Intelligent stone crystallization maintenance integrated device
By installing a buffer mechanism on the chassis of the crystallization machine, the problem of inertial runaway impact of the crystallization machine is solved by using rubber deformation and gas discharge to buffer the impact, thereby improving the safety of stone crystallization maintenance and the protective performance of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- NANNING GUANRUN CLEANING CO LTD
- Filing Date
- 2025-07-14
- Publication Date
- 2026-07-31
AI Technical Summary
Existing stone crystallization and maintenance devices are prone to losing control due to inertia during operation and crashing into walls or furniture, causing damage to equipment and items and affecting safe use.
A buffer mechanism is installed on the chassis of the crystallizer, including a retaining ring, a rubber buffer ring, a rubber semi-ring strip, and a venting tube, forming a stress-bearing buffer structure that provides a buffering effect through the deformation of the rubber and the discharge of gas.
It effectively reduces the impact damage to items during the crystallization and maintenance of stone by the crystallization machine, and improves the safety and reliability of operation.
Smart Images

Figure CN224575277U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of stone crystallization and maintenance technology, and in particular to an intelligent integrated device for stone crystallization and maintenance. Background Technology
[0002] Stone crystallization is a maintenance process that involves reacting chemical agents with the minerals on the stone surface, combined with mechanical polishing, to form a hard crystalline layer on the stone surface. This process can improve gloss and enhance protective performance. When maintaining a crystallized stone surface, workers will use a neutral detergent diluted with water to mop the floor, then spray a water-based crystallization maintenance agent evenly onto the stone surface, and finally use a crystallization machine that can be manually and intelligently controlled to slowly polish and maintain the stone.
[0003] Existing foam crystallization machines are relatively heavy, and their chassis generates significant inertia during high-speed rotation after startup. If the operator lacks sufficient hand strength or fails to control the direction properly, the crystallization machine can easily lose control and collide with surrounding objects. The significant inertia of the crystallization machine can easily damage walls or furniture it collides with, thus affecting its safe use. To address this, we propose an integrated intelligent stone crystallization and maintenance device. Utility Model Content
[0004] The main objective of this invention is to provide an integrated intelligent stone crystallization and maintenance device. This device utilizes a buffer mechanism installed on the base of the crystallization machine. This buffer mechanism consists of an outer protective structure composed of a surrounding ring and a rubber buffer ring. The outer side of the surrounding ring has a rubber semi-ring strip that, together with the rubber semi-ring toothed strip inside, forms a force-bearing buffer position. When the crystallization machine collides with an object, the rubber semi-ring toothed strip and the rubber semi-ring strip can deform under force to provide buffering. Simultaneously, the rubber buffer ring at the surrounding ring also provides elastic buffering under force, effectively reducing collision damage during stone crystallization and maintenance polishing. Furthermore, when the rubber semi-ring strip deforms under force, the gas inside the buffer strip cavity formed by the rubber plug and the rubber semi-ring strip can be discharged outwards through the vent pipe after being pressurized, further reducing collision damage from the crystallization machine and effectively solving the problems in the prior art.
[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0006] An integrated intelligent stone crystallization and maintenance device includes a crystallization machine body, a base shell mounted on the machine base, and a buffer mechanism. The buffer mechanism includes a retaining ring, fixed pin ribs, a rubber buffer ring, a rubber semi-ring strip, a rubber plug, a vent pipe, a rubber semi-ring rack, and a mounting plate. The outer side of the base shell is covered by the retaining ring, and the surface of the base shell between the retaining rings has ring-distributed fixed pin grooves for mounting the fixed pin ribs. The ring is fixed to the inner ring surface of the circumferential ring. The top of the circumferential ring has a recessed groove for mounting the rubber buffer ring. Rubber semi-ring strips are symmetrically bonded to the outer ring surface of the circumferential ring. Rubber plugs are mounted and bonded to the ends of the rubber semi-ring strips. Rubber semi-ring toothed strips are inserted into the rubber semi-ring strips on one side of the rubber plugs. Air leakage tubes are inserted into the rubber plugs. A mounting plate is integrally formed at the top of the circumferential ring. The mounting plate is locked to the outside of the chassis shell by bolts.
[0007] Furthermore, the mounting plates are symmetrically pressed onto the surface of the chassis housing, and mounting holes for screwing bolts are provided between the mounting plates and the chassis housing.
