A protective electrical equipment cabinet for intelligent mobile power supply
By designing compatible components and protective components, the problem of offset and shaking of smart mobile power supply during installation and use in the equipment cabinet is solved, and the protection and limiting effect of the equipment cabinet is improved.
Patent Information
- Application Number
- CN202411557121.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-04
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2044-11-04
AI Technical Summary
The existing electrical equipment cabinet cannot guarantee its casual maintenance status when installing smart mobile power supply, and it is prone to offset and shaking during use, resulting in a reduced protective effect.
A protective electrical equipment cabinet including the equipment cabinet body and compatible components is designed. By installing limit auxiliary components, heat dissipation components and line protection components, effective protection and limiting of intelligent mobile power supplies are achieved.
It improves the limit compatibility effect of smart mobile power supply and the protection effect of electrical equipment cabinets, avoids the disengagement problem caused by shaking, and enhances the protection ability of the line.
Smart Images

Figure CN119093176B_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of electrical equipment cabinets, and in particular relates to a protective electrical equipment cabinet for an intelligent mobile power supply. Background Art
[0002] The equipment cabinet, also called the control cabinet, is an assembly of switchgear, measuring instruments, protective electrical appliances and auxiliary equipment in a closed or semi-closed metal cabinet or on a screen according to the electrical wiring requirements.
[0003] After searching, in the prior art, Chinese patent publication number: CN220732150U, authorization publication date: 2024-04-05, discloses an energy-saving electrical equipment cabinet, including a cabinet body, a cabinet door, a wind speed measuring component, a wind driving component and a protective component. The cabinet body is rotatably connected with a cabinet door, the top of the cabinet body is cooperated with a wind speed measuring component, and the two sides of the cabinet body are symmetrically provided with wind driving components; the above embodiment can achieve a green and energy-saving use effect and meet the use requirements.
[0004] But the device still has the following defects:
[0005] The equipment cabinet cannot ensure that the smart mobile power supply is in a state of easy maintenance when it is installed, and cannot provide timely protection when displacement or the like occurs during subsequent use, thereby reducing the protective effect of the electrical equipment cabinet. Summary of the invention
[0006] In view of the above problems, the present invention provides a protective electrical equipment cabinet for intelligent mobile power supply, which includes an equipment cabinet body and a compatible component, two groups of limit auxiliary components are slidably connected to the compatible component, each group of the limit auxiliary components is equipped with a group of heat dissipation components, and each group of the limit auxiliary components is equipped with a group of line protection components;
[0007] The compatible component comprises a second fixing plate and a third fixing plate, one end of two groups of second compression springs are symmetrically mounted on one side wall of the second fixing plate, and the other end of each group of second compression springs is mounted on the third fixing plate;
[0008] The position limiting auxiliary component includes two sets of sleeve plates, one end of a set of third compression springs is installed on the inner wall of one side of each set of sleeve plates, and a set of sliding blocks is installed on the other end of each set of third compression springs;
[0009] Since the shape of the smart mobile power supply is not fixed, the passive limit rebound effect of the compression spring is different.
[0010] Furthermore, a protection component is installed on the bottom inner wall of the equipment cabinet body, a placement box is installed on the top of the protection component, and the compatible component is installed on the bottom inner wall of the placement box.
[0011] Furthermore, the protective component includes a first fixed plate, the bottom of which is installed on the bottom inner wall of the equipment cabinet body, two groups of mounting blocks are symmetrically installed on the inner walls on both sides of the first fixed plate, a group of connecting pipes are installed on one side wall of each group of mounting blocks, and one end of a group of first compression springs is installed on one side wall of each group of mounting blocks.
[0012] Furthermore, a group of sliding rectangular blocks are installed on the other end of each group of the first compression springs, the top of each group of the sliding rectangular blocks is installed on the bottom of the placement box, a group of buffer rods are installed on the inner walls on both sides of the first fixed plate, and a group of first pressure sensors are installed on one side wall of each group of the buffer rods.
