Indoor multifunctional energy storage power supply with emergency lighting function
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-12-16
- Publication Date
- 2026-08-11
AI Technical Summary
但是随着新能源发电的快速发展,电网中火电机组和燃气轮机组的比例逐年下降,未来电网调峰能力下降,电网的稳定性和安全性充满挑战
[0020]1、当电线接入到控制箱的线路接口内时,使连接线接入家庭电路的同时,通过支线与储能电源箱连接,将储能电源并联入主电路中,使得主电路在运行的同时能够自动对储能电源进行补充,让储能电源的电量能够始终保持充盈。
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Figure CN115833338B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of energy storage technology, specifically to an indoor multi-functional energy storage power supply with emergency lighting capabilities. Background Technology
[0002] With rapid urban development and increasing population density, urban power supply is experiencing rapid demand growth, increasingly stringent reliability requirements, and a continuously widening peak-valley difference. This widening peak-valley difference poses greater challenges to power generation units and power stability. Typically, the power grid relies on thermal power units and gas turbine units for peak shaving, increasing output during peak hours and decreasing output during off-peak hours. However, with the rapid development of new energy power generation, the proportion of thermal power units and gas turbine units in the power grid is declining year by year. This will reduce the grid's peak-shaving capacity in the future, posing significant challenges to the grid's stability and security.
[0003] After existing energy storage power supplies are connected to household circuits, they need to be manually charged regularly to ensure normal operation in the event of a sudden power outage. Regular power level checks are also required to ensure emergency use. Furthermore, in the event of a power outage, the energy storage power supply still needs to be manually controlled to provide emergency lighting, which is cumbersome and inconvenient to use. Summary of the Invention
[0004] The purpose of this invention is to provide an indoor multifunctional energy storage power supply with emergency lighting function to solve the problems mentioned in the background art.
[0005] To solve the above-mentioned technical problems, the present invention provides the following technical solution: an indoor multi-functional energy storage power supply with emergency lighting function. This indoor multi-functional energy storage power supply includes a control box, with an energy storage power supply detachably connected to the control box. The control box has two line interfaces, which are connected by connecting lines and connected to electrical wires. The control box also has two connection interfaces, which are connected to the interface of the energy storage power supply. These connection interfaces and connecting lines are connected by branch lines, forming a parallel circuit between the energy storage power supply and the main circuit. When an electrical wire is connected to a line interface in the control box, the connecting line connects to the household circuit and simultaneously connects to the energy storage power supply box via a branch line, connecting the energy storage power supply in parallel to the main circuit. This allows the main circuit to automatically replenish the energy storage power supply while it is running, ensuring the energy storage power supply remains fully charged. The control box contains a switching component and a lighting component. The switching component works in conjunction with the lighting component. When a sudden power outage occurs indoors, the switching component can directly control the operation of the lighting component, enabling the lighting component to automatically provide emergency lighting during a power outage.
[0006] As a preferred technical solution, the switching component includes an electromagnet, a fixed rod, a fixed block, a movable plate, a first magnetic block, and a first support spring;
[0007] An electromagnet is fixedly installed on the connecting line. Four fixed rods are fixedly installed inside the control box. Fixed blocks are fixedly installed on the ends of the four fixed rods near the electromagnets. A movable plate is slidably installed on the fixed rods. The movable plate is located directly above the electromagnet. A movable hole is opened on the movable plate. The fixed rods pass through the movable hole and are in a sliding fit. A first magnetic block is fixedly installed on the side of the movable plate near the electromagnet. When the electromagnet is energized, it cooperates with the first magnetic block. A first support spring is sleeved on the fixed rod. The upper end of the first support spring is connected to the side of the movable plate where the first magnetic block is installed. The lower end of the first support spring is connected to the side of the fixed block where the fixed rod is connected. When the connecting line is connected to the household circuit, the current in the connecting line passes through the electromagnet. Because the movable hole and the fixed rod are in a sliding fit, the movable plate can move longitudinally on the fixed rod. The electromagnet generates magnetic force, which can attract the first magnetic block to move downward and compress the first support spring. When the household circuit is de-energized, the electromagnet fails, and the movable plate can move upward under the elastic force of the first support spring.
