The present invention relates to a magic cube, and in particular, to a magnetic magic cube.
Currently, a conventional magic cube is a six-sided cube made of hard plastic rich in elasticity. The core is a shaft, and a magic cube consists of 26 blocks. The 26 blocks include 6 inner center blocks that are fixed and colored on only one side, 8 rotatable corner blocks, and 12 rotatable edge blocks. When the toy is ready for sale, each side of the cube can have the same color by arranging the blocks. When one side of the large cube is rotated by translation, a single color of each adjacent side of the large cube is disrupted, and a cube with a new pattern is formed. The cube changes again upon further rotation, and each side is spliced by blocks with different colors. The playing method is to restore the disordered cube back to a cube with a single color on each of the six sides as quickly as possible by rotation.
Since the advent, the magic cube has a very strong intelligence development function for human beings, and therefore it is popular around the world. The magic cube is easy to understand and ever changing and flexible, and therefore players must be able to concentrate their mentality, keep thinking and be patient in order to play the magic cube well. In a sense, the magic cube has become a special intelligence development toy and a toy for assessing the level and maturity of the players' intelligence, and therefore attract players batch after batch.
A more complex magic cube is usually adopted as a competition prop in a magic cube competition, and competitors need to rotate rapidly in order to complete the reordering of the magic cube in the shortest time. Rotation of the conventional magic cube relies on accurate rotation of a player, and the magic cube needs to be rotated by 90 degrees each time, so that the magic cube is not easily stuck. A magic cube with magnetic positioning blocks maybe attracted by magnetic attraction force in a state of 90 degrees, thereby achieving more accurate positioning.
However, existing magnetic magic cubes have the following defects.
1. Some existing magnetic magic cubes have positioning magnets in edge blocks. When magnetic force of the positioning magnets is too small, positioning may be inaccurate during high-speed rotation, positioning points may be missed, and the positioning magnets may swing around the positioning points. When the magnetic force of the positioning magnets is large, the resistance of start is relatively large upon initial rotation of the stationary magic cube, which is not conducive to fast restoration of the magic cube.
2. Some existing magnetic magic cubes have magnetic positioning apparatuses, typically magnets. The whole magic cube needs to be disassembled, and then the magnets can be attached to inner walls of blocks by glue or other chemical substances. However, glue is not environmentally friendly, assembly precision is relatively poor, and magnets are difficult to replace, the magnitude of magnetic force of each block is difficult to change and the magnitude of magnetic force of a layer where the blocks are located is difficult to change.
3. In most of existing magic cubes on the market, center blocks press corner blocks and edge blocks by elastic force of springs. Rotation force is adjusted by adjusting the elastic force. The springs are in contact with the center blocks, and therefore friction resistance is relatively large, which is not conducive to increasing a rotation speed.
4. In some existing magic cubes, an axis is in full contact with center blocks, and rotation resistance is relatively large.
5. In some existing magic cubes, elastic force and an axis distance are adjusted by screwing iron screws, and there is no obvious reference mark and positioning, and operations are not convenient or precise enough.
6. Magic cubes on the market cannot be effectively compatible with multiple levels of magnetic force and multiple levels of elastic force.
To overcome the aforesaid defects in the prior art, a technical problem to be solved by the present invention is to provide a magnetic structure of a magic cube, which has a decelerating effect, improves positioning precision and reduces frictional force.
To solve the above technical problem, a technical solution used by the present invention is a magnetic levitation magic cube. The magnetic levitation magic cube includes edge blocks, corner blocks and center blocks.
Inner sides of two side faces close to the corner blocks of the edge block each are provided with three magnet mounting grooves. A magnet is mounted in each of the magnet mounting grooves.
The center block includes a center block body and a center block cover. The center block body is a hollow structure and is provided with an opening. The center block cover covers and is spliced to the opening of the center block body. The center block further includes an upper magnetic disk and a lower magnetic disk that are mounted inside the center block body. The upper magnetic disk is provided with a through-hole for fastening a central shaft of the magic cube. The lower magnetic disk is provided with a through-hole for the central shaft of the magic cube to pass through. An annular magnet is fixedly mounted in each of the upper magnetic disk and the lower magnetic disk, and the two annular magnets repel each other.
