Lithium battery storage device
By designing the solid components and isolation components of the lithium battery storage device, the problems of shaking and moisture during storage of lithium batteries are solved, and the effects of convenient removal and space saving are achieved.
Patent Information
- Application Number
- CN202510846791.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-24
- Publication Date
- 2025-09-16
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Although existing lithium battery storage devices have good protection effects when stored in a closed environment, they are troublesome to take out and are easily affected by moisture, which affects their use.
A lithium battery storage device is designed, including a storage box, a storage box, a storage tube, a solid component, an isolation component and a retrieval component. The solid component clamps the lithium battery to prevent shaking, the isolation component seals the storage tube, and the retrieval component facilitates the removal of the lithium battery.
The lithium battery can be prevented from shaking and getting wet during storage, is easy to operate when taken out, saves space, and is convenient for battery classification.
Smart Images

Figure CN120646369A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of lithium batteries, in particular to a lithium battery storage device. Background Art
[0002] Lithium batteries refer to batteries that use lithium metal or lithium alloy as the negative electrode material and a non-aqueous electrolyte solution. They are mainly composed of a positive electrode, a negative electrode, an electrolyte, a separator and other auxiliary components. They play an important role in modern science and technology and energy fields. Depending on different application requirements, they have a variety of shapes, the most common of which are cylindrical, square and soft-pack.
[0003] Lithium battery storage devices are equipment or appliances used to store lithium batteries safely and properly. Common ones include battery boxes, battery cabinets, battery warehouses, etc.
[0004] In the current existing technology, when lithium batteries are stored, they are usually stored in a sealed space. Although this storage method can well protect the lithium batteries and reduce the probability of them being hit and affected by moisture, it is more troublesome to take them out for use because they are placed in a sealed environment.
[0005] To this end, the present invention provides a lithium battery storage device. Summary of the Invention
[0006] In order to make up for the deficiencies of the prior art, at least one technical problem raised in the background technology is solved.
[0007] The technical solution adopted by the present invention to solve its technical problem is as follows: a lithium battery storage device according to the present invention includes a storage box, wherein the number of storage boxes is two, and a plurality of storage boxes are fixedly installed on the inner walls of the two storage boxes, and a storage tube is fixedly installed inside the plurality of storage boxes, and the storage tube is used to place the lithium batteries. A solid component is provided inside the storage box, and the solid component is used to fix the lithium batteries placed in the storage tube, and an isolation component is provided on the top of the storage box, and the isolation component is used to isolate the lithium batteries. A retrieval component is provided inside the storage box, and the retrieval component includes a lifting block, and the retrieval component is used to drive the lifting block to take the lithium batteries out of the storage tube, the solid component is placed on both sides of the storage tube, the isolation component is placed on the top of the storage tube, and the retrieval component is placed at the bottom of the storage tube; By pressing the lithium battery into the storage tube in the storage box, when the lithium battery enters the storage tube, the solid component in the storage box clamps and fixes the lithium battery placed in the storage tube, preventing the lithium battery from shaking in the storage tube during storage, thereby colliding with the inner wall of the storage tube and causing damage, thereby fixing the lithium battery and preventing it from shaking. When the solid component fixes the lithium battery in place, the isolation component on the top of the storage box seals the top of the storage tube, thereby forming a sealed space in the storage tube, preventing moisture from entering the storage tube during storage, which would affect the use of the lithium battery due to moisture. When the lithium battery in the storage tube needs to be taken out, the lifting block is driven by the taking-out component to lift the lithium battery upward, and at the same time drive the solid component and the isolation component to open, thereby lifting the lithium battery out of the storage tube, making it easy to take out the lithium battery when used, and making it more convenient to place and take out the lithium battery.
[0008] The two storage boxes are preferably hinged on the outer walls of the two storage boxes with a shaft, and the two ends of the shaft are fixedly installed with a shelf, and the bottom of the two shelf plates is fixedly installed with a support, and the outer walls of the two storage boxes can be fitted with the top of the support, and the top of the two storage boxes are fixedly installed with handles, and the top of the two storage boxes are symmetrically fixed with buckles, and the outer walls of the two storage boxes can be slidably connected with the inner walls of the two shelf plates. When the lithium batteries need to be stored, the support is placed flat on the ground or on the table, the two buckles are opened, and then the two handles are pulled to make the two storage boxes hinged and rotated on the shaft. When one side of the two storage boxes contacts the top of the support, the two storage boxes are fully opened, and the multiple storage boxes in the two storage boxes are placed parallel to each other, which is convenient for the placement of the lithium batteries. When the lithium batteries are stored, the above operation can be repeated in reverse, and the two storage boxes can be closed again. This method of placement can, on the one hand, protect the lithium batteries in the storage box, and on the other hand, save a certain amount of storage space, thereby reducing the space occupied by the device.
