Movable new energy automobile charging pile
By integrating multifunctional components, detection components, positioning components and prompt components on the charging piles of new energy vehicles, the problem of difficulty in adhesion and positioning of dust on the charging piles is solved, and automatic cleaning, stable positioning and convenient charging at night is achieved.
Patent Information
- Application Number
- CN202510847268.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-24
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2045-06-24
AI Technical Summary
The existing new energy vehicle charging piles lack cleaning and anti-aging functions, resulting in faster aging of dust on the surface, and it is inconvenient to position and find charging locations at night after moving.
A movable new energy vehicle charging pile is designed, equipped with multi-functional components, detection components, positioning components and prompt components, and automatic cleaning is achieved through the inlet and exhaust holes, U-shaped positioning frame limit, and linear spotlights indicate charging position.
It realizes automatic cleaning of the surface of the charging pile, reduces the aging speed, ensures stable positioning and quickly finds charging locations at night, and improves service life and convenience.
Smart Images

Figure CN120363765A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of charging piles, and more specifically, particularly relates to a movable new energy vehicle charging pile. Background Art
[0002] A charging pile, also known as an electric vehicle charging station or an electric vehicle power supply device, is a device that provides electrical energy for electric vehicles, enabling electric vehicles to store sufficient power to support their operation.
[0003] For example, in the patent with the application number: CN202322779767.6, a movable new energy electric vehicle charging pile with a wire winding function is disclosed, including a charging pile body, a display screen fixedly installed on the front of the charging pile body, a protective door hinged on the front of the charging pile body through a hinge, a rain shield fixedly installed above the charging pile body, a mobile shock absorption mechanism arranged at the bottom of the charging pile body, and a wire winding mechanism arranged inside the charging pile body; this movable new energy electric vehicle charging pile with a wire winding function is provided with a mobile shock absorption mechanism, which facilitates the movement of the charging pile, saves manpower, and at the same time performs shock absorption during movement to prevent the components inside the charging pile from being damaged due to vibration. A wire winding mechanism is provided to facilitate the automatic recycling of the charging cable, improve work efficiency, protect the charging cable, and at the same time the protective cover also protects the charging gun.
[0004] Based on the above, the currently used new energy vehicle charging piles still have the following problems: 1. Generally, they do not have cleaning and anti-aging functions, resulting in a large amount of dust being easily attached to the surface of the charging pile after long-term use, and also increasing the aging speed of the charging pile, affecting the service life of the charging pile; 2. Although the charging pile has a mobile function, it is not convenient for the staff to quickly locate after the charging pile is moved, resulting in low stability during the use of the charging pile; 3. It is not convenient to quickly find a rechargeable position at night, increasing the search time for the charging position. Summary of the Invention
[0005] The embodiments of the present disclosure relate to a movable new energy vehicle charging pile, which has a multi-functional component, a detection component, a positioning component, and a prompting component; the gas entering through two air inlet and outlet holes can blow the outer surface of the pile body, playing an automatic cleaning role on the outer surface of the pile body; the bottom end of the U-shaped positioning frame is inserted into the pre-drilled holes in the concrete floor, playing a limiting role on the movable bracket to prevent the movable bracket from moving; the lights emitted by two rows of linear spotlights are green, which is convenient for reminding that there are no vehicles charging nearby and for quickly knowing the rechargeable position at night; solving the problems that generally do not have cleaning and anti-aging functions, it is not convenient for the staff to quickly locate after the charging pile is moved, and it is not convenient to quickly find a rechargeable position at night.
[0006] In the first aspect of the present disclosure, a movable new energy vehicle charging pile is provided, including: a multifunctional component, a pile body, a detection component, a positioning component, and a prompting component; the pile body is installed on the multifunctional component, and the multifunctional component is used to reduce the aging speed of the pile body and also used to clean the outer surface of the pile body; The detection component is installed on the multifunctional component, and the detection component is used to control the operation of the multifunctional component; the positioning component is installed on the front side of the multifunctional component, and the positioning component is used to position the multifunctional component after movement; there are two groups of prompting components in total, and the two groups of prompting components are installed on the left and right sides of the pile body.
[0007] In at least some embodiments, the multifunctional component includes: a movable bracket, multifunctional covers, and transparent plastic plates; there are two multifunctional covers in total, and the two multifunctional covers are arranged on the top of the movable bracket, and air inlet and outlet holes are respectively opened on the two multifunctional covers; the multifunctional cover on the left is larger than the multifunctional cover on the right, and after the two multifunctional covers move inward at the same time, the outer wall of the multifunctional cover on the right can contact the inner wall of the multifunctional cover on the left; there are four transparent plastic plates in total, and the four transparent plastic plates are fixedly installed on the two multifunctional covers, and the two lower transparent plastic plates are red, and the two upper transparent plastic plates are green.
