An integrated landscape steel structure charging pile
By designing an integrated landscape steel structure charging pile, the electric cabinet is automatically lifted by utilizing the coordination of components such as the mother shell, square tube, sliding block, electric telescopic rod, long rod, rain shield, and sub-shell, solving the problem of the battery being soaked by rainwater in heavy rain weather and ensuring the normal operation of the equipment.
Patent Information
- Application Number
- CN202510124850.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-26
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2045-01-26
AI Technical Summary
In existing charging piles with protective structures, rainwater can easily soak the energy storage batteries in the electrical cabinet during heavy rain, causing damage to the output power of the charging main body.
An integrated landscape steel structure charging pile was designed. Through the coordination of components such as the mother shell, square tube, sliding block, electric telescopic rod, long rod, rain shield, and sub-shell, the electric cabinet can be automatically lifted to prevent rainwater from soaking the energy storage battery.
It effectively prevents rainwater from soaking the energy storage batteries in the electrical cabinet, avoids power supply damage when the charging pile is used in rainy days, and ensures the normal operation of the equipment.
Smart Images

Figure CN119550848B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of charging piles, and in particular to an integrated landscape steel structure charging pile. Background Art
[0002] The landscape steel structure tree uses steel from active or retired power steel poles and communication towers, and is transformed into a bionic tree-like structure through steel structure technology. Solar panels are placed on the steel structure tree, which output current to external energy storage cabinets for cyclic charging. The external energy storage cabinets transmit the electricity to the charging piles, ensuring that the charging piles have sufficient power supply, greatly improving the charging speed and efficiency of the charging piles.
[0003] Patent No. CN220662288U discloses a charging pile with a protective structure, including a charging pile, a base fixedly installed at the bottom of the charging pile, a fixing plate symmetrically welded on the upper surface of the base, a rain shield integrally connected to the upper end of the fixing plate, a heat dissipation mechanism installed on the side wall of the fixing plate, a fixing column installed inside the front of the fixing plate, a fixing mechanism installed at one end inside the fixing column, a buffer mechanism installed at the end inside the fixing column away from the fixing mechanism, card slots symmetrically opened at both ends of the upper surface of the base, a limit plate movably installed inside the card slot, and a buckle mechanism symmetrically installed inside the limit plate. Through the above structure, this patent protects the safety of the charging pile and improves the service life of the charging pile.
[0004] However, the current charging piles with protective structures have the following problems: when the charging piles with protective structures are in use, a large amount of rainwater quickly accumulates on the ground during heavy rain, and the rainwater easily soaks under the electrical cabinet, causing the rainwater to soak the energy storage batteries in the electrical cabinet and cause damage to the output power supply of the charging main body. Therefore, we propose an integrated landscape steel structure charging pile. Summary of the Invention
[0005] In view of the shortcomings of the existing technology, the present invention provides an integrated landscape steel structure charging pile, which solves the problems raised in the above background technology.
[0006] To achieve the above objectives, the present invention is implemented through the following technical solutions: an integrated landscape steel structure charging pile, comprising a charging body and a landscape circulating self-filling steel structure tree, a T-shaped frame fixed to the bottom of the charging body, the T-shaped frame fixedly installed on the ground, a charging gun cable fixedly installed on the left side of the charging body, a mother shell buried in the ground, a sub-shell slidably installed on the inner wall of the mother shell, a plurality of electric cabinets fixedly installed on the top surface of the sub-shell, energy storage batteries fixedly installed on the bottom ends of the interiors of the plurality of electric cabinets, the energy storage batteries being connected to each other with cables, one end cable of the plurality of energy storage batteries passing through and fixedly installed on the top surface of the sub-shell, one end cable of the plurality of energy storage batteries passing through and fixedly installed on the inner bottom end of the mother shell, one end cable of the plurality of energy storage batteries being connected to the landscape steel structure, and the other end cable of the plurality of energy storage batteries being fixedly connected to the back of the charging body;
[0007] Two electric telescopic rods are fixed to the bottom end of the inner part of the mother shell, and the top surfaces of the telescopic ends of the two electric telescopic rods are fixedly connected to the top end of the inner part of the sub-shell. Four square cylinders are fixed to the bottom end of the inner part of the mother shell, and the inner walls of the four square cylinders are respectively slidably mounted with slider blocks. The top surfaces of the four slider blocks are respectively fixed with long rods, and the top surfaces of the four long rods are fixed with rain shields. The bottoms of the outer walls of the four long rods are fixed with sub-shells. Under the restriction of the square cylinders, the vibration amplitude generated when the long rods move upward is reduced, so that the sub-shells on the long rods can move upward steadily. In the process of the sub-shell stably lifting the electrical cabinet, rainwater accumulated on the ground during heavy rain will not soak the energy storage battery in the electrical cabinet. An anti-collision component is provided on the top of the inner part of the sub-shell;
[0008] The anti-collision assembly includes two vertical plates, which are fixed to the top of the inner part of the sub-shell. The bottom surfaces of the two vertical plates are hinged with a circular frame. The sides of the two vertical plates away from each other are fixed with arc-shaped spring plates. The sides of the two arc-shaped spring plates away from the two vertical plates are fixedly mounted on the outer walls of the two circular frames. Rubber rollers are rotatably mounted on the bottoms of the two circular frames. The rectangular plate restricts the other end of the cable of the energy storage battery from moving out of the rain shield, so that the other end of the cable of the energy storage battery can be restrained in the device by the rectangular plate.