[0009] Preferably, the inner walls of the two storage boxes are provided with a plurality of labeling areas. When in use, by labeling or writing the size of the batteries on each labeling area, it is convenient to classify the batteries when they need to be taken out and stored, and prevent the batteries from being placed randomly and being difficult to find when they are taken out.
[0010] Preferably, the solid object assembly includes a partition box, which is fixedly installed on the top of the storage tube, and a vertical plate is symmetrically fixedly installed on the bottom of the partition box, the inner walls of the two vertical plates are slidably connected to the solid object arm rods, and solid springs are provided between the outer walls of the two solid arms and the inner walls of the two vertical plates, and the outer walls of the two solid arms are slidably connected to the inner wall of the storage tube, and the upper and lower ends of the two solid arms are inclined sliding surfaces. When the lithium battery enters the storage tube, by continuously pressing the lithium battery, the lithium battery will squeeze the two solid arms to move to both sides. When the lithium battery moves completely into the storage tube, the pressing of the lithium battery is stopped. At this time, the two solid arms will clamp the lithium battery under the action of the elastic force of the solid springs, thereby achieving the retention of the lithium battery, preventing the lithium battery from shaking and causing bumps due to external factors when stored in the storage tube, and playing the role of clamping and fixing the lithium battery.
[0011] Preferably, the isolation assembly includes a partition, and there are two partitions. The two partitions are slidably connected to the top inner wall of the storage tube, and one side of the two partitions can fit each other. Two sets of sliding limit rods are symmetrically fixedly installed on the inner wall of the partition box. The inner walls of the two partitions are slidably connected to the outer walls of the two sets of sliding limit rods respectively. Two sets of return springs are provided between the outer walls of the two partitions and the inner wall of the partition box. The two sets of return springs are respectively placed on the outside of the two sets of sliding limit rods. When installed, the two partitions are moved to slide on the top of the storage tube. When the partition moves, the return springs are squeezed to slide on the sliding limit rod. When the two partitions cannot be moved, the two partitions are fully opened at the top of the storage tube, and then the lithium battery can be pressed into the storage tube. When the lithium battery is completely in the storage tube and the two fixing arms have completed the clamping and fixing of the lithium battery, the two partitions are released, and the two partitions will move and fit together on the top of the storage tube, thereby closing the top of the storage tube and forming a sealed state inside the storage tube, preventing moisture from entering the storage tube when the lithium battery is placed, which will affect the lithium battery stored in the storage tube, and play the role of sealing the storage tube to isolate moisture from entering.
[0012] Preferably, the picking component also includes a shift rod, one end of the two shift rods is fixedly connected to the outer wall of the lifting block, the outer wall of the lifting block is slidably connected to the inner wall of the storage tube, one end of the two shift rods is slidably connected to the inner wall of the storage tube, and a rectangular box is symmetrically fixedly installed on the bottom of the partition box, one side of the two rectangular boxes is fixedly connected to the outer wall of the storage tube, the inner walls of the two rectangular boxes are rotatably connected to gears, and the inner walls of the two rectangular boxes are slidably connected to a pressure rod, the teeth on the two pressure rods and the shift rods are respectively engaged with the teeth on the two gears, and the top of the lifting block is an inclined sliding surface. When the lithium battery needs to be taken out from the storage tube, the By pressing the pressure rod downward, when the pressure rod moves downward, the pressure rod can drive the shift rod upward through the teeth meshing of the gear. When the shift rod moves upward, it drives the lifting block to slide upward at the bottom of the storage tube. When the lifting block moves upward, through the continuous upward movement of the lifting block, the top of the lifting block will squeeze and push the two solid arms to move open to both sides, thereby causing the lithium battery to lose contact with the two solid arms. At this time, the top of the lithium battery will move out of the interior of the storage tube, and then by pinching the top of the lithium battery, the lithium battery can be pinched out of the interior of the storage tube, which makes it easier to take the lithium battery out of the interior of the storage tube.
[0013] Preferably, a pressing block is fixedly installed on the top of the two pressure rods, and the outer walls of the two pressing blocks are slidingly connected to the inner walls of the two rectangular boxes respectively. When the pressure rod is pressed downward, the pressing block is pressed downward, and the pressing block will drive the pressure rod to move downward. The setting of the pressing block is to increase the pressing force surface to facilitate the application of pressing force on the pressure rod.
