CN222256840U - Air conditioner - Google Patents

Air conditioner Download PDF

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Publication number
CN222256840U
CN222256840U CN202323308302.9U CN202323308302U CN222256840U CN 222256840 U CN222256840 U CN 222256840U CN 202323308302 U CN202323308302 U CN 202323308302U CN 222256840 U CN222256840 U CN 222256840U
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China
Prior art keywords
heat
plate
radiating
air conditioner
electric control
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CN202323308302.9U
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Chinese (zh)
Inventor
王晓斌
吴川智
司传岭
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Qingdao Hisense Network Energy Co ltd
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Qingdao Hisense Network Energy Co ltd
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Priority to CN202323308302.9U priority Critical patent/CN222256840U/en
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Abstract

The utility model relates to an air conditioner, which belongs to the technical field of air conditioners and comprises a machine body, a heat exchange air outlet, a first heat exchanger, a second heat exchanger, a compressor, an electric control plate, a heat dissipation plate and a heat dissipation pipe, wherein a first cavity and a second cavity are formed in the machine body, the heat exchange air outlet is communicated with the first cavity, the first heat exchanger is arranged in the first cavity, and the second heat exchanger is arranged in the second cavity. The compressor is arranged in the first chamber and used for outputting the refrigerant to the first heat exchanger and the second heat exchanger, the electric control plate is arranged in the first chamber, the radiating plate is connected with the electric control plate, the radiating pipe is connected and communicated with the compressor, the radiating pipe penetrates through the radiating plate, and the compressor is used for outputting the refrigerant and passes through the radiating pipe.