[0008] By adopting the above technical solution, the mounting plate can be pried open from opposite sides and covered from the bottom of the chassis shell, so that the retaining ring can be locked on the outside of the chassis shell. Then the mounting plate can be locked to the chassis shell with bolts.
[0009] Furthermore, the groove cavity size of the recessed groove is the same as the ring size of the rubber buffer ring, and the rubber buffer ring is recessed with a groove facing the inner ring surface of the chassis shell.
[0010] By adopting the above technical solution, the concave groove of the retaining ring can be adapted to the ring body of the rubber buffer ring. When the retaining ring is deformed by force, the rubber buffer ring can provide buffer support by deforming within the retaining ring.
[0011] Furthermore, the rubber plug is a hollow block, and one side of the rubber plug has a protruding edge that inserts into the rubber semi-ring strip. The edge of the rubber plug is bonded and fixed to the inner wall of the rubber semi-ring strip.
[0012] By adopting the above technical solution, the hollow head block of the rubber plug and the single-hole strip of the rubber semi-ring are interlocked and inserted, and then the edge of the rubber plug is bonded and fixed to the rubber semi-ring.
[0013] Furthermore, the rubber semi-ring toothed rack has a three-point toothed protrusion recessed on the inner strip surface facing the chassis shell, and the strip body of the rubber semi-ring toothed rack is bonded to the inner ring wall of the rubber semi-ring.
[0014] By adopting the above technical solution, the toothed protrusion of the rubber semi-ring rack can abut against the rubber semi-ring, so that the rubber semi-ring rack and the rubber semi-ring can elastically deform after being subjected to force to provide cushioning.
[0015] Furthermore, one side of the rubber plug has a through hole for inserting and bonding the air leakage tube, and the bottom of the air leakage tube has an air leakage groove.
[0016] By adopting the above technical solution, the leaking tube can be inserted into the insertion hole of the rubber plug, and then the gas inside the buffer strip cavity composed of the rubber plug and the rubber semi-ring strip can be discharged outward from the leaking tube after being pressurized.
[0017] Compared with the prior art, the present invention has the following beneficial effects:
[0018] This utility model provides a buffer mechanism at the base of the crystallizing machine. The buffer mechanism is an outer protective structure consisting of a retaining ring and a rubber buffer ring assembled at the base of the crystallizing machine. At the same time, the outer side of the retaining ring has a rubber semi-ring strip that works with the rubber semi-ring toothed strip inside to form a force-bearing buffer position. When the crystallizing machine collides with an external object, the rubber semi-ring toothed strip and the rubber semi-ring strip can deform under force to provide buffering. Meanwhile, the rubber buffer ring at the retaining ring can also elastically buffer under force, effectively reducing the collision damage when the crystallizing machine is used for stone crystallization maintenance and polishing.
[0019] Furthermore, when the rubber semi-ring is deformed under stress, the gas inside the buffer strip cavity composed of the rubber plug and the rubber semi-ring can be discharged outward from the leaking tube after being pressurized, thus buffering the deformation and reducing the impact damage of the crystallizer body to the object. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the overall structure of an integrated intelligent stone crystallization and maintenance device according to this utility model.
[0021] Figure 2 This is a schematic diagram showing the disassembled chassis shell and buffer mechanism of the intelligent stone crystallization and maintenance integrated device of this utility model.
[0022] Figure 3 This is an exploded view of the protective mechanism of an integrated intelligent stone crystallization and maintenance device according to this utility model.
[0023] Figure 4 This is a schematic diagram showing the disassembly of the rubber plug and the air-leaking cylinder of the intelligent stone crystallization and maintenance integrated device of this utility model.