[0014] Preferably, the inner walls of the two rectangular boxes are symmetrically fixed with guide blocks, and the outer walls of the two pressure rods and the shift rod are slidingly connected to the inner walls of the four guide blocks respectively. During operation, when the pressure rod moves downward and the shift rod moves upward, the pressure rod and the shift rod slide in the two guide blocks, providing a sliding path for the movement of the pressure rod and the shift rod, preventing the pressure rod and the shift rod from sliding when sliding in the rectangular box, and playing a role in guiding the sliding.
[0015] Preferably, the outer walls of the two partitions are symmetrically fixed with sliders, the tops of the two shift rods are fixedly installed with push rods, the tops of the two push rods are symmetrically hinged with hinged rods, the tops of the four hinged rods are fixedly installed with push shafts, the outer walls of the four push shafts are fixedly connected to one side of the four sliders respectively, and the outer walls of the four hinged rods are slidably connected to the inner wall of the partition box. When the shift rod moves up, the shift rod drives the push rod to move up, and when the push rod moves up, the push rod drives the two hinged rods to move up and slide. Through the hinged arrangement of the push rod and the hinged rod, when When the push rod moves upward, the two hinged rods will be hinged and move to both sides, so that the two hinged rods drive the two push shafts to push the two sliders to move to both sides, and the two partitions will slide open at the top of the storage tube, thereby controlling the two partitions to slide open at the top of the storage tube. When storing lithium batteries, by pressing the two buttons, the pressure rod drives the shift rod upward through the gear, and the two hinged rods drive the two partitions to slide open at the top of the storage tube through the push shaft, thereby controlling the opening and closing of the two partitions at the top of the storage tube.
[0016] Preferably, the inner wall of the partition box is symmetrically fixed with a guide groove body, the outer walls of the four sliders are slidably connected to the inner walls of the two guide groove bodies in pairs, and the outer walls of the four hinged rods and the push shafts are slidably connected to the inner walls of the two guide groove bodies in pairs. When the hinged rod moves upward, through the limit setting of the guide groove body, the two hinged rods will drive the two push shafts to move to both sides in the guide groove body, so that the two push shafts push the two sliders to move inside the guide groove body. The setting of the guide groove body provides a limiting path for the two hinged rods to move to both sides, thereby limiting the sliding of the hinged rod.
[0017] The beneficial effects of the present invention are as follows: 1. The lithium battery storage device described in the present invention is characterized in that the pressure rod is pressed downward, and the pressure rod drives the shift rod to move upward through the teeth meshing transmission of the gear. When the shift rod moves upward, it drives the lifting block to slide upward at the bottom of the storage tube. When the lifting block continues to move upward, the top of the lifting block will squeeze and push the two solid arms to move open to both sides, thereby causing the lithium battery to lose contact with the two solid arms. At this time, the top of the lithium battery will move out of the interior of the storage tube, and then the top of the lithium battery can be pinched out of the interior of the storage tube by pinching the top of the lithium battery, thereby facilitating the removal of the lithium battery from the interior of the storage tube.
[0018] 2. The lithium battery storage device described in the present invention pushes two partitions to slide on the top of the storage tube. When the partitions move, they squeeze the return spring to slide on the sliding limit rod. When the two partitions cannot move, the two partitions are fully opened at the top of the storage tube. When the lithium battery is completely entered into the storage tube, the two partitions are loosened, and the two partitions will move and fit together on the top of the storage tube, thereby closing the top of the storage tube and forming a sealed state inside the storage tube, preventing moisture from entering the storage tube when the lithium battery is placed, which will affect the lithium battery stored in the storage tube, and play the role of sealing the storage tube to isolate moisture from entering.
[0019] 3. The lithium battery storage device described in the present invention, by continuously pressing the lithium battery, the lithium battery will squeeze the two solid arms to move to both sides. When the lithium battery moves completely into the storage tube, the pressing of the lithium battery stops. At this time, the two solid arms will clamp the lithium battery under the elastic force of the solid spring, thereby achieving the retention of the lithium battery, preventing the lithium battery from shaking and causing bumps due to external factors when stored in the storage tube, and playing the role of clamping and fixing the lithium battery.
[0020] 4. The lithium battery storage device described in the present invention can facilitate classification of batteries when batteries need to be taken out and stored by labeling or writing the battery sizes at the openings of each labeling area, thereby preventing batteries from being placed randomly and being difficult to find when they need to be taken out.
[0021] 5. The lithium battery storage device described in the present invention is achieved by placing the support base flat on the ground or a table, opening the two buckles, and then pulling the two handles to make the two storage boxes hinged and rotated on the shaft. When one side of the two storage boxes contacts the top of the support base, the two storage boxes are fully opened, and the multiple storage boxes in the two storage boxes are placed in parallel, which is convenient for the placement of lithium batteries. When the lithium batteries are stored, the above operations can be repeated in reverse, and the two storage boxes can be closed again. This method of placement can, on the one hand, protect the lithium batteries in the storage boxes, and on the other hand, save a certain amount of placement space, thereby reducing the space occupied by the device. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The present invention will be further described below with reference to the accompanying drawings.
