CN116608713A - A Bionic Parallel Flow Heat Exchanger - Google Patents

A Bionic Parallel Flow Heat Exchanger Download PDF

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Publication number
CN116608713A
CN116608713A CN202310639674.5A CN202310639674A CN116608713A CN 116608713 A CN116608713 A CN 116608713A CN 202310639674 A CN202310639674 A CN 202310639674A CN 116608713 A CN116608713 A CN 116608713A
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heat exchange
flow heat
pipe
parallel flow
liquid
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CN116608713B (en
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孙启昱
周忠义
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Tai'an Jinshuilong Metal Container Co ltd
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Tai'an Jinshuilong Metal Container Co ltd
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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F28HEAT EXCHANGE IN GENERAL
    • F28DHEAT-EXCHANGE APPARATUS, NOT PROVIDED FOR IN ANOTHER SUBCLASS, IN WHICH THE HEAT-EXCHANGE MEDIA DO NOT COME INTO DIRECT CONTACT
    • F28D7/00Heat-exchange apparatus having stationary tubular conduit assemblies for both heat-exchange media, the media being in contact with different sides of a conduit wall
    • F28D7/16Heat-exchange apparatus having stationary tubular conduit assemblies for both heat-exchange media, the media being in contact with different sides of a conduit wall the conduits being arranged in parallel spaced relation
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F28HEAT EXCHANGE IN GENERAL
    • F28FDETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
    • F28F21/00Constructions of heat-exchange apparatus characterised by the selection of particular materials
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F28HEAT EXCHANGE IN GENERAL
    • F28FDETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
    • F28F27/00Control arrangements or safety devices specially adapted for heat-exchange or heat-transfer apparatus
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F28HEAT EXCHANGE IN GENERAL
    • F28FDETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
    • F28F9/00Casings; Header boxes; Auxiliary supports for elements; Auxiliary members within casings
    • F28F9/005Other auxiliary members within casings, e.g. internal filling means or sealing means
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F28HEAT EXCHANGE IN GENERAL
    • F28FDETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
    • F28F9/00Casings; Header boxes; Auxiliary supports for elements; Auxiliary members within casings
    • F28F9/007Auxiliary supports for elements

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  • Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Thermal Sciences (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)

Abstract

本发明提供一种仿生式平行流换热器,包括第一固定框架,第一固定框架的顶端固定连接有流动换热机构,流动换热机构的一侧设置有散热机构,流动换热机构的另一侧设置有降温机构,流动换热机构的顶端设置有平行流换热机构,流动换热机构包括与第一固定框架的顶端两侧固定连接的支撑架,两个支撑架的顶端固定连接有储液流体筒,通过输送泵的输送将储液流体筒内部的冷却液输送到散热机构和降温机构进行换热降温需求,通过输送泵顶部连接的第一流体管的设置从而便于对储液流体筒内部的液体进行输送到平行流换热机构内部,进行降温换热处理。

The invention provides a bionic parallel flow heat exchanger, which comprises a first fixed frame, a flow heat exchange mechanism is fixedly connected to the top of the first fixed frame, a heat dissipation mechanism is arranged on one side of the flow heat exchange mechanism, and the flow heat exchange mechanism The other side is provided with a cooling mechanism, and the top of the flow heat exchange mechanism is provided with a parallel flow heat exchange mechanism. The flow heat exchange mechanism includes support frames fixedly connected to both sides of the top of the first fixed frame, and the top ends of the two support frames are fixedly connected to each other. There is a liquid storage fluid cylinder, and the coolant inside the liquid storage fluid cylinder is delivered to the heat dissipation mechanism and cooling mechanism through the delivery pump to meet the heat exchange and cooling requirements. The first fluid pipe connected to the top of the delivery pump is set to facilitate the liquid storage The liquid inside the fluid cylinder is transported to the inside of the parallel flow heat exchange mechanism for cooling and heat exchange treatment.

Description

一种仿生式平行流换热器A Bionic Parallel Flow Heat Exchanger

技术领域technical field

本发明属于平行流换热器技术领域,具体涉及一种仿生式平行流换热器。The invention belongs to the technical field of parallel flow heat exchangers, in particular to a bionic parallel flow heat exchanger.

背景技术Background technique

平行流换热器(简称PFC)是一种新型的换热器,由美国摩丁(modine)公司最早提出并申请专利,是用来替代原来在汽车空调的管片式冷凝器,后来经过日本昭和铝等公司在两端集管中增加隔板形成不同回路而称之为多元流换热器(简称MFC,Multi-FlowCondenser),主要由多孔扁管和波纹型百叶窗。Parallel flow heat exchanger (PFC for short) is a new type of heat exchanger, which was first proposed and patented by Modine Company in the United States. It is used to replace the original tube-fin condenser in automobile air conditioners. Companies such as Showa Aluminum add partitions to the headers at both ends to form different circuits and call it a multi-flow heat exchanger (MFC, Multi-Flow Condenser for short), which is mainly composed of porous flat tubes and corrugated louvers.

其中申请号为“CN201910925748.5”所公开的“一种联排扁管的水冷式平行流换热器”也是日益成熟的技术,其“主要为了解决现有的平行流换热器换热效率低的问题;该联排扁管的水冷式平行流换热器,包括第一换热器,所述第一换热器包括第一集流管和第二集流管;所述第一集流管一端设置有空气进口,第一集流管内设有与扁管连通的第二风孔,第二集流管内设有与扁管连通的第四风孔,第一集流管内还设有第一隔板;所述第二集流管远离空气进口一端设有第一空气出口,扁管上设有冷却管和扰流组件,所述第一换热器下方还设有第二换热器和第三换热器,第一换热器和第二换热器之间、第二换热器和第三换热器之间通过垫板和组合件固定,提高了热交换效率”,但是该种平行流换热器在实际使用过程中,还存在以下缺陷:Among them, the "water-cooled parallel flow heat exchanger with row flat tubes" disclosed by the application number "CN201910925748.5" is also an increasingly mature technology. Low problem; the water-cooled parallel flow heat exchanger of the row flat tubes includes a first heat exchanger, and the first heat exchanger includes a first header and a second header; the first collector One end of the flow pipe is provided with an air inlet, the first collecting pipe is provided with a second air hole connected with the flat pipe, the second collecting pipe is provided with a fourth air hole connected with the flat pipe, and the first collecting pipe is also provided with The first partition; the end of the second header away from the air inlet is provided with a first air outlet, the flat tube is provided with a cooling pipe and a spoiler assembly, and a second heat exchanger is provided below the first heat exchanger heat exchanger and the third heat exchanger, between the first heat exchanger and the second heat exchanger, and between the second heat exchanger and the third heat exchanger are fixed by backing plates and assemblies, which improves the heat exchange efficiency", However, in the actual use of this kind of parallel flow heat exchanger, there are still the following defects:

在现有的技术中,平行流换热器通过集流管、扁管和翅片之间配合进行换热,该种传统的换热方式效果较差,无法对设备热量进行去除,使得设备的运行受到影响。In the existing technology, the parallel flow heat exchanger performs heat exchange through the cooperation between the header, flat tubes and fins. This traditional heat exchange method is ineffective and cannot remove the heat of the equipment, making the equipment Operation is affected.

发明内容Contents of the invention

本发明的目的在于提供一种仿生式平行流换热器,旨在解决上述背景技术中的问题。The purpose of the present invention is to provide a bionic parallel flow heat exchanger, aiming to solve the above-mentioned problems in the background technology.

