Reduced pressure fingertip gyroscope
Patent Information
- Application Number
- CN202521253826.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-18
- Publication Date
- 2026-09-04
- Estimated Expiration
- 2035-06-18
AI Technical Summary
[0003]然而,现有的指尖陀螺存在一些不足,现有的指尖陀螺结构虽然简单,但主要依赖旋转翼旋转时产生的视觉反馈以及手指拨动旋转翼边缘时产生的触觉反馈来吸引用户的注意,于患有焦虑症、多动症或自闭症的患者而言,这两种简单刺激的效果有限,难以起到较好的减压作用,且由于刺激源单调、刺激效果有限,导致难以吸引有焦虑症、多动症或自闭症的患者使用指尖陀螺进行减压
[0004] The problem this invention aims to solve is to provide a stress-relieving fidget spinner with more diverse stimulation sources and better stimulation effects.
Smart Images

Figure CN224711548U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of fidget spinner technology, specifically to a decompression fidget spinner. Background Technology
[0002] A fidget spinner is a handheld spinning toy that typically consists of a central axis and multiple rotating wings. Users apply force to the edges of the wings with their fingers to make the spinner spin. In recent years, fidget spinners have become increasingly popular and are widely used as a tool for relaxation and stress reduction. Due to their handheld operation, users can concentrate and shift their focus through the spinning motion, making them particularly suitable for people with anxiety disorders, ADHD, or autism.
[0003] However, existing fidget spinners have some shortcomings. Although the structure of existing fidget spinners is simple, they mainly rely on the visual feedback generated by the rotation of the rotor and the tactile feedback generated by the finger flicking the edge of the rotor to attract the user's attention. For patients with anxiety disorder, ADHD, or autism, the effect of these two simple stimuli is limited and it is difficult to play a good role in stress reduction. Moreover, due to the monotonous source of stimulation and the limited effect of stimulation, it is difficult to attract patients with anxiety disorder, ADHD, or autism to use fidget spinners for stress reduction. Utility Model Content
[0004] The problem this invention aims to solve is to provide a stress-relieving fidget spinner with more diverse stimulation sources and better stimulation effects.
[0005] The technical solution adopted by this utility model to solve the above problems is: a decompression fidget spinner, comprising: One bearing; A rotating disk, wherein the rotating disk is configured to be fixed to the outer ring of the bearing; A hand-held assembly, wherein the hand-held assembly is configured to be fixed to the inner ring of the bearing; the hand-held assembly includes a lower hand-held portion that contacts the fingers; the lower hand-held portion has a cavity; At least one suction element, wherein the suction element is disposed on the rotating disk; and At least one dual stimulation component is provided, wherein the dual stimulation component is disposed on the lower hand holding portion; the dual stimulation component includes a support portion disposed longitudinally on the lower hand holding portion and a rotating rod disposed on the upper end of the support portion and rotatable around the upper end of the support portion; one end of the rotating rod is provided with a attracted element that cooperates with the suction element, and the other end is provided with an impact portion; the impact portion is disposed in the cavity; when the suction element is driven by the rotating disk to rotate above the attracted element, the attracted element moves upward and strikes the rotating disk to produce a sound, and the impact portion moves downward to strike the finger.
[0006] Compared with existing technologies, this invention uses a rotating disk to drive the suction element to rotate. When the suction element rotates above the attracted element, it generates an upward attraction, causing the attracted element to collide with the rotating disk and produce a sound. At the same time, the impact part moves downward to strike the finger, thereby achieving dual stimulation of hearing and touch, enhancing the stress-relieving effect. By introducing a dual stimulation component, the problem of monotonous stimulation source and limited stimulation effect of existing fidget spinners is solved. Specifically, the cooperation between the rotating disk and the suction element provides dynamic auditory stimulation, while the contact between the impact part and the finger provides direct tactile feedback. The linkage design of the attracted element and the impact part ensures the synchronization of the two stimuli, further enhancing the user experience. As a preferred embodiment, the weight of the attracted element is greater than that of the impact part, so that the impact part remains in an elevated state without external force. Due to the above effects, this solution is suitable for user groups that require multi-sensory stimulation, such as patients with anxiety, ADHD, or autism.
