CN209861429U - Radiator cooled by medium, air-conditioning frequency converter with radiator and electronic equipment - Google Patents

Radiator cooled by medium, air-conditioning frequency converter with radiator and electronic equipment Download PDF

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Publication number
CN209861429U
CN209861429U CN201920176655.2U CN201920176655U CN209861429U CN 209861429 U CN209861429 U CN 209861429U CN 201920176655 U CN201920176655 U CN 201920176655U CN 209861429 U CN209861429 U CN 209861429U
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medium
radiator
shell
heat exchange
cooled
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CN201920176655.2U
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方真健
徐广安
李和根
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Zhejiang Intech Technology Co., Ltd
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Extek Energy Equipment Zhejiang Ltd
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Abstract

The utility model relates to a field especially relates to a with medium cooling's radiator to and air conditioner converter, electronic equipment who has this radiator. A radiator cooled with a medium, comprising a radiator housing; the radiator shell is provided with a cooling medium inlet and a cooling medium outlet, and a medium heat exchange channel communicated with the cooling medium inlet and the cooling medium outlet is arranged in the radiator shell; and a part of the side wall of the radiator shell forms a heat exchange surface for connecting a heating source. The medium heat exchange channel formed in the scheme of the radiator cooled by the medium can be uniformly distributed inside the whole radiator shell without being limited by the number of copper pipe loops, so that the whole heat exchange area can be comprehensively covered, the heat exchange effect is improved, and the heat exchange uniformity is ensured.

