A high-efficiency heat-dissipation battery
By designing a battery system with lifting detection, active disconnection, and heat dissipation ventilation mechanisms, the problem of battery damage caused by terminal rust and electrolyte consumption during use is solved. This enables timely detection and prevention of damage spread, ensuring the stability and safety of the battery box.
Patent Information
- Application Number
- CN202511211402.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-28
- Publication Date
- 2025-11-18
- Estimated Expiration
- 2045-08-28
AI Technical Summary
Batteries are prone to damage during use due to reasons such as rust on the terminals and electrolyte consumption. The damage is not easily detected and may cause a chain reaction of damage and damage to electrical appliances. Existing technology is not effective in detecting and preventing this.
A battery system comprising a lifting detection mechanism, an active disconnection mechanism, and a heat dissipation and ventilation mechanism was designed. The system detects the condition of the terminals through a mechanical structure, actively disconnects the connection, and actively dissipates heat through a fan to prevent the spread of damage.
It enables timely detection and disconnection of damaged battery connections, preventing cascading damage, ensuring the sealing and stability of the battery box, and improving the stability and safety of use.
Smart Images

Figure CN120749267B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of battery technology, and more particularly to a high-efficiency heat dissipation battery. Background Technology
[0002] Thermal power plant batteries are a type of backup power source, capable of providing short-term backup power during power outages to ensure the stable operation of the power grid. In thermal power plants, batteries are mainly used for the following purposes:
[0003] Thermal power plants need to start their generators before generating electricity, which requires a large amount of power. Batteries can provide starting current for the generators, ensuring they start normally. Batteries can also provide power to the loads, ensuring their normal operation. When the power system is interrupted, batteries can provide backup power to ensure the normal operation of the loads. Thermal power plant batteries can also store electricity to cope with power system interruptions or insufficient power supply, ensuring the stable operation of the power grid. Therefore, thermal power plant batteries are a crucial component of the power system.
[0004] However, batteries are generally used in groups and installed in battery boxes. During use, poor battery quality, prolonged use, or excessive charging current can easily cause corrosion of the terminals and condensation on the wires, leading to battery damage. Alternatively, leakage, evaporation, overcharging and discharging, improper use and maintenance, or high temperatures or prolonged use can cause electrolyte depletion, resulting in unstable battery voltage or even bulging and damage. This not only damages the battery but can also damage electrical appliances. These problems often go unnoticed by staff due to poor sealing of the battery box, leading to a chain reaction of damage to the entire battery pack or electrical appliances, resulting in significant economic losses for the company. Summary of the Invention
[0005] The purpose of this invention is to provide a battery with high-efficiency heat dissipation to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, the present invention provides the following technical solution:
[0007] A high-efficiency heat dissipation battery includes multiple batteries and a battery box. The multiple batteries are located inside the battery box. A box cover is installed on the top side of the battery box. Two power cables are provided on one side of the battery box. Two terminals for power connection are installed on the top side of the batteries. A heat dissipation box is provided inside the battery box, and the multiple batteries are plugged into the heat dissipation box.
[0008] It also includes a lifting detection mechanism, which is installed inside the battery box. Multiple batteries are connected to the lifting detection mechanism, which lifts the terminals to perform detection. The lifting detection mechanism includes a lifting frame, which is movably installed on the heat sink. Multiple plug-in sleeves are movably installed on the bottom side of the lifting frame, and the multiple plug-in sleeves are respectively plugged into multiple terminals. A drive rod is rotatably installed on one side of the heat sink, and the drive rod is movably installed on the lifting frame. Two push-pull rods are provided inside the battery box, and the two push-pull rods are movably connected. One push-pull rod is movably installed on the drive rod, and the other push-pull rod is movably installed on the battery box. Two adapter cables are connected to the multiple terminals.
[0009] It also includes an active disconnect mechanism, which is installed inside the battery box and is used to disconnect the connection between the power cable and the battery. The active disconnect mechanism includes a support plate, a heat sink is installed inside the support plate, the support plate is movably installed inside the battery box, a mounting bracket is installed on the bottom side of the battery box, a movable bracket is movably installed on one side of the mounting bracket, the heat sink is in contact with the movable bracket, a locking bracket is slidably installed on the movable bracket, and locking grooves are provided on the two push-pull rods, with the locking bracket inserted into the two locking grooves.
[0010] It also includes a heat dissipation and ventilation mechanism, which is installed inside the battery box and connected to the heat dissipation box. The heat dissipation and ventilation mechanism dissipates heat from the multiple batteries through the heat dissipation box. The heat dissipation and ventilation mechanism includes a fan, an air inlet pipe connected to the fan, a transfer box installed at the end of the air inlet pipe, and a connecting pipe connecting the transfer box and the heat dissipation box.
[0011] Furthermore, in a preferred embodiment of the present invention, the lifting detection mechanism further includes a plurality of drive seats, which are respectively mounted on a plurality of plug-in sleeves. The drive seats are hollow and are movably mounted with a pull-back frame, which is mounted on the lifting frame.
[0012] A support spring is sleeved on the pull-back bracket. One end of the support spring is installed on the inner wall of the drive seat, and the other end of the support spring is installed on the pull-back bracket.
[0013] The lifting frame is equipped with multiple audible and visual alarms, which move through the box cover.
[0014] Furthermore, in a preferred embodiment of the present invention, both sides of the drive seat are movably mounted with snap-fit brackets, both sides of the plug sleeve are provided with snap-fit slots, the two snap-fit brackets are respectively snapped into the two snap-fit slots, both sides of the drive seat are provided with transverse sliding slots, both transverse sliding slots are movably mounted with transverse sliding rods, and the two transverse sliding rods are respectively mounted on the two snap-fit brackets.
[0015] Each of the multiple audible and visual alarms is electrically connected to a switch, and the multiple switches are respectively installed on multiple card holders;
[0016] An adapter seat is installed on one side of the pull-back bracket, and two adapter rods are rotatably mounted on the adapter seat. The two adapter rods are rotatably mounted on the two snap-fit brackets.