[0008] As a preferred technical solution, the lighting component includes a terminal block, a power supply interface, wires, a control board, a wiring port, heat dissipation holes, and a lighting lamp;
[0009] Two terminals are fixedly installed on the side of the movable plate away from the first magnetic block. The energy storage power supply is provided with a power supply interface. The terminals are connected to the power supply interface via wires. A control board is fixedly installed inside the control box. The control board is located directly above the movable plate. The control board is provided with two wiring ports. The terminals can be inserted into the wiring ports. The control box has heat dissipation holes. A lighting lamp is installed in the heat dissipation holes. The lighting lamp is electrically connected to the control board. The lighting lamp, control board, terminals, wires, and energy storage power supply form a closed-loop circuit. When the household circuit is interrupted, the electromagnet fails. The movable plate can be driven by the elastic force of the first support spring to insert the terminals into the wiring ports of the control board, so that the energy storage power supply can supply power to the control board through the wires. This allows the control board to control the operation of the lighting lamp, thereby completing automatic emergency lighting in the event of a power outage.
[0010] As a preferred technical solution, the control box is equipped with a heat dissipation component and a housing component, and the heat dissipation component and the housing component cooperate with each other.
[0011] As a preferred technical solution, the heat dissipation assembly includes a second magnetic block, a rotating shaft, a baffle, a semi-circular ring, a moving block, a connecting rod, and a third magnetic block;
[0012] A second magnetic block is fixedly installed on the side wall of the movable plate near the heat dissipation hole. A rotating shaft is fixedly installed inside the heat dissipation hole, and a baffle is rotatably installed on the rotating shaft. The baffle has a rotating hole, through which the rotating shaft passes, and the rotating shaft and the rotating hole are in a rotatable fit. Two semi-circular rings are fixedly installed at the port of the heat dissipation hole inside the control box. A movable block is slidably fitted on the two semi-circular rings, and a sliding hole is opened on the movable block. The semi-circular ring passes through the sliding hole. The baffle and the movable block are connected by a connecting rod. A third magnetic block is fixedly installed on the movable block, and the second magnetic block and the third magnetic block repel each other. It can use the repulsive force between the magnetic blocks as the driving force. When the connecting wire is connected to the household circuit, the electromagnet attracts the first magnetic block to move down. Because the second and third magnetic blocks repel each other, and the moving block can move on the semi-circular ring through the sliding hole, the moving plate can drive the second magnetic block to move down. The third magnetic block can drive the moving block to move clockwise along the semi-circular ring under the action of repulsion. During the movement, the moving block can drive the baffle to rotate clockwise around the rotating shaft through the connecting rod, thereby opening the heat dissipation hole to facilitate heat dissipation inside the control box without the need for an additional drive device to drive the heat dissipation component.
[0013] As a preferred technical solution, the connecting rod is a telescopic rod, and when the connecting rod and the rotating shaft are at the same horizontal height, the length of the connecting rod is less than the horizontal distance between the rotating shaft and the moving block. Since the connecting rod can stretch to the corresponding length as the moving block moves, the baffle can be flipped under the action of the connecting rod.
[0014] As a preferred technical solution, a counterweight is fixedly installed on the bottom side of the baffle away from the connecting rod. The upper part of the counterweight is a quarter-circular arc surface, which facilitates the longitudinal movement of the mounting plate.
[0015] As a preferred technical solution, the sliding hole is provided with a rolling groove, and a ball is rolled and embedded in the rolling groove. The ball is in point contact with the semi-circular ring. Since the ball can roll in the rolling groove, it can reduce the moving friction of the moving block on the semi-circular ring, which facilitates the movement of the moving block on the semi-circular ring.