Description

Radiator cooled by medium, air-conditioning frequency converter with radiator and electronic equipment
Technical Field
The utility model relates to a field especially relates to a with medium cooling's radiator to and air conditioner converter, electronic equipment who has this radiator.
Background
At present, a plurality of heating components are arranged in the electric appliance, the heat of the heating components needs to be timely and effectively dissipated, and the use effect and the service life of the electric appliance can be influenced if the heat cannot be timely and effectively dissipated. In the field of electronic devices, in order to control the temperature of an electronic component within a proper temperature range, a heat sink is usually fixed on the surface of the electronic component, and fins on the heat sink diffuse heat outwards, thereby reducing the temperature of the electronic component. Or in the air conditioning field, the converter module plays a power conversion and enlargies effect in whole converter, wherein because switching loss and the resistance of module itself, can produce the heat in its working process, the unit power that the converter corresponds is big more moreover, calorific capacity is big more, if these heats are not in time dispelled, can influence module performance or even burn out the module.
At present, the common heat dissipation modes in the industry mainly include forced convection heat dissipation by fans, radiation heat dissipation by cooling fins, heat dissipation by cooling tubes and water cooling heat dissipation. In contrast, the water cooling heat dissipation method has the advantages of better heat dissipation effect and less noise. However, the existing water-cooling heat dissipation mode mostly adopts a refrigerant pipeline and a heat dissipation plate, namely, the heat source transfers heat to a heat dissipation plate through heat-conducting silica gel, a copper pipe bearing a main loop refrigerant is buried in the heat dissipation plate, and finally the heat is taken away by the refrigerant in the copper pipe. However, the structure is limited by the use of copper tubes and heat-conducting silica gel, and the cost and the process complexity (such as the length of a copper tube circuitous tube pass) are considered, so that the radiator has the defects of uneven heat dissipation, poor heat dissipation effect and higher manufacturing cost.
Disclosure of Invention
In order to solve the above problem, a first object of the present invention is to provide a radiator with medium cooling, which is a medium heat exchange channel formed in the radiator scheme with medium cooling, and can be uniformly distributed inside the whole radiator casing without being limited by the copper pipe loop, so as to cover the whole heat exchange area completely, thereby improving the heat exchange effect and ensuring the uniformity of heat exchange. A second object of the present invention is to provide an air-conditioning inverter having the above heat sink. A third object of the present invention is to provide an electronic device, which has the above heat sink.
In order to achieve the above purpose, the utility model adopts the following technical scheme:
a radiator cooled with a medium, comprising a radiator housing; the method is characterized in that: the radiator shell is provided with a cooling medium inlet and a cooling medium outlet, and a medium heat exchange channel communicated with the cooling medium inlet and the cooling medium outlet is arranged in the radiator shell; and a part of the side wall of the radiator shell forms a heat exchange surface for connecting a heating source.
Preferably, the heat exchange surface is a plane for being in close contact with the heat generating source directly or through a heat conducting medium. In the technical scheme, the plane is adopted to enable the contact area to be more compact, and the heat conduction efficiency is ensured. Furthermore, the inner side wall surface of the heat exchange surface forms a part of the medium flow channel and exchanges heat with the cooling medium, and the heat exchange efficiency is improved.
Preferably, a distribution channel communicated with the cooling medium inlet and a collection channel communicated with the cooling medium outlet are arranged in the radiator shell; and the two end parts of the medium heat exchange channel are communicated with the distribution channel and the collection channel.
Preferably, a first clapboard is arranged in the radiator shell to divide the medium heat exchange channel into a plurality of mutually independent medium flow channels; the medium flow channel is in a linear shape, a fold line shape or a corrugated shape. In the scheme, the medium heat exchange channel is divided into a plurality of mutually independent medium flow channels, so that the cooling medium can be guided; the medium flows into a plurality of medium flow channels after being distributed by the distribution channels, so that the heat exchange of the medium in the whole medium heat exchange channel is uniform.
Preferably, the medium heat exchange channel comprises a plurality of medium flow channels which are crossed in a net shape; the cooling medium can form turbulent flow and turbulent flow in the medium flow channel, so that the temperature layering of the medium is disturbed, and the heat exchange effect is greatly improved.
Preferably, the radiator shell is formed by butting two shell units, and a plurality of mutually independent medium flow channels are arranged on the inner side butting faces of the two shell units; when the two shell units are compositely connected, the medium flow channels on the two shell units are crossed in a net shape. On the basis of the scheme that the medium channels which are crossed in a net shape form the medium heat exchange channels, how to realize the medium channels which are crossed in the net shape is further limited, two shell units are compositely connected in the scheme, the medium channels which are independent from each other on the single shell unit are crossed to form the net shape, the shell units are generally manufactured integrally, the structure is simplified, and the production efficiency is improved.
Preferably, the radiator shell is formed by butting two shell units, wherein a plurality of meshed crossed medium flow passages are arranged on the inner butting surface of one shell unit. In the scheme, the meshed crossed medium flow channels are manufactured on a single shell unit and then are butted with another shell unit to form the radiator shell.
Preferably, a second partition plate is arranged in the radiator shell, and the second partition plate divides a medium heat exchange channel between the cooling medium inlet and the cooling medium outlet into a plurality of circuitous channel sections. In the scheme, the plurality of circuitous channel sections obtained by separating the second partition plates increase the tube pass of the cooling medium in the radiator shell, and also prolong the heat exchange time of the cooling medium in the radiator shell, thereby ensuring the heat exchange effect.
