Toy basket shooting vehicle structure
By combining a flexible limit mechanism with graded control of motor torque, the wear and complexity issues of the toy basketball car structure are solved, enabling rapid mode switching and diverse gaming experiences, making it suitable for mass-produced toy products.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-17
- Publication Date
- 2026-04-14
AI Technical Summary
Existing toy basketball cars have shortcomings in balancing structural simplicity and functional versatility. Mechanical adjustment mechanisms are prone to wear, while electronic control schemes are complex, costly, and slow in response, making it difficult to meet the diverse needs of players of different ages.
It adopts a hybrid design of elastic limit mechanism and motor torque graded control. The motor drives the rack and pinion to cooperate with the limit block. Combined with pressure sensor and display screen, it realizes high torque reciprocating movement of the basket and low torque centering and locking, simplifying mode switching.
It effectively solves the problem of mechanical wear, improves the response speed of mode switching, reduces production costs, is suitable for mass-produced toy products, and enhances the gaming experience and reliability.
Smart Images

Figure CN224113238U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of children's toy technology, and in particular to a toy basketball car structure. Background Technology
[0002] Traditional toy basketball cars typically use a fixed basket or a simple mechanical swing mechanism, achieving limited positional changes through manual adjustment or a single motor drive. Existing technology includes some products that attempt to control the basket's movement using springs or counterweights, but these lack precise positioning capabilities, resulting in a monotonous gameplay experience and insufficient mechanical durability. Other solutions use electronic sensors in conjunction with motor control, enabling dynamic adjustment, but their complex structure and high cost make them difficult to popularize in children's toys. These methods generally suffer from slow response times and inflexible mode switching, failing to meet the diverse needs of players of different ages.
[0003] The main drawback of existing technologies lies in their inability to balance structural simplicity with functional versatility. Mechanical adjustment mechanisms often rely on physical limits, which are prone to wear and tear due to frequent friction, affecting their lifespan. While electronic control schemes offer higher precision, they depend on complex circuits and sensors, increasing failure rates and production costs. Furthermore, most designs lack intelligent torque adjustment mechanisms, which may lead to jamming or insufficient power when switching between high and low torque modes, reducing product reliability and user experience. These limitations constrain the technological development and market competitiveness of basketball shooting toys. Utility Model Content
[0004] The purpose of this utility model is to address the shortcomings of existing technologies by proposing a toy basketball car structure.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] A toy basketball car structure includes an adjustment mechanism. The adjustment mechanism includes a bracket with a movable opening and a ball-throwing channel laterally arranged on the side wall of the bracket. A ball-dropping groove is opened at the bottom edge of the bracket. A motor is fixed to the rear of the bracket. The motor is connected to a movable unit via a gear set. The movable unit includes a rack, which is connected to the gear set. A limit strip is fixed at the center of the rack. The rack also has a mounting position three, which is threaded to a fixed box by bolts. The bolts pass through the movable opening. A pressure sensor is installed inside the fixed box. A spring is fixed to the detection end of the pressure sensor. A basketball hoop is fixed to one side of the fixed box, and the spring extends into the basketball hoop. The adjustment mechanism also includes a limiting unit fixed to the rear of the bracket. The limiting unit includes a fixing block, which is fixed to the limiting unit. A spring is fixed to the fixing block, and a limiting block corresponding to the limit strip is fixed to the upper surface of the spring. The adjustment mechanism also includes a display screen mounted on the bracket and a second rear cover located at the rear of the bracket to protect the motor and gear set.
[0007] Preferably, it also includes a bottom shell assembly and a top shell assembly, which are fixed to each other. An adjustment mechanism is fixedly disposed between the bottom shell assembly and the top shell assembly. A front cover is fixedly disposed on one side of the top shell assembly. A stop bar is rotatably disposed between the bottom shell assembly and the top shell assembly, a track is fixedly disposed, a ball-throwing paddle is elastically disposed, and a panel assembly is fixedly disposed.
[0008] Preferably, the bottom shell assembly includes a bottom shell, on which a battery compartment, a coin dispenser compartment, and a speaker are disposed.
[0009] Preferably, the top shell assembly includes a top shell and a mounting position one disposed on one side of the top shell. The mounting position one corresponds to the adjustment mechanism. A ball drop hole is provided in the center of the top shell. A mounting position two is provided on the front side of the top shell. A first rear cover is fixed to the rear of the top shell. A ball throwing hole is provided on the first rear cover. A ball throwing hole cover is engaged at the rear end of the ball throwing hole. An elongated opening is also provided on one side of the top shell.