为实现上述目的,本发明提供如下技术方案:一种仿生式平行流换热器,包括第一固定框架,所述第一固定框架的顶端固定连接有流动换热机构,所述流动换热机构的一侧设置有散热机构,所述流动换热机构的另一侧设置有降温机构,所述流动换热机构的顶端设置有平行流换热机构;In order to achieve the above object, the present invention provides the following technical solutions: a bionic parallel flow heat exchanger, comprising a first fixed frame, the top end of the first fixed frame is fixedly connected with a flow heat exchange mechanism, and the flow heat exchange mechanism One side of the flow heat exchange mechanism is provided with a cooling mechanism, the other side of the flow heat exchange mechanism is provided with a cooling mechanism, and the top of the flow heat exchange mechanism is provided with a parallel flow heat exchange mechanism;

所述散热机构包括若干片折热片,所述折热片之间设置有传热管,所述传热管的一侧连接设有温度感应器;The heat dissipation mechanism includes a plurality of heat-dissipating fins, heat transfer tubes are arranged between the heat-dissipating fins, and a temperature sensor is connected to one side of the heat transfer pipe;

所述平行流换热机构包括平行流换热管,所述平行流换热管壁体上贯穿开设有若干通气管,所述通气管靠近所述平行流换热管内腔的一端连接设有膨胀囊;The parallel-flow heat exchange mechanism includes parallel-flow heat-exchange tubes, and a plurality of ventilation tubes are opened through the walls of the parallel-flow heat-exchange tubes. bag;

所述平行流换热机构还包括流量监测仪。The parallel flow heat exchange mechanism also includes a flow monitor.

优选的,所述流动换热机构包括与第一固定框架的顶端两侧固定连接的支撑架,两个所述支撑架的顶端固定连接有储液流体筒,所述储液流体筒的底端连接有第一输送管道,所述第一输送管道的底端两侧贯通连接有第二输送管道,两根所述第二输送管道的顶部安装有第一电磁阀,所述第二输送管道的一端与输送泵的进液口贯通连接,所述输送泵的出液口顶端贯通连接有第一流体管,所述第一流体管的一侧贯通连接有第二电磁阀,所述储液流体筒的顶端和底端的第一输送管道边侧设置有传热导管,所述传热导管的边侧固定可连接有散热器,所述储液流体筒的顶端贯通连接有第三输送管和第四输送管。Preferably, the flow heat exchange mechanism includes support frames fixedly connected to both sides of the top end of the first fixed frame, the top ends of the two support frames are fixedly connected with liquid storage fluid cylinders, and the bottom ends of the liquid storage fluid cylinders Connected with a first delivery pipeline, the two sides of the bottom end of the first delivery pipeline are connected with a second delivery pipeline, the tops of the two second delivery pipelines are equipped with a first solenoid valve, and the tops of the second delivery pipelines are One end is through-connected with the liquid inlet of the transfer pump, and the top end of the liquid outlet of the transfer pump is connected with a first fluid pipe, and one side of the first fluid pipe is connected with a second solenoid valve through, and the liquid storage fluid The sides of the first delivery pipe at the top and bottom of the cylinder are provided with heat transfer pipes, and the sides of the heat transfer pipes are fixedly connectable with radiators, and the top of the liquid storage fluid cylinder is connected with a third delivery pipe and a first pipe. Four delivery pipes.

优选的,所述散热机构还包括与输送泵边侧设置有安装框架,所述安装框架的内部与若干片折热片连接,所述安装框架的底端一侧固定连接有连接件,所述连接件与传热管一端的边侧贯通连接,所述传热管的另一侧与输送泵的边侧贯通连接,所述温度感应器连接在所述安装框架的顶部。Preferably, the heat dissipation mechanism also includes an installation frame arranged on the side of the delivery pump, the interior of the installation frame is connected with several pieces of folding heat, and the bottom end of the installation frame is fixedly connected with a connecting piece. The connecting piece is connected through the side of one end of the heat transfer tube, the other side of the heat transfer tube is connected through the side of the transfer pump, and the temperature sensor is connected to the top of the installation frame.

优选的,所述降温机构包括与储液流体筒一侧固定连接的第一输液管,所述第一输液管的边侧固定连接有第一阀门,所述第一阀门的一端与回流循环泵的一侧贯通连接,所述回流循环泵的顶部贯通连接有第二输液管,所述第二输液管的边侧固定连有换热片,所述第二输液管的底端固定连接有循环散热管,所述循环散热管的一端与三通管贯通连接,所述三通管的顶端固定连接有温度调节器,所述三通管的底端贯通连接有排液管,所述三通管的一端与第一输液管贯通连接。Preferably, the cooling mechanism includes a first infusion tube fixedly connected to one side of the liquid storage fluid cylinder, a side of the first infusion tube is fixedly connected with a first valve, and one end of the first valve is connected to the return circulation pump One side of the backflow circulating pump is connected through a second infusion tube, the side of the second infusion tube is fixedly connected with a heat exchange fin, and the bottom end of the second infusion tube is fixedly connected with a circulation A heat dissipation pipe, one end of the circulating heat dissipation pipe is connected through a tee pipe, the top end of the tee pipe is fixedly connected with a temperature regulator, the bottom end of the tee pipe is connected with a liquid discharge pipe, and the tee pipe One end of the tube is connected through the first infusion tube.

优选的,所述平行流换热机构包括与第三输送管和第四输送管的一端与进液管和出液管进行贯通连接,所述进液管的一端贯通连接有制冷器,所述流量监测仪贯穿连接在所述制冷器的一侧。Preferably, the parallel flow heat exchange mechanism includes a through connection with one end of the third delivery pipe and the fourth delivery pipe, and a liquid inlet pipe and a liquid outlet pipe, and a refrigerator is connected through the one end of the liquid inlet pipe, and the A flow monitor is connected through one side of the refrigerator.

优选的,所述流量监测仪的一侧与若干根平行流换热管贯通连接,所述平行流换热管的一端之间通过通道曲管贯通连接。Preferably, one side of the flow monitor is connected through a plurality of parallel flow heat exchange tubes, and one end of the parallel flow heat exchange tubes is connected through a channel curved tube.

优选的,所述第一固定框架的边侧固定连接有开关面板,所述开关面板的表面设置有保护层。Preferably, a switch panel is fixedly connected to a side of the first fixing frame, and a protective layer is provided on the surface of the switch panel.

优选的,所述开关面板的表面设置有制冷器控制开关、温度调节器控制开关、温度感应器控制开关和散热器控制开关,所述制冷器、温度调节器、温度感应器和散热器分别通过制冷器控制开关、温度调节器控制开关、温度感应器控制开关和散热器控制开关与外接电源电性连接。Preferably, the surface of the switch panel is provided with a refrigerator control switch, a temperature regulator control switch, a temperature sensor control switch and a radiator control switch, and the refrigerator, temperature regulator, temperature sensor and radiator are respectively passed The refrigerator control switch, the temperature regulator control switch, the temperature sensor control switch and the radiator control switch are electrically connected to the external power supply.

优选的,所述平行流换热管由热膨胀材料构成。Preferably, the parallel flow heat exchange tubes are made of thermally expandable materials.

与现有技术相比,本发明的有益效果是:Compared with prior art, the beneficial effect of the present invention is:

1、通过储液流体筒内部的流体冷却换热液的使用,能够通过储液流体筒内部的冷却液进行流动,从而带动换热器实现换热过程,通过输送泵的输送将储液流体筒内部的冷却液输送到散热机构和降温机构进行换热降温需求,通过输送泵顶部连接的第一流体管的设置从而便于对储液流体筒内部的液体进行输送到平行流换热机构内部,进行降温换热处理。1. Through the use of the fluid cooling inside the liquid storage fluid cylinder, the use of the heat exchange fluid can flow through the cooling liquid inside the liquid storage fluid cylinder, thereby driving the heat exchanger to realize the heat exchange process, and the liquid storage fluid cylinder is transported by the delivery pump The internal coolant is sent to the heat dissipation mechanism and the cooling mechanism for heat exchange and cooling. The first fluid pipe connected to the top of the delivery pump facilitates the delivery of the liquid inside the liquid storage fluid cylinder to the inside of the parallel flow heat exchange mechanism. Cooling and heat exchange treatment.