[0007] According to one embodiment of the present invention, the rotating disk includes a bearing mounting ring and a rotating wing disposed circumferentially along the bearing mounting ring; the outer ring of the bearing is configured to be tightly connected to the bearing mounting ring.
[0008] According to one embodiment of the present invention, the rotating wing includes a rotating wing body, an attraction member mounting portion disposed on the lower end face of the rotating wing body, and a first decorative surface disposed on the upper end face of the rotating wing body; the attraction member is configured to be fixed to the attraction member mounting portion.
[0009] According to one embodiment of the present invention, the lower handle includes a lower tray and a lower connecting portion disposed on the lower tray; the lower connecting portion is disposed on the bearing and is tightly connected to the inner ring of the bearing; the cavity is disposed on the lower connecting portion; A receiving space is formed between the rotating wing and the lower tray to accommodate the dual stimulation assembly.
[0010] According to one embodiment of the present invention, it further includes a shielding portion; wherein the shielding portion is disposed at at least one of the lower end face of the rotary wing and the lower tray, so as to shield the receiving space.
[0011] According to one embodiment of the present invention, the lower end of the support portion is disposed on the lower tray; the support portion includes a rotating shaft disposed at the upper end; the rotating rod is configured to be rotatably connected to the rotating shaft.
[0012] According to one embodiment of the present invention, the lower connecting part includes a communication port disposed on the side wall; the other end of the rotating rod is configured to pass through the communication port into the cavity, so that the impact part is disposed in the cavity.
[0013] According to one embodiment of the present invention, the attracted member is configured to have a weight greater than that of the impact member, and the impact member is lifted when the attracted member is not affected by the attracted member.
[0014] According to one embodiment of the present invention, the impact portion includes a stimulation end that can contact a finger; the stimulation end includes at least one of a columnar stimulator and a needle-shaped stimulator.
[0015] According to one embodiment of the present invention, the handheld assembly further includes an upper handheld portion; the upper handheld portion includes an upper tray, an upper connecting portion disposed on the lower end face of the upper tray, and a second device surface disposed on the upper end face of the upper tray; the upper connecting portion is disposed on the bearing and is tightly connected to the inner ring of the bearing. Attached Figure Description
[0016] Figure 1 This is a perspective view of a preferred embodiment of the stress-reducing fidget spinner according to the present invention. Figure 2 This is a perspective view of another side of the pressure-reducing fidget spinner according to a preferred embodiment of the present invention. Figure 3 This is an exploded view of a side view of a preferred embodiment of the decompression fidget spinner according to the present invention. Figure 4 This is an exploded view from another side of a preferred embodiment of the decompression fidget spinner according to the present invention. Figure 5 This is a side view of a preferred embodiment of the decompression fidget spinner according to the present invention. Figure 6 A schematic diagram of the use state of the pressure-reducing fidget spinner according to a preferred embodiment of the present invention; Figure 7 This is a cross-sectional view from another side of a preferred embodiment of the stress-reducing fidget spinner according to the present invention. Figure 8 This is a cross-sectional schematic diagram of the columnar stimulator of the decompression fingertip gyroscope according to a preferred embodiment of the present invention. Detailed Implementation
[0017] Before describing any embodiment of this invention in detail, it should be understood that the invention is not limited in its application to the details of the construction and arrangement of the components set forth in the following description or illustrated in the following figures. The invention is capable of other embodiments and can be practiced or carried out in various ways. Furthermore, it should be understood that the wording and terminology used herein are for descriptive purposes and should not be considered limiting. The use of “comprising” or “having” and variations thereof herein is intended to cover the items set forth below and their equivalents, as well as any additional items. Unless otherwise specified or limited, the terms “installation,” “connection,” “support,” and “linkage,” and variations thereof are used broadly and cover both direct and indirect installation, connection, support, and linking. Moreover, “connection” and “linkage” are not limited to physical or mechanical connections or links.
