Radiating pipe distribution structure
通过扰流散热管与非扰流散热管交错分布及阻挡件设计,解决了现有散热管流通效率和散热效率低的问题,实现了更高效的冷却效果。
Patent Information
- Application Number
- CN202422325178.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-24
- Publication Date
- 2025-07-08
- Estimated Expiration
- 2034-09-24
AI Technical Summary
The existing heat dissipation pipes have low circulation efficiency and heat dissipation efficiency in actual use, especially the single distribution of the spoiler heat dissipation pipes leads to poor heat dissipation effect of the radiator.
The structure of the spoiler heat dissipation pipe and the non-spoiler heat dissipation pipe are adopted, and combined with the design of the spoiler hole and the barrier member, the cooling liquid distribution is adjusted by adjusting the position of the barrier member to improve the heat dissipation efficiency.
Through interleaved distribution and barrier adjustment, the circulation efficiency and heat dissipation efficiency of the radiator are improved, and the heat exchange effect of the coolant in different intervals is enhanced.
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Figure CN223077479U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of heat dissipation pipes, in particular to a heat dissipation pipe distribution structure. Background Art
[0002] A heat pipe is a pipe made of metal for heat dissipation and transportation. It is mainly used in various refrigeration equipment. Existing heat pipes are mostly ordinary heat pipe arrangements and combinations. In order to achieve better heat dissipation effects, turbulent heat pipes are used for arrangement. Since the position of the heat dissipation liquid distribution in the heat pipe cannot be adjusted, it is inconvenient to use and distribute the radiator.
[0003] Patent application number 201720531844.8 discloses a multi-channel liquid-cooled radiator for new energy vehicles, including a liquid cooling plate, a water inlet, a water outlet, and a flow channel. By adopting a multi-channel parallel and series design and arranging spoiler ribs or spoiler columns on the inner wall of the flow channel, or arranging spoiler ribs and spoiler columns at the same time, the cooling capacity of the liquid cooling plate is enhanced and the heat dissipation effect of the liquid cooling radiator is improved. However, in actual use, only spoiler heat pipes are used, which reduces the circulation efficiency of the radiator and the heat dissipation efficiency is low.
[0004] As is known from the above, the prior art obviously has inconveniences and defects in practical use, so it is necessary to improve it. A heat dissipation pipe distribution structure is proposed to address the above problems. Utility Model Content
[0005] In view of the above-mentioned defects, the purpose of the present invention is to provide a heat dissipation pipe distribution structure, which adopts a structure in which turbulent heat dissipation pipes and non-turbulent heat dissipation pipes are staggered to improve the heat dissipation efficiency and provide a heat dissipation pipe distribution structure.
[0006] In order to achieve the above-mentioned purpose, the utility model provides a heat dissipation pipe distribution structure, including a turbulent heat dissipation pipe, wherein two turbulent heat dissipation pipes and a non-turbulent heat dissipation pipe constitute a heat dissipation pipe unit.
[0007] A spoiler hole is provided in the spoiler heat dissipation pipe, and a blocking member is provided on the spoiler heat dissipation pipe.
[0008] The blocking member is provided with a connecting member which enables the interfering heat dissipation pipes to be sealed with each other.
[0009] According to a heat dissipation pipe distribution structure described in the utility model, the structure of two spoiler heat dissipation pipes and one non-spoiler heat dissipation pipe constitutes a heat dissipation pipe unit, one of the spoiler heat dissipation pipes is provided with a blocking member, and the shape of the blocking member matches the spoiler heat dissipation pipe.
[0010] According to a heat dissipation pipe distribution structure described in the utility model, the spoiler heat dissipation pipe is provided with a first spoiler hole and a second spoiler hole, the first spoiler holes are symmetrically arranged at both ends of the spoiler heat dissipation pipe, and a plurality of second spoiler holes are arranged between the two first spoiler holes.
[0011] According to a heat dissipation pipe distribution structure described in the utility model, a non-turbulent heat dissipation pipe is provided on one side of the turbulent heat dissipation pipe, a plurality of heat dissipation pipe gaps are provided on the non-turbulent heat dissipation pipe, and a plurality of heat dissipation fins are provided between the turbulent heat dissipation pipe and the non-turbulent heat dissipation pipe.
[0012] According to the heat dissipation pipe distribution structure described in the utility model, baffles and a bottom plate are provided on both sides of the heat dissipation pipe unit, the baffles and the bottom plate are connected to a plurality of heat dissipation pipe units, and a pipe opening is provided on the bottom plate.
[0013] According to the heat dissipation pipe distribution structure of the utility model, the number of heat dissipation pipe units on both sides of the blocking member is different.
