Emitter, driving piece and toy assembly
By combining the base, transmission gears, locking components, limiting components, swinging components, and elastic components, the problem of large size and complex structure of gyroscope launchers is solved, achieving stable and reliable gyroscope launch, simplifying the launcher design, and enhancing the toy's fun and portability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-03-02
- Publication Date
- 2026-04-10
AI Technical Summary
Existing gyroscope transmitters are large and complex in structure, making it difficult to achieve simple and reliable gyroscope launch.
It adopts a combination structure of base, transmission gear, locking component, limiting component, swing component and elastic component. The limiting component limits the locking component, and the elastic component drives the rotation of the locking component and the limiting component, which simplifies the transmitter structure, improves reliability and facilitates miniaturization design.
It achieves stable cooperation between the gyroscope and the launcher, simplifies the launcher structure, improves the reliability of the launcher and facilitates miniaturization design, and enriches the ways to play with the toy.
Smart Images

Figure CN121819342A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of children's toys, in particular to a launcher, a driving member and a toy assembly. BACKGROUND
[0002] A gyroscope is a popular children's toy, and a gyroscope launcher upgrades the playing method of the gyroscope, and realizes the combat and playing by driving the gyroscope to rotate and launch through the launcher, which enriches the playing method of the gyroscope. SUMMARY
[0003] The present application aims to at least solve one of the technical problems in the related art. To this end, one object of the present application is to provide a launcher with a simple structure.
[0004] Another object of the present application is to provide a driving member adapted to the aforementioned launcher.
[0005] Still another object of the present application is to provide a toy assembly.
[0006] The launcher according to the embodiments of the present application comprises a seat body, a transmission tooth, a locking member, a limiting member, a swing member and a first elastic member, the seat body comprises a launching groove and a driving groove, the launching groove is used for accommodating a gyroscope, the driving groove is used for accommodating a driving member, the launching groove has opposite groove bottoms and a groove opening; the transmission tooth is rotatably arranged in the seat body, the transmission tooth extends into the launching groove and the driving groove and is used for transmission connection of the gyroscope and the driving member; the locking member is rotatably arranged in the seat body and has a locking position for locking the gyroscope in the launching groove and a launching position for driving the gyroscope to launch from the groove opening; the limiting member is used for limiting the locking member in the locking position; the swing member is rotatably arranged in the seat body, the swing member extends into the driving groove and is adapted to be driven by the driving member to release the limiting of the locking member by the limiting member; and the first elastic member is configured to have an elastic force for driving the locking member to rotate towards the launching position and driving the limiting member to rotate towards the direction of limiting the locking member.
[0007] The limiting member can limit the locking member in the locking position, which improves the cooperation stability of the gyroscope and the launcher, the swing member can drive the limiting member to release the limiting of the locking member, after the limiting member releases the limiting of the locking member, the first elastic member can drive the locking member to move towards the launching position, the first elastic member can also drive the limiting member to rotate towards the direction of limiting the locking member, which simplifies the structure of the launcher, improves the reliability of the launcher, and facilitates the miniaturization design of the launcher.
[0008] In some embodiments, the limiting member is rotatably disposed on the seat, and the first elastic member is connected to the locking member and the limiting member respectively, and has an elastic force that drives the limiting member and the locking member to rotate.
[0009] In some embodiments, the limiting member has a first limiting end, which, in the locked position, abuts against the locking member circumferentially and restricts the locking member from rotating toward the launching position.
[0010] In some embodiments, the limiting member has a first collision point, and in the locked position, the first collision point is opposite to the hammering point of the swing member along the circumference of the swing member, for being driven by the hammering point to release the limiting member from the locking member.
[0011] In some embodiments, the hinge point between the limiting member and the seat is located between the first limiting end and the first collision point.
[0012] In some embodiments, the limiting member is rotatably disposed on the locking member, and the first elastic member is connected to the limiting member and the seat respectively, and has an elastic force that drives the limiting member and the locking member to rotate.
[0013] In some embodiments, the limiting member has a second limiting end, and the seat body has a limiting notch. In the locked position, the second limiting end is located at the limiting notch and limits the locking member circumferentially along the locking member, and restricts the locking member from rotating toward the launching position.
[0014] In some embodiments, in the locked position, the second limiting end is opposite to the hammering point of the swing member along the circumference of the swing member, and is used to drive the second limiting end to disengage from the limiting notch by the hammering point, so as to release the limiting of the locking member.
[0015] In some embodiments, the limiting member has a second connecting end connected to the first elastic member, and the hinge point between the limiting member and the locking member is located between the second limiting end and the second connecting end.
[0016] In some embodiments, the oscillating member includes an actuating end and a striking point. The actuating end extends into the drive groove. In the locked position, the striking point is opposite to the limiting member along the rotation direction of the oscillating member and can drive the limiting member to release the limiting member from the locking member.
[0017] In some embodiments, the transmitter further includes a second elastic element that connects the oscillating member and the base and has an elastic force that limits the oscillation of the oscillating member.
[0018] In some embodiments, the bottom of the slot is opposite to the opening of the slot along a first direction, the drive slot is disposed on the side of the launching slot along a second direction and penetrates the base body along the first direction, and the first direction and the second direction are perpendicular;
[0019] Alternatively, the bottom of the slot is opposite to the opening of the slot along a first direction, the drive slot is disposed on the side of the launching slot along the first direction, and the drive slot penetrates the base body along a second direction, wherein the first direction and the second direction are perpendicular.
[0020] In some embodiments, the transmitter further includes a first arm and a second arm, the first arm and the second arm being respectively connected to opposite sides of the base along a second direction. Wherein, the first arm is relatively stationary and detachably connected to the seat or rotatably connected; or, the second arm is relatively stationary and detachably connected to the seat or rotatably connected.
[0021] In some embodiments, the transmitter further includes a third arm and a fourth arm, one end of the third arm being connected to the base, and one end of the fourth arm being connected to the base. The transmitter has an unfolded state in which the other end of the fourth arm is connected to the other end of the third arm, the base, the third arm, and the fourth arm are connected to form a triangle, and the connection between the third arm and the fourth arm has a through hole opposite to the drive slot; or, the transmitter has a folded state in which the third arm and the fourth arm are folded to adjacent sides of the base, and the third arm or the fourth arm covers the slot.