2、通过进液管便于对储液流体筒内部的冷却散热液进行散热降温使用,在进液管内部的液体进行输入时,通过制冷器的制冷,从而便于能够对设备运行过热后的设备热量进行换热使用,通过平行流换热管对换热过程中的热量带走,从而更好的进行设备的降温,通过设置的通道曲管对平行流换热管内部的冷却液进行转换流通。2. Through the liquid inlet pipe, it is convenient to use the cooling liquid in the liquid storage fluid cylinder for heat dissipation and cooling. When the liquid inside the liquid inlet pipe is input, it is cooled by the refrigerator, so that it is convenient to be able to cool the heat of the equipment after the equipment is overheated. For heat exchange, the heat in the heat exchange process is taken away through the parallel flow heat exchange tubes, so as to better cool down the equipment, and the cooling liquid inside the parallel flow heat exchange tubes is converted and circulated through the set channel curved tubes.

3、通过设置的平行流换热管、通气管以及膨胀囊之间的相互配合,实现对装置的温度情况进行识别,并且通过将平行流换热管设置为热膨胀材料,使得平行流换热管能够随着温度调节自身的大小,从而实现对冷却液的流速进行调整,同时利用通气管和膨胀囊之间的相互配合,确保外界的热量在短时间内实现与冷却液的接触,并且随着平行流换热管的热膨胀的变化,实现对膨胀囊的膨胀体积进行控制,提高换热速率,同时利用膨胀囊的膨胀使得冷却液在平行流换热管内发生回旋,进一步提高冷却液的热传递效率。3. Through the mutual cooperation between the set parallel flow heat exchange tubes, ventilation tubes and expansion bladders, the temperature of the device can be identified, and by setting the parallel flow heat exchange tubes as thermal expansion materials, the parallel flow heat exchange tubes It can adjust its own size with the temperature, so as to realize the adjustment of the flow rate of the cooling liquid. At the same time, the mutual cooperation between the vent tube and the expansion bag can be used to ensure that the external heat can contact the cooling liquid in a short time, and with the The change of the thermal expansion of the parallel flow heat exchange tube realizes the control of the expansion volume of the expansion bag and improves the heat transfer rate. At the same time, the expansion of the expansion bag makes the cooling liquid swirl in the parallel flow heat exchange tube to further improve the heat transfer of the cooling liquid efficiency.

附图说明Description of drawings

附图用来提供对本发明的进一步理解,并且构成说明书的一部分,与本发明的实施例一起用于解释本发明,并不构成对本发明的限制。在附图中:The accompanying drawings are used to provide a further understanding of the present invention, and constitute a part of the description, and are used together with the embodiments of the present invention to explain the present invention, and do not constitute a limitation to the present invention. In the attached picture:

图1为本发明的整体结构示意图;Fig. 1 is the overall structure schematic diagram of the present invention;

图2为本发明的结构示意图之一;Fig. 2 is one of structural representations of the present invention;

图3为本发明的平行流换热机构结构示意图;Fig. 3 is a schematic structural view of the parallel flow heat exchange mechanism of the present invention;

图4为本发明的进液管结构示意图;Fig. 4 is a schematic structural view of the liquid inlet pipe of the present invention;

图5为本发明的散热机构结构示意图;Fig. 5 is a structural schematic diagram of the heat dissipation mechanism of the present invention;

图6为本发明的降温机构结构示意图;Fig. 6 is a structural schematic diagram of the cooling mechanism of the present invention;

图7为本发明的流动换热机构结构示意图;Fig. 7 is a structural schematic diagram of the flow heat exchange mechanism of the present invention;

图8为本发明的平行流换热管的剖面结构示意图。Fig. 8 is a schematic cross-sectional structure diagram of the parallel flow heat exchange tube of the present invention.

图中:1、第一固定框架;2、流动换热机构;201、支撑架;202、储液流体筒;203、第一输送管道;204、第二输送管道;205、输送泵;206、第一流体管;207、第二电磁阀;208、传热导管;209、散热器;2091、第三输送管;2092、第四输送管;3、散热机构;301、安装框架;302、折热片;303、传热管;304、连接件;305、温度感应器;4、降温机构;401、第一输液管;402、第一阀门;403、回流循环泵;404、第二输液管;405、换热片;406、循环散热管;407、三通管;408、温度调节器;409、排液管;5、平行流换热机构;501、进液管;502、出液管;503、制冷器;504、流量监测仪;505、平行流换热管;5051、通气管;5052、膨胀囊;506、通道曲管。In the figure: 1, the first fixed frame; 2, the flow heat exchange mechanism; 201, the support frame; 202, the liquid storage fluid cylinder; 203, the first delivery pipeline; 204, the second delivery pipeline; 205, the delivery pump; 206, 207, the second solenoid valve; 208, heat transfer conduit; 209, radiator; 2091, the third delivery pipe; 2092, the fourth delivery pipe; 3, cooling mechanism; 301, installation frame; 302, folding Heat sheet; 303, heat transfer tube; 304, connector; 305, temperature sensor; 4, cooling mechanism; 401, first infusion tube; 402, first valve; 403, return circulation pump; 404, second infusion tube ; 405, heat exchange fins; 406, circulating cooling pipe; 407, tee pipe; 408, temperature regulator; 409, liquid discharge pipe; 5, parallel flow heat exchange mechanism; 501, liquid inlet pipe; 502, liquid outlet pipe 503, refrigerator; 504, flow monitor; 505, parallel flow heat exchange tube; 5051, ventilation tube; 5052, expansion bag;

具体实施方式Detailed ways

下面将结合本发明实施例中的附图,对本发明实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅仅是本发明一部分实施例,而不是全部的实施例。基于本发明中的实施例,本领域普通技术人员在没有做出创造性劳动前提下所获得的所有其他实施例,都属于本发明保护的范围。The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only some, not all, embodiments of the present invention. Based on the embodiments of the present invention, all other embodiments obtained by persons of ordinary skill in the art without making creative efforts belong to the protection scope of the present invention.

请参阅图1-8,本发明提供以下技术方案:一种仿生式平行流换热器,包括第一固定框架1,第一固定框架1的顶端固定连接有流动换热机构2,流动换热机构2的一侧设置有散热机构3,流动换热机构2的另一侧设置有降温机构4,流动换热机构2的顶端设置有平行流换热机构5。Please refer to Figures 1-8, the present invention provides the following technical solutions: a bionic parallel flow heat exchanger, including a first fixed frame 1, the top of the first fixed frame 1 is fixedly connected with a flow heat exchange mechanism 2, and the flow heat exchange One side of the mechanism 2 is provided with a heat dissipation mechanism 3 , the other side of the flow heat exchange mechanism 2 is provided with a cooling mechanism 4 , and the top end of the flow heat exchange mechanism 2 is provided with a parallel flow heat exchange mechanism 5 .

