Integrated power supply protection shell for communication

By using a temperature control mechanism and impurity removal mechanism that cooperates with the rotating components in the power protection case, the existing power protection case has solved the problem of poor ventilation and heat dissipation effect and inability to adjust the temperature in the shell, and more efficient heat dissipation and improvement of power storage capacity of the power module is achieved.

CN120050884APending Publication Date: 2025-05-27YOSHIHIRO COMM EQUIP GRP CO LTD
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Patent Information

Application Number
CN202510202250.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-24
Publication Date
2025-05-27

AI Technical Summary

Technical Problem

The existing power protection case has poor ventilation and heat dissipation effect, and cannot effectively adjust the temperature in the case, resulting in poor heat dissipation in high temperature weather and reduced power storage capacity of the power module in low temperature weather.

Method used

An integrated power protection case for communication is designed, and a temperature control mechanism is used for cooperating with the constant temperature component and the rotating component. By setting a baffle in the ventilation hole and using a light-absorbing heating coating and a mirror reflective coating, the position of the baffle is adjusted according to weather conditions to adjust the temperature of the casing cavity. In addition, a decompression mechanism is provided to filter dust impurities in the air.

Benefits of technology

It effectively improves the heat dissipation effect of the power protection case, can reduce the heating speed of the shell cavity in high temperature weather, increase the temperature of the shell cavity in low temperature weather, improve the power storage capacity of the power module, and extend the service life of the dustproof network.

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Abstract

The invention belongs to the technical field of power supply protection shells, and discloses an integrated power supply protection shell for communication, which is technically characterized by comprising a base and a shell, a plurality of groups of vent holes distributed in parallel are respectively formed in two opposite side walls of the shell, and baffles are arranged in the vent holes. A temperature control mechanism matched with the baffle is arranged in the ventilation hole, the temperature control mechanism comprises a constant temperature assembly and a rotating assembly, an impurity removal mechanism matched with the ventilation hole is arranged on the side wall of the shell, and the impurity removal mechanism comprises a dustproof net, a storage assembly and a positioning assembly. Through mutual cooperation of the constant-temperature assembly and the rotating assembly, in low-temperature weather in winter, the inner cavity of the shell can be heated so as to improve the power storage capacity of the power module, and in high-temperature weather in summer, sunlight irradiation can be reduced so as to reduce the temperature rising speed of the shell. The problems that an existing protective shell cannot adjust the temperature in a shell body, and the using effect is poor are solved.
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Description

Technical Field

[0001] The present invention relates to the technical field of power protection cases, and in particular, to an integrated power protection case for communication. Background Technique

[0002] When large communication devices are in use, a dedicated power distribution system needs to be equipped. The power distribution system is a power network system that consists of various power distribution devices (or components) and power distribution facilities to transform voltage and directly distribute electric energy to end-users. The power conversion module is an essential part of the power distribution system.

[0003] The power module converts alternating current into direct current through a transformer and a rectifier to provide power to the device. When the power module is in use, a protective case is usually provided outside it to provide safety protection for the power module. During the use of the power module, it will heat up and increase in temperature. The protective case usually has strip-shaped heat dissipation holes on the surface of the case.

[0004] However, the existing protective cases only have a simple heat dissipation function, and the ventilation and heat dissipation effect is poor. Moreover, the protective case cannot adjust the temperature inside the case. In hot summer days, the protective case cannot effectively dissipate heat through the heat dissipation holes. In cold winter days, the temperature inside the cavity of the protective case is relatively low, resulting in a decrease in the power storage capacity of the power module and a poor use effect. Summary of the Invention

[0005] The purpose of the present invention is to provide an integrated power protection case for communication to solve the problems raised in the above background technique.

[0006] To achieve the above purpose, the present invention provides the following technical solutions:

[0007] An integrated power protection case for communication, comprising a base and a housing. The housing is fixedly installed on the surface of the base. A side door is arranged on the surface of the housing. A power module is placed in the inner cavity of the housing. Multiple groups of ventilation holes distributed side by side are respectively opened on the opposite side walls of the housing. The ventilation holes are of a vertical strip structure. A baffle is arranged in the ventilation holes. A temperature control mechanism matched with the baffle is arranged in the ventilation holes. The temperature control mechanism includes a constant temperature component and a rotation component. The constant temperature component is located on the surface of the baffle. The rotation component is located in the base and is connected with the constant temperature component. The rotation component is used to control the rotation of the baffle in the ventilation holes. In hot weather, the rotation component reduces the heating speed of the inner cavity of the housing by cooperating with the constant temperature component. In cold weather, the rotation component increases the temperature of the inner cavity of the housing by cooperating with the constant temperature component. An impurity removal mechanism matched with the ventilation holes is arranged on the side wall of the housing. The impurity removal mechanism includes a dust-proof net, a storage component and a positioning component. The storage component is located inside the side wall of the housing and is connected with the dust-proof net. The storage component is used to control the overall storage of the dust-proof net inside the side wall of the housing. The positioning component is located on the side wall of the housing and is connected with the storage component. The positioning component controls the dust-proof net to cover the outside of the ventilation holes by cooperating with the storage component.

[0008] As a further solution of the present invention: The constant temperature component includes a rotating column rotatably installed between the top wall and the bottom wall of the ventilation hole. The baffle is fixedly installed on the surface of the rotating column. An absorbent heat-generating coating is arranged on one side wall of the baffle. A mirror reflective coating is arranged on the other side wall of the baffle. The bottom end of the rotating column extends into the base and is connected with the rotation component.

[0009] As a further solution of the present invention: The rotation component includes a control cavity opened inside the base. The bottom end of the rotating column extends into the control cavity and is fixedly installed with a synchronous gear disc. Multiple synchronous gear discs are jointly connected with a synchronous belt. A motor is fixedly installed in the control cavity. The output shaft of the motor is connected with the bottom end of a rotating column.

[0010] As a further solution of the present invention: The storage component includes multiple storage cavities opened inside the side wall of the housing. The storage cavities are located on one side of the ventilation holes. A winding roller is rotatably installed in the storage cavities. The dust-proof net is wound on the surface of the winding roller. Torsion springs are respectively arranged at both ends of the winding roller. A connection groove communicated with the storage cavity is inwardly opened on the side wall of the housing. One end of the dust-proof net far away from the winding roller passes through the connection groove and extends to the outside of the housing and is fixedly installed with a control board.

[0011] As a further solution of the present invention: The positioning component includes a plurality of guide rods fixedly installed on the side wall of the housing, which are arranged side by side in the vertical direction and sleeved outside the ventilation holes. The guide rods are arc-shaped structures. The control board is slidably installed on the surfaces of the plurality of guide rods. The control board is made of a magnetic material. A magnetic positioning piece cooperating with the control board is fixedly installed on the side wall of the housing. The magnetic positioning piece and the receiving cavity are located on both sides of the ventilation hole. One side of the baffle is provided with a magnetic positioning strip cooperating with the control board, and the magnetic attraction between the magnetic positioning strip and the control board is greater than the magnetic attraction between the magnetic positioning piece and the control board.

[0012] As a further solution of the present invention: The side wall of the housing is provided with a cleaning part cooperating with the dust-proof net. The cleaning part includes a bearing plate arranged on the side wall of the housing outside the dust-proof net, and a plurality of uniformly distributed cleaning brushes cooperating with the dust-proof net are arranged on the surface of the bearing plate.

[0013] As a further solution of the present invention: A clamping groove is formed on the side wall of the housing, and a clamping strip cooperating with the clamping groove is fixedly installed on the side wall of the bearing plate.

[0014] Compared with the prior art, the beneficial effects of the present invention are: By setting the constant temperature component and the rotating component to cooperate with each other, the position of the baffle can be adjusted in the ventilation hole. In winter with low temperature, the inner cavity of the housing can be heated to increase the power storage capacity of the power module. In summer with high temperature, the sunlight irradiation can be reduced to lower the heating speed of the housing. It solves the problem that the current protective shell cannot adjust the temperature inside the shell and has a poor use effect.

[0015] By setting the rotating component and the constant temperature component to cooperate with each other, the baffle can be controlled to continuously rotate in the ventilation hole, thereby accelerating the air circulation on both sides of the ventilation hole and further improving the heat dissipation effect of the inner cavity of the housing.

