Outdoor emergency electricity supplement and energy storage equipment structure
By designing the heating protection part in outdoor emergency power-replenishing energy storage equipment, using the motor drive rotary rod and stirring shaft to mix quicklime and water body, the problem of degradation of equipment performance in low-temperature environments is solved, and the normal use and efficient charging of the equipment in cold conditions is achieved.
Patent Information
- Application Number
- CN202510293577.4
- 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
In the low-temperature environment, the battery performance of outdoor emergency power-replenishing energy storage equipment will decline, resulting in a decrease in discharge capacity and charging efficiency, affecting the normal use of the equipment.
An outdoor emergency power-replenishing energy storage equipment structure is designed, including a heating protection part, composed of a rectangular plate shell, an insulated sponge and a thermally conductive structure, and a motor drives the rotary rod and a stirring shaft to drive the mixing of quicklime and water, heat the water body, generate high-temperature water vapor, and conduct high-temperature gas to the insulated sponge through an L-shaped gas pipe to further heat the equipment.
It effectively avoids the impact of the low-temperature environment on the equipment, improves the discharge capacity and charging efficiency of the equipment, and ensures normal use in cold conditions.
Smart Images

Figure CN120165487A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of supplementary power storage, and specifically relates to the structure of an outdoor emergency supplementary power storage device. Background Art
[0002] Outdoor emergency supplementary power storage devices are usually equipped with various output interfaces, such as 220VAC output, 12V car charger port, USB-C, USB-A, etc., to be compatible with different types of electrical equipment. This enables outdoor emergency supplementary power storage devices to play an important role in various scenarios and provide power support for various electrical appliances. Moreover, outdoor emergency supplementary power storage devices, such as portable energy storage power supplies, have the ability to provide emergency charging for electric vehicles. These devices are usually equipped with AC220V output interfaces, which can meet the charging requirements of new energy vehicles. However, during the emergency power supply process outdoors, once the outdoor temperature is relatively low, the outdoor emergency supplementary power storage device will consume internal electrical energy faster when it gets cold. This is because the low-temperature environment will have a negative impact on the batteries inside the device, resulting in a decline in battery performance. Specifically, low temperature will cause the chemical reaction rate inside the battery to slow down, thereby affecting the charge and discharge performance of the battery. Under cold conditions, both the discharge capacity and charging efficiency of the battery will decrease, which will seriously affect the normal use of the outdoor emergency supplementary power storage device. Summary of the Invention
[0003] To solve the problems raised in the above background art, the present invention provides the structure of an outdoor emergency supplementary power storage device.
[0004] To achieve the above object, the present invention provides the following technical solution: The structure of an outdoor emergency supplementary power storage device includes an emergency supplementary power storage device, on which a heating protection part is provided. The heating protection part includes a rectangular plate shell and a heat insulation sponge fixedly connected to the inner wall of the rectangular plate shell. The other outer wall of the heat insulation sponge is specifically fixedly connected to the outer wall of the emergency supplementary power storage device. A plurality of air holes are formed through the heat insulation sponge. Heat conduction structures are provided on both outer walls at the top of the rectangular plate shell for generating hot air and transmitting the hot air into the heat insulation sponge, thereby preventing the emergency supplementary power storage device from being affected by cold weather. Each of the two heat conduction structures respectively includes a conical water bucket fixedly connected to the outer wall of one end of the emergency power supply energy storage device. A rotating disk for containing quicklime is rotatably connected to the inner wall of the conical water bucket. Feeding holes are respectively formed through both side plates of the rotating disk. U-shaped groove plates are respectively fixedly connected to the outer walls on both sides of the bottom end of the rotating disk. The outer walls of the two U-shaped groove plates can be intermittently and fittingly connected to a support plate respectively. A fixed disk is also movably sleeved in the inner wall of the bottom end of the rotating disk. Two springs are jointly fixedly connected between the fixed disk and the support plate. Convex rods are respectively fixedly connected to the outer walls on both sides of the top end of the support plate to prevent blockage of the two feeding holes.