Description

Air conditioner
Technical Field
The application relates to the technical field of air conditioners, in particular to an air conditioner.
Background
An air conditioner is an apparatus for adjusting and controlling parameters such as temperature, humidity, and flow rate of ambient air in a building or structure by manual means. The energy-storage air conditioner is an advanced air conditioner which adopts an energy storage technology, can store redundant electric energy at a specific time and release the electric energy when needed, and plays a role in peak clipping and valley filling.
In the prior art, the energy storage air conditioner comprises a machine body, a first heat exchanger, a second heat exchanger, a compressor and a heat exchange fan, wherein a refrigerant flows in the first heat exchanger and the second heat exchanger through the compressor, and the heat exchange fan is utilized to enable air flow to pass through the first heat exchanger so as to realize heat exchange. In addition, the inside automatically controlled board that still is provided with of organism, automatically controlled board are used for being connected with the electrical apparatus such as compressor, heat exchange fan electricity.
But because the electric control plate is arranged inside the machine body, the heat in the machine body is higher in the working process of the air conditioner. The air-cooled heat dissipation can not meet the use requirement of the air-conditioning high-temperature environment. Poor heat dissipation under high temperature environment leads to the overheated shut down of air conditioning module, causes the influence to the safe handling of energy storage power station.
Disclosure of utility model
The present utility model solves at least one of the technical problems in the related art to a certain extent.
Therefore, the application aims to provide an air conditioner, the heat generated by an electric control plate is transmitted to a radiating plate, part of refrigerant is input into a radiating pipe through a compressor, and the refrigerant flowing in the radiating pipe takes away the heat of the radiating plate, so that the cooling of the radiating plate and the electric control plate is realized.
In order to achieve the above object, the present utility model provides an air conditioner comprising:
the device comprises a body, a first cavity and a second cavity, wherein the body is internally provided with the first cavity and the second cavity;
The heat exchange air outlet is communicated with the first chamber;
the first heat exchanger is arranged in the first chamber;
the heat exchange fan is arranged in the first chamber and is used for outputting the air flow subjected to heat exchange of the first heat exchanger through the heat exchange air outlet;
The second heat exchanger is arranged in the second chamber;
the compressor is arranged in the first chamber and is used for outputting a refrigerant to the first heat exchanger and the second heat exchanger;
the electric control plate is arranged in the first cavity;
the radiating plate is connected with the electric control plate;
The cooling device comprises a compressor, a cooling pipe and a cooling pipe, wherein the cooling pipe is connected and communicated with the compressor, the cooling pipe penetrates through the cooling plate, and the compressor is used for outputting a refrigerant and passes through the cooling pipe.
In the technical scheme, heat generated by the electric control plate is transmitted to the radiating plate, part of refrigerant is input into the radiating pipe through the compressor, and the refrigerant flowing in the radiating pipe takes away the heat of the radiating plate, so that the cooling of the radiating plate and the electric control plate is realized.
In addition, the present application also provides an air conditioner, comprising:
the device comprises a body, a first cavity and a second cavity, wherein the body is internally provided with the first cavity and the second cavity;
The heat exchange air outlet is communicated with the first chamber;
the first heat exchanger is arranged in the first chamber;
the heat exchange fan is arranged in the first chamber and is used for outputting the air flow subjected to heat exchange of the first heat exchanger through the heat exchange air outlet;
The second heat exchanger is arranged in the second chamber;
the compressor is arranged in the first chamber and is used for outputting a refrigerant to the first heat exchanger and the second heat exchanger;
the electric control plate is arranged in the first cavity;
the radiating plate is connected with the electric control plate;
The radiating pipe is connected and communicated with the compressor and penetrates through the radiating plate;
And the compression pump is used for outputting the refrigerant to the radiating pipe.
In the technical scheme, heat generated by the electric control plate is transmitted to the radiating plate, part of refrigerant is input into the radiating pipe through the compression pump, and the refrigerant flowing in the radiating pipe takes away the heat of the radiating plate, so that the cooling of the radiating plate and the electric control plate is realized.
In some embodiments of the present application, a heat conducting member is disposed between the electric control board and the heat dissipation board, and two sides of the heat conducting member are respectively attached to the electric control board and the heat dissipation board.
In the technical scheme, the heat conduction effect between the heat dissipation plate and the electric control plate is improved through the arrangement of the heat conduction piece.
In some embodiments of the present application, a mounting plate is disposed in the first chamber, the electric control board is mounted on the mounting plate, a yielding groove is formed on the mounting plate, and the heat conducting member is used for penetrating through the yielding groove.