[0016] By setting the positioning component and the receiving component to cooperate with each other, the position of the dust-proof net can be conveniently adjusted. When ventilating and dissipating heat, the dust-proof net can filter dust and impurities in the air. When ventilation and heat dissipation are not required, the dust-proof net can be received and stored, solving the problem that dust easily passes through the ventilation hole and falls into the inner cavity of the housing, causing damage to the power module. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 Schematic three-dimensional structure of an integrated power protection shell for communication provided in an embodiment of the present invention Figure One 。

[0018] Figure 2 Schematic three-dimensional structure of an integrated power protection shell for communication provided in an embodiment of the present invention Figure Two 。

[0019] Figure 3 It is a front view structural schematic diagram of an integrated power protection case for communication provided in an embodiment of the present invention.

[0020] Figure 4 It is a top view structural schematic diagram of a housing in an integrated power protection case for communication provided in an embodiment of the present invention.

[0021] Figure 5 It is a schematic diagram of a baffle and its connection structure in an integrated power protection case for communication provided in an embodiment of the present invention.

[0022] Figure 6 It is Figure 1 an enlarged structural schematic diagram of A in

[0023] Figure 7 It is Figure 2 an enlarged structural schematic diagram of B in

[0024] Figure 8 It is Figure 3 an enlarged structural schematic diagram of C in

[0025] Figure 9 It is Figure 4 an enlarged structural schematic diagram of D in

[0026] Wherein: 1 - base, 2 - housing, 21 - side door, 3 - power module, 4 - ventilation hole, 5 - baffle, 6 - temperature control mechanism, 61 - constant temperature component, 611 - rotating column, 612 - light-absorbing and heat-generating coating, 613 - mirror reflective coating, 62 - rotating component, 621 - control cavity, 622 - synchronous gear disk, 623 - synchronous belt, 624 - motor, 7 - impurity removal mechanism, 71 - dust-proof net, 72 - storage component, 721 - storage cavity, 722 - winding roller, 723 - connection groove, 724 - control board, 73 - positioning component, 731 - guide rod, 732 - magnetic positioning strip, 733 - magnetic positioning piece, 8 - cleaning part, 81 - bearing plate, 82 - cleaning brush, 9 - clamping groove, 10 - clamping strip. Specific embodiments

[0027] It should be noted that, without conflict, the embodiments in the present invention and the features in the embodiments can be combined with each other.

[0028] The following describes the specific implementation of the present invention in detail with reference to specific embodiments.

[0029] Such as Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 9As shown in the figure, it is a structural diagram of an integrated power protection case for communication provided by an embodiment of the present invention, including a base 1 and a housing 2. The housing 2 is fixedly installed on the surface of the base 1. A side door 21 is provided on the surface of the housing 2. A power module 3 is placed in the inner cavity of the housing 2. A plurality of groups of ventilation holes 4 arranged side by side are respectively opened on the opposite side walls of the housing 2. The ventilation holes 4 are in a vertical strip structure. A baffle 5 is provided in the ventilation holes 4. A temperature control mechanism 6 that cooperates with the baffle 5 is provided in the ventilation holes 4. The temperature control mechanism 6 includes a constant temperature component 61 and a rotation component 62. The constant temperature component 61 is located on the surface of the baffle 5. The rotation component 62 is located in the base 1 and is connected to the constant temperature component 61. The rotation component 62 is used to control the rotation of the baffle 5 in the ventilation holes 4. In high-temperature weather, the rotation component 62 reduces the heating rate of the inner cavity of the housing 2 by cooperating with the constant temperature component 61. In low-temperature weather, the rotation component 62 increases the temperature of the inner cavity of the housing 2 by cooperating with the constant temperature component 61. An impurity removal mechanism 7 that cooperates with the ventilation holes 4 is provided on the side wall of the housing 2. The impurity removal mechanism 7 includes a dust-proof net 71, a storage component 72 and a positioning component 73. The storage component 72 is located inside the side wall of the housing 2 and is connected to the dust-proof net 71. The storage component 72 is used to control the overall storage of the dust-proof net 71 inside the side wall of the housing 2. The positioning component 73 is located on the side wall of the housing 2 and is connected to the storage component 72. The positioning component 73 controls the dust-proof net 71 to cover the outside of the ventilation holes 4 by cooperating with the storage component 72.

