New energy vehicle circular track circulating battery replacing station

By adopting circular track cycle design and battery swap robots in new energy vehicle battery swap stations, the problem of unreasonable planning of the battery swap stations is solved, and safer and more reliable battery pack handling and lower operating costs are achieved.

CN223279073UActive Publication Date: 2025-08-29安易行(常州)新能源科技有限公司
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Patent Information

Application Number
CN202422720985.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-08
Publication Date
2025-08-29
Estimated Expiration
2034-11-08

AI Technical Summary

Technical Problem

The existing new energy vehicle battery swap station is unreasonable and takes up a large space. The use of forks to carry poses safety risks and high operating costs.

Method used

The circular track cycle design is adopted, including the battery cycle charging chamber, cache station and charging station. The battery swap robot is used to carry the battery pack, reducing space and avoiding the use of forks.

Benefits of technology

Through the circular track cycle design, the space occupied by the battery swap station is reduced, safety is improved and operating costs is reduced, and the internal layout pain points of traditional battery swap stations are solved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an annular track circulating battery swapping station for a new energy vehicle. The station comprises a battery circulating charging bin, a vehicle battery swapping port and a battery swapping robot for swapping the new energy vehicle, the battery circulation charging bin comprises an annular track, a cache station and a plurality of charging stations, the cache station and the charging stations are annularly arranged along the annular track, and each of the cache station and the charging stations comprises a carrier and a conveying driving mechanism for driving the carrier to move along the annular track. The carrier is located above the annular track, and a battery pack is placed on the carrier of the charging station; and the temporary storage station communicates with the vehicle battery replacing opening, and the battery replacing robot carries the battery pack between the temporary storage station and the new energy vehicle. The circular track circular design is adopted, the occupied space is reduced, the problem of internal layout pain points of a traditional battery replacing station is solved, and the follow-up use cost and the burst problem in the later use process are greatly reduced.
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Description

Technical Field

[0001] The utility model belongs to the technical field of battery swap stations, and in particular relates to a circular track cycle battery swap station for new energy vehicles. Background Art

[0002] New energy vehicles refer to vehicles that use unconventional automotive fuels as their power source (or use conventional automotive fuels but adopt new on-board power devices), and integrate advanced technologies in vehicle power control and drive to form vehicles with advanced technical principles, new technologies, and new structures.

[0003] New energy vehicles, with their zero-pollution and low-noise advantages and the country's vigorous promotion, are seeing a year-on-year increase in their number. As supporting facilities for these vehicles, an increasing number of new energy vehicle battery swap stations are being built. However, existing battery swap stations suffer from irrational planning and layout. Limited by the station's location, battery swaps require forklifts to transport batteries to the swapping station, increasing safety risks and operating costs. Utility Model Content

[0004] The main technical problem solved by this utility model is to provide a circular track circulation battery swap station for new energy vehicles. It adopts a circular track circulation design to reduce the occupied space, solves the pain points of the internal layout of traditional battery swap stations, and greatly reduces the cost of subsequent use and the problems that arise during later use.

[0005] In order to solve the above technical problems, the present invention adopts a technical solution: a circular track cycle battery swap station for new energy vehicles, comprising a battery cycle charging compartment, a vehicle battery swap port and a battery swap robot for swapping batteries for new energy vehicles;

[0006] The battery circulation charging warehouse includes a circular track, a cache station and a plurality of charging stations, the cache station and the plurality of charging stations are arranged in a circular manner along the circular track, the cache station and the plurality of charging stations each include a carrier and a conveying drive mechanism for driving the carrier to move along the circular track, the carrier is located above the circular track, and the carrier of the charging station is placed with a battery pack;

[0007] The cache station is connected to the vehicle battery swap port, and the battery swap robot transports the battery pack between the cache station and the new energy vehicle. The circular track circulation design reduces the occupied space and delivers the charged battery to the cache station. This structure completely subverts the battery layout concept of traditional new energy vehicle battery swapping, solves the internal layout pain points of traditional battery swap stations in a safer and more reliable way, avoids the use of forks, and greatly reduces the cost of subsequent use and the problems that may arise during later use.