[0014] The utility model provides a heat dissipation pipe distribution structure, which has the following beneficial effects:
[0015] A structure in which turbulent heat pipes and non-turbulent heat pipes are staggered is adopted, and the turbulent heat pipes and the turbulent holes on the turbulent heat pipes are used to cool the gas passing through the heat pipes. During the installation process, a blocking member is arranged on the turbulent heat pipe, and the distribution of coolant in the turbulent heat pipe can be adjusted by adjusting the position of the blocking member on the turbulent heat pipe. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 It is a schematic diagram of the overall structure of the utility model;
[0017] Figure 2 It is a structural schematic diagram of a combination of a spoiler heat dissipation pipe and a non-spoiler heat dissipation pipe;
[0018] Figure 3 is a schematic diagram of the structure at the blocking member;
[0019] Figure 4 It is a structural schematic diagram at the pipe mouth;
[0020] In the figure: 1- spoiler heat pipe, 101- first spoiler hole, 102- second spoiler hole, 2- non- spoiler heat pipe, 201- heat pipe gap, 3- heat sink, 41- baffle, 42- bottom plate, 401- blocking member, 402- connecting member, 5- pipe opening. DETAILED DESCRIPTION
[0021] In order to make the objectives, technical solutions and advantages of the present utility model more clear and understandable, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present utility model and are not used to limit the present utility model.
[0022] It should be noted that in the description of the present utility model, the terms indicating the direction or positional relationship such as "upper", "lower", "left", "right", "inner", "outer", etc. are based on the direction or positional relationship shown in the drawings. This is only for the convenience of description and does not indicate or imply that the device or element must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be understood as a limitation to the present utility model.
[0023] In addition, it should also be noted that in the description of the present utility model, unless otherwise clearly specified and defined, the terms "installation", "connection", and "connection" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those skilled in the art, the specific meanings of the above terms in the present utility model can be understood according to specific circumstances.
[0024] See Figures 1 to 4 , the present utility model provides a heat dissipation tube distribution structure, including a turbulator heat dissipation tube 1. The turbulator heat dissipation tube 1 is provided with a first turbulator hole 101 and a second turbulator hole 102. The first turbulator holes 101 are symmetrically arranged at both ends of the turbulator heat dissipation tube 1. Between the two first turbulator holes 101, there are several second turbulator holes 102. On one side of the turbulator heat dissipation tube 1, there is a non-turbulator heat dissipation tube 2. The non-turbulator heat dissipation tube 2 is provided with several heat dissipation tube gaps 201. Between the turbulator heat dissipation tube 1 and the non-turbulator heat dissipation tube 2, there are several heat dissipation fins 3. The heat dissipation fins 3 are connected to the turbulator heat dissipation tube 1 and the non-turbulator heat dissipation tube 2 by welding or other means. The connection of several heat dissipation fins 3 improves the heat dissipation efficiency of the overall heat dissipation tubes.
[0025] See Figure 2 and Figure 3 , preferably, one side of the turbulator heat dissipation tube 1 described in the present utility model is connected to another turbulator heat dissipation tube 1, and the other side of the turbulator heat dissipation tube 1 is connected to a non-turbulator heat dissipation tube 2. A heat dissipation tube unit is formed by the structure of two turbulator heat dissipation tubes 1 and one non-turbulator heat dissipation tube 2. A radiator is formed by several heat dissipation tube units and several heat dissipation fins 3 between the turbulator heat dissipation tubes 1.
[0026] Among them, the first spoiler hole 101 is an arc-shaped spoiler hole, and the second spoiler hole 102 is a fin-shaped spoiler hole. By setting spoiler holes with different shapes, the flow velocities of the cooling liquid flowing into the first spoiler hole 101 and the second spoiler hole 102 in the heat dissipation tube are different, thereby improving the overall heat exchange efficiency of the heat dissipation tube.
[0027] See Figure 1 and Figure 2 , preferably, the cross-section of the first spoiler hole 101 of the present utility model can be used in other shapes such as rectangle, semi-circle, ellipse, semi-ellipse, etc.
[0028] See Figure 3 , specifically, a blocking member 401 is provided on one of the spoiler heat dissipation tubes 1 in the radiator of the present utility model. The shape of the blocking member 401 is matched with the spoiler heat dissipation tube 1, so that the blocking member 401 can be manually moved between several spoiler heat dissipation tubes 1, thereby realizing the arrangement of different cooling liquids in the radiator by adjusting the relative position of the blocking member 401 in the heat dissipation tube.
[0029] See Figure 3 and Figure 4 , specifically, baffles 41 are provided on both sides of the heat dissipation tube unit of the present utility model. Baffles 41 are provided on both sides of the heat dissipation tube unit. A bottom plate 42 is provided above and below the heat dissipation tube unit. The baffles 41 are connected to the bottom plate 42 to wrap several heat dissipation tubes. The baffles 41 are connected to several heat dissipation tube units. A pipe opening 5 is provided on the bottom plate 42, and the cooling liquid is introduced through the pipe opening 5.