[0009] A limiting device is provided on the top surface of the sub-shell, and a rainproof device is provided on the side where the limiting devices are close to each other.
[0010] According to the above technical solution, heat dissipation ports are opened on the left and right sides of the charging body, the charging gun is mounted on the front of the T-shaped frame, the mother shell is located behind the T-shaped frame, the four square tubes are located at the four corners inside the sub-shell, the rain shield is located above several electrical cabinets, and the two rubber rollers are located at the bottom end of the mother shell.
[0011] According to the above technical solution, the limiting device includes an L-shaped plate, two slot plates, four L-shaped connecting plates, and two rectangular plates. The L-shaped plate is fixed on the top surface of the subshell, the L-shaped plate is located behind the T-shaped frame, the two slot plates are fixed on the back of the T-shaped frame, and the two slot plates are provided with through slots on the right side of the two slot plates. The inner walls of the through slots of the two slot plates are slidably connected to the outer walls of the L-shaped plate. The four L-shaped connecting plates are fixed on the top surface of the L-shaped plate, and the four L-shaped connecting plates are arranged in groups of two on the left and right sides of the L-shaped plate. The two rectangular plates are fixed on the side away from each other of the four L-shaped connecting plates. The rectangular plate limits the other end cable of the energy storage battery from moving out of the rain shield, so that the other end cable of the energy storage battery can be restricted in the equipment by the rectangular plate.
[0012] According to the above technical solution, the limiting device also includes four arc blocks, two arc-shaped elastic strips and four rubber blocks. The four arc blocks are fixed on the top of the side where the four L-shaped connecting plates are close to each other. The two arc-shaped elastic strips are respectively embedded on the side where the four arc blocks are close to each other. The four rubber blocks are respectively fixed on the top surfaces of the two arc-shaped elastic strips in groups of two. The arc-shaped elastic strips drive the rubber blocks to move, and the rubber blocks clamp the cable at the other end of the energy storage battery, so that the cable at the other end of the energy storage battery is not easily deformed and entangled.
[0013] According to the above technical solution, the L-shaped plate is located below the other end cables of the energy storage batteries, and the other end cables of the energy storage batteries are on the movement tracks of the four rubber blocks.
[0014] According to the above technical solution, the rainproof device includes two L-shaped abutments, two U-shaped frames, two rollers, two L-shaped rods and two L-shaped shields. The two L-shaped abutments are fixed on the side where the two rectangular plates are close to each other, the two L-shaped abutments are located on the side where the two trough plates are away from each other, the two U-shaped frames are fixed on the right sides of the two L-shaped abutments, the two L-shaped rods are fixed on the side where the two L-shaped abutments are away from each other, and the two L-shaped shields are fixed on the top of the outer walls of the two L-shaped rods. During the upward movement of the L-shaped shield, the L-shaped shield moves to the heat dissipation port of the charging body, so that the heat dissipation port of the charging body will not be wetted by rain.
[0015] According to the above technical solution, the rainproof device also includes two square boxes, four springs, four sliders and two L-shaped bottom arc plates. The two square boxes are fixed on the side of the two L-shaped shielding plates away from each other. The top surfaces of the two square boxes are provided with sliding strip openings. The four springs are fixed in groups of two in front and back of the inner walls of the two square boxes. The four sliders are fixed on the side of the four springs away from each other. The four sliders are in sliding contact with the inner walls of the two square boxes. The two L-shaped bottom arc plates are fixed on both sides of the top surface of the charging body. Under the elastic force of the springs, the sliders clamp the L-shaped bottom arc plates, so that the L-shaped shielding plates will not loosen during the process of keeping out the rain.
[0016] According to the above technical solution, the two heat dissipation ports of the charging body are located on the movement trajectory of the two L-shaped shielding plates, and the outer walls of the two L-shaped bottom arc plates are in sliding contact with the inner walls of the sliding strip ports of the two square boxes.
