Portable light emergency energy storage equipment
By designing portable light-duty emergency energy storage equipment, the energy storage module can be detached and connected to the mobile carrier, and the disassembled protective components are used for high-temperature cooling, which solves the flexibility and safety hazards caused by the fixed connection of the energy storage module in traditional equipment, and achieves the improvement of the portability and safety of the equipment.
Patent Information
- Application Number
- CN202510293460.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-13
- Publication Date
- 2025-06-17
AI Technical Summary
The energy storage module of traditional portable light emergency energy storage equipment is fixedly connected to the mobile carrier and cannot be disassembled, which limits the flexibility and portability of the energy storage module. It cannot be protected in time under high temperature abnormalities, which may cause fires and other safety accidents.
A portable light-duty emergency energy storage device is designed. The energy storage module is installed on a mobile carrier through installation components and adopts detached connected protective components, including airbag bags and thermal plates, for lowering temperatures and preventing fires.
It realizes convenient disassembly and flexible handling of energy storage modules, improves the adaptability and practicality of the equipment, ensures the stability and safety of power output, and avoids safety accidents caused by high temperatures.
Smart Images

Figure CN120165486A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of energy storage devices, and more specifically, to a portable light emergency energy storage device. Background Art
[0002] With the increasing enthusiasm of people for outdoor activities, such as outdoor camping, field work, and power supply in remote areas, the demand for energy storage devices is also increasing. As a device that can store and provide electricity, energy storage devices play an important role in outdoor scenarios.
[0003] However, the energy storage module of traditional portable light emergency energy storage devices is fixedly connected to the mobile carrier, that is, the energy storage module cannot be detached from the mobile carrier. When it is necessary to use the energy storage module to supply power to multiple electrical appliances at different locations, it will be very inconvenient to move the entire emergency energy storage device. Therefore, the flexibility and portability of the energy storage module are restricted, and it cannot efficiently meet the diverse outdoor power consumption needs. When the energy storage device is not required to be used at different outdoor locations, other energy storage modules need to be electrically connected to the mobile carrier. Since abnormal phenomena such as high temperature are likely to occur at the contact where the energy storage module is electrically connected to the mobile carrier. However, existing energy storage devices cannot perform high-temperature protection treatment in a timely manner when the energy storage module is electrically connected to the mobile carrier. Therefore, once thermal runaway occurs, serious safety accidents such as fires may be triggered, threatening personnel and equipment. Summary of the Invention
[0004] Aiming at the deficiencies of the existing technology, the purpose of the present invention is to provide a portable light emergency energy storage device.
[0005] To achieve the above purpose, the present invention provides the following technical solutions: A portable light emergency energy storage device, including an energy storage module and a mobile carrier. A first power connection jack electrically connected thereto is provided on the energy storage module, and a second power connection jack is provided on the mobile carrier. The device further includes: An installation component, the energy storage module is installed on the mobile carrier through the installation component; A first connection component, the first connection component includes a connection plate fixedly connected to the energy storage module. A receiving hole is formed in the connection plate, and the inside of the receiving hole is used to receive the second conductive plate of the energy storage module; The second connection component, the second connection component includes a protective shell fixedly connected to the mobile carrier, a third conductive plate is fixedly connected inside the protective shell, the third conductive plate is electrically connected to the second power connection jack, a receiving shell is movably connected through the second protective shell, a first conductive plate matching the second conductive plate is fixedly connected inside the receiving shell, a conductive block is fixedly connected to the receiving shell, one end of the conductive block is electrically connected to the first conductive plate, and the other end of the conductive block is electrically connected to the third conductive plate; The protection component, the protection component includes a connecting plate detachably connected to the protective shell, an airbag is fixedly connected to the connecting plate, a gas passage is provided on the side wall of the protective shell, a heat conducting plate is fixedly connected to the side wall of the protective shell, and a plastic film is fixedly connected to the end of the airbag opposite to the heat conducting plate.
[0006] Preferably, rollers are installed at the bottom of the mobile carrier.