[0017] Furthermore, in a preferred embodiment of the present invention, two linkage shafts are rotatably mounted on the drive rod. One linkage shaft is mounted on one side of the heat sink, and a drive groove is provided on one side of the lifting frame. The other linkage shaft is movably mounted in the drive groove.
[0018] The top side of the heat sink has two lifting slots, and the bottom side of the lifting frame has two lifting plates. The bottom side of the lifting plates is movably installed in the lifting slots and is equipped with lifting springs. The bottom end of the lifting springs is installed on the bottom inner wall of the lifting slots.
[0019] Furthermore, in a preferred embodiment of the present invention, a sliding hole is provided on the drive rod, and a push-pull shaft is rotatably mounted on one of the push-pull rods, the push-pull shaft being movably mounted in the sliding hole;
[0020] Another push-pull rod is rotatably mounted with a handle, and a limiting frame is mounted on the outside of the battery box, with the handle locked within the limiting frame.
[0021] Furthermore, in a preferred embodiment of the present invention, a reset rod is installed at each of the four corners of the bottom side of the support plate, and an installation sleeve is sleeved on the reset rod, and the installation sleeve is installed on the bottom side of the battery box;
[0022] A reset spring is installed on the bottom inner wall of the mounting sleeve, and the top end of the reset spring is installed on the bottom side of the reset rod.
[0023] Furthermore, in a preferred embodiment of the present invention, the mounting frame is provided with a mounting groove, and a mounting shaft is rotatably mounted in the mounting groove, the mounting shaft being mounted on the movable frame;
[0024] A spring-loaded spring is fitted onto the mounting shaft. One end of the spring-loaded spring is mounted on the inner wall of the mounting groove, and the other end of the spring-loaded spring is mounted on the mounting shaft.
[0025] Furthermore, in a preferred embodiment of the present invention, two connectors are installed on the battery box, two adapter cables are respectively connected to the two connectors, a connecting sleeve is fitted on the two connectors, and the two power cables are connected to the connecting sleeve.
[0026] A separation rod is movably mounted on the battery box and is installed on the connecting sleeve. A separation frame is installed on one side of the movable frame. A separation shaft is rotatably mounted on the separation rod and is movably installed inside the separation frame.
[0027] Furthermore, in a preferred embodiment of the present invention, the heat dissipation box is hollow and has multiple air inlets. The cold air blown out by the fan is blown toward the battery through the multiple air inlets. The battery is surrounded by pads, which are installed on the inner wall of the heat dissipation box.
[0028] A flipping seat is installed on the inner wall of the transfer box. A rotary sealing plate is rotatably installed on the flipping seat. The rotary sealing plate is used to close the air intake pipe. A support shaft is provided inside the flipping seat. Both ends of the support shaft are installed on the rotary sealing plate. A return torsion spring is sleeved on the support shaft. One end of the return torsion spring is installed on the support shaft, and the other end of the support shaft is installed on the flipping seat.
[0029] Furthermore, in a preferred embodiment of the present invention, the box cover is provided with an air outlet for air discharge, a lifting rod is movably installed on the top side of the transfer box, and a sealing plate is installed at the top of the lifting rod for sealing the air outlet.
[0030] A lifting ball is installed at the bottom end of the lifting rod, and the lifting ball contacts the rotary sealing plate. A tension plate is sleeved on the lifting rod, and a return spring is connected between the tension plate and the transfer box.
[0031] The beneficial effects of the high-efficiency heat dissipation battery proposed in this invention are:
[0032] In this invention, the lifting detection mechanism moves one push-pull rod to move another, causing the lifting frame to move upwards. The movement of the lifting frame, through multiple pull-back rods, moves multiple plug sleeves. If the terminal post is rusted, the plug sleeve will solidify with the terminal post, preventing the plug sleeve from moving. This causes the pull-back rod to move within the drive seat. Simultaneously, the movement of the pull-back rod moves the adapter seat, causing the adapter seat to move through two adapter rods and disengage from the slots, thus separating the drive seat from the plug sleeve. At the same time, the movement of the adapter seat presses a switch, triggering the corresponding audible and visual alarm. This allows staff to promptly identify which battery is damaged during testing, enabling timely replacement and preventing a chain reaction of damage to more batteries. Furthermore, the mechanical structure ensures accurate testing results without consuming energy, making it more stable in operation.
[0033] Furthermore, in this invention, by setting up an active disconnection mechanism, when the electrolyte in the battery decreases, the overall weight of the battery decreases. At this time, under the rebound force of multiple return springs, the four return rods drive the support plate to reset, which in turn causes the support plate to move the heat sink upward, thereby freeing the movable frame from compression. Then, under the rebound force of the return torsion spring, the movable frame flips over. The rotation of the movable frame causes the locking frame to disengage from the two locking slots, causing the two push-pull rods to disengage, thereby freeing the lifting frame from restriction. Therefore, under the rebound force of the two lifting springs, the lifting frame moves upward, thereby disconnecting multiple batteries. In addition, the rotation of the movable frame causes the separation frame to rotate. The separation frame drives the separation rod to move through the separation shaft. At the same time, the separation shaft slides within the separation frame, and the movement of the separation rod causes the connecting sleeve to disengage from the two connectors, thereby disconnecting the battery from the power cable and avoiding the problem of chain damage to electrical appliances caused by battery damage.