[0008] In at least some embodiments, the multifunctional component further includes: linear electric cylinders and moving rollers; there are two groups of linear electric cylinders in total, and the two groups of linear electric cylinders are fixedly installed on the movable bracket; the output shafts of the two groups of linear electric cylinders are fixedly connected to the outside of the two multifunctional covers, and the number of each group of linear electric cylinders is three; there are four moving rollers in total, and the four moving rollers are fixedly installed on the bottom of the movable bracket.
[0009] In at least some embodiments, the detection component includes: a storage battery, a controller, and a distance sensor; the storage battery is fixedly installed on the bottom of the movable bracket; the controller is fixedly installed on the bottom of the movable bracket, and the controller is electrically connected to the storage battery, and the controller is also electrically connected to the two groups of linear electric cylinders; the distance sensor is fixedly installed on the multifunctional cover on the left.
[0010] In at least some embodiments, the positioning component includes: an insulating connection block, a U-shaped positioning frame, and a rectangular insulating plate; the insulating connection block is fixedly installed on the front side of the movable bracket; the U-shaped positioning frame is slidably installed on the insulating connection block, and the bottom of the U-shaped positioning frame is provided with a chamfer; the rectangular insulating plate is fixedly installed on the U-shaped positioning frame, and the bottom of the rectangular insulating plate is provided with a chamfer, and a limiting jack is opened on the rectangular insulating plate.
[0011] In at least some embodiments, the positioning assembly further includes: conductive bump A, conductive bump B, and limiting retaining ring A; there are two conductive bumps A in total, and the two conductive bumps A are fixedly installed inside the insulating connection block, and the two conductive bumps A are electrically connected to the controller through wires; there are two conductive bumps B in total, and the two conductive bumps B are fixedly installed inside the rectangular insulating plate, and the two conductive bumps B are electrically connected to the distance sensor through wires; there are two limiting retaining rings A in total, and the two limiting retaining rings A are fixedly installed outside the U-shaped positioning frame, and the tops of the two limiting retaining rings A are in contact with the bottom of the insulating connection block.
[0012] In at least some embodiments, the positioning assembly further includes: limiting retaining ring B, return spring A, and U-shaped frame; there are two limiting retaining rings B in total, and the two limiting retaining rings B are fixedly installed outside the U-shaped positioning frame, and the two limiting retaining rings B are located above the two limiting retaining rings A; there are two return springs A in total, and the two return springs A are sleeved outside the U-shaped positioning frame, and the two return springs A are located between the insulating connection block and the two limiting retaining rings B; the U-shaped frame is fixedly installed on the front side of the insulating connection block.
[0013] In at least some embodiments, the positioning assembly further includes: limiting pin, return snap ring, and return spring B; the limiting pin is slidably installed on the insulating connection block and the U-shaped frame, and a chamfer is provided at the inner end of the limiting pin. When the two conductive bumps A are in contact with the two conductive bumps B, the limiting pin is concentric with the limiting jack; the return snap ring is fixedly installed outside the limiting pin, and the inner side of the return snap ring is in contact with the insulating connection block; the return spring B is sleeved outside the limiting pin, and the return spring B is located between the U-shaped frame and the return snap ring.
[0014] In at least some embodiments, the prompting assembly includes: T-shaped bracket, inclined mounting seat, and linear spotlight; the T-shaped bracket is fixedly installed on the pile body; the inclined mounting seat is fixedly installed on the outside of the T-shaped bracket; there is a row of linear spotlights in total, and the row of linear spotlights is fixedly installed on the outside of the inclined mounting seat, and the row of linear spotlights is also electrically connected to the controller.
[0015] In at least some embodiments, when the multifunctional cover is in the open state, the light emitted by the row of linear spotlights is aligned with the transparent plastic plate below; when the multifunctional cover is in the closed state, the light emitted by the row of linear spotlights is aligned with the transparent plastic plate above.