[0007] Preferably, the installation component includes: The first fixing plate, the first fixing plate is fixedly connected above the mobile carrier; The bearing plate, a first cavity is provided inside the first fixing plate, and the protruding part below the bearing plate is movably connected inside the first cavity; The second fixing plate, the second fixing plate is fixedly connected to the mobile carrier; The heat dissipation plate, a second cavity is provided inside the second fixing plate, a baffle is movably connected inside the second cavity, the baffle is fixedly connected to the heat dissipation plate, and heat dissipation holes are provided on the heat dissipation plate; The connecting rod, the heat dissipation plate and the bearing plate are fixedly connected through the connecting rod.
[0008] Preferably, the installation component further includes: The slide rail, the slide rail is fixedly connected inside the bearing plate, and an inlet corresponding to the slide rail is provided on the bearing plate; The slider, the slider is fixedly connected to the bottom of the energy storage module, and the slider is matched with the slide rail.
[0009] Preferably, a fixing plate is fixedly connected to the mobile carrier, and a support plate is detachably connected to the fixing plate through a first fixing bolt, and the horizontal end of the support plate movably penetrates through the fixing plate and is located below the connecting rod.
[0010] Preferably, the first connection component further includes: The protection plate, a third cavity is provided inside the connecting plate, a movable plate is connected to the third cavity through a first spring, the movable plate is fixedly connected to the protection plate, and through holes are provided on the side wall of the protection plate; The jacking rod is fixedly connected above the first fixing plate.
[0011] Preferably, the second connection assembly further includes: The fixed shell is fixedly connected to the outer side wall of the protective shell; The sliding plate, a sliding groove is formed inside the fixed shell, and the sliding plate is slidably connected inside the sliding groove; The threaded rod is threadedly connected to the fixed shell and rotatably connected to the sliding plate; The fixed rod, and the sliding plate and the protective shell are fixedly connected by the fixed rod.
[0012] Preferably, the protection assembly further includes: The connecting block is fixedly connected to the connecting plate, and the connecting block is connected to the side wall of the protective shell by a locking bolt; The consolidation plate is fixedly connected to the side wall of the connecting plate; The air bag is fixedly connected to the lower end of the consolidation plate, and the air bag is communicated with the airbag; The interconnecting plate is fixedly connected to the airbag, a cross plate is fixedly connected to the side wall of the connecting plate, and a second spring is fixedly connected between the cross plate and the interconnecting plate; The push plate is fixedly connected to the side wall of the connecting plate.
[0013] Preferably, a vertical plate is fixedly connected to the mobile carrier, and the energy storage module is locked on the vertical plate by a second fixing bolt.
[0014] Compared with the prior art, the present invention has the following beneficial effects: This application allows the energy storage module to be detached from the mobile carrier, which greatly facilitates outdoor users. When there are multiple electrical appliances at different locations outdoors that need to use the energy storage module, the staff can easily detach it and carry it to the corresponding location without moving the entire mobile carrier, reducing the consumption of manpower and material resources, and enabling the energy storage module to more conveniently meet the electricity demand in different scenarios. This detachable design makes the energy storage module no longer limited to the use mode of being fixedly connected to the mobile carrier, and can be flexibly allocated according to the actual situation to adapt to various complex outdoor environments and diverse layouts of electrical equipment, improving the adaptability and practicality of the overall system. Since only one energy storage module is electrically connected to the mobile carrier each time, this can effectively avoid the voltage instability problem that may be caused by multiple energy storage modules supplying power simultaneously, ensure a stable and reliable power output for the electrical appliances, guarantee the normal operation and service life of the electrical appliances, and reduce the risk of damage to the electrical appliances caused by voltage fluctuations.
