Control device and display console

CN224790967UActive Publication Date: 2026-09-22SHENZHEN TIANCHEN DEFENCE COMM TECH CO LTD
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Patent Information

Application Number
CN202522201880.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-17
Publication Date
2026-09-22
Estimated Expiration
2035-10-17

AI Technical Summary

Benefits of technology

[0014]本实用新型的技术方案通过采用分隔板分别与导热件和VPX模块导热连接,导热件与散热件导热连接,以使VPX模块产生的热量能够经分隔板传导至导热件上,通过散热件将导热件上的热量散热至安装腔内,通过散热风扇将热量经出风口排出安装腔;本申请通过分隔板、导热件、散热件以及散热风扇相互配合,以实现对VPX模块的多重散热,进而提升散热组件的散热效率。

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Abstract

The utility model discloses a control device and display console relates to control device technical field, wherein, control device includes casing, has the installation cavity, so the casing has respectively with installation cavity's air inlet and air outlet of intercommunication, VPX module sets up in installation cavity, the heat dissipation subassembly sets up in installation cavity, the heat dissipation subassembly includes heat conduction spare, heat dissipation spare, partition and heat dissipation fan, partition is respectively with Heat conduction spare and VPX module heat conduction connects, heat conduction spare with Heat dissipation spare heat conduction connects, and heat dissipation fan is used for with heat on heat dissipation spare is through air outlet and exports installation cavity, the utility model discloses the technical scheme for through partition, heat conduction spare, heat dissipation spare and heat dissipation fan mutual cooperation to realize multiple heat dissipation to VPX module, and then promote the heat dissipation efficiency of heat dissipation subassembly.
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Description

Technical Field

[0001] This utility model relates to the field of control device technology, and in particular to a control device and display console. Background Technology

[0002] With the rapid development of industrial automation, intelligent buildings, data centers, and other fields, higher demands are being placed on the integration, processing power, and reliability of core control equipment. To meet complex control requirements, existing control devices typically employ a highly integrated design, integrating circuit boards responsible for multiple functions such as computing, communication, power management, and signal input / output into a single chassis or enclosure. However, existing control devices suffer from poor heat dissipation, which reduces the lifespan of internal components and fails to meet user needs. Utility Model Content

[0003] The main purpose of this invention is to provide a control device and a display console, which aims to improve the heat dissipation effect of the control device.

[0004] To achieve the above objectives, the present invention proposes a control device applied to a display console. The display console includes a connector, and the control device includes a housing with a mounting cavity and multiple mounting holes communicating with the mounting cavity. Therefore, the housing has an air inlet and an air outlet respectively communicating with the mounting cavity. A VPX module is disposed within the mounting cavity, and the multiple mounting holes are for the connector to pass through and electrically connect with the VPX module. A heat dissipation assembly is disposed within the mounting cavity, and the heat dissipation assembly includes a heat-conducting element, a heat sink, a partition plate, and a cooling fan. The partition plate is located between the heat-conducting element and the VPX module, and is thermally connected to both the heat-conducting element and the VPX module. The heat-conducting element is thermally connected to the heat sink. The cooling fan is located on the side of the mounting cavity near the air outlet, and is used to discharge heat from the heat sink through the air outlet into the mounting cavity.

[0005] In one embodiment, the heat sink includes a connecting section and bending sections disposed on both sides of the connecting section. The heat sink is configured as a plurality of heat sinks, which are arranged along a first direction. One side of the heat sink is connected to the heat conductor through one of the bending sections, and two adjacent heat sinks are connected through the bending section on the other side.

[0006] In one embodiment, the control device further includes a first temperature-conducting pipe, the connecting section is provided with a first mounting groove, and the first temperature-conducting pipe is respectively disposed in a plurality of the first mounting grooves so that the first temperature-conducting pipe can be disposed in a plurality of the heat sinks.

[0007] In one embodiment, the heat-conducting component has a through groove on the side near the heat sink component, the through groove extends along the first direction, and the first mounting grooves on the plurality of heat sink components are respectively enclosed with the through groove to form a first mounting channel, and the first heat-conducting pipe is disposed in the first mounting channel.

