Toy driving device capable of continuously launching flying saucers
By designing a toy drive device that includes a shell, launch shaft, power component and propulsion plate, the problem that existing flying saucer launching toys cannot launch automatically and continuously has been solved, realizing the automatic and continuous launch of flying saucers and improving the gaming experience.
Patent Information
- Application Number
- CN202520174879.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-26
- Publication Date
- 2026-01-23
- Estimated Expiration
- 2035-01-26
AI Technical Summary
Existing flying saucer launching toys cannot launch flying saucers automatically and continuously, resulting in a poor gaming experience.
A toy drive device including a shell, a launch shaft, a power component, and a propulsion plate was designed. The propulsion block is driven to reciprocate through the power component, and the propulsion plate reciprocates within the shell by combining elastic elements and gear sets. This automatically propels the flying saucer from the storage cavity to the launch cavity and drives the launch shaft to rotate and launch it.
It enables automatic and continuous launch of flying saucers, improving the game's automation and visual appeal, and enhancing the gaming experience.
Smart Images

Figure CN223818162U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of toy technology, and more particularly to a toy drive device capable of continuously launching flying saucers. Background Technology
[0002] Currently, most flying saucer launching toys on the market consist of two parts: a flying saucer and a drive mechanism that propels it forward. The drive mechanism outputs torque to the flying saucer, causing it to rotate and generate lift, allowing it to detach and fly away from the drive mechanism. However, in these technologies, after each launch, the player must manually place the flying saucer back into the launch tube before launching it again. A common example is the flying saucer launching toy disclosed in patent document CN222092517U. While this toy can launch multiple flying saucers simultaneously in a single operation, it still suffers from the inability to launch them automatically and continuously, resulting in a poor gaming experience. Utility Model Content
[0003] The purpose of this invention is to provide a toy drive device that can continuously launch flying saucers, in order to solve the problem mentioned in the background art that existing structures cannot launch flying saucers automatically and continuously.
[0004] To achieve the above objectives, this utility model provides a toy drive device capable of continuously launching flying saucers, comprising:
[0005] The shell has a storage cavity and a launch cavity, which are connected by a through hole that allows the flying saucer to pass through.
[0006] The launching shaft is rotatably connected to the bottom of the launching cavity;
[0007] A power assembly includes a power element and a propulsion block reciprocating under the drive of the power element; and
[0008] A propulsion plate is movable between a first position and a second position of the housing. The propulsion plate is separably abutted against the propulsion block, and an elastic element connects the propulsion plate and the housing. The propulsion plate is driven to the launch shaft via a rack plate. The propulsion plate is movably connected to the interior of the storage cavity via a push arm. When the propulsion plate is driven to the second position by the propulsion block, the push arm pushes the flying saucer in the storage cavity into the launch cavity. When the propulsion plate is driven to the first position by the elastic element, the rack plate drives the launch shaft to rotate to launch the flying saucer.
[0009] As a preferred embodiment, the propulsion block is eccentrically fixed on a rotating wheel, the rotating wheel is connected to the power component for transmission, and the propulsion plate is provided with a follower block on the side wall relative to the propulsion block, the follower block being detachably connected to the propulsion block in abutment.
[0010] As a preferred embodiment, the system further includes a first gear set, which includes an output gear fixed to the output shaft of the power component, an input gear meshing with the rotating wheel, and a transmission gear connected between the output gear and the input gear.
[0011] As a preferred embodiment, the input gear includes a first gear and a second gear that are rotatably connected coaxially. The first gear and the second gear are provided with meshing sawtooth surfaces. The first gear meshes with the transmission gear and is movably connected to its shaft by a spring. The second gear meshes with the rotating wheel.
[0012] As a preferred embodiment, the propulsion block is fixed on a movable plate or a rotating ring belt, the movable plate or the rotating ring belt is connected to the power component for transmission, and the propulsion plate is provided with a follower block on the side wall relative to the propulsion block, the follower block being detachably connected to the propulsion block in abutment.