流动换热机构2包括与第一固定框架1的顶端两侧固定连接的支撑架201,两个支撑架201的顶端固定连接有储液流体筒202,储液流体筒202的底端连接有第一输送管道203,第一输送管道203的底端两侧贯通连接有第二输送管道204,两根第二输送管道204的顶部安装有第一电磁阀,第二输送管道204的一端与输送泵205的进液口贯通连接,输送泵205的出液口顶端贯通连接有第一流体管206,第一流体管206的一侧贯通连接有第二电磁阀207,储液流体筒202的顶端和底端的第一输送管道203边侧设置有传热导管208,传热导管208的边侧固定可连接有散热器209,储液流体筒202的顶端贯通连接有第三输送管2091和第四输送管2092。The flow heat exchange mechanism 2 includes a support frame 201 fixedly connected to both sides of the top end of the first fixed frame 1 , the top ends of the two support frames 201 are fixedly connected to a liquid storage fluid cylinder 202 , and the bottom end of the liquid storage fluid cylinder 202 is connected to a second A delivery pipeline 203, the bottom two sides of the first delivery pipeline 203 are connected with the second delivery pipeline 204, the tops of the two second delivery pipelines 204 are equipped with a first solenoid valve, one end of the second delivery pipeline 204 is connected to the delivery pump The liquid inlet of 205 is through-connected, the top of the liquid outlet of delivery pump 205 is connected with the first fluid pipe 206 through, one side of the first fluid pipe 206 is connected with the second electromagnetic valve 207 through, the top of the liquid storage fluid cylinder 202 and The side of the first delivery pipe 203 at the bottom end is provided with a heat transfer pipe 208, the side of the heat transfer pipe 208 can be fixedly connected to a radiator 209, and the top of the liquid storage fluid cylinder 202 is connected with a third delivery pipe 2091 and a fourth delivery pipe 209. Tube 2092.

具体使用时,在进行换热使用时,为了提升换热的效果,通过两个支撑架201顶部的储液流体筒202内部的流体冷却换热液的使用,从而便于对换热器在进行换热的过程中,能够通过储液流体筒202内部的冷却液进行流动,带动换热器实现换热过程,通过设置的第一输送管道203的输送,使得储液流体筒202内部冷却液输送到两侧第二输送管道204的内部,通过边侧连接的输送泵205的输送将储液流体筒202内部的冷却液输送到散热机构3和降温机构4进行换热降温需求,通过冷却液的流动带动多余机构内部的热量,通过设置在输送泵205顶部的第一流体管206从而便于对储液流体筒202内部的液体进行输送到平行流换热机构5内部,通过设置第一电磁阀和第二电磁阀207从而能够控制第一流体管206内部的液体进行控制流动的量。In specific use, in order to improve the effect of heat exchange, the heat exchange fluid is cooled by the fluid inside the liquid storage fluid cylinder 202 on the top of the two support frames 201, so as to facilitate the heat exchange in the heat exchanger. During the heating process, the cooling liquid inside the liquid storage fluid cylinder 202 can flow to drive the heat exchanger to realize the heat exchange process, and the cooling liquid inside the liquid storage fluid cylinder 202 can be transported to the Inside the second conveying pipes 204 on both sides, the coolant inside the liquid storage fluid cylinder 202 is conveyed to the heat dissipation mechanism 3 and the cooling mechanism 4 through the delivery of the conveying pump 205 connected to the side to meet the heat exchange and cooling requirements. Drive the heat inside the redundant mechanism, through the first fluid pipe 206 arranged on the top of the delivery pump 205, so as to facilitate the transportation of the liquid inside the liquid storage fluid cylinder 202 to the inside of the parallel flow heat exchange mechanism 5, by setting the first solenoid valve and the second The two solenoid valves 207 are thus able to control the amount of liquid inside the first fluid pipe 206 for controlled flow.

散热机构3包括与输送泵205边侧设置有安装框架301,安装框架301的内部设置有若干片折热片302,折热片302之间设置有传热管303,安装框架301的底端一侧固定连接有连接件304,连接件304与传热管303一端的边侧贯通连接,传热管303的另一侧与输送泵205的边侧贯通连接,安装框架301的顶部设置有温度感应器305。The heat dissipation mechanism 3 includes an installation frame 301 arranged on the side of the delivery pump 205, and a plurality of folding heat sheets 302 are arranged inside the installation frame 301, and heat transfer tubes 303 are arranged between the heat folding sheets 302, and the bottom end of the installation frame 301 is The side is fixedly connected with a connecting piece 304, the connecting piece 304 is connected through the side of one end of the heat transfer tube 303, the other side of the heat transfer tube 303 is connected through the side of the transfer pump 205, and the top of the installation frame 301 is provided with a temperature sensor. device 305.

具体使用时,在进行设备的换热使用时,通过设置在安装框架301上的若干个片折热片302,通过设置折热片302从而便于能够对设备上的热量能够快速的就行散热使用,通过散热的使用,方便提升设备在运行过程中的速率,通过设置传热管303便对冷却液中的热量进行传导,从而便于带走多余的热量,降低设备中的热量,通过设置温度感应器305,便于对传热管303内部的散发的热量进行温度感应,从而更好对设备进行降温处理。In specific use, when the heat exchange of the equipment is used, the heat on the equipment can be quickly dissipated and used by setting the heat folding sheets 302 on the installation frame 301. Through the use of heat dissipation, it is convenient to increase the speed of the equipment during operation. By setting the heat transfer tube 303, the heat in the coolant can be conducted, so that it is easy to take away excess heat and reduce the heat in the equipment. By setting the temperature sensor 305, which facilitates temperature sensing of the heat dissipated inside the heat transfer tube 303, so as to better cool down the equipment.

降温机构4包括与储液流体筒202一侧固定连接的第一输液管401,第一输液管401的边侧固定连接有第一阀门402,第一阀门402的一端与回流循环泵403的一侧贯通连接,回流循环泵403的顶部贯通连接有第二输液管404,第二输液管404的边侧固定连有换热片405,第二输液管404的底端固定连接有循环散热管406,循环散热管406的一端与三通管407贯通连接,三通管407的顶端固定连接有温度调节器408,三通管407的底端贯通连接有排液管409,三通管407的一端与第一输液管401贯通连接。The cooling mechanism 4 includes a first infusion tube 401 fixedly connected to one side of the liquid storage fluid cylinder 202, a first valve 402 is fixedly connected to the side of the first infusion tube 401, and one end of the first valve 402 is connected to one end of the return circulation pump 403. Side through connection, the top of the return circulation pump 403 is connected with the second infusion tube 404, the side of the second infusion tube 404 is fixedly connected with the heat exchange fin 405, and the bottom end of the second infusion tube 404 is fixedly connected with the circulating cooling pipe 406 , one end of the circulating cooling pipe 406 is connected through the tee pipe 407, the top end of the tee pipe 407 is fixedly connected with a temperature regulator 408, the bottom end of the tee pipe 407 is connected with a drain pipe 409, and one end of the tee pipe 407 It is connected through the first infusion tube 401 .

具体使用时,通过设置第一输液管401便于储液流体筒202内部的冷却液进行输送循环带动换热过程中热量,通过设置在第一输液管401内部的第一阀门402便于控制第一输液管401内部进入的液体流量,通过设置的回流循环泵403将冷却液循环输送到第二输液管404的内部,第二输液管404内部液体的流动在换热片405的换热散下,将第二输液管404内部冷却液流的液体进行输送回流,从而更好的进行散热使用,在冷却换热后,通过设置在三通管407顶部的温度调节器408对冷却液内部的温度进一步的进行换热冷却使用,通过设置排液管409将多余的液体进行排出。In specific use, the first infusion tube 401 is provided to facilitate the delivery cycle of the coolant inside the liquid storage fluid cylinder 202 to drive the heat in the heat exchange process, and the first valve 402 arranged inside the first infusion tube 401 facilitates the control of the first infusion The flow of liquid entering the pipe 401 is circulated to the inside of the second liquid delivery pipe 404 through the return circulation pump 403 provided, and the flow of the liquid inside the second liquid delivery pipe 404 is dissipated by the heat exchange fins 405. The liquid of the cooling liquid flow inside the second liquid infusion pipe 404 is transported and returned to better dissipate heat. After cooling and exchanging heat, the temperature inside the cooling liquid is further adjusted by the temperature regulator 408 arranged at the top of the tee pipe 407. It is used for heat exchange and cooling, and the excess liquid is discharged by setting a liquid discharge pipe 409 .