[0016] As a preferred technical solution, the receiving assembly includes a cavity, a through hole, a sliding plate, and a mounting plate;
[0017] The upper part of the inner wall of the heat dissipation hole has a cavity. A through hole is formed on the inner wall of the cavity near the heat dissipation hole. A sliding plate is slidably installed in the cavity. A mounting plate is fixedly installed on the side of the sliding plate near the through hole. The mounting plate passes through the through hole and is slidably fitted with the through hole. The end of the mounting plate away from the sliding plate has a semi-circular structure. A mounting groove is formed on the side of the mounting plate away from the connecting rod. A lighting lamp is fixedly installed in the mounting groove. When the baffle is in a vertical state, the semi-circular end of the mounting plate matches the quarter-circle arc surface of the counterweight. The rotation of the baffle can be used as the running power of the housing assembly. When the baffle rotates clockwise, the sliding plate can slide in the cavity, and the mounting plate can slide in the through hole. During the rotation, the baffle can lift the mounting plate and move it into the cavity, which facilitates the opening of the heat dissipation hole. When the power is cut off, the baffle instantly falls to a vertical state under the gravity of the counterweight, so that the mounting plate can fall from the through hole, which facilitates the lighting lamp.
[0018] As a preferred technical solution, the mounting plate has a rotating groove at its semi-circular end, and a rotating column is rotatably fitted in the rotating groove. The rotating column is in line contact with the quarter-circular arc surface of the counterweight. Since the rotating column can rotate in the rotating groove, the friction force of the mounting plate moving along the baffle can be reduced.
[0019] Compared with the prior art, the beneficial effects achieved by the present invention are:
[0020] 1. When the wire is connected to the line interface of the control box, the connecting wire is connected to the household circuit, and at the same time, it is connected to the energy storage power box through the branch line, so that the energy storage power is connected in parallel to the main circuit. This allows the main circuit to automatically replenish the energy storage power while it is running, so that the energy storage power can always be kept full.
[0021] 2. Equipped with switching and lighting components, when the household circuit is interrupted, the electromagnet fails, and the movable plate can be driven by the elastic force of the first support spring to insert the terminal into the wiring port of the control board, so that the energy storage power can supply power to the control board through the wire, which facilitates the control board to control the operation of the lighting, thereby completing automatic emergency lighting in the event of a power outage.
[0022] 3. Equipped with a heat dissipation component, when the connection wire is connected to the household circuit, during the process of the electromagnet attracting the first magnetic block to move downward, the second and third magnetic blocks repel each other, and the moving block can move on the semi-circular ring through the sliding hole, so that the moving plate can drive the second magnetic block to move downward. Under the action of repulsion, the third magnetic block can drive the moving block to move clockwise along the semi-circular ring. During the movement, the moving block can drive the baffle to rotate clockwise around the rotating shaft through the connecting rod, thereby opening the heat dissipation hole to facilitate heat dissipation inside the control box, without the need for an additional drive device to drive the heat dissipation component.
[0023] 4. Equipped with a receiving component, when the baffle rotates clockwise, the sliding plate can slide in the cavity, and the mounting plate can slide in the through hole. During the rotation, the baffle can lift the mounting plate and move it into the cavity, facilitating the opening of the heat dissipation holes. When the power is cut off, the baffle instantly falls to a vertical position under the gravity of the counterweight, allowing the mounting plate to fall through the through hole, facilitating the lighting lamp to provide illumination. It can be adjusted accordingly based on the real-time circuit conditions. Attached Figure Description
[0024] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used in conjunction with embodiments of the invention to explain the invention and do not constitute a limitation thereof. In the drawings:
[0025] Figure 1 This is a schematic diagram of the main structure of the present invention;
[0026] Figure 2 This is a schematic diagram of the front view sectional structure of the present invention;
[0027] Figure 3 This is a schematic diagram of the left-side cross-sectional structure of the present invention;
[0028] Figure 4 yes Figure 2 A magnified structural diagram at point a;
[0029] Figure 5 yes Figure 4 A magnified structural diagram at point b;
[0030] Figure 6 This is a schematic diagram of the lighting component switching component structure;
[0031] Figure 7 This is a schematic diagram of the heat dissipation component structure.
