Building block magnetic power top and building block auxiliary part
Patent Information
- Application Number
- CN202522063559.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-25
- Publication Date
- 2026-09-11
- Estimated Expiration
- 2035-09-25
AI Technical Summary
[0002]在现有积木技术领域中,传统积木大多仅具备基础的拼接组装功能,功能较为单一,难以满足儿童在玩耍过程中对多样化体验的需求
1.本实用新型积木磁力陀螺和积木辅助件拆卸组装便捷,降低使用门槛。积木磁力陀螺的旋转组件采用榫卯连接与啮合连接相结合的可拆卸结构,榫卯连接实现快速定位,啮合连接确保稳定固定,无需借助复杂工具,儿童即可轻松完成组装与拆卸;中间构件的端盖与方通主体通过过盈配合的连接柱与承孔连接,组装时只需对准按压即可固定,拆卸时施加轻微外力即可分离;积木辅助件的公端构件与母端主轴采用对插式过盈配合,组装拆卸操作简单,大幅降低了使用门槛,提升了用户操作体验。
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Figure CN224735745U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of building block technology, specifically to a building block magnetic gyroscope and building block auxiliary components. Background Technology
[0002] In the current field of building block technology, traditional building blocks mostly only have basic assembly functions, which are relatively simple and cannot meet children's needs for diverse experiences during play. Some building block products with rotating structures have complex connection methods between the rotating components and the main structure, making disassembly and assembly inconvenient. Moreover, the stability during rotation is poor, and problems such as loosening and jamming are prone to occur.
[0003] Meanwhile, traditional building blocks rely mainly on the mechanical connection between protrusions and grooves during assembly, which has limited connection strength. When subjected to external impact or shaking, the assembled building block structure is prone to falling apart, affecting the play experience.
[0004] In addition, most existing building block auxiliary connectors can only achieve simple splicing and extension functions, lacking multi-functional compatibility with other building block components, and cannot meet the diverse connection needs in the process of building complex building block shapes.
[0005] Therefore, there is an urgent need for a building block assembly with a reasonable structural design, convenient disassembly and assembly, stable rotation and high connection strength, and multifunctional adaptability, in order to solve the above-mentioned problems in the existing technology. Summary of the Invention
[0006] To address the shortcomings of existing technologies, the present invention aims to provide a magnetic gyroscope and auxiliary components for building blocks. This magnetic gyroscope and auxiliary components enable convenient disassembly and assembly, ensure stability during rotation, enhance the connection strength of building block splicing, and possess excellent multi-functional adaptability to meet diverse needs for building and playing with building blocks.
[0007] To solve the above technical problems, the present invention achieves this through the following solution: The present invention provides a modular magnetic gyroscope, comprising an intermediate component and a rotating assembly rotatably connected to the intermediate component, wherein the intermediate component has a first cavity penetrating both ends; The rotating assembly is detachable and includes: The first rotating component has a first block connecting part and a bearing end spindle disposed on the inner surface of the first block connecting part; The second rotating component has a second block connecting part and a tapping spindle disposed on the inner surface of the second block connecting part. The bearing spindle and the tapping spindle enter from both ends of the first through cavity respectively, and a tenon-and-mortise connection and an interlocking connection are formed between the bearing spindle and the tapping spindle.
[0008] Furthermore, the intermediate component includes: The main body of the square tube has a square structure and has through holes at both ends; Two end caps are attached to the two ends of the through hole of the square tube body. Each corner of the two end caps and the square tube body is formed with a first circular groove. Each first circular groove has a first through hole on three nearby surfaces. The first magnetic bead is provided in multiples, and the multiple first magnetic beads are placed one-to-one in each first circular groove.
[0009] Furthermore, the end cap has a cylinder protruding outwards from both ends in the middle, and the cylinder has a second cavity that passes through both ends.
[0010] Furthermore, each corner of the square tube body is provided with at least one receiving hole; The end cap has multiple connecting posts on its connecting surface with the square tube body that are interference-fitted with the bearing hole.
[0011] Furthermore, the mortise and tenon connection structure includes: A mortise hole is provided at the end of the bearing spindle; A tenon is provided at the end of the main shaft of the tapping end, and the tenon enters the mortise hole to form the tenon-mortise connection.
[0012] Furthermore, the structure of the meshing connection includes: Multiple notches are provided at the mortise; Multiple protrusions are provided at the base of the tenon. After the tenon is inserted into the mortise, the protrusions and the notch form the meshing structure.
[0013] Furthermore, the outer surface of the first rotating member is provided with a plurality of first protrusions and a plurality of first grooves.