[0013] As a preferred embodiment, the push arm includes an arm body and a push block. The arm body is provided with a limiting baffle. The middle part of the push block is rotatably connected to the arm body by a torsion spring. The first end of the push block is movably connected to the interior of the storage cavity to push one of the flying saucers into the launch cavity at a time. The second end of the push block is abuttingly connected to the limiting baffle.
[0014] As a preferred embodiment, the system further includes a second gear set, which includes a first drive gear and a second drive gear that are meshed together. The first drive gear is meshed with the rack plate, and the second drive gear is meshed with the first drive gear and the launch shaft, respectively.
[0015] As a preferred embodiment, the launch shaft includes an integrally formed drive portion and a transmission portion. The drive portion is rotatably exposed inside the launch cavity to drive the flying saucer to rotate and fly out of the launch cavity, and the transmission portion is meshed with the second drive gear.
[0016] As a preferred embodiment, the housing includes a detachably connected upper housing and a lower housing, with a cavity between the upper housing and the lower housing for connecting the rotating wheel and the propulsion plate. The upper housing has a first mounting cavity communicating with the cavity, which is used to connect the second gear set. The lower housing has a second mounting cavity communicating with the cavity, which is used to connect the power component and the first gear set.
[0017] As a preferred embodiment, the lower housing is provided with a connecting groove and a connecting post on the side wall relative to the upper housing. A fixing post is provided with an outward protrusion at the bottom of the connecting groove. The rotating wheel is rotatably sleeved on the fixing post, and a fixing cover is detachably connected to the end of the fixing post. The guide hole of the push plate is movably inserted into the connecting post.
[0018] Therefore, based on the technical means of this utility model, the effects that this utility model can achieve can be briefly described as follows: The toy driving device for continuously launching flying saucers provided by this utility model has a storage cavity and a launching cavity connected by a through hole in the shell. The storage cavity can be used to store multiple flying saucers. The launching cavity is rotatably connected to the launching shaft. When the game starts, the starting power component can drive the propulsion block to move back and forth. Since the propulsion plate and the propulsion block can be separated and abutted, the movement of the propulsion block can drive the propulsion plate to move to the second position. At this time, the push arm moves from one side of the storage cavity to the through hole to push the flying saucer at the bottom of the storage cavity into the launching cavity. Since there is an elastic component connecting the propulsion plate and the shell, when the propulsion plate and the propulsion block are separated, the propulsion plate can move back to the first position under the elastic drive. At this time, the rack and pinion drive drives the launching shaft to rotate to output torque to the flying saucer, so that the flying saucer can rotate and fly away from the launching cavity. Therefore, the toy driving device provided by this utility model can drive the propulsion plate to move back and forth between the first and second positions through the propulsion block and the elastic element during the continuous operation of the power component, so as to realize the automatic and continuous launch of flying saucers. The game has a high degree of automation, strong visual appeal, and better gaming experience. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of a toy driving device according to an embodiment of the present invention.
[0020] Figure 2 for Figure 1 A schematic diagram of the toy's driving mechanism during gameplay.
[0021] Figure 3 for Figure 1 An exploded view of the toy's drive mechanism.
[0022] Figure 4 for Figure 1 Internal schematic diagram of the central propulsion plate in the first position.
[0023] Figure 5 for Figure 2 An internal schematic diagram of the middle propulsion plate moving to the second position.
[0024] Figure 6 for Figure 5 Internal schematic diagram of the middle propulsion plate in the second position.
[0025] Figure 7 for Figure 1 A cross-sectional schematic diagram of the toy's drive mechanism.
[0026] Figure 8 for Figure 2 A cross-sectional schematic diagram of the toy's drive mechanism.
