Anti-skid and wear-resistant daily ceramic device grinding machine
By designing adjustable structures in daily ceramic component grinders, including forward rotary screws, reverse screws, sliders, chutes, support plates and plywoods, the problem that existing grinders cannot adapt to ceramic discs of different thicknesses is solved, achieving higher flexibility and quality, and reducing costs and pollution through circulating water systems.
Patent Information
- Application Number
- CN202421882287.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-05
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2034-08-05
AI Technical Summary
The existing anti-slip and wear-resistant daily ceramic device grinder lacks an effective adjustment mechanism and cannot be flexibly adjusted to adapt to ceramic products of different thicknesses, which limits its multi-special product compatibility on the production line.
A grinding machine structure including forward screw rod, reverse screw rod, slider, slider, support plate and ply plate is designed. Through these structures, rubber padding is driven to fix the outer surface of the ceramic disk, and the ceramic disk is driven to rotate through the motor and ply plate, achieving flexible adaptation to ceramic disks of different thicknesses.
It improves the flexibility and versatility of the grinder, can adapt to ceramic discs of different sizes, reduces damage to the ceramic discs, ensures uniformity and quality of the grinding process, and reduces production costs and environmental pollution through the circulating water system.
Smart Images

Figure CN222874127U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of daily-use ceramic device processing, in particular to a daily-use ceramic device grinding machine which is anti-skid and wear-resistant. Background Art
[0002] With the improvement of living standards, consumers have increasing requirements for the aesthetics, practicality and durability of daily-use ceramic utensils, especially for the anti-slip and wear-resistant properties of daily-use ceramics such as tableware and tea sets. This has prompted ceramic manufacturers to seek more advanced production technologies to meet market demand. Anti-slip and wear-resistant daily-use ceramic device grinders are key equipment in the ceramic manufacturing industry for improving the surface treatment quality of daily-use ceramic products.
[0003] However, the existing anti-slip and wear-resistant daily-use ceramic device grinders have certain limitations in actual application, especially when grinding daily-use ceramic discs of different specifications and thicknesses. Most of these devices are designed with fixed grinding ranges and adjustment ranges, which means that they fail to fully consider the diversity of ceramic product sizes in structure. Due to the lack of an effective adjustment mechanism, these grinders can only effectively grind ceramic plates within a certain thickness range and cannot be flexibly adjusted to adapt to products of different thicknesses. This limits its compatibility with multi-specification products on the production line, especially in the daily-use ceramic products industry, where product forms and sizes vary, and this limitation is particularly prominent. Utility Model Content
[0004] The purpose of the utility model is to solve the problem that the prior art lacks an effective adjustment mechanism, resulting in that this type of grinder can only effectively grind ceramic plates within a certain thickness range and cannot be flexibly adjusted to adapt to products of different thicknesses.
[0005] In order to achieve the above-mentioned purpose, the utility model adopts the following technical scheme: a non-slip and wear-resistant daily-use ceramic device grinder, including a device body, a machine cover is movably sleeved on the top of the device body, a first rotating rod is movably embedded on the right side of the device body, a crank is fixedly installed on the right side of the first rotating rod, a forward rotating screw is fixedly installed on the left side of the first rotating rod, a reverse rotating screw is fixedly installed on the left side of the forward rotating screw, the left outer surface of the reverse rotating screw is movably embedded in the left side of the inner wall of the device body, the outer surfaces of the forward rotating screw and the reverse rotating screw are movably sleeved with sliders, both sides of the inner wall of the device body are opened with sliding grooves, both side surfaces of the two sliders are slidably connected to the inner surface of the sliding groove, and support plates are fixedly installed on the tops of the two sliders.
[0006] As a preferred embodiment, a second rotating rod is movably embedded inside the two support plates, a motor is fixedly installed on the left side of one of the second rotating rods, and a clamping plate is fixedly installed on the opposite sides of the two second rotating rods.
[0007] The technical effect of adopting the above further solution is that when the motor is running, the clamping plate can be driven to rotate through the second rotating rod.
[0008] As a preferred embodiment, rubber pads are fixedly installed on opposite sides of the two clamping plates, two electric push rods are fixedly installed on the rear side of the inner wall of the device body, and connecting plates are fixedly installed on the front sides of the two electric push rods.