[0022] According to an embodiment of the present invention, a drive member adapted to the aforementioned transmitter is provided. The drive member includes a rack, the rack including a plurality of teeth and an actuating portion. The plurality of teeth are distributed along the length direction of the rack, the actuating portion is arranged along the length direction of the rack, and the actuating portion and the plurality of teeth are distributed along the width direction of the rack. The plurality of teeth are used to mesh with the transmission teeth, and the actuating portion is used to drive the oscillating member.
[0023] In some embodiments, the actuating portion includes a plurality of sub-portions spaced apart along the length direction of the teeth, and a groove is formed between adjacent sub-portions to accommodate the actuating end of the oscillating member.
[0024] In some embodiments, the plurality of sub-parts includes a first sub-part that connects to the plurality of teeth and extends along the length direction of the rack; And / or, the plurality of sub-parts further includes a second sub-part, the second sub-part being distributed and connected to one of the teeth along the width direction.
[0025] According to an embodiment of the present invention, a toy assembly includes: a gyroscope, the aforementioned launcher, and the aforementioned drive unit. Attached Figure Description
[0026] Figure 1 This is a schematic diagram of the transmitter according to an embodiment of the present invention.
[0027] Figure 2 This is a partial schematic diagram of the transmitter according to an embodiment of the present invention, wherein the locking member is in the locked position.
[0028] Figure 3 This is a partial schematic diagram of the transmitter according to an embodiment of the present invention, wherein the locking member is in the launching position.
[0029] Figure 4 This is a partial schematic diagram of the transmitter according to an embodiment of the present invention.
[0030] Figure 5 This is a schematic diagram of a transmitter according to another embodiment of the present invention.
[0031] Figure 6 This is a partial schematic diagram of a transmitter according to another embodiment of the present invention, wherein the transmitter is in an idle state.
[0032] Figure 7 This is a partial schematic diagram of a transmitter according to another embodiment of the present invention, wherein a gyroscope is installed in the transmitter and a locking member is in the locked position.
[0033] Figure 8 This is a partial schematic diagram of a transmitter according to another embodiment of the present invention, showing the unlocking process of the driving element.
[0034] Figure 9 This is a partial schematic diagram of a transmitter according to another embodiment of the present invention, showing the unlocking process of the driving element.
[0035] Figure 10 This is a partial schematic diagram of a transmitter according to another embodiment of the present invention, showing a gyroscope being launched with a locking member in the launch position.
[0036] Figure 11 This is a partial schematic diagram of a transmitter according to another embodiment of the present invention.
[0037] Figure 12 This is a partial schematic diagram of the base of the transmitter according to another embodiment of the present invention.
[0038] Figure 13 This is a partial schematic diagram of the transmitter and driver according to an embodiment of the present invention, in which part of the base is hidden.
[0039] Figure 14 This is a partial schematic diagram of the transmitter and drive unit of another embodiment of the present invention, in which part of the base is hidden.
[0040] Figure 15 This is a schematic diagram of the transmitter according to an embodiment of the present invention.
[0041] Figure 16 This is a schematic diagram of the transmitter according to an embodiment of the present invention.
[0042] Figure 17 This is a schematic diagram of another transmitter according to an embodiment of the present invention, wherein the transmitter is in an unfolded state.
[0043] Figure 18 This is a schematic diagram of another transmitter according to an embodiment of the present invention, wherein the transmitter is in a folded state.
[0044] Figure 19 This is a schematic diagram of the driving component according to an embodiment of the present invention.
[0045] Figure 20 yes Figure 19 Enlarged view of point F in the middle circle.
[0046] Figure label: The components include: a transmitter 100, a base 10, a launching slot 11, a slot bottom 111, a slot opening 112, a drive slot 12, a limiting notch 13, an inner line 141, an outer line 142, an inclined surface 143, a transmission gear 20, a locking component 30, a limiting component 40, a first limiting end 41, a first collision point 42, a second limiting end 43, a second connecting end 44, a swinging component 50, a hammering point 51, a triggering end 52, a first elastic component 60, a second elastic component 70, a first arm 81, a second arm 82, a third arm 83, a fourth arm 84, a gyroscope 200, a drive component 300, a rack 310, a toothed part 311, a triggering part 312, a first sub-part 3121, a second sub-part 3122, a groove 3123, and a handle 320. Detailed Implementation
[0047] Embodiments of the present invention are described in detail below, examples of which are illustrated 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 the present invention, and should not be construed as limiting the present invention.
[0048] Combination Figure 1 , Figure 2 , Figure 5 and Figure 6According to an embodiment of the present invention, the transmitter 100 can be used to accommodate and launch a gyroscope 200. The transmitter 100 includes a base 10, a transmission gear 20, and a locking member 30. The base 10 includes a launching slot 11 and a driving slot 12. The launching slot 11 is used to accommodate the gyroscope 200, and the driving slot 12 is used to accommodate the driving member 300. The launching slot 11 has opposing slot bottoms 111 and slot openings 112. The transmission gear 20 is rotatably disposed on the base 10 and extends into the launching slot 11 and the driving slot 12 for transmitting power between the gyroscope 200 and the driving member 300. The locking member 30 is rotatably disposed on the base 10 and has a locking position for locking the gyroscope 200 in the launching slot 11 and a launching position for driving the gyroscope 200 to launch from the slot opening 112. Figure 2 As shown, the locking element 30 is in the locked position, as... Figure 3 As shown, the locking member 30 is in the launching position. Specifically, the gyroscope 200 can be inserted into the launching slot 11 through the slot 112, and the gyroscope 200 can be launched from the slot 112. The bottom of the slot 111 can be used to limit the gyroscope 200. After the gyroscope 200 is inserted into the launcher 100 through the slot 112, the locking member 30 can lock the gyroscope 200 in the launcher 100 to prevent the gyroscope 200 from sliding out of the launcher 100.