[0015] In this application, the airbag is connected by detachably connecting the connecting plate to the protective shell. When the first conductive plate is connected to the second conductive plate, a high-temperature anomaly may occur. At this time, the heat-conducting plate can transfer the high temperature to the plastic film of the airbag, causing it to melt, thereby discharging the carbon dioxide gas in the airbag to achieve a cooling effect. At the same time, the fuse installed inside the energy storage module will stop supplying power from the energy storage module to the second power connection jack of the mobile carrier in case of high temperature. The dual protection mechanism effectively prevents safety accidents that may be caused by high temperature, such as fires, etc., and improves the safety and reliability of the entire system. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 It is a schematic diagram of the portable light emergency energy storage device of the present invention with the fixed plate and the support plate removed; Figure 2 It is a schematic diagram of the portable light emergency energy storage device of the present invention with the rollers removed; Figure 3 is Figure 2 a partial enlarged view of part A in Figure 4 is Figure 2 a partial enlarged view of part B in Figure 5 It is a schematic diagram of the energy storage module in the portable light emergency energy storage device of the present invention Figure 1 ; Figure 6 It is a schematic diagram of the energy storage module in the portable light emergency energy storage device of the present invention Figure 2 ; Figure 7 is Figure 6 a partial enlarged view of part C in Figure 8 It is a schematic diagram of the connection between the first fixing plate and the bearing plate in the portable light emergency energy storage device of the present invention; Figure 9 It is a schematic diagram of the interior of the connecting plate and the protective shell in the portable light emergency energy storage device of the present invention; Figure 10 is Figure 9 a partial enlarged view of part D in Figure 11 It is a schematic diagram of the interior of the second fixing plate and the heat dissipation plate in the portable light emergency energy storage device of the present invention; Figure 12 is Figure 11 a partial enlarged view of part E in Figure 13 It is a schematic diagram of the interior of the first fixing plate and the bearing plate in the portable light emergency energy storage device of the present invention.
[0017] 1. Mobile carrier; 2. Energy storage module; 3. First power connection jack; 4. Second power connection jack; 5. Connecting plate; 6. Accommodating hole; 7. Second conductive plate; 8. Protective shell; 9. Third conductive plate; 10. Accommodating shell; 11. First conductive plate; 12. Conductive block; 13. Connecting plate; 14. Airbag; 15. Gas channel; 16. Heat conducting plate; 17. Plastic film; 18. Roller; 19. First fixing plate; 20. Bearing plate; 21. First cavity; 22. Heat dissipation plate; 23. Second cavity; 24. Baffle; 25. Heat dissipation hole; 26. Connecting rod; 27. Slide rail; 28. Inlet; 29. Slide block; 30. Fixed plate; 31. First fixing bolt; 32. Support plate; 33. Protective plate; 34. Movable plate; 35. Through hole; 36. Jacking rod; 37. Fixed shell; 38. Slide plate; 39. Chute; 40. Threaded rod; 41. Connecting block; 42. Locking bolt; 43. Consolidated plate; 44. Gas-filled bag; 45. Interconnecting plate; 46. Cross plate; 47. Second spring; 48. Pushing plate; 49. Vertical plate; 50. Second fixing bolt; 51. Fixed rod; 52. First spring; 53. Second fixing plate. Detailed implementation mode
[0018] Refer to Figures 1 to 13 .
[0019] Embodiment 1 further describes the portable lightweight emergency energy storage device proposed by the present invention.
[0020] The portable lightweight emergency energy storage device includes an energy storage module 2 and a mobile carrier 1. A first power connection jack 3 electrically connected thereto is provided on the energy storage module 2, and a second power connection jack 4 is provided on the mobile carrier 1. It further includes: An installation component, and the energy storage module 2 is installed on the mobile carrier 1 through the installation component; A first connection component, the first connection component includes a connecting plate 5 fixedly connected to the energy storage module 2. An accommodating hole 6 is formed on the connecting plate 5, and the inside of the accommodating hole 6 is used to accommodate the second conductive plate 7 of the energy storage module 2; A second connection component, the second connection component includes a protective shell 8 fixedly connected to the mobile carrier 1. A third conductive plate 9 is fixedly connected inside the protective shell 8, and the third conductive plate 9 is electrically connected to the second power connection jack 4. An accommodating shell 10 is movably connected through the second protective shell 8. A first conductive plate 11 matching the second conductive plate 7 is fixedly connected inside the accommodating shell 10. A conductive block 12 is fixedly connected to the accommodating shell 10. One end of the conductive block 12 is electrically connected to the first conductive plate 11, and the other end of the conductive block 12 is electrically connected to the third conductive plate 9; The protection component includes a connecting plate 13 detachably connected to the protection shell 8. A gasbag 14 is fixedly connected to the connecting plate 13. A gas channel 15 is provided on the side wall of the protection shell 8. A heat conducting plate 16 is fixedly connected to the side wall of the protection shell 8. A plastic film 17 is fixedly connected to the end of the gasbag 14 opposite to the heat conducting plate 16.