[0018] Furthermore, firstly, in the disclosure of this utility model, the terms "longitudinal," "lateral," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," 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, the above terms should not be construed as a limitation on this utility model. Secondly, the term "a" should be understood as "at least one" or "one or more," that is, in one embodiment, the number of an element can be one, while in another embodiment, the number of the element can be multiple. The term "a" should not be construed as a limitation on the quantity.
[0019] Those skilled in the art should understand that the embodiments of the present invention described above and shown in the accompanying drawings are merely examples and do not limit the present invention. The purpose of the present invention has been fully and effectively achieved. The functions and structural principles of the present invention have been shown and explained in the embodiments. Without departing from the stated principles, the implementation of the present invention may have any variations or modifications.
[0020] The embodiments of this utility model will be further described below with reference to the accompanying drawings.
[0021] Please see Figure 1-8The illustrated stress-relief fidget spinner includes a bearing 1, a rotating disk 2, a handheld assembly 3, at least one suction element 4, and at least one dual-stimulation assembly 5. The rotating disk 2 is fixed to the outer ring of the bearing 1. The handheld assembly 3 is fixed to the inner ring of the bearing 1. The handheld assembly 3 includes a lower handheld portion 31 that contacts the finger. The lower handheld portion 31 has a cavity 311. The suction element 4 is disposed on the rotating disk 2. The dual-stimulation assembly 5 is disposed on the lower handheld portion 31. The dual-stimulation assembly 5 includes a support portion 51 longitudinally disposed on the lower handheld portion 31 and a rotating rod 52 disposed on the upper end of the support portion 51 and rotatable around the upper end of the support portion 51. One end of the rotating rod 52 has a attracted element 53 that cooperates with the suction element 4, and the other end has an impact portion 54. The impact portion 54 is disposed in the cavity 311. When the suction element 4 is driven by the rotating disk 2 to rotate above the attracted element 53, the attracted element 53 moves upward and impacts the rotating disk 2, producing a sound, while the impact portion 54 moves downward and impacts the finger.
[0022] Specifically, bearing 1 can be a ball bearing 1 or a sliding bearing 1. The outer ring of bearing 1 is fixedly connected to the rotating disk 2 by at least one of the following methods: interference fit, threaded connection, or bonding. The material of the rotating disk 2 can be metal, plastic, or composite material, and its shape can be circular, polygonal, or other geometric shapes. The material of the handheld component 3 can be selected to have a certain degree of elasticity and wear resistance to increase the comfort of holding it. The cavity 311 of the lower handheld part 31 can be cylindrical in shape to accommodate the impact part 54 and limit its range of motion. The suction element 4 can be a magnet, electromagnet, or a material with adsorption properties, and its number can be adjusted according to the size and weight of the rotating disk 2. The support part 51 of the dual stimulation component 5 can be a rigid rod or an elastic rod, and its connection with the lower handheld part 31 can be welding, riveting, fastener fixing, or integral molding. The material of the rotating rod 52 is preferably a material with a certain degree of rigidity and wear resistance, such as metal or high-strength plastic. The engagement method between the attracted part 53 and the suction element 4 is preferably magnetic attraction. The shape of the impact part 54 can be a protrusion, groove, or textured surface to provide tactile feedback.