[0049] Combined Figure 1 , Figure 2 , Figure 5 and Figure 6The transmitter 100 also includes a limiting member 40, a swing member 50, and a first elastic member 60. The limiting member 40 is used to limit the locking member 30 to the locked position. The swing member 50 is rotatably disposed on the base 10, extends into the drive groove 12, and is adapted to be driven by the drive member 300 to release the limiting member 40 from limiting the locking member 30. The first elastic member 60 is configured to have an elastic force that drives the locking member 30 to rotate toward the launching position and drives the limiting member 40 to rotate toward limiting the locking member 30. Specifically, after the gyroscope 200 is installed in the transmitter 100, the limiting member 40 can limit the locking member 30 to the locked position, so that the locking member 30 stably locks the gyroscope 200 in the transmitter 100, preventing the gyroscope 200 from slipping out of the transmitter 100 and improving the stability of the cooperation between the gyroscope 200 and the transmitter 100. The driving member 300 can drive the gyroscope 200 to rotate and launch. For example, when the gyroscope 200 needs to be launched, the driving member 300 drives the transmission gear 20 to rotate, and the transmission gear 20 drives the gyroscope 200 to rotate. The driving member 300 can also drive the oscillating member 50 to rotate, causing the oscillating member 50 to drive the limiting member 40 to release the locking member 30. Under the action of the first elastic member 60, the locking member 30 can rotate to the launching position, allowing the gyroscope 200 to be launched from the slot 112. This simplifies the structure of the launcher 100 and improves its reliability. Furthermore, by simplifying the structure of the launcher 100, it facilitates miniaturization and portability. For example, the locking member 30 may include a C-shaped locking part, facilitating the locking of the gyroscope 200.
[0050] In this configuration, the swing member 50 is driven by the drive member 300 to release the limiting member 40 from the locking member 30. The limiting member 40 can limit the locking member 30 in different ways. For example, in combination with... Figure 2 The limiting member 40 can be provided on the base 10, and the locking member 30 is in the locked position. The limiting member 40 can limit the locking member 30 by abutting against it. When the swing member 50 triggers the limiting member 40, the limiting member 40 releases the locking member 30, and the locking member 30 can be moved to the launching position by the action of the first elastic member 60. Or, in combination with Figure 7 The limiting member 40 can be provided on the locking member 30. When the locking member 30 is in the locked position, the limiting member 40 can be engaged with the base 10 and the limiting member 40 cannot move, thereby limiting the locking member 30. When the swing member 50 triggers the limiting member 40, the locking member 30 can move to the launching position under the action of the first elastic member 60.
[0051] In addition to having an elastic force that drives the locking member 30 to rotate toward the launching position, the first elastic member 60 also has an elastic force that drives the limiting member 40 to rotate toward the limiting locking member 30. For example, in combination with... Figure 2The first elastic element 60 can be directly connected to the locking element 30 and the limiting element 40, facilitating the simultaneous driving of the locking element 30 and the limiting element 40 through the first elastic element 60; or, combined with Figure 6 The first elastic element 60 can indirectly drive the locking element 30. For example, the first elastic element 60 can connect the base 10 and the limiting element 40. The limiting element 40 is connected to the locking element 30. The first elastic element 60 can apply force to the limiting element 40 and drive the locking element 30 to rotate toward the launching position.
[0052] The transmitter 100 of different embodiments of the present invention is described below with reference to the accompanying drawings.
[0053] Implementation Method 1 Combination Figures 2 to 4 In some embodiments of the present invention, the limiting member 40 is rotatably disposed on the base 10, and the first elastic member 60 is connected to the locking member 30 and the limiting member 40 respectively, and has an elastic force to drive the limiting member 40 and the locking member 30 to rotate. Exemplarily, one end of the first elastic member 60 can be connected to the locking member 30, and the other end can be connected to the limiting member 40. The first elastic member 60 simultaneously drives the locking member 30 and the limiting member 40, simplifying the structure of the transmitter 100 and improving the structural reliability of the transmitter 100. Specifically, after the limiting member 40 releases its restriction on the locking member 30, the first elastic member 60 can drive the locking member 30 to rotate toward the launching position; when the gyroscope 200 is inserted from the slot 112 into the launching slot 11, the first elastic member 60 can drive the limiting member 40 to rotate toward the direction of limiting the locking member 30, so that the limiting member 40 limits the locking member 30 to the locked position.
[0054] Combination Figure 2 and Figure 4 In some embodiments of the present invention, the limiting member 40 has a first limiting end 41. In the locked position, the first limiting end 41 abuts against the locking member 30 circumferentially and restricts the locking member 30 from rotating toward the launching position, thereby improving the limiting effect of the limiting member 40 on the locking member 30 and preventing the limiting member 40 from failing to limit. For example, the locking member 30 is rotatably connected to the base 10. When the locking member 30 is in the locked position, the first elastic member 60 can drive the first limiting end 41 of the limiting member 40 to abut against the locking member 30, preventing the locking member 30 from rotating and ensuring that the locking member 30 is stably maintained in the locked position, further improving the stability of the cooperation between the gyroscope 200 and the transmitter 100. In addition, the first limiting end 41 stops the locking member 30 along the circumference of the locking member 30, which also facilitates the limiting member 40 to release the limiting of the locking member 30. When the swing member 50 triggers the limiting member 40, the limiting member 40 can rotate to separate the first limiting end 41 from the locking member 30, so that the limiting member 40 can make way and thus allow the locking member 30 to rotate to the launch position.
[0055] Combination Figures 2 to 4Furthermore, the limiting member 40 has a first collision point 42. In the locked position, the first collision point 42 is opposite to the hammering point 51 of the swing member 50 along the circumference of the swing member 50, and is used to release the limiting member 40 from the locking member 30 by the hammering point 51. Specifically, when the driving member 300 drives the swing member 50 to rotate, the hammering point 51 of the swing member 50 applies force to the first collision point 42 of the limiting member 40, causing the limiting member 40 to rotate. The limiting member 40 releases the locking member 30, and the locking member 30 can move to the launching position under the action of the first elastic member 60, ejecting the gyroscope 200. The first collision point 42 of the limiting member 40 is opposite to the hammering point 51 of the swing member 50 along the circumference of the swing member 50. This facilitates the swing member 50 rotating and impacting the limiting member 40, causing the limiting member 40 to make way, thereby moving the locking member 30 to the launching position and launching the gyroscope 200. This simplifies the structure of the launcher 100 and improves its reliability. Furthermore, the swing member 50 and the limiting member 40 are designed to collide end-to-end, enabling the swing member 50 to drive the limiting member 40 to rotate. This facilitates the swing member 50 driving the limiting member 40 to release the locking member 30, thereby improving the success rate of the gyroscope 200's launch.