[0008] The battery-swapping robot includes a sling, an X-direction movable frame, a Y-direction movable frame, a lifting drive mechanism for driving the sling up and down, an X-direction drive mechanism for driving the X-direction movable frame, and a Y-direction drive mechanism for driving the Y-direction movable frame.

[0009] Furthermore, a turntable is installed below the carrier, and guide wheels are installed on both sides of the turntable. The guide wheels are located above the circular track and can roll along the circular track.

[0010] Furthermore, the conveying drive mechanism includes a roller and a conveying drive motor, the roller is in close contact with the annular track, and the roller is connected to the conveying drive motor, and the conveying drive motor is fixed to the turntable.

[0011] Furthermore, a charging module is provided below the cache station and several of the charging stations.

[0012] Furthermore, the X-direction drive mechanism includes an X-direction walking wheel, an X-direction guide rail and an X-direction mobile driving motor. The X-direction mobile driving motor is installed on the X-direction mobile frame, and the output shaft of the X-direction mobile driving motor is connected to the X-direction steering gear. The X-direction steering gear is connected to the X-direction walking wheel. The X-direction walking wheel is located above the X-direction track and can roll along the direction of the X-direction track. The X-direction track is installed at the battery swap station.

[0013] Furthermore, the Y-direction drive mechanism includes a Y-direction walking wheel, a Y-direction guide rail and a Y-direction movement driving motor, the Y-direction movement driving motor is installed on the Y-direction moving frame, and the output shaft of the Y-direction moving driving motor is connected to the Y-direction steering gear, the Y-direction steering gear is connected to the Y-direction walking wheel, the Y-direction walking wheel is located above the Y-direction track and can roll along the direction of the Y-direction track, and the Y-direction track is installed on the X-direction moving frame.

[0014] Furthermore, the lifting drive mechanism includes several groups of pulley assemblies, steel wire ropes wound around the pulley assemblies, a drum and a lifting drive motor. The pulley assembly includes a fixed pulley and two movable pulleys. The fixed pulley is installed on the Y-axis movable frame, and the two movable pulleys are installed on the sling. The steel wire rope passes around the fixed pulley and the two ends of the steel wire rope pass through the two movable pulleys and are connected to the drum. The drum is connected to the gear box, and the gear box is connected to the lifting drive motor. The lifting drive motor is fixed to the Y-axis movable frame.

[0015] Furthermore, the surface of the drum is provided with a threaded groove matching the wire rope, the drum is sleeved with a rope guide ring, the inner surface of the rope guide ring is provided with a threaded rib matching the threaded groove, the rope guide ring has a rope threading groove, and the wire rope passes through the rope threading groove and is wound around the threaded groove.

[0016] Furthermore, the Y-axis movable frame is installed with a limit rod, and the guide rope ring is provided with a guide groove matching the limit rod. During the process of the drum driving the wire rope to reel, the guide rope ring is limited by the limit rod, and the guide rope ring is threadedly connected to the drum, so that the guide rope ring and the drum can rotate. Through the setting of the guide rope ring, the wire rope can be stably reeled in the threaded groove of the drum.

[0017] Furthermore, the sling is equipped with a tensioning structure, which includes a guide column, a tensioning spring and a sliding block. The upper end of the guide column is fixed with a limit ring, and the lower end of the guide column passes through the sliding block and is fixed to the sling. The tensioning spring is sleeved on the guide column, and the tensioning spring is located between the limit ring and the sliding block. The movable pulley is installed on the sliding block. Through the setting of the tensioning structure, the wire rope is continuously tensioned to ensure stability during the lifting process.

[0018] The beneficial effects of the present invention include at least the following:

[0019] The battery circulation charging warehouse of the utility model includes a circular track, a cache station and a plurality of charging stations. The cache station and the plurality of charging stations are arranged in a circular shape along the circular track. The cache station and the plurality of charging stations each include a carrier and a conveying drive mechanism for driving the carrier to move along the circular track. The cache station is connected to the vehicle battery swap port. The design of the circular track circulation is adopted to reduce the occupied space and transport the charged batteries to the cache station. This structure completely subverts the battery layout idea of ​​the traditional new energy vehicle battery swap, solves the internal layout pain points of the traditional battery swap station in a safer and more reliable way, avoids the use of forks, and greatly reduces the cost of subsequent use and the problems that may arise during the later use process.