[0030] Initially, the storage component 72 controls the overall storage of the dust-proof net 71 inside the side wall of the housing 2. The baffle 5 is entirely in the ventilation holes 4, and one side wall of the baffle 5 faces the outside of the housing 2. At this time, the ventilation holes 4 are in a closed state. When it is hot in summer, the rotation component 62 cooperates with the constant temperature component 61 to reduce the light intensity received by the housing 2, thereby slowing down the heating of the inner cavity of the housing 2. When it is cold in winter, the rotation component 62 cooperates with the constant temperature component 61 to increase the light intensity received by the housing 2, thereby controlling the heating of the inner cavity of the housing 2 and effectively preventing the temperature of the inner cavity of the housing 2 from being too low, which may cause the power storage capacity of the power module 3 to decline.

[0031] When the temperature of the inner cavity of the housing 2 is too high and active heat dissipation is required, the rotation component 62 controls the continuous rotation of the baffle 5 in the ventilation holes 4. The baffle 5 can accelerate the air flow speed on both sides of the ventilation holes 4, thereby quickly dissipating the heat of the inner cavity of the housing 2. During the heat dissipation process, the positioning component 73 and the storage component 72 cooperate to control the dust-proof net 71 to cover the outside of the ventilation holes 4. The dust-proof net 71 can filter the dust and impurities in the air, effectively preventing the dust and impurities in the air from falling into the inner cavity of the housing 2 and affecting the normal use of the power module 3.

[0032] The rotating component 62 can control the baffle 5 to rotate to an angle state with the side wall of the housing 2. At this time, the ventilation holes 4 are normally kept open, and the dust-proof net 71 normally covers the outside of the ventilation holes 4. At this time, the ventilation holes 4 can continuously ventilate and dissipate heat, and the dust-proof net 71 normally filters dust and impurities in the air.

[0033] Such as Figure 3 , Figure 5 , Figure 8 , Figure 9 As shown in, as a preferred embodiment of the present invention, the constant temperature component 61 includes a rotating column 611 rotatably installed between the top wall and the bottom wall of the ventilation hole 4. The baffle 5 is fixedly installed on the surface of the rotating column 611. One side wall of the baffle 5 is provided with a light-absorbing and heat-generating coating 612, and the other side wall of the baffle 5 is provided with a mirror-reflective coating 613. The bottom end of the rotating column 611 extends into the base 1 and is connected to the rotating component 62.

[0034] When the weather is hot in summer, the rotating component 62 controls the baffle 5 to rotate a certain angle in the ventilation hole 4, so that the mirror-reflective coating 613 on the surface of the baffle 5 faces the outside of the housing 2. When sunlight shines, the mirror-reflective coating 613 on the surface of the baffle 5 can reflect the sunlight irradiated on the surface of the housing 2 back to the external environment. At this time, the temperature rise inside the housing 2 can be effectively slowed down. When the weather is cold in winter, the rotating component 62 controls the baffle 5 to rotate a certain angle in the ventilation hole 4, so that the light-absorbing and heat-generating coating 612 on the surface of the baffle 5 faces the outside of the housing 2. When sunlight shines, the light-absorbing and heat-generating coating 612 can fully absorb heat and then heat the baffle 5. The baffle 5 radiates heat to the inside of the housing 2 and then heats the inside of the housing 2, effectively improving the power storage capacity of the power module 3.

[0035] Such as Figure 3 , Figure 5 , Figure 8 As shown in, as a preferred embodiment of the present invention, the rotating component 62 includes a control cavity 621 opened inside the base 1. The bottom end of the rotating column 611 extends into the control cavity 621 and is fixedly installed with a synchronous gear disk 622. Multiple groups of synchronous gear disks 622 are jointly connected with a synchronous belt 623. A motor 624 is fixedly installed in the control cavity 621. The output shaft of the motor 624 is connected to the bottom end of a group of rotating columns 611.

[0036] During use, the motor 624 drives a set of rotating columns 611 to rotate, thereby driving the synchronous gear disc 622 to rotate. Multiple sets of synchronous gear discs 622 cooperate with the synchronous belt 623 to drive multiple sets of rotating columns 611 to rotate synchronously. The rotating columns 611 drive the baffle 5 to rotate synchronously within the ventilation holes 4. When the baffle 5 rotates within the ventilation holes 4, it can conveniently adjust the positions of the light-absorbing and heat-generating coating 612 and the mirror-like reflective coating 613, thereby regulating the temperature inside the inner cavity of the housing 2. When the baffle 5 continuously rotates within the ventilation holes 4, the baffle 5 can accelerate the air flow velocity on both sides of the ventilation holes 4, thereby quickly dissipating the heat inside the inner cavity of the housing 2.