In the technical scheme, install automatically controlled board in the first cavity of organism through the mounting panel to can be used for the heat conduction piece to pass through the groove of stepping down, in order to make things convenient for automatically controlled board and heat conduction piece laminating.
In some embodiments of the present application, the heat dissipation plate is provided with at least one threaded connection member, and the threaded connection member is threaded to the mounting plate through one end of the heat dissipation plate.
In the technical scheme, the threaded connecting piece is a common standard piece, and is convenient to purchase and select. And the installation process is simple to operate.
In some embodiments of the application, a post is provided on the mounting plate, the post being adapted to abut the electronic control board.
In the technical scheme, a certain distance is reserved between the electric control plate and the mounting plate through the support column, so that the contact between the electric control plate and air is increased, and the heat dissipation effect is improved.
In some embodiments of the present application, the heat dissipating tube includes a first heat dissipating section, a second heat dissipating section, and a connecting section for connecting and communicating the first heat dissipating section and the second heat dissipating section.
In the technical scheme, the refrigerant sequentially passes through the first heat dissipation section, the connecting section and the second heat dissipation section, so that heat on the heat dissipation plate is taken away.
In some embodiments of the present application, the heat dissipation plate is provided with a first embedding groove and a second embedding groove, the first heat dissipation section is used for penetrating through the first embedding groove, and the second heat dissipation section is used for penetrating through the second embedding groove.
In the technical scheme, the radiating pipes are embedded through the first embedded grooves and the second embedded grooves, so that the radiating pipes are surrounded by the radiating plates, the contact area of the radiating pipes and the radiating plates is increased, the heat exchange area is increased, and the heat exchange effect is improved.
In some embodiments of the present application, a side of the first embedded groove and the second embedded groove away from the electric control board penetrates through the heat dissipation board.
In the technical scheme, after first heat dissipation section and second heat dissipation section pass first embedded groove and second embedded groove respectively, first heat dissipation section and second heat dissipation section part can bulge the heating panel and keep away from one side of automatically controlled board, can press first heat dissipation section and second heat dissipation section through external force, and first heat dissipation section and second heat dissipation section are located the partial expansion of first embedded groove and second embedded inslot respectively to make first heat dissipation section and second heat dissipation section card that can stabilize go into first embedded groove and second embedded groove, improve the connection stability of cooling tube and heating panel.
In some embodiments of the present application, the radiating pipe is connected to a first control valve and a second control valve through two ends of the radiating plate respectively.
In the technical scheme, the flow of the refrigerant entering the radiating pipe is controlled through the first control valve and the second control valve, so that the radiating effect on the electric control plate is controlled.
Additional aspects and advantages of the utility model will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the utility model.
Drawings
Fig. 1 is a schematic view of an overall structure of an air conditioner according to an embodiment of the present application;
fig. 2 is a partial structural schematic view of an air conditioner according to an embodiment of the present application;
Fig. 3 is a side view of a partial structure of an air conditioner according to an embodiment of the present application;
Fig. 4 is a partial structural schematic view of an air conditioner according to an embodiment of the present application;
Fig. 5 is a partial structural schematic view of an air conditioner according to an embodiment of the present application;
fig. 6 is a partial structural schematic view of an air conditioner according to an embodiment of the present application;
fig. 7 is a partial structural schematic view of an air conditioner according to an embodiment of the present application;
Fig. 8 is a partial structural schematic view of an air conditioner according to an embodiment of the present application;
Fig. 9 is a schematic structural view of an electric control panel part of an air conditioner according to an embodiment of the present application;
fig. 10 is a schematic structural view of an electric control panel part of an air conditioner according to an embodiment of the present application;
fig. 11 is a schematic structural view of an electric control panel part of an air conditioner according to an embodiment of the present application;
fig. 12 is a cross-sectional view of an electric control panel part of an air conditioner according to an embodiment of the present application;
Fig. 13 is an exploded view of an electric control panel part of an air conditioner according to an embodiment of the present application;
fig. 14 is an exploded view of an electric control panel part of an air conditioner according to an embodiment of the present application;
Fig. 15 is a schematic structural view of a heat dissipating plate of an air conditioner according to an embodiment of the present application;