[0027] In the diagram: 100 - Housing; 110 - Upper Housing; 111 - First Housing; 112 - Second Housing; 1121 - Groove; 1122 - Sliding Hole; 113 - Third Housing; 1101 - Storage Chamber; 1102 - Launch Chamber; 1103 - Through Hole; 1104 - First Mounting Chamber; 1105 - First Opening; 120 - Lower Housing; 121 - Fourth Housing; 1211 - Connecting Groove; 1212 - Connecting Post; 1213 - Fixing Post; 122 - Fifth Housing; 123 - Fixing Cover; 1201 - Second Mounting Chamber; 1202 - Second Opening; 130 - Cavity; 200 - Launch Shaft; 210 - Drive Part; 220 - Transmission Part; 3 00-Power component; 400-Rotating wheel; 410-Propeller block; 500-Propeller plate; 510-Guide hole; 520-Follower block; 530-Rack plate; 540-Push arm; 541-Arm body; 5411-Limiting baffle; 542-Push block; 5421-First end; 5422-Second end; 5423-Inclined surface; 600-Elastic component; 700-First gear set; 710-Output gear; 720-Input gear; 721-First gear; 722-Second gear; 723-Serrated surface; 730-Transmission gear; 800-Second gear set; 810-First drive gear; 820-Second drive gear; 10-Flying saucer. Detailed Implementation
[0028] The preferred embodiments of this utility model will be described in further detail below with reference to the accompanying drawings.
[0029] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model.
[0030] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "clockwise", "counterclockwise", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0031] Furthermore, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first," "second," etc., may explicitly or implicitly include one or more of that feature.
[0032] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0033] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can include direct contact between the first and second features, or contact between the first and second features through another feature between them. Furthermore, "above," "over," and "on top" of the second feature includes the first feature directly above or diagonally above the second feature, or simply indicates that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature includes the first feature directly below or diagonally below the second feature, or simply indicates that the first feature is at a lower horizontal level than the second feature.
[0034] Please refer to Figures 1 to 8 This embodiment provides a toy drive device capable of continuously launching flying saucers, including a housing 100, a launch shaft 200 for launching flying saucers 10, a power component 300 fixed inside the housing 100, a rotating wheel 400 rotatably connected to the housing 100, a propulsion plate 500 movably connected to the housing 100, a first gear set 700 for transmitting power to the power component 300 and the rotating wheel 400, and a second gear set 800 for transmitting power to the propulsion plate 500 and the launch shaft 200.
[0035] It should be noted that the propulsion block on the power component 300 and the rotating wheel 400 constitutes a power assembly. The propulsion block is driven by the power component 300 to reciprocate, thereby pushing the propulsion plate 500 to move in one direction. In other embodiments of this utility model, the toy driving device may not have the first gear set 700 and / or the second gear set 800. If the first gear set 700 is not provided, the power component 300 directly drives the push wheel 400. If the second gear set 800 is not provided, the propulsion plate 500 directly drives the launching shaft 200. The toy driving device may not have the rotating wheel 400. In this case, the toy driving device may have other structures for fixing the propulsion block, such as a moving plate, a rotating belt, or other structural components that are driven by the power component 300 to move or rotate, thereby achieving the purpose of the propulsion block being driven by the power component 300 to reciprocate.
[0036] The housing 100 includes a detachably connected upper housing 110 and lower housing 120, with a cavity 130 between the upper housing 110 and lower housing 120 for connecting the rotating wheel 400 and the propulsion plate 500. The upper housing 110 has a storage cavity 1101 and a launch cavity 1102, which are connected by a through hole 1103. The storage cavity 1101 can store multiple flying saucers 10, which are stacked within it. In this embodiment, the bottom of the launch cavity 1102 extends downwards along the plane of the bottom wall of the storage cavity 1101, so that the bottom walls of the storage cavity 1101 and the launch cavity 1102 are on different horizontal planes, and the bottom wall of the storage cavity 1101 is higher than the bottom wall of the launch cavity 1102. The above configuration provides the launch cavity 1102 with an installation height for the launch shaft 200 to extend from, ensuring that the flying saucer 10 does not interfere with the launch shaft 200 during its controlled movement from the storage cavity 1101 to the launch cavity 1102, thus allowing it to fall completely into the launch cavity 1102. In other embodiments of this invention, the bottom walls of the launch cavity 1102 and the storage cavity 1101 can be located on the same horizontal plane. In this case, the flying saucer 10 needs to adopt an openable and closable structure. That is, when the flying saucer 10 touches the launch shaft 200, it can open its shell to move into the launch cavity 1102. When the flying saucer 10 is completely inside the launch cavity 1102, its shell can be closed and connected to the launch shaft 200.