[0056] Combination Figure 2 and Figure 4 The hinge point between the limiting member 40 and the base 10 is located between the first limiting end 41 and the first collision point 42. As shown in the attached figure, the hinge point between the limiting member 40 and the base 10 is D. Specifically, the hinge point between the limiting member 40 and the base 10 can be set as a fulcrum, and the first collision point 42 can be set as the point where the swing member 50 applies force to the limiting member 40. By using the lever principle, the swing member 50 drives the first limiting end 41 of the limiting member 40 to rotate, which facilitates the swing member 50 to drive the limiting member 40 to rotate, further improving the launch success rate of the gyroscope 200, and simplifying the structure of the transmitter 100, which is conducive to the miniaturization design of the transmitter 100.
[0057] For example, the locking member 30 and the base 10 may have a first hinge point, and the limiting member 40 and the base 10 may have a second hinge point. When the gyroscope 200 is inserted into the base 10 from the slot 112, the gyroscope 200 can drive the locking member 30 to move toward the locking position. The locking member 30 can rotate about the first hinge point relative to the base 10 in a first circumferential direction, and pull the first elastic member 60, so that the first elastic member 60 simultaneously drives the limiting member 40 to rotate about the second hinge point relative to the base 10 in a first circumferential direction, so that the first limiting end 41 of the limiting member 40 abuts against the locking member 30. 0. This allows the limiting member 40 to keep the locking member 30 in the locked position. When the gyroscope 200 needs to be launched, the driving member 300 can drive the swinging member 50 to rotate. The hammer point 51 of the swinging member 50 applies force to the first collision point 42 of the limiting member 40. The limiting member 40 can rotate around the second hinge point relative to the base 10 in the second circumferential direction, and pull the first elastic member 60. The first elastic member 60 simultaneously drives the locking member 30 to rotate around the first hinge point relative to the base 10 in the second circumferential direction, making it easier for the locking member 30 to move to the launching position, so that the gyroscope 200 can be launched. The first circumferential direction and the second circumferential direction are opposite directions, which simplifies the structure of the launcher 100, improves the reliability of the launcher 100, and facilitates the miniaturization design of the launcher 100, reducing the packaging volume of the launcher 100.
[0058] Implementation Method 2 Combination Figures 6 to 10 In some embodiments of the present invention, the limiting member 40 is rotatably disposed on the locking member 30, and the first elastic member 60 is connected to the limiting member 40 and the seat 10 respectively, and has an elastic force to drive the limiting member 40 and the locking member 30 to rotate. Specifically, the first elastic member 60 has an elastic force to drive the limiting member 40 to rotate in the direction of limiting the locking member 30, and the first elastic member 60 also has an elastic force to drive the locking member 30 to rotate in the direction of launching. In other words, the first elastic member 60 can indirectly drive the locking member 30 to rotate in the direction of launching, which simplifies the structure of the launcher 100, reduces the number of parts of the launcher 100, and facilitates the miniaturization design of the launcher 100. For example, when the gyroscope 200 is inserted from the slot 112 into the launching slot 11, the gyroscope 200 can drive the locking member 30 to move toward the locking position. The locking member 30 drives the limiting member 40 to rotate. The first elastic member 60 can drive the limiting member 40 to rotate, so that the limiting member 40 limits the locking member 30 to the locking position. When it is necessary to launch the gyroscope 200, the driving member 300 can drive the swinging member 50 to rotate. The swinging member 50 drives the limiting member 40 to rotate. The limiting member 40 leaves the position of limiting the locking member 30. The first elastic member 60 can drive the locking member 30 to rotate toward the launching position, and the gyroscope 200 is ejected.
[0059] Combination Figure 6 and Figure 7Furthermore, the limiting member 40 has a second limiting end 43, and the base 10 is provided with a limiting notch 13. In the locked position, the second limiting end 43 is located at the limiting notch 13 and limits the locking member 30 circumferentially, thus restricting the locking member 30 from rotating toward the launching position. Figure 6 As shown, transmitter 100 is in an idle state, such as Figure 7 As shown, the gyroscope 200 is installed into the transmitter 100, and the transmitter 100 locks the gyroscope. Specifically, when the gyroscope 200 is installed into the launch slot 11 along the slot 112, it drives the locking member 30 to rotate, and at the same time, the limiting member 40 rotates. After the locking member 30 moves to the locked position, the limiting member 40 falls into the limiting notch 13, causing the limiting member 40 to engage with the base 10. The limiting member 40 cannot move, thereby restricting the locking member 30 from moving, thus locking the gyroscope 200 in the launch slot 11, preventing the gyroscope 200 from falling out, and improving the stability of the engagement between the gyroscope 200 and the transmitter 100. By setting the limiting notch 13 in the base 10 to cooperate with the limiting member 40 to limit the locking member 30, the limiting stability of the locking member 30 is improved, further enhancing the reliability of the transmitter 100.
[0060] Combination Figures 7 to 9 In the locked position, the second limiting end 43 is opposite to the hammering point 51 of the swing member 50 along the circumference of the swing member 50, and is used to drive the second limiting end 43 out of the limiting notch 13 by the hammering point 51, so as to release the limiting of the locking member 30. Figure 7 As shown, the transmitter 100 locks the gyroscope, as... Figure 8 As shown, the driving component 300 drives the swing component 50 to rotate, as... Figure 9 As shown, the swing member 50 causes the limiting member 40 to disengage from the limiting notch 13. Specifically, when the driving member 300 drives the swing member 50 to rotate, the hammer point 51 of the swing member 50 applies force to the second limiting end 43 of the limiting member 40, causing the limiting member 40 to disengage from the limiting notch 13, thereby releasing the limiting of the limiting member 40. The locking member 30 can then move to the launching position under the action of the first elastic member 60, launching the gyroscope 200. The second limiting end 43 of the limiting member 40 is opposite to the hammer point 51 of the swing member 50 along the circumference of the swing member 50, which facilitates the swing member 50 rotating and striking the limiting member 40, allowing the second limiting end 43 of the limiting member 40 to disengage from the limiting notch 13. This, in turn, allows the locking member 30 to move to the launching position and launch the gyroscope 200, improving the reliability of the launcher 100. The swing member 50 and the limiting member 40 are designed to impact each other at their ends to drive the limiting member 40 to disengage from the limiting notch 13, which facilitates the swing member 50 driving the limiting member 40 to release the limiting member 30, thereby improving the launch success rate of the gyroscope 200.