[0020] A turntable is installed below the carrier of the utility model, and guide wheels are installed on both sides of the turntable. The guide wheels are located above the circular track and can roll along the circular track, so that the rollers are driven by the conveying drive motor to rotate so that the carrier is circulated on the circular track.

[0021] The battery-exchanging robot of the present invention includes a sling, an X-axis movable frame, a Y-axis movable frame, a lifting drive mechanism for driving the sling to move up and down, an X-axis drive mechanism for driving the X-axis movable frame to move, and a Y-axis drive mechanism for driving the Y-axis movable frame to move. The X-axis movable frame moves to the top of the cache station under the drive of the X-axis drive mechanism, the lifting drive mechanism drives the sling to descend and grab the fully charged battery pack at the cache station and then lift it up, the X-axis movable frame moves to the top of the new energy vehicle under the drive of the X-axis drive mechanism, the Y-axis movable frame is adjusted under the Y-axis drive mechanism, and the lifting drive mechanism drives the sling to descend and place the battery pack on the new energy vehicle, thereby ensuring the accuracy of the position where the battery pack is placed in the new energy vehicle;

[0022] The surface of the reel of the utility model is provided with a thread groove matching the wire rope, the reel is covered with a rope guide ring, the inner surface of the rope guide ring is provided with a threaded rib matching the thread groove, the rope guide ring has a rope threading groove, the wire rope passes through the rope threading groove and is connected to the reel, the lifting drive motor drives the reel to rotate, and during the process of the reel driving the wire rope to be wound, the rope guide ring is limited by the limit rod and is threadedly connected to the reel, so that the rope guide ring and the reel rotate, and the arrangement of the rope guide ring allows the wire rope to be stably wound in the thread groove of the reel;

[0023] The sling of the utility model is installed with a tensioning structure, which includes a guide column, a tensioning spring and a sliding block. The upper end of the guide column is fixed with a limiting ring, and the lower end of the guide column passes through the sliding block and is fixed to the sling. The tensioning spring is sleeved on the guide column, and the tensioning spring is located between the limiting ring and the sliding block. The movable pulley is installed on the sliding block. Through the setting of the tensioning structure, the wire rope is continuously tensioned to ensure stability during the lifting process. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 It is a structural diagram of the utility model;

[0025] Figure 2 This is a structural diagram of the battery cycle charging bin of the present utility model;

[0026] Figure 3 This utility model Figure 2 A magnified view of point A;

[0027] Figure 4 This is a schematic structural diagram of the battery-swapping robot of the present invention;

[0028] Figure 5 It is a cross-sectional view of the X-direction movable frame of the present utility model;

[0029] Figure 6 It is a structural diagram of the Y-direction movable frame and the sling of the present utility model;

[0030] Figure 7 This utility model Figure 6 An enlarged view of point B;

[0031] Figure 8 This utility model Figure 6 The enlarged view of point C;

[0032] Figure 9 It is a cross-sectional view of the Y-direction movable frame of the present utility model;

[0033] Figure 10 It is a structural schematic diagram of the reel of the utility model;

[0034] Figure 11 This is a structural diagram of the guide rope ring of the utility model;

[0035] Figure 12 This is one of the structural diagrams of the sling of the utility model;

[0036] Figure 13 This utility model Figure 12 The enlarged view of point D;

[0037] Figure 14 This utility model Figure 12 The enlarged view of point E;

[0038] Figure 15 This is the second structural diagram of the sling of the utility model;

[0039] Figure 16 This utility model Figure 15 The enlarged view of point F;

[0040] Figure 17 It is a structural schematic diagram of the battery pack of the present utility model;

[0041] The parts in the accompanying drawings are marked as follows:

