Luxury resin diamond polishing grinding block
By designing the abrasive into trapezoidal, cylindrical, and isosceles trapezoidal shapes, combined with the tight connection between the adhesive layer and the base, and the setting of heat dissipation grooves, the precision and heat dissipation problems of traditional abrasive blocks in high-grade stone polishing are solved, achieving efficient and uniform polishing effect and abrasive block stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIANGMEN SHUANGYI ABRASIVE CO LTD
- Filing Date
- 2025-01-22
- Publication Date
- 2026-04-17
AI Technical Summary
Traditional stone polishing blocks are difficult to meet the requirements of high-end stone (such as luxury stone) for polishing precision and surface gloss, and they are prone to overheating after long-term use, which affects the polishing effect and the life of the blocks.
A luxury stone resin diamond polishing abrasive block is designed, with the abrasive material in the shape of a trapezoidal column and the upper surface being an isosceles trapezoid. It is tightly connected to the base with an adhesive layer and heat dissipation grooves are set to improve heat dissipation performance.
It achieves efficient and uniform stone polishing, improves polishing quality and efficiency, extends the life of the grinding blocks, and reduces costs.
Smart Images

Figure CN224129513U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of stone processing technology, specifically to a luxury stone resin diamond polishing block. Background Technology
[0002] Traditional stone polishing blocks often use a single abrasive or matrix material, which is insufficient to meet the polishing precision and surface gloss requirements of high-end stones (such as luxury stones). Furthermore, the blocks tend to overheat after prolonged use, affecting polishing results and the block's lifespan. Therefore, developing a polishing block that can both guarantee polishing quality and effectively dissipate heat has become a pressing issue for the industry. Utility Model Content
[0003] In order to overcome the problems existing in the prior art, the purpose of this utility model is to provide a luxury stone resin diamond polishing grinding block.
[0004] The technical solution adopted by this utility model to solve its technical problem is: a luxury stone resin diamond polishing abrasive block, comprising: abrasive, base and adhesive layer; one side of the adhesive layer is bonded to the base, and the other side of the adhesive layer is bonded to the bottom surface of the abrasive; the abrasive is in the shape of a trapezoidal column, and the upper surface of the abrasive is an isosceles trapezoid.
[0005] Main Working Principle: The core working principle of this luxury stone resin diamond polishing block is to achieve efficient and uniform polishing of high-grade stone (luxury stone). Its structure consists mainly of abrasive particles, a base, and an adhesive layer. The adhesive layer, as the connecting medium between the abrasive and the base, plays a crucial role. One side is tightly connected to the base, while the other side is firmly bonded to the bottom surface of the abrasive. This design ensures that the abrasive will not fall off or loosen during polishing, thus guaranteeing the continuity and stability of the polishing process. The abrasive is designed in a trapezoidal prism shape, with its upper surface being an isosceles trapezoid. This design allows the abrasive to form a wider contact area with the stone surface during polishing, thereby improving polishing efficiency. At the same time, the isosceles trapezoidal upper surface also ensures the uniformity and stability of the abrasive during polishing, avoiding uneven polishing caused by irregular shapes.
[0006] During the polishing process, abrasive blocks are mounted on the polishing machine. As the machine starts, the blocks come into contact with the stone surface. At this point, the diamond particles in the abrasive begin to rub against the stone surface, removing tiny bumps and imperfections to achieve a polishing effect.
[0007] Because the abrasive particles are trapezoidal in shape with an isosceles trapezoidal upper surface, they can evenly polish the stone surface along its contours during the polishing process. Simultaneously, the strong bond of the adhesive layer ensures that the abrasive particles will not detach or loosen during polishing, thus guaranteeing the continuity and stability of the polishing process.
[0008] The luxury stone resin diamond polishing abrasive block of the present invention has the advantages of simple structure, convenient operation, and high polishing efficiency. Its unique trapezoidal column shape and isosceles trapezoidal upper surface design allow the abrasive to contact the stone surface more evenly during the polishing process, thereby improving the polishing quality and efficiency.
[0009] In summary, the luxury stone resin diamond polishing block of the present invention, through its carefully designed structural combination and optimized working principle, achieves efficient and uniform polishing of high-grade stone, meeting the high requirements of the stone processing industry for polishing quality and efficiency.