[0061] Combination Figure 6In some embodiments of the present invention, the limiting member 40 has a second connecting end 44 connected to the first elastic member 60, and the hinge point between the limiting member 40 and the locking member 30 is located between the second limiting end 43 and the second connecting end 44, such as... Figure 6 As shown, the hinge point between the limiting member 40 and the locking member 30 is E. After the second limiting end 43 of the limiting member 40 disengages from the limiting notch 13, it facilitates the first elastic member 60 to drive the locking member 30. Specifically, one end of the first elastic member 60 is connected to the base 10; in other words, the position of one end of the first elastic member 60 is relatively fixed. The other end of the first elastic member 60 is connected to the second connecting end 44 of the limiting member 40, and the limiting member 40 and the locking member 30 are hinged together. This allows the first elastic member 60 to simultaneously drive both the locking member 30 and the limiting member 40, enabling one elastic member to drive two components simultaneously, thus simplifying the structure of the transmitter 100. For example, the first elastic member 60 can be a spring.
[0062] Combination Figure 11 and Figure 12 For example, the locking member 30 can rotate around the seat body 10 along axis A, and the hinge point of the limiting member 40 can rotate relative to the locking member 30 around axis B. In addition, the second connecting end 44 can be higher than the second limiting end 43, and forces in three directions can be achieved simultaneously by using only one spring. The seat body 10 may be provided with an inner line 141 and an outer line 142. An inclined surface 143 is provided between the inner line 141 and the outer line 142, and a limiting notch 13 is provided between the inner line 141 and the outer line 142. The inclined surface 143 is connected to the limiting notch 13, and the inclined surface 143 is inclined upward in the direction toward the limiting notch 13. Specifically, when the gyroscope 200 is inserted from the slot 112 into the launching slot 11, it drives the second limiting end 43 of the limiting member 40 to climb up the slope 143. At the same time, the second limiting end 43 is subjected to the downward force of the first elastic member 60, causing the limiting member 40 to fall into the limiting notch 13 when it reaches the position of the limiting notch 13, thereby preventing the limiting member 40 from moving in the opposite direction and thus achieving the function of stabilizing the limiting locking member 30. When the hammer point 51 of the swing member 50 applies force to the second limiting end 43, it causes the second limiting end 43 to disengage from the limiting notch 13. At this time, the second limiting end 43 is still subjected to the downward force of the first elastic member 60, so that the second limiting end 43 can only move along the outer line 142. After reaching the end of the slope 143 away from the limiting notch 13, it approaches the inner line 141.
[0063] Exemplarily, the drive unit 300 of the transmitter 100 adapted to the embodiments of the present invention may include a rack 310, the rack 310 including a plurality of teeth 311 and an actuating portion 312, the plurality of teeth 311 being used to mesh with the transmission teeth 20, and the actuating portion 312 being used to drive the oscillating member 50, in combination with Figure 7As shown, in order to reduce the size of the transmitter 100, the unlocking structure of the gyroscope 200 can be set in front of the transmission gear 20. That is, after unlocking the gyroscope 200, there is still a section of teeth 311 driving the gyroscope 200 to rotate, causing the gyroscope 200 to turn inward and prevent it from being launched. Therefore, the limiting member 40 has a one-way cyclic movement path. Specifically, when the rack 310 is quickly pulled out from the drive slot 12, it drives the transmission gear 20 to rotate at high speed, and drives the gyroscope 200 to rotate at high speed. At this time, the rotation direction causes the gyroscope 200 to have a strong inward force. After the trigger part 312 drives the swing member 50 to move and causes the limiting member 40 to disengage from the limiting notch 13, due to the inward force of the gyroscope 200, it is necessary to ensure that the limiting member 40 cannot return to the limiting notch 13 to avoid the locking member 30 being locked again, which would prevent the gyroscope 200 from being launched. The second connecting end 44 is higher than the second limiting end 43, which facilitates the application of a downward force to the second limiting end 43 by the first elastic member 60, so that the second limiting end 43 can be pressed tightly against the bottom wall of the base 10. After the limiting member 40 is dislodged from the limiting notch 13, the inward force of the gyroscope 200 is prevented from causing the limiting member 40 to return to the limiting notch 13, so that the limiting member 40 can only move along the outer perimeter 142.
[0064] Combination Figures 6 to 10 , Figure 6 This is a schematic diagram of the transmitter 100 in an idle state. Figure 7 This diagram illustrates the installation of the gyroscope 200 onto the transmitter 100. During this process, the locking member 30 rotates, and the limiting member 40 slides along its own path, climbing the inclined plane 143. The driving member 300 can be inserted into the driving slot 12 either first or later. After the gyroscope 200 is in place, the limiting member 40 falls into the limiting notch 13, engaging with the base 10. The locking member 30 cannot move, and the gyroscope 200 is locked and cannot fall. When the driving member 300 is pulled out of the driving slot 12, the rack 310 of the driving member 300 drives the transmission gear 20 to rotate, causing the gyroscope 200 to rotate. As shown in Figure 8, the trigger part of the driving member 300 hooks the swing member 50 to strike the limiting member 40. Figure 9 As shown, the limiting member 40 leaves the limiting notch 13, and the second limiting end 43 of the limiting member 40 is subjected to the downward pulling force of the first elastic member 60, so that the second limiting end 43 is tightly attached to the bottom wall of the base 10. Since the transmission gear 20 is still driving the gyroscope 200 to rotate, the gyroscope 200 is counteracted by the elastic force of the first elastic member 60 by the inward force. After the driving member 300 is completely pulled out, the inward force of the gyroscope 200 disappears, and the first elastic member 60 can drive the locking member 30 to move towards the launching position, so that the gyroscope 200 is launched, and at this time the limiting member 40 slides to the end along the outer line 142.