[0010] Preferably, the stop bar includes a rotating shaft, which is rotatably connected to the bottom of the top shell. A limiting groove is provided on one side of the rotating shaft, and the limiting groove is slidably disposed at the bottom of the top shell. A blocking block is provided on one side of the limiting groove, and the blocking block corresponds to the ball drop opening. A lever is provided on the other side of the rotating shaft, and the lever moves through the elongated opening on the top shell and is placed outside the top shell.
[0011] Preferably, the track includes a groove, and fixing parts are provided on both sides of the groove, which are fixed between the bottom shell assembly and the top shell assembly.
[0012] Preferably, the ball-throwing paddle includes an elongated plate, one end of which is fixed with a pressing part, and a top block is fixed to the top of the elongated plate, the top block corresponding to the ball-dropping opening. The other end of the elongated plate is provided with an elastic part, and one side of the elastic part is provided with a mounting part, which is fixed between the bottom shell assembly and the top shell assembly.
[0013] Preferably, the panel assembly includes a panel body, with a lever groove corresponding to the pressing part on the upper part of the panel body, a ball outlet corresponding to the track on the panel body, a coin slot corresponding to the coin dispenser on the panel body, a grating on the rear side of the panel body, the grating detection end being located behind the coin slot, and a number of buttons fixed on the rear side of the panel body, the buttons moving through the panel body.
[0014] Preferably, the PCB electrically connects the grating, pressure sensor, display screen, motor, and speaker.
[0015] This utility model has the following beneficial effects:
[0016] 1. This utility model effectively solves the problem of severe mechanical wear in traditional basketball shooting toys through the coordinated design of an elastic limiting mechanism and graded control of motor torque. In high torque mode, the motor drives the rack to flexibly break through the limiting block, avoiding rigid collision; in low torque mode, the position is locked entirely by the spring preload, eliminating ineffective friction.
[0017] 2. This utility model can switch motion modes by simply adjusting the PWM duty cycle of a single motor. The high torque mode enables the basket to break through the limit and move back and forth, while the low torque mode automatically locks the center position. This electronic-mechanical hybrid control method compresses the mode switching response time and eliminates the need for a position detection sensor, perfectly solving the contradiction between functionality and cost in the existing technology. It is especially suitable for mass-produced toy products. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the overall structure of a toy basketball car.
[0019] Figure 2 A schematic diagram of the exploded structure of a toy basketball car;
[0020] Figure 3 This is one of the schematic diagrams of the adjustment mechanism;
[0021] Figure 4 This is the second schematic diagram of the adjustment mechanism structure;
[0022] Figure 5 This is a structural diagram showing the active unit connected to the fixed box.
[0023] Figure 6 This is a schematic diagram of the structure of the active unit and the limiting unit;
[0024] Figure 7 This is one of the schematic diagrams of the bottom shell assembly structure;
[0025] Figure 8 This is the second schematic diagram of the bottom shell assembly structure;
[0026] Figure 9 This is a schematic diagram of the top shell assembly structure;
[0027] Figure 10 This is a schematic diagram of the stop bar structure;
[0028] Figure 11 This is a schematic diagram of the track structure;
[0029] Figure 12 This is a schematic diagram of the pitching paddle.
[0030] Figure 13 This is a schematic diagram of the panel assembly structure.
[0031] In the diagram: 1. Bottom shell assembly; 101. Bottom shell; 102. Battery compartment; 103. Coin dispensing compartment;
[0032] 104. Speaker; 2. Top shell assembly; 201. Top shell; 202. Mounting position one; 203. Ball drop hole; 204. Mounting position two; 205. First rear cover; 206. Ball inlet; 207. Ball inlet cover; 3. Front cover; 4. Adjustment mechanism; 401. Bracket; 402. Movable opening; 403. Ball channel; 404. Ball drop groove; 405. Motor; 406. Gear set; 407. Movable unit; 407a. Rack; 407b. Limiting strip; 407c. Mounting position three; 408. Fixing box; 409. Spring; 410. Basketball hoop; 411. Limiting unit; 411a. Fixing block; 411 b. U-shaped spring; 411c. Limiting block; 412. LED display screen; 413. Second rear cover; 5. Stop bar; 501. Rotating shaft; 502. Limiting groove; 503. Block; 504. Toggle lever; 6. Track; 601. Rolling groove; 602. Fixing part; 7. Ball-throwing lever; 701. Long plate; 702. Elastic part; 703. Pressing part; 704. Top block; 705. Mounting part; 8. Panel assembly; 801. Panel body; 802. Toggle lever groove; 803. Ball outlet; 804. Coin slot; 805. Light grating; 806. PCB; 807. Button; 9. Toy coin; 10. Basketball model. Detailed Implementation
[0033] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are merely illustrative of the present invention.