平行流换热机构5包括与第三输送管2091和第四输送管2092的一端与进液管501和出液管502进行贯通连接,进液管501的一端贯通连接有制冷器503,制冷器503的一侧贯通连接有流量监测仪504,流量监测仪504的一侧与若干根平行流换热管505贯通连接,平行流换热管505的一端之间通过通道曲管506贯通连接。The parallel flow heat exchange mechanism 5 includes a through connection with one end of the third conveying pipe 2091 and the fourth conveying pipe 2092 and the liquid inlet pipe 501 and the liquid outlet pipe 502, and one end of the liquid inlet pipe 501 is connected through a refrigerator 503, and the refrigerator One side of 503 is connected with a flow monitor 504, one side of the flow monitor 504 is connected with several parallel flow heat exchange tubes 505, and one end of the parallel flow heat exchange tubes 505 is connected through channel curved tubes 506.

具体使用时,通过设置进液管501便于对储液流体筒202内部的冷却散热液进行散热降温使用,在进液管501内部的液体进行输入时,通过设置的制冷器503的制冷,从而便于能够对设备运行过热后的设备热量进行换热使用,通过设置流量监测仪504对进入换热器内部的液体进行监测,通过设置平行流换热管505对换热过程中的热量带走,从而更好的进行设备的降温,通过设置通道曲管506对平行流换热管505内部的冷却液进行转换流通。During specific use, the liquid inlet pipe 501 is provided to facilitate the use of heat radiation and cooling of the cooling liquid inside the liquid storage fluid cylinder 202. When the liquid inside the liquid inlet pipe 501 is input, it is refrigerated by the provided refrigerator 503, thereby facilitating The heat of the equipment after the equipment is overheated can be used for heat exchange. The liquid entering the heat exchanger is monitored by setting the flow monitor 504, and the heat in the heat exchange process is taken away by setting the parallel flow heat exchange tube 505, so that To better cool down the equipment, the cooling liquid inside the parallel flow heat exchange tube 505 is converted and circulated by setting the channel curved tube 506 .

平行流换热管505壁体上贯穿开设有若干通气管5051,进而通过通气管5051能够实现对外界设备的温度进行准确判断,其中为了避免通气管5051的设置使得位于平行流换热管505内部的冷却液发生泄漏,进而在通气管5051靠近平行流换热管505内腔的一端连接设有膨胀囊5052,即膨胀囊5052始终处于冷却液内,且当平行流换热管505外部的设备温度较高时,由于热气传导速率的原因,会使得热量能够首先通过通气管5051进入至膨胀囊5052上,从而根据热量值控制膨胀囊5052的膨胀大小,进而利用膨胀囊5052始终与冷却液接触,从而能够快速的对膨胀囊5052内的热量进行中和,达到快速散热的目的。A number of ventilation pipes 5051 are opened through the wall of the parallel flow heat exchange tube 505, and the temperature of the external equipment can be accurately judged through the ventilation pipes 5051. The coolant leaks, and an expansion bag 5052 is connected to the end of the vent pipe 5051 close to the inner cavity of the parallel flow heat exchange tube 505, that is, the expansion bag 5052 is always in the coolant, and when the equipment outside the parallel flow heat exchange tube 505 When the temperature is high, due to the heat conduction rate, the heat can first enter the expansion bag 5052 through the vent pipe 5051, so that the expansion of the expansion bag 5052 can be controlled according to the heat value, and the expansion bag 5052 can always be in contact with the cooling liquid. , so that the heat in the expansion bag 5052 can be quickly neutralized to achieve the purpose of rapid heat dissipation.

平行流换热管505由热膨胀材料构成,进而在平行流换热管505受热时,能够在平行流换热机构5内发生膨胀,且该膨胀不会导致相邻的两个平行流换热管505之间发生抵触,确保传导热量的面积不会发生改变,同时在平行流换热管505发生膨胀后,平行流换热管505的内径增大,且通气管5051的口径增大,从而能够外界设备的温度实时对换热速度进行调控,从而提高换热速率。The parallel flow heat exchange tube 505 is made of thermally expandable material, and then when the parallel flow heat exchange tube 505 is heated, it can expand in the parallel flow heat exchange mechanism 5, and the expansion will not cause the two adjacent parallel flow heat exchange tubes to expand. 505 conflicts to ensure that the heat conduction area will not change. At the same time, after the parallel flow heat exchange tube 505 expands, the inner diameter of the parallel flow heat exchange tube 505 increases, and the diameter of the ventilation tube 5051 increases, so that The temperature of the external equipment regulates the heat transfer rate in real time, thereby increasing the heat transfer rate.

需要说明的是,膨胀囊5052的外表面能够由类似人体肺泡结构的薄膜构成,能够在不发生冷却液渗透的同时,将膨胀囊5052内的热气导入至冷却液内。It should be noted that the outer surface of the expansion bag 5052 can be made of a thin film similar to the alveolar structure of the human body, so that the hot air in the expansion bag 5052 can be introduced into the cooling liquid without the penetration of the cooling liquid.

第一固定框架1的边侧固定连接有开关面板,开关面板的表面设置有保护层,同时开关面板能够对控制终端进行数据传输。The side of the first fixed frame 1 is fixedly connected with a switch panel, and the surface of the switch panel is provided with a protective layer, and at the same time, the switch panel can transmit data to the control terminal.

开关面板的表面设置有制冷器控制开关、温度调节器控制开关、温度感应器控制开关和散热器控制开关,制冷器503、温度调节器408、温度感应器305和散热器209分别通过制冷器控制开关、温度调节器控制开关、温度感应器控制开关和散热器控制开关与外接电源电性连接。The surface of the switch panel is provided with a refrigerator control switch, a temperature regulator control switch, a temperature sensor control switch and a radiator control switch. The refrigerator 503, the temperature regulator 408, the temperature sensor 305 and the radiator 209 are controlled by the refrigerator respectively. The switch, the temperature regulator control switch, the temperature sensor control switch and the radiator control switch are electrically connected to the external power supply.

工作原理:在外界设备的温度升高时,首先对平行流换热机构5上的平行流换热管505以及平行流换热管505内的冷却液发生热交换,同时在进行换热使用时,为了提升换热的效果,使得平行流换热管505内的冷却液首先通过储液流体筒202内部的流体冷却换热液的循环流动,便于对换热器在进行热量交换,确保换热器的正常工作,并且为了提高冷却液在流动过程中对装置上的热量传输速率较高,进而在装置上产生的热量较低时,此时装置上的热量能够直接通过通气管5051进入至膨胀囊5052内,直接通过膨胀囊5052与冷却液接触,实现快速降温的目的,减少热量在平行流换热管505上发生热传导的时间,提高换热速率,且此时流量监测仪504的流速和温度感应器305的温度未发生变化。Working principle: When the temperature of the external equipment rises, heat exchange occurs first between the parallel flow heat exchange tube 505 on the parallel flow heat exchange mechanism 5 and the coolant in the parallel flow heat exchange tube 505, and at the same time, when the heat exchange is used , in order to improve the effect of heat exchange, the cooling liquid in the parallel flow heat exchange tube 505 first passes through the fluid inside the liquid storage fluid cylinder 202 to cool the circulating flow of the heat exchange liquid, which facilitates the heat exchange of the heat exchanger and ensures the heat exchange The normal operation of the device, and in order to improve the heat transfer rate of the cooling liquid to the device during the flow process is relatively high, and when the heat generated on the device is low, the heat on the device can directly enter the expansion through the vent pipe 5051 In the bladder 5052, the expansion bladder 5052 is directly in contact with the coolant to achieve the purpose of rapid cooling, reduce the time for heat conduction to occur on the parallel flow heat exchange tube 505, and increase the heat transfer rate. At this time, the flow rate of the flow monitor 504 and The temperature of the temperature sensor 305 does not change.