[0021] The energy storage module 2 of the present application can charge new energy vehicles, and at the same time, the energy storage module 2 can be a lithium battery module.
[0022] Since the energy storage module 2 of the present application can be detached from the mobile carrier 1, it is convenient for outdoor users to use. For example, when there are multiple electrical appliances at different locations outdoors that need to use the energy storage module 2, the staff detaches the energy storage module 2 from the mobile carrier 1 and then moves it to the location where it is needed, thereby improving the portability of the use of the energy storage module 2. The staff connects the plug of the electrical appliance to the first power connection jack 3 of the energy storage module 2, so as to supply power to the electrical appliance through the energy storage module 2.
[0023] When it is necessary to install the energy storage module 2 on the mobile carrier 1, the staff horizontally places the energy storage module 2 on the mobile carrier 1. The energy storage module 2 is installed on the mobile carrier 1 through the installation component, so that the accommodation shell 10 moves relative to the protection shell 8. During the movement of the accommodation shell 10, the first conductive plate 11 moves until the first conductive plate 11 is in a connected state with the second conductive plate 7, so as to make the second power connection jack 4 on the mobile carrier 1 in a powered-on state. Therefore, when the plug of the electrical appliance is connected to the second power connection jack 4, it supplies power to the electrical appliance. Note that only one energy storage module 2 is electrically connected to the mobile carrier 1 each time, so as to ensure voltage stability.
[0024] Since the connecting plate 13 is detachably connected to the protection shell 8 in the present application, the gasbag 14 is connected to the connecting plate 13. When the first conductive plate 11 and the second conductive plate 7 are connected, a high-temperature abnormal phenomenon may occur. If the first conductive plate 11 and the second conductive plate 7 generate high temperature during connection, since the heat conducting plate 16 is a heat-conducting material and the gasbag 14 can expand and contract in the vertical direction, when the gas in the gasbag 14 is increased, the plastic film 17 contacts the heat conducting plate 16. Therefore, the high temperature at the first conductive plate 11 and the second conductive plate 7 is transferred to the plastic film 17 of the gasbag 14 through the heat conducting plate 16, so as to melt the plastic film 17. After the plastic film 17 melts, the carbon dioxide gas in the gasbag 14 is discharged to achieve the cooling effect. At the same time, since a fuse is installed inside the energy storage module 2, when a high temperature occurs after the first conductive plate 11 and the second conductive plate 7 are connected, the energy storage module 2 stops supplying power to the second power connection jack 4 of the mobile carrier 1.
[0025] Since the conductive block 12 is always in electrical contact and electrical connection with the third conductive plate 9 during the movement in the present application.
[0026] Embodiment 2 adds the following technical features on the basis of Embodiment 1: In the portable light emergency energy storage device, rollers 18 are installed at the bottom of the mobile carrier 1, and the setting of the rollers 18 facilitates the movement of the mobile carrier 1 outdoors.
[0027] The installation assembly includes: The first fixing plate 19 is fixedly connected above the mobile carrier 1; The bearing plate 20, a first cavity 21 is formed inside the first fixing plate 19, and the convex part below the bearing plate 20 is movably connected inside the first cavity 21; The second fixing plate 53 is fixedly connected to the mobile carrier 1; The heat dissipation plate 22, a second cavity 23 is formed inside the second fixing plate 53, a baffle 24 is movably connected inside the second cavity 23, the baffle 24 is fixedly connected to the heat dissipation plate 22, and heat dissipation holes 25 are formed in the heat dissipation plate 22; The connecting rod 26, and the heat dissipation plate 22 and the bearing plate 20 are fixedly connected through the connecting rod 26.