[0030] See Figure 3 . Specifically, a connecting member 402 is provided on the blocking member 401 of the present utility model. The connecting member 402 is slidably and hermetically connected to the bottom plate 42, so that the connecting member 402 is hermetically connected to one side of the bottom plate 42 and the heat dissipation tube, thereby arranging the coolant in the radiator by adjusting the blocking member 401. By keeping the flow velocity of the coolant the same but the volume of the coolant in the heat dissipation pipeline different, the heat exchange efficiency of the coolant in different intervals is improved.
[0031] The specific implementation process of the present utility model is as follows:
[0032] Weld the spoiler heat dissipation tube 1 and the non-spoiler heat dissipation tube 2 according to the arrangement mode of the heat dissipation tube unit, assemble and weld multiple heat dissipation tube units into a radiator, assemble the baffles 41 and the bottom plate 42 on both sides of the radiator, install the blocking member 401 in the spoiler heat dissipation tube 1, inject the coolant through the pipe opening 5, and seal the coolant on both sides of the blocking member 401 through the connecting member 402 and the bottom plate 42 on one side of the connecting member 402.
[0033] The utility model provides a heat dissipation pipe distribution structure, which includes a turbulent flow heat dissipation pipe and a non-turbulent flow heat dissipation pipe and other structures that cooperate with each other to improve the heat dissipation efficiency of the heat dissipation pipe. The turbulent flow holes on the turbulent flow heat dissipation pipe are used to cool the gas passing through the heat dissipation pipe; the blocking parts arranged on the turbulent flow heat dissipation pipe can adjust the distribution state of the heat dissipation liquid at both ends of the radiator, thereby adjusting the heat exchange efficiency of the coolant in different pipes and improving the heat exchange efficiency. In summary, the beneficial effects of the present invention are as follows: adopting a structure in which the turbulent flow heat dissipation pipes and the non-turbulent flow heat dissipation pipes are staggered, using the turbulent flow heat dissipation pipes and the turbulent flow holes on the turbulent flow heat dissipation pipes to cool the gas passing through the heat dissipation pipe, and arranging a blocking part on the turbulent flow heat dissipation pipe during the installation process, the distribution of the coolant in the turbulent flow heat dissipation pipe can be adjusted by adjusting the position of the blocking part on the turbulent flow pipe.
[0034] Of course, the present utility model can also have many other embodiments. Without departing from the spirit and essence of the present utility model, those skilled in the art can make various corresponding changes and deformations according to the present utility model, but these corresponding changes and deformations should all fall within the protection scope of the appended claims of the present utility model.
Claims
1. A heat dissipation tube distribution structure, characterized in that, It includes spoiler heat dissipation tubes, and at least two of the spoiler heat dissipation tubes and non-spoiler heat dissipation tubes form a heat dissipation tube unit; The spoiler heat dissipation tubes are provided with spoiler holes, and blocking members are arranged on the spoiler heat dissipation tubes; Connecting members for sealing a number of spoiler heat dissipation tubes to each other are arranged on the blocking members.
2. The distribution structure of the heat dissipation tubes according to claim 1, wherein The structure of two spoiler heat dissipation tubes and one non-spoiler heat dissipation tube forms a heat dissipation tube unit, and a blocking member is arranged on one of the spoiler heat dissipation tubes, and the shape of the blocking member matches that of the spoiler heat dissipation tube.
3. The distribution structure of heat dissipation tubes according to claim 1, characterized in that, The spoiler heat dissipation tubes are provided with first spoiler holes and second spoiler holes. The first spoiler holes are symmetrically arranged at both ends of the spoiler heat dissipation tube, and a number of second spoiler holes are arranged between the two first spoiler holes.
4. A heat dissipation tube distribution structure according to claim 1, characterized in that, One side of the spoiler heat dissipation tube is provided with a non-spoiler heat dissipation tube. The non-spoiler heat dissipation tube is provided with a number of heat dissipation tube gaps, and a number of heat dissipation fins are arranged between the spoiler heat dissipation tube and the non-spoiler heat dissipation tube.
5. A heat dissipation tube distribution structure according to claim 1, characterized in that, Baffles and a bottom plate are arranged on both sides of the heat dissipation tube unit. The baffles and the bottom plate connect a number of heat dissipation tube units, and a pipe opening is arranged on the bottom plate.
6. The distribution structure of heat dissipation tubes according to claim 1, characterized in that The number of heat dissipation tube units on both sides of the blocking member is different.
Citation Information
Patent Citations
New energy automobile multithread way liquid cooling radiator
CN206878141U