[0010] Preferably, the abrasive includes a first plane, a second plane, a third plane, a fourth plane, and a fifth plane;
[0011] The first plane is an isosceles trapezoid, the second plane and the third plane are respectively connected to the two waist lines on both sides of the first plane, the fourth plane is connected to the short side of the first plane, and the fifth plane is connected to the long side of the second plane.
[0012] The surfaces of the first plane, the second plane, the third plane, the fourth plane, and the fifth plane are all provided with heat dissipation grooves.
[0013] Preferably, the heat dissipation groove includes a first heat dissipation groove, which extends from the side of the second plane near the base, through the first plane, to the side of the third plane near the base, and the first heat dissipation groove is parallel to the short side of the first plane.
[0014] Preferably, the number of the first heat dissipation slots is not less than one, and the first heat dissipation slots are arranged at equal intervals.
[0015] Preferably, the number of the third heat dissipation slots is not less than one, and the three third heat dissipation slots are arranged at equal intervals.
[0016] Compared with the prior art, the beneficial effects of this utility model are:
[0017] This invention designs the abrasive in a trapezoidal column shape with an isosceles trapezoidal upper surface. This design allows the abrasive to form a larger contact area with the stone surface during polishing, thereby improving polishing efficiency. Compared to traditional polishing blocks, this invention can remove minor bumps and imperfections on the stone surface more quickly, achieving the desired polishing effect.
[0018] The isosceles trapezoidal upper surface design ensures the uniformity and stability of the abrasive during polishing, avoiding uneven polishing caused by irregular shapes. This results in a smoother, more even surface after polishing, enhancing the stone's aesthetics and texture. The adhesive layer acts as a connection medium between the abrasive and the base, ensuring that the abrasive does not detach or loosen during polishing. This robust connection improves the stability of the abrasive block, making the polishing process more stable and reliable. Because the abrasive and base are tightly connected through the adhesive layer, and the abrasive itself has high wear resistance and hardness, the polishing blocks described in this invention have a long service life. This reduces costs in the stone processing process and improves economic efficiency.
[0019] The polishing blocks described in this invention are not only suitable for polishing high-end stones such as luxury stone, but can also be widely used in the processing and polishing of other types of stone. Their excellent performance and wide applicability give this invention high market value and promising prospects for promotion.
[0020] In summary, the luxury stone resin diamond polishing abrasive block of this invention improves polishing efficiency and quality, enhances the stability of the abrasive block, extends its service life, and has strong adaptability by optimizing the shape and connection method of the abrasive. These beneficial effects make this invention have broad application prospects and significant economic value in the stone processing industry. Attached Figure Description
[0021] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0022] Figure 1 A schematic diagram of the overall structure of the luxury stone resin diamond polishing abrasive block;
[0023] Figure 2 A schematic cross-section of a luxury stone resin diamond polishing abrasive block;
[0024] Figure 3 A schematic diagram of the bottom of a luxury stone resin diamond polishing block;
[0025] Figure 4 A schematic diagram of the top of a luxury stone resin diamond polishing block;
[0026] 1. Abrasive; 10. First plane; 11. Second plane; 12. Third plane; 13. Fourth plane; 14. Fifth plane; 15. First heat dissipation groove; 16. Second heat dissipation groove; 17. Third heat dissipation groove; 2. Base; 20. Card holder; 21. Mesh; 3. Adhesive layer. Detailed Implementation
[0027] To better understand the above-mentioned objectives, features, and advantages of this utility model, it will be described in detail below with reference to the accompanying drawings and specific embodiments. It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. Many specific details are set forth in the following description to provide a thorough understanding of this utility model; the described embodiments are merely some, not all, of the embodiments of this utility model. All other embodiments obtained by those skilled in the art based on the embodiments of this utility model without inventive effort are within the scope of protection of this utility model.
[0028] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention.