[0005] Preferably, each of the two heat conduction structures further respectively includes a support plate fixedly connected to the outer wall of one end of the emergency power supply energy storage device. A motor of the forward and reverse rotation type is fixedly connected to the outer wall of the top end of the support plate. A rotating rod is fixedly connected to the rotating shaft of the motor. The rod body of the rotating rod is rotatably connected through the plate body of the support plate.
[0006] Preferably, a water bucket plug can be tightly clamped in the inner wall of the top end of the conical water bucket. The rod body of the rotating rod is slidably connected through the water bucket plug and the support plate, and the rod body of the rotating rod is respectively fixedly connected to the rotating disk and movably sleeved with the fixed disk.
[0007] Preferably, a stirring shaft is fixedly connected to the rod body of the rotating rod near the bottom to stir and mix the fed quicklime and water.
[0008] Preferably, a sleeve rod plate is also movably sleeved on the rod body of the rotating rod. The bottom end of the sleeve rod plate is in fitting rotational connection with the outer wall of the top end of the rotating disk.
[0009] Preferably, a ring plate tooth is fixedly connected to the rod body of the rotating rod. A plurality of straight gears are meshed with the bottom tooth ring of the ring plate tooth.
[0010] Preferably, a rotating rod is fixedly connected to the inner wall of one end of each straight gear, and a sleeve ring is jointly movably sleeved at the other end of each rotating rod. The sleeve ring is movably sleeved with the rod body of the rotating rod.
[0011] Preferably, a plurality of crushing wheels are fixedly connected to the rod body of each rotating rod. Two L-shaped air pipes are respectively fixedly connected through both side plates of the conical water bucket. The bottom rod bodies of the two groups of L-shaped air pipes are fixedly connected through the outer wall of one side of the top end of the rectangular plate shell.
[0012] Preferably, pipe grooves are formed in the inner walls of the pipe bodies of the two groups of L-shaped air pipes, and the inner walls of the two groups of pipe grooves are specifically composed of filter screens. Desiccants are specifically contained in the interiors of the two groups of pipe grooves.
[0013] Preferably, each of the U-shaped groove plates and the convex rods is made of natural rubber material, having high elasticity and wear resistance.
[0014] Compared with the prior art, the beneficial effects of the present invention are as follows: In the present invention, by starting the motor on the support plate to drive the rotating rod to rotate, the rotating rotating rod will simultaneously drive the fixedly installed turntable to rotate inside the conical water bucket. Once the material discharging hole on the turntable rotates and disengages from the bottom end of the sleeve rod plate during rotation, quicklime can be passively discharged through the material discharging hole, and then mixed with the water body in the conical water bucket, so that the water body is quickly and passively heated. Moreover, when the rotating rod rotates, it can also synchronously drive the stirring shaft to rotate, thereby fully mixing the water body and quicklime, achieving high efficiency in raising the temperature of the water body. During the rotation of the turntable, it will also synchronously drive the U-shaped groove plates on both sides of the bottom end to rotate synchronously. The passive rotation of the two U-shaped groove plates can synchronously and intermittently slide and press against the top end of the support plate. The support plate under force will synchronously pull the springs on both sides of the bottom end of the fixed plate, causing them to deform. When the U-shaped groove plate does not exert pressure on the support plate, it also means that the material discharging hole on the turntable has rotated another 90 degrees passively. At this time, the support plate lifted by the spring will synchronously drive the convex rods on the outer walls of both sides of the top end to move upward and pass through the corresponding upper material discharging holes, avoiding the possibility of being mixed with quicklime and blocking the holes; In the present invention, during the rotation of the rotating rod, it will also synchronously drive the ring plate teeth to rotate. The rotating ring plate teeth will synchronously drive a plurality of spur gears engaged with it to rotate. Each rotating spur gear will drive the rotating rod and a plurality of crushing wheels installed on the rotating rod to rotate synchronously at fixed points on the collar. Thus, the water body and quicklime in the water body can be fully mixed, and the installation of a plurality