[0023] In use, the rotating disc 2 drives the suction element 4 to rotate. When the suction element 4 rotates above the attracted element 53, it generates an upward attraction, causing the attracted element 53 to collide with the rotating disc 2 and produce a sound. At the same time, the impact part 54 moves downward to strike the finger, thus achieving dual stimulation of hearing and touch, enhancing the stress reduction effect. By introducing the dual stimulation component 5, the problem of monotonous stimulation source and limited stimulation effect of existing fidget spinners is solved. Specifically, the cooperation between the rotating disc 2 and the suction element 4 provides dynamic auditory stimulation, while the contact between the impact part 54 and the finger provides direct tactile feedback. The linkage design of the attracted element 53 and the impact part 54 ensures the synchronization of the two stimuli, further enhancing the user experience. As a preferred embodiment, the weight of the attracted element 53 is greater than that of the impact part 54, so that the impact part 54 remains in an elevated state without external force. Due to the above effects, this solution is suitable for user groups that require multi-sensory stimulation, such as patients with anxiety, ADHD, or autism.
[0024] Please continue reading. Figure 3-5 The rotating disk 2 includes a bearing mounting ring 21 and a rotating blade 22 arranged circumferentially along the bearing mounting ring 21; the outer ring of the bearing 1 is configured to be tightly connected to the bearing mounting ring 21.
[0025] Specifically, the bearing mounting ring 21 is an annular structure used to achieve a fixed connection with the outer ring of the bearing 1. It can be tightly connected by interference fit or bonding. The rotating blades 22 are evenly distributed around the bearing mounting ring 21. The rotating blades 22 can be made of metal or plastic. As a preferred embodiment, the rotating blades 22 and the bearing mounting ring 21 are manufactured by an integral molding process to ensure the connection strength.
[0026] By setting up a special bearing mounting ring 21 structure, a reliable connection between the rotating disk 2 and the bearing 1 is achieved. Under this setting, the bearing mounting ring 21 provides a larger connection contact surface, which significantly improves the connection stability. In addition, the circumferential distribution design of the rotating blade 22 makes the mass distribution of the rotating disk 2 more uniform, which is beneficial to rotational balance.
[0027] Please continue reading. Figure 3 , Figure 7 The rotating wing 22 includes a rotating wing body 221, an attraction member mounting portion 222 disposed on the lower end face of the rotating wing body 221, and a first decorative surface 223 disposed on the upper end face of the rotating wing body 221; the attraction member 4 is configured to be fixed to the attraction member mounting portion 222.
[0028] Specifically, the rotating wing body 221 serves as the main structure of the rotating wing 22, connecting the bearing mounting ring 21 and other components of the rotating wing 22; the suction component mounting part 222 is located on the lower end face of the rotating wing body 221, used to fix the suction component 4. The suction component mounting part 222 can adopt a groove, snap-fit, or threaded hole structure to facilitate the installation and fixing of the suction component 4; the first decorative surface 223 is located on the upper end face of the rotating wing body 221 to enhance the aesthetics of the product. The first decorative surface 223 can adopt different patterns, colors, or materials to meet the personalized needs of users; the suction component 4 can be made of magnets or other attractive materials to interact with the attracted component 53.
[0029] In use, the rotating wing body 221, the suction mounting part 222, and the first decorative surface 223 are designed to optimize the structure and improve the function of the rotating wing 22. The rotating wing body 221 provides stable support, the suction mounting part 222 ensures the accurate positioning and reliable fixation of the suction part 4, and the first decorative surface 223 enhances the visual appeal of the product. This design solves the problem of monotonous stimulation sources and limited stimulation effects of existing fidget spinners. Through the interaction between the suction part 4 and the attracted part 53, additional tactile and auditory stimulation is provided, thereby enhancing the stress reduction effect. While maintaining a simple structure, it increases multi-sensory stimulation, making it more suitable for patients with anxiety, ADHD, or autism.
[0030] Please continue reading Figure 3-8 The lower hand-held part 31 includes a lower tray 312 and a lower connecting part 313 disposed on the lower tray 312; the lower connecting part 313 is disposed on the bearing 1 and is tightly connected to the inner ring of the bearing 1; a cavity 311 is disposed on the lower connecting part 313; a receiving space 6 for accommodating the dual stimulation component 5 is formed between the rotating wing 22 and the lower tray 312.