[0032] In the diagram: 1. Control box; 2. Energy storage power supply; 3. Line interface; 4. Connecting wire; 5. Electromagnet; 6. Branch line; 7. Connecting interface; 8. Wire;
[0033] 9. Lighting assembly; 901. Fixing rod; 902. Fixing block; 903. Moving plate; 904. Moving hole; 905. First magnet; 906. First support spring; 907. Terminal block; 908. Power supply interface; 909. Wire; 910. Control board; 911. Wiring port; 912. Heat dissipation hole; 913. Lighting lamp;
[0034] 10. Heat dissipation assembly; 1001. Second magnet; 1002. Rotating shaft; 1003. Baffle; 1004. Rotating hole; 1005. Semicircular ring; 1006. Moving block; 1007. Sliding hole; 1008. Connecting rod; 1009. Third magnet; 1010. Counterweight; 1011. Groove; 1012. Ball bearing;
[0035] 11. Receiving assembly; 1101. Cavity; 1102. Through hole; 1103. Slide plate; 1104. Mounting plate; 1105. Mounting slot; 1106. Rotary slot; 1107. Rotary column. Detailed Implementation
[0036] 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. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0037] Example: Figures 1-7 As shown, the present invention provides the following technical solution: an indoor multi-functional energy storage power supply with emergency lighting function, comprising a control box 1, with an energy storage power supply 2 detachably connected to the control box 1. The control box 1 has two line interfaces 3, which are connected by a connecting cable 4 and connected to an electric wire 8. The control box 1 also has two connection interfaces 7, which are connected to the interfaces of the energy storage power supply 2. The two connection interfaces 7 are connected to the connecting cable 4 via a branch line 6, enabling the energy storage power supply 2 to... The main circuit forms a parallel circuit. When the wire 8 is connected to the line interface 3 of the control box 1, the connecting wire 4 is connected to the household circuit, and at the same time, it is connected to the energy storage power supply box 2 through the branch line 6, so that the energy storage power supply 2 is connected in parallel to the main circuit. This allows the main circuit to automatically replenish the energy storage power supply while it is running, so that the energy storage power supply 2 can always be fully charged. The control box 1 is equipped with a switching component and a lighting component 9. The switching component works in conjunction with the lighting component 9. When the power is suddenly cut off indoors, the switching component can directly control the operation of the lighting component 9, so that the lighting component 9 can automatically provide emergency lighting when the power is cut off.
[0038] like Figures 2-3 and Figure 6 As shown, the switching assembly includes an electromagnet 5, a fixed rod 901, a fixed block 902, a movable plate 903, a first magnetic block 905, and a first support spring 906;
[0039] An electromagnet 5 is fixedly installed on the connecting line 4. Four fixing rods 901 are fixedly installed inside the control box 1. Fixing blocks 902 are fixedly installed on the ends of the four fixing rods 901 near the electromagnet 5. A movable plate 903 is slidably installed on the fixing rods 901. The movable plate 903 is located directly above the electromagnet 5. A movable hole 904 is opened on the movable plate 903. The fixing rods 901 pass through the movable hole 904 and are in a sliding fit. A first magnetic block 905 is fixedly installed on the side of the movable plate 903 near the electromagnet 5. When the electromagnet 5 is energized, it cooperates with the first magnetic block 905. A first support spring 906 is sleeved on the fixing rods 901. The upper end of the first support spring 906 is connected to the side of the movable plate 903 where the first magnet 905 is installed, and the lower end of the first support spring 906 is connected to the side of the fixed block 902 where the fixed rod 901 is connected. When the connecting wire 4 is connected to the household circuit, the current in the connecting wire 4 passes through the electromagnet 5. Since the movable hole 904 and the fixed rod 901 are in sliding fit, the movable plate 903 can move longitudinally on the fixed rod 901. The electromagnet 5 generates a magnetic force that can attract the first magnet 905 to move downward and compress the first support spring 906. When the household circuit is de-energized, the electromagnet 5 fails, and the movable plate 903 can move upward under the elastic force of the first support spring 906.