[0034] These are some, but not all, embodiments of the utility model.
[0035] Reference Figure 1-13A toy basketball car structure includes an adjustment mechanism 4, which includes a bracket 401. The bracket 401 has a horizontally arranged movable opening 402 and a ball-throwing channel 403 on its side wall. A ball-dropping groove 404 is provided at the bottom edge of the bracket 401. A motor 405 is fixed to the rear of the bracket 401. The motor 405 is connected to a movable unit 407 via a gear set 406. The movable unit 407 includes a rack 407a, which is connected to the gear set 406. A limit strip 407b is fixed at the center of the rack 407a. A mounting position 407c is also provided on the rack 407a. The mounting position 407c is threadedly installed to a fixed box 408 by bolts, with the bolts passing through the movable opening 402. The fixed box 408 has an internal structure... A pressure sensor is provided, and a spring 409 is fixed to the detection end of the pressure sensor. A basket 410 is fixed to one side of the fixing box 408, and the spring 409 extends into the basket 410. The adjustment mechanism 4 also includes a limiting unit 411 fixed to the rear side of the bracket 401. The limiting unit 411 includes a fixing block 411a, which is fixed to the limiting unit 411. A U-shaped spring 411b is fixed on the fixing block 411a, and a limiting block 411c corresponding to the limiting strip 407b is fixed on the upper surface of the U-shaped spring 411b. The adjustment mechanism 4 also includes an LED display screen 412 installed on the bracket 401 and a second rear cover 413 installed at the rear of the bracket 401 to protect the motor 405 and the gear set 406.
[0036] In this embodiment, the adjustment mechanism 4 drives the gear set 406 via the motor 405 to move the rack 407a laterally, thereby adjusting the position of the fixed box 408 and its basket 410 fixed at the mounting position 407c. The limiting strip 407b in the center of the rack 407a cooperates with the limiting block 411c in the limiting unit 411, forming a breakable mechanical limit under the elastic support of the U-shaped spring 411b, allowing the basket 410 to break through the limit and move back and forth in high torque mode, and remain centered and fixed in low torque mode. The pressure sensor in the fixed box 408 detects the impact force of the shot on the basket 410 via the spring 409, and provides score feedback in conjunction with the LED display screen 412 on the bracket 401. The second rear cover 413 protects the motor 405 and gear set 406 from external interference. The movable port 402 provides movement space for the bolts, and the shooting channel 403 guides the movement of the ball.
[0037] This utility model also includes a bottom shell assembly 1 and a top shell assembly 2, which are fixed to each other. An adjustment mechanism 4 is fixedly arranged between the bottom shell assembly 1 and the top shell assembly 2. A front cover 3 is fixedly arranged on one side of the top shell assembly 2. A stop bar 5 is rotatably arranged between the bottom shell assembly 1 and the top shell assembly 2, a track 6 is fixedly arranged, a ball-throwing paddle 7 is elastically arranged, and a panel assembly 8 is fixedly arranged.
[0038] In this embodiment, the bottom shell assembly 1 and the top shell assembly 2 are fixed together to form the main frame, and the adjustment mechanism 4 is securely installed between the bottom shell assembly 1 and the top shell assembly 2; the front cover 3 on one side of the top shell assembly 2 provides appearance protection. Several functional components are also integrated between the bottom shell assembly 1 and the top shell assembly 2: a rotatable stop bar 5 controls the ball to enter the track 6; the fixed track 6 ensures the ball rolls along a predetermined path and finally leaves the toy; the elastically set ball-throwing paddle 7 realizes the elastic throwing function of the ball; and the panel assembly 8 integrates the operating interface and electronic control unit.
[0039] In this utility model, the bottom shell assembly 1 includes a bottom shell 101, on which a battery compartment 102, a coin dispenser 103 and a speaker 104 are provided.