[0008] In one embodiment, the control device further includes a second temperature-conducting pipe for transferring heat from the heat-conducting component to the heat sink. The heat-conducting component has a second mounting groove on one side near the heat sink, one side of the second temperature-conducting pipe is disposed in the second mounting groove, and the other side of the second temperature-conducting pipe abuts against the heat sink.

[0009] In one embodiment, the heat dissipation components are configured in two groups, and the partition plates are configured in two pieces. The two partition plates are spaced apart in the mounting cavity along a second direction. The two partition plates are used to divide the mounting cavity into a first mounting cavity and a second mounting cavity located on both sides of the first mounting cavity. The VPX module is disposed in the first mounting cavity, and each heat dissipation component is disposed in a second mounting cavity. The second direction intersects with the first direction.

[0010] In one embodiment, the control device further includes a mounting base disposed in the second mounting cavity, and the cooling fan is disposed on the mounting base.

[0011] In one embodiment, a plurality of cooling fans are provided, and the plurality of cooling fans are disposed in the second mounting cavity. The plurality of cooling fans are respectively disposed on both sides of the heat sink along a third direction, and the first direction, the second direction and the third direction intersect each other.

[0012] In one embodiment, the VPX module includes a housing and a circuit board disposed within the housing. The inner sidewall of the housing is provided with a heat-conducting portion, which is thermally connected to the circuit board.

[0013] This utility model also proposes a display console, including a control device as described in any of the above embodiments.

[0014] The technical solution of this utility model employs a partition plate that is thermally connected to both the heat-conducting component and the VPX module. The heat-conducting component is also thermally connected to the heat sink, allowing the heat generated by the VPX module to be conducted to the heat-conducting component via the partition plate. The heat sink then dissipates the heat from the heat-conducting component into the mounting cavity, and a cooling fan exhausts the heat from the mounting cavity through the air outlet. This application achieves multiple heat dissipation for the VPX module through the cooperation of the partition plate, heat-conducting component, heat sink, and cooling fan, thereby improving the heat dissipation efficiency of the heat dissipation component. Attached Figure Description

[0015] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.

[0016] Figure 1 A schematic diagram of the structure of an embodiment of the control device provided by this utility model; Figure 2 A schematic diagram of the structure of a heat dissipation component in a control device provided by this utility model; Figure 3 A top view of an embodiment of the heat dissipation component in the control device provided by this utility model; Figure 4 A schematic diagram of the structure of a heat-conducting component, a heat-dissipating component, a first temperature-conducting pipe, and a second temperature-conducting pipe in the control device provided by this utility model; Figure 5 A schematic diagram of another embodiment of the heat-conducting component, heat-dissipating component, first temperature-conducting pipe and second temperature-conducting pipe in the control device provided by this utility model; Figure 6 This is a schematic diagram of the structure of an embodiment of the VPX module in the control device provided by this utility model.

[0017] Explanation of icon numbers: 1. Housing; 11. Mounting cavity; 111. First mounting cavity; 112. Second mounting cavity; 12. Mounting hole; 13. Air inlet; 14. Air outlet; 2. VPX module; 21. Outer shell; 22. Circuit board; 23. Interface; 3. Heat dissipation assembly; 31. Heat conductor; 311. Through slot; 312. Second mounting slot; 32. Heat dissipation component; 321. Connecting section; 3211. First mounting slot; 322. Bending section; 33. Partition plate; 34. Cooling fan; 4. First heat conduction pipe; 5. Second heat conduction pipe; 6. Mounting base.

[0018] The realization of the purpose, functional features and advantages of this utility model will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation

[0019] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present utility model.

[0020] It should be noted that if the embodiments of this utility model involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a specific posture. If the specific posture changes, the directional indicators will also change accordingly.

[0021] Furthermore, if the embodiments of this utility model involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the use of "and / or" or "and / or" throughout the text includes three parallel solutions. For example, "A and / or B" includes solution A, solution B, or a solution where both A and B are satisfied simultaneously. Furthermore, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.

[0022] This utility model proposes a control device.