Preferably, a third partition plate is arranged in the radiator shell, and the third partition plate divides the circuitous channel section into a plurality of mutually independent medium flow channels. On the basis of the scheme of enabling the cooling medium to be repeatedly circuitous for heat exchange, the circuitous channel section is further divided into a plurality of mutually independent medium flow channels by the third partition plate, and compared with the prior art, the temperature stratification of the cooling medium in the medium flow channels is smaller, and the heat exchange efficiency is better.
An air conditioner frequency converter is characterized by comprising the radiator cooled by the medium.
An electronic device, characterized by comprising a radiator cooled with a medium as described in any one of the above.
The invention adopts the technical scheme, namely the radiator cooled by the medium, and the air-conditioning frequency converter and the electronic equipment with the radiator. In the radiator, a medium heat exchange channel is directly formed inside a radiator shell, and forms a whole heat exchange medium path together with a cooling medium inlet and a cooling medium outlet. Compared with the scheme that the medium channel is formed by the copper pipe in the traditional scheme, the scheme omits the copper pipe and the heat conduction silica gel which must be adopted, and the cost is reduced. And, compared with the contrast, the medium heat transfer passageway that constitutes in this scheme can evenly distributed inside whole radiator shell, and need not by how much of copper pipe return circuit to prescribe a limit to, so can cover whole heat transfer region comprehensively, promote the heat transfer effect and guarantee that the heat transfer is even.
Drawings
Fig. 1 is a schematic view of a front side of a radiator cooled by a medium.
Fig. 2 is a side view of a radiator cooled by a medium.
Fig. 3 is a schematic diagram of a top surface of a heat sink cooled by a medium.
Fig. 4 is a first embodiment of the heat sink of example 1.
Fig. 5 is a second embodiment of the heat sink of example 1.
Fig. 6 is a schematic view of a housing unit in the second embodiment shown in fig. 5.
Fig. 7 is a first embodiment of the heat sink of example 2.
Fig. 8 is a second embodiment of the heat sink of example 2.
Detailed Description
Reference will now be made in detail to embodiments of the present invention, examples of which are illustrated in the accompanying drawings, wherein like reference numerals refer to the same or similar elements or elements having the same or similar function throughout. The embodiments described below with reference to the drawings are exemplary and intended to be used for explaining the present invention, and should not be construed as limiting the present invention.
In the description of the present invention, it is to be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "clockwise", "counterclockwise" and the like indicate orientations or positional relationships based on the orientations or positional relationships shown in the drawings, and are only for convenience of description and to simplify the description, but do not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore should not be construed as limiting the present invention.
Furthermore, the terms "first", "second" and "first" are used for descriptive purposes only and are not to be construed as indicating or implying relative importance or implicitly indicating the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of the present invention, unless otherwise specified, "a plurality" means two or more unless explicitly defined otherwise.
In the present invention, unless otherwise expressly specified or limited, the terms "mounted," "connected," and "fixed" are to be construed broadly and may, for example, be fixedly connected, detachably connected, or integrally connected; can be mechanically or electrically connected; they may be connected directly or indirectly through intervening media, or they may be interconnected between two elements. The specific meaning of the above terms in the present invention can be understood according to specific situations by those skilled in the art.
In the present disclosure, unless expressly stated or limited otherwise, the first feature "on" or "under" the second feature may comprise direct contact between the first and second features, or may comprise contact between the first and second features not directly. Also, the first feature being "on," "above" and "over" the second feature includes the first feature being directly on and obliquely above the second feature, or merely indicating that the first feature is at a higher level than the second feature. A first feature being "under," "below," and "beneath" a second feature includes the first feature being directly under and obliquely below the second feature, or simply meaning that the first feature is at a lesser elevation than the second feature.
Example 1:
a radiator cooled by a medium as shown in fig. 1 to 6 includes a radiator housing 1. The radiator shell 1 is provided with a cooling medium inlet 11 and a cooling medium outlet 12, and a medium heat exchange channel for communicating the cooling medium inlet 11 and the cooling medium outlet 12 is arranged in the radiator shell 1. In the solution shown in the figure, a distribution channel 13 communicated with the cooling medium inlet 11 and a collection channel 14 communicated with the cooling medium outlet 12 are arranged inside the radiator housing 1, and both ends of the medium heat exchange channel are communicated with the distribution channel 13 and the collection channel 14. The cooling medium inlet 11 and the cooling medium outlet 12 may be arranged on the same side or on different sides, but the medium flow path must not be short-circuited (i.e. the cooling medium does not flow out directly through the medium heat exchange channel). In one embodiment, as shown in fig. 4, a first partition plate 15 is provided inside the radiator housing 1 to divide the medium heat exchange channel into a plurality of mutually independent medium flow channels 16, the medium flow channels 16 are shown as being straight, but the medium flow channels 16 may be also provided as a zigzag shape or a corrugated shape by changing the shape of the first partition plate 15. In this embodiment, the medium heat exchange channel is divided into a plurality of mutually independent medium flow channels 16, which can guide the cooling medium. The medium flows into a plurality of medium flow channels 16 after being distributed by the distribution channel 13, so that the medium heat exchange in the whole medium heat exchange channel is uniform. In another embodiment, as shown in fig. 5, the medium heat exchange channel comprises a plurality of medium flow channels 16 intersecting in a net shape, which enables the cooling medium to form turbulence and turbulent flow in the medium flow channels 16, so that the temperature stratification of the medium is disturbed, and the heat exchange effect is greatly improved. The mesh-shaped intersecting medium flow channels 16 can be formed by separating a plurality of butt joints formed by composite welding in the radiator housing 1, for example, the butt joints after composite are arranged like a matrix, and the medium flow channels 16 between the butt joints are in a honeycomb shape or other