CN209910478U - Annular radiating block capable of being spliced and expanded for use - Google Patents

Annular radiating block capable of being spliced and expanded for use Download PDF

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Publication number
CN209910478U
CN209910478U CN201920238973.7U CN201920238973U CN209910478U CN 209910478 U CN209910478 U CN 209910478U CN 201920238973 U CN201920238973 U CN 201920238973U CN 209910478 U CN209910478 U CN 209910478U
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CN
China
Prior art keywords
radiating
wing
heat
heat dissipation
block body
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Expired - Fee Related
Application number
CN201920238973.7U
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Chinese (zh)
Inventor
崔东风
崔伟
陈伟
朱永文
付建杰
夏少元
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Nanjing Tianxiang Electromechanical Co Ltd
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Nanjing Tianxiang Electromechanical Co Ltd
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Priority to CN201920238973.7U priority Critical patent/CN209910478U/en
Application granted granted Critical
Publication of CN209910478U publication Critical patent/CN209910478U/en
Expired - Fee Related legal-status Critical Current
Anticipated expiration legal-status Critical

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Abstract

The utility model discloses an annular radiating block that concatenation extension was used can carry out, including radiating block body and main radiating wing, the outside below of radiating block body is provided with the hem, main radiating wing is located the outside of radiating block body, the outside of main radiating wing is provided with vice radiating wing, and the inboard of vice radiating wing is provided with the heat conduction ring, the inboard of heat conduction ring is provided with the heat dissipation inner wing, and the inboard of heat dissipation inner wing is provided with the spread groove, the top of radiating block body is provided with the top radiating wing, and the inboard of top radiating wing is provided with the flank, the below of top radiating wing is provided with the heat-conducting plate, and the side below of heat-conducting plate is provided with the heat conduction connective bar. This annular radiating block that can splice extension use is provided with the heat conduction ring and the heat-conducting plate that can carry out the dismouting extension, can carry out nimble selectivity dismouting to heat conduction ring and heat-conducting plate in the use of device, is convenient for improve the radiating effect of device through vice radiating wing and top radiating wing.