[0016] Compared with the prior art, the present invention has the following beneficial effects: 1. When the distance sensor detects that a vehicle approaches the pile body, the controller controls the output shafts of the two linear electric cylinders to contract. When the output shafts of the two linear electric cylinders contract, the two multifunctional covers move outwards simultaneously. When the two linear electric cylinders drive the two multifunctional covers to move outwards simultaneously, external air enters the two multifunctional covers through the air inlet and outlet holes on the two multifunctional covers. The gas entering through the two air inlet and outlet holes can purge the outer surface of the pile body, playing an automatic cleaning role for the outer surface of the pile body. In addition, when the distance sensor detects that the vehicle moves away from the pile body, the controller controls the output shafts of the two linear electric cylinders to extend. When the output shafts of the two linear electric cylinders extend, the two multifunctional covers move inwards simultaneously. When the two linear electric cylinders drive the two multifunctional covers to move inwards simultaneously, the gas in the two multifunctional covers is discharged through the air inlet and outlet holes on the two multifunctional covers. After the two multifunctional covers move inwards simultaneously, they can play a protective role for the pile body, reducing the aging speed of the pile body.
[0017] 2. When the staff moves the movable bracket to a suitable position and then presses down the U-shaped positioning bracket, the bottom end of the U-shaped positioning bracket is inserted into the holes pre-drilled in the concrete ground, playing a limiting role for the movable bracket to prevent the movable bracket from moving. When the staff presses down the U-shaped positioning bracket, first pull the limit pin outwards. When the U-shaped positioning bracket moves to a suitable position, the limit pin automatically inserts into the limit jack under the action of the return spring B, playing a positioning role for the rectangular insulating plate to ensure that the bottom end of the U-shaped positioning bracket will not separate from the hole in the concrete ground. In addition, when the limit pin is inserted into the limit jack, the two conductive bumps A and the two conductive bumps B automatically come into contact, realizing the automatic connection of the power supply of the distance sensor. When the staff separates the limit pin from the limit jack, the U-shaped positioning bracket automatically moves upwards under the action of the two return springs A. At this time, the two conductive bumps A and the two conductive bumps B automatically separate, realizing the automatic cut-off of the power supply of the distance sensor, ensuring that when the staff moves the movable bracket, the distance sensor does not have the position detection effect, and avoiding the two multifunctional covers from accidentally injuring the staff.
[0018] 3. When it enters the night, the controller controls the two rows of linear spotlights to work automatically. When it enters the day, the controller controls the two rows of linear spotlights to stop working automatically. When the two multifunctional covers are in the open state, the lights emitted by the two rows of linear spotlights are aligned with the two transparent plastic plates below. At this time, the lights emitted by the two rows of linear spotlights are red, which is convenient for reminding that there is a vehicle charging nearby. In addition, when the two multifunctional covers are in the closed state, the lights emitted by the two rows of linear spotlights are aligned with the transparent plastic plate above. At this time, the lights emitted by the two rows of linear spotlights are green, which is convenient for reminding that there is no vehicle charging nearby and is convenient for quickly knowing the rechargeable position at night. Description of the Drawings
[0019] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings of the embodiments will be briefly introduced below.
[0020] The accompanying drawings in the following description only relate to some embodiments of the present invention and do not limit the present invention.
[0021] In the accompanying drawings: Figure 1 A three-dimensional structural schematic diagram of the present invention is shown.
[0022] Figure 2 A structural schematic diagram of the multifunctional component of the present invention is shown.
[0023] Figure 3 The present invention is shown Figure 1 A structural schematic diagram of the bottom view angle of the present invention is shown.
[0024] Figure 4 A structural schematic diagram of the positioning component of the present invention is shown.
[0025] Figure 5 The present invention is shown Figure 4 A structural schematic diagram of the transverse central section of the present invention is shown.
[0026] Figure 6 The present invention is shown Figure 5 A partial enlarged structural schematic diagram of area A in the present invention is shown.
[0027] Figure 7 The present invention is shown Figure 4 A structural schematic diagram of the longitudinal central section of the present invention is shown.
[0028] Figure 8 The present invention is shown Figure 1 A structural schematic diagram of the transverse central section of the present invention is shown.
[0029] Figure 9 A structural schematic diagram of the pile body and the prompt component of the present invention is shown.
[0030] Figure 10 The present invention is shown Figure 8 A partial enlarged structural schematic diagram of area B in the present invention is shown.