irregular shapes. In another scheme, the radiator shell is formed by butt joint of two shell units, wherein a plurality of reticular crossed medium flow channels are arranged on the butt joint surface of the inner side of one shell unit; in the scheme, the meshed crossed medium flow channels are manufactured on a single shell unit and then are butted with another shell unit to form the radiator shell. In another advantageous embodiment, as shown in fig. 6, the radiator housing 1 is formed by two housing units that are butted together, and a plurality of independent medium flow channels 16 are provided on the inner butting faces of the housing units. When the two shell units are combined and connected, the medium flow channels 16 on the two shell units are crossed in a net shape. On the basis of the scheme that the medium channels 16 which are crossed in a net shape form a medium heat exchange channel, how to realize the medium channels 16 which are crossed in the net shape is further limited, two shell units are compositely connected in the scheme, the medium channels 16 which are independent from each other on the single shell unit are crossed to form the net shape, the shell units are generally manufactured in an integrated mode, the structure is simplified, and the production efficiency is improved.
A part of the side wall of the heat sink housing 1 forms a heat transfer surface 2 for connecting the heat source 3, and generally, the area of the heat transfer surface 2 contacting the heat source 3 is not less than the total heat transfer area of all the heat sources 3, i.e. the area of the heat transfer surface 2 is greater than the area of the heat transfer surface of the heat source 3. When the heat generating source is connected to the heat exchanging surface of the radiator, heat is first conducted to the radiator housing and then carried by the internal cooling medium to the outside of the radiator. Typically, the remainder 20 of the radiator housing 1 is covered with insulation or exposed directly to the air. In addition, the outer side surface of the heat exchange surface 2 is a plane and is used for being in close contact with the heating source 3 directly or through a heat conducting medium. The outer side wall surface of the heat exchange surface 2 is used for being connected with the heating source 3, so that the contact surface can be more compact by adopting a plane, and the heat conduction efficiency is ensured. Furthermore, the inner side wall surface of the heat exchange surface forms a part of the medium flow channel and exchanges heat with the cooling medium, and the heat exchange efficiency is improved.
In the radiator, the inside of the radiator shell 1 directly forms a medium heat exchange channel, and the medium heat exchange channel, the cooling medium inlet 11 and the cooling medium outlet 12 form a whole heat exchange medium path. When the heat exchanger is used, the cooling medium flows into the heat exchange medium heat exchange channel to take heat out of the radiator. Compared with the scheme that the medium channel is formed by the copper pipe in the traditional scheme, the scheme omits the copper pipe and the heat conduction silica gel which must be adopted, and the cost is reduced. And, compared with the contrast, the medium heat transfer passageway that constitutes in this scheme can evenly distributed inside whole radiator shell, and need not by how much of copper pipe return circuit to prescribe a limit to, so can cover whole heat transfer region comprehensively, promote the heat transfer effect and guarantee that the heat transfer is even.
Example 2:
the present embodiment also relates to a radiator cooled with a medium, comprising a radiator housing 1. The radiator shell 1 is provided with a cooling medium inlet 11 and a cooling medium outlet 12, and a medium heat exchange channel for communicating the cooling medium inlet 11 and the cooling medium outlet 12 is arranged in the radiator shell 1. The principle and the use mode of the embodiment are the same as those of the embodiment 1, and the difference is only that the structure of the medium heat exchange channel is different. In the embodiment, as shown in fig. 7, a second partition plate 18 is provided inside the radiator housing 1, and the second partition plate 18 divides the medium heat exchange passage between the cooling medium inlet 11 and the cooling medium outlet 12 into a plurality of circuitous passage sections 19. In this scheme, a plurality of circuitous channel sections 19 obtained by separating through the second partition plate 18 increase the tube pass of the cooling medium in the radiator housing 1, and also prolong the heat exchange time of the cooling medium in the radiator housing 1, thereby ensuring the heat exchange effect. In addition to the above, as shown in fig. 8, it is further preferable that a third partition plate 10 is further provided inside the radiator housing 1, and the third partition plate 10 divides the bypass passage section 19 into a plurality of independent medium flow passages 16. On the basis of the scheme of repeatedly roundabout heat exchange of the cooling medium, the roundabout channel section 19 is further divided into a plurality of mutually independent medium flow channels 16 by the third partition plate 10, and compared with the scheme, the temperature stratification of the cooling medium in the medium flow channels 16 is smaller, and the heat exchange efficiency is better.
Example 3:
the present embodiment relates to an electronic device including a radiator cooled with a medium as described in example 1 or example 2.
Example 4:
the present embodiment relates to an air-conditioning inverter comprising a radiator cooled with a medium as described in example 1 or example 2.
In the description herein, references to the description of the term "one embodiment," "some embodiments," "an example," "a specific 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 invention. In this specification, the schematic representations of the terms used above do not necessarily refer 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.
Although embodiments of the present invention have been shown and described, it is to be understood that the above embodiments are exemplary and should not be construed as limiting the present invention, and that changes, modifications, substitutions and alterations can be made to the above embodiments by those of ordinary skill in the art without departing from the principles and spirit of the present invention.
In the description herein, references to the description of the term "one embodiment," "some embodiments," "an example," "a specific 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 invention. In this specification, the schematic representations of the terms used above do not necessarily refer 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.
Although embodiments of the present invention have been shown and described, it is to be understood that the above embodiments are exemplary and should not be construed as limiting the present invention, and that changes, modifications, substitutions and alterations can be made to the above embodiments by those of ordinary skill in the art without departing from the principles and spirit of the present invention.