[0017] According to the above technical solution, the landscape circulating self-irrigating steel structure tree includes a trunk and branches, round steel stirrups, and a drip irrigation system; a water tank is provided at the top of the trunk, a flower pot is hung on the outside of the trunk, and a water reservoir is provided at the bottom of the trunk. The top of the water tank is connected to the water reservoir through a pipe, and a water pump is provided on the pipe; a flower pot is hung on the outer circle of the branch; an automatic dripping device for purified water is provided on the upper part of the flower pot; a solar panel is provided at the top of the trunk, a rainwater collection trough is provided at the bottom of the solar panel, a pipe filter is provided at the bottom of the rainwater collection trough and is connected to the water tank, a landscape light is provided in the middle of the branch, a battery is provided at the bottom of the trunk, and the solar panel is electrically connected to the battery.
[0018] The present invention provides an integrated landscape steel structure charging pile. It has the following beneficial effects:
[0019] (1) The present invention uses a mother shell, a square tube, a sliding block, an electric telescopic rod, a long pole, a rain shield, a sub-shell, an electric cabinet, an energy storage battery, a vertical plate, a circular frame and an arc-shaped spring piece in conjunction with a rubber roller. Under the restriction of the square tube, the vibration amplitude generated when the long pole moves upward is reduced, so that the sub-shell on the long pole can move upward steadily, and the vibration of the sub-shell is prevented from causing internal damage to the energy storage battery when the sub-shell lifts the electric cabinet. In the process of the sub-shell stably lifting the electric cabinet, rainwater accumulated on the ground due to heavy rain will not soak the energy storage battery in the electric cabinet, and the energy storage battery in the electric cabinet will not be soaked by rainwater when the charging pile is used in rainy days, causing damage to the output power supply of the charging main body. In addition, under the elastic force of the arc-shaped spring piece, the rubber roller is tightly pressed against the mother shell, so that when the sub-shell contacts the mother shell, the sub-shell will not hit the mother shell, and the sub-shell will not hit the mother shell when the charging pile recovers after rain, causing internal damage to the equipment.
[0020] (2) The present invention sets a limiting device so that the L-shaped plate, the groove plate, the L-shaped connecting plate, the rectangular plate, the arc block and the arc-shaped elastic strip plate cooperate with the rubber block. The rectangular plate limits the other end cable of the energy storage battery from moving out of the rain shield, so that the other end cable of the energy storage battery can be restricted in the device by the rectangular plate, thereby preventing the other end cable of the energy storage battery from moving out of the rain shield when the charging pile is used on rainy days and causing the cable to be damaged by rain. In addition, the arc-shaped elastic strip plate drives the rubber block to move, and the rubber block clamps the other end cable of the energy storage battery, so that the other end cable of the energy storage battery is not easily deformed and entangled, thereby preventing the other end cable of the energy storage battery from being deformed and entangled when the charging pile is used on rainy days and causing the cable to be entangled and damaged.
[0021] (3) The present invention sets a rainproof device so that the L-shaped plate, U-shaped frame, roller, L-shaped rod, L-shaped shield, square box, spring box slider cooperate with the L-shaped bottom arc plate. When the L-shaped shield moves upward, it moves to the heat dissipation port of the charging main body, so that the heat dissipation port of the charging main body will not be wetted by rainwater, and the heat dissipation port of the charging main body will not be wetted by rainwater when the charging pile is used on rainy days, causing the internal parts of the equipment to be damaged by water. Moreover, under the elastic force of the spring, the slider clamps the L-shaped bottom arc plate, so that the L-shaped shield will not be loosened during the process of shielding the rain, and the L-shaped shield will not be loosened when the charging pile is used on rainy days, causing the equipment to have a poor rain shielding effect.
[0022] (4) The top steel structure of the present invention can realize the water storage function of the bottom foundation, and can also play a role in drainage and drainage, draining rainwater into the manhole, protecting the energy storage battery from being soaked in water, and not occupying ground space. The steel structure can be used as a climbing frame for green plants, which can achieve the purpose of rapid urban space greening. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 A schematic diagram of the present invention as a whole;
[0024] Figure 2 A schematic diagram of a part of the present invention
[0025] Figure 3 It is a partial cross-sectional schematic diagram of the present invention;
[0026] Figure 4 It is a cross-sectional schematic diagram of the mother shell of the present invention;
[0027] Figure 5 For the present invention Figure 4 A partial enlarged schematic diagram of point A in the middle;
[0028] Figure 6 is a schematic cross-sectional view of the limiting device of the present invention;
[0029] Figure 7 For the present invention Figure 6 A partial enlarged schematic diagram of point B in the middle;
[0030] Figure 8 is a schematic cross-sectional view of a rainproof device of the present invention;
[0031] Figure 9 For the present invention Figure 8 A partial enlarged schematic diagram of point C in the middle.