[0040] In this embodiment, the bottom shell assembly 1 adopts an integrated design as the basic load-bearing structure, on which three key functional modules are integrated: the battery compartment 102 provides a stable and reliable power supply for the entire basketball car; the coin compartment 103 realizes the storage and retrieval function of game coins, making it convenient for players to operate; and the speaker 104 is responsible for outputting game sound effects and prompts, enhancing the interactive experience. The reasonable layout of these three functional modules on the bottom shell 101 ensures both structural compactness and that each functional unit does not interfere with each other. The battery compartment 102 is located at the rear of the bottom shell for easy battery replacement, the coin compartment 103 is located on the side for easy access, and the speaker 104 is arranged at the front to achieve the best sound propagation effect, fully reflecting the functionality and human-centered design considerations of the product.
[0041] In this utility model, the top shell assembly 2 includes a top shell 201 and a mounting position 202 on one side of the top shell 201. The mounting position 202 corresponds to the adjustment mechanism 4. A ball drop port 203 is provided in the center of the top shell 201. A mounting position 204 is provided on the front side of the top shell 201. A first rear cover 205 is fixed to the rear of the top shell 201. A ball throwing port 206 is provided on the first rear cover 205. A ball throwing port cover 207 is engaged at the rear end of the ball throwing port 206. A long strip opening is also provided on one side of the top shell 201.
[0042] In this embodiment, the top shell assembly 2 uses the top shell 201 as the main frame, and its structural design fully considers functional integration and ease of use: the mounting position 202 on one side of the top shell 201 precisely connects with the adjustment mechanism 4 to ensure the stable operation of the basket adjustment mechanism; the ball drop port 203 in the center realizes the automatic recovery function of the shot; the mounting position 204 on the front provides fixed support for the PCB 806; the first rear cover 205 at the rear not only plays a protective role, but the ball drop port 206 on it, together with the detachable ball drop port cover 207, forms a convenient ball drop channel; while the long strip opening on the side provides the necessary space for the movement of moving parts such as the stop bar 5. This multi-functional integrated design not only ensures the reliability of the coordinated operation of each component, but also takes into account the ease of use and maintenance of the product, fully demonstrating the systematicness and integrity of the product design.
[0043] In this utility model, the stop bar 5 includes a rotating shaft 501, which is rotatably connected to the bottom of the top shell 201. A limiting groove 502 is provided on one side of the rotating shaft 501, and the limiting groove 502 is slidably disposed at the bottom of the top shell 201. A blocking block 503 is provided on one side of the limiting groove 502, and the blocking block 503 corresponds to the ball drop port 203. A lever 504 is provided on the other side of the rotating shaft 501, and the lever 504 moves through the elongated opening on the top shell 201 and is placed outside the top shell 201.
[0044] In this embodiment, the stop lever 5 uses a rotating shaft 501 as the core rotating component. Its innovative structural design enables intelligent control of the ball's flow: the rotating shaft 501 forms a rotating connection with the bottom of the top shell 201, ensuring smooth movement; the limiting groove 502 slides at the bottom of the top shell 201, precisely controlling the rotation angle; the correspondence between the blocking block 503 and the ball drop opening 203 enables the opening and closing of the ball channel; the specially designed lever 504 extends to the outside through the elongated opening of the top shell 201, providing users with an intuitive manual operation interface. This linkage mechanism achieves precise control of the ball's flow through a simple mechanical structure. The fit tolerance between the blocking block 503 and the ball drop opening 203 is controlled within 0.5mm, ensuring sealing; the ergonomic design of the lever 504 ensures that the operating torque does not exceed 1N·m, guaranteeing ease of use for children while avoiding damage to the mechanism caused by excessive force, fully demonstrating a perfect combination of functionality and safety.
[0045] In this utility model, the track 6 includes a groove 601, and fixing parts 602 are provided on both sides of the groove 601. The fixing parts 602 are fixed between the bottom shell assembly 1 and the top shell assembly 2.
[0046] In this embodiment, the track 6 uses a roller groove 601 as the core structure for guiding the ball, and its innovative design ensures the accuracy and smoothness of the ball's movement.
[0047] In this utility model, the ball-throwing paddle 7 includes an elongated plate 701. One end of the elongated plate 701 is fixed with a pressing part 703, and the top of the elongated plate 701 is fixed with a top block 704. The top block 704 corresponds to the ball-dropping opening 203. The other end of the elongated plate 701 is provided with an elastic part 702, and one side of the elastic part 702 is provided with a mounting part 705. The mounting part 705 is fixed between the bottom shell assembly 1 and the top shell assembly 2.
[0048] In this embodiment, the ball-throwing paddle 7 adopts a lever-type mechanical structure to achieve efficient throwing function.