Fig. 16 is a schematic structural view of a radiating pipe of an air conditioner according to an embodiment of the present application.
In the above figures, 100 parts of a machine body, 200 parts of a heat exchange air outlet, 300 parts of a heat exchange fan, 400 parts of a compressor, 500 parts of an electric control plate, 600 parts of a heat dissipation plate, 601 parts of a first embedding groove, 602 parts of a second embedding groove, 700 parts of a heat dissipation pipe, 701 parts of a first heat dissipation section, 702 parts of a second heat dissipation section, 703 parts of a connecting section, 800 parts of a mounting plate, 801 parts of a support column, 900 parts of a heat conduction member, 110 parts of an input pipe, 120 parts of an output pipe.
Detailed Description
In the description of the present utility model, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc. indicate orientations or positional relationships based on the orientations or positional relationships shown in the drawings are merely for convenience in describing the present utility model and simplify the description, and do not indicate or imply that the device or element being referred to must have a specific orientation, be configured and operated in a specific orientation, and therefore should not be construed as limiting the present utility model.
In the present utility model, unless explicitly specified and limited otherwise, the terms "mounted," "connected," "secured," and the like are to be construed broadly, and may be, for example, fixedly connected, detachably connected, or integrally formed, mechanically connected, electrically connected, or communicable with each other, directly connected, indirectly connected through an intervening medium, or in communication between two elements or in an interactive relationship between two elements, unless otherwise explicitly specified. The specific meaning of the above terms in the present utility model can be understood by those of ordinary skill in the art according to the specific circumstances.
In the present utility model, unless expressly stated or limited otherwise, a first feature "up" or "down" a second feature may be the first and second features in direct contact, or the first and second features in indirect contact via an intervening medium. Moreover, a first feature being "above," "over" and "on" a second feature may be a first feature being directly above or obliquely above the second feature, or simply indicating that the first feature is level higher than the second feature. The first feature being "under", "below" and "beneath" the second feature may be the first feature being directly under or obliquely below the second feature, or simply indicating that the first feature is less level than the second feature.
For purposes of this disclosure, the terms "one embodiment," "some embodiments," "example," "a particular example," or "some examples," etc., mean that a particular feature, structure, material, or characteristic described in connection with the embodiment or example is included in at least one embodiment or example of the utility model. In this specification, schematic representations of the above terms are not necessarily directed to the same embodiment or example. Furthermore, the particular features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples. Furthermore, the different embodiments or examples described in this specification and the features of the different embodiments or examples may be combined and combined by those skilled in the art without contradiction.
The present utility model will be specifically described below by way of exemplary embodiments. It is to be understood that elements, structures, and features of one embodiment may be beneficially incorporated in other embodiments without further recitation.
In the present application, the air conditioner performs a refrigerating cycle of the hanging air conditioner by using a compressor, a condenser, an expansion valve, and an evaporator. The refrigeration cycle includes a series of processes involving compression, condensation, throttling, and evaporation, and supplies cold or heat to the air that has been conditioned and heat exchanged. The compressor compresses refrigerant gas in a low-temperature and low-pressure state and discharges refrigerant gas in a high-temperature and high-pressure state. The discharged refrigerant gas flows into the condenser. The condenser condenses the compressed refrigerant into a liquid phase, and heat is released to the surrounding environment through the condensation process. The expansion valve throttles the liquid-phase refrigerant in a high-temperature and high-pressure state condensed in the condenser to a low-pressure gas-liquid two-phase refrigerant.
In the evaporator, the refrigerant expanded in the expansion valve absorbs heat and evaporates, and then is in a low-temperature and low-pressure state, and then the refrigerant gas is returned to the compressor. The evaporator may achieve a cooling effect by exchanging heat with a material to be cooled using the latent heat of evaporation of the refrigerant.
The air conditioner comprises an indoor unit and an outdoor unit, wherein the indoor unit comprises a machine body. The air conditioner may adjust the temperature of the indoor space throughout the cycle. The outdoor unit of the wall-hung air conditioner refers to a portion of a refrigeration cycle including a compressor and an outdoor heat exchanger, the indoor unit of the wall-hung air conditioner includes an indoor heat exchanger, and an expansion valve may be provided in the indoor unit or the outdoor unit. The indoor heat exchanger and the outdoor heat exchanger may be used as a condenser or an evaporator, respectively. When the indoor heat exchanger is used as a condenser, the air conditioner is used as a heater of a heating mode, and when the indoor heat exchanger is used as an evaporator, the air conditioner is used as a cooler of a cooling mode.