[0032] Figure: 1. Ground; 2. T-shaped frame; 3. Charging body; 4. Charging gun; 5. Mother shell; 6. Limiting device; 61. L-shaped plate; 62. Slot plate; 63. L-shaped connecting plate; 64. Rectangular plate; 65. Arc block; 66. Arc elastic strip plate; 67. Rubber block; 7. Rainproof device; 71. L-shaped stop plate; 72. U-shaped frame; 73. Roller; 74. L-shaped rod; 75. L-shaped shield; 76. Square box; 77. Spring; 78. Slider; 79. L-shaped bottom arc plate; 8. Square tube; 9. Slider block; 10. Electric telescopic rod; 1 1. Long pole; 12. Rain shield; 13. Subshell; 131. Electrical cabinet; 132. Energy storage battery; 14. Vertical board; 15. Frame; 16. Arc-shaped spring; 17. Rubber roller; 81. Trunk; 82. Branches; 83. Round steel stirrups; 84. Water tank; 85. Reservoir; 86. Water pump; 87. Pipeline; 88. Drip irrigation system; 89. Flower pot; 810. Automatic dripping device; 811. Solar panel; 812. Rainwater collection tank; 813. Pipeline filter; 814. Landscape light; 815. Battery. DETAILED DESCRIPTION
[0033] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.
[0034] See also Figures 1-9 One embodiment of the present invention is: an integrated landscape steel structure charging pile, including a charging body 3 and a landscape circulating self-filling steel structure tree, a T-shaped frame 2 is fixed to the bottom of the charging body 3, the T-shaped frame 2 is fixedly installed on the ground 1, a cable of a charging gun 4 is fixedly installed on the left side of the charging body 3, heat dissipation vents are opened on the left and right sides of the charging body 3, and the charging gun 4 is mounted on the front of the T-shaped frame 2;
[0035] A mother shell 5 is buried in the ground 1, and a sub-shell 13 is slidably mounted on the inner wall of the mother shell 5. Several electric cabinets 131 are fixedly mounted on the top surface of the sub-shell 13. Energy storage batteries 132 are fixedly mounted on the bottom ends of the internal parts of the several electric cabinets 131. The several energy storage batteries 132 are interconnected by cables. One end of the cable of the several energy storage batteries 132 passes through and is fixedly mounted on the top surface of the sub-shell 13. One end of the cable of the several energy storage batteries 132 passes through and is fixed on the internal bottom end of the mother shell 5. One end of the cable of the several energy storage batteries 132 is connected to the landscape steel structure, and the other end of the cable of the several energy storage batteries 132 is fixedly connected to the back of the charging body 3;
[0036] Two electric telescopic rods 10 are fixed to the bottom end of the inner part of the mother shell 5. The top surface of the telescopic end of the two electric telescopic rods 10 is fixedly connected to the top of the inner part of the sub-shell 13. Four square tubes 8 are fixed to the bottom end of the inner part of the mother shell 5. The inner walls of the four square tubes 8 are respectively slidably installed with slide blocks 9. The top surfaces of the four slide blocks 9 are respectively fixed with long rods 11. The top surfaces of the four long rods 11 are fixed with rain shields 12. The bottom of the outer wall of the four long rods 11 is fixedly installed with a sub-shell 13. The mother shell 5 is located behind the T-shaped frame 2. The four square tubes 8 are located at the four inner corners of the sub-shell 13. The rain shield 12 is located at several electrical cabinets 1 31, under the restriction of the square tube 8, the vibration amplitude generated when the long rod 11 moves upward is reduced, so that the sub-shell 13 on the long rod 11 can move upward steadily, avoiding the vibration of the sub-shell 13 when the sub-shell 13 lifts the electric cabinet 131 and causing damage to the internal energy storage battery 132. In the process of the sub-shell 13 stably lifting the electric cabinet 131, rainwater accumulated on the ground 1 due to heavy rain will not soak the energy storage battery 132 in the electric cabinet 131, thus avoiding the energy storage battery 132 in the electric cabinet 131 being soaked by rainwater when the charging pile is used in rainy days and causing damage to the output power of the charging main body 3;
[0037] An anti-collision component is provided at the top of the inner part of the sub-shell 13, and the anti-collision component includes two vertical plates 14, the two vertical plates 14 are fixed at the top of the inner part of the sub-shell 13, and the bottom surfaces of the two vertical plates 14 are hinged with a circular frame 15, and the two vertical plates 14 are fixed with an arc-shaped spring piece 16 on the side away from each other. The two arc-shaped spring pieces 16 are fixedly installed on the outer walls of the two circular frames 15 on the side away from the two vertical plates 14, and rubber rollers 17 are rotatably installed at the bottom of the two circular frames 15. The two rubber rollers 17 are located at the bottom end of the inner part of the mother shell 5. Under the elastic force of the arc-shaped spring piece 16, the rubber roller 17 is tightly pressed against the mother shell 5, so that when the sub-shell 13 contacts the mother shell 5, the sub-shell 13 will not hit the mother shell 5, so as to avoid the sub-shell 13 hitting the mother shell 5 when the charging pile is restored after rain, causing damage to the internal equipment.