[0028] A fixed plate 30 is fixedly connected to the mobile carrier 1, and a support plate 32 is detachably connected to the fixed plate 30 through a first fixing bolt 31. The horizontal end of the support plate 32 movably penetrates through the fixed plate 30 and is located below the connecting rod 26. A strip-shaped hole is formed in the fixed plate 30, and the horizontal end of the support plate 32 can pass through the strip-shaped hole of the fixed plate 30 and be located on the other side of the fixed plate 30.
[0029] A vertical plate 49 is fixedly connected to the mobile carrier 1, and the energy storage module 2 is locked to the vertical plate 49 through a second fixing bolt 50.
[0030] When it is necessary to install the energy storage module 2 on the mobile carrier 1, the staff horizontally places the energy storage module 2 between the bearing plate 20 and the heat dissipation plate 22. At this time, the support plate 32 is fixedly connected to the side wall of the fixed plate 30 through the first fixing bolt 31. Since the horizontal section of the support plate 32 is directly below the upper end of the connecting rod 26, that is, the connecting rod 26 is supported by the support plate 32. Since the support plates 32 are arranged on both sides of the energy storage module 2 ( Figure 2Due to the obstruction of other structures, only one side of the energy storage module 2 is provided with a support plate 32). At this time, due to the function of the support plate 32, the connecting rod 26 and the energy storage module 2 are prevented from moving downward. When it is not necessary to electrically connect the energy storage module 2 to the second power connection jack 4 on the mobile carrier 1, the staff fixes the energy storage module 2 to the vertical plate 49 through the second fixing bolt 50, that is, the locking of the energy storage module 2 is achieved. And at this time, the heat dissipation holes 25 are located inside the second cavity 23, so dust in the air will not enter the inside of the heat dissipation holes 25, that is, dust in the air can be prevented from entering the inside of the heat dissipation holes 25 during this process.
[0031] When it is necessary to electrically connect the energy storage module 2 to the second power connection jack 4 on the mobile carrier 1, the staff rotates the second fixing bolt 50 to disengage the second fixing bolt 50 from the energy storage module 2 and the vertical plate 49, that is, the energy storage module 2 is not locked by the second fixing bolt 50. Then the staff rotates the first fixing bolt 31 to disengage the first fixing bolt 31 from the fixed connection plate 30 and the support plate 32, that is, the support plate 32 is not locked to the fixed connection plate 30 by the first fixing bolt 31. The staff manually pulls the support plate 32 horizontally and pulls the support plate 32 out of the fixed connection plate 30. Since the support plate 32 does not support the upper end of the connecting rod 26, the lower end of the bearing plate 20 moves inside the first cavity 21 under the gravity of the energy storage module 2. During this process, since the heat dissipation plate 22 is fixedly connected to the bearing plate 20 through the connecting rod 26, the heat dissipation plate 22 moves downward through the connecting rod 26. During the downward movement of the heat dissipation plate 22, the heat dissipation holes 25 are located below the second fixing plate 53. Since a plurality of bolt holes matching the second fixing bolt 50 are provided on the vertical plate 49, after the staff moves the position of the second fixing bolt 50 and rotates the second fixing bolt 50, the energy storage module 2 is locked by the second fixing bolt 50. Since heat will be generated during the use of the energy storage module 2, due to the function of the heat dissipation holes 25, air flow is facilitated, that is, heat dissipation of the energy storage module 2 is facilitated.
[0032] Embodiment 3 adds the following technical features on the basis of Embodiment 2: For the portable light emergency energy storage device, the installation assembly further includes: A slide rail 27, the slide rail 27 is fixedly connected inside the bearing plate 20, and an inlet 28 corresponding to the slide rail 27 is provided on the bearing plate 20; A slider 29, the slider 29 is fixedly connected to the bottom of the energy storage module 2, and the slider 29 is matched with the slide rail 27.
[0033] When the energy storage module 2 is horizontally placed between the bearing plate 20 and the heat dissipation plate 22, the slider 29 at the bottom of the energy storage module 2 enters the inside of the slide rail 27 through the inlet 28. Due to the cooperation between the slider 29 and the slide rail 27, it is convenient for the energy storage module 2 to move horizontally between the bearing plate 20 and the heat dissipation plate 22.