[0049] In this utility model, the panel assembly 8 includes a panel body 801. A lever groove 802 corresponding to the pressing part 703 is provided on the upper part of the panel body 801. A ball outlet 803 corresponding to the track 6 is provided on the panel body 801. A coin slot 804 corresponding to the coin dispenser 103 is also provided on the panel body 801. A grating 805 is provided on the rear side of the panel body 801. The detection end of the grating 805 is located behind the coin slot 804. A PCB 806 is fixed on the rear side of the panel body 801. A plurality of buttons 807 are provided on the PCB 806. The buttons 807 move through the panel body 801.
[0050] In this embodiment, the panel assembly 8 includes a panel body 801, on which a lever slot 802 corresponds to the pressing part 703 of the ball-throwing lever 7, facilitating user operation of throwing the ball; a ball outlet 803 on the panel body 801 connects to the track 6, ensuring that the ball inside the toy can leave the toy normally; a coin slot 804 connects to the coin dispenser 103, facilitating the insertion and removal of game coins; a light grating 805 on the rear side of the panel body 801 detects the coin insertion action, realizing game start control; a PCB 806 fixed to the rear side of the panel body 801 integrates the control circuit, and a button 807 on it passes through the panel body 801 to provide an operation interface, realizing game function control. This panel assembly organically combines mechanical structure and electronic control system, ensuring both ease of operation and automated control of the game process.
[0051] In this invention, PCB806 is electrically connected to grating 805, pressure sensor, LED display 412, motor 405 and speaker 104.
[0052] In this embodiment, PCB806 serves as the core control system, achieving intelligent coordination of the entire machine's functions through circuit connections: its connection to the grating 805 accurately detects coin insertion, triggering game startup; its connection to the pressure sensor inside the fixed box 408 acquires real-time shooting hit signals for score statistics; its connection to the LED display screen 412 controls the display of game information, including scores and game status; its connection to the motor 405 enables precise switching of the basketball hoop 410's movement mode, controlling the game difficulty; and its connection to the speaker 104 outputs game sound effects and prompts, enhancing the interactive experience. This centralized circuit control system achieves efficient collaborative operation of various functional modules, ensuring smooth gameplay and responsiveness, while simplifying the overall circuit layout and improving system reliability.
[0053] In use, after the user turns on the power, the user can select a mode. After inserting the toy coin 9 into the coin slot 804, the grating 805 detects the insertion of the toy coin 9 and then activates the corresponding mode. In the low difficulty mode, the motor 405 has a lower torque. Under the action of the motor 405, the moving unit 407 moves to the center position. When the limit bar 407b touches the limit block 411c, the limiting effect of the limit block 411c causes the basket 410 to stay in a fixed position. In the high difficulty mode, the motor 405 has a higher torque. Under the action of the motor 405, when the limit bar 407b touches the limit block 411c, the higher torque of the motor 405 can break through the limitation of the limit block 411c, thereby realizing the reciprocating motion of the basket 410. The user inserts the basketball model 10 into the ball-throwing port 206. The basketball model 10 rolls to the landing point under the action of gravity. At the position of ball groove 404, the user presses the pressing part 703 and then quickly releases it. The ball-throwing lever 7 begins to rebound, and under the action of the top block 704, the basketball model 10 is ejected. If the basketball model 10 does not enter the basket 410, the above action is repeated. When the basketball model 10 enters the basket 410, it contacts the spring 409, triggering the pressure sensor inside the fixing box 408. The pressure sensor transmits the signal to the PCB 806, which then transmits the score information to the LED display screen 412 for display. After the game ends, the user rotates the lever 504, causing the blocking block 503 to leave the position of ball groove 404. The basketball model 10 falls from ball groove 404 into the rolling groove 601 and leaves the toy along the rolling groove 601. The user can then open the coin compartment 103 to take out the toy coin 9.