[0009] The technical effect of adopting the above further solution is that the slider can drive the rubber pad to move relative to the ceramic disk through structures such as the support plate and the clamping plate, so that the rubber pad fits the outer surface of the ceramic disk and fixes it.
[0010] As a preferred embodiment, a grinding device is fixedly installed on the top of the connecting plate, a filter plate is fixedly embedded on the inner wall of the device body near the bottom side, and a water outlet pipe is fixedly installed on the bottom of the device body.
[0011] The technical effect of adopting the above further solution is that the electric push rod can drive the grinding device to move forward through the connecting plate when extending.
[0012] As a preferred embodiment, a water tank is fixedly installed at the bottom of the water outlet pipe, a first water inlet pipe is fixedly embedded on the left side of the water tank, and a pump is fixedly installed at the other end of the first water inlet pipe.
[0013] The technical effect of adopting the above further solution is that water can be transported to the inside of the water tank through the water outlet pipe for recycling.
[0014] As a preferred implementation, the right side of the pump is fixedly mounted on the left side of the device body, and a second water inlet pipe is fixedly embedded on the top of the pump.
[0015] The technical effect of adopting the above further solution is that the water inside the water tank can be pumped out through the first water inlet pipe when the pump is running.
[0016] As a preferred implementation, a conveying frame is fixedly installed on the other end of the second water inlet pipe, and the conveying frame is fixedly embedded in the interior of the device body.
[0017] The technical effect of adopting the above further solution is that water can enter the interior of the conveying rack through the second water inlet pipe.
[0018] As a preferred embodiment, a plurality of nozzles are fixedly mounted on the bottom of the conveying frame, and a water exchange pipe is fixedly embedded on the top rear side of the water tank.
[0019] The technical effect of adopting the above further solution is: water can be transported to the inside of the nozzle through the conveying rack, and then clean water can be sprayed out through the nozzle.
[0020] Compared with the prior art, the advantages and positive effects of the utility model are:
[0021] 1. When in use, the utility model can not only drive the rubber pad to fit the outer surface of the ceramic disc for fixation through the positive-rotating screw and other structures, but also can adapt to ceramic discs of different sizes and improve the flexibility and versatility of processing, but also can reduce the damage to the ceramic disc during the fixing process, protect its surface from scratches or pressure damage, and ensure the accurate and safe positioning before grinding. At the same time, the ceramic disc can be driven to rotate through mechanisms such as splints, ensuring uniform force and full coverage during the grinding process, avoiding local over-grinding or omissions, improving the uniformity and quality of the surface treatment of the ceramic disc, and solving the problem that there is a lack of effective adjustment mechanism in the prior art, resulting in that this type of grinder can only effectively grind ceramic plates within a certain thickness range and cannot be flexibly adjusted to adapt to products of different thicknesses.
[0022] 2. When the utility model is in use, the clean water sprayed from the nozzle can suppress the dust generated during the grinding process, prevent the dust from escaping into the air, and reduce the pollution to the working environment. At the same time, the sprayed clean water can effectively reduce the surface temperature of the ceramic plate, prevent the ceramic material from being damaged or deformed due to overheating, and ensure the quality and integrity of the ceramic plate. In addition, a closed circulating water system is formed through structures such as a pump, a conveying rack, and a filter plate, which not only reduces the consumption of water resources, realizes the recycling of water resources, but also reduces production costs. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 A rear-view stereoscopic structural diagram of a non-slip and wear-resistant daily-use ceramic component grinder provided by the utility model;
[0024] Figure 2 A schematic diagram of the cutaway three-dimensional structure of a non-slip and wear-resistant daily-use ceramic device grinder provided by the utility model Figure 1 ;
[0025] Figure 3 A schematic diagram of the cutaway three-dimensional structure of a non-slip and wear-resistant daily-use ceramic device grinder provided by the utility model Figure 2 ;
[0026] Figure 4A schematic diagram of the cutaway three-dimensional structure of a non-slip and wear-resistant daily-use ceramic device grinder provided by the utility model Figure 3 .