[0014] The present invention provides a building block auxiliary component, including a building block splicing component, a magnetic connecting part, and a male end component. The building block splicing component includes a third building block connecting part and a female end spindle disposed on the inner surface of the third building block connecting part. The magnetic connection part has a third cavity that runs through both sides, one side of which is the magnetic surface; The male end component is a T-shaped cylinder that enters from the third cavity opening on the magnetic attraction surface, while the female end spindle enters from the third cavity opening on the other side, forming an interference fit with the male end component through an interlocking connection.
[0015] Furthermore, the outer surface of the building block assembly is provided with a plurality of second protrusions and a plurality of second grooves.
[0016] Furthermore, the magnetic surface has a second circular groove inside the four corners, and a second through hole is opened on the three nearby surfaces of the second circular groove, and a second magnetic bead is installed in each second circular groove.
[0017] Compared with the prior art, the beneficial effects of this utility model are: 1. This utility model features a modular magnetic gyroscope and modular auxiliary components that are easy to assemble and disassemble, lowering the barrier to entry for users. The rotating component of the modular magnetic gyroscope adopts a detachable structure combining mortise and tenon joints and meshing connections. The mortise and tenon joints enable quick positioning, while the meshing connections ensure stable fixation. No complex tools are required, allowing even children to easily assemble and disassemble it. The end cap of the middle component is connected to the square tube body via an interference fit connecting post and a bearing hole. Assembly only requires alignment and pressing to fix it, while disassembly requires only a slight external force to separate it. The male end component of the modular auxiliary component and the female end spindle adopt an interlocking interference fit, simplifying assembly and disassembly operations, significantly lowering the barrier to entry for users, and improving the user experience. 2. This utility model of a building block magnetic gyroscope exhibits strong rotational stability and a superior play experience. In the rotating assembly of the building block magnetic gyroscope, the bearing-end spindle and the striking-end spindle are tightly engaged through a meshing structure, preventing relative slippage during rotation and ensuring synchronous rotation of the assembly. The cylindrical structure in the middle of the end cap guides and limits the spindle, ensuring coaxiality during rotation, reducing friction between the spindle and the intermediate component, resulting in smoother rotation and effectively preventing problems such as jamming and wobbling. Simultaneously, the overall structure of the intermediate component is stable, providing solid support for the rotating assembly, preventing loosening even after prolonged rotation, significantly improving stability and enjoyment during play. 3. The magnetic gyroscope and auxiliary building blocks of this invention have high connection strength and the structure is not easy to fall apart. Attached Figure Description
[0018] Figure 1 This is a three-dimensional structural diagram of the building block magnetic gyroscope of this utility model.
[0019] Figure 2 This is an exploded view of the building block magnetic gyroscope of this utility model.
[0020] Figure 3 This is an exploded view of the intermediate component of this utility model.
[0021] Figure 4 This is a structural diagram of the rotating component of this utility model.
[0022] Figure 5 This is a structural diagram of the assembled building block auxiliary component of this utility model.
[0023] Figure 6 This is an exploded view of the building block auxiliary component of this utility model.
[0024] The following components are labeled in the attached diagram: First rotating component 1, intermediate component 2, second rotating component 3, modular assembly 4, magnetic connection 5, male end component 6, second magnetic bead 8, notch 11, bearing end spindle 12, first modular connection 13, square tube body 21, end cap 22, first circular groove 24, protrusion 31, tenon 32, tapping end spindle 33, second modular connection 34, female end spindle 41, bearing hole 211, cylinder 221, connecting column 222. Detailed Implementation
[0025] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments, so that the advantages and features of the present utility model can be more easily understood by those skilled in the art, thereby making a clearer and more definite definition of the protection scope of the present utility model. Obviously, the embodiments described in this utility model are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model.
[0026] Furthermore, the technical features involved in the different embodiments of this utility model described below can be combined with each other as long as they do not conflict with each other.
[0027] Example 1: The specific structure of this utility model is as follows: Please refer to the appendix. Figure 1-4 The present invention provides a building block magnetic gyroscope, comprising an intermediate component 2 and a rotating assembly rotatably connected to the intermediate component 2, wherein the intermediate component 2 has a first cavity extending through both ends; The rotating assembly is detachable and includes: The first rotating component 1 has a first block connecting part 13 and a bearing end main shaft 12 disposed on the inner surface of the first block connecting part 13; the first block connecting part is used to splice with other block components, and the bearing end main shaft 12 provides support for the connection and rotation of the rotating component; The second rotating component 3 has a second modular connecting part 34 and a tapping spindle 33 disposed on the inner surface of the second modular connecting part 34. The bearing spindle 12 and the tapping spindle 33 enter from both ends of the first through cavity, and a tenon-and-mortise connection and an interlocking connection are formed between the bearing spindle 12 and the tapping spindle 33. The tenon-and-mortise connection enables rapid positioning and initial fixation between the bearing spindle 12 and the tapping spindle 33, ensuring the accuracy of the connection; the interlocking connection further enhances the connection strength between the two, avoids relative slippage during rotation, and ensures the stability and synchronization of the overall rotation of the rotating component.