[0054] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. A toy basketball car structure, characterized in that, include: Adjustment mechanism (4), the adjustment mechanism (4) includes a bracket (401), the side wall of the bracket (401) is provided with an movable opening (402) and a ball throwing channel (403), the bottom edge of the bracket (401) is provided with a ball dropping groove (404), the rear of the bracket (401) is fixed with a motor (405), the motor (405) is connected to the movable unit (407) through a gear set (406), the movable unit (407) includes a rack (407a), the rack (407a) is connected to the gear set (406), a limit strip (407b) is fixed at the center of the rack (407a), and a mounting position three (407c) is also provided on the rack (407a), the mounting position three (407c) is threadedly installed to the fixing box (408) by bolts, the bolts pass through the movable opening (402). A pressure sensor is installed inside the fixed box (408), and a spring (409) is fixed to the detection end of the pressure sensor. A basket (410) is fixed to one side of the fixed box (408). The spring (409) extends into the basket (410); The adjustment mechanism (4) further includes a limiting unit (411) fixed to the rear side of the bracket (401). The limiting unit (411) includes a fixing block (411a), which is fixed to the limiting unit (411). A U-shaped spring (411b) is fixed on the fixing block (411a), and a limiting block (411c) corresponding to the limiting strip (407b) is fixed on the upper surface of the U-shaped spring (411b). The adjustment mechanism (4) also includes an LED display screen (412) mounted on the bracket (401) and a second rear cover (413) mounted on the rear of the bracket (401) to protect the motor (405) and gear set (406).
2. The toy basketball car structure according to claim 1, characterized in that, It also includes a bottom shell assembly (1) and a top shell assembly (2), the bottom shell assembly (1) and the top shell assembly (2) are fixed to each other, the adjustment mechanism (4) is fixedly arranged between the bottom shell assembly (1) and the top shell assembly (2), a front cover (3) is fixedly arranged on one side of the top shell assembly (2), a stop bar (5) is rotatably arranged between the bottom shell assembly (1) and the top shell assembly (2), a track (6) is fixedly arranged, a ball-throwing paddle (7) is elastically arranged, and a panel assembly (8) is fixedly arranged.
3. The toy basketball car structure according to claim 2, characterized in that, The bottom shell assembly (1) includes a bottom shell (101), on which a battery compartment (102), a coin dispenser (103), and a speaker (104) are provided.
4. The structure of a toy basketball car according to claim 2, characterized in that, The top shell assembly (2) includes a top shell (201) and a mounting position (202) on one side of the top shell (201). The mounting position (202) corresponds to the adjustment mechanism (4). A ball drop port (203) is provided in the center of the top shell (201). A mounting position (204) is provided on the front side of the top shell (201). A first rear cover (205) is fixed to the rear of the top shell (201). A ball throwing port (206) is provided on the first rear cover (205). A ball throwing port cover (207) is engaged at the rear end of the ball throwing port (206). A long strip opening is also provided on one side of the top shell (201).
5. The structure of a toy basketball car according to claim 2, characterized in that, The stop bar (5) includes a rotating shaft (501), which is rotatably connected to the bottom of the top shell (201). A limiting groove (502) is provided on one side of the rotating shaft (501), and the limiting groove (502) is slidably disposed at the bottom of the top shell (201). A blocking block (503) is provided on one side of the limiting groove (502), and the blocking block (503) corresponds to the ball drop port (203). A lever (504) is provided on the other side of the rotating shaft (501), and the lever (504) moves through the elongated opening on the top shell (201) and is placed outside the top shell (201).
6. The structure of a toy basketball car according to claim 2, characterized in that, The track (6) includes a groove (601), and a fixing part (602) is provided on both sides of the groove (601). The fixing part (602) is fixed between the bottom shell assembly (1) and the top shell assembly (2).
7. The structure of a toy basketball car according to claim 2, characterized in that, The ball-throwing paddle (7) includes an elongated plate (701), one end of which is fixed with a pressing part (703), and a top block (704) is fixed on the top of the elongated plate (701). The top block (704) corresponds to the ball drop hole (203). The other end of the elongated plate (701) is provided with an elastic part (702), and one side of the elastic part (702) is provided with an installation part (705). The installation part (705) is fixed between the bottom shell assembly (1) and the top shell assembly (2).
8. The structure of a toy basketball car according to claim 2, characterized in that, The panel assembly (8) includes a panel body (801). The panel body (801) has a lever groove (802) on its upper part corresponding to the pressing part (703). The panel body (801) has a ball outlet (803) corresponding to the track (6). The panel body (801) also has a coin slot (804) corresponding to the coin dispenser (103). A grating (805) is provided on the rear side of the panel body (801). The detection end of the grating (805) is located behind the coin slot (804). A PCB (806) is fixed on the rear side of the panel body (801). Several buttons (807) are provided on the PCB (806). The buttons (807) move through the panel body (801).
9. The structure of a toy basketball car according to claim 8, characterized in that, The PCB (806) is electrically connected to the grating (805), pressure sensor, LED display (412), motor (405) and speaker (104).