the two condensing base pipes are arranged at intervals in a horizontal direction, and the plurality of heat dissipating ducts are connected up and down between the two condensing base pipes, and the plurality of heat dissipating components are distributed Aligning and thermally contacting the outer surface of the plurality of heat dissipating conduits; a first refrigerant tube having two ends connected to the gaseous refrigerant outlet of the evaporator and the upper portion of the condensing base tube on the condenser side; and the second refrigerant tube, the second The diameter of the second refrigerant pipe is smaller than the diameter of the first refrigerant pipe, and the two second refrigerant pipes are respectively connected by one end thereof. The liquid refrigerant inlets on the side walls of the two sides of the generator are opposite to each other, and the other ends of the two second refrigerant tubes are respectively connected to the lower part of the condensing base tube on both sides of the condenser, so that the evaporator and the condenser are combined with the first refrigerant tube and the second refrigerant. The tube constitutes a multi-flow closed refrigerant circulation circuit; and the refrigerant is charged in the sealed refrigerant circulation circuit. 如請求項1所述之冷媒式散熱裝置,其中,所述散熱件為波浪狀片體。 The refrigerant heat sink of claim 1, wherein the heat sink is a corrugated sheet.
TW104207847U 2015-05-21 2015-05-21 Refrigerant type heat dissipation device TWM513991U (en)

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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
TWI631308B (en) * 2017-09-14 2018-08-01 萬在工業股份有限公司 Parallel condenser and heat sink
TWI650522B (en) * 2015-05-21 2019-02-11 萬在工業股份有限公司 Refrigerant heat sink

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
TWI650522B (en) * 2015-05-21 2019-02-11 萬在工業股份有限公司 Refrigerant heat sink
TWI631308B (en) * 2017-09-14 2018-08-01 萬在工業股份有限公司 Parallel condenser and heat sink

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