[0024] In the diagram: 1. Crystallizer body; 2. Chassis shell; 3. Fixed pin groove; 4. Buffer mechanism; 5. Enclosing ring; 6. Fixed pin rib; 7. Recessed groove; 8. Rubber buffer ring; 9. Rubber semi-ring strip; 10. Rubber plug; 11. Leakage cylinder; 12. Rubber semi-ring rack; 13. Mounting plate. Detailed Implementation
[0025] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0026] like Figure 1-4 As shown, an integrated intelligent stone crystallization and maintenance device includes a crystallization machine body 1, a base shell 2 installed at the base of the crystallization machine body 1, and a buffer mechanism 4. The buffer mechanism 4 includes a retaining ring 5, fixed pin ribs 6, a rubber buffer ring 8, a rubber semi-ring strip 9, a rubber plug 10, a vent pipe 11, a rubber semi-ring rack 12, and a mounting plate 13. The outer side of the base shell 2 is covered by the retaining ring 5, and the surface of the base shell 2 between the retaining rings 5 is provided with a ring-shaped distribution of fixed pin grooves 3 for mounting the fixed pin ribs 6. The fixed pin ribs 6 are arranged in a ring shape. The cloth is fixed to the inner ring surface of the circumferential ring 5. The top of the circumferential ring 5 has a recessed groove 7 for mounting the rubber buffer ring 8. The outer ring surface of the circumferential ring 5 is symmetrically bonded with rubber semi-ring strips 9. A rubber plug 10 is mounted and bonded at the opening of the rubber semi-ring strip 9. A rubber semi-ring rack 12 is inserted into the rubber semi-ring strip 9 on one side of the rubber plug 10. A vent pipe 11 is inserted through the rubber plug 10. The top of the circumferential ring 5 has an integrally formed mounting plate 13. The mounting plate 13 is locked to the outside of the chassis shell 2 by bolts.
[0027] The mounting plate 13 is symmetrically pressed onto the surface of the chassis shell 2, and mounting holes for screw bolts are provided between the mounting plate 13 and the chassis shell 2.
[0028] By adopting the above technical solution, the mounting plate 13 can be pried open from opposite sides and covered downwards from the chassis shell 2, so that the retaining ring 5 can be locked on the outside of the chassis shell 2. Then the mounting plate 13 can be locked to the chassis shell 2 with bolts.
[0029] The groove 7 has the same cavity size as the rubber buffer ring 8, and the rubber buffer ring 8 has a recessed groove facing the inner ring surface of the chassis shell 2.
[0030] By adopting the above technical solution, the recessed groove 7 of the retaining ring 5 can be adapted to fit the ring body of the rubber buffer ring 8. When the retaining ring 5 is deformed by force, the rubber buffer ring 8 can be deformed within the retaining ring 5 to provide buffer support.
[0031] The rubber plug 10 is a hollow block, and one side of the rubber plug 10 has a protruding edge that inserts into the rubber semi-ring strip 9. The edge of the rubber plug 10 is bonded and fixed to the inner wall of the rubber semi-ring strip 9.
[0032] By adopting the above technical solution, the hollow head block of the rubber plug 10 and the single-hole strip of the rubber semi-ring 9 are interlocked and inserted, and then the edge of the rubber plug 10 is bonded and fixed to the rubber semi-ring 9.
[0033] The rubber semi-ring toothed rack 12 has a three-point toothed protrusion recessed on the inner strip surface facing the chassis shell 2, and the strip body of the rubber semi-ring toothed rack 12 is bonded to the inner ring wall of the rubber semi-ring 9.
[0034] By adopting the above technical solution, the protruding part of the rubber semi-ring rack 12 can abut against the rubber semi-ring 9, so that the rubber semi-ring rack 12 and the rubber semi-ring 9 can elastically deform after being subjected to force to provide buffer.
[0035] The rubber plug 10 has a through hole on one side for inserting and bonding the air leak tube 11, and an air leak groove is provided at the bottom of the air leak tube 11.
[0036] By adopting the above technical solution, the leaking tube 11 can be inserted into the insertion hole of the rubber plug 10. Then, the gas inside the buffer strip cavity composed of the rubber plug 10 and the rubber semi-ring strip 9 can be discharged outward from the leaking tube 11 after being pressurized.