[0027] Legend:
[0028] 1. Device body; 101. Machine cover; 102. First rotating rod; 103. Crank; 104. Forward screw rod; 105. Reverse screw rod; 106. Slider; 107. Slide; 108. Support plate; 109. Second rotating rod; 110. Motor; 111. Clamp; 112. Rubber cushion; 113. Electric push rod; 114. Connecting plate; 115. Grinding equipment; 2. Filter plate; 201. Water outlet pipe; 202. Water tank; 203. First water inlet pipe; 204. Pump; 205. Second water inlet pipe; 206. Transport rack; 207. Sprinkler; 208. Water exchange pipe. DETAILED DESCRIPTION
[0029] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.
[0030] Example 1, please refer to Figure 1-4The utility model provides a technical solution: a non-slip and wear-resistant daily ceramic device grinding machine, comprising a device body 1, a machine cover 101 is movably sleeved on the top of the device body 1, a first rotating rod 102 is movably embedded on the right side of the device body 1, a crank 103 is fixedly installed on the right side of the first rotating rod 102, a forward screw rod 104 is fixedly installed on the left side of the first rotating rod 102, a reverse screw rod 105 is fixedly installed on the left side of the forward screw rod 104, the left side of the reverse screw rod 105 is movably embedded on the left side of the inner wall of the device body 1, the outer surfaces of the forward screw rod 104 and the reverse screw rod 105 are movably sleeved with a slider 106, both sides of the inner wall of the device body 1 are provided with a slide groove 107, and both side surfaces of the two sliders 106 are slidably connected to the slide On the inner surface of the groove 107, support plates 108 are fixedly installed on the tops of the two sliders 106, and second rotating rods 109 are movably embedded inside the two supporting plates 108, a motor 110 is fixedly installed on the left side of one of the second rotating rods 109, and clamping plates 111 are fixedly installed on the opposite sides of the two second rotating rods 109, and rubber pads 112 are fixedly installed on the opposite sides of the two clamping plates 111, two electric push rods 113 are fixedly installed on the rear side of the inner wall of the device body 1, a connecting plate 114 is fixedly installed on the front side of the two electric push rods 113, and a grinding device 115 is fixedly installed on the top of the connecting plate 114, a filter plate 2 is fixedly embedded on the inner wall of the device body 1 near the bottom side, and a water outlet pipe 201 is fixedly installed on the bottom of the device body 1.
[0031] In this embodiment, the personnel first pick up the ceramic disk and place it inside the device body 1 and at the center of the two rubber pads 112. Then, the forward crank 103 is transmitted to the forward screw rod 104 through the first rotating rod 102, and then the forward screw rod 104 is transmitted to the reverse screw rod 105, so that when the forward screw rod 104 and the reverse screw rod 105 rotate, they drive the slider 106 to perform relative translational movement through the slide groove 107, and then the slider 106 drives the rubber pad 112 to perform relative movement through the support plate 108 and the clamping plate 111 and other structures, so that the rubber pad 112 fits the outer surface of the ceramic disk and fixes it. Then, the electric push rod 113 is started through the power supply system of the electric push rod 113, so that when it is extended, it drives the grinding device 115 to move forward through the connecting plate 114, so that the grinding device 115 can fit the outer surface of the ceramic disk and be powered by the motor 110. The system starts the motor 110 so that when it is running, it can drive the clamping plate 111 to rotate through the second rotating rod 109, and then the clamping plate 111 drives the ceramic disk to rotate through the rubber pad 112, and the external power switch of the grinding device 115 is turned on, the grinding device 115 is started, and then the ceramic disk is ground. Not only can the rubber pad 112 be driven to fit the outer surface of the ceramic disk for fixation through the forward-rotating screw 104 and other structures, it can not only adapt to ceramic disks of different sizes, but also improve the flexibility and versatility of processing, but also reduce damage to the ceramic disk during the fixing process, protect its surface from scratches or pressure damage, and ensure accurate positioning and safety before grinding. At the same time, the ceramic disk can be driven to rotate through the clamping plate 111 and other mechanisms, ensuring uniform force and comprehensive coverage during the grinding process, avoiding local excessive grinding or omissions, and improving the uniformity and quality of the surface treatment of the ceramic disk.