[0040] like Figures 2-3 As shown, the lighting assembly 9 includes a terminal block 907, a power supply interface 908, a wire 909, a control board 910, a wiring port 911, a heat dissipation hole 912, and a lighting lamp 913;
[0041] Two terminals 907 are fixedly installed on the side of the movable plate 903 away from the first magnetic block 905. The energy storage power supply 2 is provided with a power supply interface 908. The terminals 907 and the power supply interface 908 are connected by wires 909. A control board 910 is fixedly installed inside the control box 1, located directly above the movable plate 903. The control board 910 has two wiring ports 911, and the terminals 907 can be inserted into the wiring ports 911. A heat dissipation hole 912 is provided on the control box 1, and lighting is installed within the heat dissipation hole 912. The lamp 913 is electrically connected to the control board 910. The lamp 913, control board 910, terminal 907, wire 909, and energy storage power supply 2 form a closed-loop circuit. When the household circuit is interrupted, the electromagnet 5 fails, and the movable plate 903 can drive the terminal 907 to be inserted into the terminal 911 of the control board 910 under the elastic force of the first support spring 906. This allows the energy storage power supply 2 to supply power to the control board 910 through the wire 909, which facilitates the control board 910 to control the operation of the lamp 913, thereby completing automatic emergency lighting in the event of a power outage.
[0042] The control box 1 is equipped with a heat dissipation component 10 and a housing component 11, and the heat dissipation component 10 and the housing component 11 cooperate with each other.
[0043] like Figures 2-4 and Figure 7 As shown, the heat dissipation assembly 10 includes a second magnetic block 1001, a rotating shaft 1002, a baffle 1003, a semi-circular ring 1005, a moving block 1006, a connecting rod 1008, and a third magnetic block 1009.
[0044] A second magnetic block 1001 is fixedly installed on the side wall of the movable plate 903 near the heat dissipation hole 912. A rotating shaft 1002 is fixedly installed inside the heat dissipation hole 912. A baffle 1003 is rotatably installed on the rotating shaft 1002. A rotating hole 1004 is provided on the baffle 1003. The rotating shaft 1002 passes through the rotating hole 1004, and the rotating shaft 1002 and the rotating hole 1004 are rotatably engaged. Two semi-circular rings 1005 are fixedly installed at the port of the heat dissipation hole 912 located inside the control box 1. A movable block 1006 is slidably fitted on the two semi-circular rings 1005. A sliding hole 1007 is provided on the movable block 1006, and the semi-circular rings 1005 pass through the sliding hole 1007. The baffle 1003 and the movable block 1006 are connected by a connecting rod 1008. A third magnetic block 1009 is fixedly installed on the movable block 1006. The second magnetic block 1001 and the third magnetic block 1009 repel each other, and the repulsive force between the magnetic blocks can be used as a driving force. When the connecting wire 4 is connected to the household circuit, the electromagnet 5 moves and attracts the first magnetic block 905 to move down. Since the second magnetic block 1001 and the third magnetic block 1009 repel each other, and the moving block 1006 can move on the semi-circular ring 1005 through the sliding hole 1007, the moving plate 903 can drive the second magnetic block 1001 to move down. The third magnetic block 1009 can drive the moving block 1006 to move clockwise along the semi-circular ring 1005 under the action of repulsive force. During the movement, the moving block 1006 can drive the baffle 1003 to rotate clockwise around the rotating shaft 1002 through the connecting rod 1008, thereby opening the heat dissipation hole 912 to facilitate heat dissipation inside the control box 1 without the need for an additional driving device to drive the heat dissipation component 10.