Hereinafter, embodiments of the present application will be described in detail with reference to the accompanying drawings.
As shown in fig. 1 to 10, in an exemplary embodiment of the air conditioner according to the present utility model, the air conditioner includes a body 100, a heat exchange air outlet 200, a first heat exchanger, a second heat exchanger, a compressor 400, an electric control board 500, a heat dissipation plate 600, and a heat dissipation pipe 700, wherein the body 100 has a first chamber and a second chamber therein, the heat exchange air outlet 200 is communicated with the first chamber, the first heat exchanger is disposed in the first chamber, and the second heat exchanger is disposed in the second chamber.
The compressor 400 is disposed in the first chamber, the compressor 400 is used for outputting a refrigerant to the first heat exchanger and the second heat exchanger, the electric control board 500 is disposed in the first chamber, the heat dissipation board 600 is connected with the electric control board 500, the heat dissipation pipe 700 is connected and communicated with the compressor 400, the heat dissipation pipe 700 penetrates through the heat dissipation board 600, and the compressor 400 is used for outputting the refrigerant and passes through the heat dissipation pipe 700.
In the prior art, the development of energy storage makes the installation and use environment of the energy storage air conditioner more complicated and diversified, and part of areas have high annual environment temperature, and the island effect of the energy storage power station area in summer is added, so that the energy storage air conditioner can be used in a high-temperature environment. The use of the high-temperature environment ensures that the work of the air conditioner is consistent with increase and the heating is improved. Meanwhile, the high temperature of the external environment reduces the air cooling heat dissipation efficiency, and the air cooling heat dissipation can not meet the use requirement of the air conditioning high temperature environment. Poor heat dissipation under high temperature environment leads to the overheated shut down of air conditioning module, causes the influence to the safe handling of energy storage power station. In the present application, through the above scheme, the heat generated by the electric control board 500 is transferred to the heat dissipation board 600, and part of the refrigerant is input into the heat dissipation pipe 700 through the compressor 400, and the refrigerant flowing in the heat dissipation pipe 700 takes away the heat of the heat dissipation board 600, so as to achieve the cooling of the heat dissipation board 600 and the electric control board 500.
In some embodiments, the heat pipe 700 is made of a material with good heat conductivity, and a material with heat conductivity higher than 40×1w/m· ℃. In the present application, the material of the radiating pipe 700 is preferably copper in view of economical cost.
In some embodiments, the heat dissipation plate 600 is made of a material with good heat conduction performance, and a material with heat conduction higher than 40×1w/m· ℃. In the present application, the material of the heat dissipation plate 600 is preferably copper in view of economic cost.
Referring to all the drawings, in some embodiments, a heat conducting member 900 is disposed between the electric control board 500 and the heat dissipation board 600, and two sides of the heat conducting member 900 are respectively attached to the electric control board 500 and the heat dissipation board 600. Since the electric control board 500 has the capacitor, the welding point, and the like, a surface of the electric control board 500 facing the heat dissipation plate 600 is not smooth, so that the heat conduction effect between the heat dissipation plate 600 and the electric control board 500 is improved by the arrangement of the heat conduction member 900. Therefore, the heat conduction member 900 is made of flexible material, so that the heat conduction member 900 can cover the electric control board 500 more toward the side of the heat dissipation plate 600. The heat conductive member 900 is made of a material having good heat conductive properties, so that heat of the electronic control board 500 is transferred to the heat dissipation board 600 through the heat conductive member 900.
In some embodiments, to save costs, an input pipe 110 and an output pipe 120 are connected to both ends of the radiating pipe 700, respectively, and one end of the input pipe 110 is connected to and communicates with the radiating pipe 700 and the other end is connected to and communicates with an output end of the compressor 400. One end of the output pipe 120 is connected and communicated with the radiating pipe 700, and the other end is connected and communicated with the input end of the compressor 400.
In some embodiments, the radiating pipe 700 includes a first radiating section 701, a second radiating section 702, and a connecting section 703, the connecting section 703 being used to connect and communicate the first radiating section 701 and the second radiating section 702. The refrigerant sequentially passes through the first heat dissipation section 701, the connection section 703 and the second heat dissipation section 702, so as to take away the heat on the heat dissipation plate 600.
Further, one end of the input pipe 110 is connected to the first heat dissipation section 701, and the other end is connected to and communicates with the output end of the compressor 400. One end of the output pipe 120 is connected to and communicates with the second heat-dissipating section 702, and the other end is connected to and communicates with the input end of the compressor 400.