[0034] Embodiment 4 adds the following technical features on the basis of Embodiment 3: For the portable light emergency energy storage device, the first connection assembly further includes: A protection plate 33, a third cavity is provided inside the connecting plate 5, a movable plate 34 is connected to the inside of the third cavity through a first spring 52, the movable plate 34 is fixedly connected to the protection plate 33, and through holes 35 are provided on the side wall of the protection plate 33; A jacking rod 36, the jacking rod 36 is fixedly connected above the first fixing plate 19.
[0035] When the energy storage module 2 moves downward on the upper end surface of the bearing plate 20, since the jacking rod 36 is fixedly connected above the first fixing plate 19 and the connecting plate 5 is provided with a jacking hole opposite to the end surface of the jacking rod 36, during the downward movement of the energy storage module 2, the connecting plate 5 moves downward, so that the jacking rod 36 is inserted into the jacking hole of the connecting plate 5. Due to the action of the jacking rod 36, the protection plate 33 moves downward. At this time, the first spring 52 is in a compressed state, and at this time, the through hole 35 is in communication with the receiving hole 6, which is convenient for the subsequent connection between the second conductive plate 7 and the first conductive plate 11.
[0036] After the energy storage module 2 is taken out from the mobile carrier 1, due to the elastic reset function of the first spring 52, the movable plate 34 moves downward. During the downward movement of the movable plate 34, the protection plate 33 moves downward, and at this time, the through hole 35 is not in communication with the receiving hole 6. Therefore, the receiving hole 6 is blocked by the protection plate 33, that is, the second conductive plate 7 is protected to prevent safety risks caused by the lack of protection of the second conductive plate 7 after the energy storage module 2 is taken out from the mobile carrier 1.
[0037] Embodiment 5 adds the following technical features on the basis of Embodiment 4: For the portable light emergency energy storage device, the second connection assembly further includes: A fixed shell 37, the fixed shell 37 is fixedly connected to the outer side wall of the protection shell 8; A sliding plate 38, a sliding groove 39 is provided inside the fixed shell 37, and the sliding plate 38 is slidably connected to the inside of the sliding groove 39; A threaded rod 40, the threaded rod 40 is threadedly connected to the fixed shell 37, and the threaded rod 40 is rotatably connected to the sliding plate 38; A fixed rod 51, the sliding plate 38 and the protection shell 8 are fixedly connected through the fixed rod 51.
[0038] When the accommodating shell 10 and the accommodating hole 6 are in a corresponding state, the staff manually rotates the threaded rod 40. Since the threaded rod 40 is threadedly connected to the fixed shell 37, the threaded rod 40 is rotationally connected to the sliding plate 38, and the end of the sliding plate 38 is slidably connected inside the sliding groove 39. Therefore, during the process of the threaded rod 40, the sliding plate 38 is moved. During the movement of the sliding plate 38, the accommodating shell 10 is moved towards the accommodating hole 6 through the action of the fixed rod 51, so that the first conductive plate 11 is electrically connected after contacting the second conductive plate 7.
[0039] Embodiment 6 adds the following technical features on the basis of Embodiment 5: For the portable lightweight emergency energy storage device, the protection component further includes: A connecting block 41, the connecting block 41 is fixedly connected to the connecting plate 13, and the connecting block 41 is connected to the side wall of the protection shell 8 through a locking bolt 42; A consolidation plate 43, the consolidation plate 43 is fixedly connected to the side wall of the connecting plate 13; An air bag 44, the lower end of the air bag 44 is fixedly connected to the consolidation plate 43, and the air bag 44 is communicated with the airbag 14; An interconnecting plate 45, the interconnecting plate 45 is fixedly connected to the airbag 14, a cross plate 46 is fixedly connected to the side wall of the connecting plate 13, and a second spring 47 is fixedly connected between the cross plate 46 and the interconnecting plate 45; A push plate 48, the push plate 48 is fixedly connected to the side wall of the connecting plate 5.
