Wall-mounted lifting new energy automobile charging pile
By designing a hanging bracket, an electric telescopic rod, and various support and limiting devices, the problems of cable falling and getting damp in wall-mounted charging piles have been solved, ensuring the safety of the charging gun and the reliability of the charging pile.
Patent Information
- Application Number
- CN202511592144.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-03
- Publication Date
- 2026-02-10
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the extension and retraction of wall-mounted electric vehicle charging stations, the cables on the charging station are prone to falling off, causing damage to the charging gun due to impact.
The system employs a design that integrates a hanging bracket, a square frame, an electric telescopic pole, a sleeve frame, the main body of the charging pile, cables, charging guns, an L-shaped top arc plate, a shaft disc, and springs. The sleeve frame moves the L-shaped top arc plate downwards, while the springs move the shaft disc and double arc plates downwards to support the cables and prevent the charging gun from falling. Simultaneously, a cable support device, using an L-shaped plate, a horizontal plate, and an L-shaped rod in conjunction with a T-shaped arc plate, supports the cables and prevents them from deforming. A moisture-proof device, using an L-shaped wide plate, a U-shaped rod, and a U-shaped frame in conjunction with calcium chloride perforated blocks, absorbs moisture from the air and prevents the charging pile from getting damp.
It effectively prevents the charging gun from falling off the cable and being damaged by impact, prevents cable deformation and shaking damage, prevents moisture from getting inside the charging pile, ensures that the cable does not get tangled, and improves ease of use.
Smart Images

Figure CN121492718A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of new energy vehicle charging piles, in particular to a wall-mounted liftable new energy vehicle charging pile. BACKGROUND
[0002] The new energy vehicle charging pile is a device for providing electric power charging service for electric vehicles or hybrid vehicles, and through an external charging gun, the vehicle is charged, so that the new energy vehicle can supplement the electric energy and prolong the driving distance. The wall-mounted liftable new energy vehicle charging pile adopts a wall-mounted design, does not occupy ground space, and the lifting function allows the charging pile to be retracted when not in use, further saving space, solving the problem of space occupation of traditional charging piles, and being suitable for use in places with limited space.
[0003] The patent No. CN220639589U discloses a wall-mounted electric vehicle charging pile device, which comprises a charging pile body and a charging head. The surface of the charging pile body is fixedly connected with a supporting block, and the inside of the charging pile body is provided with a fixing mechanism. This patent relates to the technical field of charging piles. The wall-mounted electric vehicle charging pile device is provided with a sliding driving rod in the inside of the charging pile body. The sliding of the driving rod will promote the sliding of the driving rack to the outside through the rotation of the driving gear. The sliding of the driving rack will promote the gathering of the fixing block to the surface of the charging head. The friction generated between the surface of the fixing block and the surface of the charging head can realize the fixation of the charging head and the inside of the charging pile body. Then, the fixation of the charging head can be quickly realized through the sliding of the charging head to the inside of the charging pile body. The quick disengagement of the charging head from the surface of the fixing block can be realized by pressing the driving rack, and the replacement of the surface of the fixing block can be realized through sliding, which is convenient and fast.
[0004] However, the current wall-mounted electric vehicle charging pile device has the following problems: during the extension and retraction of the charging pile, the cable on the charging pile is easy to fall down, which may cause the charging gun on the cable to be damaged. Therefore, we propose a wall-mounted liftable new energy vehicle charging pile. SUMMARY
[0005] In view of the deficiencies of the prior art, the present application provides a wall-mounted liftable new energy vehicle charging pile, which solves the problems raised in the background art.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a wall-mounted, liftable new energy vehicle charging pile, comprising: a bracket, wherein a square frame is fixedly installed at the bottom of the bracket, two T-shaped strips are fixed to the inner wall of the square frame, and an electric telescopic rod is fixed to one side of the T-shaped strips that are close to each other; a sleeve frame, which is fitted onto the outer wall of the square frame, and the bottom of the inner end of the sleeve frame is fixedly connected to the bottom surface of the telescopic end of the electric telescopic rod; a charging pile body, which is fixedly installed at the bottom front of the sleeve frame, and a cable is installed on the left side of the charging pile body, with a charging gun fixedly installed at the end of the cable away from the charging pile body; and an L-shaped... The L-shaped top arc plate is fixed to the bottom surface of the sleeve frame. A sliding hole is opened on the bottom surface of the L-shaped top arc plate. A shaft disk is slidably installed on the inner wall of the sliding hole of the L-shaped top arc plate. A spring is provided on the outer wall of the shaft disk and the bottom surface of the L-shaped top arc plate. A double arc plate is fixed on the top surface of the shaft disk. The sleeve frame drives the L-shaped top arc plate to move downward. The L-shaped top arc plate drives the spring to move downward. The spring drives the shaft disk to move downward. The shaft disk drives the double arc plate to move downward. During the downward movement of the cable, the L-shaped top arc plate supports the cable. The cable is wrapped around the outer wall of the L-shaped top arc plate. The double arc plate presses on the cable. The double arc plate clamps the cable by the elastic force of the spring.