[0045] The connecting rod 1008 is a telescopic rod, and when the connecting rod 1008 and the rotating shaft 1002 are at the same horizontal height, the length of the connecting rod 1008 is less than the horizontal distance between the rotating shaft 1002 and the moving block 1006. Since the connecting rod 1008 can stretch to the corresponding length as the moving block 1006 moves, the baffle 1003 can be flipped under the drive of the connecting rod.
[0046] A counterweight 1010 is fixedly installed on the bottom side of the baffle 1003 away from the connecting rod 1008. The upper part of the counterweight 1010 is a quarter-circular arc surface, which facilitates the longitudinal movement of the mounting plate 1104.
[0047] The sliding hole 1007 is provided with a rolling groove 1011, and a ball 1012 is rolled and embedded in the rolling groove 1011. The ball 1012 is in point contact with the semi-circular ring 1005. Since the ball 1012 can roll in the rolling groove 1011, it can reduce the moving friction of the moving block 1006 on the semi-circular ring 1005, which facilitates the movement of the moving block 1006 on the semi-circular ring 1005.
[0048] like Figure 2 , Figures 4-5 As shown, the receiving assembly 11 includes a cavity 1101, a through hole 1102, a sliding plate 1103, and a mounting plate 1104;
[0049] A cavity 1101 is formed on the upper part of the inner wall of the heat dissipation hole 912. A through hole 1102 is formed on the inner wall of the cavity 1101 near the heat dissipation hole 912. A sliding plate 1103 is slidably installed in the cavity 1101. A mounting plate 1104 is fixedly installed on the side of the sliding plate 1103 near the through hole 1102. The mounting plate 1104 passes through the through hole 1102 and is slidably fitted with the through hole 1102. The end of the mounting plate 1104 away from the sliding plate 1103 has a semi-circular structure. A mounting groove 1105 is formed on the side of the mounting plate 1104 away from the connecting rod 1008. A lighting lamp 913 is fixedly installed in the mounting groove 1105. The baffle 1003 is vertically... In the upright state, the semi-circular end of the mounting plate 1104 matches the quarter-circular arc surface of the counterweight 1010, and the rotation of the baffle 1003 can be used as the running power of the housing assembly 11. When the baffle 1003 rotates clockwise, the mounting plate 1104 can slide in the through hole 1102 because the sliding plate 1103 can slide in the cavity 1101. During the rotation, the baffle 1003 can lift the mounting plate 1104 and move it into the cavity 1101, which facilitates the opening of the heat dissipation hole 912. When the power is cut off, the baffle 1003 falls to the vertical state instantly under the gravity of the counterweight 1010, so that the mounting plate 1104 can fall from the through hole 1102, which facilitates the lighting lamp 913 to provide illumination.
[0050] The mounting plate 1104 has a rotating groove 1106 at its semi-circular end. A rotating column 1107 is rotatably fitted in the rotating groove 1106. The rotating column 1107 is in line contact with the quarter-circular arc surface of the counterweight 1010. Since the rotating column 1107 can rotate in the rotating groove 1106, the friction force of the mounting plate 1104 moving along the baffle 1003 can be reduced.
[0051] The working principle of this invention is as follows: First, when the wire 8 is connected to the line interface 3 of the control box 1, the connecting wire 4 is connected to the household circuit, and at the same time, it is connected to the energy storage power supply box 2 through the branch line 6, so that the energy storage power supply 2 is connected in parallel to the main circuit. This allows the main circuit to automatically replenish the energy storage power supply while it is running, so that the energy storage power supply 2 can always keep its power supply full. When the household circuit is de-energized, the electromagnet 5 fails, and the moving plate 903 can drive the terminal 907 to be inserted into the terminal 911 of the control board 910 under the elastic force of the first support spring 906. This allows the energy storage power supply 2 to supply power to the control board 910 through the wire 909, so that the control board 910 can control the operation of the lighting lamp 913, thereby completing automatic emergency lighting in the event of a power outage.