[0031] List of reference numerals: 100, multifunctional component; 101, movable bracket; 102, multifunctional cover; 1021, air intake and exhaust holes; 103, transparent plastic plate; 104, linear electric cylinder; 105, moving roller; 200, pile body; 300, detection component; 301, storage battery; 302, controller; 303, distance sensor; 400, Positioning component; 401, Insulating connection block; 402, U-shaped positioning frame; 403, Rectangular insulating plate; 4031, Limit jack; 404, Conductive bump A; 405, Conductive bump B; 406, Limit retaining ring A; 407, Limit retaining ring B; 408, Return spring A; 409, U-shaped frame; 410, Limit pin; 411, Return snap ring; 412, Return spring B; 500, Prompt component; 501, T-shaped bracket; 502, Inclined mounting base; 503, Linear spotlight. Detailed implementation manners
[0032] In order to make the objectives, solutions and advantages of the technical solutions 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 of the specific embodiments of the present invention. Unless otherwise specified, the terms used herein have the ordinary meanings in the art. The same reference numerals in the drawings represent the same components.
[0033] Embodiment: Please refer to Figures 1 to 10 As shown in the figure: The present invention provides a movable new energy vehicle charging pile, including: a multifunctional component 100, a pile body 200, a detection component 300, a positioning component 400 and a prompt component 500; the pile body 200 is installed on the multifunctional component 100, and the multifunctional component 100 is used to reduce the aging speed of the pile body 200, and the multifunctional component 100 is also used to clean the outer surface of the pile body 200; the detection component 300 is installed on the multifunctional component 100, and the detection component 300 is used to control the operation of the multifunctional component 100; the positioning component 400 is installed on the front side of the multifunctional component 100, and the positioning component 400 is used to position the multifunctional component 100 after movement; there are two groups of prompt components 500 in total, and the two groups of prompt components 500 are installed on the left and right sides of the pile body 200.
[0034] In the embodiments of the present disclosure, as Figures 1 to 3As shown in the figure, the multifunctional component 100 includes: a movable bracket 101, a multifunctional cover 102, and a transparent plastic plate 103. There are two multifunctional covers 102 in total. The two multifunctional covers 102 are arranged on the top of the movable bracket 101, and air inlet and exhaust holes 1021 are respectively provided on the two multifunctional covers 102. The multifunctional cover 102 on the left is larger than the multifunctional cover 102 on the right. After the two multifunctional covers 102 move inward simultaneously, the outer wall of the multifunctional cover 102 on the right can contact the inner wall of the multifunctional cover 102 on the left. There are four transparent plastic plates 103 in total. The four transparent plastic plates 103 are fixedly installed on the two multifunctional covers 102. The two transparent plastic plates 103 below are red, and the two transparent plastic plates 103 above are green. The multifunctional component 100 further includes: a linear electric cylinder 104 and a moving roller 105. There are two groups of linear electric cylinders 104 in total. The two groups of linear electric cylinders 104 are fixedly installed on the movable bracket 101. The output shafts of the two groups of linear electric cylinders 104 are fixedly connected to the outside of the two multifunctional covers 102, and the number of each group of linear electric cylinders 104 is three. There are four moving rollers 105 in total. The four moving rollers 105 are fixedly installed at the bottom of the movable bracket 101. The detection component 300 includes: a storage battery 301, a controller 302, and a distance sensor 303. The storage battery 301 is fixedly installed at the bottom of the movable bracket 101. The controller 302 is fixedly installed at the bottom of the movable bracket 101. The controller 302 is electrically connected to the storage battery 301, and the controller 302 is also electrically connected to the two groups of linear electric cylinders 104. The distance sensor 303 is fixedly installed on the multifunctional cover 102 on the left. Its specific function is as follows: Since the distance sensor 303 is fixedly installed on the multifunctional cover 102 on the left, the two groups of linear electric cylinders 104 are fixedly installed on the movable bracket 101, and the output shafts of the two groups of linear electric cylinders 104 are fixedly connected to the outside of the two multifunctional covers 102. When the distance sensor 303 detects that a vehicle approaches the pile body 200, the controller 302 controls the output shafts of the two groups of linear electric cylinders 104 to contract. When the output shafts of the two groups of linear electric cylinders 104 contract, the two multifunctional covers 102 move outward simultaneously. Also, since air inlet and exhaust holes 1021 are respectively provided on the two multifunctional covers 102, when the two groups of linear electric cylinders 104 drive the two multifunctional covers 102 to move outward simultaneously, external air enters the two multifunctional covers 102 through the air inlet and exhaust holes 1021 on the two multifunctional covers 102. The gas entering through the two air inlet and exhaust holes 1021 can blow the outer surface of the pile body 200, playing an automatic cleaning role for the outer surface of the pile body 200. In addition, when the distance sensor 303 detects that the vehicle is moving away from the pile body 200, the controller 302 controls the output shafts of the two sets of linear electric cylinders 104 to extend. When the output shafts of the two sets of linear electric cylinders 104 extend, the two multifunctional covers 102 move inward simultaneously; when the two sets of linear electric cylinders 104 drive the two multifunctional covers 102 to move inward simultaneously, the gas in the two multifunctional covers 102 is discharged through the air intake and exhaust holes 1021 on the two multifunctional covers 102. After the two multifunctional covers 102 move inward simultaneously, they can protect the pile body 200 and reduce the aging speed of the pile body 200.