[0034] Furthermore, in this invention, through the configuration of the heat dissipation and ventilation mechanism, when the battery is in use, the fan is activated, allowing air to enter the transfer box through the air intake pipe and force open the rotary sealing plate, allowing air to enter the heat dissipation box through the connecting pipe and be blown out through multiple air intake holes for active heat dissipation of the battery. At the same time, the rotary sealing plate rotates, pushing the lifting ball to move. The lifting ball drives the sealing plate to move through the lifting rod, thereby allowing the air outlet to leak out and facilitating the discharge of hot air. In addition, the movement of the lifting rod drives the tension plate to move, and causes the return spring to be stretched. Similarly, when the fan is turned off, the return force of the return torsion spring causes the rotary sealing plate to close the air intake pipe, and the sealing plate to close the air outlet, ensuring the airtightness of the battery box and thus preventing dust or insects and other impurities from entering and causing damage to the battery. Attached Figure Description
[0035] Figure 1A three-dimensional structural diagram of a high-efficiency heat dissipation battery provided in an embodiment of the present invention;
[0036] Figure 2 A schematic diagram showing the connection between a lifting detection mechanism and an active disconnection mechanism for a high-efficiency heat dissipation battery, as provided in an embodiment of the present invention.
[0037] Figure 3 This is a schematic diagram illustrating the connection between the heat dissipation box and the support plate of a high-efficiency heat dissipation battery according to an embodiment of the present invention.
[0038] Figure 4 A partial structural diagram illustrating the connection between the connector sleeve and the card holder of a high-efficiency heat dissipation battery, as provided in an embodiment of the present invention.
[0039] Figure 5 A partial cross-sectional view of the connection between the plug sleeve and the card holder of a high-efficiency heat dissipation battery provided in an embodiment of the present invention;
[0040] Figure 6 A partial structural diagram illustrating the connection between the drive rod and push-pull rod of a high-efficiency heat dissipation battery, as provided in an embodiment of the present invention.
[0041] Figure 7 A partial cross-sectional view of the connection between the heat sink and the lifting frame of a high-efficiency heat dissipation battery, as provided in an embodiment of the present invention.
[0042] Figure 8 A partial structural diagram illustrating the connection between the push-pull rod and locking frame of a high-efficiency heat dissipation battery, as provided in an embodiment of the present invention.
[0043] Figure 9 A partial cross-sectional view of the connection between the mounting bracket and movable frame of a high-efficiency heat dissipation battery, as provided in an embodiment of the present invention.
[0044] Figure 10 A cross-sectional view of the connection between the mounting sleeve and the reset rod of a high-efficiency heat dissipation battery according to an embodiment of the present invention.
[0045] Figure 11 This is a schematic diagram illustrating the connection between the battery box and the sealing plate of a high-efficiency heat dissipation battery according to an embodiment of the present invention.
[0046] Figure 12 A schematic diagram of the internal structure of a high-efficiency heat dissipation battery transfer box provided in an embodiment of the present invention;
[0047] Figure 13 A cross-sectional view of the connection between the flip-top base and the rotary sealing plate of a high-efficiency heat dissipation battery, as provided in an embodiment of the present invention.
[0048] Figure 14 This is a cross-sectional view of a heat sink for a high-efficiency heat dissipation battery, provided as an embodiment of the present invention.
[0049] In the diagram: 1-Battery; 2-Battery Box; 3-Terminal Post; 4-Connecting Cable; 5-Heat Dissipation Box; 6-Lifting Detection Mechanism; 601-Lifting Frame; 602-Plug-in Sleeve; 603-Adapter Cable; 604-Lifting Slot; 605-Lifting Plate; 606-Lifting Spring; 607-Drive Base; 608-Retracting Frame; 609-Switch; 610-Support Spring; 611-Adapter Base; 612-Adapter Rod; 613-Horizontal Movement Slot; 614-Horizontal Movement Rod; 615-Card Slot; 616-Card Frame; 617-Audible and Visual Alarm; 618-Drive Rod; 619-Linkage Shaft; 620-Drive Slot; 621-Push-Pull Rod; 622-Sliding Hole; 623-Push-Pull Shaft; 624-Turner; 625-Limiting Frame; 7-Active Disconnection Mechanism; 701-Bearing Plate; 70 2-Mounting sleeve; 703-Reset rod; 704-Reset spring; 705-Mounting bracket; 706-Movable bracket; 707-Locking bracket; 708-Locking groove; 709-Connector; 710-Connecting sleeve; 711-Separating rod; 712-Separating bracket; 713-Separating shaft; 714-Mounting groove; 715-Mounting shaft; 716-Rebound torsion spring; 8-Heat dissipation and ventilation mechanism; 801-Fan; 802-Transfer box; 803-Inlet pipe; 804-Connecting pipe; 805-Inlet hole; 806-Padded block; 807-Lifting rod; 808-Sealing plate; 809-Outlet hole; 810-Lifting ball; 811-Tension plate; 812-Return spring; 813-Rotating sealing plate; 814-Tilting seat; 815-Support shaft; 816-Reset torsion spring; 9-Box cover. Detailed Implementation
[0050] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. The components of the embodiments of the present invention described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.
[0051] Therefore, the following detailed description of the embodiments of the invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but merely to illustrate selected embodiments of the invention. All other embodiments obtained by those skilled in the art based on the embodiments of the invention without inventive effort are within the scope of protection of the invention.
[0052] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.
[0053] Furthermore, in the description of this invention, it should be noted that the terms "center," "upper," "lower," "vertical," "horizontal," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship commonly used when the product of this invention is in use. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this invention. In addition, the terms "first," "second," and "third," etc., are only used to distinguish descriptions and should not be construed as indicating or implying relative importance.
[0054] Furthermore, terms such as "horizontal," "vertical," and "perpendicular" do not imply that components must be absolutely vertical, but rather that they can be slightly tilted. For example, "vertical" simply means that its direction is more vertical relative to "horizontal," not that the structure must be completely vertical, but can be slightly tilted.
[0055] In the description of this invention, it should also be noted that, unless otherwise explicitly specified and limited, the terms "set," "install," "connect," and "link" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.
[0056] Please refer to the attached instruction manual. Figure 1-14 The present invention provides a high-efficiency heat dissipation battery, which includes multiple batteries 1 and a battery box 2. The multiple batteries 1 are all located inside the battery box 2. A box cover 9 is installed on the top side of the battery box 2. Two power cables 4 are provided on one side of the battery box 2. Two terminals 3 for power connection are installed on the top side of the batteries 1. A heat dissipation box 5 is provided inside the battery box 2. The multiple batteries 1 are all plugged into the heat dissipation box 5.
