Portable energy storage power bank for emergency rescue
By designing a portable energy storage power bank, and adopting a lifting platform and modular energy storage system, the problems of bulkiness and difficulty in adapting traditional emergency rescue equipment have been solved, enabling fast and efficient charging of new energy vehicles and improving the efficiency and portability of emergency rescue.
Patent Information
- Application Number
- CN202520328096.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-27
- Publication Date
- 2026-02-17
- Estimated Expiration
- 2035-02-27
AI Technical Summary
Traditional emergency rescue methods are difficult to provide high-voltage fast charging for new energy vehicles quickly and effectively. Furthermore, traditional equipment is bulky and difficult to quickly adapt to charging interfaces, which increases the time required for rescue operations.
Design a portable emergency rescue energy storage power bank, which includes a lifting platform and an energy storage device. The lifting platform is made of stainless steel tubes and is equipped with an inverter module and a charging interface. It supports quick adjustment to the height of the vehicle trunk for direct charging and can be disassembled into a modular energy storage system suitable for different scenarios.
It enables rapid and stable power supply to new energy vehicles and mobile devices, shortens rescue time, improves equipment compatibility and portability, and avoids the difficulties in transporting traditional equipment.
Smart Images

Figure CN223919143U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to road emergency rescue equipment technical field, concretely is a portable emergency rescue energy storage power bank. BACKGROUND
[0002] With the rapid popularization of new energy vehicles, the problem of stranded vehicles caused by depleted battery power in road emergency rescue scenarios is increasingly prominent. However, traditional emergency rescue methods such as tow truck traction or fixed charging pile assistance have significant limitations, for example, tow trucks rely on other vehicles for traction, are susceptible to traffic conditions, and cannot directly address the need for electric vehicle power replenishment; fixed charging piles are limited by geographic location and are difficult to cover remote sections or accident sites, ordinary mobile power sources have limited power (typically less than 10kW) and are difficult to meet the high-voltage fast charging needs of new energy vehicles; and large energy storage vehicles are bulky and difficult to transport, making it difficult to quickly adapt to charging interface heights, resulting in increased rescue time. To address this situation, the utility model provides a new solution. SUMMARY
[0003] The utility model aims at providing a portable emergency rescue energy storage power bank to solve the problems raised in the background.
[0004] To achieve the above-mentioned purpose, the utility model provides the following technical scheme: a portable emergency rescue energy storage power bank, comprising:
[0005] A lifting platform and an energy storage device;
[0006] The energy storage device is slidingly installed on the lifting platform and is detachably combined with the lifting platform;
[0007] The energy storage device includes a battery collection block and a converter module, and the converter module is installed on one side of the battery collection block.
[0008] Further to this scheme, the lifting platform includes a carrier frame, which is a rectangular frame formed by four stainless steel pipes welded end to end, and the length and width of the carrier frame are not greater than the length and width formed at the bottom of the energy storage device.
[0009] Further to this scheme, the lifting platform includes a bottom frame, which is a " " shaped frame structure formed by three stainless steel pipes welded together, and a stabilizing rod is welded to the opening of the bottom frame, with the length of the stabilizing rod being greater than the maximum width of the bottom frame to improve the stability of the lifting platform.
[0010] Further to this scheme, two scissor levers are provided between the two sides of the bottom frame, one end of each scissor lever is hingedly connected to the bottom of the carrier frame, and the other end of each scissor lever is connected by a horizontal bar. The two sides of the bottom frame are provided with grooves, and the horizontal bar slides in the grooves.
[0011] Further to the scheme, the bottom frame is provided with a scissor lever two away from one end of the scissor lever one, the two scissor levers two are connected by a cross lever two, the cross lever two is rotatably installed between the two sides of the bottom frame, a fixing frame is installed at the middle position of the scissor lever two, a small electric hydraulic cylinder is hingedly installed on the fixing frame, the extension end of the small electric hydraulic cylinder is hingedly connected to the bottom of the carrier frame, and the scissor lever two and the scissor lever one are rotatably connected to the middle part.
[0012] Further to the scheme, the energy storage device further comprises a bearing plate, the battery collection block and the converter module are installed on the bearing plate, and the bearing plate is placed on the bottom frame.
[0013] Further to the scheme, the bearing plate is slidably installed on the bottom frame.
[0014] Further to the scheme, the converter module is electrically connected between the battery collection block, a charging gun and a socket are arranged on the converter module for discharging to the mobile device, and a charging port is further arranged on the converter module for supplementing the battery collection block with electricity.
[0015] Further to the scheme, a plurality of universal wheels are installed on the bottom of the bearing plate, and the wheel body diameter of the universal wheels is greater than the minimum distance from the ground of the bearing plate.
[0016] Compared with the prior art, the utility model has the advantages that:
[0017] The portable emergency rescue energy storage charging vehicle can supply power to new energy vehicles and mobile devices at the same time by integrating the converter module, the integrated charging gun, the socket and the charging port, and supports external power supply for charging the battery collection block. This design covers the common power demand in road emergency rescue, has strong compatibility, the lifting platform can quickly adjust the device to the trunk height of the vehicle, directly pushes into the trunk of the vehicle, directly connects and charges without additional equipment, shortens the rescue time, and is convenient to carry to the rescue vehicle, avoiding the disadvantages of traditional charging piles that are heavy and difficult to transfer to the rescue vehicle.