In a further technical solution, the magnet mounting grooves of each side face of the edge block include one primary positioning magnet mounting groove and two auxiliary decelerating magnet mounting grooves. A movement trajectory of the primary positioning magnet mounting groove does not coincide with movement trajectories of the auxiliary decelerating magnet mounting grooves. The two auxiliary decelerating magnet mounting grooves are located on two sides of the primary positioning magnet mounting groove respectively.
In a further technical solution, the edge block includes an edge block body and a color sheet. An outer end of the edge block body is provided with an opening. The color sheet is fastened to the opening of the edge block body. The magnet mounting grooves are arranged in positions close to the opening of the edge block body. The magnet mounting grooves each abuts against one end of the corresponding magnet. An inner surface of the color sheet is provided with inwardly-protruding pressing blocks. The pressing blocks each abuts against the other end of the corresponding magnet.
In a further technical solution, the upper magnetic disk includes an adjustment disk and an upper magnetic disk base. A lower end face of the adjustment disk is provided with first adjustment teeth. An upper end face of the upper magnetic disk is provided with an adjustment tooth surface. A lower end of the upper magnetic disk is provided with a magnet groove for accommodating the corresponding annular magnet.
In a further technical solution, an outer peripheral edge of the upper magnetic disk base is provided with a side wall capable of driving the upper magnetic disk base to rotate.
In a further technical solution, an upper surface of the adjustment disk is provided with an indication disk. The indication disk is provided with several indication surfaces. A width of the indication surface matches a width of the first adjustment tooth.
In a further technical solution, an inner bottom face of the center block body is provided with a connecting column. A circumferential surface of the connecting column is provided with second adjustment teeth. A through-hole of the lower magnetic disk sleeves the connecting column. An outer peripheral edge of the through-hole of the lower magnetic disk is provided with third adjustment teeth matching the second adjustment teeth.
In a further technical solution, the lower magnetic disk is provided with several sockets capable of driving the lower magnetic disk to rotate.
In a further technical solution, the sockets of the lower magnetic disk are insertion sockets in the peripheral edge of the lower magnetic disk.
In a further technical solution, an inner surface of the bottom of the center block body is provided with several indication scale markings. A peripheral edge of the lower magnetic disk is provided with several notches.
In the magnetic levitation magic cube of the present invention, three magnets are adopted for positioning in the edge block to make positioning more precise and further avoid large resistance of start; two annular magnets repelling each other are adopted in the center block to realize repulsive force; and the annular magnets are not in contact with the central shaft of the magic cube to reduce frictional force. In addition, by adopting the mutually-matching structures, the positions and axis distance between the magnets are adjusted, and the axis distance and magnetic repulsive force are effectively adjusted.
The following further describes the present invention in conjunction with the accompanying drawings and specific embodiments.
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In particular, the upper magnetic disk 23 includes an adjustment disk 231 and an upper magnetic disk base 232. A lower end face of the adjustment disk 231 is provided with first adjustment teeth 234. An upper end face of the upper magnetic disk is provided with an adjustment tooth surface. A lower end of the upper magnetic disk is provided with a magnet groove for accommodating the corresponding annular magnet. An upper end of the adjustment disk is further provided with a groove 235 capable of driving the adjustment disk to rotate. An outer peripheral edge of the upper magnetic disk base is provided with a side wall 235 capable of driving the upper magnetic disk base to rotate. An upper surface of the adjustment disk 231 is provided with an indication disk. The indication disk is provided with several indication surfaces 236. A width of the indication surface (i.e., a width of a gear indication number in the figure) matches a width of the first adjustment tooth 234, such that the adjustment disk 231 enables an accurate indication when being rotated by a width of one adjustment tooth (i.e., one gear).
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The foregoing describes only the preferred implementations of the present invention, but is not intended to limit the present invention. Various modifications or variations made to the present invention in practice that do not depart from the spirit and scope of the present invention but fall within the scope of the claims of the present invention and equivalents shall also be included in the present invention.
Number | Date | Country | Kind |
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202110578663.1 | May 2021 | CN | national |
Number | Name | Date | Kind |
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20200023266 | Lee | Jan 2020 | A1 |
20220008817 | Jiang | Jan 2022 | A1 |
20220118354 | Osipov | Apr 2022 | A1 |
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110038293 | Jul 2019 | CN |
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