of crushing wheels can prevent the mud blocks that may be generated when quicklime and the water body are mixed from being easily mixed through simple stirring, thereby ensuring the degree of fusion and enabling the water body to efficiently generate high-temperature water vapor. The water vapor will automatically rise subsequently and then gradually enter a plurality of L-shaped air pipes. The desiccants placed in the plurality of L-shaped air pipes can dry the passing water vapor. Finally, the high-temperature gas converges in the heat-insulating sponge. Through the plurality of air holes opened on the heat-insulating sponge, the high-temperature gas can directly contact the emergency power supply and energy storage device and heat it up. Moreover, the heat-insulating sponge also plays a role in heat preservation and heat insulation of the high-temperature gas, avoiding affecting the rectangular plate shell and heat dissipation, and keeping it continuously at a constant temperature state. Thus, it can ensure that the outdoor emergency power supply and energy storage device are not affected by cold temperatures and prevent the reduction of its discharge capacity and charging efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 is a schematic diagram of the overall structure of the present invention; Figure 2 is a schematic plan view of the overall structure of the present invention; Figure 3 Schematic diagram of the overall sectional structure of the rectangular plate shell and heat-insulating sponge of the present invention; Figure 4 Schematic diagram of the partial sectional structure of the heating protection part of the present invention; Figure 5 Schematic diagram of the partial sectional structure of the heating protection part of the present invention; Figure 6 For the present invention Figure 5 Schematic diagram of the enlarged structure of part A in; Figure 7 Schematic diagram of the partial disassembled structure of the heating protection part of the present invention; Figure 8 Schematic diagram of the partial sectional structure of the L-shaped air pipe of the present invention.
[0016] In the figure: 1. Emergency power supply energy storage device; 2. Heating protection part; 21. Rectangular plate shell; 22. Heat-insulating sponge; 23. Air holes; 24. Conical water bucket; 25. Support plate; 26. Motor; 27. Rotating rod; 28. Water bucket plug; 29. Stirring shaft; 230. Turntable; 231. Feeding hole; 232. Sleeve rod plate; 233. U-shaped groove plate; 234. Fixed plate; 235. Spring; 236. Support plate; 237. Convex rod; 238. Ring plate tooth; 239. Straight gear; 240. Rotating rod; 241. Crushing wheel; 242. L-shaped air pipe; 243. Pipe groove. Detailed implementation manners
[0017] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments in the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0018] As Figures 1 to 8 shown, the present invention provides a structure of an outdoor emergency power supply energy storage device, including an emergency power supply energy storage device 1, and a heating protection part 2 is provided on the emergency power supply energy storage device 1. The heating protection part 2 includes a rectangular plate shell 21 and a heat-insulating sponge 22 fixedly connected to the inner wall of the rectangular plate shell 21. The outer wall of the other end of the heat-insulating sponge 22 is specifically fixedly connected to the outer wall of the emergency power supply energy storage device 1. A plurality of air holes 23 are penetrated through the heat-insulating sponge 22. Heat conduction structures are provided on both outer walls of the top end of the rectangular plate shell 21 for generating hot air and transmitting the hot air into the heat-insulating sponge 22, thereby preventing the emergency power supply energy storage device 1 from being affected by cold weather; Both of the two heat conduction structures respectively include a conical water bucket 24 fixedly connected to the outer wall of one end of the emergency power supply energy storage device 1. A rotating disk 230 for containing quicklime is rotatably connected in the inner wall of the conical water bucket 24. Feeding holes 231 are formed through both side plates of the rotating disk 230. U-shaped groove plates 233 are fixedly connected to the outer walls on both sides of the bottom end of the rotating disk 230. A support plate 236 can be intermittently and fittingly connected to the outer walls of the two U-shaped groove plates 233 respectively. A fixed disk 234 is movably sleeved in the inner wall of the bottom end of the rotating disk 230. Two springs 235 are jointly fixedly connected between the fixed disk 234 and the support plate 236. Convex rods 237 are fixedly connected to the outer walls on both sides of the top end of the support plate 236, which are used to prevent the two feeding holes 231 from being blocked.