[0029] Example 1
[0030] This embodiment discloses a high-quality resin diamond polishing block, such as... Figures 1-4 The assembly includes an abrasive 1, a base 2, and an adhesive layer 3. The adhesive layer 3, serving as the connecting medium between the abrasive 1 and the base 2, plays a crucial role. One side is tightly connected to the base 2, while the other side is firmly bonded to the bottom surface of the abrasive 1. This design ensures that the abrasive 1 will not detach or loosen during polishing, thus guaranteeing the continuity and stability of the polishing process. The abrasive 1 is designed in the shape of a trapezoidal column, with its upper surface being an isosceles trapezoid. This design allows the abrasive 1 to form a wider contact area with the stone surface during polishing, thereby improving polishing efficiency. Simultaneously, the isosceles trapezoidal upper surface also ensures the uniformity and stability of the abrasive 1 during polishing, avoiding uneven polishing caused by irregular shapes.
[0031] During the polishing process, abrasive blocks are mounted on the polishing machine. As the machine starts, the abrasive blocks begin to contact the stone surface. At this point, the diamond particles in abrasive 1 begin to rub against the stone surface, thereby removing minor bumps and imperfections and achieving a polishing effect.
[0032] Because abrasive 1 is trapezoidal in shape and its upper surface is an isosceles trapezoid, it can evenly polish the stone surface along its contours during the polishing process. Meanwhile, the strong bond of the adhesive layer 3 ensures that abrasive 1 will not fall off or loosen during polishing, thus guaranteeing the continuity and stability of the polishing process.
[0033] The luxury stone resin diamond polishing abrasive block of the present invention has the advantages of simple structure, convenient operation, and high polishing efficiency. Its unique trapezoidal column shape and isosceles trapezoidal upper surface design enable the abrasive 1 to contact the stone surface more evenly during the polishing process, thereby improving the polishing quality and efficiency.
[0034] In summary, the luxury stone resin diamond polishing block of the present invention, through its carefully designed structural combination and optimized working principle, achieves efficient and uniform polishing of high-grade stone, meeting the high requirements of the stone processing industry for polishing quality and efficiency.
[0035] In some optional embodiments, the abrasive 1 portion is further subdivided into five planes: a first plane 10 (an isosceles trapezoidal surface), a second plane 11, a third plane 12, a fourth plane 13, and a fifth plane 14. These planes are connected to each other to form the integral structure of the abrasive 1. Heat dissipation grooves are provided on the surface of each plane, including a first heat dissipation groove 15, a second heat dissipation groove 16, and a third heat dissipation groove 17.
[0036] During the polishing process, the friction between the abrasive 1 and the stone surface generates a large amount of heat. If this heat is not dissipated in time, the temperature of the abrasive block will rise, thus affecting the polishing effect and service life. This invention effectively dissipates the generated heat and maintains a stable temperature of the abrasive block by setting heat dissipation grooves on each plane surface of the abrasive 1.
[0037] The first heat dissipation groove 15 starts from the side of the second plane 11 near the base 2, passes through the first plane 10, and extends to the side of the third plane 12 near the base 2. This design allows heat to be quickly dissipated along the direction of the heat dissipation groove, preventing heat accumulation inside the abrasive 1. The second heat dissipation groove 16 and the third heat dissipation groove 17 are respectively disposed on the surfaces of the fourth plane 13 and the fifth plane 14, extending from the side near the first plane 10 to the side near the base 2. These heat dissipation grooves are perpendicular to the base 2, which helps to dissipate heat from the sides of the abrasive 1.
[0038] The design of the first heat dissipation groove 15, the second heat dissipation groove 16, and the third heat dissipation groove 17 significantly improves the heat dissipation performance of the grinding block, enabling it to maintain a lower temperature during long-term polishing, thereby extending its service life and improving the polishing effect. Simultaneously, the cooperation between the first heat dissipation groove 15, the second heat dissipation groove 16, and the third heat dissipation groove 17 allows heat to be dissipated more evenly, preventing localized overheating.
[0039] In some optional embodiments, a trapezoidal holder 20 is provided on the bottom surface of the base 2. A mesh 21 is also provided on the inner side of the holder 20, and the mesh 21 is flush with the opening of the holder 20. This design allows the abrasive block to be more stably fixed on the polishing machine, improving the stability and safety of the polishing process.