[0037] In this embodiment, the upper housing 110 is composed of a detachably connected first housing 111, a second housing 112, and a third housing 113. The first housing 111 is fixed to one side of the second housing 112 to facilitate the formation of the storage cavity 1101 and the launching cavity 1102, thereby saving production costs. The third housing 113 is fixed to the other side of the second housing 112 to form a first mounting cavity 1104. The first mounting cavity 1104 communicates with the cavity 130 through a first opening 1105 for connecting the second gear set 800. In other embodiments of this utility model, if the toy driving device does not have a second gear set 800, the upper housing 110 may be composed only of the first housing 111 and the second housing 112. The upper housing 110 may also be a one-piece injection molded structure.
[0038] It should be noted that, in order to satisfy the positional relationship between the bottom walls of the storage cavity 1101 and the emission cavity 1102 in this embodiment, the second housing 112 is recessed with a groove 1121 at the position of the emission cavity 1102. When the first housing 111 is connected to the second housing 112, the bottom wall of the second housing 112 constitutes the bottom wall of the storage cavity 1101, and the bottom wall of the groove 1121 constitutes the bottom wall of the emission cavity 1102. In order to enable the push arm of the push plate 500 to be movably connected to the bottom of the storage cavity 1101, the second housing 112 is provided with a sliding hole 1122 communicating with the groove 1121 at the position of the storage cavity 1101. The extension direction of the sliding hole 1122 is the same as the movement direction of the flying saucer 10.
[0039] In this embodiment, the lower housing 120 is composed of a fourth housing 121 and a fifth housing 122 that are detachably connected, wherein the fourth housing 121 is detachably fixed to the second housing 112. The fourth housing 121 has a connecting groove 1211 and a connecting post 1212 on its side wall relative to the upper housing 110. A fixing post 1213 protrudes outward from the bottom of the connecting groove 1211. A rotating wheel 400 is rotatably sleeved on the fixing post 1213, and a fixing cover 123 is detachably connected to its end to confine the rotating wheel 400 within the cavity 130. A guide hole for a push plate 500 is movably inserted into the connecting post 1212 to confine the push plate 500 within the cavity 130. The fifth housing 122 is fixed to the fourth housing 121 on the opposite side of the upper housing 110, and is used to form the second mounting cavity 1201. The second mounting cavity 1201 communicates with the cavity 130 through the second opening 1202, and is used to connect the power component 300 and the first gear set 700.
[0040] In other embodiments of this utility model, if the toy driving device does not include the first gear set 700, the lower housing 120 may consist only of the fourth housing 121, in which case the power component 300 may be fixedly mounted on the fourth housing 121. Correspondingly, the lower housing 120 may also be an integrally injection-molded structure.
[0041] The launch shaft 200 is rotatably connected to the bottom of the launch cavity 1102. In this embodiment, the distance between the top of the launch shaft 200 and the plane where the bottom wall of the storage cavity 1101 is located is greater than or equal to zero, so as to ensure that the launch shaft 200 cannot interfere with the movement of the flying saucer 10 during the process of the flying saucer 10 moving into the launch cavity 1102, so that the flying saucer 10 can be moved horizontally and fall into the launch cavity 1102.