[0042] 1. Battery cycle charging compartment; 11. Circular track; 12. Cache station; 13. Charging station; 14. Battery pack; 141. Frame; 142. Card slot; 15. Carrier; 151. Turntable; 1511. Upper turntable; 1512. Lower turntable; 152. Guide wheel; 1521. Limiting convex ring; 153. Guide column; 16. Roller; 17. Conveyor drive motor; 18. Charging module; 2. Vehicle battery swap port; 3. New energy vehicle; 4. Battery swap robot; 41. Lifting device; 411. Guide column; 4111. Limiting ring; 412. Tensioning spring; 413. Sliding block; 414. Spacer; 415. Spring washer; 416. Pulley sleeve; 4161. Perforation; 42. X-axis moving frame; 43. Y-axis moving frame; 441. Wire rope; 442. Reel; 4421. Threaded groove; 443. Lifting drive motor; 444, fixed pulley; 4441, pulley mounting plate; 445, movable pulley; 446, gear box; 447, guide rope ring; 4471, threaded rib; 4472, rope threading groove; 4473, guide groove; 448, limit rod; 451, X-axis running wheel; 452, X-axis guide rail; 453, X-axis moving drive motor; 454, X-axis deflector; 461, Y-axis running wheel; 462, Y-axis guide rail; 463, Y-axis moving drive motor; 464, Y-axis deflector; 51, guide block; 52, tongue plate; 53, electric push rod; 54, rotating shaft; 55, rotating plate; 56, first adjusting block; 57, second adjusting block; 58, connecting rod; 61, proximity sensor; 62, induction washer; 63, guide rod; 631, pressing protrusion; 64, return spring; 7, guide rail. DETAILED DESCRIPTION

[0043] The preferred embodiments of the present invention are described in detail below in conjunction with the accompanying drawings so that the advantages and features of the present invention can be more easily understood by those skilled in the art, thereby making a clearer and more precise definition of the protection scope of the present invention.

[0044] Example: A circular track cycle exchange station for new energy vehicles, such as Figure 1 As shown, it includes a battery cycle charging compartment 1, a vehicle battery swap port 2, and a battery swap robot 4 for swapping batteries for a new energy vehicle 3;

[0045] like Figure 2 As shown, the battery cycle charging warehouse 1 includes a circular track 11, a cache station 12 and a plurality of charging stations 13. The cache station 12 and the plurality of charging stations 13 are arranged in a circular manner along the circular track 11. The cache station 12 and the plurality of charging stations 13 each include a carrier 15 and a conveying drive mechanism for driving the carrier 15 to move along the circular track 11. The carrier 15 is located above the circular track 11. The carrier of the charging station is placed with a battery pack 14.

[0046] In a specific implementation, there are 7 charging stations, 1 cache station, and the battery swap robot is located above the charging station and the cache station;

[0047] The cache station is connected to the vehicle battery swap port 2, and the battery swap robot 4 transports the battery pack 14 between the cache station 12 and the new energy vehicle 3;

[0048] In this embodiment, a guide track 7 is further provided to guide the new energy vehicle into the vehicle battery swap port. There are two guide tracks, and the two guide tracks are respectively located on both sides of the new energy vehicle, and the guide tracks are fixed to the ground;

[0049] like Figure 4 As shown, the battery-swapping robot 4 includes a sling 41, an X-axis movable frame 42, a Y-axis movable frame 43, a lifting drive mechanism for driving the sling 41 up and down, an X-axis drive mechanism for driving the X-axis movable frame 42 to move, and a Y-axis drive mechanism for driving the Y-axis movable frame 43 to move.

[0050] In this embodiment, a guide post 153 is installed above the carrier, and the guide post is inserted into the battery pack to position the battery pack.

[0051] like Figure 3 As shown, a turntable 151 is installed below the carrier 15 , and guide wheels 152 are installed on both sides of the turntable 151 . The guide wheels 152 are located above the circular track 11 and can roll along the circular track 11 .

[0052] In this embodiment, the turntable includes an upper turntable 1511 and a lower turntable 1512. The upper turntable is fixed to the carrier and rotatably connected to the lower turntable. The lower turntable is equipped with the guide wheel.

[0053] In a specific implementation, the circumferential protrusion of the guide wheel forms a circle of limiting protrusions 1521, and the limiting protrusions are located on the side of the annular track, so that the guide wheel can roll along the annular track while preventing the guide wheel from moving laterally.