[0013] Furthermore, the bottom of the second fixed plate is installed on the bottom inner wall of the placement box, a first sleeve is installed on one side wall of the second fixed plate, a first sliding rod is slidably connected in the first sleeve, and one end of the third fixed plate is installed on a side wall of the first sliding rod.
[0014] Furthermore, a first electric push rod is installed on the outer wall of the second fixed plate, a first electromagnetic block is installed on the output end of the first electric push rod, a second electromagnetic block is installed on a side wall of the third fixed plate, the first electromagnetic block is magnetically connected to the second electromagnetic block, and a slideway is opened on the top of the third fixed plate.
[0015] Furthermore, the limiting auxiliary component includes a first fixed block, the bottom of each group of the first fixed blocks is installed on the top edge of the third fixed plate, a group of second electric push rods is installed on one side wall of each group of the first fixed blocks, a group of sliding plates is installed on the output end of each group of the second electric push rods, each group of the sliding plates is slidably connected in the slide, a group of third electric push rods is installed on the bottom of each group of the sliding plates, and the top of each group of the socket plates is installed on the output end of one of the groups of third electric push rods.
[0016] Furthermore, each group of the sliding blocks is slidably connected in the socket plate, a group of second pressure sensors is installed at the junction of each group of the sliding blocks and the third compression spring, and a group of second fixed blocks is installed on the outer wall of each group of the socket plates.
[0017] Furthermore, the line protection assembly includes a fourth electric push rod, the bottom of each group of the fourth electric push rods is installed on the top of the second fixed block, a group of third fixed blocks is installed on the output end of each group of the fourth electric push rods, a group of second sleeve tubes is installed on one side wall of each group of the third fixed blocks, one end of a group of fourth compression springs is installed on one side inner wall of each group of the second sleeve tubes, a group of second sliding rods is installed on the other end of each group of the fourth compression springs, a group of fourth fixed blocks is installed on one side wall of each group of the second sliding rods, and a group of third electromagnetic blocks is installed on one side wall of each group of the fourth fixed blocks.
[0018] Furthermore, a group of rectangular boxes are installed on a side wall of each group of the fourth fixed blocks away from the third electromagnetic block, a group of inflatable bag structures are installed in each group of the rectangular boxes, a group of second air pumps are installed on the top of each group of the rectangular boxes, the output end of each group of the second air pumps is connected to the input end of the inflatable bag structure, a group of fifth fixed blocks is installed on one side wall of each group of the third fixed blocks, a group of fifth electric push rods are installed on one side wall of each group of the fifth fixed blocks, a group of fourth electromagnetic blocks are installed on the output end of each group of the fifth electric push rods, and the third electromagnetic block is magnetically connected to the fourth electromagnetic block.
[0019] The beneficial effects of the present invention are:
[0020] 1. The third fixed plate is attached to the outer wall of the smart mobile power supply by rebounding. Due to the irregular shape of the smart mobile power supply, the passive limit rebound effect of the compression spring is different. When displacement and shaking occur in the subsequent working process, the second compression spring can be used for buffering; the compatible limit effect is improved while the protective effect of the electrical equipment cabinet is improved; then the sliding block slides in the socket plate in the direction away from the third fixed plate, thereby driving the limit distance to be lengthened, avoiding the problem of the smart mobile power supply being detached due to shaking while improving the limit compatibility range of the electrical equipment cabinet.
[0021] 2. During the movement, the rectangular box drives the second sliding rod to slide in the second sleeve, and then begins to squeeze the fourth compression spring, and then starts the second air pump to fill the inflatable bag structure, so that the inflatable bag structure expands and limits the line, thereby avoiding the problem of line disconnection due to the shaking of the smart mobile power supply in the future; when a short circuit occurs in the subsequent process, the third electromagnetic block and the fourth electromagnetic block are separated from the magnetic connection state, and then the fourth compression spring begins to rebound after sensing the disappearance of pressure, thereby driving the line and the smart mobile power supply out of the source state, thereby improving the protection effect of the line.