[0037] As Figure 2 , Figure 6 , Figure 7 , Figure 9 shown, as a preferred embodiment of the present invention, the storage assembly 72 includes multiple storage cavities 721 opened inside the side wall of the housing 2. The storage cavities 721 are located on one side of the ventilation holes 4. A winding roller 722 is rotatably installed within the storage cavities 721. The dust-proof net 71 is wound on the surface of the winding roller 722. Torsion springs are respectively arranged at both ends of the winding roller 722. A connection groove 723 communicating with the storage cavity 721 is opened inwardly on the side wall of the housing 2. One end of the dust-proof net 71 away from the winding roller 722 passes through the connection groove 723 and extends to the outside of the housing 2 and is fixedly installed with a control board 724.

[0038] Initially, the winding roller 722 winds up the dust-proof net 71. At this time, the entire dust-proof net 71 is within the storage cavity 721, and the control board 724 is in mutual contact with the side wall of the housing 2. When the baffle 5 rotates within the ventilation holes 4 to ventilate and dissipate heat inside the inner cavity of the housing 2, the rotating control board 724 cooperates with the positioning assembly 73 to pull the control board 724 to move to the other side of the ventilation holes 4. When the control board 724 moves, it synchronously pulls out the dust-proof net 71 from the storage cavity 721. At this time, the dust-proof net 71 covers the outside of the ventilation holes 4, and the dust-proof net 71 can filter the dust and impurities mixed in the air.

[0039] When the temperature reduction is completed, the baffle 5 rotates in the reverse direction by a certain angle. The baffle 5 cooperates with the positioning assembly 73 to pull the control board 724 to move reversely to its original position. At this time, the winding roller 722 winds up the dust-proof net 71 into the storage cavity 721 again. The storage cavity 721 can store and hold the dust-proof net 71, effectively extending the service life of the dust-proof net 71.

[0040] As Figure 3 , Figure 4 , Figure 6 , Figure 7 , Figure 8 , Figure 9As shown, as a preferred embodiment of the present invention, the positioning assembly 73 includes a plurality of guide rods 731 fixedly installed on the side wall of the housing 2, which are arranged side by side in the vertical direction and sleeved outside the ventilation holes 4. The guide rods 731 are arc-shaped structures. The control board 724 is slidably installed on the surfaces of the plurality of guide rods 731. The control board 724 is made of a magnetic material. A magnetic positioning piece 733 that cooperates with the control board 724 is fixedly installed on the side wall of the housing 2. The magnetic positioning piece 733 and the storage cavity 721 are located on both sides of the ventilation hole 4 respectively. A magnetic positioning strip 732 that cooperates with the control board 724 is provided on one side of the baffle 5. The magnetic attraction force between the magnetic positioning strip 732 and the control board 724 is greater than the magnetic attraction force between the magnetic positioning piece 733 and the control board 724.

[0041] Initially, the entire dust-proof net 71 is in the storage cavity 721. At this time, the control board 724 is attached to the side wall of the housing 2. When active heat dissipation is required for the inner cavity of the housing 2, the baffle 5 rotates counterclockwise in the ventilation hole 4. The baffle 5 drives the magnetic positioning strip 732 to rotate synchronously. When the magnetic positioning strip 732 rotates to contact the control board 724, the magnetic positioning strip 732 and the control board 724 form a whole. At this time, the control board 724 moves synchronously along the surface of the guide rod 731. When the control board 724 rotates to the other side of the ventilation hole 4, the control board 724 is attached to the magnetic positioning piece 733. At this time, the baffle 5 drives the magnetic positioning strip 732 to continue rotating, and the magnetic positioning strip 732 and the control board 724 are separated from each other. The magnetic positioning piece 733 fixes the position of the control board 724 through magnetic attraction. At this time, the dust-proof net 71 is sleeved outside the guide rod 731, and thus the air passing through the ventilation hole 4 can be filtered and impurities removed. After the heat dissipation is completed, the baffle 5 rotates a certain angle in the clockwise direction in the ventilation hole 4. At this time, the magnetic positioning strip 732 and the control board 724 are integrated through magnetic attraction and drive the control board 724 to rotate synchronously. At this time, the winding roller 722 winds up the dust-proof net 71, and the control board 724 is attached to the side wall of the housing 2 again.