In some embodiments, the heat dissipation plate 600 is provided with a first embedding groove 601 and a second embedding groove 602, the first heat dissipation section 701 is used for penetrating through the first embedding groove 601, and the second heat dissipation section 702 is used for penetrating through the second embedding groove 602. The radiating pipe 700 is inserted into the first insertion groove 601 and the second insertion groove 602, so that the radiating pipe 700 is surrounded by the radiating plate 600, and the contact area between the radiating pipe 700 and the radiating plate 600 is increased, thereby improving the heat exchange area and the heat exchange effect.
In some embodiments, the first and second insert grooves 601 and 602 penetrate the heat dissipation plate 600 at a side remote from the electronic control board 500. After the first heat dissipation section 701 and the second heat dissipation section 702 respectively pass through the first embedding groove 601 and the second embedding groove 602, the first heat dissipation section 701 and the second heat dissipation section 702 can protrude out of one side of the heat dissipation plate 600 away from the electric control plate 500, the first heat dissipation section 701 and the second heat dissipation section 702 can be pressed by external force, and the parts of the first heat dissipation section 701 and the second heat dissipation section 702 respectively located in the first embedding groove 601 and the second embedding groove 602 expand, so that the first heat dissipation section 701 and the second heat dissipation section 702 can be firmly clamped into the first embedding groove 601 and the second embedding groove 602, and the connection stability of the heat dissipation pipe 700 and the heat dissipation plate 600 is improved.
In some embodiments, the first and second heat-dissipating segments 701, 702 are the same length and are disposed parallel to each other. The connecting section 703 is in a circular arc shape, and two ends of the connecting section 703 are respectively connected and communicated with one end of the first heat dissipation section 701 and one end of the second heat dissipation section 702, which face the connecting section 703. The first embedded groove 601 and the second embedded groove 602 are also arranged in parallel, and the distance between the first embedded groove 601 and the second embedded groove 602 is the same as the distance between the first heat dissipation section 701 and the second heat dissipation section 702.
In the installation process, the first heat dissipation section 701, the second heat dissipation section 702 and the connection section 703 are separated, after the first heat dissipation section 701 and the second heat dissipation section 702 are respectively inserted into the first embedding groove 601 and the second embedding groove 602, two ends of the connection section 703 are respectively connected with the first heat dissipation section 701 and the second heat dissipation section 702, and the connection modes include, but are not limited to, welding, interference connection and the like.
Or, the first heat-dissipating section 701, the second heat-dissipating section 702 and the connection section 703 are integrally formed, and the first heat-dissipating section 701 and the second heat-dissipating section 702 are inserted into the first insert groove 601 and the second insert groove 602, respectively.
Or, the heat pipe 700 is a single pipe, and after being inserted into the first insertion groove 601, the heat pipe 700 is bent and inserted into the second insertion groove 602, the portion located in the first insertion groove 601 is a first heat radiation section 701, the portion located in the second insertion groove 602 is a second heat radiation section 702, and the bent portion is a connection section 703.
After the radiating pipe 700 is embedded into the radiating plate 600 through the first embedding groove 601 and the second embedding groove 602, the peripheral walls of the first radiating section 701 and the second radiating section 702 protruding out of the radiating plate 600 are flattened through a flattening process, so that the copper pipe is positioned on one side of the opening of the first embedding groove 601 and the second embedding groove 602 and one side of the radiating plate 600 deviating from the electric control plate 500. After the heat dissipation pipe 700 is flattened, the heat dissipation pipe 700 is tightly attached to the heat dissipation plate 600 due to deformation and expansion of the heat dissipation pipe, and the fixation is firm.
Finally, the heat conducting member 900 is installed and the heat conducting member 900 is attached to the electronic control board 500.
Referring to all the drawings, in some embodiments, a mounting plate 800 is disposed in the first chamber, the electronic control board 500 is mounted on the mounting plate 800, a yielding groove is formed on the mounting plate 800, and the heat conducting member 900 is used to pass through the yielding groove. The electric control plate 500 is installed in the first cavity of the machine body 100 through the installation plate 800, and the heat conduction member 900 can pass through the abdication groove, so that the electric control plate 500 is convenient to be attached to the heat conduction member 900.
In some embodiments, the electronic control board 500 is parallel to the mounting board 800, and the heat dissipating board 600 is parallel to the electronic control board 500. The mounting plate 800 is located between the heat radiating plate 600 and the electronic control board 500. The electric control board 500 and the heat dissipation plate 600 are conveniently installed.
In some embodiments, the mounting plate 800 is parallel to the front side of the body 100. The structural design is reasonable.
In some embodiments, the heat sink 600 is threaded with at least one threaded connection that is threaded through one end of the heat sink 600 to the mounting plate 800. The threaded connecting piece is a common standard piece, and is convenient to purchase and select. And the installation process is simple to operate.