[0007] According to the above technical solution, the outer wall of the bracket has four bolt holes. The bracket is used to install on the wall of the underground garage. A concave block is fixed on the front of the bracket. A cover plate is slidably installed on the inner wall of the concave block, and the cover plate covers the bolts on the bracket.
[0008] According to the above technical solution, heat dissipation vents are provided on both the left and right sides of the charging pile body, and an arc block is provided on the front of the L-shaped top arc plate. The arc block of the L-shaped top arc plate is used to prevent the cable from slipping.
[0009] According to the above technical solution, the electric telescopic rod is located in the middle of the inside of the frame, the L-shaped top arc plate is located below the charging pile body, and the cable is located in front of the shaft disc.
[0010] According to the above technical solution, a wire support device is provided on the back of the L-shaped top arc plate. The wire support device is used to support the inside of the cable. A moisture-proof device is provided on the bottom surface of the wire support device. The moisture-proof device is used to dry the air entering the charging pile body.
[0011] According to the above technical solution, the cable support device includes: an L-shaped plate, which is fixedly installed on the back of an L-shaped top arc plate. A horizontal plate is fixed to the top surface of the L-shaped plate, and L-shaped rods are fixed through and fixed to both sides of the bottom surface of the horizontal plate. T-shaped arc plates are fixed to the outer walls of the L-shaped rods respectively. The outer walls of the T-shaped arc plates are in contact with the outer walls of the cable. The horizontal plate drives the L-shaped rods to move downward, and the L-shaped rods drive the T-shaped arc plates to move downward. During the downward movement of the T-shaped arc plates, the T-shaped arc plates support the inside of the cable. The T-shaped arc plates are used to support the inside of the cable.
[0012] According to the above technical solution, two arc-shaped plates are fixed on the top surface of the horizontal plate. Each arc-shaped plate has a through hole on its outer wall. A thin rod is fixed to the inner wall of the through hole of the arc-shaped plate. The thin rod is used to stabilize the two arc-shaped plates. A bottom plate is fixed on the top surface of the arc-shaped plates. The arc-shaped plates drive the thin rod to move downward. The thin rod drives the bottom plate to move downward. During the downward movement of the bottom plate, the bottom plate supports the lower part of the charging pile body. The bottom plate is used to support the lower part of the charging pile body.
[0013] According to the above technical solution, the horizontal plate is located behind the L-shaped plate, the L-shaped rod is located below the L-shaped top arc plate, and the bottom plate is located in front of the sleeve frame.
[0014] According to the above technical solution, the moisture-proof device includes: an L-shaped wide plate, which is fixed to the bottom surface of the base plate and located in front of the charging pile body. A U-shaped rod is fixed to the top surface of the L-shaped wide plate, and a U-shaped frame is fixed to both ends of the U-shaped rod. The U-shaped frames are located on the left and right sides of the charging pile body, and calcium chloride porous blocks are fixed to the inner walls of the U-shaped frames. The U-shaped rod drives the U-shaped frames to move downward, and the U-shaped frames drive the calcium chloride porous blocks to move downward. The calcium chloride porous blocks move with the charging pile body and adsorb humid gases in the air. The calcium chloride porous blocks are used to dry the moisture in the air.