[0031] Specifically, the lower tray 312 can be made of plastic or metal, and its shape can be round, square, or other shapes suitable for fingers to hold; the lower connecting part 313 can be fixed to the inner ring of the bearing 1 by interference fit or threaded connection; the cavity 311 can be set at the center of the lower connecting part 313 or at an off-center position, and its shape can be cylindrical, square, or other shapes suitable for accommodating the impact part 54; the height of the accommodating space 6 between the rotating wing 22 and the lower tray 312 can be adjusted according to the size of the dual stimulation component 5, for example, set to 5-10 mm.
[0032] Understandably, by setting the lower tray 312 and the lower connecting part 313, the dual stimulation component 5 can be stably supported. At the same time, through the cooperation of the cavity 311 and the receiving space 6, the impact part 54 can accurately act on the finger. The receiving space 6 formed between the rotating wing 22 and the lower tray 312 provides the dual stimulation component 5 with room to move, avoiding interference with other parts during rotation, thereby achieving more precise tactile feedback. The up and down movement of the dual stimulation component 5 generates richer tactile stimulation, which helps to improve the stress reduction effect.
[0033] Please continue reading. Figure 3-8 It further includes a shielding part 7; wherein the shielding part 7 is disposed at least at one of the lower end face of the rotating wing 22 and the lower tray 312, so as to shield the receiving space 6.
[0034] Specifically, the shielding part 7 can be implemented in various ways. For example, the shielding part 7 can be an annular baffle fixed to the lower end face of the rotating wing 22, with a diameter slightly larger than the opening size of the accommodating space 6; the shielding part 7 can also be an upwardly extending enclosure structure set on the edge of the lower tray 312; the shielding part 7 can also be made of flexible material and fixed to the rotating wing 22 or the lower tray 312 by snap-fit or adhesive; as a preferred embodiment, the shielding part 7 is made of a semi-transparent material, which can both shield the internal structure and allow observation of part of the movement state.
[0035] By incorporating the shielding part 7, the safety hazards caused by exposed rotating parts and the vulnerability of the dual stimulation component 5 to damage are effectively resolved. Specifically, the shielding part 7 prevents users' fingers from accidentally entering the receiving space 6, avoiding injury to the fingers from the high-speed rotating parts. At the same time, the shielding part 7 also blocks dust and foreign objects from entering the receiving space 6, reducing component wear and the probability of damage to the dual stimulation component 5, thereby significantly improving the safety and durability of the product. Through the reasonable design of the shape and material of the shielding part 7, a good protective effect can be achieved without affecting the normal operation of the dual stimulation component 5.
[0036] Understandably, please continue reading. Figure 2 , Figure 4 The lower tray 312 can also be embedded with at least one patch; the patch can be at least one of an adhesive patch or a magnetic patch; it should be noted that when the patch is a magnetic patch, it needs to be spaced apart from the attracting member 4 and the attracted member 53 or maintain a sufficient distance to prevent the magnetic patch from interfering with the cooperation of the attracting member 4 and the attracted member 53; by setting the patch, the decompression fidget spinner can be fixed in a position commonly used by the user, or fixed as a decoration, such as as a refrigerator magnet fixed on the refrigerator door.
[0037] Please continue reading. Figure 3-8The lower end of the support portion 51 is disposed on the lower tray 312; the support portion 51 includes a rotating shaft 511 disposed at the upper end; the rotating rod 52 is configured to be rotatably connected to the rotating shaft 511.
[0038] Specifically, the connection between the lower end of the support 51 and the lower tray 312 can be achieved through mechanical connections such as bonding, snap-fit, or threaded fixing; the pivot 511 is preferably made of metal to enhance durability, and its diameter is preferably 1-3mm to ensure smooth rotation of the rotating rod 52; the connection between the rotating rod 52 and the pivot 511 can be achieved through a bearing 1 connection or a hinge structure, wherein the hinge structure can be a damped hinge to control the swing speed of the rotating rod 52; as a preferred embodiment, the pivot 511 can be configured as a bidirectional limiting structure to prevent the rotating rod 52 from detaching; the material of the support 51 can be selected as engineering plastic or aluminum alloy, and its height range should preferably be controlled within 5-15mm to ensure that the rotating rod 52 has sufficient movement space.