[0038] During use, the ground 1 supports the T-shaped frame 2, the T-shaped frame 2 supports the charging body 3, and the charging body 3 supports the charging gun 4. The user picks up the charging gun 4 on the charging body 3 to charge. Due to the heavy rain, a large amount of rainwater quickly accumulates on the ground 1, and the rainwater easily soaks under the electric cabinet 131. During daily use, the integrated landscape steel structure continuously charges the energy storage battery 132 in the electric cabinet 131 through the cable, and the energy storage battery 132 transmits electricity to the charging body 3 through the cable. When encountering heavy rain, the buried mother shell 5 supports the electric telescopic rod 10, and the staff starts the electric telescopic rod 10. The telescopic end of the electric telescopic rod 10 drives the subshell 13 to move upward. At the same time, the subshell 13 drives the long rod 11 to move upward, and the long rod 11 drives the rain shield 12 to move upward. The rain shield 1 2. To prevent rain from wetting the electric cabinet 131, the long rod 11 drives the slider block 9 to move upward, and the slider block 9 moves upward in the square cylinder 8. Under the restriction of the square cylinder 8, the vibration amplitude generated when the long rod 11 moves upward is reduced, so that the sub-shell 13 on the long rod 11 can move upward steadily, thereby avoiding the problem of damage to the internal energy storage battery 132 caused by the vibration of the sub-shell 13 when the sub-shell 13 lifts the electric cabinet 131. In the process of the sub-shell 13 stably lifting the electric cabinet 131, the rainwater accumulated on the ground 1 by the heavy rain will not soak into the energy storage battery 132 in the electric cabinet 131, thereby preventing the energy storage battery 132 in the electric cabinet 131 from being soaked by rainwater when the equipment is used in rainy days, thereby avoiding the problem of damage to the output power supply of the charging main body 3 caused by rainwater soaking the energy storage battery 132 in the electric cabinet 131 when the charging pile is used in rainy days.
[0039] When the telescopic end of the electric telescopic rod 10 drives the sub-shell 13 to move upward, the sub-shell 13 drives the vertical plate 14 to move upward, the vertical plate 14 drives the circular frame 15 to move upward, the circular frame 15 drives the arc-shaped spring piece 16 to move upward, and the arc-shaped spring piece 16 drives the rubber roller 17 to move upward. At the same time, the arc-shaped spring piece 16 in the squeezed state begins to deform, and the arc-shaped spring piece 16 drives the circular frame 15 to rotate. The circular frame 15 rotates in the vertical plate 14, and the circular frame 15 drives the rubber roller 17 to rotate. After the rainstorm, the telescopic end of the electric telescopic rod 10 is reset, and the telescopic end of the electric telescopic rod 10 drives the sub-shell 13 to move downward, the sub-shell 13 drives the vertical plate 14 to move downward, and the vertical plate 14 carries The movable circular frame 15 moves downward, and the circular frame 15 drives the rubber roller 17 to move downward. In the process of moving downward, the rubber roller 17 contacts the mother shell 5. Under the action of the extrusion force, the rubber roller 17 rolls on the mother shell 5, and the circular frame 15 rotates on the vertical plate 14. The arc-shaped spring piece 16 on the vertical plate 14 begins to be squeezed and deformed. Under the elastic force of the arc-shaped spring piece 16, the rubber roller 17 is tightly pressed against the mother shell 5, so that when the sub-shell 13 contacts the mother shell 5, the sub-shell 13 will not hit the mother shell 5, preventing the sub-shell 13 from hitting the mother shell 5 when the device is in use, thereby avoiding the problem of the sub-shell 13 hitting the mother shell 5 when the charging pile is restored after rain, causing internal damage to the device.
[0040] See also Figures 1-9 On the basis of the above embodiment, in another embodiment of the present invention, a limiting device 6 is provided on the top surface of the sub-shell 13. The limiting device 6 includes an L-shaped plate 61, two slot plates 62, four L-shaped connecting plates 63, and two rectangular plates 64. The L-shaped plate 61 is fixed to the top surface of the sub-shell 13. The L-shaped plate 61 is located behind the T-shaped frame 2. The two slot plates 62 are fixed to the back of the T-shaped frame 2. A through groove is opened on the right side of the two slot plates 62. The inner wall of the through groove of the two slot plates 62 is slidably connected to the outer wall of the L-shaped plate 61. The four L-shaped connecting plates 63 are fixed to the top surface of the L-shaped plate 61. The four L-shaped connecting plates 63 are arranged in groups of two on the left and right sides of the L-shaped plate 61, and the two rectangular plates 64 are fixed on the side of the four L-shaped connecting plates 63 away from each other. The L-shaped plate 61 is located below the other end cables of the energy storage batteries 132. The rectangular plate 64 restricts the other end cables of the energy storage batteries 132 from moving out of the rain shield 12, so that the other end cables of the energy storage batteries 132 can be restricted in the equipment by the rectangular plate 64, thereby preventing the other end cables of the energy storage batteries 132 from moving out of the rain shield 12 when the charging pile is used in rainy days, causing the cables to be damaged by rain.