[0042] It is understood that the launch shaft 200 includes an integrally formed drive section 210 and a transmission section 220. The drive section 210 is rotatably exposed inside the launch cavity 1102. After the flying saucer 10 falls into the launch cavity 1102, the central opening of the flying saucer 10 can be fitted onto the drive section 210. When the drive section 210 rotates, it can drive the flying saucer 10 to rotate and fly out of the launch cavity 1102. The transmission section 220 is a gear structure, and the transmission section 220 is meshed with the second gear set 800 to drive the drive section 210 to rotate. It should be noted that the driving principle of the drive section 210 and the flying saucer 10 has been disclosed in the prior art, so it will not be described in detail here.
[0043] In this embodiment, the power component 300 is a rotary motor, which drives the rotating wheel 400 to rotate continuously via the first gear set 700. In other embodiments of this utility model, if the propulsion block is fixed on a structure such as a moving plate, the power component 300 can also be a structure that directly outputs linear motion power, such as a linear motor.
[0044] An eccentrically fixed push block 410 is provided on the rotating wheel 400. The push block 410 can reciprocate during the continuous rotation of the rotating wheel 400. During the reciprocating movement, the push block 410 can detachably abut against the push plate 500 to push the push plate 500 from the first position to the second position.
[0045] The push plate 500 is provided with a guide hole 510 that is slidably connected to the connecting post 1212. The guide hole 510 is an elongated hole and its extension direction is the same as the moving direction of the push plate 500. The extension length of the guide hole 510 is the same as or greater than the moving length of the push plate 500, so that the push plate 500 can move between the first position and the second position of the housing 100.
[0046] It is understood that an elastic element 600 connects the push plate 500 and the housing 100. A follower block 520 is provided on the side wall of the push plate 500 relative to the rotating wheel 400, and the follower block 520 is detachably connected to the push block 410. When the rotating wheel 400 rotates to the point where the push block 410 abuts against the follower block 520, the push plate 500 can be driven by the push block 410 to move from a first position to a second position. When the rotating wheel 400 rotates to the point where the push block 410 separates from the follower block 520, the push plate 500 can be driven by the elastic element 600 to move from the second position to the first position.
[0047] The push plate 500 is connected to the launch shaft 200 via the rack plate 530. It can be understood that the rack plate 530 is movably connected to the third housing 113, and the rack surface of the rack plate 530 is set facing the first opening 1105, so that the rack plate 530 can mesh with the second gear set 800, thereby driving the launch shaft 200 to rotate through the second gear set 800.
[0048] The push plate 500 is movably connected to the bottom of the storage cavity 1101 via a push arm 540. The push arm 540 includes an arm body 541 and a push block 542. A limiting baffle 5411 is provided on the arm body 541. The middle part of the push block 542 is rotatably connected to the arm body 541 via a torsion spring. The first end 5421 of the push block 542 is movably connected to the bottom of the storage cavity 1101 via a sliding hole 1122, for pushing one flying saucer 10 at a time. The second end 5422 of the push block 542 is abuttingly connected to the limiting baffle 5411, preventing the first end 5421 from rotating under force during the movement of the flying saucer 10, thus ensuring that the push block 542 can normally push the flying saucer 10 towards the launch cavity 1102.
[0049] In this embodiment, a slope 5423 is provided on the first end 5421, and the slope 5423 is inclined from the first end 5421 to the second end 5422. The push block 542 can rotate after contacting another flying saucer 10 on the bottom of the storage cavity 1101 during the movement of the push arm 540 with the push plate 500 to the first position, allowing the push arm 540 to move normally to the initial position. The contact transition through the slope 5423 makes the movement of the push arm 540 smoother, improving the user experience. It should be noted that when the push block 542 moves to the point of separation from the flying saucer 10 in the storage cavity 1101, the push block 542 can reset under the drive of the torsion spring, allowing the first end 5421 to contact and push the other flying saucer 10 again during the movement of the push arm 540 with the push plate 500 to the second position. In other embodiments of this utility model, the slope 5423 may not be provided on the first end 5421.