[0022] 3. When the equipment cabinet is hit, the placement box will shake. The placement box will drive the two sets of sliding rectangular blocks to slide in the slide groove while shaking. The two sets of sliding rectangular blocks begin to hit and stretch the two sets of first compression springs during the sliding process, so that the two sets of first compression springs rebound repeatedly until the device stops shaking, thereby avoiding damage to the device due to collision and improving the protection effect of the device. When the sliding rectangular block hits the first pressure sensor due to excessive shaking frequency, an alarm is given, and then maintenance and repair work on the smart mobile power supply is started, thereby extending the service life of the device.
[0023] 4. Start the second electric push rod to push the sliding plate to slide in the slide, thereby driving the two sets of heat collecting boxes to fit on the outer wall of the smart mobile power supply, and then start the third electric push rod to drive the heat collecting boxes to move up and down. During the movement, start the first air pump to absorb the heat source in the smart mobile power supply, and during the movement, make the dust suction mud rubber plate fit with the open hole surface of the smart mobile power supply. Since the dust suction mud rubber plate is a soft colloidal material and has the function of being deformed by extrusion, the opening of the smart mobile power supply is vacuumed during the moving and extruding process, which improves the cleaning effect while improving the heat absorption effect of the device.
[0024] Other features and advantages of the present invention will be described in the following description, and partly become apparent from the description, or understood by practicing the present invention. The purpose and other advantages of the present invention can be realized and obtained by the structures pointed out in the description, claims and drawings. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative work.
[0026] Figure 1 It shows a schematic diagram of the structure of a protective electrical equipment cabinet according to an embodiment of the present invention;
[0027] Figure 2 A schematic cross-sectional view of a protective electrical equipment cabinet according to an embodiment of the present invention is shown;
[0028] Figure 3 A schematic diagram of the structure of compatible components according to an embodiment of the present invention is shown;
[0029] Figure 4 A schematic cross-sectional view of a protection assembly according to an embodiment of the present invention is shown;
[0030] Figure 5A schematic diagram of the structure of a second fixing plate according to an embodiment of the present invention is shown;
[0031] Figure 6 A schematic diagram of the structure of a position limiting auxiliary component according to an embodiment of the present invention is shown;
[0032] Figure 7 A schematic cross-sectional view of a socket plate according to an embodiment of the present invention is shown;
[0033] Figure 8 A schematic diagram of the structure of a heat dissipation assembly according to an embodiment of the present invention is shown;
[0034] Fig. 9 It shows a schematic diagram of the structure of a line protection assembly according to an embodiment of the present invention;
[0035] Fig.10 A cross-sectional schematic diagram of a second sleeve according to an embodiment of the present invention is shown.
[0036] In the figure: 1. Equipment cabinet body; 2. Protection component; 201. First fixed plate; 202. Slide groove; 203. Mounting block; 204. Connecting pipe; 205. Stopper; 206. First compression spring; 207. Sliding rectangular block; 208. Buffer rod; 209. First pressure sensor; 3. Placement box; 4. Compatible component; 401. Second fixed plate; 402. First sleeve; 403. First sliding rod; 404. Third fixed plate; 405. Second compression spring; 406. First electric push rod; 407. First electromagnetic block; 408. Second electromagnetic block; 409. Slideway; 5. Limit auxiliary component; 501. First fixed block; 502. Second electric push rod; 503. Sliding plate; 5 04, the third electric push rod; 505, the socket plate; 506, the third compression spring; 507, the sliding block; 508, the second pressure sensor; 509, the second fixed block; 6, the heat dissipation component; 601, the collector box; 602, the heat absorption hose; 603, the dust suction mud rubber plate; 604, the first air pump; 7, the line protection component; 701, the fourth electric push rod; 702, the third fixed block; 703, the second socket tube; 704, the fourth compression spring; 705, the second sliding rod; 706, the fourth fixed block; 707, the third electromagnetic block; 708, the rectangular box; 709, the inflatable bag structure; 710, the second air pump; 711, the fifth fixed block; 712, the fifth electric push rod; 713, the fourth electromagnetic block. DETAILED DESCRIPTION
[0037] In order to make the purpose, technical solution and advantages of the embodiments of the present invention clearer, the technical solution in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0038] The embodiment of the present invention provides a protective electrical equipment cabinet for a smart mobile power supply. It includes an equipment cabinet body 1, exemplarily, as Figure 1 , Figure 2 and Figure 3 As shown, a protective component 2 is installed on the bottom inner wall of the equipment cabinet body 1, a placement box 3 is installed on the top of the protective component 2, a compatible component 4 is installed on the bottom inner wall of the placement box 3, two groups of limit auxiliary components 5 are slidably connected to the compatible component 4, each group of the limit auxiliary components 5 is installed with a group of heat dissipation components 6, and each group of the limit auxiliary components 5 is installed with a group of line protection components 7.