[0023] Figure 1 It is the main figure of the present invention; Figure 2 It is an overall diagram of the present invention; Figure 3 It is a structural diagram of the storage tube in the present invention; Figure 4 It is a structural schematic diagram of the partition in the present invention; Figure 5It is a structural schematic diagram of the solid arm in the present invention; Figure 6 It is a schematic structural diagram of the gear in the present invention; Figure 7 It is a structural schematic diagram of the push rod in the present invention; Figure 8 It is a structural schematic diagram of the hinge rod in the present invention; Figure 9 It is a structural schematic diagram of the push shaft in the present invention.
[0024] In the figure: 1. storage box; 101. handle; 2. support base; 3. shaft; 301. shelf; 4. labeling area; 5. storage box; 6. pressing block; 601. pressure rod; 602. gear; 603. shift rod; 604. guide block; 605. push rod; 606. hinge rod; 607. push shaft; 7. storage tube; 8. partition; 801. partition box; 802. return spring; 803. slide limit rod; 804. slider; 9. vertical plate; 901. solid object arm rod; 902. solid object spring; 10. rectangular box; 11. guide groove; 12. lifting block. DETAILED DESCRIPTION
[0025] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods.
[0026] like Figures 1 to 9 As shown, a lithium battery storage device according to an embodiment of the present invention includes a storage box 1, and there are two storage boxes 1. The inner walls of the two storage boxes 1 are fixedly mounted with a plurality of storage boxes 5. The interiors of the plurality of storage boxes 5 are fixedly mounted with storage tubes 7, which are used to place lithium batteries. A solid component is provided inside the storage box 5, which is used to fix the lithium batteries placed in the storage tubes 7. An isolation component is provided on the top of the storage box 5, which is used to separate the lithium batteries. A retrieval component is provided inside the storage box 5, which includes a lifting block 12, which is used to drive the lifting block 12 to take the lithium battery out of the storage tube 7. The solid component is placed on both sides of the storage tube 7, the isolation component is placed on the top of the storage tube 7, and the retrieval component is placed at the bottom of the storage tube 7. Since the lithium battery is placed in a sealed environment, this storage method can well protect the lithium battery, but it is more troublesome to take it out for use; By pressing the lithium battery into the storage tube 7 in the storage box 5, when the lithium battery enters the storage tube 7, the solid component in the storage box 5 clamps the lithium battery placed in the storage tube 7 to prevent the lithium battery from shaking in the storage tube 7 during storage, thereby preventing it from colliding with the inner wall of the storage tube 7 and causing damage, thereby preventing the lithium battery from shaking. When the solid component fixes the lithium battery, the isolation component on the top of the storage box 5 closes the top of the storage tube 7, thereby making the storage tube 7 The cylinder 7 forms a sealed space to prevent moisture from entering the storage cylinder 7 during storage, which would affect the use of the lithium battery. When the lithium battery in the storage cylinder 7 needs to be taken out, the lifting block 12 is driven by the taking component to lift the lithium battery upward, and at the same time drive the solid component and the isolation component to open, thereby lifting the lithium battery out of the storage cylinder 7, making it easier to take out the lithium battery when used, and making it more convenient to place and take the lithium battery. It should be noted that the lithium battery stored in this solution is a household cylindrical lithium battery.
[0027] like Figures 1 to 2 As shown, the outer walls of the two storage boxes 1 are hinged with a shaft 3, and both ends of the shaft 3 are fixedly installed with a shelf 301. The bottom of the two shelf plates 301 is fixedly installed with a support 2. The outer walls of the two storage boxes 1 can fit with the top of the support 2. The top of the two storage boxes 1 is fixedly installed with a handle 101. The tops of the two storage boxes 1 are symmetrically fixed with buckles. The outer walls of the two storage boxes 1 can be slidably connected with the inner walls of the two shelf plates 301. When lithium batteries need to be stored, the support 2 is placed flat on the ground or on a table, the two buckles are opened, and then the two handles 101 are pulled to make the two storage boxes 1 hinged and rotated on the shaft 3. When one side of the two storage boxes 1 contacts the top of the support 2, the two storage boxes 1 are fully opened, and the multiple storage boxes 5 in the two storage boxes 1 will be placed in parallel, which is convenient for the placement of lithium batteries. When the lithium batteries are stored, the above operation can be repeated in reverse, and the two storage boxes 1 can be closed again. This method of placement can, on the one hand, protect the lithium batteries in the storage box 5, and on the other hand, save a certain amount of placement space, thereby reducing the space occupied by the device.