[0057] It also includes a lifting detection mechanism 6, which is installed inside the battery box 2. Multiple batteries 1 are connected to the lifting detection mechanism 6. The lifting detection mechanism 6 is used to lift and detect the terminals 3. The lifting detection mechanism 6 includes a lifting frame 601, which is movably installed on the heat dissipation box 5. Multiple plug-in sleeves 602 are movably installed on the bottom side of the lifting frame 601. The multiple plug-in sleeves 602 are respectively plugged into multiple terminals 3. A drive rod 618 is rotatably installed on one side of the heat dissipation box 5. The drive rod 618 is movably installed on the lifting frame 601. Two push-pull rods 621 are provided inside the battery box 2. The two push-pull rods 621 are movably connected. One push-pull rod 621 is movably installed on the drive rod 618, and the other push-pull rod 621 is movably installed on the battery box 2. Two adapter cables 603 are connected to the multiple terminals 3.
[0058] It should be noted that, in this embodiment of the invention, by setting up the lifting detection mechanism 6, the rotating handle 624 is disengaged from the limiting frame 625, and then the rotating handle 624 is pulled to drive a push-pull rod 621 to move. The push-pull rod 621 drives another push-pull rod 621 to move through the locking frame 707, so that the push-pull rod 621 drives the drive rod 618 to rotate through the push-pull shaft 623. At the same time, the push-pull shaft 623 slides in the sliding hole 622. The drive rod 618 rotates on a linkage shaft 619. The drive rod 618 drives the lifting frame 601 to move through another linkage shaft 619, and the linkage shaft 619 slides in the driving groove 620. The lifting frame 601 moves upward in the two lifting grooves 604 through the two lifting plates 605, and drives the two lifting springs 606 to stretch. The movement of the lifting frame 601 drives the movement of multiple plug-in sleeves 602 through multiple pull-back frames 608.
[0059] It should be further explained that if the pole post 3 rusts, causing the plug sleeve 602 to solidify with the pole post 3, the plug sleeve 602 will be unable to move. This will cause the pull-back bracket 608 to move within the drive seat 607, and cause the support spring 610 to contract. Simultaneously, the movement of the pull-back bracket 608 will drive the adapter seat 611 to move, causing the adapter seat 611 to drive the two snap-fit brackets 616 to move via the two adapter rods 612. The snap-fit brackets 616 will slide horizontally within the transverse groove 613 via the transverse rod 614, allowing the snap-fit brackets 616 to engage with the snap-fit brackets. The slot 615 disengages, causing the drive seat 607 to separate from the plug sleeve 602. At the same time, the adapter seat 611 moves the squeeze switch 609, causing the corresponding audible and visual alarm 617 to sound an alarm. This allows the staff to know in time which battery 1 is damaged during the inspection and replace it in time, avoiding cascading damage to more batteries 1. Therefore, inspection through a mechanical structure can ensure the accuracy of the inspection results, while not consuming energy and making it more stable to use.
[0060] Furthermore, the high-efficiency heat dissipation battery provided in this embodiment of the invention also includes an active disconnection mechanism 7. The active disconnection mechanism 7 is installed inside the battery box 2 and is used to disconnect the connection between the power cable 4 and the battery 1. Specifically, the active disconnection mechanism 7 includes a support plate 701, a heat dissipation box 5 is installed inside the support plate 701, the support plate 701 is movably installed inside the battery box 2, a mounting bracket 705 is installed on the bottom side of the battery box 2, a movable bracket 706 is movably installed on one side of the mounting bracket 705, the heat dissipation box 5 is in contact with the movable bracket 706, a locking bracket 707 is slidably installed on the movable bracket 706, and locking grooves 708 are provided on the two push-pull rods 621, with the locking bracket 707 inserted into the two locking grooves 708.
[0061] It also includes a heat dissipation and ventilation mechanism 8, which is installed inside the battery box 2 and connected to the heat dissipation box 5. The heat dissipation and ventilation mechanism 8 dissipates heat from multiple batteries 1 through the heat dissipation box 5. Specifically, the heat dissipation and ventilation mechanism 8 includes a fan 801, an air inlet pipe 803 connected to the fan 801, a transfer box 802 installed at the end of the air inlet pipe 803, and a connecting pipe 804 connecting the transfer box 802 and the heat dissipation box 5.
[0062] It should be noted that the high-efficiency heat dissipation battery provided in this embodiment of the invention, through the setting of the active disconnection mechanism 7, causes the overall weight of the battery 1 to decrease when the electrolyte in the battery 1 decreases. At this time, under the rebound force of multiple return springs 704, the four return rods 703 drive the support plate 701 to reset, thereby causing the support plate 701 to drive the heat sink 5 to move upward, so that the movable frame 706 is no longer squeezed. At this time, under the rebound force of the return torsion spring 716, the movable frame 706 flips over. The movable frame 706 rotates in the mounting groove 714 through the mounting shaft 715. The rotation of the movable frame 706 causes the locking frame 707 to disengage from the two The locking groove 708 disengages the two push-pull rods 621, thereby freeing the lifting frame 601 from restriction. Under the rebound force of the two lifting springs 606, the lifting frame 601 moves upward, thus disconnecting the multiple batteries 1. In addition, the rotation of the movable frame 706 drives the separation frame 712 to rotate. The separation frame 712 drives the separation rod 711 to move through the separation shaft 713. At the same time, the separation shaft 713 slides within the separation frame 712. The movement of the separation rod 711 causes the connecting sleeve 710 to disengage from the two connectors 709, thereby disconnecting the battery 1 from the power cable 4 and preventing damage to the battery 1 from causing a chain reaction of damage to electrical appliances.