[0040] During the downward movement of the energy storage module 2, the connecting plate 5 moves downward. During the downward movement of the connecting plate 5, the push plate 48 moves downward. At this time, the push plate 48 exerts a downward force on the interconnection plate 45, causing the interconnection plate 45 to move downward. At this time, the second spring 47 is in a compressed state. During this process, the air bag 44 is squeezed through the interconnection plate 45, so that the carbon dioxide gas inside the air bag 44 enters the inside of the air bag 14. Since the air bag 14 can expand and contract in the vertical direction, when the gas inside the air bag 14 increases, the plastic film 17 at the top of the air bag 14 moves upward until the plastic film 17 contacts the heat conducting plate 16. When the first conductive plate 11 is connected to the second conductive plate 7, a high-temperature abnormal phenomenon may occur. If the first conductive plate 11 and the second conductive plate 7 generate high temperature during connection, since the heat conducting plate 16 is a heat-conducting material, the high temperature at the first conductive plate 11 and the second conductive plate 7 is transferred to the plastic film 17 of the air bag 14 through the heat conducting plate 16, so that the plastic film 17 melts. After the plastic film 17 melts, the carbon dioxide gas in the air bag 14 is discharged to achieve the cooling effect. At the same time, since a fuse is installed inside the energy storage module 2, when a high temperature occurs after the first conductive plate 11 is connected to the second conductive plate 7, the energy storage module 2 stops supplying power to the second power connection jack 4 of the mobile carrier 1. When the energy storage module 2 is electrically connected to the second power connection jack 4 on the mobile carrier 1, since the plastic film 17 is in direct contact with the heat conducting plate 16, the temperature of the heat conducting plate 16 can be closely contacted, that is, the accuracy is higher.
[0041] When the energy storage module 2 is taken out from the mobile carrier 1, that is, when the push plate 48 has no force on the interconnection plate 45, due to the elastic recovery of the second spring 47, the interconnection plate 45 moves upward. During this process, the air bag 44 expands upward, so that the gas inside the air bag 14 flows into the inside of the air bag 44. Since the gas inside the air bag 14 decreases, the plastic film 17 moves downward, that is, the plastic film 17 is not in direct contact with the heat conducting plate 16. Since high-temperature abnormal phenomena may also cause the corresponding third conductive plate 9, conductive block 12, first conductive plate 11 and heat conducting plate 16 to be overheated when other energy storage modules 2 are electrically connected to the second power connection jack 4 of the mobile carrier 1, and since the plastic film 17 is not in direct contact with the heat conducting plate 16, the plastic film 17 of the corresponding air bag 14 is prevented from melting.
[0042] The above is only the preferred embodiment of the present invention, and the protection scope of the present invention is not limited to the above embodiments. All technical solutions falling within the idea of the present invention belong to the protection scope of the present invention. It should be noted that for those of ordinary skill in the art, several improvements and retouches made without departing from the principle of the present invention should also be regarded as the protection scope of the present invention.
Claims
1. A portable light emergency energy storage device, comprising an energy storage module (2) and a mobile carrier (1), wherein the energy storage module (2) is provided with a first power connection socket (3) electrically connected thereto, and the mobile carrier (1) is provided with a second power connection socket (4), characterized in that: Also includes: An installation component, wherein the energy storage module (2) is installed on the mobile carrier (1) via the installation component; A first connection assembly, the first connection assembly comprising a connection plate (5) fixedly connected to the energy storage module (2), the connection plate (5) being provided with a receiving hole (6), the interior of the receiving hole (6) being used to receive a second conductive plate (7) of the energy storage module (2); A second connection component, the second connection component comprising a protective shell (8) fixedly connected to the mobile carrier (1), a third conductive plate (9) fixedly connected inside the protective shell (8), the third conductive plate (9) being electrically connected to the second power connection socket (4), a receiving shell (10) movably connected through the second protective shell (8), a first conductive plate (11) matching the second conductive plate (7) fixedly connected inside the receiving shell (10), a conductive block (12) fixedly connected to the receiving shell (10), one end of the conductive block (12) being electrically connected to the first conductive plate (11), and the other end of the conductive block (12) being electrically connected to the third conductive plate (9); A protection component, the protection component comprising a connecting plate (13) detachably connected to a protection shell (8), an air bag (14) being fixedly connected to the connecting plate (13), a gas passage (15) being provided on a side wall of the protection shell (8), a heat conducting plate (16) being fixedly connected to the side wall of the protection shell (8), and a plastic film (17) being fixedly connected to the end of the air bag (14) opposite to the heat conducting plate (16).