[0037] It should be noted that this utility model is an integrated intelligent stone crystallization and maintenance device. By setting a fixed pin groove 3 and a buffer mechanism 4 on the base shell 2 of the crystallization machine body 1, the buffer mechanism 4 is installed in the same way as the existing chassis disassembly method for the crystallization machine body 1. After separating the base shell 2 from the housing containing the motor, the mounting plate 13 of the buffer mechanism 4 can be pried open from opposite sides and covered downwards from the base shell 2, allowing the retaining ring 5 to be secured to the outside of the base shell 2. At this time, the mounting plate 13 elastically recovers and is secured to the inclined shell surface of the base shell 2. Then, bolts are used to lock the mounting plate 13 to the base shell 2. When the stone crystallization surface is being maintained, maintenance personnel use a neutral detergent diluted with water to mop the floor, then evenly spray a water-based crystallization maintenance agent onto the stone crystallization surface, and then manually start the crystallization machine body 1, which can be manually and intelligently controlled. Workers can operate the machine. When the crystallizing machine body 1 polishes and maintains the crystallized surface of stone, if the crystallizing machine body 1 is accidentally bumped into a wall or furniture by a worker, the rubber semi-ring strip 9 and the rubber semi-ring toothed strip 12 can make soft contact with the wall or furniture for initial cushioning. When the rubber semi-ring strip 9 is compressed, the gas inside the buffer strip cavity formed by the rubber plug 10 and the rubber semi-ring strip 9 can be discharged outward through the air leakage pipe 11 after being compressed, thus providing deformation cushioning. After the rubber plug 10 and the rubber semi-ring strip 9 leave the object that collided with it, the air leakage pipe 11 can re-enter the air when the rubber material elastically recovers. When the rubber semi-ring strip 9 is subjected to greater force, the surrounding ring 5 cooperates with the pressure rubber buffer ring 8 to deform it, thereby cushioning the mutual impact force when the chassis shell 2 collides with the wall or furniture, improving the operational safety of the crystallizing machine body 1 when performing stone crystallization maintenance.
[0038] It should be noted that this utility model is an integrated intelligent stone crystallization and maintenance device. All components in this utility model are known to those skilled in the art, and their structure and principle can be learned by those skilled in the art through technical manuals or conventional experimental methods.
[0039] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claims. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. An intelligent stone crystallization curing integrated device, comprising a crystal face machine body (1), a bottom disc shell (2) is installed at the base of the crystal face machine body (1), characterized in that: It also includes a buffer mechanism (4), which includes a retaining ring (5), a fixed pin rib (6), a rubber buffer ring (8), a rubber semi-ring strip (9), a rubber plug (10), a leaking pipe (11), a rubber semi-ring rack (12), and a mounting plate (13). The outer side of the chassis shell (2) is covered by the retaining ring (5), and the surface of the chassis shell (2) between the retaining rings (5) is provided with fixed pin grooves (3) for mounting the fixed pin ribs (6) in a ring-distributed manner. The fixed pin ribs (6) are fixed to the inner ring surface of the retaining ring (5) in a ring-distributed manner. The top of the ring body is provided with a recessed groove (7) for mounting a rubber buffer ring (8), and a rubber semi-ring strip (9) is symmetrically bonded to the outer ring surface of the ring (5). A rubber plug (10) is mounted and bonded to the opening of the rubber semi-ring strip (9), and a rubber semi-ring rack (12) is inserted into the rubber semi-ring strip (9) on one side of the rubber plug (10). A leaking tube (11) is inserted into the rubber plug (10), and a mounting plate (13) is integrally formed on the top of the ring body of the ring (5). The mounting plate (13) is locked to the outside of the chassis shell (2) by bolts.
2. The intelligent stone crystallization curing integrated device according to claim 1, characterized in that: The mounting plate (13) is symmetrically pressed onto the surface of the chassis shell (2), and mounting holes for screw bolts are provided between the mounting plate (13) and the chassis shell (2).
3. The intelligent integrated stone crystallization and maintenance device according to claim 1, characterized in that: The groove size of the recessed groove (7) is the same as the ring size of the rubber buffer ring (8), and the rubber buffer ring (8) is recessed with a groove on the inner ring surface of the chassis shell (2).
4. The intelligent stone crystallization curing integrated device according to claim 1, characterized in that: The rubber plug (10) is a hollow block, and one side of the rubber plug (10) has a protruding edge that can be inserted into the rubber semi-ring strip (9). The edge of the rubber plug (10) is bonded and fixed to the inner wall of the rubber semi-ring strip (9).
5. The intelligent stone crystallization curing integrated device according to claim 1, characterized in that: The rubber semi-ring toothed rack (12) has a three-point toothed protrusion recessed on the inner strip surface facing the chassis shell (2), and the strip body of the rubber semi-ring toothed rack (12) is bonded to the inner ring wall of the rubber semi-ring strip (9).
6. The intelligent stone crystallization curing integrated device according to claim 1, characterized in that: The rubber plug (10) has a through hole on one side for inserting and bonding the air leak tube (11), and an air leak groove is provided at the bottom of the air leak tube (11).