[0032] Embodiment 2, as Figure 1-4 As shown, a water tank 202 is fixedly installed at the bottom of the water outlet pipe 201, a first water inlet pipe 203 is fixedly embedded on the left side of the water tank 202, a pump 204 is fixedly installed on the other end of the first water inlet pipe 203, the right side of the pump 204 is fixedly installed on the left side of the device body 1, a second water inlet pipe 205 is fixedly embedded on the top of the pump 204, a conveying rack 206 is fixedly installed on the other end of the second water inlet pipe 205, the conveying rack 206 is fixedly embedded inside the device body 1, a plurality of nozzles 207 are fixedly installed on the bottom of the conveying rack 206, and a water changing pipe 208 is fixedly embedded on the top rear side of the water tank 202.
[0033] In this embodiment, when the device body 1 is grinding the ceramic disc, the personnel can pick up the machine cover 101 and cover it on the top of the device body 1 to prevent dust from overflowing from the inside of the device body 1, and inject water into the water tank 202 through the water exchange pipe 208, and then start the pump 204 through the power supply system of the pump 204, so that when it is running, the water in the water tank 202 is pumped out through the first water inlet pipe 203 and enters the inside of the pump 204, and is transported by the pump 204 so that the water enters the inside of the conveying rack 206 through the second water inlet pipe 205, and the conveying rack 206 transports the water to the inside of the nozzle 207, and then clean water is sprayed out through the nozzle 207 to reduce dust in the device body 1, and at the same time, the ceramic disc being ground can be cooled to avoid high temperature. The clean water sprayed by the nozzle 207 can suppress the dust generated in the grinding process, prevent the dust from escaping into the air, and reduce the pollution to the working environment. At the same time, the sprayed clean water can effectively reduce the surface temperature of the ceramic disc, prevent the ceramic material from being damaged or deformed due to overheating, and ensure the quality and integrity of the ceramic disc. Moreover, a closed circulating water system is formed through the structures such as the pump 204, the conveying frame 206, and the filter plate 2, which not only reduces the consumption of water resources, realizes the recycling of water resources, but also reduces the production cost.
[0034] Working principle: When in use, the personnel first pick up the ceramic disc and place it inside the device body 1, and place it at the center of the two rubber pads 112. Then, the forward crank 103 is transmitted to the forward screw rod 104 through the first rotating rod 102, and then the forward screw rod 104 is transmitted to the reverse screw rod 105, so that when the forward screw rod 104 and the reverse screw rod 105 rotate, they drive the slider 106 to perform relative translational movement through the slide groove 107, and then the slider 106 drives the rubber pad 112 to perform relative movement through the support plate 108 and the splint 111 and other structures, so that the rubber pad 112 fits the outer surface of the ceramic disc and fixes it. Then, the electric push rod 113 is started through the power supply system of the electric push rod 113, so that when it is extended, it drives the grinding device 115 to move forward through the connecting plate 114, so that the grinding device 115 can fit the outer surface of the ceramic disc and through the motor 110. The power supply system starts the motor 110 so that when it is running, it can drive the splint 111 to rotate through the second rotating rod 109, and then the splint 111 drives the ceramic disk to rotate through the rubber pad 112, and turns on the external power switch of the grinding device 115, starts the grinding device 115, and then grinds the ceramic disk. Not only can the rubber pad 112 be driven to fit the outer surface of the ceramic disk for fixation through the forward-rotating screw 104 and other structures, it can not only adapt to ceramic disks of different sizes, improving the flexibility and versatility of processing, but also reduce damage to the ceramic disk during the fixing process, protect its surface from scratches or pressure damage, and ensure accurate positioning and safety before grinding. At the same time, the ceramic disk can be driven to rotate through the splint 111 and other mechanisms, ensuring uniform force and full coverage during the grinding process, avoiding local excessive grinding or omissions, and improving the uniformity and quality of the surface treatment of the ceramic disk.During use, when the device body 1 is grinding the ceramic disc, the personnel can pick up the machine cover 101 and cover it on the top of the device body 1 to prevent dust from overflowing from the inside of the device body 1, and inject water into the water tank 202 through the water exchange pipe 208, and then start the pump 204 through the power supply system of the pump 204, so that when it is running, the water in the water tank 202 is pumped out through the first water inlet pipe 203 and enters the inside of the pump 204, and is transported by the pump 204, so that the water enters the inside of the conveying rack 206 through the second water inlet pipe 205, and the conveying rack 206 transports the water to the inside of the nozzle 207, and then clean water is sprayed out through the nozzle 207 to reduce dust in the device body 1, and at the same time, the ceramic disc being ground can be cooled to avoid high temperature. The clean water sprayed by the nozzle 207 can suppress the dust generated in the grinding process, prevent the dust from escaping into the air, and reduce the pollution to the working environment. At the same time, the sprayed clean water can effectively reduce the surface temperature of the ceramic disc, prevent the ceramic material from being damaged or deformed due to overheating, and ensure the quality and integrity of the ceramic disc. Moreover, a closed circulating water system is formed through the structures such as the pump 204, the conveying frame 206, and the filter plate 2, which not only reduces the consumption of water resources, realizes the recycling of water resources, but also reduces the production cost.