[0039] For example, Figure 4 As shown, the protection component 2 includes a first fixing plate 201, the bottom of the first fixing plate 201 is installed on the bottom inner wall of the equipment cabinet body 1, the top of the first fixing plate 201 is provided with a slide groove 202, two groups of mounting blocks 203 are symmetrically installed on the inner walls on both sides of the first fixing plate 201, a group of connecting pipes 204 are installed on one side wall of each group of mounting blocks 203, a group of stoppers 205 are installed on one side wall of each group of connecting pipes 204 away from the mounting blocks 203, and a group of first compression One end of the spring 206, each group of the first compression springs 206 is movably sleeved on the outer wall of the connecting tube 204, and the other end of each group of the first compression springs 206 is installed with a group of sliding rectangular blocks 207, and each group of the sliding rectangular blocks 207 is movably sleeved on the outer wall of the connecting tube 204, and the top of each group of the sliding rectangular blocks 207 is installed on the bottom of the placement box 3, and a group of buffer rods 208 are installed on the inner walls on both sides of the first fixed plate 201, and a group of first pressure sensors 209 are installed on one side wall of each group of the buffer rods 208.
[0040] When the equipment cabinet is hit, the placement box 3 will shake, and the placement box 3 will drive the two groups of sliding rectangular blocks 207 to slide in the slide groove 202 while shaking. The two groups of sliding rectangular blocks 207 begin to hit and stretch the two groups of first compression springs 206 during the sliding process, so that the two groups of first compression springs 206 rebound repeatedly until the device stops shaking, thereby avoiding damage to the device due to collision and improving the protection effect of the device. When the sliding rectangular block 207 hits the first pressure sensor 209 due to excessive shaking frequency, an alarm is started, and then maintenance and repair work on the smart mobile power supply is started, thereby extending the service life of the device.
[0041] For example, Figure 5 As shown, the compatible component 4 includes a second fixed plate 401, the bottom of which is mounted on the bottom inner wall of the placement box 3, a first sleeve 402 is mounted on one side wall of the second fixed plate 401, a first sliding rod 403 is slidably connected in the first sleeve 402, a third fixed plate 404 is mounted on one side wall of the first sliding rod 403, one end of two groups of second compression springs 405 are symmetrically mounted on one side wall of the second fixed plate 401, and the other end of each group of second compression springs 405 is mounted on the third fixed plate 404, a first electric push rod 406 is mounted on the outer wall of the second fixed plate 401, a first electromagnetic block 407 is mounted on the output end of the first electric push rod 406, a second electromagnetic block 408 is mounted on one side wall of the third fixed plate 404, the first electromagnetic block 407 is magnetically connected to the second electromagnetic block 408, and a slideway 409 is provided on the top of the third fixed plate 404.