[0039] By optimizing the connection structure between the support part 51 and the lower tray 312, stable support and precise motion control of the dual stimulation component 5 are achieved. The setting of the rotating shaft 511 enables the rotating rod 52 to accurately respond to the magnetic force of the attracting element 4, ensuring that the impact force of the attracted element 53 and the rotating disk 2 is consistent. Thus, through the precise cooperation of the mechanical structure, the intensity of tactile feedback is kept stable. The fixing effect of the lower tray 312 on the support part 51 prevents component displacement and ensures that the expected sound and tactile dual stimulation effect is produced with each rotation, which significantly improves the controllability and reliability of the pressure relief tool.
[0040] Please continue reading. Figure 5-8 The lower connecting part 313 includes a connecting port 3131 disposed on the side wall; the other end of the rotating rod 52 is configured to pass through the connecting port 3131 and enter the cavity 311, so that the impact part 54 is disposed in the cavity 311.
[0041] Specifically, the connecting opening 3131 is an opening structure formed on the side wall of the lower connecting part 313. Its size and shape match the size of the rotating rod 52, ensuring that the rotating rod 52 can smoothly pass through the connecting opening 3131 and enter the cavity 311. The setting of the connecting opening 3131 makes the movement trajectory of the rotating rod 52 more stable, avoiding the impact part 54 from failing to accurately act on the finger due to the deviation of the rotating rod 52. As a preferred embodiment, the connecting opening 3131 can be a circular, elliptical, or rectangular opening, and the specific shape can be adjusted according to the design of the rotating rod 52. In addition, the edge of the connecting opening 3131 can be chamfered or polished to reduce the frictional resistance during the movement of the rotating rod 52 and improve the smoothness of the movement.
[0042] By providing a connecting port 3131 on the side wall of the lower connecting part 313, the rotating rod 52 can pass through the connecting port 3131 and enter the cavity 311, thereby ensuring that the impact part 54 can accurately act on the finger. This allows the impact part 54 to apply more precise tactile stimulation to the user's finger during rotation, which not only enhances the diversity of tactile feedback but also improves the accuracy and controllability of stimulation, thus better meeting the user's stress relief needs.
[0043] Please continue reading Figure 5-8 The attracted member 53 is configured to have a weight greater than the impact member 54, and the impact member 54 is lifted when the attracted member 53 is not affected by the attracted member 4.
[0044] Specifically, the attracted part 53 and the impact part 54 are located at the two ends of the rotating rod 52, respectively. By adjusting the weight distribution between the two, the attracted part 53 is heavier on one side than the impact part 54. In a preferred embodiment, the attracted part 53 can be made of metal, while the impact part 54 can be made of plastic, thereby achieving a weight difference. Furthermore, the weight of the attracted part 53 can be 1.5 to 3 times that of the impact part 54 to ensure that the rotating rod 52 can maintain the stable state of the impact part 54 being raised without external force. In addition, the shape of the attracted part 53 can be designed as a block or a ball to increase its mass concentration.
[0045] The working principle of this technical solution is as follows: The weight difference causes the rotating rod 52 to form a lever structure, automatically resetting to the raised position of the impact part 54 when not being attracted. When the rotating disk 2 drives the attracting element 4 to rotate above the attracted element 53, the magnetic force overcomes the gravitational difference, causing the attracted element 53 to move upwards, while simultaneously forcing the impact part 54 downwards. When the attracting element 4 leaves, the weight difference causes the rotating rod 52 to automatically return to its initial state, thus achieving the following improvements: First, the mechanical self-resetting structure avoids manual intervention, ensuring immediate preparation for the next stimulation after each trigger; second, the weight difference design makes the trigger stroke more precise, improving the accuracy of the stimulation action; finally, the structure is simple and reliable, achieving continuous operation without the need for an additional reset device. These improvements effectively solve the technical problems of traditional fidget spinners having a single stimulation method and unstable triggering.