[0040] During the polishing process, the trapezoidal holder 20 fits tightly with the fixing device of the polishing machine to prevent the abrasive block from shaking or falling off during rotation. At the same time, the design of the grid 21 increases the contact area and friction between the abrasive block and the polishing machine, further improving the stability of the abrasive block.
[0041] The trapezoidal holder 20 and the grid 21 design enable the abrasive block to maintain a more stable working state during polishing, improving polishing efficiency and quality. At the same time, this design also reduces safety hazards caused by abrasive block movement or detachment, enhancing the safety of the polishing process.
[0042] In some optional embodiments, the abrasive 1 is partially composed of a mixture of silicon carbide powder and diamond powder. This composite material combines the wear resistance of silicon carbide with the hardness and sharpness of diamond, enabling the abrasive 1 to more efficiently remove minute bumps and imperfections from the stone surface during polishing. During polishing, the diamond particles in the abrasive 1, due to their high hardness and sharpness, can effectively cut through minute bumps and imperfections on the stone surface. Simultaneously, the addition of silicon carbide powder improves the wear resistance of the abrasive 1, allowing it to maintain a sharp cutting effect for an extended period.
[0043] Abrasive 1, made from a mixture of silicon carbide and diamond, offers excellent polishing performance and wear resistance. This design not only improves polishing efficiency and quality but also extends the lifespan of the abrasive blocks and reduces operating costs. Furthermore, because abrasive 1 is composed of two materials, it offers greater adaptability and flexibility, making it suitable for polishing various types and hardnesses of stone.
[0044] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model in any way. Therefore, any modifications, equivalent changes, and alterations made to the above embodiments based on the technical essence of the present utility model without departing from the technical solution of the present utility model shall still fall within the scope of the technical solution of the present utility model.
Claims
1. A LuxStone resin diamond polishing puck, characterized by, include: Abrasive, base, and adhesive layer; One side of the adhesive layer is bonded to the base, and the other side of the adhesive layer is bonded to the bottom surface of the abrasive. The abrasive is in the form of a trapezoidal column, and the upper surface of the abrasive is an isosceles trapezoid.
2. The diamond polishing block made of precious stone resin according to claim 1, characterized in that, The abrasive includes a first plane, a second plane, a third plane, a fourth plane, and a fifth plane; The first plane is an isosceles trapezoid, the second plane and the third plane are respectively connected to the two waist lines on both sides of the first plane, the fourth plane is connected to the short side of the first plane, and the fifth plane is connected to the long side of the second plane. The surfaces of the first plane, the second plane, the third plane, the fourth plane, and the fifth plane are all provided with heat dissipation grooves.
3. The LuxStone resin and diamond polishing puck of claim 2, wherein, The heat dissipation groove includes a first heat dissipation groove, which extends from the side of the second plane near the base, through the first plane, to the side of the third plane near the base, and the first heat dissipation groove is parallel to the short side of the first plane.
4. The LuxStone resin and diamond polishing puck of claim 3, wherein, The number of the first heat dissipation slots is not less than one, and the first heat dissipation slots are arranged at equal intervals.
5. The LuxStone resin and diamond polishing puck of claim 2, wherein, The heat dissipation groove also includes a second heat dissipation groove, which is disposed on the surface of the fourth plane and extends from the side of the fourth plane near the first plane to the side near the base; the second heat dissipation groove is perpendicular to the base.
6. The diamond polishing block made of precious stone resin according to claim 2, characterized in that, The heat dissipation groove also includes a third heat dissipation groove, which is disposed on the surface of the fifth plane and extends from the side of the fifth plane near the first plane to the side near the base; the third heat dissipation groove is perpendicular to the base.
7. The diamond polishing block made of precious stone resin according to claim 6, characterized in that, The number of the third heat dissipation slots is not less than one, and the not less than one third heat dissipation slots are arranged at equal intervals.
8. The luxury resin diamond polishing block according to claim 1, characterized in that, The base has a card holder on its bottom surface, and the card holder is trapezoidal.
9. The diamond polishing block made of precious stone resin according to claim 8, characterized in that, The card holder has a grid on its inner side, and the grid is flush with the opening of the card holder.
10. The luxury resin diamond polishing block according to claim 1, characterized in that, The abrasive is made by mixing silicon carbide powder and diamond powder.