[0050] The first gear set 700 includes an output gear 710 fixed on the output shaft of the power member 300, an input gear 720 meshing with the rotating wheel 400, and a transmission gear 730 that is connected between the output gear 710 and the input gear 720.
[0051] In this embodiment, the input gear 720 includes a first gear 721 and a second gear 722 coaxially rotatably connected. A meshing sawtooth surface 723 is provided between the first gear 721 and the second gear 722. The first gear 721 meshes with the transmission gear 730 and is movably connected to its shaft via a spring. The second gear 722 meshes with the rotating wheel 400. Through the above arrangement, the first gear set 700 possesses a clutch function; that is, when the second gear 722 cannot rotate due to the influence of the rotating wheel 400, the first gear 721 can still continue to rotate with the cooperation of the elastic element, preventing the power component 300 from jamming and burning out. It should be noted that the input gear 720 adopts a clutch structure commonly used in the prior art, and its working principle will not be elaborated here. In other embodiments of this utility model, the input gear 720 can also be a fixed double gear structure.
[0052] In this embodiment, the transmission gear 730 includes three double gears meshing sequentially. It is understood that the first gear set 700 and the rotating wheel 400 form a reduction gear system. During the continuous operation of the power component 300, the first gear set 700 drives the rotating wheel 400 to rotate at a reduced speed, ensuring stable functioning. In other embodiments of this invention, the transmission gear 730 may use other numbers of gears, such as one, two, or four.
[0053] In this embodiment, the second gear set 800 includes a first drive gear 810 and a second drive gear 820 meshing with each other. The first drive gear 810 meshes with the rack plate 530, and the second drive gear 820 meshes with both the first drive gear 810 and the transmission part 220. It is understood that the second gear set 800 and the transmission part 220 form an acceleration gear system. During the movement of the rack plate 530, the second gear set 800 can drive the transmission part 220 to rotate at high speed, ensuring that the drive part 210 can rotate at high speed and increasing the probability of successfully launching the flying saucer 10. In other embodiments of this invention, the second gear set 800 may use other numbers of gears, such as one or more.
[0054] It should be noted that, during gameplay, the toy driving device provided in this embodiment first activates the power component 300 to drive the rotating wheel 400 to rotate continuously via the first gear set 700. During this process, the push block 410 rotates to contact the follower block 520 and pushes it to move, allowing the push plate 500 to move from the first position to the second position. At this time, the push arm 540 moves from one side of the storage cavity 1101 to the through hole 1103, enabling the push block 542 to push the flying saucer 10 on the bottom wall of the storage cavity 1101 towards the launch cavity 1102. When the push plate 500 is in the second position, the flying saucer 10 falls into the launch cavity 1102 and connects to the launch shaft 200. As the propulsion block 410 continues to rotate, it separates from the follower block 520. The propulsion plate 500 is then pushed towards the first position by the elastic element 600. At this time, the rack plate 530 drives the launch shaft 200 to rotate at high speed via the second gear set 800, outputting torque to the flying saucer 10, allowing it to rotate and fly away from the launch chamber 1102. During the continuous rotation of the rotating wheel 400, the propulsion plate 500 can continuously move between the first and second positions, thus cyclically performing the steps of pushing the flying saucer 10 to move and driving its rotation, achieving automatic and continuous launch of the flying saucer 10. It can be understood that during the operation of the toy's drive mechanism, the number of flying saucers launched and the game time can be increased by continuously adding flying saucers 10 into the storage chamber 1101.
[0055] For clarity, certain features described in individual embodiments of the present invention may be used in combination in a single embodiment. Furthermore, various features of the present invention described in individual embodiments may also be used individually or in any suitable form in sub-combinations.