[0019] Adopting the above solution: By starting the motor 26 on the support plate 25 to drive the rotating rod 27 to rotate, the rotating rod 27 during rotation will simultaneously drive the fixedly installed rotating disk 230 to rotate in the inner wall of the conical water bucket 24. Once the feeding hole 231 on the rotating disk 230 rotates and disengages from the bottom end of the sleeve rod plate 232 during rotation, the quicklime can be passively fed through the feeding hole 231, and then mixed with the water in the conical water bucket 24, so that the water is quickly passively heated. And when the rotating rod 27 rotates, it can also synchronously drive the stirring shaft 29 to rotate, so that the water and quicklime can be fully mixed, achieving high efficiency of water temperature rise. And during the rotation of the rotating disk 230, the U-shaped groove plates 233 on both sides of the bottom end will also be driven to rotate synchronously. The passive rotation of the two U-shaped groove plates 233 can synchronously and intermittently slide and press against the top end of the support plate 236. The support plate 236 under force will synchronously pull the springs 235 on both sides of the bottom end of the fixed disk 234, causing them to deform. When the U-shaped groove plate 233 does not exert pressure on the support plate 236, it also means that the feeding hole 231 on the rotating disk 230 has rotated another 90 degrees passively. At this time, the support plate 236 lifted by the spring 235 will synchronously drive the convex rods 237 on the outer walls on both sides of the top end to move upward and pass through the corresponding feeding holes 231 above, avoiding the possibility of being mixed with quicklime and blocking the holes. Meanwhile, the water and the quicklime in the water are fully mixed, so that the water efficiently generates high-temperature water vapor. The water vapor will subsequently automatically rise, then gradually enter the multiple L-shaped air pipes 242, and finally the high-temperature gas converges in the heat-insulating sponge 22. Through the multiple air holes 23 opened on the heat-insulating sponge 22, the high-temperature gas can directly contact the emergency power supply energy storage device 1 and heat it up, avoiding reducing its discharge capacity and charging efficiency.
[0020] Both of the two heat conduction structures further respectively include a support plate 25 fixedly connected to the outer wall of one end of the emergency power supply energy storage device 1. A motor 26 of the forward and reverse rotation type is fixedly connected to the outer wall of the top end of the support plate 25. A rotating rod 27 is fixedly connected to the rotating shaft of the motor 26. The rod body of the rotating rod 27 is rotatably connected through the plate body of the support plate 25. A water bucket plug 28 can be tightly clamped in the inner wall of the top end of the conical water bucket 24. The rod body of the rotating rod 27 is slidably connected through the water bucket plug 28 and the support plate 236. The rod body of the rotating rod 27 is further fixedly connected to the turntable 230 respectively, and is movably sleeved with the fixed disk 234. A stirring shaft 29 is fixedly connected to the rod body of the rotating rod 27 near the bottom, which is used for stirring and mixing the fed quicklime and water body. A sleeve rod plate 232 is movably sleeved on the rod body of the rotating rod 27. The bottom end of the sleeve rod plate 232 is in fitting rotation connection with the outer wall of the top end of the turntable 230.