[0028] like Figures 1 to 2 As shown, the inner walls of the two storage boxes 1 are each provided with a plurality of labeling openings 4; When in use, by labeling or writing the size of the battery at the opening 4 of each labeling area, when the battery needs to be taken out and stored, the battery can be easily classified to prevent the battery from being placed randomly and being difficult to find when taking it out.
[0029] like Figures 4 and 5As shown, the solid object assembly includes a partition box 801, which is fixedly installed on the top of the storage tube 7. Vertical plates 9 are symmetrically fixedly installed on the bottom of the partition box 801. The inner walls of the two vertical plates 9 are slidably connected with solid object arms 901. Solid object springs 902 are provided between the outer walls of the two solid object arms 901 and the inner walls of the two vertical plates 9. The outer walls of the two solid object arms 901 are slidably connected to the inner wall of the storage tube 7. The upper and lower ends of the two solid object arms 901 are inclined sliding surfaces. When the lithium battery enters the storage tube 7, by continuously pressing the lithium battery, the lithium battery will squeeze the two solid arms 901 to move to both sides. When the lithium battery moves completely into the storage tube 7, stop pressing the lithium battery. At this time, the two solid arms 901 will clamp the lithium battery under the elastic force of the solid spring 902, thereby achieving the retention of the lithium battery and preventing the lithium battery from shaking and causing bumps due to external factors when stored in the storage tube 7, thereby clamping and fixing the lithium battery. It should be noted here that the outer walls of the two solid arms 901 are provided with a soft gelatin film.
[0030] like Figures 5 and 6 As shown, the isolation assembly includes a partition 8, and there are two partitions 8. The two partitions 8 are slidably connected to the top inner wall of the storage tube 7, and one side of the two partitions 8 can fit each other. Two groups of sliding rods 803 are symmetrically fixedly installed on the inner wall of the partition box 801. The inner walls of the two partitions 8 are slidably connected to the outer walls of the two groups of sliding rods 803 respectively. Two groups of return springs 802 are provided between the outer walls of the two partitions 8 and the inner wall of the partition box 801. The two groups of return springs 802 are respectively placed on the outside of the two groups of sliding rods 803; When placing, the two partitions 8 are moved to slide on the top of the storage tube 7. When moving, the partitions 8 squeeze the return spring 802 to slide on the sliding limit rod 803. When the two partitions 8 cannot move, the two partitions 8 are fully opened at the top of the storage tube 7, and then the lithium battery can be pressed into the storage tube 7. When the lithium battery is completely entered into the storage tube 7 and the two fixing arms 901 have completed the clamping and fixing of the lithium battery, the two partitions 8 are released. The two partitions 8 will move and fit together on the top of the storage tube 7, thereby closing the top of the storage tube 7 and forming a sealed state inside the storage tube 7, preventing moisture from entering the storage tube 7 when the lithium battery is placed, affecting the lithium battery stored in the storage tube 7, and playing the role of sealing the storage tube 7 to isolate moisture from entering.
[0031] like Figures 6 and 7As shown, the object-picking assembly also includes a shift rod 603, one end of the two shift rods 603 is fixedly connected to the outer wall of the lifting block 12, the outer wall of the lifting block 12 is slidably connected to the inner wall of the storage tube 7, one end of the two shift rods 603 is slidably connected to the inner wall of the storage tube 7, and the bottom of the partition box 801 is symmetrically fixed with a rectangular box 10, one side of the two rectangular boxes 10 is fixedly connected to the outer wall of the storage tube 7, the inner walls of the two rectangular boxes 10 are rotatably connected to the gear 602, and the inner walls of the two rectangular boxes 10 are slidably connected to the pressure rod 601, the teeth on the two pressure rods 601 and the shift rod 603 are respectively engaged with the teeth on the two gears 602, and the top of the lifting block 12 is an inclined sliding surface; When it is necessary to take out the lithium battery from the storage tube 7, the pressure rod 601 is pressed downward. When the pressure rod 601 moves downward, the pressure rod 601 can drive the shift rod 603 to move upward through the tooth meshing transmission of the gear 602. When the shift rod 603 moves upward, it drives the lifting block 12 to slide upward at the bottom of the storage tube 7. When the lifting block 12 moves upward, the top of the lifting block 12 will squeeze and push the two solid arms 901 to move open to both sides, thereby causing the lithium battery to lose contact with the two solid arms 901. At this time, the top of the lithium battery will move out of the interior of the storage tube 7, and then by pinching the top of the lithium battery, the lithium battery can be pinched out of the interior of the storage tube 7, which makes it easier to take the lithium battery out of the interior of the storage tube 7.