[0065] Combination Figure 3 and Figure 8In some embodiments of the present invention, the oscillating member 50 includes an actuating end 52 and a striking point 51. The actuating end 52 extends into the drive groove 12. In the locked position, the striking point 51 is opposite to the limiting member 40 along the rotation direction of the oscillating member 50, and can drive the limiting member 40 to release the limiting of the locking member 30. Specifically, when the drive member 300 moves in the drive groove 12, it can trigger the actuating end 52 of the oscillating member 50, causing the oscillating member 50 to rotate. The striking point 51 of the oscillating member 50 collides with the limiting member 40, causing the limiting member 40 to release the limiting of the locking member 30, so that the gyroscope 200 can be ejected from the launching groove 11, simplifying the structure of the launcher 100. Moreover, the oscillating member 50 improves the launching stability of the gyroscope 200 by colliding with the limiting member 40 through the striking point 51.
[0066] Combination Figure 2 and Figure 8 Furthermore, the transmitter 100 also includes a second elastic element 70, which connects the swing member 50 and the base 10 and has an elastic force to limit the swing of the swing member 50. Specifically, when the actuating end 52 of the swing member 50 is not driven by the driving member 300, the second elastic element 70 can limit the swing member 50 from rotating, preventing the swing member 50 from accidentally triggering the limiting member 40 and improving the reliability of the transmitter 100.
[0067] For example, the drive member 300 of the transmitter 100 adapted to the embodiments of the present invention may include a rack 310. The rack 310 includes a plurality of teeth 311 and actuating parts 312. The teeth 311 can mesh with the transmission teeth 20. When the drive member 300 moves in the drive groove 12, it can drive the gyroscope 200 to rotate. The actuating parts 312 can be used to drive the oscillating member 50.
[0068] Combination Figure 13 In some embodiments of the present invention, the bottom 111 and the opening 112 of the slot are opposite each other along a first direction, and the driving slot 12 is disposed on the side of the launching slot 11 along a second direction and penetrates the base 10 along the first direction. Figure 13 The XX direction is shown, and the second direction is... Figure 13 In the YY direction shown, the first direction and the second direction are perpendicular. Specifically, the launching direction of the gyroscope 200 is parallel to the extending direction of the drive slot 12. The drive member 300 can be inserted into the drive slot 12 along the first direction. When the drive member 300 is pulled along the first direction, the gyroscope 200 can be launched along the first direction. For example, the launcher 100 may include a first arm 81 and a second arm 82, which are respectively connected to opposite sides of the base 10 along the second direction, so that the launcher 100 is constructed as an arc-shaped launcher 100. The drive member 300 can be set as an arrow. When the drive member 300 is pulled along the first direction, the gyroscope 200 is launched along the first direction, which enhances the fun of the launcher 100.
[0069] CombinationFigure 14 In other embodiments of the present invention, the bottom 111 and the opening 112 of the slot are opposite each other along a first direction, the driving slot 12 is disposed on the side of the launching slot 11 along the first direction, and the driving slot 12 penetrates the base 10 along a second direction. The first direction is... Figure 14 The XX direction is shown, and the second direction is... Figure 14 In the YY direction shown, the first direction and the second direction are perpendicular. Specifically, the launching direction of the gyroscope 200 can be perpendicular to the extension direction of the drive slot 12. The drive member 300 can be inserted into the drive slot 12 along the second direction. When the drive member 300 is pulled out along the second direction, the gyroscope 200 can be driven to launch along the first direction, thus enriching the gameplay of the launcher 100. For example, the launcher 100 includes a third arm 83 and a fourth arm 84. One end of the third arm 83 is connected to the base 10, one end of the fourth arm 84 is connected to the base 10, and the other end of the fourth arm 84 is connected to the other end of the third arm 83. The base 10, the third arm 83, and the fourth arm 84 are connected to form a triangle, which facilitates the grip of the launcher 100 and improves the structural stability of the launcher 100.
[0070] Alternatively, the gyroscope 200 can be installed into the launching slot 11 first, and then the driving component 300 can be installed into the driving slot 12; or, the driving component 300 can be installed into the driving slot 12 first, and then the gyroscope 200 can be installed into the launching slot 11.
[0071] Combination Figure 13 , Figure 15 and Figure 16 In some embodiments of the present invention, the launcher 100 further includes a first arm 81 and a second arm 82, which are respectively connected to opposite sides of the base 10 along a second direction, enriching the shape of the launcher 100 and enhancing its fun factor. For example, the drive groove 12 can extend along a first direction, which is perpendicular to the second direction. The drive member 300 can pass through the base 10 along the first direction and drive the gyroscope 200 to rotate and drive the oscillating member 50. By providing the first arm 81 and the second arm 82, the launcher 100 can be constructed as an arch-shaped launcher 100, and the drive member 300 can be designed as an arrow, enhancing the fun factor of the launcher 100.
[0072] In some embodiments, the first arm 81 is relatively stationary, detachably connected, or rotatably connected to the base 10. Specifically, the first arm 81 may be relatively stationary to the base 10; or, the first arm 81 may be detached from the base 10 to reduce the space occupied by the transmitter 100 in the second direction, reduce the packaging volume, and facilitate storage; or the first arm 81 may be rotatably connected to the base 10. For example, when packaging or storing the transmitter 100, the first arm 81 may be rotated to facilitate folding the transmitter 100, reducing the space occupied by the transmitter 100 in the second direction, reducing the packaging volume, and facilitating storage.
[0073] In some embodiments, the second arm 82 is stationary relative to the base 10, detachably connected, or rotatably connected. Specifically, the second arm 82 may be stationary relative to the base 10; or, the second arm 82 may be detached from the base 10 to reduce the space occupied by the transmitter 100 in the second direction, reduce the packaging volume, and facilitate storage; or the second arm 82 may be rotatably connected to the base 10. For example, when packaging or storing the transmitter 100, the second arm 82 may be rotated to facilitate folding the transmitter 100, reducing the space occupied by the transmitter 100 in the second direction, reducing the packaging volume, and facilitating storage.
[0074] Combination Figure 15 and Figure 16 In some specific embodiments of the present invention, the first arm 81 is detachably or rotatably connected to the base 10, and the second arm 82 is detachably or rotatably connected to the base 10, which can reduce the packaging volume of the transmitter 100 by 39%. For example, this facilitates the placement of the transmitter 100 in blind boxes for sale.