[0023] Please see Figure 1 , Figure 2 and Figure 3 In one embodiment of this utility model, the control device is applied to a display console, which includes a connector. The control device includes a housing 1, so the housing 1 has a mounting cavity 11 and a plurality of mounting holes 12 communicating with the mounting cavity 11. Therefore, the housing 1 has an air inlet 13 and an air outlet 14 respectively communicating with the mounting cavity 11. The VPX module is disposed in the mounting cavity 11, and the plurality of mounting holes 12 are used for the connector to pass through and be electrically connected to the VPX module. The heat dissipation assembly 3 is disposed within the mounting cavity 11. The heat dissipation assembly 3 includes a heat-conducting element 31, a heat sink 32, a partition plate 33, and a cooling fan 34. The partition plate 33 is located between the heat-conducting element 31 and the VPX module. The partition plate 33 is thermally connected to the heat-conducting element 31 and the VPX module respectively. The heat-conducting element 31 is thermally connected to the heat sink 32. The cooling fan 34 is disposed on the side of the mounting cavity 11 near the air outlet 14. The cooling fan 34 is used to discharge the heat on the heat sink 32 into the mounting cavity 11 through the air outlet 14.

[0024] The technical solution of this utility model uses a partition plate 33 to be thermally connected to the heat-conducting component 31 and the VPX module respectively, and the heat-conducting component 31 to the heat sink 32, so that the heat generated by the VPX module can be conducted to the heat-conducting component 31 through the partition plate 33, and the heat sink 32 dissipates the heat on the heat-conducting component 31 into the mounting cavity 11. The heat is discharged from the mounting cavity 11 through the air outlet 14 by the cooling fan 34. This application achieves multiple heat dissipation of the VPX module by the cooperation of the partition plate 33, the heat-conducting component 31, the heat sink 32 and the cooling fan 34, thereby improving the heat dissipation efficiency of the heat dissipation component 3.

[0025] In this embodiment, the display console provides an integrated operating interface for users. The interface is configured to: 1) display the real-time operating status of multiple automated devices; and 2) receive user commands, parse and distribute these commands to achieve independent control of each automated device. The third direction can be aligned with the length of the housing 1. The housing 1 has a mounting cavity 11, within which the VPX module and heat dissipation assembly 3 are housed. The VPX module and heat dissipation assembly 3 are arranged along the third direction, facilitating their installation. Multiple mounting holes 12 communicating with the mounting cavity 11 are correspondingly provided on one side of the housing 1. The positions of these mounting holes 12 are directly opposite the interface 23 on the VPX module, allowing the interface 23 to pass through the mounting holes 12 and protrude outside the housing 1 when the VPX module is housed within the mounting cavity 11, thus facilitating its installation and maintenance. The VPX module may include multiple circuit boards 22. Connectors are plugged into interfaces 23 on each circuit board 22 via wires, allowing each circuit board 22 to be electrically connected to different devices via connectors. The VPX module receives and parses user commands, and then generates corresponding control signals based on those commands. The control signals are transmitted to designated automation equipment via connectors, enabling the display control console to independently control different automation devices. The heat dissipation assembly 3 is used to dissipate the heat generated by the VPX module during operation, preventing damage to the VPX module due to overheating. Specifically, a partition plate 33 is located between the heat-conducting component 31 and the VPX module, dividing the mounting cavity 11 into a first mounting cavity 111 and a second mounting cavity 112. The VPX module is installed in the first mounting cavity 111, and the heat dissipation assembly 3 is installed in the second mounting cavity 112. The partition plate 33 may be made of a metal material with thermal conductivity. The partition plate 33 is thermally connected to both the heat-conducting component 31 and the VPX module, allowing the heat generated by the VPX module to be conducted to the heat-conducting component 31 via the partition plate 33. The heat-conducting component 31 and the heat sink 32 are thermally connected so that the heat on the heat-conducting component 31 is dispersed into the second mounting cavity 112 via the heat sink 32. The heat-conducting component 31 is configured as a heat spreader to improve its heat transfer efficiency. The cooling fan 34 is located on the side of the second mounting cavity 112 near the air outlet 14 so that the heat in the second mounting cavity 112 is exhausted out of the second mounting cavity 112 through the air outlet 14 under the action of the cooling fan 34, thereby improving the heat dissipation efficiency of the heat dissipation assembly 3 for the VPX module.

[0026] like Figure 4 and Figure 5As shown, in one embodiment, the heat sink 32 includes a connecting section 321 and a bending section 322 disposed on both sides of the connecting section 321. The heat sink 32 is configured as a plurality of heat sinks, which are arranged along a first direction. One side of the heat sink 32 is connected to the heat conductor 31 through a bending section 322, and two adjacent heat sinks 32 are connected through the bending section 322 on the other side.