[0032] like Figures 6 and 7 As shown, the tops of the two pressing rods 601 are fixed with pressing blocks 6, and the outer walls of the two pressing blocks 6 are slidably connected to the inner walls of the two rectangular boxes 10 respectively; When the pressure rod 601 is pressed downward, the pressing block 6 is pressed downward, and the pressing block 6 drives the pressure rod 601 downward. The setting of the pressing block 6 is to increase the pressing force surface, so as to facilitate the application of pressing force to the pressure rod 601.
[0033] like Figures 7 and 8 As shown, the inner walls of the two rectangular boxes 10 are symmetrically fixed with guide blocks 604, and the outer walls of the two pressure rods 601 and the shift rod 603 are respectively slidably connected to the inner walls of the four guide blocks 604; During operation, when the pressure rod 601 moves downward and the shift rod 603 moves upward, the pressure rod 601 and the shift rod 603 slide in the two guide blocks 604, providing a sliding path for the movement of the pressure rod 601 and the shift rod 603, preventing the pressure rod 601 and the shift rod 603 from sliding when sliding in the matrix box 10, and playing a role in guiding sliding.
[0034] like Figures 8 and 9As shown, the outer walls of the two partitions 8 are symmetrically fixed with sliders 804, the tops of the two shift rods 603 are fixedly installed with push rods 605, the tops of the two push rods 605 are symmetrically hinged with hinge rods 606, and the tops of the four hinge rods 606 are fixedly installed with push shafts 607. The outer walls of the four push shafts 607 are respectively fixedly connected to one side of the four sliders 804, and the outer walls of the four hinge rods 606 are slidably connected to the inner wall of the partition box 801. When the shift rod 603 moves up, the shift rod 603 drives the push rod 605 to move up. When the push rod 605 moves up, the push rod 605 drives the two hinged rods 606 to slide up. Through the hinged setting of the push rod 605 and the hinged rod 606, when the push rod 605 moves up, the two hinged rods 606 will be hinged to move to both sides, so that the two hinged rods 606 drive the two push shafts 607 to push the two sliders 804 to move to both sides, and the two partitions 8 will slide open at the top of the storage tube 7, playing the role of controlling the two partitions 8 to slide open at the top of the storage tube 7. When the lithium battery is stored, by pressing the two pressing blocks 6, the pressure rod 601 drives the shift rod 603 to move up through the gear 602, and the two hinged rods 606 will drive the two partitions 8 to slide open at the top of the storage tube 7 through the push shaft 607, thereby controlling the opening and closing of the two partitions 8 at the top of the storage tube 7.
[0035] like Figures 8 and 9 As shown, the inner wall of the partition box 801 is symmetrically fixed with a guide groove body 11, the outer walls of the four sliders 804 are slidably connected to the inner walls of the two guide groove bodies 11 in pairs, and the outer walls of the four hinged rods 606 and the push shaft 607 are slidably connected to the inner walls of the two guide groove bodies 11 in pairs; When the hinged rod 606 moves upward, through the limiting setting of the guide groove body 11, the two hinged rods 606 will drive the two push shafts 607 to move to both sides in the guide groove body 11, so that the two push shafts 607 push the two sliders 804 to move inside the guide groove body 11. The setting of the guide groove body 11 is to provide a limiting path for the two hinged rods 606 to move to both sides, thereby limiting the sliding of the hinged rod 606.
