Ejection gyro sword

By using a figure-eight-shaped inclined guide rail and a linear guide rail structure in the ejected gyro sword, the problem of slipping out caused by inaccurate installation of gyros in the prior art is solved, and a child-friendly installation and high-speed rotation effect is achieved.

CN223055071UActive Publication Date: 2025-07-04许惠锦
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Patent Information

Application Number
CN202421821054.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-30
Publication Date
2025-07-04
Estimated Expiration
2034-07-30

AI Technical Summary

Technical Problem

The existing sword-type gyro launchers need to be precisely aligned with the launch slot during installation, and children who are not yet skilled in their hands-on ability are likely to cause the gyro to slide out, making it impossible to achieve fault-tolerant guided installation.

Method used

A catapulted gyro sword is designed, adopting a figure-eight oblique guide rail and a linear guide rail structure, guiding the gyro installation through the oblique guide rail, using the mobile card block and arc-shaped locking seat limit, combined with the control button and the power spring, the reliable fixing and smooth release of the gyro is achieved.

Benefits of technology

It realizes the reliable installation and smooth release of the gyro, which is suitable for children with weak hands-on ability, ensuring that the gyro does not slide out before launch and can maintain high-speed rotation after launch.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an ejection top sword, and particularly relates to the field of ejection top swords, the ejection top sword comprises a sword body and a top, a force storage groove is arranged on a main body of the sword body, the top is arranged in the force storage groove, a control button for controlling the release of the top is further arranged on the sword body, and a splayed inclined guide rail is arranged in the force storage groove. The two groups of linear guide rails are connected with the inclined guide rails, and gyro connecting plates are connected to tracks of the two groups of linear guide rails in a sliding manner. The splayed inclined guide rail guides the gyroscope to be installed on the gyroscope connecting plate, and the movable clamping block moves close to the arc-shaped clamping seat while sliding along the track of the inclined guide rail, so that the movable clamping block and the arc-shaped clamping seat jointly limit the gyroscope, the control clamping head is buckled into the control clamping hole, and the positions of the gyroscope connecting plate and the gyroscope are limited; and the control clamping head is separated from the control clamping hole, so that the gyroscope connecting plate and the gyroscope slide out of the force storage groove along the linear guide rail under the elastic force action of the force storage spring.
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Description

Technical Field

[0001] The utility model relates to the field of catapult gyro swords, and more specifically, to a catapult gyro sword. Background Technique

[0002] Both gyro toys and sword-shaped toys are popular toy forms among children. Combining the two can bring double the fun of playing with a sword-shaped toy while achieving gyro play. Therefore, gyro swords are becoming increasingly popular among children:

[0003] After retrieval, the existing patent (Publication No.: CN219355234U) discloses a sword-shaped gyro launcher that can drive the rotation of the gyro connected to the gyro connection position through the cooperation of the rack and gear transmission group. The inventor found the following problems in the process of implementing the present utility model:

[0004] Although the above-mentioned sword-shaped gyro launcher can achieve gyro launch, it requires the gyro to be accurately aligned with the launch slot, and it cannot provide fault-tolerant guidance installation for children with unskilled hands-on ability. Moreover, the gyro can only be position-locked after the push plate reaches the predetermined position and is engaged with the launch switch part for position locking. If the force is insufficient during the installation of the gyro, the gyro will slide out of the launch slot.

[0005] Therefore, a catapult gyro sword is proposed to solve the above problems. Content of the Utility Model

[0006] In order to overcome the above-mentioned defects of the prior art, the present utility model provides a catapult gyro sword to solve the problems raised in the above background technique.

[0007] To achieve the above object, the present utility model provides the following technical solution: A catapult gyro sword, including a sword body and a gyro. A power storage groove is formed on the main body of the sword body, and the gyro is arranged in the power storage groove. A control button for controlling the release of the gyro is also arranged on the sword body. An eight-shaped inclined guide rail is arranged in the power storage groove, and two groups of linear guide rails connected to the inclined guide rail are provided. Gyro connecting plates are slidably connected to the tracks of the two groups of linear guide rails.

[0008] Preferably, a rack is arranged on one side of one of the linear guide rails facing the power storage groove. The gyro connecting plate and the housing of the sword body are respectively connected to both ends of a power storage spring.

[0009] Preferably, a return spring is arranged on the side of the control button facing the sword body, and a control chuck and a control card hole that are buckled with each other are respectively arranged on the control button and the gyro connecting plate.

[0010] Preferably, a driving gear that rotates coaxially with the top is provided at one end of the top facing the energy storage groove, and the driving gear meshes with the rack.