[0035] In the embodiments of the present disclosure, as Figures 4 to 7As shown, the positioning component 400 includes: an insulating connection block 401, a U-shaped positioning frame 402, and a rectangular insulating plate 403; the insulating connection block 401 is fixedly installed on the front side of the movable bracket 101; the U-shaped positioning frame 402 is slidably installed on the insulating connection block 401, and the bottom of the U-shaped positioning frame 402 is provided with a chamfer; the rectangular insulating plate 403 is fixedly installed on the U-shaped positioning frame 402, and the bottom of the rectangular insulating plate 403 is provided with a chamfer, and a limit jack 4031 is opened on the rectangular insulating plate 403; the positioning component 400 further includes: a conductive bump A 404, a conductive bump B 405, and a limit retaining ring A 406; there are two conductive bumps A 404 in total, and the two conductive bumps A 404 are fixedly installed inside the insulating connection block 401, and the two conductive bumps A 404 are electrically connected to the controller 302 through wires; there are two conductive bumps B 405 in total, and the two conductive bumps B 405 are fixedly installed inside the rectangular insulating plate 403, and the two conductive bumps B 405 are electrically connected to the distance sensor 303 through wires; there are two limit retaining rings A 406 in total, and the two limit retaining rings A 406 are fixedly installed outside the U-shaped positioning frame 402, and the tops of the two limit retaining rings A 406 are in contact with the bottom of the insulating connection block 401; the positioning component 400 further includes: a limit retaining ring B 407, a return spring A 408, and a U-shaped frame 409; there are two limit retaining rings B 407 in total, and the two limit retaining rings B 407 are fixedly installed outside the U-shaped positioning frame 402, and the two limit retaining rings B 407 are located above the two limit retaining rings A 406; there are two return springs A 408 in total, and the two return springs A 408 are sleeved outside the U-shaped positioning frame 402, and the two return springs A 408 are located between the insulating connection block 401 and the two limit retaining rings B 407; the U-shaped frame 409 is fixedly installed on the front side of the insulating connection block 401; the positioning component 400 further includes: a limit pin 410, a return snap ring 411, and a return spring B 412; the limit pin 410 is slidably installed on the insulating connection block 401 and the U-shaped frame 409, and the inner end of the limit pin 410 is provided with a chamfer. When the two conductive bumps A 404 are in contact with the two conductive bumps B 405, the limit pin 410 is concentric with the limit jack 4031; the return snap ring 411 is fixedly installed outside the limit pin 410, and the inner side of the return snap ring 411 is in contact with the insulating connection block 401; the return spring B 412 is sleeved outside the limit pin 410, and the return spring B 412 is located between the U-shaped frame 409 and the return snap ring 411; Its specific functions are as follows: Since the U-shaped positioning frame 402 is slidably mounted on the insulating connection block 401 and the bottom of the U-shaped positioning frame 402 is provided with a chamfer, when the staff moves the movable bracket 101 to a suitable position and then presses down the U-shaped positioning frame 402, the bottom end of the U-shaped positioning frame 402 is inserted into the hole pre-drilled in the concrete floor, which plays a limiting role for the movable bracket 101 and prevents the movable bracket 101 from moving. Also, since the limit pin 410 is slidably mounted on the insulating connection block 401 and the U-shaped frame 409 and the inner end of the limit pin 410 is provided with a chamfer, when the staff presses down the U-shaped positioning frame 402, the limit pin 410 is first pulled outwards. When the U-shaped positioning frame 402 moves to a suitable position, the limit pin 410 is automatically inserted into the limit jack 4031 under the action of the return spring B412, which plays a positioning role for the rectangular insulating plate 403 and ensures that the bottom end of the U-shaped positioning frame 402 will not separate from the hole in the concrete floor. In addition, since the two conductive bumps A404 are electrically connected to the controller 302 through wires and the two conductive bumps B405 are electrically connected to the distance sensor 303 through wires, when the limit pin 410 is inserted into the limit jack 4031, the two conductive bumps A404 and the two conductive bumps B405 are automatically in contact, realizing the automatic connection of the power supply of the distance sensor 303. Also, since the two return springs A408 are sleeved outside the U-shaped positioning frame 402 and the two return springs A408 are located between the insulating connection block 401 and the two limit retaining rings B407, when the staff separates the limit pin 410 from the limit jack 4031, the U-shaped positioning frame 402 automatically moves upwards under the action of the two return springs A408. At this time, the two conductive bumps A404 and the two conductive bumps B405 are automatically separated, realizing the automatic cut-off of the power supply of the distance sensor 303, ensuring that when the staff moves the movable bracket 101, the distance sensor 303 does not have the position detection effect and avoiding the two multi-functional covers 102 from accidentally injuring the staff.