[0036] When the battery is in the storage tube 7, the lifting block 12 is driven by the lifting assembly to lift the battery upward, and at the same time, the solid assembly and the isolation assembly are opened, thereby lifting the battery out of the storage tube 7, making it easy to take out the battery when in use, and making it more convenient to place and take out the battery. When lithium batteries need to be stored, the support 2 is placed flat on the ground or on a table, the two buckles are opened, and then the two handles 101 are pulled to hinge the two storage boxes 1 on the shaft 3. When one side of the two storage boxes 1 contacts the top of the support 2, the two storage boxes 1 are fully opened, and the multiple storage boxes 5 in the two storage boxes 1 are placed in parallel, which is convenient for the placement of lithium batteries. When the lithium batteries are stored, the above operation can be repeated in reverse, and the two storage boxes 1 can be closed again. This method of placement can not only protect the lithium batteries in the storage boxes 5, but also save a certain amount of storage space, thereby reducing the space occupied by the device. When in use, by labeling or writing the size of the battery at the opening 4 of each labeling area, when the battery needs to be taken out and stored, it is convenient to classify the battery to prevent the battery from being placed randomly and being difficult to find when taking it out; When the lithium battery enters the storage tube 7, by continuously pressing the lithium battery, the lithium battery will squeeze the two fixing arms 901 to move to both sides. When the lithium battery moves completely into the storage tube 7, the pressing of the lithium battery is stopped. At this time, the two fixing arms 901 will clamp the lithium battery under the elastic force of the fixing spring 902, thereby achieving the retention of the lithium battery and preventing the lithium battery from shaking and causing collisions due to external factors when stored in the storage tube 7, thereby playing the role of clamping and fixing the lithium battery. When placing, by toggling the two partitions 8 to slide on the top of the storage tube 7, the partition 8 squeezes the return spring 802 when moving to slide on the sliding limit rod 803. When the two partitions 8 cannot move, the two partitions 8 are fully opened at the top of the storage tube 7, and then the lithium battery can be pressed into the storage tube 7. When the lithium battery is completely entered into the storage tube 7, the two fixing arms 901 have completed the clamping and fixing of the lithium battery, and the two partitions 8 are released. The two partitions 8 will move and fit together at the top of the storage tube 7, thereby closing the top of the storage tube 7, forming a sealed state inside the storage tube 7, preventing moisture from entering the storage tube 7 when the lithium battery is placed, and affecting the lithium battery stored in the storage tube 7, thereby sealing the storage tube 7 and isolating the lithium battery from entering; When it is necessary to take out the lithium battery from the storage tube 7, the pressure rod 601 is pressed downward. When the pressure rod 601 moves downward, the pressure rod 601 is driven by the teeth of the gear 602 to drive the shift rod 603 to move upward. When the shift rod 603 moves upward, it drives the lifting block 12 to slide upward at the bottom of the storage tube 7. When the lifting block 12 moves upward, the top of the lifting block 12 will squeeze and push the two fixed arm rods 901 to move open to both sides, so that the lithium battery loses contact with the two fixed arm rods 901. At this time, the top of the lithium battery will move out of the interior of the storage tube 7, and then by pinching the top of the lithium battery, the lithium battery can be pinched out of the interior of the storage tube 7, which makes it easier to take the lithium battery out of the interior of the storage tube 7. When the pressure rod 601 is pressed downward, the pressing block 6 is pressed downward, and the pressing block 6 drives the pressure rod 601 downward. The setting of the pressing block 6 is to increase the pressing force surface, so as to facilitate the application of pressing force to the pressure rod 601. During operation, when the pressure rod 601 moves downward and the shift rod 603 moves upward, the pressure rod 601 and the shift rod 603 slide in the two guide blocks 604, providing a sliding path for the movement of the pressure rod 601 and the shift rod 603, preventing the pressure rod 601 and the shift rod 603 from sliding when sliding in the matrix box 10, and playing a role in guiding sliding; When the shift rod 603 moves up, the shift rod 603 drives the push rod 605 to move up. When the push rod 605 moves up, the push rod 605 drives the two hinged rods 606 to slide up. Through the hinged arrangement of the push rod 605 and the hinged rod 606, when the push rod 605 moves up, the two hinged rods 606 will be hinged to move to both sides, so that the two hinged rods 606 drive the two push shafts 607 to push the two sliders 804 to move to both sides, and the two partitions 8 will slide open at the top of the storage tube 7, playing the role of controlling the two partitions 8 to slide open at the top of the storage tube 7. When the lithium battery is stored, by pressing the two pressing blocks 6, the pressure rod 601 drives the shift rod 603 to move up through the gear 602, and the two hinged rods 606 will drive the two partitions 8 to slide open at the top of the storage tube 7 through the push shaft 607, thereby controlling the opening and closing of the two partitions 8 at the top of the storage tube 7; When the hinged rod 606 moves upward, through the limiting setting of the guide groove body 11, the two hinged rods 606 will drive the two push shafts 607 to move to both sides in the guide groove body 11, so that the two push shafts 607 push the two sliders 804 to move inside the guide groove body 11. The setting of the guide groove body 11 is to provide a limiting path for the two hinged rods 606 to move to both sides, thereby limiting the sliding of the hinged rod 606.
[0037] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the foregoing embodiments. The foregoing embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.
Claims
1. A lithium battery storage device, characterized in that: The invention comprises a storage box (1), wherein there are two storage boxes (1), the inner walls of the two storage boxes (1) are fixedly mounted with a plurality of storage boxes (5), the interiors of the plurality of storage boxes (5) are fixedly mounted with a storage tube (7), the storage tube (7) is used for placing lithium batteries, a solid component is arranged inside the storage box (5), the solid component is used for fixing the lithium batteries placed in the storage tube (7), an isolation component is arranged on the top of the storage box (5), the isolation component is used for isolating the lithium batteries, a taking component is arranged inside the storage box (5), the taking component comprises a lifting block (12), the taking component is used for driving the lifting block (12) to take the lithium batteries out of the storage tube (7), the solid component is arranged on both sides of the storage tube (7), the isolation component is arranged on the top of the storage tube (7), and the taking component is arranged on the bottom of the storage tube (7).