[0011] Preferably, an arc-shaped clamping seat is provided on one side of the top connecting plate facing the inclined guide rail, and a moving clamping block is provided on the side of the top connecting plate away from the rack. The moving clamping block moves closer to the arc-shaped clamping seat while sliding along the track of the inclined guide rail.

[0012] The technical effects and advantages of the present utility model:

[0013] Compared with the prior art, this catapult top sword can use the inclined guide rails in a figure-eight shape to guide the top to be installed on the top connecting plate. The moving clamping block moves closer to the arc-shaped clamping seat while sliding along the track of the inclined guide rail, so that the moving clamping block and the arc-shaped clamping seat jointly limit the top. When the control chuck is buckled into the control card hole, the top will not slide out of the energy storage groove. The control chuck is buckled into the control card hole to limit the position of the top connecting plate and the top. Press the control button to disengage the control chuck from the control card hole, and then the top connecting plate and the top slide out of the energy storage groove along the linear guide rail under the elastic force of the energy storage spring. Description of the Drawings

[0014] Figure 1 Schematic diagram of the overall structure of the present utility model:

[0015] Figure 2 Schematic diagram of the installation structure of the present utility model:

[0016] Figure 3 Schematic diagram of the top view structure of the present utility model:

[0017] Figure 4 Schematic diagram of the sword body structure of the present utility model:

[0018] Figure 5 Schematic diagram of the structure of the top of the present utility model:

[0019] Figure 6 Schematic diagram of the structure of the top connecting plate of the present utility model:

[0020] Figure 7 Schematic diagram of the structure of the rack of the present utility model:

[0021] Figure 8 Schematic diagram of the structure of the present utility model connected with the moving clamping block.

[0022] The reference numerals are: 1, sword body; 11, control button; 111, control chuck; 112, return spring; 2, energy storage groove; 21, inclined guide rail; 22, linear guide rail; 23, rack; 231, energy storage spring; 3, gyro; 31, drive tooth; 4, gyro connecting plate; 41, control card hole; 42, arc chuck; 421, moving block. Detailed implementation manners

[0023] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0024] Embodiment 1

[0025] As shown in the attached Figures 1 to 3 A catapult gyro sword, including a sword body 1 and a gyro 3. An energy storage groove 2 is formed in the main body of the sword body 1, and the gyro 3 is arranged in the energy storage groove 2. A control button 11 for controlling the release of the gyro 3 is further arranged on the sword body 1. An inclined guide rail 21 in a figure-eight shape and two groups of linear guide rails 22 connected to the inclined guide rail 21 are arranged in the energy storage groove 2. Gyro connecting plates 4 are slidably connected to the tracks of the two groups of linear guide rails 22.

[0026] Wherein: after the gyro 3 is guided by the inclined guide rail 21 in a figure-eight shape and installed on the gyro connecting plate 4, the gyro 3 slides synchronously with the gyro connecting plate 4. After the two are installed in place along the energy storage groove 2, the gyro 3 is released by using the control button 11, so that it slides out of the sword body 1 along the energy storage groove 2, realizing the rotating effect of the gyro 3.

[0027] Embodiment 2

[0028] On the basis of Embodiment 1, the solution in Embodiment 1 will be further refined and introduced in combination with the following specific working modes. As Figures 1 to 8 shown, see the detailed description below:

[0029] As a preferred embodiment, a rack 23 is provided on one side of a set of linear guide rails 22 facing the energy storage groove 2. The gyro connecting plate 4 and the housing of the sword body 1 are respectively connected to both ends of the energy storage spring 231. One end of the gyro 3 facing the energy storage groove 2 is provided with a driving gear 31 that rotates coaxially therewith. The driving gear 31 meshes with the rack 23. Further, by the guiding action of the linear guide rails 22, after the gyro 3 slides synchronously along the energy storage groove 2 with the gyro connecting plate 4, the energy storage spring 231 slides with the gyro connecting plate 4, thereby compressing the energy storage spring 231 to store energy. During the sliding process, the driving gear 31 continuously rotates the gyro 3 due to the structural feature that the driving gear 31 meshes with the rack 23, and moves relative to the linear guide rails 22.

[0030] As a preferred embodiment, a return spring 112 is provided on one side of the control button 11 facing the sword body 1, and a control chuck 111 and a control card hole 41 that are buckled with each other are respectively provided on the control button 11 and the gyro connecting plate 4. Further, when the control card hole 41 on the gyro connecting plate 4 slides to the control chuck 111 with the gyro connecting plate 4, the control chuck 111 is buckled into the control card hole 41 to limit the positions of the gyro connecting plate 4 and the gyro 3. When it is necessary to release the gyro 3, press the control button 11 to disconnect the control chuck 111 and the control card hole 41, so that the gyro connecting plate 4 and the gyro 3 slide out of the energy storage groove 2 along the linear guide rails 22 under the elastic force of the energy storage spring 231. While the gyro 3 slides, the driving gear 31 continuously rotates the gyro 3 due to the structural feature that the driving gear 31 meshes with the rack 23, so that the gyro 3 can still maintain self-rotation after completely disengaging from the energy storage groove 2, and further enables the gyro 3 to still rotate rapidly after contacting the ground.