2. The portable light emergency energy storage device according to claim 1, characterized in that: A roller (18) is installed at the bottom of the mobile carrier (1).
3. The portable light emergency energy storage device according to claim 1, characterized in that: The installation assembly includes: A first fixing plate (19), the first fixing plate (19) being fixedly connected above the mobile carrier (1); A bearing plate (20), wherein a first cavity (21) is provided inside the first fixing plate (19), and a raised portion below the bearing plate (20) is movably connected to the inside of the first cavity (21); A second fixing plate (53), the second fixing plate (53) being fixedly connected to the mobile carrier (1); A heat dissipation plate (22), a second cavity (23) is provided inside the second fixed plate (53), a baffle (24) is movably connected inside the second cavity (23), the baffle (24) is fixedly connected to the heat dissipation plate (22), and a heat dissipation hole (25) is provided on the heat dissipation plate (22); A connecting rod (26), wherein the heat dissipation plate (22) and the bearing plate (20) are fixedly connected via the connecting rod (26).
4. The portable light emergency energy storage device according to claim 3, characterized in that: The installation assembly also includes: A slide rail (27), the slide rail (27) being fixedly connected to the inside of the bearing plate (20), and the bearing plate (20) being provided with an inlet (28) corresponding to the slide rail (27); A slider (29), the slider (29) being fixedly connected to the bottom of the energy storage module (2), and the slider (29) being matched with the slide rail (27).
5. The portable light emergency energy storage device according to claim 3, characterized in that: The mobile carrier (1) is fixedly connected to a fixing plate (30), and the fixing plate (30) is detachably connected to a support plate (32) via a first fixing bolt (31), and the horizontal end of the support plate (32) movably passes through the fixing plate (30) and is located below the connecting rod (26).
6. The portable light emergency energy storage device according to claim 3, characterized in that: The first connection component also includes: A protective plate (33), wherein a third cavity is provided inside the connecting plate (5), a movable plate (34) is connected inside the third cavity via a first spring (52), the movable plate (34) is fixedly connected to the protective plate (33), and a through hole (35) is provided on a side wall of the protective plate (33); A lifting rod (36) is fixedly connected above the first fixing plate (19).
7. The portable light emergency energy storage device according to claim 1, characterized in that: The second connection component also includes: A fixed shell (37), wherein the fixed shell (37) is fixedly connected to an outer side wall of the protective shell (8); A slide plate (38), wherein a slide groove (39) is provided inside the fixed shell (37), and the slide plate (38) is slidably connected inside the slide groove (39); A threaded rod (40), wherein the threaded rod (40) is threadedly connected to the fixed shell (37), and the threaded rod (40) is rotationally connected to the slide plate (38); A fixing rod (51), wherein the slide plate (38) and the protective shell (8) are fixedly connected via the fixing rod (51).
8. The portable light emergency energy storage device according to claim 1, characterized in that: The protection component also includes: A connecting block 41, the connecting block 41 is fixedly connected to the connecting plate 13, and the connecting block 41 is connected to the side wall of the protective shell (8) via a locking bolt (42); A consolidation plate (43), wherein the consolidation plate (43) is fixedly connected to a side wall of the connecting plate (13); An air bag (44), the lower end of the air bag (44) being fixedly connected to the consolidation plate (43), and the air bag (44) being in communication with the airbag bag (14); An interconnection plate (45), the interconnection plate (45) being fixedly connected to the airbag bag (14), a transverse plate (46) being fixedly connected to the side wall of the connecting plate (13), and a second spring (47) being fixedly connected between the transverse plate (46) and the interconnection plate (45); A push plate (48), wherein the push plate (48) is fixedly connected to a side wall of the connecting plate (5).
9. The portable light emergency energy storage device according to claim 8, characterized in that: A vertical plate (49) is fixedly connected to the mobile carrier (1), and the energy storage module (2) is locked on the vertical plate (49) by means of a second fixing bolt (50).