[0021] Adopting the above solution: Start the motor 26 on the support plate 25 to drive the rotating rod 27 and the turntable 230 to rotate. Once the material discharging hole 231 on the turntable 230 rotates and disengages from the bottom end of the sleeve rod plate 232 after rotation, the sleeve rod plate 232 cannot block the top surface of the material discharging hole 231 in a short time. Thus, the quicklime placed on the turntable 230 can be passively discharged through the material discharging hole 231, and then mixed with the water body in the conical water bucket 24, so that the water body is quickly heated by heat generation passively. And when the rotating rod 27 rotates, it can also drive the stirring shaft 29 to rotate synchronously. Thus, the water body and the quicklime can be fully mixed, achieving high efficiency of water body temperature rise. During the rotation of the turntable 230, it will also drive the U-shaped groove plates 233 on both sides of the bottom end to rotate synchronously, and intermittently slide and press against the top end of the support plate 236. The support plate 236 is stressed and will synchronously pull the springs 235 on both sides of the bottom end of the fixed disk 234, causing them to deform. When the U-shaped groove plate 233 does not exert pressure on the support plate 236, it also means that the material discharging hole 231 on the turntable 230 has rotated 90 degrees passively again. At this time, the support plate 236 lifted by the spring 235 will synchronously drive the convex rods 237 on the outer walls of both sides of the top end to move upward, so that the two convex rods 237 pass through the corresponding material discharging holes 231 above. This can avoid the possibility that when a large amount of water vapor generated after the water body in the conical water bucket 24 is heated rises automatically to the outer wall of the bottom end of the turntable 230, it will affect the material discharging hole 231 and mix with the quicklime to block the hole.
[0022] A ring plate tooth 238 is fixedly connected to the rod body of the rotating rod 27. A plurality of spur gears 239 are meshed and connected to the bottom tooth ring of the ring plate tooth 238. A rotating rod 240 is fixedly connected to the inner wall of one end of each spur gear 239. The other ends of each rotating rod 240 are jointly and movably sleeved with a collar. The collar is movably sleeved with the rod body of the rotating rod 27. A plurality of crushing wheels 241 are fixedly connected to the rod body of each rotating rod 240. Two L-shaped air pipes 242 are fixedly connected through the side plates of the conical water bucket 24. The bottom rod bodies of the two groups of L-shaped air pipes 242 are fixedly connected through the top side outer wall of the rectangular plate shell 21. Pipe grooves 243 are formed in the inner walls of the two groups of L-shaped air pipes 242. The inner walls of the two groups of pipe grooves 243 are specifically composed of filter screens. Desiccants are specifically installed in the two groups of pipe grooves 243. Each U-shaped groove plate 233 and the convex rod 237 are made of natural rubber material, having high elasticity and wear resistance.
[0023] Adopting the above solution: During the rotation of the rotating rod 27, the ring plate tooth 238 will also be driven to rotate synchronously. The ring plate tooth 238 in the rotating state will drive a plurality of spur gears 239 meshed with it to rotate synchronously. Each rotating spur gear 239 will drive the rotating rod 240 and a plurality of crushing wheels 241 installed on the rotating rod 240 to perform synchronous fixed-point rotation on the collar, thereby enabling sufficient mixing of the water body and quicklime in the water body. The installation of a plurality of crushing wheels 241 can prevent the mud blocks that may be generated when quicklime and the water body are mixed from being easily mixed through simple stirring, thus ensuring the degree of fusion and enabling the water body to efficiently generate high-temperature water vapor. The water vapor will automatically rise later and then gradually enter the two groups of L-shaped air pipes 242. The desiccants placed in the two groups of L-shaped air pipes 242 can dry the passing water vapor. Finally, the high-temperature gas converges in the heat-insulating sponge 22. Through the plurality of air holes 23 formed in the heat-insulating sponge 22, the high-temperature gas can directly contact the emergency power supply and energy storage device 1 to heat and warm it. Moreover, the heat-insulating sponge 22 also plays a role in heat preservation and heat insulation of the high-temperature gas, preventing the rectangular plate shell 21 from being affected and heat dissipation, and enabling it to continuously maintain a constant temperature state, thereby ensuring that the outdoor emergency power supply and energy storage device 1 is not affected by cold temperatures.
[0024] It should be added that the water body and quicklime in the conical water bucket 24 can be replenished by pulling out the water bucket plug 28.