[0036] In the embodiment of the present disclosure, as Figures 8 to 10 shown, the prompt component 500 includes: a T-shaped bracket 501, an inclined mounting seat 502 and a linear spotlight 503; the T-shaped bracket 501 is fixedly mounted on the pile body 200; the inclined mounting seat 502 is fixedly mounted on the outside of the T-shaped bracket 501; a row of linear spotlights 503 is provided, and a row of linear spotlights 503 is fixedly mounted on the outside of the inclined mounting seat 502, and a row of linear spotlights 503 is also electrically connected to the controller 302; when the multi-functional cover 102 is in the open state, the light emitted by a row of linear spotlights 503 is aligned with the transparent plastic plate 103 below; when the multi-functional cover 102 is in the closed state, the light emitted by a row of linear spotlights 503 is aligned with the transparent plastic plate 103 above. Its specific functions are as follows: Since the two rows of linear spotlights 503 are fixedly installed on the outer sides of the two inclined mounting seats 502, and the two rows of linear spotlights 503 are also electrically connected to the controller 302, when it enters the night, the controller 302 controls the two rows of linear spotlights 503 to work automatically, and when it enters the day, the controller 302 controls the two rows of linear spotlights 503 to stop working automatically; Also, since the four transparent plastic plates 103 are fixedly installed on the two multifunctional covers 102, and the two transparent plastic plates 103 below are red and the two transparent plastic plates 103 above are green, when the two multifunctional covers 102 are in the open state, the lights emitted by the two rows of linear spotlights 503 are aligned with the two transparent plastic plates 103 below. At this time, the lights emitted by the two rows of linear spotlights 503 are red, which is convenient for reminding that there is a vehicle charging nearby; In addition, when the two multifunctional covers 102 are in the closed state, the lights emitted by the two rows of linear spotlights 503 are aligned with the transparent plastic plates 103 above. At this time, the lights emitted by the two rows of linear spotlights 503 are green, which is convenient for reminding that there is no vehicle charging nearby and is convenient for quickly knowing the rechargeable position at night.
[0037] The specific usage mode and functions of this embodiment: When the present invention is in use, first, the staff pre-drills holes at the installation position of the charging pile to ensure that the holes pre-drilled on the concrete floor are concentric with the bottom end of the U-shaped positioning frame 402. Then, the movable bracket 101 is moved through the four moving rollers 105. When the staff moves the movable bracket 101 to a suitable position and then presses down the U-shaped positioning frame 402, at this time, the bottom end of the U-shaped positioning frame 402 is inserted into the holes pre-drilled on the concrete floor, which plays a limiting role for the movable bracket 101 and prevents the movable bracket 101 from moving. When the staff presses down the U-shaped positioning frame 402, first pull the limit pin 410 outwards. When the U-shaped positioning frame 402 moves to a suitable position, the limit pin 410 automatically inserts into the limit jack 4031 under the action of the return spring B 412, which plays a positioning role for the rectangular insulating plate 403 and ensures that the bottom end of the U-shaped positioning frame 402 will not separate from the hole on the concrete floor. When the limit pin 410 inserts into the limit jack 4031, the two conductive bumps A 404 and the two conductive bumps B 405 automatically come into contact, realizing the automatic connection of the power supply of the distance sensor 303. When the staff separates the limit pin 410 from the limit jack 4031, the U-shaped positioning frame 402 automatically moves upwards under the action of the two return springs A 408. At this time, the two conductive bumps A 404 and the two conductive bumps B 405 automatically separate, realizing the automatic cut-off of the power supply of the distance sensor 303, ensuring that when the staff moves the movable bracket 101, the distance sensor 303 does not have the position detection effect, and avoiding the two multifunctional covers 102 from accidentally injuring the staff. When the distance sensor 303 detects that the vehicle is approaching the pile body 200, the controller 302 controls the output shafts of the two groups of linear electric cylinders 104 to contract. When the output shafts of the two groups of linear electric cylinders 104 contract, the two multifunctional covers 102 move outwards at the same time. When the two groups of linear electric cylinders 104 drive the two multifunctional covers 102 to move outwards at the same time, the external air enters the two multifunctional covers 102 through the air inlet and outlet holes 1021 on the two multifunctional covers 102, and the gas entering through the two air inlet and outlet holes 1021 can blow the outer surface of the pile body 200, playing an automatic cleaning role for the outer surface of the pile body 200. When the distance sensor 303 detects that the vehicle is moving away from the pile