[0063] It should be further explained that, through the cooling and ventilation mechanism 8, when the battery 1 is in use, the fan 801 is started, allowing air to enter the transfer box 802 through the air intake pipe 803 and force open the rotary sealing plate 813. The rotary sealing plate 813 rotates within the flip seat 814 via the support shaft 815, causing the reset torsion spring 816 to be stressed. At the same time, air enters the heat dissipation box 5 through the connecting pipe 804 and is blown out through multiple air intake holes 805, actively cooling the battery 1. Simultaneously, the rotary sealing plate 813 rotates, pushing the lifting ball 810 to move. The lifting ball 810 moves the sealing plate 808 via the lifting rod 807, which allows the air outlet 809 to leak out, facilitating the discharge of hot air. The movement of the lifting rod 807 also moves the stretching plate 811, which in turn stretches the return spring 812. Similarly, when the fan 801 is turned off, the return force of the return torsion spring 816 causes the rotary sealing plate 813 to close the air inlet pipe 803, while the sealing plate 808 closes the air outlet 809, ensuring the airtightness of the battery box 2 and preventing dust or insects from entering and damaging the battery 1.
[0064] It should be emphasized that the connection of the adapter cable 603 in this application is only for illustration. The battery 1 will only output positive and negative terminals when in use. Therefore, the specific connection method shall be based on the actual use requirements. In addition, only the plug sleeve 602 is made of metal support, while the rest of the structure is made of insulating material.
[0065] Further, please refer to the appendix to the instruction manual. Figure 3-8 The present invention provides a high-efficiency heat dissipation battery. The lifting detection mechanism 6 further includes multiple drive seats 607, which are respectively installed on multiple plug-in sleeves 602. The drive seats 607 are hollow and movably mounted with a pull-back frame 608, which is installed on the lifting frame 601. A support spring 610 is sleeved on the pull-back frame 608. One end of the support spring 610 is installed on the inner wall of the drive seat 607, and the other end of the support spring 610 is installed on the pull-back frame 608.
[0066] In addition, multiple audible and visual alarms 617 are installed on the lifting frame 601, and the audible and visual alarms 617 move through the cover 9. It should be noted that, in this embodiment of the invention, when the lifting frame 601 moves, the movement of the lifting frame 601 drives multiple plug sleeves 602 to move through multiple pull-back frames 608. If the pole post 3 is rusted, causing the plug sleeve 602 to solidify with the pole post 3, the plug sleeve 602 cannot move, thereby causing the pull-back frame 608 to move within the drive seat 607, and causing the support spring 610 to contract.
[0067] More specifically, in this embodiment of the invention, both sides of the drive seat 607 are movably mounted with snap-fit brackets 616, both sides of the plug sleeve 602 are provided with snap-fit slots 615, and the two snap-fit brackets 616 are respectively snapped into the two snap-fit slots 615. Both sides of the drive seat 607 are provided with transverse sliding slots 613, and transverse sliding rods 614 are movably mounted in the two transverse sliding slots 613. The two transverse sliding rods 614 are respectively mounted on the two snap-fit brackets 616. In addition, multiple sound and light alarms 617 are electrically connected with switches 609, and multiple switches 609 are respectively mounted on multiple snap-fit brackets 616.
[0068] Furthermore, an adapter seat 611 is installed on one side of the pull-back bracket 608. Two adapter rods 612 are rotatably mounted on the adapter seat 611, and the two adapter rods 612 are rotatably mounted on two snap-fit brackets 616. It should be noted that, in this embodiment of the invention, the pull-back bracket 608 moves, causing the adapter seat 611 to move, which in turn causes the two snap-fit brackets 616 to move via the two adapter rods 612. The snap-fit brackets 616 slide horizontally in the transverse groove 613 via the transverse rod 614, causing the snap-fit brackets 616 to disengage from the snap-fit groove 615, thereby causing the drive seat 607 to separate from the plug sleeve 602. At the same time, the adapter seat 611 moves to press the switch 609, causing the corresponding audible and visual alarm 617 to sound an alarm. This allows the staff to know in time which battery 1 is damaged during testing and replace it in time, avoiding cascading damage to more batteries 1. Therefore, testing through a mechanical structure can ensure the accuracy of the test results, while not consuming energy and making it more stable to use.
[0069] Please continue to refer to the instruction manual appendix. Figure 3-8 More specifically, in this embodiment of the invention, two linkage shafts 619 are rotatably mounted on the drive rod 618. One linkage shaft 619 is mounted on one side of the heat sink 5, and a drive groove 620 is provided on one side of the lifting frame 601. The other linkage shaft 619 is movably mounted in the drive groove 620.
[0070] Additionally, two lifting slots 604 are provided on the top side of the heat sink 5, and two lifting plates 605 are installed on the bottom side of the lifting frame 601. The bottom side of the lifting plate 605 is movably installed in the lifting slot 604 and a lifting spring 606 is installed thereon. The bottom end of the lifting spring 606 is installed on the inner wall of the bottom side of the lifting slot 604. It should be noted that, in this embodiment of the invention, pulling the throttle 624 drives one push-pull rod 621 to move. The push-pull rod 621 drives another push-pull rod 621 to move through the locking bracket 707, causing the drive rod 618 to rotate on a linkage shaft 619. At the same time, the drive rod 618 drives the lifting frame 601 to move through the other linkage shaft 619, and the linkage shaft 619 slides in the drive slot 620. The lifting frame 601 moves upward in the two lifting slots 604 through the two lifting plates 605.
[0071] More specifically, in this embodiment of the invention, a sliding hole 622 is provided on the drive rod 618, a push-pull rod 621 is rotatably mounted with a push-pull shaft 623, and the push-pull shaft 623 is movably mounted in the sliding hole 622; a handle 624 is rotatably mounted on the other push-pull rod 621, and a limiting frame 625 is installed on the outside of the battery box 2, with the handle 624 locked in the limiting frame 625. It should be noted that, in this embodiment of the invention, when it is necessary to test the battery 1, the handle 624 is rotated to disengage from the limiting frame 625, and then the handle 624 is pulled, thereby causing the lifting frame 601 to move, allowing the battery 1 to be tested. At the same time, the push-pull rod 621 drives the drive rod 618 to rotate through the push-pull shaft 623, and the push-pull shaft 623 slides within the sliding hole 622.