[0054] The conveying drive mechanism includes a roller 16 and a conveying drive motor 17 . The roller 16 is in close contact with the annular track 11 , and the roller 16 is connected to the conveying drive motor 17 . The conveying drive motor 17 is fixed to the turntable 151 .

[0055] During specific implementation, the conveying drive motor is fixed to the lower turntable.

[0056] A charging module 18 is provided below the cache station and a plurality of the charging stations 13 .

[0057] In specific implementation, the charging module includes a charging plug and a lifting drive mechanism for driving the charging plug to lift. The lifting drive mechanism is a charging lifting cylinder. The charging plug is connected to the charging lifting cylinder. The charging lifting cylinder drives the charging connector to rise and connect with the charging interface of the battery pack.

[0058] like Figure 5 As shown, the X-direction drive mechanism includes an X-direction walking wheel 451, an X-direction guide rail 452 and an X-direction mobile driving motor 453, the X-direction mobile driving motor 453 is installed on the X-direction moving frame 42, and the output shaft of the X-direction mobile driving motor 453 is connected to the X-direction diverter 454, the X-direction diverter 454 is connected to the X-direction walking wheel 451, the X-direction walking wheel 451 is located above the X-direction track and can roll along the direction of the X-direction track, the X-direction track is installed in the battery swap station, specifically, it can be installed on the wall of the battery swap station, the battery swap station can adopt a container frame, and the X-direction track is installed in the container.

[0059] like Figure 9 As shown, the Y-direction drive mechanism includes a Y-direction walking wheel 461, a Y-direction guide rail 462 and a Y-direction movement driving motor 463, the Y-direction movement driving motor 463 is installed on the Y-direction moving frame 43, and the output shaft of the Y-direction moving driving motor 463 is connected to the Y-direction diverter 464, the Y-direction diverter 464 is connected to the Y-direction walking wheel 461, the Y-direction walking wheel 461 is located above the Y-direction track and can roll along the direction of the Y-direction track, and the Y-direction track is installed on the X-direction moving frame 42.

[0060] like Figure 6 He Ru Figure 7 As shown, the lifting drive mechanism includes several groups of pulley assemblies, a wire rope 441 wound around the pulley assemblies, a drum 442 and a lifting drive motor 443, the pulley assembly includes a fixed pulley 444 and two movable pulleys 445, the fixed pulley 444 is installed on the Y-direction moving frame 43, the two movable pulleys 445 are installed on the sling 41, the wire rope 441 passes around the fixed pulley 444 and the two ends of the wire rope 441 pass through the two movable pulleys 445 respectively and are connected to the drum 442, the drum 442 is connected to the gear box 446, the gear box 446 is connected to the lifting drive motor 443, and the lifting drive motor 443 is fixed to the Y-direction moving frame 43.

[0061] During specific implementation, the fixed pulley is mounted on a pulley mounting plate 4441, and the pulley mounting plate is rotatably connected to the Y-axis movable frame.

[0062] In this embodiment, the X-direction steering gear, the Y-direction steering gear and the gear box are prior art and are a combination of several gears, so they are not described in detail.

[0063] like Figure 10 As shown, the surface of the drum 442 is provided with a thread groove 4421 matching the wire rope 441, and the drum 442 is sleeved with a guide rope ring 447. Figure 11 The inner surface of the guide rope ring 447 is provided with a threaded rib 4471 matching the threaded groove 4421 , and the guide rope ring 447 has a rope threading groove 4472 , and the steel wire rope 441 passes through the rope threading groove 4472 and is then wound around the threaded groove 4421 .

[0064] like Figure 8 As shown, the Y-axis moving frame 43 is installed with a limiting rod 448 , and the limiting rod 448 is fixed to the Y-axis moving frame 43 . The guide rope ring 447 is provided with a guide groove 4473 matching the limiting rod 448 .

[0065] like Figure 16 As shown, the sling 41 is installed with a tensioning structure, and the tensioning structure includes a guide column 411, a tensioning spring 412 and a sliding block 413. The upper end of the guide column 411 is fixed with a limiting ring 4111, and the lower end of the guide column 411 passes through the sliding block 413 and is fixed to the sling 41. The tensioning spring 412 is sleeved on the guide column 411, and the tensioning spring 412 is located between the limiting ring 4111 and the sliding block 413, and the movable pulley 445 is installed on the sliding block 413.