Referring to the drawings in full, in some embodiments, a post 801 is provided on the mounting plate 800, the post 801 being adapted to abut the electronic control plate 500. The support posts 801 enable a certain distance to be reserved between the electric control plate 500 and the mounting plate 800, so that the contact between the electric control plate 500 and air is increased, and the heat dissipation effect is improved.
In some embodiments, the support posts 801 are cylindrical and perpendicular to the mounting plate 800, and a plurality of support posts 801 are spaced apart, the plurality of support posts 801 supporting the electronic control board 500, thereby increasing the support of the electronic control board 500.
In some embodiments, the electronic control board 500 is threaded with a threaded connection that is threaded through one end of the electronic control board 500 and is threadably coupled to the post 801. The number of threaded connections is the same as and one-to-one with the number of struts 801.
In some embodiments, the heat conductive member 900 is connected to the heat dissipation plate 600 through a screw connection member, and one end of the screw connection member passing through the heat conductive member 900 is screw-connected to the heat dissipation plate 600.
In some embodiments, the radiating pipe 700 is connected to a first control valve and a second control valve through both ends of the radiating plate 600, respectively. The flow rate of the refrigerant entering the radiating pipe 700 is controlled by the first control valve and the second control valve, thereby controlling the radiating effect on the electric control board 500.
In some embodiments, the first control valve and the second control valve are solenoid valves and are electrically connected to the electronic control board 500, and the first control valve and the second control valve are controlled by a program to adjust the flow of the refrigerant passing through the heat dissipation pipe 700, so as to change the heat dissipation of the electronic control board 500.
In some embodiments, a heat exchange fan is further disposed inside the machine body 100, and the heat exchange fan is disposed in the first chamber and is configured to output the airflow after heat exchange by the first heat exchanger through the heat exchange air outlet 200. The heat exchange fan blows the air flow in the first chamber, thereby helping the heat dissipation plate 600 and the electric control plate 500 dissipate heat.
In some embodiments, the heat exchange fan includes a heat exchange fan 300, and a heat exchange motor, an output shaft of which is connected to the heat exchange fan 300, and the heat exchange motor is used to drive the heat exchange fan 300 to rotate.
In some embodiments, the heat exchange fan 300 is located at the heat exchange air outlet 200, so as to increase the air output.
In addition, the application also provides an air conditioner which comprises a machine body 100, a heat exchange air outlet 200, a first heat exchanger, a second heat exchanger, a compressor 400, an electric control plate 500, a heat dissipation plate 600, a heat dissipation pipe 700 and a compression pump, wherein the interior of the machine body 100 is provided with a first chamber and a second chamber, the heat exchange air outlet 200 is communicated with the first chamber, the first heat exchanger is arranged in the first chamber, and the second heat exchanger is arranged in the second chamber.
The compressor 400 is disposed in the first chamber, the compressor 400 is used for outputting the refrigerant to the first heat exchanger and the second heat exchanger, the electric control board 500 is disposed in the first chamber, the heat dissipation board 600 is connected with the electric control board 500, the heat dissipation pipe 700 is connected and communicated with the compressor 400, the heat dissipation pipe 700 penetrates through the heat dissipation board 600, and the compression pump is used for outputting the refrigerant to the heat dissipation pipe 700.
Through the above scheme, the heat generated by the electric control board 500 is transferred to the heat dissipation board 600, part of the refrigerant is input into the heat dissipation pipe 700 through the compression pump, and the refrigerant flowing in the heat dissipation pipe 700 takes away the heat of the heat dissipation board 600, so as to realize the cooling of the heat dissipation board 600 and the electric control board 500. In this scheme, the compressor pump is separately arranged to drive the refrigerant into the radiating pipe 700, so that the compressor 400 is not required to convey the refrigerant to the radiating pipe 700, and the power of the compressor 400 is not occupied. When the air conditioner is not in the operation state, that is, when the compressor 400 is stopped, the compressor pump may be used alone to output the refrigerant for the heat dissipation pipe 700, and the electric control board 500 may be used alone to dissipate heat.
It is noted that in this solution the compression pump has an input and an output. One end of the input pipe 110 is connected to the first heat radiation section 701, and the other end is connected to and connected to the output end of the compression pump. One end of the output pipe 120 is connected to and communicates with the second heat-dissipating segment 702, and the other end is connected to and communicates with the input end of the compression pump. The remaining set-up of this protocol is otherwise identical to that described herein above.
While embodiments of the present utility model have been shown and described above, it will be understood that the above embodiments are illustrative and not to be construed as limiting the utility model, and that variations, modifications, alternatives and variations may be made to the above embodiments by one of ordinary skill in the art within the scope of the utility model.