[0035] The above description is only a preferred embodiment of the present invention and does not limit the present invention in other forms. Any technician familiar with the profession may use the technical content disclosed above to change or modify it into an equivalent embodiment with equivalent changes and apply it to other fields. However, any simple modification, equivalent change and modification made to the above embodiment based on the technical essence of the present invention without departing from the content of the technical solution of the present invention still falls within the protection scope of the technical solution of the present invention.
Claims
1. A non-slip and wear-resistant daily-use ceramic component grinding machine, comprising a device body (1), characterized in that: The top of the device body (1) is movably sleeved with a machine cover (101), the right side of the device body (1) is movably embedded with a first rotating rod (102), the right side of the first rotating rod (102) is fixedly installed with a crank handle (103), the left side of the first rotating rod (102) is fixedly installed with a forward rotating screw rod (104), the left side of the forward rotating screw rod (104) is fixedly installed with a reverse rotating screw rod (105), the left outer surface of the reverse rotating screw rod (105) is movably embedded in the left side of the inner wall of the device body (1), the outer surfaces of the forward rotating screw rod (104) and the reverse rotating screw rod (105) are movably sleeved with a slider (106), both sides of the inner wall of the device body (1) are provided with a slide groove (107), the two side surfaces of the two sliders (106) are slidably connected to the inner surface of the slide groove (107), and the tops of the two sliders (106) are fixedly installed with a support plate (108).
2. The anti-skid and wear-resistant daily-use ceramic component grinding machine according to claim 1, characterized in that: A second rotating rod (109) is movably embedded inside the two support plates (108), a motor (110) is fixedly installed on the left side of one of the second rotating rods (109), and a clamping plate (111) is fixedly installed on the opposite side of the two second rotating rods (109).
3. The anti-skid and wear-resistant daily-use ceramic component grinding machine according to claim 2, characterized in that: A rubber cushion (112) is fixedly mounted on one side opposite to the two clamping plates (111), two electric push rods (113) are fixedly mounted on the rear side of the inner wall of the device body (1), and a connecting plate (114) is fixedly mounted on the front side of the two electric push rods (113).
4. The anti-skid and wear-resistant daily-use ceramic component grinding machine according to claim 3 is characterized by: A grinding device (115) is fixedly mounted on the top of the connecting plate (114), a filter plate (2) is fixedly embedded on the inner wall of the device body (1) near the bottom, and a water outlet pipe (201) is fixedly mounted on the bottom of the device body (1).
5. The anti-skid and wear-resistant daily-use ceramic component grinding machine according to claim 4, characterized in that: A water tank (202) is fixedly mounted at the bottom of the water outlet pipe (201), a first water inlet pipe (203) is fixedly embedded on the left side of the water tank (202), and a pump (204) is fixedly mounted at the other end of the first water inlet pipe (203).
6. The anti-skid and wear-resistant daily-use ceramic component grinding machine according to claim 5, characterized in that: The right side of the pump (204) is fixedly mounted on the left side of the device body (1), and a second water inlet pipe (205) is fixedly embedded on the top of the pump (204).
7. The anti-skid and wear-resistant daily-use ceramic component grinding machine according to claim 6, characterized in that: A conveying frame (206) is fixedly mounted on the other end of the second water inlet pipe (205), and the conveying frame (206) is fixedly embedded in the interior of the device body (1).
8. The anti-skid and wear-resistant daily-use ceramic component grinding machine according to claim 7, characterized in that: A plurality of nozzles (207) are fixedly mounted on the bottom of the conveying frame (206), and a water replacement pipeline (208) is fixedly embedded on the top rear side of the water tank (202).