Description

Annular radiating block capable of being spliced and expanded for use
Technical Field
The utility model relates to a radiating block correlation technique field specifically is an annular radiating block that can splice extension and use.
Background
The radiating block is mostly the many slice devices of being made by aluminum alloy or copper alloy, mainly be used for dispelling the heat for the piece that generates heat, improve the radiating efficiency through increase heat exchange surface, annular radiating block is a radiating block structure commonly used, current annular radiating block or set up the wing that dispels the heat in the outside, or dispel the heat at the top, but most annular radiating block structure itself is fixed, do not have extra extension radiating effect, be not convenient for expand the improvement to radiating efficiency according to the in-service use environment, the wing that dispels the heat of outside extension in the annular radiating block can become sparsely in the outside simultaneously, the utilization ratio to the heat dissipation space is relatively poor.
Aiming at the problems, the novel design is carried out on the basis of the original annular heat dissipation block.
SUMMERY OF THE UTILITY MODEL
An object of the utility model is to provide a can splice annular radiating block that extension was used to propose annular radiating block and do not have the extension radiating effect in solving above-mentioned background art, be not convenient for carry out nimble quick radiating problem.
In order to achieve the above object, the utility model provides a following technical scheme: the utility model provides an annular radiating block that can splice extension use, includes radiating block body and main radiating wing, the outside below of radiating block body is provided with the hem, and the inboard of hem is provided with the standing groove to the inboard of standing groove is provided with heat dissipation silica gel layer, main radiating wing is located the outside of radiating block body, and the inboard of main radiating wing is provided with connecting slot, the outside of main radiating wing is provided with vice radiating wing, and the inboard of vice radiating wing is provided with heat conduction ring, heat conduction ring's inboard is provided with the heat dissipation inner wing, and the inboard of heat dissipation inner wing is provided with the spread groove, the top of radiating block body is provided with the top radiating wing, and the inboard of top radiating wing is provided with the flank, the below of top radiating wing is provided with the heat-conducting plate, and the side below of heat-conducting plate is provided with the heat conduction connective bar.
Preferably, the radiating block body and the folded edge are of an integrated structure, and radiating silica gel layers are arranged on the inner side and the outer side of the radiating block body.
Preferably, the main radiating wings are uniformly distributed on the outer side of the radiating block body, the whole main radiating wings are of an arc-shaped structure, and the main radiating wings and the radiating block body are of an integrated structure.
Preferably, the auxiliary radiating fins are uniformly distributed on the outer side of the heat conducting ring, the whole auxiliary radiating fins are of an S-shaped structure, and the number of the auxiliary radiating fins is greater than that of the main radiating fins.
Preferably, the heat dissipation inner wings are uniformly distributed on the inner side of the heat conduction ring, the number of the heat dissipation inner wings is equal to that of the main heat dissipation wings, the main heat dissipation wings and the heat dissipation inner wings are connected with each other through connecting grooves, and meanwhile, a heat dissipation silica gel layer is arranged between the connecting grooves and the main heat dissipation wings.
Preferably, the top radiating wings are uniformly distributed above the heat conducting plate, the upper surface structures of the heat conducting plate and the radiating block body are mutually matched, the connecting slots are uniformly distributed on the outer side of the radiating block body, and meanwhile the heat conducting plate and the connecting slots are mutually connected through the heat conducting connecting rods.
Compared with the prior art, the beneficial effects of the utility model are that: the annular heat dissipation block can be spliced and expanded for use;
1. the heat-conducting ring and the heat-conducting plate which can be disassembled and expanded are arranged, the heat-conducting ring can be spliced with the main radiating wing through the connecting groove behind the radiating inner wing in the use process of the device, so that the side radiating surface of the device is conveniently improved through the auxiliary radiating wing and the radiating inner wing, and meanwhile, the heat-conducting plate can also be matched with the connecting slot, the heat-conducting connecting rod and the radiating silica gel layer to be arranged above the radiating block body for auxiliary radiating, so that the device can be flexibly expanded and used according to the internal radiating space, and the radiating effect of the device is improved;
2. the main radiating wings and the auxiliary radiating wings are bent, in the using process of the device, the curved surface structures of the main radiating wings and the auxiliary radiating wings can enable the device and external air flow to have larger heat exchange contact surfaces, so that the radiating effect of the device is improved, meanwhile, the auxiliary radiating wings with more numbers are arranged outside the heat conducting ring, the utilization rate of the external space during annular heat dissipation can be effectively improved, and the practicability of the device is improved.
Drawings
FIG. 1 is a schematic view of the utility model showing a top-down structure;
FIG. 2 is an enlarged schematic view of a portion of FIG. 1 according to the present invention;
FIG. 3 is a front sectional view of the present invention;
fig. 4 is an enlarged schematic view of the structure of fig. 3 b according to the present invention;
fig. 5 is a schematic top view of the present invention.
In the figure: 1. a heat dissipation block body; 2. folding edges; 3. a placement groove; 4. a heat dissipation silica gel layer; 5. a main radiating fin; 6. connecting the slots; 7. a secondary cooling fin; 8. a heat conducting ring; 9. a heat dissipating inner fin; 10. connecting grooves; 11. a top cooling fin; 12. a side wing; 13. a heat conducting plate; 14. a heat conducting connecting rod.