[0042] As Figure 4 、 Figure 6 、 Figure 7 、 Figure 9 As shown, as a preferred embodiment of the present invention, a cleaning part 8 that cooperates with the dust-proof net 71 is provided on the side wall of the housing 2. The cleaning part 8 includes a bearing plate 81 provided on the side wall of the housing 2 and located outside the dust-proof net 71. A plurality of uniformly distributed cleaning brushes 82 that cooperate with the dust-proof net 71 are provided on the surface of the bearing plate 81.

[0043] When the dust-proof net 71 moves at the connection groove 723, the cleaning brush 82 can clean the dust and impurities attached to the surface of the dust-proof net 71, effectively preventing the mesh holes on the surface of the dust-proof net 71 from being blocked by dust and impurities, and effectively improving the use effect of the dust-proof net 71.

[0044] As Figure 4 , Figure 6 , Figure 7 , Figure 9 shown, as a preferred embodiment of the present invention, a clamping groove 9 is formed in the side wall of the housing 2, and a clamping strip 10 that cooperates with the clamping groove 9 is fixedly installed on the side wall of the bearing plate 81. Through the cooperation of the clamping strip 10 and the clamping groove 9, the bearing plate 81 can be conveniently installed and disassembled at the side wall of the housing 2.

[0045] The working principle of the present invention is as follows: Initially, the storage assembly 72 controls the dust-proof net 71 to be stored inside the side wall of the housing 2 as a whole, the baffle 5 is entirely within the ventilation hole 4, and one side wall of the baffle 5 faces the outside of the housing 2. At this time, the ventilation hole 4 is in a closed state. The motor 624 drives a set of rotating columns 611 to rotate, thereby driving the synchronous sprocket 622 to rotate. The multiple synchronous sprockets 622 cooperate with the synchronous belt 623 to drive the multiple rotating columns 611 to rotate synchronously. The rotating columns 611 drive the baffle 5 to rotate synchronously within the ventilation hole 4.

[0046] When it is hot in summer, the baffle 5 rotates a certain angle within the ventilation hole 4, so that the mirror reflective coating 613 on the surface of the baffle 5 faces the outside of the housing 2. When sunlight shines, the mirror reflective coating 613 on the surface of the baffle 5 can reflect the sunlight irradiated on the surface of the housing 2 back to the external environment, effectively slowing down the temperature rise inside the housing 2 cavity at this time. When it is cold in winter, the baffle 5 rotates a certain angle within the ventilation hole 4, so that the light-absorbing and heat-generating coating 612 on the surface of the baffle 5 faces the outside of the housing 2. When sunlight shines, the light-absorbing and heat-generating coating 612 can fully absorb heat and then heat the baffle 5. The baffle 5 radiates heat to the inside of the housing 2 cavity, thereby heating the inside of the housing 2 cavity, effectively improving the power storage capacity of the power module 3.

[0047] When the temperature inside the housing 2 is too high and active heat dissipation is required, the baffle 5 continuously rotates within the ventilation hole 4. The baffle 5 can accelerate the air flow rate on both sides of the ventilation hole 4, thereby enabling rapid heat dissipation for the interior cavity of the housing 2. During the heat dissipation process, the baffle 5 drives the magnetic positioning strip 732 to rotate synchronously. When the magnetic positioning strip 732 rotates to contact the control board 724, the magnetic positioning strip 732 and the control board 724 form an integral body. At this time, the control board 724 moves synchronously along the surface of the guide rod 731. When the control board 724 rotates to the other side of the ventilation hole 4, the control board 724 fits with the magnetic positioning piece 733. At this time, the baffle 5 drives the magnetic positioning strip 732 to continue rotating, and the magnetic positioning strip 732 and the control board 724 are separated from each other. The magnetic positioning piece 733 fixes the position of the control board 724 through magnetic attraction. At this time, the dust-proof net 71 is sleeved outside the guide rod 731, thereby filtering and removing impurities from the air passing through the ventilation hole 4. After the heat dissipation is completed, the baffle 5 rotates counterclockwise by a certain angle within the ventilation hole 4. At this time, the magnetic positioning strip 732 and the control board 724 form an integral body through magnetic attraction and drive the control board 724 to rotate synchronously. At this time, the winding roller 722 winds up the dust-proof net 71, and the control board 724 fits against the side wall of the housing 2 again. The storage cavity 721 can store the dust-proof net 71, effectively extending the service life of the dust-proof net 71.