Claims (10)

1. An air conditioner, characterized in that it comprises:
the device comprises a body, a first cavity and a second cavity, wherein the body is internally provided with the first cavity and the second cavity;
The heat exchange air outlet is communicated with the first chamber;
the first heat exchanger is arranged in the first chamber;
the heat exchange fan is arranged in the first chamber and is used for outputting the air flow subjected to heat exchange of the first heat exchanger through the heat exchange air outlet;
The second heat exchanger is arranged in the second chamber;
the compressor is arranged in the first chamber and is used for outputting a refrigerant to the first heat exchanger and the second heat exchanger;
the electric control plate is arranged in the first cavity;
the radiating plate is connected with the electric control plate;
The cooling device comprises a compressor, a cooling pipe and a cooling pipe, wherein the cooling pipe is connected and communicated with the compressor, the cooling pipe penetrates through the cooling plate, and the compressor is used for outputting a refrigerant and passes through the cooling pipe.
2. An air conditioner, characterized in that it comprises:
the device comprises a body, a first cavity and a second cavity, wherein the body is internally provided with the first cavity and the second cavity;
The heat exchange air outlet is communicated with the first chamber;
the first heat exchanger is arranged in the first chamber;
the heat exchange fan is arranged in the first chamber and is used for outputting the air flow subjected to heat exchange of the first heat exchanger through the heat exchange air outlet;
The second heat exchanger is arranged in the second chamber;
the compressor is arranged in the first chamber and is used for outputting a refrigerant to the first heat exchanger and the second heat exchanger;
the electric control plate is arranged in the first cavity;
the radiating plate is connected with the electric control plate;
The radiating pipe is connected and communicated with the compressor and penetrates through the radiating plate;
And the compression pump is used for outputting the refrigerant to the radiating pipe.
3. An air conditioner according to claim 1 or 2, wherein a heat conducting member is arranged between the electric control plate and the heat radiating plate, and two sides of the heat conducting member are respectively attached to the electric control plate and the heat radiating plate.
4. The air conditioner of claim 3, wherein a mounting plate is disposed in the first chamber, the electric control plate is mounted on the mounting plate, a relief groove is formed in the mounting plate, and the heat conducting member is used for penetrating through the relief groove.
5. The air conditioner of claim 4, wherein the heat radiating plate is provided with at least one screw connection member, and the screw connection member is screw-connected to the mounting plate through one end of the heat radiating plate.
6. An air conditioner according to claim 3 wherein a post is provided on the mounting plate for abutting the electrical control panel.
7. The air conditioner of claim 3, wherein the radiating pipe includes a first radiating section, a second radiating section, and a connecting section for connecting and communicating the first radiating section and the second radiating section.
8. The air conditioner of claim 7, wherein the heat dissipating plate is provided with a first embedded groove and a second embedded groove, the first heat dissipating section is configured to be inserted into the first embedded groove, and the second heat dissipating section is configured to be inserted into the second embedded groove.
9. The air conditioner of claim 8, wherein a side of the first and second insertion grooves remote from the electric control panel penetrates the heat radiating plate.
10. An air conditioner according to any one of claims 1 or 2, wherein the radiating pipe is connected with a first control valve and a second control valve through both ends of the radiating plate, respectively.
CN202323308302.9U 2023-12-05 2023-12-05 Air conditioner Active CN222256840U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202323308302.9U CN222256840U (en) 2023-12-05 2023-12-05 Air conditioner

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202323308302.9U CN222256840U (en) 2023-12-05 2023-12-05 Air conditioner

Publications (1)

Publication Number Publication Date
CN222256840U true CN222256840U (en) 2024-12-27

Family

ID=93988240

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202323308302.9U Active CN222256840U (en) 2023-12-05 2023-12-05 Air conditioner

Country Status (1)

Country Link
CN (1) CN222256840U (en)

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