[0015] According to the above technical solution, a connecting plate is fixed to the bottom surface of the L-shaped wide plate, a plate is fixed to the left end of the connecting plate, a rubber concave arc is fixed to the left side of the plate, the rubber concave arc is sleeved on the outer wall of the cable, the connecting plate drives the plate to move downward, the plate drives the rubber concave arc to move downward, and the rubber concave arc is used to limit the cable.
[0016] This invention provides a wall-mounted, liftable charging station for new energy vehicles. It has the following advantages: (1) The present invention uses a bracket, a square frame, a T-shaped strip, an electric telescopic rod, a sleeve frame, a charging pile body, a cable, a charging gun, an L-shaped top arc plate, a shaft plate and a spring in conjunction with a double arc plate. The sleeve frame drives the L-shaped top arc plate to move downward, the L-shaped top arc plate drives the spring to move downward, the spring drives the shaft plate to move downward, and the shaft plate drives the double arc plate to move downward. During the downward movement of the cable, the L-shaped top arc plate supports the cable, and the double arc plate clamps the top of the cable with the elastic force of the spring, so that the charging gun on the cable will not fall off, thus preventing the charging gun from falling off the cable and causing damage to the charging gun.
[0017] (2) By setting up the wire support device, the L-shaped plate, the horizontal plate and the L-shaped rod cooperate with the T-shaped arc plate. The horizontal plate drives the L-shaped rod to move downward, and the L-shaped rod drives the T-shaped arc plate to move downward. During the downward movement of the T-shaped arc plate, the T-shaped arc plate supports the cable, so that the cable will not deform when it is unfolded and contracted, and prevents the cable from bending and being damaged due to deformation when it is unfolded and contracted.
[0018] (3) By setting up the support device, the arc plate and the thin rod cooperate with the base plate. The arc plate drives the thin rod to move downward, and the thin rod drives the base plate to move downward. During the downward movement of the base plate, the base plate supports the bottom of the charging pile body, reducing the shaking of the charging pile body when it moves, and preventing the internal parts of the charging pile body from being damaged by vibration due to shaking.
[0019] (4) The present invention uses a moisture-proof device to make the L-shaped wide plate, U-shaped rod and U-shaped frame work together with the calcium chloride hole block. The U-shaped rod drives the U-shaped frame to move downward, the U-shaped frame drives the calcium chloride hole block to move downward, and the calcium chloride hole block moves with the charging pile body. The calcium chloride hole block adsorbs the humid gas in the air, so that the humid air in the basement will not enter through the heat dissipation vent of the charging pile body, and prevent the humid air in the basement from entering the charging pile body and causing the charging pile body to be damaged by moisture.
[0020] (5) The present invention uses a moisture-proof device to make the connecting plate and the plate cooperate with the rubber concave arc. The connecting plate drives the plate to move downward, and the plate drives the rubber concave arc to move downward. During the movement, the rubber concave arc limits the cable and prevents the cable from getting tangled together, which would make it inconvenient for the user to handle. Attached Figure Description
[0021] Figure 1 This is a schematic diagram of the entire invention; Figure 2 This is a schematic diagram of the internal components of the present invention; Figure 3 This is a schematic diagram of the frame portion of the present invention; Figure 4 This is a schematic cross-sectional view of the rear of the frame of the present invention; Figure 5This is a schematic diagram of the wire support device of the present invention; Figure 6 For the present invention Figure 5 A magnified view of a portion of point A in the middle; Figure 7 This is a schematic diagram of the moisture-proof device of the present invention; Figure 8 For the present invention Figure 7 A magnified view of a portion of point B in the middle.