[0052] Then, when the connecting wire 4 is connected to the household circuit, the electromagnet 5 operates to attract the first magnetic block 905 to move downward. As the second magnetic block 1001 and the third magnetic block 1009 repel each other, and the moving block 1006 can move on the semi-circular ring 1005 through the sliding hole 1007, the moving plate 903 can drive the second magnetic block 1001 to move downward. The third magnetic block 1009 can drive the moving block 1006 to move clockwise along the semi-circular ring 1005 under the action of repulsion. During the movement, the moving block 1006 can drive the baffle 1003 to rotate clockwise around the rotating shaft 1002 through the connecting rod 1008, thereby opening the heat dissipation hole 912 to facilitate heat dissipation inside the control box 1 without the need for an additional drive device to drive the heat dissipation component 10.
[0053] Finally, when the baffle 1003 rotates clockwise, the slide plate 1103 can slide in the cavity 1101, and the mounting plate 1104 can slide in the through hole 1102. During the rotation, the baffle 1003 can lift the mounting plate 1104 and move it into the cavity 1101, which facilitates the opening of the heat dissipation hole 912. When the power is cut off, the baffle 1003 instantly falls to a vertical position under the gravity of the counterweight 1010, so that the mounting plate 1104 can fall from the through hole 1102, which facilitates the lighting lamp 913 to provide illumination. It can be adjusted accordingly according to the real-time circuit conditions.
[0054] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
Claims
1. An indoor multi-functional energy storage power supply with emergency lighting function, characterized in that: The indoor multi-functional energy storage power supply with emergency lighting function includes a control box (1), and an energy storage power supply (2) is detachably connected to the control box (1). The control box (1) is provided with two line interfaces (3), which are connected by connecting lines (4). The two line interfaces (3) are connected to wires (8). The control box (1) is provided with two connection interfaces (7), which are connected to the interface of the energy storage power supply (2). The two connection interfaces (7) are connected to the connecting lines (4) by branch lines (6), so that the energy storage power supply (2) and the main line form a parallel circuit. The control box (1) is provided with a switching component and a lighting component (9), which cooperate with the lighting component (9). The control box (1) is provided with a heat dissipation component (10) and a housing component (11), and the heat dissipation component (10) and the housing component (11) cooperate with each other; The heat dissipation assembly (10) includes a second magnetic block (1001), a rotating shaft (1002), a baffle (1003), a semi-circular ring (1005), a moving block (1006), a connecting rod (1008), and a third magnetic block (1009). A second magnetic block (1001) is fixedly installed on the side wall of the movable plate (903) near the heat dissipation hole (912). A rotating shaft (1002) is fixedly installed inside the heat dissipation hole (912). A baffle (1003) is rotatably installed on the rotating shaft (1002). A rotating hole (1004) is opened on the baffle (1003). The rotating shaft (1002) passes through the rotating hole (1004), and the rotating shaft (1002) and the rotating hole (1004) are rotatably engaged. The heat dissipation hole (912) is located at the port inside the control box (1). Two semicircular rings (1005) are fixedly installed. A movable block (1006) is slidably sleeved on the two semicircular rings (1005). A sliding hole (1007) is opened on the movable block (1006). The semicircular ring (1005) passes through the sliding hole (1007). The baffle (1003) is connected to the movable block (1006) through a connecting rod (1008). A third magnetic block (1009) is fixedly installed on the movable block (1006). The second magnetic block (1001) and the third magnetic block (1009) repel each other.
2. The indoor multi-functional energy storage power supply with emergency lighting function according to claim 1, characterized in that: The switching assembly includes an electromagnet (5), a fixed rod (901), a fixed block (902), a movable plate (903), a first magnetic block (905), and a first support spring (906). An electromagnet (5) is fixedly installed on the connecting line (4). Four fixing rods (901) are fixedly installed inside the control box (1). Fixing blocks (902) are fixedly installed on the ends of the four fixing rods (901) near the electromagnet (5). A movable plate (903) is slidably installed on the fixing rods (901). The movable plate (903) is located directly above the electromagnet (5). A movable hole (904) is opened on the movable plate (903). The fixing rods (901) pass through the movable hole (904) and are slidable. In conjunction with this, a first magnetic block (905) is fixedly installed on the side of the movable plate (903) near the electromagnet (5). When the electromagnet (5) is energized, it cooperates with the first magnetic block (905). A first support spring (906) is sleeved on the fixed rod (901). The upper end of the first support spring (906) is connected to the side of the movable plate (903) where the first magnetic block (905) is installed, and the lower end of the first support spring (906) is connected to the side of the fixed block (902) where the fixed rod (901) is connected.