在装置上产生的热量较高时,此时装置的热量仅通过通气管5051以及膨胀囊5052的配合无法快速的将热量进行传递,从而热量在平行流换热管505上发生汇聚,导致平行流换热管505的温度升高,且冷却液与平行流换热管505的壁体接触无法有效的对平行流换热管505的温度进行降温,促使平行流换热管505的本体受热膨胀,通气管5051的直径也对应的增大,进一步提高膨胀囊5052的进气速率,同时在膨胀囊5052的导热速率恒定的情况下,膨胀囊5052的体积增大,致使冷却液与膨胀囊5052的接触面积增大,从而在冷却液流速不变的情况下,导致经过温度感应器305的冷却液温度增加,进而通过温度感应器305将数据上传至控制终端,使得储液流体筒202的冷却液流速增大,实现对平行流换热管505内部空间的填充,从而确保冷却液能够对膨胀囊5052内的温度进行传递,应该对平行流换热管505上的温度进行传递,提高换热速率,此时流量监测仪504监测到冷却液流速增大。When the heat generated on the device is high, the heat of the device cannot be transferred quickly only through the cooperation of the vent tube 5051 and the expansion bag 5052, so that the heat converges on the parallel flow heat exchange tube 505, resulting in parallel flow. The temperature of the heat exchange tube 505 rises, and the contact between the coolant and the wall of the parallel flow heat exchange tube 505 cannot effectively cool down the temperature of the parallel flow heat exchange tube 505, causing the body of the parallel flow heat exchange tube 505 to expand when heated. The diameter of the vent pipe 5051 is also correspondingly increased, which further increases the air intake rate of the expansion bag 5052. At the same time, under the condition that the heat conduction rate of the expansion bag 5052 is constant, the volume of the expansion bag 5052 increases, so that the cooling liquid and the expansion bag 5052 The contact area increases, so that when the flow rate of the coolant remains unchanged, the temperature of the coolant passing through the temperature sensor 305 increases, and then the data is uploaded to the control terminal through the temperature sensor 305, so that the coolant in the liquid storage fluid cylinder 202 The flow rate is increased to fill the inner space of the parallel flow heat exchange tube 505, thereby ensuring that the cooling liquid can transfer the temperature in the expansion bag 5052, and the temperature on the parallel flow heat exchange tube 505 should be transferred to increase the heat transfer rate , at this time, the flow monitor 504 detects that the flow rate of the coolant increases.

并且在装备的温度较高时,由于冷却液与平行流换热管505之间的接触面不同,进而导致冷却液在对平行流换热管505内的温度进行热传递时,传递效率也不同,进而随着温度的不断变化,促使平行流换热管505能够形成类似血管曲张的一个动态变化,提高热传递的效率。And when the temperature of the equipment is high, due to the difference in the contact surface between the cooling liquid and the parallel flow heat exchange tube 505, when the cooling liquid transfers heat to the temperature in the parallel flow heat exchange tube 505, the transfer efficiency is also different. , and further along with the continuous change of temperature, the parallel flow heat exchange tube 505 can form a dynamic change similar to varicose blood vessels, thereby improving the efficiency of heat transfer.

并且利用膨胀囊5052在实现热传递的速率的同时,能够根据膨胀囊5052在平行流换热管505内的体积变化实现对冷却液流动速度的控制,在膨胀囊5052体积增大后,使得冷却液能够在膨胀囊5052以及平行流换热管505内回旋,尽可能多的利用冷却液对热量进行传递,提高换热速率。Moreover, the expansion bladder 5052 can be used to realize the rate of heat transfer, and at the same time, the flow rate of the cooling liquid can be controlled according to the volume change of the expansion bladder 5052 in the parallel flow heat exchange tube 505. After the volume of the expansion bladder 5052 increases, the cooling The liquid can swirl in the expansion bag 5052 and the parallel flow heat exchange tube 505, and the cooling liquid can be used to transfer heat as much as possible to increase the heat exchange rate.

在储液流体筒202内部的冷却液流动进入到第一输送管道203进行输送时,同时也通过第一输送管道203进入两侧的第二输送管道204内部,且设置的输送泵205工作将储液流体筒202内部的冷却液输送到散热机构3内,在散热机构3内部进行流动降温处理,通过折热片302便于对设备上的热量能够快速的进行散热使用,从而避免设备在运行过程中因高温出现运行速率下降的情况,即通过冷却液流入至传热管303内,使得冷却液内所蕴含的热量通过传热管303传递至折热片302上,便于对冷却液内的热量进行散失,确保传热管303与折热片302的设置能够实现对冷却液中的热量传导,从而便于带走多余的热量,达到降低设备中的热量的目的,同时利用温度感应器305对设备内部热量进行感应,从而更好对设备进行降温过程进行监控,同时在温度感应器305检测到进入平行流换热管505的温度发生明显上升时,能够利用温度感应器305对散热机构3以及降温机构4进行控制,即在温度感应器305检测的温度无明显变化时,此时仅利用流动换热机构2实现对冷却液的热量置换,当温度感应器305检测的温度发生明显上升时,控制散热机构3开始工作,当温度感应器305检测的温度发生较大变化时,控制散热机构3以及降温机构4同时开始工作。When the coolant in the liquid storage fluid cylinder 202 flows into the first delivery pipe 203 for delivery, it also enters the inside of the second delivery pipeline 204 on both sides through the first delivery pipeline 203, and the provided delivery pump 205 works to store The cooling liquid inside the liquid fluid cylinder 202 is transported to the heat dissipation mechanism 3, and the flow cooling process is carried out inside the heat dissipation mechanism 3. The heat on the equipment can be quickly dissipated through the heat-dissipating sheet 302, thereby avoiding that the equipment is in operation. Due to the high temperature, the operating speed drops, that is, the cooling liquid flows into the heat transfer tube 303, so that the heat contained in the cooling liquid is transferred to the heat deflection sheet 302 through the heat transfer tube 303, which is convenient for the heat in the cooling liquid. To ensure that the heat transfer tube 303 and the heat deflection sheet 302 can conduct heat in the cooling liquid, so as to facilitate the removal of excess heat and achieve the purpose of reducing the heat in the equipment. At the same time, the temperature sensor 305 is used to control The heat is sensed, so as to better monitor the cooling process of the equipment. At the same time, when the temperature sensor 305 detects that the temperature entering the parallel flow heat exchange tube 505 has risen significantly, the temperature sensor 305 can be used to control the cooling mechanism 3 and the cooling mechanism. 4. Controlling, that is, when the temperature detected by the temperature sensor 305 has no obvious change, at this time only the flow heat exchange mechanism 2 is used to replace the heat of the cooling liquid, and when the temperature detected by the temperature sensor 305 rises significantly, control the heat dissipation The mechanism 3 starts to work, and when the temperature detected by the temperature sensor 305 changes greatly, the heat dissipation mechanism 3 and the cooling mechanism 4 are controlled to start working simultaneously.