[0042] Before the protective electrical equipment cabinet is put into operation, the first electric push rod 406 is first started to push the first electromagnetic block 407 and the second electromagnetic block 408 to be magnetically connected, and then the first electric push rod 406 is started to drive the third fixed plate 404 to move in the direction close to the second fixed plate 401. During the movement, the second compression spring 405 begins to be squeezed, and in order to ensure that the position does not shift during compression, the second compression spring 405 will drive the first sliding rod 403 to slide in the first sleeve 402 while being compressed. Then the smart mobile power supply is placed in the placement box 3, and then the smart mobile power supply is placed in the placement box 3. The mobile power source contacts the inner wall of one side of the placement box 3, and then breaks away from the magnetic connection between the first electromagnetic block 407 and the second electromagnetic block 408. The second compression spring 405 starts to rebound after sensing the disappearance of the pressure, and during its rebound, it drives the third fixing plate 404 to fit the outer wall of the smart mobile power source. Due to the uncertain shape and size of the smart mobile power source, the passive limit rebound effect of the compression spring is different. When displacement and shaking occur in the subsequent working process, the second compression spring 405 can be used for buffering; while improving the compatible limit effect, the protection effect of the device is also improved.
[0043] When the third fixed plate 404 is fitted to limit the smart mobile power supply, one end of the sliding block 507 is driven to fit against the inner wall of the placement box 3, and then the sliding block 507 is driven to slide in the socket plate due to the rebound pressure of the second compression spring 405, and then the third compression spring 506 begins to be squeezed, and while squeezing the third compression spring 506, pressure is transmitted to the second pressure sensor 508. Then, when the smart mobile power supply shakes, the third fixed plate 404 begins to be squeezed. When the third compression spring 506 senses that the pressure disappears, it drives the sliding block 507 to slide in the socket plate 505 in the direction away from the third fixed plate 404, thereby lengthening the limiting distance, thereby avoiding the problem of the smart mobile power supply being detached due to shaking and improving the limiting compatibility range of the device.
[0044] For example, Figure 6 and Figure 7 As shown, the position limiting auxiliary component 5 includes a first fixed block 501, the bottom of each group of the first fixed blocks 501 is installed on the top edge of the third fixed plate 404, a group of second electric push rods 502 are installed on one side wall of each group of the first fixed blocks 501, a group of sliding plates 503 are installed on the output end of each group of the second electric push rods 502, each group of the sliding plates 503 are slidably connected in the slideway 409, a group of third electric push rods 504 are installed on the bottom of each group of the sliding plates 503, and each group of the third electric push rods 504 are installed on the bottom of each group of the third electric push rods 504. A group of socket plates 505 are installed on the output end of the push rod 504, one end of a group of third compression springs 506 are installed on the inner wall of one side of each group of the socket plates 505, and a group of sliding blocks 507 are installed on the other end of each group of the third compression springs 506. Each group of the sliding blocks 507 are slidably connected in the socket plates 505, and a group of second pressure sensors 508 are installed at the junction of each group of the sliding blocks 507 and the third compression springs 506. A group of second fixing blocks 509 are installed on the outer wall of each group of the socket plates 505.
[0045] For example, Figure 8 As shown, the heat dissipation assembly 6 includes a heat collecting box 601, one end of each group of the heat collecting boxes 601 is installed on the outer wall of the socket plate 505, a plurality of groups of heat absorbing hoses 602 are evenly spaced and connected to the outer wall of each group of the heat collecting boxes 601, a plurality of groups of dust absorbing rubber plates 603 are evenly spaced and installed on the side wall of each group of the heat collecting boxes 601 close to the heat absorbing hoses 602, and a first air pump 604 is installed on the top of each group of the heat collecting boxes 601.