[0041] The limiting device 6 also includes four arc blocks 65, two arc-shaped elastic strips 66 and four rubber blocks 67. The four arc blocks 65 are fixed to the top of the side where the four L-shaped connecting plates 63 are close to each other. The two arc-shaped elastic strips 66 are respectively embedded in the side where the four arc blocks 65 are close to each other. The four rubber blocks 67 are respectively fixed on the top surface of the two arc-shaped elastic strips 66 in groups of two. The other end cables of the energy storage batteries 132 are on the movement trajectory of the four rubber blocks 67. The arc-shaped elastic strips 66 drive the rubber blocks 67 to move. The rubber blocks 67 clamp the other end cables of the energy storage batteries 132, so that the other end cables of the energy storage batteries 132 are not easily deformed and entangled, thereby avoiding the deformation and entanglement of the cables at the other end of the energy storage batteries 132 when the charging pile is used in rainy days, causing cable entanglement and damage.
[0042] The side where the limit devices 6 are close to each other is provided with a rainproof device 7, which includes two L-shaped abutments 71, two U-shaped frames 72, two rollers 73, two L-shaped rods 74 and two L-shaped shielding plates 75. The two L-shaped abutments 71 are fixed on the side where the two rectangular plates 64 are close to each other, and the two L-shaped abutments 71 are located on the side where the two slot plates 62 are away from each other. The two U-shaped frames 72 are fixed on the right side of the two L-shaped abutments 71, and the two L-shaped rods 74 are fixed on the side where the two L-shaped abutments 71 are away from each other. The two L-shaped shielding plates 75 are fixed on the top of the outer walls of the two L-shaped rods 74. The two heat dissipation ports of the charging body 3 are located on the movement trajectories of the two L-shaped shielding plates 75. When the L-shaped shielding plates 75 move upward, the L-shaped shielding plates 75 move to the heat dissipation ports of the charging body 3, so that the heat dissipation ports of the charging body 3 will not be wetted by rainwater, thereby preventing the heat dissipation ports of the charging body 3 from being wetted by rainwater when the charging pile is used in rainy days, causing water damage to the internal parts of the equipment.
[0043] The rainproof device 7 also includes two square boxes 76, four springs 77, four sliders 78 and two L-shaped bottom arc plates 79. The two square boxes 76 are fixed on the side of the two L-shaped shielding plates 75 away from each other. The top surfaces of the two square boxes 76 are provided with sliding strip openings. The four springs 77 are fixed in pairs at the front and back of the inner walls of the two square boxes 76. The four sliders 78 are fixed on the side of the four springs 77 away from each other. The four sliders 78 are in sliding contact with the inner walls of the two square boxes 76. The two L-shaped bottom arc plates 79 are fixed on both sides of the top surface of the charging body 3. The outer walls of the two L-shaped bottom arc plates 79 are in sliding contact with the inner walls of the sliding strip openings of the two square boxes 76. Under the elastic force of the springs 77, the sliders 78 clamp the L-shaped bottom arc plates 79, so that the L-shaped shielding plates 75 will not loosen during the rain-proof process, thereby avoiding the L-shaped shielding plates 75 from loosening when the charging pile is used in rainy days, resulting in poor rain-proof effect of the equipment.
[0044] When the telescopic end of the electric telescopic rod 10 drives the sub-shell 13 to move upward, the sub-shell 13 drives the L-shaped plate 61 to move upward, and the L-shaped plate 61 slides upward in the through groove of the slot plate 62. The L-shaped plate 61 drives the L-shaped connecting plate 63 to move upward, and the L-shaped connecting plate 63 drives the rectangular plate 64 to move upward. In the process of the L-shaped plate 61 moving upward, the L-shaped plate 61 contacts the other end cable of the energy storage battery 132. Under the action of the squeezing force, the other end cable of the energy storage battery 132 begins to deform, so that the rectangular plate 64 restricts the other end cable of the energy storage battery 132 from moving out of the rain shield 12, so that the other end cable of the energy storage battery 132 can be restricted in the equipment by the rectangular plate 64, preventing the other end cable of the energy storage battery 132 from moving out of the rain shield 12 when the equipment is in use, thereby avoiding the problem that the other end cable of the energy storage battery 132 moves out of the rain shield 12 when the charging pile is used in rainy days, causing the cable to be damaged by rain.