[0027] In this embodiment, the first direction can be consistent with the up-down direction. The heat sink 32 can be configured as heat dissipation fins. The heat sink 32 is attached to the heat conductor 31 through a bent section 322 on one side, so that the heat on the heat conductor 31 can be conducted to the heat sink 32. The heat sink 32 is connected to another heat sink 32 through the bent section 322 on the side away from the heat conductor 31, which improves the connection stability between the heat sink 32 and the heat conductor 31, and allows the heat on the two adjacent heat sinks 32 to be conducted sequentially, thereby improving the heat dissipation efficiency of the heat sink 32. This application also provides multiple heat sinks 32, so that multiple heat sinks 32 are arranged along the first direction on the heat conductor 31, thereby increasing the contact area between the heat sink 32 and the heat conductor 31, and further improving the efficiency of heat transfer from the heat conductor 31 to the heat sink 32.

[0028] like Figure 4 and Figure 5 As shown, in one embodiment, the control device further includes a first temperature-conducting pipe 4, and the connecting section 321 is provided with a first mounting groove 3211. The first temperature-conducting pipe 4 is respectively disposed in a plurality of the first mounting grooves 3211 so that the first temperature-conducting pipe 4 can be disposed in a plurality of the heat sinks 32.

[0029] In this embodiment, the connecting section 321 is provided with a first mounting groove 3211, and the first heat-conducting pipe 4 is respectively inserted into multiple first mounting grooves 3211, thereby improving the stability of the connection between the first heat-conducting pipe 4 and the heat sink 32. By using the first heat-conducting pipe 4 inside the heat sink 32, the first heat-conducting pipe 4 can conduct the heat on the heat sink 32 to the mounting cavity 11 more evenly, avoiding damage to some parts of the heat sink 32 due to excessive heat, and improving the efficiency of the heat sink 32 in dispersing the heat on the heat-conducting component 31 to the mounting cavity 11.

[0030] like Figure 5 As shown, in one embodiment, the heat-conducting component 31 is provided with a through groove 311 on the side near the heat sink 32. The through groove 311 extends along the first direction. The first mounting grooves 3211 on the plurality of heat sinks 32 are respectively enclosed with the through groove 311 to form a first mounting channel. The first temperature-conducting pipe 4 is disposed in the first mounting channel.

[0031] In this embodiment, to further improve the stability of the connection between the first temperature-conducting pipe 4 and the heat sink 32 and the heat-conducting component 31, the first mounting grooves 3211 on the multiple heat sinks 32 are respectively enclosed with the through grooves 311 to form a first mounting channel, and the first temperature-conducting pipe 4 is disposed in the first mounting channel. A part of the first temperature-conducting pipe 4 is disposed in the through groove 311, and another part of the first temperature-conducting pipe 4 is disposed in the first mounting groove 3211, so that some of the heat on the heat-conducting component 31 can be conducted to the first mounting channel through the first temperature-conducting pipe 4, thereby improving the heat dissipation efficiency of the heat dissipation assembly 3. The first temperature-conducting pipe 4 can be made of copper, and a thermally conductive agent can be filled in the first temperature-conducting pipe 4, so as to work with the heat-conducting component 31 and the heat sink 32 to evenly distribute the heat into the mounting cavity 11.

[0032] like Figure 4 and Figure 5 As shown, in one embodiment, the control device further includes a second temperature-conducting pipe 5 for transferring heat from the heat-conducting element 31 to the heat sink 32. The heat-conducting element 31 has a second mounting groove 312 on one side near the heat sink 32. One side of the second temperature-conducting pipe 5 is disposed in the second mounting groove 312, and the other side of the second temperature-conducting pipe 5 abuts against the heat sink 32.