2. A lithium battery storage device according to claim 1, characterized in that: The outer walls of the two storage boxes (1) are hinged with a shaft (3), both ends of the shaft (3) are fixedly installed with a shelf (301), the bottoms of the two shelfs (301) are fixedly installed with a support (2), the outer walls of the two storage boxes (1) can fit with the top of the support (2), the tops of the two storage boxes (1) are fixedly installed with a handle (101), the tops of the two storage boxes (1) are symmetrically fixed with buckles, and the outer walls of the two storage boxes (1) can be slidably connected with the inner walls of the two shelfs (301).
3. A lithium battery storage device according to claim 2, characterized in that: The inner walls of the two storage boxes (1) are each provided with a plurality of labeling area openings (4).
4. A lithium battery storage device according to claim 3, characterized in that: The solid object assembly comprises a partition box (801), which is fixedly mounted on the top of the storage tube (7), and vertical plates (9) are symmetrically fixedly mounted on the bottom of the partition box (801), the inner walls of the two vertical plates (9) are slidably connected to solid object arms (901), and solid object springs (902) are provided between the outer walls of the two solid object arms (901) and the inner walls of the two vertical plates (9), the outer walls of the two solid object arms (901) are slidably connected to the inner wall of the storage tube (7), and the upper and lower ends of the two solid object arms (901) are inclined sliding surfaces.
5. A lithium battery storage device according to claim 4, characterized in that: The isolation component includes a partition (8), and there are two partitions (8). The two partitions (8) are both slidably connected to the inner wall of the top of the storage tube (7), and one side of the two partitions (8) can fit each other. Two groups of sliding rods (803) are symmetrically fixedly installed on the inner wall of the partition box (801). The inner walls of the two partitions (8) are respectively slidably connected to the outer walls of the two groups of sliding rods (803). Two groups of return springs (802) are provided between the outer walls of the two partitions (8) and the inner wall of the partition box (801), and the two groups of return springs (802) are respectively placed outside the two groups of sliding rods (803).
6. A lithium battery storage device according to claim 5, characterized in that: The object-picking assembly further comprises a shift rod (603), one end of each of the two shift rods (603) being fixedly connected to the outer wall of the object-lifting block (12), the outer wall of the object-lifting block (12) being slidably connected to the inner wall of the object-storing tube (7), one end of each of the two shift rods (603) being slidably connected to the inner wall of the object-storing tube (7), a rectangular box (10) being symmetrically fixedly mounted on the bottom of the object-storing box (801), one side of each of the two rectangular boxes (10) being fixedly connected to the outer wall of the object-storing tube (7), the inner walls of each of the two rectangular boxes (10) being rotatably connected to a gear (602), the inner walls of each of the two rectangular boxes (10) being slidably connected to a pressure rod (601), the teeth on the two pressure rods (601) and the shift rod (603) respectively meshing with the teeth on the two gears (602), and the top of the object-lifting block (12) being an inclined sliding surface.
7. A lithium battery storage device according to claim 6, characterized in that: A pressing block (6) is fixedly mounted on the top of each of the two pressing rods (601), and the outer walls of the two pressing blocks (6) are slidably connected to the inner walls of the two rectangular boxes (10) respectively.
8. The lithium battery storage device according to claim 7, characterized in that: The inner walls of the two rectangular boxes (10) are both symmetrically fixed with guide blocks (604), and the outer walls of the two pressure rods (601) and the shift rod (603) are respectively slidably connected to the inner walls of the four guide blocks (604).
9. The lithium battery storage device according to claim 8, characterized in that: The outer walls of the two partitions (8) are symmetrically fixed with sliders (804), the tops of the two shift rods (603) are fixedly installed with push rods (605), the tops of the two push rods (605) are symmetrically hinged with hinge rods (606), the tops of the four hinge rods (606) are fixedly installed with push shafts (607), the outer walls of the four push shafts (607) are fixedly connected to one side of the four sliders (804), and the outer walls of the four hinge rods (606) are slidably connected to the inner wall of the partition box (801).
10. The lithium battery storage device according to claim 9, characterized in that: The inner wall of the partition box (801) is symmetrically fixed with a guide groove body (11), the outer walls of the four sliders (804) are slidably connected to the inner walls of the two guide groove bodies (11) in pairs, and the outer walls of the four hinged rods (606) and the push shaft (607) are slidably connected to the inner walls of the two guide groove bodies (11) in pairs.