[0072] Further, please refer to the appendix to the instruction manual. Figure 3 , Figure 6 and Figure 8-10 The present invention provides a high-efficiency heat dissipation battery, wherein a reset rod 703 is installed at each of the four corners of the bottom side of the support plate 701, and an installation sleeve 702 is sleeved on the reset rod 703, and the installation sleeve 702 is installed on the bottom side of the battery box 2.
[0073] Additionally, a return spring 704 is installed on the inner bottom wall of the mounting sleeve 702, with the top end of the return spring 704 mounted on the bottom side of the return rod 703. It should be noted that in this embodiment of the invention, when the electrolyte in the battery 1 decreases, the overall weight of the battery 1 decreases. At this time, under the rebound force of the multiple return springs 704, the four return rods 703 drive the support plate 701 to reset, thereby causing the support plate 701 to move the heat sink 5 upwards. The heat sink 5 no longer presses against the movable frame 706, causing the movable frame 706 to reset and rotate, and driving the locking frame 707 to disengage from the two locking slots 708. This causes the two push-pull rods 621 to disengage, thus freeing the lifting frame 601 from restriction. Therefore, under the rebound force of the two lifting springs 606, the lifting frame 601 moves upwards, thereby disconnecting the multiple batteries 1 and preventing chain damage between the multiple batteries 1.
[0074] More specifically, in this embodiment of the invention, the mounting frame 705 has a mounting groove 714, and a mounting shaft 715 is rotatably mounted in the mounting groove 714. The mounting shaft 715 is mounted on the movable frame 706. Furthermore, a spring-loaded torsion spring 716 is sleeved on the mounting shaft 715. One end of the spring-loaded torsion spring 716 is mounted on the inner wall of the mounting groove 714, and the other end is mounted on the mounting shaft 715. It should be noted that in this embodiment of the invention, when the movable frame 706 is not compressed, the spring-loaded torsion spring 716 causes the movable frame 706 to flip, and the movable frame 706 rotates within the mounting groove 714 via the mounting shaft 715, causing the movable frame 706 to return to its original position.
[0075] Please continue to refer to the instruction manual appendix. Figure 3 , Figure 6 and Figure 8-10 More specifically, in this embodiment of the invention, two connectors 709 are installed on the battery box 2, two adapter cables 603 are respectively connected to the two connectors 709, a connecting sleeve 710 is sleeved on the two connectors 709, and two power cables 4 are connected to the connecting sleeve 710.
[0076] Additionally, a separating rod 711 is movably mounted on the battery box 2, and the separating rod 711 is mounted on the connecting sleeve 710. A separating frame 712 is mounted on one side of the movable frame 706, and a separating shaft 713 is rotatably mounted on the separating rod 711, with the separating shaft 713 movably mounted within the separating frame 712. It should be noted that in this embodiment of the invention, when the heat sink 5 moves upward, causing the movable frame 706 to no longer be pressed down, the movable frame 706 rotates, causing the separating frame 712 to rotate. The separating frame 712, through the separating shaft 713, drives the separating rod 711 to move. Simultaneously, the separating shaft 713 slides within the separating frame 712. The movement of the separating rod 711 causes the connecting sleeve 710 to disengage from the two connectors 709, thereby disconnecting the battery 1 from the power cable 4 and preventing damage to the battery 1 from causing a chain reaction of damage to electrical appliances.
[0077] Further, please refer to the appendix to the instruction manual. Figure 11-14 The present invention provides a high-efficiency heat dissipation battery. The heat dissipation box 5 is hollow and has multiple air inlets 805. The cold air blown out by the fan 801 is blown towards the battery 1 through the multiple air inlets 805. The battery 1 is provided with pads 806 around its perimeter and the pads 806 are installed on the inner wall of the heat dissipation box 5.
[0078] In addition, a flip seat 814 is installed on the inner wall of the transfer box 802. A rotary sealing plate 813 is rotatably installed on the flip seat 814. The rotary sealing plate 813 is used to seal the air intake pipe 803. A support shaft 815 is provided inside the flip seat 814. Both ends of the support shaft 815 are installed on the rotary sealing plate 813. A reset torsion spring 816 is sleeved on the support shaft 815. One end of the reset torsion spring 816 is installed on the support shaft 815, and the other end of the support shaft 815 is installed on the flip seat 814. It should be noted that, in this embodiment of the invention, when the battery 1 is in use, the fan 801 is started, so that air enters the transfer box 802 through the air inlet pipe 803 and blows open the rotary sealing plate 813. The rotary sealing plate 813 rotates in the flip seat 814 through the support shaft 815 and drives the reset torsion spring 816 to be stressed. At the same time, the air enters the heat dissipation box 5 through the connecting pipe 804 and is blown out through multiple air inlets 805 to actively dissipate heat from the battery 1. Therefore, the heat dissipation effect of the battery 1 is ensured by the active heat dissipation method.
[0079] Please continue to refer to the instruction manual appendix. Figure 11-14 More specifically, in this embodiment of the invention, the cover 9 is provided with an air outlet 809 for air outlet, the top side of the transfer box 802 is movably installed with a lifting rod 807, the top of the lifting rod 807 is installed with a sealing plate 808, and the sealing plate 808 is used to seal the air outlet 809.