[0031] As a preferred embodiment, an arc-shaped clamping seat 42 is provided on one side of the gyro connecting plate 4 facing the inclined guide rail 21, and a moving block 421 is provided on the side of the gyro connecting plate 4 away from the rack 23. The moving block 421 moves closer to the arc-shaped clamping seat 42 while sliding along the track of the inclined guide rail 21. Further, when the moving block 421 provided on the gyro connecting plate 4 is located on the track of the inclined guide rail 21 in a shape of an inverted V, the opening of the arc-shaped clamping seat 42 is larger at this time, so that the gyro 3 can be easily clamped on the gyro connecting plate 4. As the gyro connecting plate 4 and the gyro 3 are pulled backward by force, the moving block 421 synchronously slides to the track of the linear guide rail 22. At this time, due to the structural feature that the moving block 421 moves closer to the arc-shaped clamping seat 42 while sliding along the track of the inclined guide rail 21, the moving block 421 and the arc-shaped clamping seat 42 jointly limit the gyro 3, so that when the control chuck 111 is buckled into the control card hole 41, the gyro 3 will not slide out of the energy storage groove 2, so as to wait for the user to press the control button 11 next time to launch the gyro 3.

[0032] The working process of the present utility model is as follows: First, the top 3 slides down into the energy storage groove 2 under the guiding action of the inclined guide rails 21 in a figure-eight shape, pulling the top 3 and then pulling the top connecting plate 4, so that the energy storage spring 231 is compressed to store energy. The moving block 421 synchronously slides onto the track of the linear guide rail 22. At this time, due to the structural feature that the moving block 421 slides along the track of the inclined guide rail 21 while approaching the arc-shaped clamping seat 42, the moving block 421 and the arc-shaped clamping seat 42 jointly limit the top 3, so that when the control chuck 111 is buckled into the control card hole 41, the top 3 will not slide out of the energy storage groove 2. Press the control button 11 to disconnect the control chuck 111 and the control card hole 41, so that the top connecting plate 4 and the top 3 slide out of the energy storage groove 2 along the linear guide rail 22 under the elastic force of the energy storage spring 231. While the top 3 is sliding, the top 3 is continuously rotated by using the structural feature that the driving gear 31 meshes with the rack 23, so that after the top 3 completely disengages from the energy storage groove 2, it can still maintain the self-rotation state, and thus can still maintain high-speed self-rotation after the top 3 contacts the ground. The above is the working principle of this kind of ejection top sword.

Claims

1. A catapult gyro sword, comprising a sword body (1) and a gyro (3), characterized in that: A power storage groove (2) is formed in the main body of the sword body (1), and a top (3) is arranged in the power storage groove (2). A control button (11) for controlling the release of the top (3) is further arranged on the sword body (1). An inclined guide rail (21) in a figure-eight shape and two groups of linear guide rails (22) connected to the inclined guide rail (21) are arranged in the power storage groove (2). A top connecting plate (4) is slidably connected to the tracks of the two groups of linear guide rails (22).

2. The catapult gyro sword according to claim 1, wherein: A rack (23) is arranged on one side of one group of the linear guide rails (22) facing the power storage groove (2). The top connecting plate (4) and the housing of the sword body (1) are respectively connected to both ends of a power storage spring (231).

3. A catapult gyro sword according to claim 1, characterized in that: A return spring (112) is arranged on one side of the control button (11) facing the sword body (1). A control chuck (111) and a control card hole (41) which are buckled with each other are respectively arranged on the control button (11) and the top connecting plate (4).

4. A catapult gyro sword according to claim 2, characterized in that: A driving tooth (31) which rotates coaxially with the top (3) is arranged at one end of the top (3) facing the power storage groove (2). The driving tooth (31) is meshed with the rack (23).

5. A catapult gyro sword according to claim 2, characterized in that: An arc-shaped clamping seat (42) is arranged on one side of the top connecting plate (4) facing the inclined guide rail (21). A moving clamping block (421) is arranged on one side of the top connecting plate (4) away from the rack (23). While the moving clamping block (421) slides along the track of the inclined guide rail (21), it approaches the arc-shaped clamping seat (42).

Citation Information

Patent Citations

  • Sword-shaped gyroscope launcher

    CN219355234U