[0022] In the diagram: 1. Hanger; 101. Concave block; 102. Cover plate; 2. Square frame; 3. T-shaped strip; 4. Electric telescopic rod; 5. Sleeve frame; 6. Charging pile body; 7. Cable; 8. Charging gun; 9. L-shaped top arc plate; 10. Shaft plate; 11. Spring; 12. Double arc plate; 13. Support wire device; 131. L-shaped plate; 132. Horizontal plate; 133. L-shaped rod; 134. T-shaped arc plate; 135. Arc plate; 136. Thin rod; 137. Base plate; 14. Moisture-proof device; 141. L-shaped wide plate; 142. U-shaped rod; 143. U-shaped frame; 144. Calcium chloride perforated block; 145. Connecting plate; 146. Sheet plate; 147. Rubber concave arc. Detailed Implementation
[0023] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0024] Please see Figures 1-8 One embodiment of the present invention is: a wall-mounted liftable new energy vehicle charging pile, comprising: a bracket 1, four bolt holes are provided on the outer wall of the bracket 1, the bracket 1 is used to install on the wall of an underground garage, a concave block 101 is fixed on the front of the bracket 1, and a cover plate 102 is slidably installed on the inner wall of the concave block 101, the cover plate 102 covers the bolts on the bracket 1. A square frame 2 is fixedly installed at the bottom of the inner side of the bracket 1. Two T-shaped strips 3 are fixed to the inner wall of the square frame 2. An electric telescopic rod 4 is fixed to the side of the T-shaped strips 3 that are close to each other. The electric telescopic rod 4 is located in the middle of the inside of the square frame 2. A sleeve frame 5 is fitted onto the outer wall of the square frame 2. The bottom of the inner side of the sleeve frame 5 is fixedly connected to the bottom surface of the telescopic end of the electric telescopic rod 4. The charging pile body 6 is fixedly installed at the bottom front of the sleeve frame 5. Heat dissipation vents are provided on both the left and right sides of the charging pile body 6. A cable 7 is installed on the left side of the charging pile body 6. A charging gun 8 is fixedly installed at the end of the cable 7 away from the charging pile body 6. An L-shaped top arc plate 9 is also included. The L-shaped top arc plate 9 is fixed to the bottom surface of the sleeve frame 5. The L-shaped top arc plate 9 is located below the charging pile body 6. The front of the L-shaped top arc plate 9 is provided with an arc block. The arc block of the L-shaped top arc plate 9 is used to prevent the cable 7 from slipping. The bottom surface of the L-shaped top arc plate 9 is provided with a sliding hole. The inner wall of the sliding hole of the L-shaped top arc plate 9 is slidably installed with a shaft plate 10. The outer wall of the shaft plate 10 and the bottom surface of the L-shaped top arc plate 9 are provided with a spring 11. The top surface of the shaft plate 10 is fixed with a double arc plate 12. The cable 7 is wound on the outer wall of the L-shaped top arc plate 9. The cable 7 is located in front of the shaft plate 10. The double arc plate 12 presses on the cable 7. The double arc plate 12 clamps the cable 7 by the elastic force of the spring 11. When using this equipment, the operator installs the mounting bracket 1 in the underground garage. The mounting bracket 1 supports the recessed block 101. The operator inserts the cover plate 102 into the recessed block 101, covering the front of the mounting bracket 1 to slow down the oxidation and rusting of the bolts on the mounting bracket 1. When a new energy vehicle needs to be charged in the underground garage, the mounting bracket 1 supports the square frame 2, and the square frame 2 supports the T-shaped strip 3. The operator activates the electric telescopic rod 4 on the T-shaped strip 3. The telescopic end of the electric telescopic rod 4 begins to extend downward, driving the sleeve frame 5 to move downward. The sleeve frame 5 slides downward on the square frame 2, and the sleeve frame 5 drives the charging pile body 6 to move downward. The charging pile body 6 drives the cable 7 to move downwards, the cable 7 drives the charging gun 8 to move downwards, and at the same time, the sleeve frame 5 drives the L-shaped top arc plate 9 to move downwards, the L-shaped top arc plate 9 drives the spring 11 to move downwards, the spring 11 drives the shaft plate 10 to move downwards, and the shaft plate 10 drives the double arc plate 12 to move downwards. During the downward movement of the cable 7, the L-shaped top arc plate 9 supports the cable 7, and the double arc plate 12 clamps the top of the cable 7 by the elastic force of the spring 11, so that the charging gun 8 on the cable 7 will not fall off. This avoids the problem of the charging gun 8 falling off the cable 7 and being damaged by impact when the wall-mounted liftable new energy vehicle charging pile is in use. The back of the L-shaped top arc plate 9 is provided with a wire support device 13, which is used to support the inside of the cable 7. The bottom surface of the wire support device 13 is provided with a moisture-proof device 14, which is used to dry the air entering the charging pile body 6.