Claims
1. A toy drive device capable of continuously launching flying saucers, characterized in that, include: The shell has a storage cavity and a launch cavity, which are connected by a through hole that allows the flying saucer to pass through. The launching shaft is rotatably connected to the bottom of the launching cavity; A power assembly, comprising a power element and a propulsion block that is driven to reciprocate by said power element; as well as A propulsion plate is movable between a first position and a second position of the housing. The propulsion plate is separably abutted against the propulsion block, and an elastic element connects the propulsion plate and the housing. The propulsion plate is driven to the launch shaft via a rack plate. The propulsion plate is movably connected to the interior of the storage cavity via a push arm. When the propulsion plate is driven to the second position by the propulsion block, the push arm pushes the flying saucer in the storage cavity into the launch cavity. When the propulsion plate is driven to the first position by the elastic element, the rack plate drives the launch shaft to rotate to launch the flying saucer.
2. The toy drive device capable of continuously launching flying saucers as described in claim 1, characterized in that, The propulsion block is eccentrically fixed on a rotating wheel, the rotating wheel is connected to the power component, and the propulsion plate has a follower block on its side wall relative to the propulsion block, the follower block being detachably connected to the propulsion block.
3. The toy drive device capable of continuously launching flying saucers as described in claim 2, characterized in that, It also includes a first gear set, which includes an output gear fixed to the output shaft of the power component, an input gear meshing with the rotating wheel, and a transmission gear that is connected between the output gear and the input gear.
4. The toy drive device capable of continuously launching flying saucers as described in claim 3, characterized in that, The input gear includes a first gear and a second gear that are rotatably connected coaxially. The first gear and the second gear have meshing sawtooth surfaces. The first gear meshes with the transmission gear and is movably connected to its shaft by a spring. The second gear meshes with the rotating wheel.
5. The toy drive device capable of continuously launching flying saucers as described in claim 1, characterized in that, The propulsion block is fixed on a movable plate or a rotating ring belt. The movable plate or the rotating ring belt is connected to the power component for transmission. The propulsion plate has a follower block on its side wall relative to the propulsion block. The follower block is detachably connected to the propulsion block in abutment.
6. The toy drive device capable of continuously launching flying saucers as described in claim 1, characterized in that, The push arm includes an arm body and a push block. The arm body is provided with a limiting baffle. The middle part of the push block is rotatably connected to the arm body by a torsion spring. The first end of the push block is movably connected to the inside of the storage cavity to push one of the flying saucers into the launch cavity at a time. The second end of the push block is abuttingly connected to the limiting baffle.
7. The toy drive device capable of continuously launching flying saucers as described in claim 3, characterized in that, It also includes a second gear set, which includes a first drive gear and a second drive gear that are meshed together. The first drive gear is meshed with the rack plate, and the second drive gear is meshed with the first drive gear and the launch shaft, respectively.
8. The toy drive device capable of continuously launching flying saucers as described in claim 7, characterized in that, The launch shaft includes an integrally formed drive part and a transmission part. The drive part is rotatably exposed inside the launch cavity to drive the flying saucer to rotate and fly out of the launch cavity. The transmission part is meshed with the second drive gear.
9. The toy drive device capable of continuously launching flying saucers as described in claim 7, characterized in that, The housing includes a detachably connected upper housing and a lower housing. A cavity is provided between the upper housing and the lower housing for connecting the rotating wheel and the propulsion plate. The upper housing has a first mounting cavity communicating with the cavity, which is used to connect the second gear set. The lower housing has a second mounting cavity communicating with the cavity, which is used to connect the power component and the first gear set.
10. The toy drive device capable of continuously launching flying saucers as described in claim 9, characterized in that, The lower housing has a connecting groove and a connecting post on its side wall relative to the upper housing. A fixing post is provided with an outward protrusion at the bottom of the connecting groove. The rotating wheel is rotatably sleeved on the fixing post, and a fixing cover is detachably connected to the end of the fixing post. The guide hole of the push plate is movably inserted into the connecting post.
Citation Information
Patent Citations
Flying saucer launching toy
CN222092517U