通过降温机构4上的第一输液管401的设置便于储液流体筒202内部的冷却液进行输送循环,通过第一输液管401内部的第一阀门402闭合控制,便于控制第一输液管401内部进入的液体流量,以此实现对热量传导速率的控制,通过回流循环泵403将冷却液循环输送到第二输液管404的内部,使得第二输液管404内部液体的流动到换热片405内部进行冷热交替,从而更好的进行散热使用,在冷热换热后,然后温度调节器408的设置对冷却液内部的温度进一步的进行换热冷却,保证设备避免过热,进而通过换热片405与温度调节器408之间的相互配合,实现对通过降温机构4的冷却液进行分阶段散热,确保冷却液的散热效率高速且稳定。The setting of the first infusion tube 401 on the cooling mechanism 4 facilitates the delivery and circulation of the coolant inside the liquid storage fluid cylinder 202, and the closing control of the first valve 402 inside the first infusion tube 401 facilitates the control of the inside of the first infusion tube 401. The incoming liquid flow is used to control the heat transfer rate, and the cooling liquid is circulated to the inside of the second liquid delivery pipe 404 through the return circulation pump 403, so that the liquid in the second liquid delivery pipe 404 flows to the inside of the heat exchange fin 405 Alternate cold and heat, so as to better dissipate heat. After the heat exchange, the temperature regulator 408 is set to further perform heat exchange and cooling on the temperature inside the coolant to ensure that the equipment avoids overheating, and then through the heat exchange sheet The mutual cooperation between 405 and the temperature regulator 408 realizes stage-by-stage heat dissipation of the coolant passing through the cooling mechanism 4 , ensuring high-speed and stable heat dissipation efficiency of the coolant.

最后通过进液管501便于对储液流体筒202内部的冷却散热液进行散热降温使用,在进液管501内部的液体进行输入时,且制冷器503的制冷便于对设备运行过热后的热量进行换热使用,通过流量监测仪504对进入换热器内部的液体进行监测,从而便于对平行流换热管505内换热过程中的冷却液流速进行监测,确保平行流换热管505内的冷却液流速能够满足散热降温的目的。Finally, through the liquid inlet pipe 501, it is convenient to use the cooling liquid inside the liquid storage fluid cylinder 202 for heat dissipation and cooling. For heat exchange, the liquid entering the heat exchanger is monitored by the flow monitor 504, so as to facilitate the monitoring of the coolant flow rate in the parallel flow heat exchange tube 505 during the heat exchange process, and ensure that the flow rate in the parallel flow heat exchange tube 505 is The coolant flow rate can meet the purpose of heat dissipation and cooling.

通过设置的平行流换热管505、通气管5051以及膨胀囊5052之间的相互配合,实现对装置的温度情况进行识别,并且通过将平行流换热管505设置为热膨胀材料,使得平行流换热管505能够随着温度调节自身的大小,从而实现对冷却液的流速进行调整,同时利用通气管5051和膨胀囊5052之间的相互配合,确保外界的热量在短时间内实现与冷却液的接触,并且随着平行流换热管505的热膨胀的变化,实现对膨胀囊5052的膨胀体积进行控制,提高换热速率,同时利用膨胀囊5052的膨胀使得冷却液在平行流换热管505内发生回旋,进一步提高冷却液的热传递效率。Through the mutual cooperation between the set parallel flow heat exchange tube 505, the ventilation tube 5051 and the expansion bag 5052, the temperature of the device can be identified, and by setting the parallel flow heat exchange tube 505 as thermal expansion material, the parallel flow exchange The heat pipe 505 can adjust its own size according to the temperature, so as to realize the adjustment of the flow rate of the cooling liquid. At the same time, the mutual cooperation between the vent pipe 5051 and the expansion bag 5052 can be used to ensure that the heat of the outside world can be combined with the cooling liquid in a short time. contact, and with the change of the thermal expansion of the parallel flow heat exchange tube 505, the expansion volume of the expansion bag 5052 is controlled to increase the heat exchange rate, and at the same time, the expansion of the expansion bag 5052 makes the cooling liquid in the parallel flow heat exchange tube 505 Swirling occurs, further improving the heat transfer efficiency of the coolant.

最后应说明的是:以上所述仅为本发明的优选实施例而已,并不用于限制本发明,尽管参照前述实施例对本发明进行了详细的说明,对于本领域的技术人员来说,其依然可以对前述各实施例所记载的技术方案进行修改,或者对其中部分技术特征进行等同替换。凡在本发明的精神和原则之内,所作的任何修改、等同替换、改进等,均应包含在本发明的保护范围之内。Finally, it should be noted that: the above is only a preferred embodiment of the present invention, and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, it still The technical solutions recorded in the foregoing embodiments may be modified, or some technical features thereof may be equivalently replaced. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present invention shall be included within the protection scope of the present invention.

Claims (9)