Detailed Description
The technical solutions in the embodiments of the present invention will be described clearly and completely with reference to the accompanying drawings in the embodiments of the present invention, and it is obvious that the described embodiments are only some embodiments of the present invention, not all embodiments. Based on the embodiments in the present invention, all other embodiments obtained by a person skilled in the art without creative work belong to the protection scope of the present invention.
Referring to fig. 1-5, the present invention provides a technical solution: an annular radiating block capable of being spliced and expanded for use comprises a radiating block body 1, a folded edge 2, a placing groove 3, a radiating silica gel layer 4, a main radiating wing 5, a connecting slot 6, an auxiliary radiating wing 7, a heat conducting ring 8, a radiating inner wing 9, a connecting groove 10, a top radiating wing 11, a side wing 12, a heat conducting plate 13 and a heat conducting connecting rod 14, wherein the folded edge 2 is arranged below the outer side of the radiating block body 1, the placing groove 3 is arranged on the inner side of the folded edge 2, the radiating silica gel layer 4 is arranged on the inner side of the placing groove 3, the main radiating wing 5 is positioned on the outer side of the radiating block body 1, the connecting slot 6 is arranged on the inner side of the main radiating wing 5, the auxiliary radiating wing 7 is arranged on the outer side of the main radiating wing 5, the heat conducting ring 8 is arranged on the inner side of the auxiliary radiating wing 7, the radiating inner wing 9 is arranged on the inner side of the heat conducting ring 8, the connecting groove 10 is arranged on, and the inner side of the top radiating fin 11 is provided with a side wing 12, a heat conducting plate 13 is arranged below the top radiating fin 11, and a heat conducting connecting rod 14 is arranged below the side of the heat conducting plate 13.
The radiating block body 1 and the folded edge 2 of the embodiment are of an integrated structure, and the inner side and the outer side of the radiating block body 1 are both provided with the radiating silica gel layers 4, so that the radiating block body 1 and the heating piece are conveniently in heat conduction connection.
The main radiating wings 5 are uniformly distributed on the outer side of the radiating block body 1, the whole main radiating wings 5 are of arc-shaped structures, the main radiating wings 5 and the radiating block body 1 are of integrated structures, the arc-shaped main radiating wings 5 can have larger heat exchange surfaces, and the radiating block body 1 is convenient to radiate.
The auxiliary radiating wings 7 are uniformly distributed on the outer side of the heat conducting ring 8, the whole auxiliary radiating wings 7 are of an S-shaped structure, the number of the auxiliary radiating wings 7 is larger than that of the main radiating wings 5, the whole radiating surface of the device is convenient to increase, and the external radiating space of the device is fully utilized.
Radiating inner wing 9 evenly distributed is in the inboard of heat conduction ring 8, and the figure of radiating inner wing 9 equals the figure of main radiating wing 5 to through spread groove 10 interconnect between main radiating wing 5 and the radiating inner wing 9, be provided with heat dissipation silica gel layer 4 between spread groove 10 and the main radiating wing 5 simultaneously, be convenient for carry out dismouting use, the radiating effect of convenient extension radiating block body 1 to heat conduction ring 8.
Top radiating wing 11 evenly distributed is in the top of heat-conducting plate 13, and the upper surface structure of heat-conducting plate 13 and radiating block body 1 coincide each other to the outside evenly distributed of radiating block body 1 has connecting slot 6, simultaneously through 14 interconnect of heat conduction connective bar between heat-conducting plate 13 and the connecting slot 6, accessible detachable top radiating wing 11 improves the top radiating effect of radiating block body 1.
The working principle is as follows: when the annular radiating block capable of being spliced and expanded for use is used, according to the graph shown in fig. 3-4, the radiating silica gel layer 4 is coated on the inner side of the radiating block body 1, the heating piece is attached to the inner side of the placing groove 3, the radiating block body 1 is installed on the outer side of the heating piece, and then the heat conduction ring 8 and the heat conduction plate 13 can be selectively installed according to the actual use space.
When the heat conduction ring 8 is installed, as shown in fig. 1-2, the heat dissipation silica gel layer 4 may be coated on the outer side of the main heat dissipation wing 5, then the connection groove 10 behind the heat dissipation inner wing 9 is aligned with the outer side of the main heat dissipation wing 5, the heat dissipation inner wing 9 and the main heat dissipation wing 5 are spliced through the connection groove 10, so that the heat conduction ring 8 is installed and fixed on the outer side of the main heat dissipation wing 5, and the heat dissipation effect of the device is improved through the main heat dissipation wing 5, the auxiliary heat dissipation wing 7 and the heat dissipation inner wing 9.
When the heat conducting plate 13 is installed, as shown in fig. 3-5, the heat-dissipating silica gel layer 4 may be coated on the top of the heat-dissipating block body 1, and then the heat-conducting connecting rod 14 below the heat conducting plate 13 is inserted into the inner side of the connecting slot 6 in an aligned manner, so that the lower surface of the heat conducting plate 13 and the heat-dissipating silica gel layer 4 above the heat-dissipating block body 1 are attached to each other, which is convenient for improving the heat-dissipating effect above the device, and then the device is fixed by the external frame to start normal auxiliary heat dissipation for the heat-generating component.
Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that changes, modifications, substitutions and alterations can be made in these embodiments without departing from the principles and spirit of the invention, the scope of which is defined in the appended claims and their equivalents.