Claims (11)

1. A radiator cooled with a medium, comprising a radiator housing; the method is characterized in that: the radiator shell is provided with a cooling medium inlet and a cooling medium outlet, and a medium heat exchange channel communicated with the cooling medium inlet and the cooling medium outlet is arranged in the radiator shell; and a part of the side wall of the radiator shell forms a heat exchange surface for connecting a heating source.
2. A radiator cooled by a medium according to claim 1, wherein: the heat exchange surface is a plane which is used for being in close contact with the heating source directly or through a heat conducting medium.
3. A radiator cooled by a medium according to claim 1, wherein: a distribution channel communicated with a cooling medium inlet and a collection channel communicated with a cooling medium outlet are arranged in the radiator shell; and the two end parts of the medium heat exchange channel are communicated with the distribution channel and the collection channel.
4. A radiator cooled by a medium according to claim 3, wherein: a first clapboard is arranged in the radiator shell to divide the medium heat exchange channel into a plurality of mutually independent medium flow channels; the medium flow channel is in a linear shape, a fold line shape or a corrugated shape.
5. A radiator cooled by a medium according to claim 3, wherein: the medium heat exchange channel comprises a plurality of medium flow channels which are crossed in a net shape.
6. A radiator cooled by a medium according to claim 5, wherein: the radiator shell is formed by butt joint of two shell units, and a plurality of mutually independent medium flow channels are arranged on the butt joint surfaces of the inner sides of the two shell units; when the two shell units are compositely connected, the medium flow passages formed by the two shell units are crossed in a net shape.
7. A radiator cooled by a medium according to claim 5, wherein: the radiator shell is formed by butt joint of two shell units, wherein a plurality of reticular crossed medium flow channels are arranged on the butt joint surface of the inner side of one shell unit.
8. A radiator cooled by a medium according to claim 1, wherein: and a second clapboard is arranged in the radiator shell and divides a medium heat exchange channel between the cooling medium inlet and the cooling medium outlet into a plurality of circuitous channel sections.
9. A radiator cooled by a medium according to claim 8, wherein: and a third clapboard is arranged in the radiator shell and divides the circuitous channel section into a plurality of mutually independent medium flow channels.
10. An air conditioner inverter, characterized in that, comprises a radiator cooled by medium according to any one of claims 1 to 9.
11. An electronic device comprising the medium-cooled heat sink according to any one of claims 1 to 9.
CN201920176655.2U 2019-01-31 2019-01-31 Radiator cooled by medium, air-conditioning frequency converter with radiator and electronic equipment Active CN209861429U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201920176655.2U CN209861429U (en) 2019-01-31 2019-01-31 Radiator cooled by medium, air-conditioning frequency converter with radiator and electronic equipment

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201920176655.2U CN209861429U (en) 2019-01-31 2019-01-31 Radiator cooled by medium, air-conditioning frequency converter with radiator and electronic equipment

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN109640601A (en) * 2019-01-31 2019-04-16 英特换热设备(浙江)有限公司 A kind of radiator cooling with medium, and the air conditioning frequency converter with the radiator, electronic equipment

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN109640601A (en) * 2019-01-31 2019-04-16 英特换热设备(浙江)有限公司 A kind of radiator cooling with medium, and the air conditioning frequency converter with the radiator, electronic equipment

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Address after: 313300, Huzhou Industrial Zone, Anji Economic Development Zone, Zhejiang, three

Patentee after: Zhejiang Intech Technology Co., Ltd

Address before: 313300, Huzhou Industrial Zone, Anji Economic Development Zone, Zhejiang, three

Patentee before: EXTEK ENERGY EQUIPMENT (ZHEJIANG) Ltd.