[0018] At the same time, the device realizes rapid deployment, high compatible power supply and stable operation in road emergency rescue by integrating the lifting mechanism, the modular energy storage system and the efficient energy management, and has better comprehensive performance than the traditional single-function emergency rescue equipment, and has strong practicality and popularization value. BRIEF DESCRIPTION OF DRAWINGS
[0019] Figure 1 It is a whole structure schematic view of the utility model;
[0020] Figure 2 It is an expanded structure schematic view of the utility model;
[0021] Figure 3 It is the state structure schematic view of the energy storage device transfer process of the utility model.
[0022] Figure 4 It is the left axis side structure schematic view of the utility model.
[0023] In the figure: 1, lifting platform; 101, bottom frame; 102, stabilizing rod; 103, scissor rod one; 104, scissor rod two; 105, small electric hydraulic cylinder; 106, carrier frame; 107, switch box; 108, handle; 109, cross rod one; 110, cross rod two; 111, fixed frame; 2, energy storage device; 201, battery collection block; 202, converter module; 203, charging gun; 204, instruction button; 205, socket; 206, bearing plate; 207, universal wheel; 208, charging port. DETAILED DESCRIPTION
[0024] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the utility model.
[0025] As shown in Figure 1 The utility model provides a kind of technical scheme: a portable emergency rescue energy storage power bank, including: lifting platform 1 and energy storage device 2, energy storage device 2 is slidably installed in lifting platform 1 and is separable with lifting platform 1, energy storage device 2 includes battery collection block 201 and converter module 202, converter module 202 is installed on the side of battery collection block 201, and instruction button 204 is provided on converter module 202 to operate discharge or charge.
[0026] As shown in Figure 2 And Figure 3 To ensure the smooth implementation of the embodiment, it is necessary to understand that lifting platform 1 includes carrier frame 106, carrier frame 106 is the square form frame, which is formed by welding four stainless steel tubes end to end, the length and width of carrier frame 106 are not greater than the length and width formed by the bottom of energy storage device 2, and lifting platform 1 includes bottom frame 101, which is a " " character-shaped frame structure formed by welding three stainless steel tubes, and a stabilizing rod 102 is welded at the opening of bottom frame 101, and the length of stabilizing rod 102 is greater than the maximum width of bottom frame 101 to improve the stability of lifting platform 1.
[0027] As shown in Figure 3 And Figure 4As shown, to ensure the smooth implementation of this embodiment, it should be noted that there are two first scissor rods 103 arranged between the two sides of the bottom frame 101. The other ends of the two first scissor rods 103 are both hinged to the bottom of the carrier frame 106. The two first scissor rods 103 are connected to each other by a first cross bar 109. Grooves are provided on both sides of the bottom frame 101, and both ends of the first cross bar 109 slide at the grooves. A second scissor rod 104 is provided at one end of the bottom frame 101 away from the first scissor rod 103. The two second scissor rods 104 are connected to each other by a second cross bar 110. The second cross bar 110 is rotatably installed between the two sides of the bottom frame 101. A fixed frame 111 is installed at the middle position of the second scissor rod 104. A small electric hydraulic cylinder 105 is hinged and installed at the fixed frame 111. The telescopic end of the small electric hydraulic cylinder 105 is hinged to the bottom of the carrier frame 106. The second scissor rod 104 and the first scissor rod 103 are rotationally connected at the middle part. The lifting platform 1 adopts a combination of scissor rods and a small electric hydraulic cylinder 105, and is reinforced by the first cross bar 109, the second cross bar 110 and the stabilizing rod 102 to ensure that the carrier frame 106 remains stable during the lifting process. The scissor structure design similar to that of a hydraulic boarding bridge can withstand a large load and avoid the equipment from tipping due to the center of gravity deviation. The bearing plate 206 and the bottom frame 101 are designed in cooperation. The bearing plate 206 is slidably installed on the bottom frame 101, and the "C"-shaped stainless steel frame body and the stabilizing rod 102 are combined to disperse the load pressure and improve the overall bearing capacity.
[0028] A switch box 107 is also installed on one side of the carrier frame 106. A switch for controlling the small electric hydraulic cylinder 105 is provided on the switch box 107. A handle 108 is also provided on the switch box 107 to facilitate the towing of this charging vehicle.
[0029] As Figure 3 and Figure 4 shown, to ensure the smooth implementation of this embodiment, it should be noted that the energy storage device 2 further includes a bearing plate 206. The battery assembly block 201 and the inverter module 202 are both installed on the bearing plate 206. The bearing plate 206 is placed on the bottom frame 101. As an alternative embodiment of this embodiment, the bearing plate 206 can also be slidably installed on the bottom frame 101. In combination with road rescue, when there is a vehicle on the road that needs emergency charging or rescue due to insufficient power, the energy storage device 2 can cooperate with the lifting platform 1 to facilitate the transfer of the energy storage device 2 into the carriage of the rescue vehicle. The energy storage device 2 is lifted to the height of the carriage of the rescue vehicle through the lifting platform 1, and then the energy storage device 2 is pushed into the carriage.