body 200, the controller 302 controls the output shafts of the two groups of linear electric cylinders 104 to extend. When the output shafts of the two groups of linear electric cylinders 104 extend, the two multifunctional covers 102 move inwards at the same time. When the two groups of linear electric cylinders 104 drive the two multifunctional covers 102 to move inwards at the same time, the gas in the two multifunctional covers 102 is discharged through the air inlet and outlet holes 1021 on the two multifunctional covers 102. After the two multifunctional covers 102 move inwards at the same time, they can play a protective role for the pile body 200 and reduce the aging speed of the pile body 200. When it enters the night, the controller 302 controls the two rows of linear spotlights 503 to work automatically. When it enters the day, the controller 302 controls the two rows of linear spotlights 503 to stop working automatically;When the two multifunctional covers 102 are in the open state, the lights emitted by the two rows of linear spotlights 503 are aligned with the two transparent plastic plates 103 below. At this time, the lights emitted by the two rows of linear spotlights 503 are red, which is convenient for reminding that there is a vehicle charging nearby; when the two multifunctional covers 102 are in the closed state, the lights emitted by the two rows of linear spotlights 503 are aligned with the transparent plastic plates 103 above. At this time, the lights emitted by the two rows of linear spotlights 503 are green, which is convenient for reminding that there is no vehicle charging nearby and is convenient for quickly knowing the rechargeable position at night.
[0038] In this article, the following points need to be noted: 1. The drawings of the embodiments of the present disclosure only relate to the structures involved in the embodiments of the present disclosure, and other structures can refer to the general design.
[0039] 2. Without conflict, the embodiments of the present disclosure and the features in the embodiments can be combined with each other to obtain new embodiments.
[0040] The above is only the specific implementation manner of the present disclosure, but the protection scope of the present disclosure is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present disclosure can easily think of changes or substitutions, which should all be covered by the protection scope of the present disclosure. Therefore, the protection scope of the present disclosure should be subject to the protection scope of the claims.
Claims
1. A movable new energy vehicle charging pile, comprising: Multifunctional component (100), pile body (200), detection component (300), positioning component (400) and prompting component (500); characterized in that the pile body (200) is installed on the multifunctional component (100), the multifunctional component (100) is used to reduce the aging speed of the pile body (200), and the multifunctional component (100) is also used to clean the outer surface of the pile body (200); The detection component (300) is installed on the multifunctional component (100), and the detection component (300) is used to control the operation of the multifunctional component (100); the positioning component (400) is installed on the front side of the multifunctional component (100), and the positioning component (400) is used to position the moved multifunctional component (100); there are two groups of the prompting components (500) in total, and the two groups of prompting components (500) are installed on the left and right sides of the pile body (200); The multifunctional component (100) includes: a movable bracket (101), a multifunctional cover (102) and a transparent plastic plate (103); there are two multifunctional covers (102) in total, and the two multifunctional covers (102) are arranged on the top of the movable bracket (101), and air inlet and exhaust holes (1021) are respectively opened on the two multifunctional covers (102); the multifunctional cover (102) on the left is larger than the multifunctional cover (102) on the right, and after the two multifunctional covers (102) move inward at the same time, the outer wall of the multifunctional cover (102) on the right can contact the inner wall of the multifunctional cover (102) on the left; there are four transparent plastic plates (103) in total, and the four transparent plastic plates (103) are fixedly installed on the two multifunctional covers (102), and the two transparent plastic plates (103) below are red, and the two transparent plastic plates (103) above are green.
2. The movable new energy vehicle charging pile according to claim 1, wherein The multifunctional component (100) further includes: linear electric cylinders (104) and moving rollers (105); there are two groups of linear electric cylinders (104) in total, and the two groups of linear electric cylinders (104) are fixedly installed on the movable bracket (101); the output shafts of the two groups of linear electric cylinders (104) are fixedly connected to the outside of the two multifunctional covers (102), and the number of each group of linear electric cylinders (104) is three; there are four moving rollers (105) in total, and the four moving rollers (105) are fixedly installed on the bottom of the movable bracket (101).