[0046] Start the second electric push rod 502 to push the sliding plate 503 to slide in the slide 409, thereby driving the two groups of heat collecting boxes 601 to fit onto the outer wall of the smart mobile power supply, and then start the third electric push rod 504 to drive the heat collecting boxes 601 to move up and down. During the movement, start the first air pump 604 to absorb the heat source in the smart mobile power supply, and during the movement, make the dust suction mud rubber plate 603 fit with the open hole surface of the smart mobile power supply. Since the dust suction mud rubber plate is a soft colloidal material with the function of being deformed by extrusion, the opening of the smart mobile power supply is vacuumed during the moving and extruding process, thereby improving the cleaning effect while improving the heat absorption effect of the device.
[0047] For example, Fig. 9 and Fig.10 As shown, the line protection component 7 includes a fourth electric push rod 701, the bottom of each group of the fourth electric push rod 701 is installed on the top of the second fixed block 509, a group of third fixed blocks 702 are installed on the output end of each group of the fourth electric push rod 701, a group of second sleeve tubes 703 are installed on one side wall of each group of the third fixed blocks 702, one end of a group of fourth compression springs 704 are installed on one side inner wall of each group of the second sleeve tubes 703, a group of second sliding rods 705 are installed on the other end of each group of the fourth compression springs 704, each group of the second sliding rods 705 are slidably connected in the second sleeve tube 703, a group of fourth fixed blocks 706 are installed on one side wall of each group of the second sliding rods 705, and one end of each group of the fourth fixed blocks 706 is installed on the inner wall of one side of the sleeve tube 703. A group of third electromagnetic blocks 707 are installed on the side walls, a group of rectangular boxes 708 are installed on the side wall of each group of the fourth fixed blocks 706 away from the third electromagnetic blocks 707, a group of inflatable bag structures 709 are installed in each group of the rectangular boxes 708, a group of second air pumps 710 are installed on the top of each group of the rectangular boxes 708, and the output end of each group of the second air pumps 710 is connected to the input end of the inflatable bag structure 709, a group of fifth fixed blocks 711 are installed on one side wall of each group of the third fixed blocks 702, a group of fifth electric push rods 712 are installed on one side wall of each group of the fifth fixed blocks 711, a group of fourth electromagnetic blocks 713 are installed on the output end of each group of the fifth electric push rods 712, and the third electromagnetic blocks 707 are magnetically connected to the fourth electromagnetic blocks 713.
[0048] The circuit wiring of the smart mobile power supply is started. When wiring the circuit, the circuit is first connected to the smart mobile power supply after passing through the rectangular box 708. Then, the fifth electric push rod 712 is started to push the fourth electromagnetic block 713 to be magnetically connected with the third electromagnetic block 707. Then, the rectangular box 708 is driven to move in the direction close to the third fixed block 702. During the movement, the rectangular box 708 drives the second sliding rod 705 to slide in the second sleeve 703, and then begins to squeeze the fourth compression spring 704. Then, the second air pump 710 is started to fill the inflatable bag structure 709, so that the inflatable bag structure 709 is expanded to limit the circuit, thereby avoiding the problem of disconnection of the circuit due to the shaking of the smart mobile power supply in the future. When a short circuit occurs in the subsequent process, the third electromagnetic block 707 and the fourth electromagnetic block 713 are separated from the magnetic connection state. Then, the fourth compression spring 704 starts to rebound after sensing the disappearance of the pressure, thereby driving the circuit and the smart mobile power supply out of the source state, thereby improving the protection effect of the circuit.
[0049] The third fixed plate 404 is attached to the outer wall of the smart mobile power supply by rebounding. Due to the irregular shape of the smart mobile power supply, the passive limit rebound effect of the compression spring is different. When displacement and shaking occur in the subsequent working process, the second compression spring 405 can be used for buffering; the compatible limit effect is improved while the protective effect of the electrical equipment cabinet is improved; then the sliding block 507 slides in the socket plate 505 in the direction away from the third fixed plate 404, thereby driving the limit distance to be lengthened, avoiding the problem of the smart mobile power supply being detached due to shaking while improving the limit compatibility range of the electrical equipment cabinet.