3. The indoor multi-functional energy storage power supply with emergency lighting function according to claim 2, characterized in that: The lighting assembly (9) includes a terminal block (907), a power supply interface (908), a wire (909), a control board (910), a wiring port (911), a heat dissipation hole (912), and a lighting lamp (913). Two terminals (907) are fixedly installed on the side of the movable plate (903) away from the first magnetic block (905). The energy storage power supply (2) is provided with a power supply interface (908). The terminals (907) and the power supply interface (908) are connected by wires (909). A control board (910) is fixedly installed in the control box (1). The control board (910) is located directly above the movable plate (903). The control board (910) is provided with two wiring ports (911). The terminals (907) can be inserted into the wiring ports (911). The control box (1) is provided with heat dissipation holes (912). A lighting lamp (913) is provided in the heat dissipation holes (912). The lighting lamp (913) is electrically connected to the control board (910). The lighting lamp (913), the control board (910), the terminals (907), the wires (909), and the energy storage power supply (2) form a closed-loop circuit.
4. The indoor multi-functional energy storage power supply with emergency lighting function according to claim 1, characterized in that: The connecting rod (1008) is a telescopic rod, and when the connecting rod (1008) and the rotating shaft (1002) are at the same horizontal height, the length of the connecting rod (1008) is less than the horizontal distance between the rotating shaft (1002) and the moving block (1006).
5. The indoor multi-functional energy storage power supply with emergency lighting function according to claim 1, characterized in that: A counterweight (1010) is fixedly installed on the bottom side of the baffle (1003) away from the connecting rod (1008), and the upper part of the counterweight (1010) is a quarter-circular arc surface.
6. The indoor multi-functional energy storage power supply with emergency lighting function according to claim 1, characterized in that: The sliding hole (1007) is provided with a rolling groove (1011), and a ball (1012) is rolled and fitted in the rolling groove (1011). The ball (1012) is in point contact with the semi-circular ring (1005).
7. The indoor multi-functional energy storage power supply with emergency lighting function according to claim 1, characterized in that: The receiving assembly (11) includes a cavity (1101), a through hole (1102), a sliding plate (1103), and a mounting plate (1104). A cavity (1101) is formed in the upper part of the inner wall of the heat dissipation hole (912). A through hole (1102) is formed in the inner wall of the cavity (1101) near the heat dissipation hole (912). A sliding plate (1103) is slidably installed in the cavity (1101). A mounting plate (1104) is fixedly installed on the side of the sliding plate (1103) near the through hole (1102). The mounting plate (1104) penetrates the through hole (1102), and the mounting plate (1104) is connected to the through hole (912). The hole (1102) is a sliding fit. The end of the mounting plate (1104) away from the slide plate (1103) is a semi-circular structure. The mounting plate (1104) away from the connecting rod (1008) has a mounting groove (1105). A lighting lamp (913) is fixedly installed in the mounting groove (1105). When the baffle (1003) is in a vertical state, the semi-circular end of the mounting plate (1104) matches the quarter arc surface of the counterweight (1010).
8. The indoor multi-functional energy storage power supply with emergency lighting function according to claim 7, characterized in that: The mounting plate (1104) has a rotating groove (1106) at its semi-circular end. A rotating column (1107) is rotatably fitted inside the rotating groove (1106). The rotating column (1107) is in line contact with the quarter-circular arc surface of the counterweight (1010).
Citation Information
Patent Citations
Fire-fighting emergency lighting and evacuation indication lighting device and control method thereof
CN113958902A