[0030] As Figure 3 and Figure 4As shown, in order to ensure the smooth implementation of the embodiment, it is understood that the electrical connection between the converter module 202 and the battery collection block 201, the converter module 202 is provided with a charging gun 203 and a socket 205 for discharging to the mobile device, the charging gun 203 is a telescopic charging gun 203, the converter module 202 is also provided with a charging port 208, the battery collection block 201 is supplemented through the charging port 208 The amount of electricity, the converter module 202 integrates the charging gun 203, the socket 205 and the charging port 208, which can supply power to new energy vehicles and mobile devices at the same time, and support external power supply for the battery collection block 201 charging, this design covers the common power demand in road emergency rescue, and has strong compatibility.
[0031] Back to Figure 1 In order to ensure the smooth implementation of the embodiment, it is understood that the bottom of the load plate 206 is provided with a plurality of universal wheels 207, the diameter of the wheel body of the universal wheel 207 is greater than the minimum distance between the load plate 206 and the ground, through the setting of the structure, when the lifting platform 1 is lowered to the lowest height, the universal wheel 207 is grounded, the device can be transferred through the universal wheel 207, it is understood that the embodiment should at least ensure that the load plate 206 and the carrier 106 are connected in a way that the energy storage device 2 can be stably installed above the carrier 106, such as plug-in sliding, screw fixing or clamping fixing.
[0032] Although the embodiments of the present application have been shown and described, it can be understood by those skilled in the art that various changes, modifications, replacements and modifications can be made to these embodiments without departing from the principles and spirits of the present application, the scope of the present application is defined by the appended embodiments and their equivalents.
Claims
1. A portable energy storage power bank for emergency rescue, characterized in that, The utility model relates to a kind of energy storage device and lifting platform, including: Lifting platform (1) and energy storage device (2); The energy storage device (2) is slidably installed on the lifting platform (1) and is separable combined with the lifting platform (1); The energy storage device (2) includes a battery collection block (201) and a converter module (202), and the converter module (202) is installed on one side of the battery collection block (201).
2. The portable emergency rescue energy storage power bank of claim 1, wherein: The lifting platform (1) includes a carrier (106), which is a rectangular frame formed by welding four stainless steel pipes end to end, and the length and width of the carrier (106) are not greater than the length and width formed at the bottom of the energy storage device (2).
3. The portable emergency rescue energy storage power bank of claim 1, wherein: The lifting platform (1) includes a bottom frame (101), which is a " " character-shaped frame structure formed by welding three stainless steel pipes, and a stabilizing rod (102) is welded at the opening of the bottom frame (101), and the length of the stabilizing rod (102) is greater than the maximum width of the bottom frame (101) to improve the stability of the lifting platform (1).
4. The portable emergency rescue energy storage power bank of claim 3, wherein: Two scissor levers (103) are arranged between the two sides of the bottom frame (101), and the other ends of the two scissor levers (103) are hingedly connected to the bottom of the carrier (106). The two scissor levers (103) are connected by a cross bar (109), and recesses are arranged on the two sides of the bottom frame (101), and the cross bar (109) is slidably arranged in the recesses.
5. The portable emergency rescue energy storage power bank of claim 4, wherein: A scissor lever (104) is arranged at the end of the bottom frame (101) away from the scissor lever (103), and the two scissor levers (104) are connected by a cross bar (110), and the cross bar (110) is rotatably installed between the two sides of the bottom frame (101). A fixing frame (111) is installed at the middle part of the scissor lever (104), and a small electric hydraulic cylinder (105) is hingedly installed at the fixing frame (111), and the extension end of the small electric hydraulic cylinder (105) is connected to the bottom of the carrier (106), and the scissor lever (104) and the scissor lever (103) are rotatably connected to the middle part.
6. The portable emergency rescue energy storage power bank of claim 1, wherein: The energy storage device (2) further includes a load-bearing plate (206), and the battery collection block (201) and the converter module (202) are installed on the load-bearing plate (206), and the load-bearing plate (206) is placed on the bottom frame (101).
7. The portable emergency rescue energy storage power bank of claim 6, wherein: The load-bearing plate (206) is slidably installed on the bottom frame (101).
8. The portable emergency rescue energy storage power bank of claim 6, wherein: The converter module (202) is electrically connected with the battery collection block (201), and a charging gun (203) and a socket (205) are arranged on the converter module (202) for discharging to the outside to supply energy to mobile devices, and a charging port (208) is further arranged on the converter module (202) for supplementing the battery collection block (201) with electricity.
9. The portable emergency rescue energy storage power bank of claim 6, wherein: A plurality of universal wheels (207) are installed at the bottom of the load-bearing plate (206), and the wheel body diameter of the universal wheels (207) is greater than the minimum distance from the ground of the load-bearing plate (206).