[0025] Working principle: The bracket 1 is installed in the underground garage. The bracket 1 supports the concave block 101. The cover plate 102 is inserted into the concave block 101 and covers the front of the bracket 1. The bracket 1 supports the square frame 2, and the square frame 2 supports the T-shaped strip 3. The telescopic end of the electric telescopic rod 4 drives the sleeve frame 5 to move downward. The sleeve frame 5 slides downward on the square frame 2. The sleeve frame 5 drives the charging pile body 6 to move downward. The charging pile body 6 drives the cable 7 to move downward. The cable 7 drives the charging gun 8 to move downward. The sleeve frame 5 drives the L-shaped top arc plate 9 to move downward. The L-shaped top arc plate 9 drives the spring 11 to move downward. The spring 11 drives the shaft plate 10 to move downward. The shaft plate 10 drives the double arc plate 12 to move downward. The L-shaped top arc plate 9 supports the cable 7, and the double arc plate 12 clamps the top of the cable 7 by the elastic force of the spring 11.
[0026] Please see Figures 1-8 Based on the above embodiments, in another embodiment of the present invention, the wire support device 13 includes: an L-shaped plate 131, which is fixedly installed on the back of the L-shaped top arc plate 9. A horizontal plate 132 is fixed on the top surface of the L-shaped plate 131, which is located behind the L-shaped plate 131. L-shaped rods 133 are fixed through and fixed on both sides of the bottom surface of the horizontal plate 132. The L-shaped rods 133 are located below the L-shaped top arc plate 9. T-shaped arc plates 134 are fixed on the outer wall of the L-shaped rods 133 respectively. The outer wall of the T-shaped arc plates 134 contacts the outer wall of the cable 7. The T-shaped arc plates 134 are used to support the inside of the cable 7. As the sleeve frame 5 moves the L-shaped top arc plate 9 downward, the L-shaped top arc plate 9 moves the L-shaped plate 131 downward, the L-shaped plate 131 moves the horizontal plate 132 downward, the horizontal plate 132 moves the L-shaped rod 133 downward, and the L-shaped rod 133 moves the T-shaped arc plate 134 downward. During the downward movement of the T-shaped arc plate 134, the T-shaped arc plate 134 is supported in the cable 7, so that the cable 7 will not deform when it is extended and retracted. This avoids the problem of the cable 7 bending and being damaged when it is extended and retracted during the use of the wall-mounted liftable new energy vehicle charging pile.
[0027] Two arc-shaped plates 135 are fixed to the top surface of the horizontal plate 132. Each arc-shaped plate 135 has a through hole on its outer wall. A thin rod 136 is fixed to the inner wall of the through hole of the arc-shaped plate 135. The thin rod 136 is used to stabilize the two arc-shaped plates 135. A bottom plate 137 is fixed to the top surface of the arc-shaped plate 135. The bottom plate 137 is located in front of the sleeve frame 5 and is used to support the bottom of the charging pile body 6. As the horizontal plate 132 moves the L-shaped rod 133 downward, the L-shaped rod 133 moves the arc plate 135 downward, the arc plate 135 moves the thin rod 136 downward, and the thin rod 136 moves the base plate 137 downward. During the downward movement of the base plate 137, the base plate 137 supports the lower part of the charging pile body 6, reducing the shaking of the charging pile body 6 during movement. This avoids the problem of vibration damage to the internal parts of the charging pile body 6 caused by shaking of the wall-mounted liftable new energy vehicle charging pile during use.
[0028] The moisture-proof device 14 includes: an L-shaped wide plate 141, which is fixed to the bottom surface of the base plate 137. The L-shaped wide plate 141 is located in front of the charging pile body 6. A U-shaped rod 142 is fixed to the top surface of the L-shaped wide plate 141. A loop frame 143 is fixed to both ends of the U-shaped rod 142. The loop frame 143 is located on the left and right sides of the charging pile body 6. Calcium chloride perforated blocks 144 are fixed to the inner walls of the loop frame 143. The calcium chloride perforated blocks 144 are used to dry the moisture in the air. As the thin rod 136 moves the base plate 137 downward, the base plate 137 moves the L-shaped wide plate 141 downward, the L-shaped wide plate 141 moves the U-shaped rod 142 downward, the U-shaped rod 142 moves the U-shaped frame 143 downward, the U-shaped frame 143 moves the calcium chloride perforated block 144 downward, and the calcium chloride perforated block 144 moves along with the charging pile body 6. The calcium chloride perforated block 144 absorbs the humid air in the air, preventing the humid air in the basement from entering through the heat dissipation vents of the charging pile body 6. This avoids the problem of humid air from the basement entering the charging pile body 6 and causing internal moisture damage to the charging pile body 6 during use.