[0045] When the L-shaped plate 61 drives the L-shaped connecting plate 63 to move upward, the L-shaped connecting plate 63 drives the arc block 65 to move upward, the arc block 65 drives the arc-shaped elastic plate 66 to move upward, and the arc-shaped elastic plate 66 drives the rubber block 67 to move upward. In the process of the arc-shaped elastic plate 66 moving upward, the arc-shaped elastic plate 66 contacts the other end cable of the energy storage battery 132. Under the action of the extrusion force, the arc-shaped elastic plate 66 is deformed, and the arc-shaped elastic plate 66 drives the rubber block 67 to move, so that the rubber block 67 clamps the other end cable of the energy storage battery 132, so that the other end cable of the energy storage battery 132 is not easily deformed and entangled, thereby preventing the other end cable of the energy storage battery 132 from being deformed and entangled when the device is in use, thereby avoiding the problem of cable entanglement and damage caused by deformation and entanglement of the other end cable of the energy storage battery 132 when the charging pile is used in rainy days.
[0046] When the L-shaped connecting plate 63 drives the rectangular plate 64 to move upward, the rectangular plate 64 drives the L-shaped supporting plate 71 to move upward, the L-shaped supporting plate 71 drives the U-shaped frame 72 to move upward, and the U-shaped frame 72 drives the roller 73 to move upward. Under the action of friction, the roller 73 rolls on the T-shaped frame 2. Under the rolling action of the roller 73, the L-shaped supporting plate 71 stably drives the L-shaped rod 74 to move upward, and the L-shaped rod 74 drives the L-shaped shielding plate 75 to move upward, so that in the process of the L-shaped shielding plate 75 moving upward, the L-shaped shielding plate 75 moves to the heat dissipation port of the charging body 3, so that the heat dissipation port of the charging body 3 will not be wetted by rainwater, preventing the heat dissipation port of the charging body 3 from being wetted by rainwater when the device is in use, thereby avoiding the problem that the heat dissipation port of the charging body 3 is wetted by rainwater when the charging pile is used in rainy days, causing water damage to the internal parts of the device.
[0047] When locking sill 75 is in the state of being grasped, the position of locking sill 77 and locking sill 77 in the state of being grasped by locking sill 77 are changed, and locking sill 77 is in the state of being grasped by locking sill 77, and locking sill 77 is in the state of being grasped by locking sill 77.
[0048] See also Figure 1On the basis of the above embodiment, in another embodiment of the present invention, a landscape circulation self-irrigation steel structure tree includes a trunk 81, branches 82, round steel stirrups 83, a water tank 84, and a water reservoir 85. The water reservoir 85 is connected to the top water tank 84 through a pipe 87, and the rainwater is pumped into the top water tank 84 through a water pump 86 and a pipe 87. The water is then pumped into the top water tank 84 through a drip irrigation system 88 and flows into the flower pot 89. The trunk 81 and branches 82 are made of carbon steel hot-dip galvanized steel components, and the hanging flower pot 89 adopts various It is made of discarded plastic oil drums, which have the advantages of being strong, durable, and resistant to exposure, and has a good effect on waste utilization; various potted plants that have been cultivated in advance are hung on the external round steel stirrups 83 of the branches 82, and an automatic water-purifying device 810 is set on the upper part of the flowerpot 89. The automatic water-purifying device 810 can be remotely controlled in a mobile phone app, and a temperature and humidity sensor is set in the flowerpot 89. Real-time data can be viewed on the mobile phone, and the temperature and humidity data limit values can be set as the switch trigger point of the automatic watering device to achieve intelligent control. A solar panel 811 is provided on the top of the trunk 81, and a rainwater collection trough 812 is provided under the solar panel 811. The rainwater collection trough 812 can also collect the discharge water after washing the solar panel 811. The water in the rainwater collection trough 812 is processed by the filter 813 and flows into the water tank. A landscape light 814 is provided in the middle of the branch 82, and the electricity generated is sent to the battery 815 at the bottom of the trunk 81. The battery 815 provides green electricity for the water pump 86 and the landscape light 814.
[0049] The other solar panels 811 also cycle charge the electrical cabinet 131, which consists of the following components:
[0050] Battery pack: This is the core part of energy storage;
[0051] Battery management system: responsible for monitoring and managing the status of the battery;
[0052] Energy storage converter: converts DC power into AC power;
[0053] Control cabinet: contains various control devices and circuits;
[0054] Cooling system: keeps the battery within a suitable temperature range;
[0055] Fire protection system: ensure safety;
[0056] Monitoring system: monitors the operating status of the energy storage cabinet in real time.
[0057] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.