[0025] Working principle and usage process of the present invention: By starting the motor 26 on the support plate 25, it drives the rotating rod 27 to rotate. The rotating rotating rod 27 will simultaneously drive the fixedly installed turntable 230 to rotate inside the inner wall of the conical water hopper 24. Once the material discharging hole 231 on the turntable 230 rotates and disengages from the bottom end of the sleeve rod plate 232, the sleeve rod plate 232 cannot block the top surface of the material discharging hole 231 in a short time. Thus, the quicklime placed on the turntable 230 can be passively discharged through the material discharging hole 231, and then be mixed with the water in the conical water hopper 24, enabling the water to be quickly heated by heat generation passively. And when the rotating rod 27 rotates, it can also synchronously drive the stirring shaft 29 to rotate. Thus, the water and quicklime can be fully mixed to achieve high efficiency in raising the temperature of the water. Moreover, during the rotation of the turntable 230, it will also synchronously drive the U-shaped groove plates 233 on both sides of the bottom end to rotate synchronously. The passive rotation of the two U-shaped groove plates 233 can synchronously and intermittently slide and press against the top end of the support plate 236. The support plate 236 being stressed will synchronously pull the springs 235 on both sides of the bottom end of the fixed plate 234, causing them to deform. The installation of the springs 235 facilitates the support plate 236 to immediately move upward and reset according to its own resilience when it is no longer stressed. And when the U-shaped groove plate 233 does not exert pressure on the support plate 236, it also means that the material discharging hole 231 on the turntable 230 has rotated another 90 degrees passively. At this time, the support plate 236 that has moved upward through the spring 235 will synchronously drive the convex rods 237 on the outer walls of both sides of the top end to move upward, so that the two convex rods 237 pass through the corresponding material discharging holes 231 above. This can prevent the possibility that when a large amount of water vapor generated after the water in the conical water hopper 24 is heated rises automatically to the outer wall of the bottom end of the turntable 230, it will affect the material discharging hole 231 and mix with the quicklime to block the hole; Meanwhile, during the rotation of the rotating rod 27, the ring plate teeth 238 will also be driven to rotate synchronously. The rotating ring plate teeth 238 will drive a plurality of spur gears 239 meshing with it to rotate synchronously. Each rotating spur gear 239 will drive the rotating rod 240 and a plurality of crushing wheels 241 installed on the rotating rod 240 to rotate synchronously at fixed points on the collar, so as to fully mix the water body and quicklime in the water body. The installation of a plurality of crushing wheels 241 can prevent the mud blocks that may be generated when quicklime and water body are mixed from being easily mixed through simple stirring, thus ensuring the degree of fusion and enabling the water body to efficiently generate high-temperature water vapor. The water vapor will then automatically rise and gradually enter a plurality of L-shaped air pipes 242. The desiccant placed in the plurality of L-shaped air pipes 242 can dry the passing water vapor. Finally, the high-temperature gas converges in the heat-insulating sponge 22. Through a plurality of air holes 23 opened on the heat-insulating sponge 22, the high-temperature gas can directly contact the emergency power supply and energy storage device 1 to heat and warm it. Moreover, the heat-insulating sponge 22 also plays a role in heat preservation and heat insulation of the high-temperature gas, avoiding affecting the rectangular plate shell 21 and heat dissipation, and keeping it in a constant temperature state. Thus, it can ensure that the outdoor emergency power supply and energy storage device 1 is not affected by the cold temperature and prevent its discharge capacity and charging efficiency from being reduced.
[0026] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not expressly listed, or elements inherent to such process, method, article or device.