[0066] In this embodiment, the tensioning spring is sleeved on the spacer 414, the spacer is sleeved on the guide post, and spring washers 415 are provided on the top and bottom of the tensioning spring, and the spring washers are sleeved on the guide post;

[0067] In a specific implementation, it also includes a pulley sleeve 416, the movable pulley is installed inside the pulley sleeve, the pulley sleeve is fixed to the sliding block, the pulley sleeve is provided with a through hole 4161, the wire rope passes through the through hole and then wraps around the movable pulley, thereby preventing the wire rope from detaching from the movable pulley.

[0068] like Figure 12 He Ru Figure 13 As shown, the sling is equipped with at least one locking mechanism and a frame 141 (such as Figure 17 ) corresponding to a number of guide blocks 51, such as Figure 15 As shown, the guide is quickly provided with a guide surface, and the locking mechanism includes two tongue plates 52 and an electric push rod 53 that drives the tongue plates to rotate and engage in the card slot 142 of the battery pack. The two tongue plates are respectively fixed to two rotating shafts 54, which are rotatably connected to the sling, and the two rotating shafts are respectively fixed to two rotating plates 55. One end of the electric push rod is rotatably connected to the first adjusting block 56, which is mounted on the sling, and the other end of the electric push rod is rotatably connected to the second adjusting block 57, which is rotatably connected to one of the two rotating plates, and the two rotating plates are rotatably connected to the two ends of the connecting rod 58. One electric push rod can drive the two tongue plates to rotate simultaneously, which is convenient for grabbing the battery pack.

[0069] like Figure 14 As shown, it also includes a sensing structure, which includes a proximity sensor 61, a sensing washer 62 and a guide rod 63. The lower end of the guide rod is provided with a pressing protrusion 631, and the upper end of the guide rod is connected to the sensing washer through the sling. The sensing washer corresponds to the proximity sensor, and the proximity sensor is installed on the sling. The guide rod is covered with a reset spring 64, and the reset spring is located between the pressing protrusion and the sling. During the descent of the sling, the pressing protrusion presses the battery pack, and the sensing washer rises. The proximity sensor senses the sensing washer, thereby controlling the sling to descend to a suitable position.

[0070] The working principle of the present utility model is as follows: the vehicle enters the vehicle battery exchange port through the guidance of the guide rail, the X-axis movable frame moves to the top of the new energy vehicle under the drive of the X-axis drive mechanism, the lifting drive mechanism drives the spreader to descend, the electric push rod drives the tongue plate to rotate, and the tongue plate is inserted into the slot of the battery pack and then lifted. The X-axis movable frame moves to the top of the cache station under the drive of the X-axis drive mechanism, and the battery pack is placed on the carrier of the cache station. The conveying drive motor drives the roller to rotate and transports the charged battery pack to the cache station. The lifting drive mechanism drives the spreader to descend and grab the fully charged battery pack at the cache station and then lift it. The X-axis movable frame moves to the top of the new energy vehicle under the drive of the X-axis drive mechanism, and the Y-axis movable frame is adjusted under the Y-axis drive mechanism to ensure the accuracy of the position of the battery pack in the new energy vehicle. After the battery pack is replaced, the new energy vehicle drives away.

[0071] The above are merely embodiments of the present invention and are not intended to limit the patent scope of the present invention. Any equivalent structural transformations made using the contents of the present invention specification and drawings, or directly or indirectly applied in other related technical fields, are also included in the patent protection scope of the present invention.

Claims

1. A circular track cycle battery swap station for new energy vehicles, characterized by: It includes a battery cycle charging compartment (1), a vehicle battery exchange port (2), and a battery exchange robot (4) for exchanging batteries for a new energy vehicle (3); The battery cycle charging warehouse comprises a circular track (11), a cache station (12) and a plurality of charging stations (13), wherein the cache station and the plurality of charging stations are arranged in a circular manner along the circular track, and the cache station and the plurality of charging stations each comprise a carrier (15) and a conveying drive mechanism for driving the carrier to move along the circular track, wherein the carrier is located above the circular track, and a battery pack (14) is placed on the carrier of the charging station; The cache station is connected to the vehicle battery swap port, and the battery swap robot transports the battery pack between the cache station and the new energy vehicle; The battery-exchanging robot comprises a sling (41), an X-direction movable frame (42), a Y-direction movable frame (43), a lifting drive mechanism for driving the sling to move up and down, an X-direction drive mechanism for driving the X-direction movable frame to move, and a Y-direction drive mechanism for driving the Y-direction movable frame to move.