[0028] The intermediate component 2 includes: The square tube body 21 has a square structure and through holes at both ends. The square structure facilitates the adaptation and splicing with other square building block components, while providing a stable support frame for the internal structure. Two end caps 22 are attached to the two ends of the through hole of the square tube body 21. Each corner of the two end caps 22 and the square tube body 21 is formed with a first circular groove 24. Each first circular groove 24 has a first through hole on its three nearby surfaces. Multiple first magnetic beads are provided, and each first magnetic bead is placed one-to-one in each first circular groove 24. The first magnetic beads can magnetically attract surrounding magnetic or magnetically adsorbable building block components through the first through hole, enhancing the connection stability of the intermediate component 2 with other building block components. At the same time, the multi-directional first through hole design allows the intermediate component to achieve magnetic connection in multiple directions, improving the flexibility of building block assembly.
[0029] The end cap 22 has a cylindrical section 221 protruding outwards from both ends in the middle, and the cylindrical section 221 has a second cavity that extends through both ends. The cylindrical structure can guide and limit the bearing spindle 12 and the tapping spindle 33, ensuring the coaxiality of the rotating components during rotation, reducing rotational friction, and improving the smoothness of rotation; the second cavity provides space for the installation of the bearing spindle and the tapping spindle.
[0030] At least one receiving hole 211 is provided at each corner of both ends of the square tube body 21; The end cap 22 has multiple connecting posts 222 that are interference-fitted with the bearing holes 211 on its connecting surface with the square tube body 21. The interference fit connection ensures the tightness of the connection between the end cap 22 and the square tube body 21, preventing the end cap 22 from loosening or falling off during rotation or when subjected to external forces, thus ensuring the overall stability of the intermediate component 2.
[0031] The mortise and tenon joint structure includes: A mortise hole is provided at the end of the bearing spindle 12; A tenon 32 is provided at the end of the tapping spindle 33, and the tenon 32 enters the mortise hole to form the mortise and tenon connection. This structural design is simple and easy to understand, making it easy for children to quickly master the assembly method. At the same time, it can achieve precise docking between the bearing spindle 12 and the tapping spindle 33, providing a foundation for subsequent meshing connections.
[0032] The meshing connection structure includes: Multiple notches 11 are provided at the mortise hole; Multiple protrusions 31 are provided at the base of the tenon 32. After the tenon 32 is inserted into the mortise, the protrusions 31 and the notch 11 form the meshing structure. The interlocking of the protrusions 31 and the notch 11 effectively prevents relative rotation between the bearing spindle 12 and the tapping spindle 33 during rotation, ensuring that the rotating assembly rotates at the same speed, improving the stability and consistency of rotation, and also enhancing the connection strength between the two, avoiding structural damage during disassembly.
[0033] The outer surface of the first rotating component 1 is provided with multiple first protrusions and multiple first grooves. The design of the first protrusions and grooves allows the first rotating component to be assembled with other building block components that have matching grooves and protrusions, expanding the assembly function of the building block magnetic gyroscope. Users can combine the building block magnetic gyroscope with other building block components to create more complex and diverse shapes according to their own creativity. For example, the outer surface of the first rotating component 1 can be assembled with the outer surface of the building block auxiliary component.
[0034] Example 2: Please refer to the attached document. Figure 5-6 The present invention provides a building block auxiliary component, including a building block splicing component 4, a magnetic connecting part 5, and a male end component 6. The building block splicing component 4 includes a third building block connecting part and a female end main shaft 41 disposed on the inner surface of the third building block connecting part. The third building block connecting part is used to splice with other building block components, and the female end main shaft provides an adaptation structure for connection with the male end component. The magnetic connection part 5 has a third cavity that runs through both sides, one side of which is a magnetic surface. The magnetic surface can be magnetically connected to building blocks that are magnetic or can be magnetically attracted, thereby enhancing the stability and convenience of the connection. For example, the magnetic surface of the magnetic connection part 5 and the magnetic surface of the intermediate component 2 are magnetically connected.
[0035] The male end component 6 is a T-shaped cylinder that enters through the third cavity opening on the magnetic suction surface. The female end spindle 41 enters through the third cavity opening on the other side, forming an interference fit with the male end component 6. The T-shaped cylindrical structure of the male end component allows it to be positioned after insertion into the third cavity, preventing it from falling off the magnetic suction surface. The interference fit ensures a tight connection between the female end spindle and the male end component, preventing loosening during use and ensuring the overall stability of the building block auxiliary component. This detachable connection also facilitates assembly and disassembly, improving the flexibility of use.
[0036] The outer surface of the building block connector 4 is provided with multiple second protrusions and multiple second grooves. The design of the second protrusions and second grooves allows the building block connector to be assembled with other building block components with matching grooves and protrusions, expanding the assembly function of the building block auxiliary component and enabling it to adapt to different types of building block components, meeting the diverse connection needs in the process of building complex building block shapes.