[0029] A connecting plate 145 is fixed to the bottom surface of the L-shaped wide plate 141. A plate 146 is fixed to the left end of the connecting plate 145. A rubber concave arc 147 is fixed to the left side of the plate 146. The rubber concave arc 147 is sleeved on the outer wall of the cable 7 and is used to limit the cable 7. As the L-shaped wide plate 141 moves the U-shaped rod 142 downwards, the L-shaped wide plate 141 moves the connecting plate 145 downwards, the connecting plate 145 moves the sheet 146 downwards, and the sheet 146 moves the rubber concave arc 147 downwards. During the movement, the rubber concave arc 147 limits the cable 7, preventing the cable 7 from getting tangled together. This avoids the problem of the cable 7 getting tangled together and causing inconvenience for users when using the wall-mounted liftable new energy vehicle charging pile.
[0030] Working principle: The L-shaped top arc plate 9 drives the L-shaped plate 131 to move downward, the L-shaped plate 131 drives the horizontal plate 132 to move downward, the horizontal plate 132 drives the L-shaped rod 133 to move downward, and the L-shaped rod 133 drives the T-shaped arc plate 134 to move downward. During the downward movement of the T-shaped arc plate 134, the T-shaped arc plate 134 is supported in the cable 7, so that the cable 7 will not deform when it is extended and retracted. L-shaped rod 133 drives arc plate 135 to move downward, arc plate 135 drives thin rod 136 to move downward, thin rod 136 drives base plate 137 to move downward. During the downward movement of base plate 137, base plate 137 supports the bottom of charging pile body 6, reducing the shaking of charging pile body 6 when it moves. The base plate 137 drives the L-shaped wide plate 141 to move downwards, the L-shaped wide plate 141 drives the U-shaped rod 142 to move downwards, the U-shaped rod 142 drives the loop frame 143 to move downwards, the loop frame 143 drives the calcium chloride perforated block 144 to move downwards, the calcium chloride perforated block 144 moves with the charging pile body 6, the calcium chloride perforated block 144 adsorbs the humid gas in the air, so that the humid air in the basement will not enter through the heat dissipation vent of the charging pile body 6; The L-shaped wide plate 141 drives the connecting plate 145 to move downward, the connecting plate 145 drives the sheet plate 146 to move downward, the sheet plate 146 drives the rubber concave arc 147 to move downward, and the rubber concave arc 147 limits the movement of the cable 7 to prevent the cables 7 from getting tangled together.
[0031] 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 wall-mounted, liftable charging pile for new energy vehicles, comprising: Hanging bracket (1), a square frame (2) is fixedly installed at the bottom of the inner side of the hanging bracket (1), and two T-shaped strips (3) are fixed on the inner wall of the square frame (2), and an electric telescopic rod (4) is fixed on the side of the T-shaped strips (3) that are close to each other. The frame (5) is fitted onto the outer wall of the square frame (2), and the bottom of the inner end of the frame (5) is fixedly connected to the bottom surface of the telescopic end of the electric telescopic rod (4). The charging pile body (6) is fixedly installed on the bottom front of the frame (5). A cable (7) is installed on the left side of the charging pile body (6). A charging gun (8) is fixedly installed at the end of the cable (7) away from the charging pile body (6). L-shaped top arc plate (9), the L-shaped top arc plate (9) is fixed on the bottom surface of the sleeve frame (5), the bottom surface of the L-shaped top arc plate (9) is provided with a sliding hole, the inner wall of the sliding hole of the L-shaped top arc plate (9) is slidably installed with a shaft plate (10), the outer wall of the shaft plate (10) and the bottom surface of the L-shaped top arc plate (9) are provided with a spring (11), and the top surface of the shaft plate (10) is fixed with a double arc plate (12). The cable (7) is wrapped around the outer wall of the L-shaped top arc plate (9), and the double arc plate (12) presses on the cable (7). The double arc plate (12) clamps the cable (7) by the elastic force of the spring (11).