[0050] During the movement, the rectangular box 708 drives the second sliding rod 705 to slide in the second sleeve 703, and then begins to squeeze the fourth compression spring 704, and then starts the second air pump 710 to fill the inflatable bag structure 709, so that the inflatable bag structure 709 expands and limits the line, thereby avoiding the problem of line disconnection due to the shaking of the smart mobile power supply in the future; when a short circuit or the like occurs in the subsequent process, the third electromagnetic block 707 and the fourth electromagnetic block 713 are separated from the magnetic connection state, and then the fourth compression spring 704 begins to rebound after sensing the disappearance of pressure, thereby driving the line and the smart mobile power supply out of the source state, thereby improving the protection effect of the line.
[0051] When the equipment cabinet is hit, the placement box 3 will shake. While shaking, the placement box 3 will drive the two groups of sliding rectangular blocks 207 to slide in the slide groove 202. The two groups of sliding rectangular blocks 207 begin to hit and stretch the two groups of first compression springs 206 during the sliding process, so that the two groups of first compression springs 206 rebound repeatedly until the device stops shaking, thereby avoiding damage to the device due to collision and improving the protection effect of the device. When the sliding rectangular block 207 hits the first pressure sensor 209 due to excessive shaking frequency, an alarm is given, and then maintenance and repair work on the smart mobile power supply is started, thereby extending the service life of the device.
[0052] Start the second electric push rod 502 to push the sliding plate 503 to slide in the slide 409, thereby driving the two groups of heat collecting boxes 601 to fit onto the outer wall of the smart mobile power supply, and then start the third electric push rod 504 to drive the heat collecting boxes 601 to move up and down. During the movement, start the first air pump 604 to absorb the heat source in the smart mobile power supply, and during the movement, make the dust suction mud rubber plate 603 fit with the open hole surface of the smart mobile power supply. Since the dust suction mud rubber plate is a soft colloidal material with the function of being deformed by extrusion, the opening of the smart mobile power supply is vacuumed during the moving and extruding process, thereby improving the cleaning effect while improving the heat absorption effect of the device.
[0053] Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent substitutions for some of the technical features therein; and these modifications or substitutions do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A protective electrical equipment cabinet for an intelligent mobile power supply, comprising an equipment cabinet body (1) and a compatible component (4), characterized in that: Two groups of position limiting auxiliary components (5) are slidably connected to the compatible component (4), a group of heat dissipation components (6) is installed on each group of the position limiting auxiliary components (5), and a group of line protection components (7) is installed on each group of the position limiting auxiliary components (5); The compatible component (4) comprises a second fixing plate (401) and a third fixing plate (404), one end of two groups of second compression springs (405) being symmetrically mounted on a side wall of the second fixing plate (401), and the other end of each group of second compression springs (405) being mounted on the third fixing plate (404); The position limiting auxiliary component (5) comprises two sets of sleeve plates (505), one end of a set of third compression springs (506) is mounted on the inner wall of one side of each set of sleeve plates (505), and the other end of each set of third compression springs (506) is mounted on a set of sliding blocks (507); Due to the indefinite shape of the smart mobile power supply, the passive limit rebound effect of the compression spring is different; The position limiting auxiliary component (5) comprises a first fixed block (501), the bottom of each group of the first fixed blocks (501) is mounted on the top edge of the third fixed plate (404), a group of second electric push rods (502) are mounted on a side wall of each group of the first fixed blocks (501), a group of sliding plates (503) are mounted on the output end of each group of the second electric push rods (502), each group of the sliding plates (503) are slidably connected in the slideway (409), a group of third electric push rods (504) are mounted on the bottom of each group of the sliding plates (503), and the top of each group of the socket plates (505) is mounted on the output end of one of the groups of third electric push rods (504); The line protection component (7) comprises a fourth electric push rod (701), the bottom of each group of the fourth electric push rods (701) is mounted on the top of the second fixed block (509), a group of third fixed blocks (702) are mounted on the output end of each group of the fourth electric push rods (701), a group of second sleeve tubes (703) are mounted on one side wall of each group of the third fixed blocks (702), one end of a group of fourth compression springs (704) are mounted on one side inner wall of each group of the second sleeve tubes (703), a group of second sliding rods (705) are mounted on the other end of each group of the fourth compression springs (704), a group of fourth fixed blocks (706) are mounted on one side wall of each group of the second sliding rods (705), and a group of third electromagnetic blocks (707) are mounted on one side wall of each group of the fourth fixed blocks (706).