[0080] In addition, a lifting ball 810 is installed at the bottom of the lifting rod 807. The lifting ball 810 is in contact with the rotary sealing plate 813. A tension plate 811 is sleeved on the lifting rod 807. A return spring 812 is connected between the tension plate 811 and the transfer box 802. It should be noted that, in this embodiment of the invention, when the rotary sealing plate 813 is blown open, it moves against the lifting ball 810. The lifting ball 810 drives the sealing plate 808 to move through the lifting rod 807, thereby allowing the air outlet 809 to leak out, facilitating the discharge of hot air. At the same time, the movement of the lifting rod 807 drives the stretching plate 811 to move, and causes the return spring 812 to be stretched by force. Similarly, when the fan 801 is turned off, under the rebound force of the return torsion spring 816, the rotary sealing plate 813 closes the air inlet pipe 803, and the sealing plate 808 closes the air outlet 809, ensuring the airtightness of the battery box 2 and preventing dust or impurities such as insects from entering and causing damage to the battery 1.
[0081] In summary, the working principle of the high-efficiency heat dissipation battery provided in this embodiment of the invention is as follows:
[0082] During long-term use of the battery 1, due to environmental factors or the battery itself, the terminals 3 are prone to rusting, causing the terminals 3 and the adapter cable 603 to become stuck together. If not dealt with in time, this can easily damage the battery 1. Since the batteries 1 are often used in groups and installed in the battery box 2, they are not easily detected. Therefore, regular inspection is essential during the use of the battery 1. Specifically, the throttle 624 is turned to disengage from the limiting frame 625, and then the throttle 624 is pulled to move one push-pull rod 621. The push-pull rod 621 moves another push-pull rod 621 through the locking frame 707, so that the push-pull rod 621 drives the drive rod 618 to rotate through the push-pull shaft 623. At the same time, the push-pull shaft 623 slides in the sliding hole 622. The drive rod 618 rotates on a linkage shaft 619, and the drive rod 618 drives the lifting frame 601 to move through another linkage shaft 619. At the same time, the linkage shaft 619 slides in the drive groove 620.
[0083] Furthermore, the lifting frame 601 moves upward within the two lifting slots 604 via two lifting plates 605, causing the two lifting springs 606 to stretch. The movement of the lifting frame 601 drives the movement of multiple pull-back frames 608, which in turn drives the movement of multiple plug-in sleeves 602. If the pole post 3 is rusted, the plug-in sleeve 602 will solidify with the pole post 3, preventing the plug-in sleeve 602 from moving. This causes the pull-back frame 608 to move within the drive seat 607, causing the support spring 610 to contract. Simultaneously, the movement of the pull-back frame 608 drives the adapter seat 611 to move, which in turn drives the two locking frames 616 to move via two adapter rods 612, thus locking the connection. The frame 616 slides horizontally in the transverse groove 613 via the transverse rod 614, causing the snap-fit frame 616 to disengage from the snap-fit groove 615, thereby separating the drive seat 607 from the plug sleeve 602; at the same time, the adapter seat 611 moves the squeeze switch 609, causing the corresponding audible and visual alarm 617 to sound an alarm, so that the staff can know in time which battery 1 is damaged during the inspection, and can replace it in time to avoid more batteries 1 being damaged in a chain reaction. Moreover, the mechanical structure for inspection can ensure the accuracy of the inspection results, and does not consume energy, making it more stable in use.
[0084] Additionally, it should be noted that during long-term use of battery 1, the electrolyte inside battery 1 may be depleted due to its own wear and tear, its quality, or other unforeseen circumstances. If the low electrolyte level in battery 1 is not detected in time, battery 1 is prone to problems such as power outages, voltage instability, or even bulging and damage. Therefore, when the electrolyte level in battery 1 decreases, the overall weight of battery 1 decreases. At this time, under the rebound force of multiple return springs 704, the four return rods 703 drive the support plate 701 to return to its original position, which in turn causes the support plate 701 to move the heat sink 5 upward, thus relieving the pressure on the movable frame 706. Then, under the rebound force of the return torsion spring 716, the movable frame 706 flips over. 706 rotates within the mounting groove 714 via the mounting shaft 715. The rotation of the movable frame 706 causes the locking frame 707 to disengage from the two locking grooves 708, thereby disengaging the two push-pull rods 621. This allows the lifting frame 601 to be unrestricted, and under the rebound force of the two lifting springs 606, the lifting frame 601 moves upward, thereby disconnecting multiple batteries 1. In addition, the rotation of the movable frame 706 causes the separation frame 712 to rotate. The separation frame 712 drives the separation rod 711 to move via the separation shaft 713. At the same time, the separation shaft 713 slides within the separation frame 712, and the movement of the separation rod 711 causes the connecting sleeve 710 to disengage from the two connectors 709, thereby disconnecting the battery 1 from the power cable 4 and preventing damage to the battery 1 from causing a chain reaction of damage to electrical appliances.
[0085] Furthermore, it should be noted that when battery 1 is in use, the fan 801 is started, allowing air to enter the transfer box 802 through the air intake pipe 803 and force open the rotary sealing plate 813. The rotary sealing plate 813 rotates within the tilting seat 814 via the support shaft 815, causing the reset torsion spring 816 to be stressed. Simultaneously, air enters the heat dissipation box 5 through the connecting pipe 804 and is blown out through multiple air intake holes 805, actively cooling battery 1. In addition, the rotation of the rotary sealing plate 813 pushes the lifting ball 810 to move, and the lifting ball 810... The lifting rod 807 moves the sealing plate 808, allowing the vent 809 to leak out and facilitate the discharge of hot air. At the same time, the movement of the lifting rod 807 moves the stretching plate 811, which in turn stretches the return spring 812. Similarly, when the fan 801 is turned off, the return force of the return torsion spring 816 causes the rotary sealing plate 813 to close the air inlet pipe 803, while the sealing plate 808 closes the vent 809, ensuring the airtightness of the battery box 2 and preventing dust or insects from entering and damaging the battery 1.