2. The wall-mounted, liftable new energy vehicle charging pile according to claim 1, characterized in that: The bracket (1) has four bolt holes on its outer wall and is used to install on the wall of an underground garage. The front of the bracket (1) is fixed with a concave block (101), and a cover plate (102) is slidably installed on the inner wall of the concave block (101), and the cover plate (102) covers the bolts on the bracket (1).
3. A wall-mounted, liftable new energy vehicle charging pile according to claim 2, characterized in that: The charging pile body (6) has heat dissipation vents on both the left and right sides. The L-shaped top arc plate (9) has an arc block on its front side. The arc block of the L-shaped top arc plate (9) is used to prevent the cable (7) from slipping off.
4. A wall-mounted, liftable new energy vehicle charging pile according to claim 3, characterized in that: The electric telescopic rod (4) is located in the middle of the inside of the frame (2), the L-shaped top arc plate (9) is located below the charging pile body (6), and the cable (7) is located in front of the shaft disc (10).
5. A wall-mounted, liftable new energy vehicle charging pile according to claim 4, characterized in that: The back of the L-shaped top arc plate (9) is provided with a wire support device (13), which is used to support the inside of the cable (7); The bottom surface of the support device (13) is provided with a moisture-proof device (14), which is used to dry the air entering the charging pile body (6).
6. A wall-mounted, liftable new energy vehicle charging pile according to claim 5, characterized in that: The cable support device (13) includes: an L-shaped plate (131), which is fixedly installed on the back of an L-shaped top arc plate (9). A horizontal plate (132) is fixed on the top surface of the L-shaped plate (131). An L-shaped rod (133) is fixed through both sides of the bottom surface of the horizontal plate (132). A T-shaped arc plate (134) is fixed on the outer wall of the L-shaped rod (133). The outer wall of the T-shaped arc plate (134) is in contact with the outer wall of the cable (7). The T-shaped arc plate (134) is used to support the inside of the cable (7).
7. A wall-mounted, liftable new energy vehicle charging pile according to claim 6, characterized in that: Two arc-shaped plates (135) are fixed on the top surface of the horizontal plate (132). Each arc-shaped plate (135) has a through hole on its outer wall. A thin rod (136) is fixed on the inner wall of the through hole of the arc-shaped plate (135). The thin rod (136) is used to stabilize the two arc-shaped plates (135). A bottom plate (137) is fixed on the top surface of the arc-shaped plate (135). The bottom plate (137) is used to support the bottom of the charging pile body (6).
8. A wall-mounted, liftable new energy vehicle charging pile according to claim 7, characterized in that: The horizontal plate (132) is located behind the L-shaped plate (131), the L-shaped rod (133) is located below the L-shaped top arc plate (9), and the bottom plate (137) is located in front of the sleeve frame (5).
9. A wall-mounted, liftable new energy vehicle charging pile according to claim 8, characterized in that: The moisture-proof device (14) includes: an L-shaped wide plate (141), which is fixed to the bottom surface of the base plate (137). The L-shaped wide plate (141) is located in front of the charging pile body (6). A U-shaped rod (142) is fixed on the top surface of the L-shaped wide plate (141). Both ends of the U-shaped rod (142) are fixed with a spiral frame (143). The spiral frame (143) is located on the left and right sides of the charging pile body (6). Calcium chloride porous blocks (144) are fixed on the inner wall of the spiral frame (143). The calcium chloride porous blocks (144) are used to dry the moisture in the air.
10. A wall-mounted, liftable new energy vehicle charging pile according to claim 9, characterized in that: A connecting plate (145) is fixed to the bottom surface of the L-shaped wide plate (141). A plate (146) is fixed to the left end of the connecting plate (145). A rubber concave arc (147) is fixed to the left side of the plate (146). The rubber concave arc (147) is sleeved on the outer wall of the cable (7). The rubber concave arc (147) is used to limit the cable (7).
Citation Information
Patent Citations
Wall-mounted electric vehicle charging pile device
CN220639589U