2. A protective electrical equipment cabinet for an intelligent mobile power supply according to claim 1, characterized in that: A protective component (2) is installed on the bottom inner wall of the equipment cabinet body (1), a placement box (3) is installed on the top of the protective component (2), and the compatible component (4) is installed on the bottom inner wall of the placement box (3).
3. A protective electrical equipment cabinet for an intelligent mobile power supply according to claim 2, characterized in that: The protection component (2) comprises a first fixing plate (201), the bottom of the first fixing plate (201) being mounted on the bottom inner wall of the equipment cabinet body (1), two groups of mounting blocks (203) being symmetrically mounted on the inner walls on both sides of the first fixing plate (201), a group of connecting pipes (204) being mounted on one side wall of each group of mounting blocks (203), and one end of a group of first compression springs (206) being mounted on one side wall of each group of mounting blocks (203).
4. A protective electrical equipment cabinet for an intelligent mobile power supply according to claim 3, characterized in that: A group of sliding rectangular blocks (207) are installed on the other end of each group of the first compression springs (206), the top of each group of the sliding rectangular blocks (207) is installed on the bottom of the placement box (3), a group of buffer rods (208) are installed on the inner walls on both sides of the first fixed plate (201), and a group of first pressure sensors (209) are installed on one side wall of each group of the buffer rods (208).
5. The protective electrical equipment cabinet for intelligent mobile power supply according to claim 2, characterized in that: The bottom of the second fixing plate (401) is mounted on the bottom inner wall of the placement box (3); a first sleeve (402) is mounted on a side wall of the second fixing plate (401); a first sliding rod (403) is slidably connected inside the first sleeve (402); and one end of the third fixing plate (404) is mounted on a side wall of the first sliding rod (403).
6. A protective electrical equipment cabinet for an intelligent mobile power supply according to claim 5, characterized in that: A first electric push rod (406) is installed on the outer wall of the second fixed plate (401), a first electromagnetic block (407) is installed on the output end of the first electric push rod (406), a second electromagnetic block (408) is installed on a side wall of the third fixed plate (404), the first electromagnetic block (407) is magnetically connected to the second electromagnetic block (408), and a slideway (409) is provided on the top of the third fixed plate (404).
7. The protective electrical equipment cabinet for intelligent mobile power supply according to claim 1, characterized in that: Each group of sliding blocks (507) is slidably connected in the sleeve plate (505), a group of second pressure sensors (508) is installed at the junction of each group of sliding blocks (507) and the third compression spring (506), and a group of second fixing blocks (509) is installed on the outer wall of each group of sleeve plates (505).
8. The protective electrical equipment cabinet for intelligent mobile power supply according to claim 1, characterized in that: A group of rectangular boxes (708) are installed on a side wall of each group of the fourth fixed blocks (706) away from the third electromagnetic block (707), a group of inflatable bag structures (709) are installed in each group of the rectangular boxes (708), a group of second air pumps (710) are installed on the top of each group of the rectangular boxes (708), and the output end of each group of the second air pumps (710) is connected to the input end of the inflatable bag structure (709), a group of fifth fixed blocks (711) are installed on a side wall of each group of the third fixed blocks (702), a group of fifth electric push rods (712) are installed on a side wall of each group of the fifth fixed blocks (711), and a group of fourth electromagnetic blocks (713) are installed on the output end of each group of the fifth electric push rods (712), and the third electromagnetic block (707) is magnetically connected to the fourth electromagnetic block (713).
Citation Information
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