[0046] Please continue reading. Figure 5-8 The impact portion 54 includes a stimulation end 541 that can contact a finger; the stimulation end 541 includes at least one of a columnar stimulator 5411 and a needle-shaped stimulator 5412.
[0047] Specifically, the stimulation tip 541 is designed as a component that comes into direct contact with the finger, and its structure can be columnar or needle-shaped. The columnar stimuli 5411 typically adopts a cylindrical or prismatic structure, providing uniform tactile feedback through a smooth contact surface. The needle-shaped stimuli 5412 adopts a pointed structure, generating stronger tactile stimulation through point contact. These two structures can be used alone or in combination as needed. As a preferred embodiment, the columnar stimuli 5411 can be made of silicone to provide a soft tactile pressure sensation. The needle-shaped stimuli 5412 can be made of metal, with its tip blunted to avoid scratching the skin. The specific shape and material selection of the stimulation tip 541 can be adjusted according to the user's needs for tactile stimulation intensity.
[0048] By setting stimulation ends 541 with different morphological characteristics, diverse tactile feedback can be provided. The columnar stimulator 5411 is suitable for users who need gentle stimulation, producing a soothing effect through continuous pressure contact; the needle-shaped stimulator 5412 is suitable for users who need stronger stimulation, enhancing neural feedback through intermittent point contact. This design effectively solves the problem of the single tactile stimulation of existing fidget spinners, and by providing selectable tactile stimulation methods, it can better meet the stress reduction needs of different user groups.
[0049] Please continue reading. Figure 1 , Figure 3 , Figure 5 The handheld component 3 further includes an upper handheld part 32; the upper handheld part 32 includes an upper tray 321, an upper connecting part 322 disposed on the lower end surface of the upper tray 321, and a second device surface 323 disposed on the upper end surface of the upper tray 321; the upper connecting part 322 is disposed on the bearing 1 and is tightly connected to the inner ring of the bearing 1.
[0050] Specifically, the upper tray 321 is made of hard plastic or metal, with a preferred diameter of 30-50 mm and a thickness of 2-5 mm; the upper connecting part 322 is fixed to the inner ring of the bearing 1 by interference fit or threaded connection, with a preferred connection depth of 3-8 mm; the second decorative surface 323 can be treated with surface treatment processes such as frosting, embossed pattern or fluorescent coating, wherein the thickness of the fluorescent coating is 0.1-0.3 mm; as a preferred embodiment, the upper tray 321 and the lower tray 312 form a symmetrical structure, with a distance of 10-20 mm between them, thereby forming a stable clamping space.
[0051] Understandably, the upper handpiece 32 and the lower handpiece 31 work together so that the user can grasp the fidget spinner with two fingers, and the inner ring of the bearing 1 is provided with bidirectional fixed support, effectively preventing the rotating disk 2 from swaying. The symmetrical design of the upper tray 321 and the lower tray 312 enhances hand stability. The second decorative surface 323 is located on the upper surface and is the surface that the user sees, so it can be used to provide visual stimulation and form a multi-dimensional sensory feedback with the rotating disk 2. The tactile textures and visual elements of the various decorative surfaces work together to produce more continuous multi-sensory stimulation, which helps to alleviate the user's anxiety.
[0052] The above description only illustrates the preferred embodiment of this utility model and should not be construed as limiting the scope of the claims. This utility model is not limited to the above embodiments, and variations in its specific structure are permitted. All changes made within the scope of the independent claims of this utility model are also within the scope of protection of this utility model.