[0075] Combination Figure 14 , Figure 17 and Figure 18 In some embodiments of the present invention, the transmitter 100 further includes a third arm 83 and a fourth arm 84. One end of the third arm 83 is connected to the base 10, and one end of the fourth arm 84 is connected to the base 10. The transmitter 100 has an unfolded state. In the unfolded state, the other end of the fourth arm 84 is connected to the other end of the third arm 83. The base 10, the third arm 83, and the fourth arm 84 are connected to form a triangle. The connection between the third arm 83 and the fourth arm 84 has a through hole opposite to the drive slot 12. Alternatively, the transmitter 100 has a folded state. In the folded state, the third arm 83 and the fourth arm 84 are folded to adjacent sides of the base 10, and the third arm 83 or the fourth arm 84 covers the slot 112. Specifically, in the folded state, the third arm 83 and the fourth arm 84 of the transmitter 100 are folded to the adjacent sides of the base 10, which facilitates the storage of the transmitter 100 and reduces the packaging volume of the transmitter 100. For example, it is convenient to place the transmitter 100 in a blind box for sale. In the unfolded state, the third arm 83, the fourth arm 84 and the base 10 are connected to form a triangle, which can improve the structural strength and stability of the transmitter 100. In addition, the connection between the third arm 83 and the fourth arm 84 has a through hole opposite to the drive groove 12, which allows the drive member 300 to slide stably within the drive groove 12 while reducing the volume of the base 10.
[0076] Combination Figure 19 and Figure 20The present invention also proposes a driving member 300 adapted to the transmitter 100 of the aforementioned embodiment. The driving member 300 includes a rack 310, which includes a plurality of teeth 311 and an actuating portion 312. The plurality of teeth 311 are distributed along the length direction of the rack 310; the actuating portion 312 is arranged along the length direction of the rack 310, and the actuating portion 312 and the plurality of teeth 311 are distributed along the width direction of the rack 310. The plurality of teeth 311 are used to mesh with the transmission teeth 20, and the actuating portion 312 is used to drive the oscillating member 50. Specifically, in conjunction with Figure 8 and Figure 9 As shown, multiple teeth 311 mesh with transmission teeth 20, driving the gyroscope 200 to rotate. When the trigger 312 moves to the position of the oscillating member 50, it triggers the oscillating member 50 to move, thereby causing the limiting member 40 to release the limiting of the locking member 30. Under the action of the first elastic member 60, the locking member 30 moves to the launching position, causing the gyroscope 200 to launch. By providing the trigger 312 to drive the oscillating member 50 in the driving member 300, the cooperation structure between the driving member 300 and the launcher 100 can be simplified, facilitating the miniaturization design of the launcher 100.
[0077] Combination Figure 20 In some embodiments of the present invention, the actuating portion 312 includes a plurality of sub-portions spaced apart along the length direction of the toothed portion 311, and a groove 3123 is formed between adjacent sub-portions to accommodate the actuating end 52 of the swing member 50. Specifically, the groove 3123 can be configured with a jump structure in the length direction of the driving member 300. When the driving member 300 is pulled out quickly, the actuating end 52 of the swing member 50 can suddenly extend into the groove 3123. When the swing member 50 contacts the actuating portion 312 again, the hammering point 51 of the swing member 50 can be driven to collide with the limiting member 40, thereby releasing the limiting member 40 from limiting the locking member 30.
[0078] For example, the drive member 300 may include a connecting rib extending along the drive member 300. The connecting rib is connected to a plurality of teeth 311 and is offset from the groove 3123. When the drive member 300 is pulled out quickly, the swing member 50 can be held in place by the connecting rib. When the swing member 50 passes through the groove 3123, the touching end 52 of the swing member 50 suddenly extends into the groove 3123. When it passes through the connecting rib again, the hammer point 51 of the drive swing member 50 collides with the limiting member 40.
[0079] Combination Figure 20 In some embodiments, the multiple sub-parts include a first sub-part 3121, which is connected to multiple teeth 311 and extends along the length of the rack 310. The first sub-part 3121 can act as a support for the swing member 50 to prevent the swing member 50 from swinging.
[0080] Combination Figure 20In some implementations, the multiple sub-parts also include a second sub-part 3122, which is distributed and connected to a toothed part 311 along the width direction. The second sub-part 3122 can hook the actuating end 52 of the swing member 50 so that the swing member 50 hits the limiting member 40, which facilitates the limiting member 40 to release the limiting member 30.
[0081] Optionally, the actuating part 312 may extend from the toothed part 311 perpendicular to the length direction of the driving member 300, for driving the actuating end 52 of the oscillating member 50.
[0082] Combination Figure 19 Optionally, the drive unit 300 also includes a handle 320, which is connected to one end of the rack 310, and an actuating part 312 is located at the end of the rack 310 away from the handle 320. The handle 320 facilitates the movement of the drive unit 300 by hand, improving the ease with which the user can launch the gyroscope 200. Furthermore, the actuating part 312 being located at the end of the rack 310 away from the handle 320 facilitates the launch of the gyroscope 200 when the drive unit 300 moves to its end within the drive groove 12.
[0083] The present invention also proposes a toy assembly including a gyroscope 200, a transmitter 100 of the aforementioned embodiment, and a drive unit 300 of the aforementioned embodiment.
[0084] In the description of this invention, it should be understood that the terms "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," "counterclockwise," "axial," "radial," and "circumferential" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this invention and simplifying the description, and are not intended to 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 invention.
[0085] Furthermore, the terms "first" and "second" 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. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this invention, "a plurality of" means at least two, such as two, three, etc., unless otherwise explicitly specified.
[0086] In this invention, 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 part; 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; they can refer to the internal communication of two components or the interaction between two components, unless otherwise explicitly limited. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0087] In this invention, unless otherwise explicitly specified and limited, "above" or "below" the second feature can mean that the first feature is in direct contact with the second feature, or that the first feature is in indirect contact with the second feature through an intermediate medium. Furthermore, "above," "over," and "on top" of the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. "Below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.
[0088] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.
[0089] Although embodiments of the present invention have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting the present invention. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of the present invention.