Claims
1. An integrated landscape steel structure charging pile, comprising a charging body, a T-shaped frame fixed to the bottom of the charging body, the T-shaped frame fixedly mounted on the ground, and a charging gun cable fixedly mounted on the left side of the charging body, characterized in that: A mother shell is buried in the ground, a sub-shell is slidably mounted on the inner wall of the mother shell, a plurality of electrical cabinets are fixedly mounted on the top surface of the sub-shell, energy storage batteries are fixedly mounted on the bottom ends of the interiors of the plurality of electrical cabinets, the energy storage batteries are interconnected by cables, one end of the cables of the plurality of energy storage batteries passes through and is fixedly mounted on the top surface of the sub-shell, one end of the cables of the plurality of energy storage batteries passes through and is fixed on the inner bottom end of the mother shell, one end of the cables of the plurality of energy storage batteries is connected to the landscape steel structure, and the other end of the cables of the plurality of energy storage batteries is fixedly connected to the back of the charging body; Two electric telescopic rods are fixed to the bottom end of the inner part of the mother shell, and the top surfaces of the telescopic ends of the two electric telescopic rods are fixedly connected to the top end of the inner part of the sub-shell. Four square tubes are fixed to the bottom end of the inner part of the mother shell, and the inner walls of the four square tubes are slidably mounted with slide blocks. The top surfaces of the four slide blocks are respectively fixed with long rods, and the top surfaces of the four long rods are fixed with rain shields. The bottom of the outer wall of the four long rods is fixedly mounted with a sub-shell, and the top end of the sub-shell is provided with an anti-collision component; The anti-collision assembly includes two vertical plates, the two vertical plates are fixed to the top of the inner part of the sub-shell, the bottom surfaces of the two vertical plates are hinged with a circular frame, the sides of the two vertical plates away from each other are fixed with arc-shaped spring plates, the sides of the two arc-shaped spring plates away from the two vertical plates are fixedly mounted on the outer walls of the two circular frames, and the bottoms of the two circular frames are rotatably mounted with rubber rollers; The top surface of the sub-shell is provided with a limiting device, and the limiting device includes an L-shaped plate, two slot plates, four L-shaped connecting plates, and two rectangular plates. The L-shaped plate is fixed to the top surface of the sub-shell, and the L-shaped plate is located behind the T-shaped frame. The two slot plates are fixed to the back of the T-shaped frame. A through slot is opened on the right side of the two slot plates, and the inner walls of the through slots of the two slot plates are slidably connected to the outer wall of the L-shaped plate. The four L-shaped connecting plates are fixed to the top surface of the L-shaped plate, and the four L-shaped connecting plates are respectively arranged in groups of two on the left and right sides of the L-shaped plate. The two rectangular plates are fixed on the side of the four L-shaped connecting plates away from each other, and a rainproof device is provided on the side of the limiting device close to each other.
2. The integrated landscape steel structure charging pile according to claim 1, characterized in that: There are heat dissipation holes on the left and right sides of the charging body. The charging gun is mounted on the front of the T-shaped frame. The mother shell is located behind the T-shaped frame. The four square tubes are located at the four corners inside the sub-shell. The rain shield is located above several electrical cabinets. The two rubber rollers are located at the bottom end of the mother shell.
3. The integrated landscape steel structure charging pile according to claim 2, characterized in that: The limiting device also includes four arc blocks, two arc-shaped elastic strips and four rubber blocks. The four arc blocks are fixed on the top of the side where the four L-shaped connecting plates are close to each other. The two arc-shaped elastic strips are respectively embedded on the side where the four arc blocks are close to each other. The four rubber blocks are respectively fixed on the top surface of the two arc-shaped elastic strips in groups of two.
4. The integrated landscape steel structure charging pile according to claim 3, characterized in that: The L-shaped plate is located below the other end cables of the plurality of energy storage batteries, and the other end cables of the plurality of energy storage batteries are located on the movement tracks of the four rubber blocks.
5. The integrated landscape steel structure charging pile according to claim 4, characterized in that: The rainproof device includes two L-shaped abutments, two U-shaped frames, two rollers, two L-shaped rods and two L-shaped shields. The two L-shaped abutments are fixed on the side of the two rectangular plates that are close to each other, the two L-shaped abutments are located on the side of the two trough plates that are away from each other, the two U-shaped frames are fixed on the right sides of the two L-shaped abutments, the two L-shaped rods are fixed on the side of the two L-shaped abutments that are away from each other, and the two L-shaped shields are fixed on the top of the outer walls of the two L-shaped rods.
6. The integrated landscape steel structure charging pile according to claim 5, characterized in that: The rainproof device also includes two square boxes, four springs, four sliders and two L-shaped bottom arc plates. The two square boxes are fixed on the side of the two L-shaped shielding plates away from each other. The top surfaces of the two square boxes are provided with sliding strip openings. The four springs are fixed in groups of two in front and behind the inner walls of the two square boxes. The four sliders are fixed on the side of the four springs away from each other. The four sliders are in sliding contact with the inner walls of the two square boxes. The two L-shaped bottom arc plates are fixed on both sides of the top surface of the charging body.
7. The integrated landscape steel structure charging pile according to claim 6, characterized in that: The two heat dissipation openings of the charging body are located on the movement tracks of the two L-shaped shielding plates, and the outer walls of the two L-shaped bottom arc plates are in sliding contact with the inner walls of the sliding strip openings of the two square boxes.
Citation Information
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Charging pile with protection structure
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