[0033] In this embodiment, one side of the second temperature-conducting pipe 5 is fitted to the heat sink 32, and the other side of the second temperature-conducting pipe 5 is fitted to the heat-conducting component 31, so that the heat on the heat-conducting component 31 is more evenly conducted to the heat sink 32 through the second temperature-conducting pipe 5, thereby improving the efficiency of heat conduction from the heat-conducting component 31 to the heat sink 32, and thus improving the heat dissipation efficiency of the heat dissipation assembly 3. In order to improve the stability of the connection between the second temperature-conducting pipe 5 and the heat-conducting component 31, a second mounting groove 312 is provided on the side of the heat-conducting component 31 near the heat sink 32, and the second temperature-conducting pipe 5 is disposed in the second mounting groove 312. The second temperature-conducting pipe 5 can be made of copper, and a thermally conductive agent can be filled inside the second temperature-conducting pipe 5, so as to work with the first temperature-conducting pipe 4, the heat-conducting component 31 and the heat sink 32 to evenly distribute heat into the mounting cavity 11.

[0034] like Figure 2 and Figure 3 As shown, in one embodiment, the heat dissipation components 3 are configured as two sets, and the partition plates 33 are configured as two pieces. The two partition plates 33 are spaced apart in the mounting cavity 11 along the second direction. The two partition plates 33 are used to divide the mounting cavity 11 into a first mounting cavity 111 and a second mounting cavity 112 located on both sides of the first mounting cavity 111. The VPX module is disposed in the first mounting cavity 111, and each heat dissipation component 3 is disposed in a second mounting cavity 112. The second direction intersects with the first direction.

[0035] In this embodiment, two sets of heat dissipation components 3 and two partition plates 33 are provided. The two partition plates 33 are spaced apart in the mounting cavity 11 along a third direction, so that the two partition plates 33 can divide the mounting cavity 11 into a first mounting cavity 111 and second mounting cavities 112 located on both sides of the first mounting cavity 111, which facilitates the installation of the VPX module and the two sets of heat dissipation components 3. Each heat dissipation component 3 is correspondingly disposed in a second mounting cavity 112, and the VPX module is disposed in the first mounting cavity 111, so that both sides of the VPX module can be cooled by the heat dissipation components 3, further improving the heat dissipation efficiency of the heat dissipation components 3 for the VPX module, and thus making the arrangement of the VPX module and the two sets of heat dissipation components 3 in the mounting cavity 11 more reasonable.

[0036] like Figure 2 and Figure 3 As shown, in one embodiment, the control device further includes a mounting base 6, which is disposed in the second mounting cavity 112, and the cooling fan 34 is disposed on the mounting base 6.

[0037] In this embodiment, the mounting base 6 is set according to the number of cooling fans 34. This application improves the stability of the cooling fans 34 installed in the second mounting cavity 112 by using cooling fans 34 mounted on the mounting base 6 and each cooling fan 34 is mounted on a mounting base 6 by fasteners such as bolts or screws.

[0038] like Figure 1 and Figure 2 As shown, in one embodiment, the cooling fans 34 are configured as a plurality of fans, which are disposed in the second mounting cavity 112. The plurality of cooling fans 34 are respectively disposed on both sides of the heat sink 32 along a third direction, and the first direction, the second direction and the third direction intersect each other.

[0039] In this embodiment, multiple cooling fans 34 are configured, each located within one of the two second mounting cavities 112. These fans are spaced apart along a third direction on both sides of the heat sink 32, forming a cooling airflow channel and further improving the heat dissipation efficiency of the heat dissipation assembly 3. Specifically, the number of cooling fans 34 can be configured according to the power of the VPX module to ensure that the operating temperature of the VPX module remains within the allowable range. As an exemplary implementation, eight cooling fans 34 can be arranged in one of the second mounting cavities 112, with four fans positioned on the side of the heat sink 32 near the air outlet 14 and the other four fans positioned on the side of the heat sink 32 near the air inlet 13. This arrangement allows the eight cooling fans 34 to operate collaboratively and form a stable cooling airflow channel around the heat sink 32, thereby improving the heat dissipation efficiency of the heat dissipation assembly 3.

[0040] like Figure 6 As shown, in one embodiment, the VPX module includes a housing 21 and a circuit board 22 disposed within the housing 21. The inner sidewall of the housing 21 is provided with a heat-conducting part, which is thermally connected to the circuit board 22.

[0041] In this embodiment, to improve the efficiency of heat conduction from the circuit board 22 to the outside, a heat-conducting part is provided on the inner wall of the outer casing 21. This heat-conducting part is thermally connected to the circuit board 22, allowing heat generated by the circuit board 22 to be conducted to the outer casing 21. The heat on the outer casing 21 is then conducted to the heat dissipation assembly 3 via the partition plate 33. Both the heat-conducting part and the outer casing 21 are made of a metal material with thermal conductivity, ensuring that heat from the circuit board 22 is conducted to the outer casing 21. Multiple heat-conducting parts can be provided, spaced apart on the inner wall of the outer casing 21. Each heat-conducting part is thermally connected to the circuit board 22, further improving the efficiency of heat conduction from the circuit board 22 to the outside.