Claims
1. A transmitter (100), characterized in that, include: The base (10) includes a launching slot (11) and a driving slot (12), the launching slot (11) for accommodating a gyroscope (200) and the driving slot (12) for accommodating a driving component (300), the launching slot (11) having opposing slot bottoms (111) and slot openings (112); A transmission gear (20) is rotatably disposed on the base (10). The transmission gear (20) extends into the launching groove (11) and the driving groove (12) for transmitting and connecting the gyroscope (200) and the driving member (300). Locking member (30), the locking member (30) is rotatably disposed on the base (10), and has a locking position for locking the gyroscope (200) in the launching slot (11) and a launching position for driving the gyroscope (200) to be launched from the slot (112); A limiting member (40) is used to limit the locking member (30) to the locking position; A swing member (50) is rotatably disposed on the seat (10), the swing member (50) extends into the drive groove (12) and is adapted to be driven by the drive member (300) to release the limiting member (40) from the locking member (30); A first elastic element (60) is configured to have an elastic force that drives the locking element (30) to rotate toward the launching position and drives the limiting element (40) to rotate in a direction that limits the locking element (30).
2. The transmitter (100) according to claim 1, characterized in that, The limiting member (40) is rotatably disposed on the seat (10), and the first elastic member (60) is connected to the locking member (30) and the limiting member (40) respectively, and has an elastic force to drive the limiting member (40) and the locking member (30) to rotate.
3. The transmitter (100) according to claim 2, characterized in that, The limiting member (40) has a first limiting end (41), in the locked position, the first limiting end (41) abuts against the locking member (30) circumferentially and restricts the locking member (30) from rotating toward the launching position.
4. The transmitter (100) according to claim 3, characterized in that, The limiting member (40) has a first collision point (42), in the locked position, the first collision point (42) is opposite to the hammering point (51) of the swing member (50) along the circumference of the swing member (50), and is used to release the limiting member (40) from the locking member (30) by the hammering point (51).
5. The transmitter (100) according to claim 4, characterized in that, The hinge point between the limiting member (40) and the seat (10) is located between the first limiting end (41) and the first collision point (42).
6. The transmitter (100) according to claim 1, characterized in that, The limiting member (40) is rotatably disposed on the locking member (30), and the first elastic member (60) is connected to the limiting member (40) and the seat (10) respectively, and has an elastic force that drives the limiting member (40) and the locking member (30) to rotate.
7. The transmitter (100) according to claim 6, characterized in that, The limiting member (40) has a second limiting end (43), and the seat (10) has a limiting notch (13). In the locked position, the second limiting end (43) is located in the limiting notch (13) and limits the locking member (30) circumferentially, and restricts the locking member (30) from rotating toward the launching position.
8. The transmitter (100) according to claim 7, characterized in that, In the locked position, the second limiting end (43) is opposite to the hammering point (51) of the swing member (50) along the circumference of the swing member (50), and is used to drive the second limiting end (43) to disengage from the limiting notch (13) by the hammering point (51) to release the limiting of the locking member (30).
9. The transmitter (100) according to claim 7 or 8, characterized in that, The limiting member (40) has a second connecting end (44) connected to the first elastic member (60), and the hinge point between the limiting member (40) and the locking member (30) is located between the second limiting end (43) and the second connecting end (44).
10. The transmitter (100) according to claim 1, characterized in that, The swing member (50) includes an actuating end (52) and a striking point (51). The actuating end (52) extends into the drive groove (12). In the locked position, the striking point (51) is opposite to the limiting member (40) along the rotation direction of the swing member (50) and can drive the limiting member (40) to release the limiting member (30).
11. The transmitter (100) according to claim 1, characterized in that, The transmitter (100) further includes a second elastic element (70) that connects the swinging member (50) and the seat (10) and has an elastic force that restricts the swinging of the swinging member (50).
12. The transmitter (100) according to claim 1, characterized in that, The bottom of the slot (111) and the opening of the slot (112) are opposite each other in a first direction. The driving slot (12) is located on the side of the launching slot (11) in a second direction and penetrates the base (10) in the first direction. The first direction and the second direction are perpendicular. Alternatively, the bottom of the slot (111) and the opening of the slot (112) are opposite each other in a first direction, the drive slot (12) is located on the side of the launching slot (11) in a first direction, and penetrates the seat (10) in a second direction, the first direction and the second direction being perpendicular.
13. The transmitter (100) according to claim 1, characterized in that, The transmitter (100) further includes a first arm (81) and a second arm (82), the first arm (81) and the second arm (82) being respectively connected to opposite sides of the base (10) along a second direction. Wherein, the first arm (81) is relatively stationary and detachably connected or rotatably connected to the seat (10); or, the second arm (82) is relatively stationary and detachably connected or rotatably connected to the seat (10).
14. The transmitter (100) according to claim 1, characterized in that, The transmitter (100) further includes a third arm (83) and a fourth arm (84), one end of the third arm (83) being connected to the base (10), and one end of the fourth arm (84) being connected to the base (10). The transmitter (100) has an unfolded state in which the other end of the fourth arm (84) is connected to the other end of the third arm (83), and the base (10), the third arm (83), and the fourth arm (84) are connected to form a triangle. The connection between the third arm (83) and the fourth arm (84) has a through hole opposite to the drive groove (12). Alternatively, the transmitter (100) has a folded state in which the third arm (83) and the fourth arm (84) are folded to adjacent sides of the base (10), and the third arm (83) or the fourth arm (84) covers the groove (112).
15. A driving element (300) adapted to a transmitter (100) according to any one of claims 1-14, characterized in that, The drive unit (300) includes a rack (310), the rack (310) comprising: Multiple teeth (311) are distributed along the length direction of the rack (310); An actuating part (312) is arranged along the length direction of the rack (310), and the actuating part (312) and the plurality of teeth (311) are distributed along the width direction of the rack (310). The plurality of teeth (311) are used to mesh with the transmission teeth (20), and the actuating part (312) is used to drive the oscillating member (50).
16. The driving member (300) according to claim 14, characterized in that, The actuating part (312) includes a plurality of sub-parts spaced apart along the length direction of the tooth (311), and a groove (3123) is formed between adjacent sub-parts to allow the actuating end (52) of the oscillating member (50) to extend into.
17. The driving component (300) according to claim 16, characterized in that, The plurality of sub-parts includes a first sub-part (3121), which connects to the plurality of teeth (311) and extends along the length direction of the rack (310); And / or, the plurality of sub-parts further includes a second sub-part (3122), the second sub-part (3122) being distributed and connected to one of the teeth (311) along the width direction.
18. A toy component, characterized in that, include: Spinning top (200); The transmitter (100) according to any one of claims 1-14; The drive unit (300) according to any one of claims 15-16.