3. The movable new energy vehicle charging pile according to claim 2, wherein, The detection component (300) includes: a storage battery (301), a controller (302) and a distance sensor (303); the storage battery (301) is fixedly installed on the bottom of the movable bracket (101); the controller (302) is fixedly installed on the bottom of the movable bracket (101), and the controller (302) is electrically connected to the storage battery (301), and the controller (302) is also electrically connected to the two groups of linear electric cylinders (104); the distance sensor (303) is fixedly installed on the multifunctional cover (102) on the left.
4. The movable new energy vehicle charging pile according to claim 3, wherein, The positioning component (400) includes: an insulating connection block (401), a U-shaped positioning frame (402), and a rectangular insulating plate (403); the insulating connection block (401) is fixedly installed on the front side of the movable bracket (101); the U-shaped positioning frame (402) is slidably installed on the insulating connection block (401), and the bottom of the U-shaped positioning frame (402) is provided with a chamfer; the rectangular insulating plate (403) is fixedly installed on the U-shaped positioning frame (402), the bottom of the rectangular insulating plate (403) is provided with a chamfer, and a limit jack (4031) is opened on the rectangular insulating plate (403).
5. A movable new energy vehicle charging pile according to claim 4, characterized in that, The positioning component (400) further includes: a conductive bump A (404), a conductive bump B (405), and a limit retaining ring A (406); there are two conductive bumps A (404) in total, and the two conductive bumps A (404) are fixedly installed inside the insulating connection block (401), and the two conductive bumps A (404) are electrically connected to the controller (302) through wires; there are two conductive bumps B (405) in total, and the two conductive bumps B (405) are fixedly installed inside the rectangular insulating plate (403), and the two conductive bumps B (405) are electrically connected to the distance sensor (303) through wires; there are two limit retaining rings A (406) in total, and the two limit retaining rings A (406) are fixedly installed outside the U-shaped positioning frame (402), and the tops of the two limit retaining rings A (406) are in contact with the bottom of the insulating connection block (401).
6. The movable new energy vehicle charging pile according to claim 5, wherein, The positioning component (400) further includes: a limit retaining ring B (407), a return spring A (408), and a U-shaped frame (409); there are two limit retaining rings B (407) in total, and the two limit retaining rings B (407) are fixedly installed outside the U-shaped positioning frame (402), and the two limit retaining rings B (407) are located above the two limit retaining rings A (406); there are two return springs A (408) in total, and the two return springs A (408) are sleeved outside the U-shaped positioning frame (402), and the two return springs A (408) are located between the insulating connection block (401) and the two limit retaining rings B (407); the U-shaped frame (409) is fixedly installed on the front side of the insulating connection block (401).
7. The movable new energy vehicle charging pile according to claim 6, characterized in that, The positioning component (400) further includes: a limit pin (410), a reset snap ring (411), and a reset spring B (412); the limit pin (410) is slidably mounted on the insulating connection block (401) and the U-shaped frame (409), and a chamfer is provided at the inner end of the limit pin (410). When the two conductive bumps A (404) are in contact with the two conductive bumps B (405), the limit pin (410) is concentrically arranged with the limit jack (4031); the reset snap ring (411) is fixedly mounted on the outside of the limit pin (410), and the inner side of the reset snap ring (411) is in contact with the insulating connection block (401); the reset spring B (412) is sleeved on the outside of the limit pin (410), and the reset spring B (412) is located between the U-shaped frame (409) and the reset snap ring (411).
8. The movable new energy vehicle charging pile according to claim 3, characterized in that, The prompting component (500) includes: a T-shaped bracket (501), an inclined mounting seat (502), and a linear spotlight (503); the T-shaped bracket (501) is fixedly mounted on the pile body (200); the inclined mounting seat (502) is fixedly mounted on the outside of the T-shaped bracket (501); the linear spotlights (503) are provided in a row, and a row of linear spotlights (503) is fixedly mounted on the outside of the inclined mounting seat (502), and a row of linear spotlights (503) is also electrically connected to the controller (302).
9. The movable new energy vehicle charging pile according to claim 8, characterized in that, When the multifunctional cover (102) is in the open state, the light emitted by a row of linear spotlights (503) is aligned with the transparent plastic plate (103) below; when the multifunctional cover (102) is in the closed state, the light emitted by a row of linear spotlights (503) is aligned with the transparent plastic plate (103) above.
Citation Information
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