1.一种仿生式平行流换热器,包括第一固定框架,其特征在于,所述第一固定框架的顶端固定连接有流动换热机构,所述流动换热机构的一侧设置有散热机构,所述流动换热机构的另一侧设置有降温机构,所述流动换热机构的顶端设置有平行流换热机构;1. A bionic parallel flow heat exchanger, comprising a first fixed frame, characterized in that the top of the first fixed frame is fixedly connected with a flow heat exchange mechanism, and one side of the flow heat exchange mechanism is provided with a heat dissipation mechanism, the other side of the flow heat exchange mechanism is provided with a cooling mechanism, and the top of the flow heat exchange mechanism is provided with a parallel flow heat exchange mechanism; 所述散热机构包括若干片折热片,所述折热片之间设置有传热管,所述传热管的一侧连接设有温度感应器;The heat dissipation mechanism includes a plurality of heat-dissipating fins, heat transfer tubes are arranged between the heat-dissipating fins, and a temperature sensor is connected to one side of the heat transfer pipe; 所述平行流换热机构包括平行流换热管,所述平行流换热管壁体上贯穿开设有若干通气管,所述通气管靠近所述平行流换热管内腔的一端连接设有膨胀囊;The parallel-flow heat exchange mechanism includes parallel-flow heat-exchange tubes, and a plurality of ventilation tubes are opened through the walls of the parallel-flow heat-exchange tubes. bag; 所述平行流换热机构还包括流量监测仪。The parallel flow heat exchange mechanism also includes a flow monitor. 2.根据权利要求1所述的一种仿生式平行流换热器,其特征在于:所述流动换热机构包括与第一固定框架的顶端两侧固定连接的支撑架,两个所述支撑架的顶端固定连接有储液流体筒,所述储液流体筒的底端连接有第一输送管道,所述第一输送管道的底端两侧贯通连接有第二输送管道,两根所述第二输送管道的顶部安装有第一电磁阀,所述第二输送管道的一端与输送泵的进液口贯通连接,所述输送泵的出液口顶端贯通连接有第一流体管,所述第一流体管的一侧贯通连接有第二电磁阀,所述储液流体筒的顶端和底端的第一输送管道边侧设置有传热导管,所述传热导管的边侧固定可连接有散热器,所述储液流体筒的顶端贯通连接有第三输送管和第四输送管。2. A biomimetic parallel flow heat exchanger according to claim 1, characterized in that: the flow heat exchange mechanism includes support frames fixedly connected to both sides of the top end of the first fixed frame, and the two support frames The top of the rack is fixedly connected with a liquid storage fluid cylinder, the bottom end of the liquid storage fluid cylinder is connected with a first delivery pipeline, and the two sides of the bottom end of the first delivery pipeline are connected with a second delivery pipeline. A first electromagnetic valve is installed on the top of the second delivery pipeline, one end of the second delivery pipeline is connected through the liquid inlet of the delivery pump, and the top end of the delivery pump is connected with the first fluid pipe through the liquid outlet. One side of the first fluid pipe is connected with a second solenoid valve, the top and bottom of the liquid storage fluid cylinder are provided with heat transfer pipes on the sides of the first delivery pipe, and the sides of the heat transfer pipes are fixed and connectable with As for the radiator, the top end of the liquid storage fluid cylinder is connected through a third delivery pipe and a fourth delivery pipe. 3.根据权利要求2所述的一种仿生式平行流换热器,其特征在于:所述散热机构还包括与输送泵边侧设置有安装框架,所述安装框架的内部与若干片折热片连接,所述安装框架的底端一侧固定连接有连接件,所述连接件与传热管一端的边侧贯通连接,所述传热管的另一侧与输送泵的边侧贯通连接,所述温度感应器连接在所述安装框架的顶部。3. A bionic parallel flow heat exchanger according to claim 2, characterized in that: the heat dissipation mechanism also includes a mounting frame on the side of the delivery pump, and the inside of the mounting frame is folded with several pieces of heat One side of the bottom end of the installation frame is fixedly connected with a connecting piece, the connecting piece is connected through the side of one end of the heat transfer tube, and the other side of the heat transfer tube is connected through the side of the delivery pump , the temperature sensor is connected to the top of the installation frame. 4.根据权利要求3所述的一种仿生式平行流换热器,其特征在于:所述降温机构包括与储液流体筒一侧固定连接的第一输液管,所述第一输液管的边侧固定连接有第一阀门,所述第一阀门的一端与回流循环泵的一侧贯通连接,所述回流循环泵的顶部贯通连接有第二输液管,所述第二输液管的边侧固定连有换热片,所述第二输液管的底端固定连接有循环散热管,所述循环散热管的一端与三通管贯通连接,所述三通管的顶端固定连接有温度调节器,所述三通管的底端贯通连接有排液管,所述三通管的一端与第一输液管贯通连接。4. A bionic parallel flow heat exchanger according to claim 3, characterized in that: the cooling mechanism includes a first liquid infusion tube fixedly connected to one side of the liquid storage fluid cylinder, and the first liquid infusion tube The side is fixedly connected with a first valve, one end of the first valve is connected through one side of the backflow circulation pump, and the top of the backflow circulation pump is connected with a second infusion tube through, and the side of the second infusion tube The heat exchange fins are fixedly connected, the bottom end of the second infusion pipe is fixedly connected with a circulating cooling pipe, one end of the circulating cooling pipe is connected with a three-way pipe, and the top end of the three-way pipe is fixedly connected with a temperature regulator , the bottom end of the three-way pipe is connected with a drain pipe, and one end of the three-way pipe is connected with the first infusion pipe. 5.根据权利要求4所述的一种仿生式平行流换热器,其特征在于:所述平行流换热机构包括与第三输送管和第四输送管的一端与进液管和出液管进行贯通连接,所述进液管的一端贯通连接有制冷器,所述流量监测仪贯穿连接在所述制冷器的一侧。5. A bionic parallel flow heat exchanger according to claim 4, characterized in that: said parallel flow heat exchange mechanism includes a liquid inlet pipe and a liquid outlet pipe connected to one end of the third delivery pipe and the fourth delivery pipe The pipe is connected through through, one end of the liquid inlet pipe is connected through the refrigerator, and the flow monitor is connected through one side of the refrigerator. 6.根据权利要求5所述的一种仿生式平行流换热器,其特征在于:所述流量监测仪的一侧与若干根平行流换热管贯通连接,所述平行流换热管的一端之间通过通道曲管贯通连接。6. A bionic parallel flow heat exchanger according to claim 5, characterized in that: one side of the flow monitor is connected through several parallel flow heat exchange tubes, and the parallel flow heat exchange tubes The one ends are through-connected through channel curved pipes. 7.根据权利要求5所述的一种仿生式平行流换热器,其特征在于:所述第一固定框架的边侧固定连接有开关面板,所述开关面板的表面设置有保护层。7 . The bionic parallel flow heat exchanger according to claim 5 , wherein a switch panel is fixedly connected to a side of the first fixed frame, and a protective layer is provided on the surface of the switch panel. 8.根据权利要求7所述的一种仿生式平行流换热器,其特征在于:所述开关面板的表面设置有制冷器控制开关、温度调节器控制开关、温度感应器控制开关和散热器控制开关,所述制冷器、温度调节器、温度感应器和散热器分别通过制冷器控制开关、温度调节器控制开关、温度感应器控制开关和散热器控制开关与外接电源电性连接。8. A bionic parallel flow heat exchanger according to claim 7, characterized in that: the surface of the switch panel is provided with a refrigerator control switch, a temperature regulator control switch, a temperature sensor control switch and a radiator The control switch, the refrigerator, the temperature regulator, the temperature sensor and the radiator are electrically connected to the external power supply through the refrigerator control switch, the temperature regulator control switch, the temperature sensor control switch and the radiator control switch respectively. 9.根据权利要求1所述的一种仿生式平行流换热器,其特征在于:所述平行流换热管由热膨胀材料构成。9 . The bionic parallel flow heat exchanger according to claim 1 , wherein the parallel flow heat exchange tubes are made of thermally expandable materials.
CN202310639674.5A 2023-06-01 2023-06-01 A bionic parallel flow heat exchanger Active CN116608713B (en)

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN119197142A (en) * 2024-12-02 2024-12-27 圣春散热器有限公司 A steel-aluminum composite radiator with multiple heat dissipation structures

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JPS5644592A (en) * 1979-09-19 1981-04-23 Mitsubishi Heavy Ind Ltd Fixed tube plate type heat exchanger
US20080296005A1 (en) * 2005-02-02 2008-12-04 Carrier Corporation Parallel Flow Heat Exchanger For Heat Pump Applications
CN104913546A (en) * 2014-03-12 2015-09-16 中国科学院广州能源研究所 Pure countercurrent compact type pipe folding economizer
KR20180068659A (en) * 2016-12-14 2018-06-22 현대자동차주식회사 Heat exchange pipe and fuel cell system comprising the same
CN114198910A (en) * 2020-08-31 2022-03-18 广东万和新电气股份有限公司 Heat exchange piece and heating appliance
CN218755576U (en) * 2022-11-15 2023-03-28 常州江南冶金科技有限公司 Tube nest heat exchanger for coke oven ascending tube

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS5644592A (en) * 1979-09-19 1981-04-23 Mitsubishi Heavy Ind Ltd Fixed tube plate type heat exchanger
US20080296005A1 (en) * 2005-02-02 2008-12-04 Carrier Corporation Parallel Flow Heat Exchanger For Heat Pump Applications
CN104913546A (en) * 2014-03-12 2015-09-16 中国科学院广州能源研究所 Pure countercurrent compact type pipe folding economizer
KR20180068659A (en) * 2016-12-14 2018-06-22 현대자동차주식회사 Heat exchange pipe and fuel cell system comprising the same
CN114198910A (en) * 2020-08-31 2022-03-18 广东万和新电气股份有限公司 Heat exchange piece and heating appliance
CN218755576U (en) * 2022-11-15 2023-03-28 常州江南冶金科技有限公司 Tube nest heat exchanger for coke oven ascending tube

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN119197142A (en) * 2024-12-02 2024-12-27 圣春散热器有限公司 A steel-aluminum composite radiator with multiple heat dissipation structures
CN119197142B (en) * 2024-12-02 2025-01-24 圣春散热器有限公司 Steel-aluminum composite radiator with multiple radiating structures

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Denomination of invention: A biomimetic parallel flow heat exchanger

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