Claims (6)

1. The utility model provides a can splice annular radiating block that extension used, includes radiating block body (1) and main radiating wing (5), its characterized in that: the radiating block is characterized in that a folded edge (2) is arranged below the outer side of the radiating block body (1), a placing groove (3) is arranged on the inner side of the folded edge (2), a radiating silica gel layer (4) is arranged on the inner side of the placing groove (3), the main radiating wing (5) is positioned on the outer side of the radiating block body (1), a connecting slot (6) is arranged on the inner side of the main radiating wing (5), an auxiliary radiating wing (7) is arranged on the outer side of the main radiating wing (5), a heat conducting ring (8) is arranged on the inner side of the auxiliary radiating wing (7), a radiating inner wing (9) is arranged on the inner side of the heat conducting ring (8), a connecting slot (10) is arranged on the inner side of the radiating inner wing (9), a top radiating wing (11) is arranged above the radiating block body (1), a side wing (12) is arranged on the inner side of the top radiating wing (11), a heat conducting plate (, and a heat conduction connecting rod (14) is arranged below the side of the heat conduction plate (13).
2. The annular heat dissipation block capable of being spliced and expanded for use as claimed in claim 1, wherein: the radiating block body (1) and the folded edge (2) are of an integrated structure, and radiating silica gel layers (4) are arranged on the inner side and the outer side of the radiating block body (1).
3. The annular heat dissipation block capable of being spliced and expanded for use as claimed in claim 1, wherein: the main radiating wings (5) are uniformly distributed on the outer side of the radiating block body (1), the whole main radiating wings (5) are of an arc-shaped structure, and the main radiating wings (5) and the radiating block body (1) are of an integrated structure.
4. The annular heat dissipation block capable of being spliced and expanded for use as claimed in claim 1, wherein: the auxiliary radiating wings (7) are uniformly distributed on the outer side of the heat conducting ring (8), the whole auxiliary radiating wings (7) are of an S-shaped structure, and the number of the auxiliary radiating wings (7) is larger than that of the main radiating wings (5).
5. The annular heat dissipation block capable of being spliced and expanded for use as claimed in claim 1, wherein: the heat dissipation inner wing (9) is uniformly distributed on the inner side of the heat conduction ring (8), the number of the heat dissipation inner wing (9) is equal to that of the main heat dissipation wings (5), the main heat dissipation wings (5) and the heat dissipation inner wing (9) are connected with each other through the connecting grooves (10), and meanwhile, the heat dissipation silica gel layer (4) is arranged between the connecting grooves (10) and the main heat dissipation wings (5).
6. The annular heat dissipation block capable of being spliced and expanded for use as claimed in claim 1, wherein: top radiating fin (11) evenly distributed is in the top of heat-conducting plate (13), and the upper surface structure of heat-conducting plate (13) and radiating block body (1) coincide each other to the outside evenly distributed of radiating block body (1) has connecting slot (6), simultaneously through heat conduction connective bar (14) interconnect between heat-conducting plate (13) and the connecting slot (6).
CN201920238973.7U 2019-02-26 2019-02-26 Annular radiating block capable of being spliced and expanded for use Expired - Fee Related CN209910478U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201920238973.7U CN209910478U (en) 2019-02-26 2019-02-26 Annular radiating block capable of being spliced and expanded for use

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201920238973.7U CN209910478U (en) 2019-02-26 2019-02-26 Annular radiating block capable of being spliced and expanded for use

Publications (1)

Publication Number Publication Date
CN209910478U true CN209910478U (en) 2020-01-07

Family

ID=69030990

Family Applications (1)

Application Number Title Priority Date Filing Date
CN201920238973.7U Expired - Fee Related CN209910478U (en) 2019-02-26 2019-02-26 Annular radiating block capable of being spliced and expanded for use

Country Status (1)

Country Link
CN (1) CN209910478U (en)

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CF01 Termination of patent right due to non-payment of annual fee
CF01 Termination of patent right due to non-payment of annual fee

Granted publication date: 20200107

Termination date: 20210226