[0086] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A high-efficiency heat dissipation storage battery, characterized in that, It includes multiple batteries and a battery box, with the multiple batteries located inside the battery box. A box cover is installed on the top side of the battery box, and two power cables are provided on one side of the battery box. Two terminals for power connection are installed on the top side of the batteries. A heat dissipation box is provided inside the battery box, and the multiple batteries are plugged into the heat dissipation box. It also includes a lifting detection mechanism, which is installed inside the battery box. Multiple batteries are connected to the lifting detection mechanism, which lifts the terminals to perform detection. The lifting detection mechanism includes a lifting frame, which is movably installed on the heat sink. Multiple plug-in sleeves are movably installed on the bottom side of the lifting frame, and the multiple plug-in sleeves are respectively plugged into multiple terminals. A drive rod is rotatably installed on one side of the heat sink, and the drive rod is movably installed on the lifting frame. Two push-pull rods are provided inside the battery box, and the two push-pull rods are movably connected. One push-pull rod is movably installed on the drive rod, and the other push-pull rod is movably installed on the battery box. Two adapter cables are connected to the multiple terminals. It also includes an active disconnect mechanism, which is installed inside the battery box and is used to disconnect the connection between the power cable and the battery. The active disconnect mechanism includes a support plate, a heat sink is installed inside the support plate, the support plate is movably installed inside the battery box, a mounting bracket is installed on the bottom side of the battery box, a movable bracket is movably installed on one side of the mounting bracket, the heat sink is in contact with the movable bracket, a locking bracket is slidably installed on the movable bracket, and locking grooves are provided on the two push-pull rods, with the locking bracket inserted into the two locking grooves. It also includes a heat dissipation and ventilation mechanism, which is installed inside the battery box and connected to the heat dissipation box. The heat dissipation and ventilation mechanism dissipates heat to the multiple batteries through the heat dissipation box. The heat dissipation and ventilation mechanism includes a fan, an air inlet pipe connected to the fan, a transfer box installed at the end of the air inlet pipe, and a connecting pipe connecting the transfer box and the heat dissipation box. The lifting detection mechanism also includes multiple drive seats, which are respectively installed on multiple plug-in sleeves. Each drive seat is hollow and has a pull-back frame movably installed on it. The pull-back frame is installed on the lifting frame. A support spring is sleeved on the pull-back bracket. One end of the support spring is installed on the inner wall of the drive seat, and the other end of the support spring is installed on the pull-back bracket. The lifting frame is equipped with multiple audible and visual alarms, which move through the box cover. Both sides of the drive seat are movably mounted with snap-fit brackets, both sides of the plug sleeve are provided with snap-fit slots, the two snap-fit brackets are respectively snapped into the two snap-fit slots, both sides of the drive seat are provided with transverse sliding slots, both transverse sliding slots are movably mounted with transverse sliding rods, and the two transverse sliding rods are respectively mounted on the two snap-fit brackets. Each of the multiple audible and visual alarms is electrically connected to a switch, and the multiple switches are respectively installed on multiple card holders; An adapter seat is installed on one side of the pull-back bracket, and two adapter rods are rotatably mounted on the adapter seat. The two adapter rods are rotatably mounted on the two snap-fit brackets. Two linkage shafts are rotatably mounted on the drive rod. One linkage shaft is mounted on one side of the heat sink. A drive groove is provided on one side of the lifting frame. The other linkage shaft is movably mounted in the drive groove. The top side of the heat sink has two lifting slots, and the bottom side of the lifting frame has two lifting plates. The bottom side of the lifting plates is movably installed in the lifting slots and is equipped with lifting springs. The bottom end of the lifting springs is installed on the bottom inner wall of the lifting slots. The drive rod has a sliding hole, and a push-pull shaft is rotatably mounted on one of the push-pull rods. The push-pull shaft is movably mounted in the sliding hole. Another push-pull rod is rotatably mounted with a handle, and a limiting frame is mounted on the outside of the battery box, with the handle locked inside the limiting frame; A reset rod is installed at each of the four corners of the bottom side of the support plate. An installation sleeve is fitted onto the reset rod, and the installation sleeve is installed on the bottom side of the battery box. A return spring is installed on the bottom inner wall of the mounting sleeve, and the top end of the return spring is installed on the bottom side of the return rod. The mounting frame has a mounting groove, and a mounting shaft is rotatably mounted in the mounting groove. The mounting shaft is mounted on the movable frame. A spring-loaded spring is sleeved on the mounting shaft. One end of the spring-loaded spring is mounted on the inner wall of the mounting groove, and the other end of the spring-loaded spring is mounted on the mounting shaft. The battery box is equipped with two connectors, and two adapter cables are respectively connected to the two connectors. Connecting sleeves are fitted onto the two connectors, and two power cables are connected to the connecting sleeves. A separation rod is movably mounted on the battery box and is installed on the connecting sleeve. A separation frame is installed on one side of the movable frame. A separation shaft is rotatably mounted on the separation rod and is movably installed inside the separation frame.
2. The high-efficiency heat dissipation battery according to claim 1, characterized in that, The heat sink is hollow and has multiple air inlets. The cold air blown out by the fan is directed to the battery through the multiple air inlets. The battery is surrounded by pads, which are installed on the inner wall of the heat sink. A flipping seat is installed on the inner wall of the transfer box. A rotary sealing plate is rotatably installed on the flipping seat. The rotary sealing plate is used to seal the air intake pipe. A support shaft is provided inside the flipping seat. Both ends of the support shaft are installed on the rotary sealing plate. A return torsion spring is sleeved on the support shaft. One end of the return torsion spring is installed on the support shaft, and the other end of the support shaft is installed on the flipping seat.
3. The high-efficiency heat dissipation storage battery according to claim 2, characterized in that, The box cover has an air vent for air outlet, and a lifting rod is movably installed on the top side of the transfer box. A sealing plate is installed at the top of the lifting rod, and the sealing plate is used to close the air vent. A lifting ball is installed at the bottom end of the lifting rod, and the lifting ball contacts the rotary sealing plate. A tension plate is sleeved on the lifting rod, and a return spring is connected between the tension plate and the transfer box.
Citation Information
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