[0042] This utility model also proposes a display console, which includes a control device. The specific structure of the control device is as described in the above embodiments. Since this display console adopts all the technical solutions of all the above embodiments, it has at least all the beneficial effects brought about by the technical solutions of the above embodiments, which will not be described in detail here.

[0043] The above description is merely an exemplary embodiment of the present utility model and does not limit the patent scope of the present utility model. Any equivalent structural transformations made based on the technical concept of the present utility model and the contents of the present utility model specification and drawings, or direct / indirect applications in other related technical fields, are included within the patent protection scope of the present utility model.

Claims

1. A control device applied to a display console, the display console including a connector, characterized in that, The control device includes: The housing has a mounting cavity and a plurality of mounting holes communicating with the mounting cavity, so the housing has an air inlet and an air outlet respectively communicating with the mounting cavity; The VPX module is located within the mounting cavity, and the plurality of mounting holes are for the connector to pass through and be electrically connected to the VPX module; A heat dissipation assembly is disposed within the mounting cavity. The heat dissipation assembly includes a heat-conducting component, a heat sink, a partition plate, and a cooling fan. The partition plate is located between the heat-conducting component and the VPX module. The partition plate is thermally connected to both the heat-conducting component and the VPX module. The heat-conducting component is thermally connected to the heat sink. The cooling fan is disposed on the side of the mounting cavity near the air outlet. The cooling fan is used to discharge the heat from the heat sink through the air outlet into the mounting cavity.

2. The control device as described in claim 1, characterized in that, The heat sink includes a connecting section and bending sections on both sides of the connecting section. Multiple heat sinks are provided and arranged along a first direction. One side of each heat sink is connected to the heat-conducting component through a bending section, and two adjacent heat sinks are connected through the bending section on the other side.

3. The control device as described in claim 2, characterized in that, The control device further includes a first temperature-conducting pipe, and the connecting section is provided with a first mounting groove. The first temperature-conducting pipe is respectively disposed in a plurality of the first mounting grooves so that the first temperature-conducting pipe can be disposed in a plurality of the heat dissipation components.

4. The control device as described in claim 3, characterized in that, The heat-conducting component has a through groove on the side near the heat sink component. The through groove extends along the first direction. The first mounting grooves on the plurality of heat sink components are respectively enclosed with the through groove to form a first mounting channel. The first temperature-conducting pipe is disposed in the first mounting channel.

5. The control device as described in claim 1, characterized in that, The control device further includes a second temperature-conducting pipe for transferring heat from the heat-conducting component to the heat sink. The heat-conducting component has a second mounting groove on the side near the heat sink. One side of the second temperature-conducting pipe is located in the second mounting groove, and the other side of the second temperature-conducting pipe abuts against the heat sink.

6. The control device as described in claim 3, characterized in that, The heat dissipation components are configured in two groups, and the partition plates are configured in two pieces. The two partition plates are spaced apart in the mounting cavity along the second direction. The two partition plates are used to divide the mounting cavity into a first mounting cavity and a second mounting cavity located on both sides of the first mounting cavity. The VPX module is disposed in the first mounting cavity, and each heat dissipation component is disposed in a second mounting cavity. The second direction intersects with the first direction.

7. The control device as described in claim 6, characterized in that, The control device further includes a mounting base, which is disposed in the second mounting cavity, and the cooling fan is disposed on the mounting base.

8. The control device as described in claim 6, characterized in that, The cooling fans are configured as multiple fans, which are disposed in the second mounting cavity. The multiple cooling fans are respectively disposed on both sides of the heat sink along a third direction, and the first direction, the second direction and the third direction intersect each other.

9. The control device as claimed in claim 1, characterized in that, The VPX module includes a housing and a circuit board disposed inside the housing. The inner sidewall of the housing is provided with a heat-conducting part, which is thermally connected to the circuit board.

10. A display console, characterized in that, Includes the control device as described in any one of claims 1 to 9.