[0048] The above has described the preferred embodiments of the present invention in detail, but the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those of ordinary skill in the art, various changes can be made without departing from the gist of the present invention.

Claims

1. An integrated power supply protection shell for communication, comprising a base and a shell, wherein the shell is fixedly mounted on the surface of the base, a side door is provided on the surface of the shell, and a power supply module is placed in the inner cavity of the shell, characterized in that: The two opposite side walls of the shell are respectively provided with a plurality of sets of ventilation holes distributed in parallel, the ventilation holes are vertical bar structures, and baffles are arranged inside the ventilation holes; A temperature control mechanism that cooperates with the baffle is arranged in the ventilation hole, and the temperature control mechanism includes a constant temperature component and a rotating component. The constant temperature component is located on the surface of the baffle, and the rotating component is located in the base and connected to the constant temperature component. The rotating component is used to control the baffle to rotate in the ventilation hole; In hot weather, the rotating component cooperates with the thermostatic component to reduce the temperature rise rate of the inner cavity of the shell. In cold weather, the rotating component cooperates with the thermostatic component to increase the temperature of the inner cavity of the shell. The side wall of the shell is provided with a debris removal mechanism that cooperates with the ventilation hole, and the debris removal mechanism includes a dustproof net, a storage component and a positioning component; The storage assembly is located inside the side wall of the shell and is connected to the dustproof net, and the storage assembly is used to control the dustproof net to be stored inside the side wall of the shell as a whole; The positioning assembly is located on the side wall of the shell and is connected to the storage assembly. The positioning assembly controls the dustproof net to cover the outside of the ventilation hole by cooperating with the storage assembly.

2. The integrated power supply protective shell for communication according to claim 1, characterized in that: The constant temperature component includes a rotating column rotatably installed between the top wall and the bottom wall of the ventilation hole, the baffle is fixedly installed on the surface of the rotating column, one side wall of the baffle is provided with a light-absorbing and heat-generating coating, and the other side wall of the baffle is provided with a mirror reflective coating. The bottom end of the rotating column extends into the base and is connected to the rotating component.

3. The integrated power supply protective shell for communication according to claim 2, characterized in that: The rotating assembly includes a control cavity opened inside the base, the bottom end of the rotating column extends into the control cavity and is fixedly installed with a synchronous gear disk, multiple groups of synchronous gear disks are commonly connected with a synchronous belt, a motor is fixedly installed in the control cavity, and the output shaft of the motor is connected to the bottom end of a group of rotating columns.

4. The integrated power supply protective shell for communication according to claim 1, characterized in that: The storage assembly includes a plurality of storage cavities opened inside the side wall of the shell, the storage cavities are located on one side of the ventilation hole, a winding roller is rotatably installed in the storage cavity, the dustproof net is wound on the surface of the winding roller, and winding springs are respectively provided at both ends of the winding roller. A connecting groove connected to the storage cavity is opened inwardly on the side wall of the shell, and one end of the dustproof net away from the winding roller extends through the connecting groove to the outside of the shell and is fixedly installed with a control panel.

5. The integrated power supply protective shell for communication according to claim 4, characterized in that: The positioning assembly includes multiple groups of guide rods fixedly installed on the side wall of the shell, which are distributed in parallel in the vertical direction and sleeved on the outside of the ventilation hole. The guide rods are arc-shaped structures. The control plate is slidably installed on the surface of the multiple groups of guide rods. The control plate is made of magnetic material. A magnetic positioning plate that cooperates with the control plate is fixedly installed on the side wall of the shell. The magnetic positioning plate and the storage cavity are respectively located on both sides of the ventilation hole. A magnetic positioning strip that cooperates with the control plate is provided on one side of the baffle, and the magnetic attraction between the magnetic positioning strip and the control plate is greater than the magnetic attraction between the magnetic positioning strip and the control plate.

6. The integrated power supply protective shell for communication according to claim 1, characterized in that: The shell side wall is provided with a cleaning part cooperating with the dustproof net, and the cleaning part includes a supporting plate arranged on the shell side wall and located outside the dustproof net, and the surface of the supporting plate is provided with multiple groups of cleaning brushes evenly distributed and cooperating with the dustproof net.

7. The integrated power supply protective shell for communication according to claim 6, characterized in that: The shell side wall is provided with a card slot, and the carrying plate side wall is fixedly mounted with a card strip that cooperates with the card slot.