2. The circular track cycle battery swap station for new energy vehicles according to claim 1 is characterized in that: A turntable (151) is installed below the carrier, and guide wheels (152) are installed on both sides of the turntable. The guide wheels are located above the annular track and can roll along the annular track.

3. The circular track cycle battery swap station for new energy vehicles according to claim 2 is characterized in that: The conveying drive mechanism comprises a roller (16) and a conveying drive motor (17), wherein the roller is in close contact with the annular track and is connected to the conveying drive motor, and the conveying drive motor is fixed to the turntable.

4. The circular track cycle battery swap station for new energy vehicles according to claim 1, characterized in that: A charging module (18) is provided below the cache station and a plurality of charging stations.

5. The circular track cycle battery swap station for new energy vehicles according to claim 1 is characterized in that: The X-direction driving mechanism comprises an X-direction running wheel (451), an X-direction guide rail (452) and an X-direction moving driving motor (453), wherein the X-direction moving driving motor is mounted on the X-direction moving frame, and the output shaft of the X-direction moving driving motor is connected to an X-direction steering device (454), and the X-direction steering device is connected to the X-direction running wheel, wherein the X-direction running wheel is located above the X-direction track and can roll along the direction of the X-direction track, and the X-direction track is mounted on the battery swap station.

6. The circular track cycle battery swap station for new energy vehicles according to claim 1, characterized in that: The Y-direction driving mechanism comprises a Y-direction walking wheel (461), a Y-direction guide rail (462) and a Y-direction moving driving motor (463), wherein the Y-direction moving driving motor is mounted on the Y-direction moving frame, and the output shaft of the Y-direction moving driving motor is connected to a Y-direction steering device (464), and the Y-direction steering device is connected to the Y-direction walking wheel, wherein the Y-direction walking wheel is located above the Y-direction track and can roll along the direction of the Y-direction track, and the Y-direction track is mounted on the X-direction moving frame.

7. The circular track cycle battery swap station for new energy vehicles according to claim 1, characterized in that: The lifting drive mechanism includes several groups of pulley assemblies, steel wire ropes (441) wound around the pulley assemblies, a drum (442) and a lifting drive motor (443). The pulley assemblies include a fixed pulley (444) and two movable pulleys (445). The fixed pulley is installed on the Y-axis movable frame. The two movable pulleys are installed on the sling. The steel wire rope passes around the fixed pulley and the two ends of the steel wire rope pass through the two movable pulleys and are connected to the drum. The drum is connected to a gear box (446). The gear box is connected to the lifting drive motor. The lifting drive motor is fixed to the Y-axis movable frame.

8. The circular track cycle battery swap station for new energy vehicles according to claim 7, characterized in that: The surface of the drum is provided with a thread groove (4421) matching the steel wire rope, the drum is sleeved with a rope guide ring (447), the inner surface of the rope guide ring is provided with a thread rib (4471) matching the thread groove, the rope guide ring has a rope threading groove (4472), and the steel wire rope passes through the rope threading groove and is wound around the thread groove.

9. The circular track cycle battery swap station for new energy vehicles according to claim 8, characterized in that: The Y-axis movable frame is provided with a limiting rod (448), and the guide rope ring is provided with a guide groove (4473) matching the limiting rod.

10. The circular track cycle battery swap station for new energy vehicles according to claim 7, characterized in that: The sling is equipped with a tensioning structure, which includes a guide column (411), a tensioning spring (412) and a sliding block (413). The upper end of the guide column is fixed with a limiting ring (4111), and the lower end of the guide column passes through the sliding block and is fixed to the sling. The tensioning spring is sleeved on the guide column, and the tensioning spring is located between the limiting ring and the sliding block. The movable pulley is installed on the sliding block.