Claims
1. A stress-reducing fidget spinner, characterized in that, include: One bearing (1); A rotating disk (2), wherein the rotating disk (2) is configured to be fixed to the outer ring of the bearing (1); A hand-held assembly (3), wherein the hand-held assembly (3) is configured to be fixed to the inner ring of the bearing (1); the hand-held assembly (3) includes a lower hand-held portion (31) that contacts the fingers; the lower hand-held portion (31) has a cavity (311). At least one suction element (4), wherein the suction element (4) is disposed on the rotating disk (2); and At least one dual stimulation component (5), wherein the dual stimulation component (5) is disposed on the lower hand holding part (31); the dual stimulation component (5) includes a support part (51) disposed longitudinally on the lower hand holding part (31) and a rotating rod (52) disposed on the upper end of the support part (51) and rotatable around the upper end of the support part (51); one end of the rotating rod (52) is provided with a attracted part (53) that cooperates with the suction member (4), and the other end is provided with an impact part (54); the impact part (54) is disposed in the cavity (311); when the suction member (4) is driven by the rotating disk (2) to rotate above the attracted part (53), the attracted part (53) moves upward and strikes the rotating disk (2) to make a sound, and the impact part (54) moves downward to strike the finger.
2. The decompression fidget spinner according to claim 1, characterized in that: The rotating disk (2) includes a bearing mounting ring (21) and a rotating wing (22) arranged circumferentially along the bearing mounting ring (21); the outer ring of the bearing (1) is configured to be tightly connected to the bearing mounting ring (21).
3. The decompression fidget spinner according to claim 2, characterized in that: The rotating wing (22) includes a rotating wing body (221), an attraction member mounting part (222) disposed on the lower end face of the rotating wing body (221), and a first decorative surface (223) disposed on the upper end face of the rotating wing body (221); the attraction member (4) is configured to be fixed to the attraction member mounting part (222).
4. The decompression fidget spinner according to claim 2, characterized in that: The lower handle (31) includes a lower tray (312) and a lower connecting part (313) disposed on the lower tray (312); the lower connecting part (313) is disposed on the bearing (1) and is tightly connected to the inner ring of the bearing (1); the cavity (311) is disposed on the lower connecting part (313). A receiving space (6) is formed between the rotating wing (22) and the lower tray (312) for accommodating the dual stimulation assembly (5).
5. The decompression fidget spinner according to claim 4, characterized in that: It further includes a shielding part (7); wherein the shielding part (7) is disposed at least at one of the lower end face of the rotating wing (22) and the lower tray (312) to shield the receiving space (6).
6. The decompression fidget spinner according to claim 4, characterized in that: The lower end of the support (51) is disposed on the lower tray (312); the support (51) includes a pivot (511) disposed at the upper end; the swivel (52) is configured to be rotatably connected to the pivot (511).
7. The decompression fidget spinner according to claim 4, characterized in that: The lower connecting part (313) includes a communication port (3131) disposed on the side wall; the other end of the rotating rod (52) is configured to pass through the communication port (3131) and enter the cavity (311) so that the impact part (54) is disposed in the cavity (311).
8. The decompression fidget spinner according to claim 1, characterized in that: The attracted member (53) is configured to have a weight greater than the impact member (54), and the impact member (54) is lifted when the attracted member (53) is not affected by the attracted member (4).
9. The decompression fidget spinner according to claim 1, characterized in that: The impact portion (54) includes a stimulation end (541) that can come into contact with a finger; the stimulation end (541) includes at least one of a columnar stimulator (5411) and a needle-like stimulator (5412).
10. The decompression fidget spinner according to claim 1, characterized in that: The handheld assembly (3) further includes an upper handheld part (32); the upper handheld part (32) includes an upper tray (321), an upper connecting part (322) disposed on the lower end face of the upper tray (321) and a second device surface (323) disposed on the upper end face of the upper tray (321); the upper connecting part (322) is disposed on the bearing (1) and is tightly connected to the inner ring of the bearing (1).