[0027] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An outdoor emergency power supply and energy storage device structure, comprising an emergency power supply and energy storage device (1), characterized in that: The emergency power-compensating energy storage device (1) is provided with a heating protection part (2), the heating protection part (2) comprising a rectangular plate shell (21) and a heat-insulating sponge (22) fixedly connected to the inner wall of the rectangular plate shell (21), the outer wall of the other end of the heat-insulating sponge (22) is fixedly connected to the outer wall of the emergency power-compensating energy storage device (1), a plurality of air holes (23) are formed through the heat-insulating sponge (22), and heat-conducting structures are provided on the outer walls on both sides of the top of the rectangular plate shell (21) for producing hot air and transmitting the hot air into the heat-insulating sponge (22), thereby preventing the emergency power-compensating energy storage device (1) from being affected by cold weather; The two heat-conducting structures each include a conical water bucket (24) fixedly connected to the outer wall of one end of the emergency power supply storage device (1); a turntable (230) for containing quicklime is rotatably connected to the inner wall of the conical water bucket (24); both side plates of the turntable (230) are provided with material discharge holes (231); both side outer walls of the bottom end of the turntable (230) are also fixedly connected to U-shaped groove plates (233); the outer walls of the two U-shaped groove plates (233) can be intermittently fitted and connected to a bracket plate (236); a fixed plate (234) is movably sleeved on the inner wall of the bottom end of the turntable (230); two springs (235) are jointly fixedly connected between the fixed plate (234) and the bracket plate (236); and convex rods (237) are also fixedly connected to both side outer walls of the top end of the bracket plate (236) to prevent the two material discharge holes (231) from being blocked.
2. The outdoor emergency power supply and energy storage device structure according to claim 1 is characterized in that: The two heat-conducting structures also respectively include a support plate (25) fixedly connected to the outer wall of one end of the emergency power-supplementing energy storage device (1); a forward-reverse-rotating motor (26) is fixedly connected to the outer wall of the top end of the support plate (25); a rotating rod (27) is fixedly connected to the rotating shaft of the motor (26); and the rod body of the rotating rod (27) and the plate body of the support plate (25) are connected in a through-rotating manner.
3. The outdoor emergency power supply and energy storage device structure according to claim 2 is characterized in that: A water bucket plug (28) can be tightly clamped in the inner wall of the top end of the conical water bucket (24), and the rod body of the rotating rod (27) is slidably connected to the water bucket plug (28) and the bracket plate (236), and the rod body of the rotating rod (27) is fixedly connected to the rotating disk (230) and movably connected to the fixed disk (234).
4. The outdoor emergency power supply and energy storage device structure according to claim 3 is characterized in that: A stirring shaft (29) is fixedly connected to the rod body of the rotating rod (27) near the bottom, and is used to stir and mix the discharged quicklime and water.
5. The outdoor emergency power supply and energy storage device structure according to claim 4 is characterized in that: A rod sleeve plate (232) is movably sleeved on the rod body of the rotating rod (27), and the bottom end of the rod sleeve plate (232) is rotatably connected to the top outer wall of the rotating disk (230).
6. The outdoor emergency power supply and energy storage device structure according to claim 5 is characterized in that: The rod body of the rotating rod (27) is fixedly connected with an annular plate tooth (238), and a plurality of spur gears (239) are meshingly connected with the bottom tooth ring of the annular plate tooth (238).
7. The outdoor emergency power supply and energy storage device structure according to claim 6 is characterized in that: A rotating rod (240) is fixedly connected to the inner wall of one end of each spur gear (239), and the other end of each rotating rod (240) is movably sleeved together with a collar, and the collar is movably sleeved with the rod body of the rotating rod (27).
8. The outdoor emergency power supply and energy storage device structure according to claim 7 is characterized in that: A plurality of crushing wheels (241) are fixedly connected to the rod body of each rotating rod (240), two L-shaped air pipes (242) are fixedly connected to the plates on both sides of the conical water bucket (24), and the bottom rod bodies of the two groups of L-shaped air pipes (242) are fixedly connected to the outer wall of the top side of the rectangular plate shell (21).
9. The outdoor emergency power supply and energy storage device structure according to claim 8 is characterized in that: The inner walls of the tube bodies of the two groups of L-shaped air pipes (242) are both provided with tube grooves (243), and the inner walls of the two groups of tube grooves (243) are both specifically formed of filter screens, and the interiors of the two groups of tube grooves (243) are both specifically filled with desiccants.
10. The outdoor emergency power supply and energy storage device structure according to claim 9 is characterized in that: Each of the U-shaped groove plates (233) and the protruding rods (237) is made of natural rubber material and has high elasticity and wear resistance.