[0037] The magnetic surface has a second circular groove inside each of its four corners. Each second circular groove has a second through-hole on one of its three adjacent surfaces, and each second circular groove contains a second magnetic bead 8. The second magnetic beads, through the second through-holes, can magnetically attract surrounding magnetic or magnetically adsorbable building block components, enhancing the connection stability between the magnetic connector and other building block components. Furthermore, the multi-directional design of the second through-holes allows the magnetic connector to achieve magnetic connection in multiple directions, further improving the flexibility and adaptability of the building block auxiliary component during the building block assembly process.
[0038] In summary, the magnetic gyroscope and auxiliary components of this invention feature a reasonable structural design and convenient disassembly and assembly. The rotating components of the magnetic gyroscope are connected by mortise and tenon joints and meshing to ensure rotational stability. The first magnetic bead of the intermediate component and the second magnetic bead of the auxiliary component enhance the connection strength with other building block components. Both have good splicing function and adaptability, which can meet the diverse building block building and play needs of users, and have high practicality and promotional value.
[0039] The above description is only a preferred embodiment of the present utility model and does not limit the patent scope of the present utility model. Any equivalent structural or procedural transformations made based on the contents of the present utility model specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of the present utility model.
Claims
1. A modular magnetic gyroscope, comprising an intermediate component (2) and a rotating assembly rotatably connected to said intermediate component (2), characterized in that, The intermediate component (2) has a first through cavity that extends through both ends; The rotating assembly is detachable and includes: The first rotating component (1) has a first block connecting part (13) and a bearing end spindle (12) disposed on the inner surface of the first block connecting part (13). The second rotating component (3) has a second block connecting part (34) and a tapping spindle (33) disposed on the inner surface of the second block connecting part (34). The bearing spindle (12) and the tapping spindle (33) enter from both ends of the first through cavity respectively, and the bearing spindle (12) and the tapping spindle (33) form a tenon-and-mortise connection and a meshing connection.
2. The magnetic building block gyro according to claim 1, wherein The intermediate component (2) includes: The square tube body (21) has a square structure and has through holes at both ends; Two end caps (22) are attached to the two ends of the through hole of the square tube body (21). Each corner of the two end caps (22) and the square tube body (21) is formed with a first circular groove (24). Each first circular groove (24) has a first through hole on its three nearby surfaces. The first magnetic bead is provided in multiples, and the multiple first magnetic beads are placed one-to-one in each first circular groove (24).
3. A modular magnetic gyroscope according to claim 2, characterized in that, The end cap (22) has a cylinder (221) protruding outwards at both ends in the middle, and the cylinder (221) has a second cavity that passes through both ends.
4. A modular magnetic gyroscope according to claim 2, characterized in that, Each corner of the square tube body (21) is provided with at least one bearing hole (211). The end cap (22) has a plurality of connecting posts (222) that are interference-fitted with the bearing hole (211) on its connecting surface with the square tube body (21).
5. The magnetic building block gyro according to claim 1, wherein The mortise and tenon joint structure includes: A mortise hole is provided at the end of the main shaft (12) at the bearing end; A tenon (32) is provided at the end of the main shaft (33) of the tapping end, and the tenon (32) enters the mortise hole to form the tenon-mortise connection.
6. The magnetic building block gyro according to claim 5, wherein The meshing connection structure includes: Multiple notches (11) are provided at the mortise hole; Multiple protrusions (31) are provided at the root of the tenon (32). After the tenon (32) is inserted into the mortise, the protrusions (31) and the notch (11) form the meshing connection structure.
7. The magnetic building block gyro according to claim 1, wherein The outer surface of the first rotating member (1) is provided with a plurality of first protrusions and a plurality of first grooves.
8. A building block auxiliary component, comprising a building block connecting component (4), a magnetic connecting part (5), and a male end component (6), characterized in that, The building block assembly (4) includes a third building block connecting part and a female end spindle (41) located on the inner surface of the third building block connecting part. The magnetic connection part (5) has a third cavity that runs through both sides, one side of which is the magnetic surface; The male end component (6) is a T-shaped cylinder that enters from the third cavity opening of the magnetic attraction surface, while the female end main shaft (41) enters from the third cavity opening on the other side, and is inserted into the male end component (6) to form an interference fit.
9. A building aid according to claim 8, c h a r a c t e r i s e d in that The outer surface of the building block assembly (4) is provided with multiple second protrusions and multiple second grooves.
10. A building block auxiliary component according to claim 8, characterized in that, The magnetic surface has a second circular groove inside the four corners, and a second through hole is opened on the three nearby surfaces of the second circular groove. Each second circular groove is filled with a second magnetic bead (8).