Vibration hydraulic equipment and method for artificial quartz stone processing
By setting up a cooling filter unit and a vibration assembly in the hydraulic press, the problem of increased lubricant temperature is solved, the equipment life is extended and the forming strength and quality of quartz stone sheets are improved.
Patent Information
- Application Number
- CN202510693812.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-27
- Publication Date
- 2025-08-19
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The lubricating fluid in the transmission shaft increases temperature due to mechanical operation friction, resulting in poor lubrication effect of parts, affecting the equipment life and the quality of quartz stone slabs.
A cooling filtration unit is provided in the hydraulic press, including a circulation assembly, a filter assembly and a cooling assembly. The circulating and filtering scale is carried out by cooling water to maintain the appropriate temperature of the lubricating oil, and the compactness of the quartz stone powder is increased by the vibration assembly.
It extends the service life of hydraulic press parts and hydraulic rods, improves the forming strength and quality of quartz stone slabs, and reduces the economic losses of equipment.
Smart Images

Figure CN120503365A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of quartz stone processing, and in particular to a vibration hydraulic device and method for processing artificial quartz stone. Background Art
[0002] Quartz stone pressing is the core process of quartz stone slab production. Through the synergistic effect of high pressure, high frequency vibration and vacuum environment, quartz particles and resin are tightly combined to form high-density slabs.
[0003] Patent number CN105799040B discloses a vacuum kneading machine for artificial quartz stone slabs, comprising a base, a platen kneading device fixedly mounted on a vacuum box, the lower end of which is connected to the platen, and an electric motor that provides rotation for the eccentric kneading device. The motor transmits the rotation to the drive shaft through a steering box or direct connection. The lower end of the drive shaft is connected to the eccentric block. The rotation of the drive shaft drives the eccentric block, which rotates in the eccentric block seat. The eccentric block drives the platen to perform kneading motion in the X and Y axis directions. The platen kneading device replaces the traditional vibration motor and changes the vibration pressing molding method from vertical to horizontal, making the plate molding surface more uniform and smooth, reducing the plate thickness error, ensuring the quality of the plate, and extending the equipment life. The overall machine power is reduced, and production costs are greatly reduced.
[0004] In the prior art, an electric motor drives a transmission shaft to drive an eccentric block and a pressure plate to press down, thereby pressing the quartz stone slab to improve the quality of the quartz stone slab. However, the electric motor drives the transmission shaft to drive the eccentric block and the pressure plate to press down, and the lubricating fluid in the transmission shaft will increase in temperature due to mechanical operation friction. When the temperature of the lubricating fluid continues to rise, the internal components will not be lubricated better. After long-term use, the wear of the components will be aggravated, and finally a pressure imbalance will occur, causing the quartz stone slab to be pressed and damaged, resulting in certain economic losses. Summary of the Invention
[0005] The purpose of the present invention is to provide a vibration hydraulic device and method for artificial quartz stone processing to solve the following technical problems:
[0006] The lubricating fluid in the drive shaft will cause the temperature of the lubricating fluid to rise due to the friction of mechanical operation. When the temperature of the lubricating fluid continues to rise, the internal components will not be better lubricated.
[0007] The purpose of the present invention can be achieved through the following technical solutions:
[0008] A vibrating hydraulic device for processing artificial quartz stone, comprising a workbench, a support column, a hydraulic press, a hydraulic motor, a hydraulic rod, a limiting plate and a pressure block; and further comprising a cooling filter unit provided in the workbench and the hydraulic press;
[0009] There are four support columns, which are fixed at the four corners of the top of the workbench respectively;
[0010] The hydraulic press is fixedly arranged on the top of the support column;
[0011] The hydraulic rod is fixedly arranged at the bottom of the hydraulic press;
[0012] The hydraulic motor is fixedly arranged on the top of the hydraulic press;
[0013] The limiting plate is fixedly arranged at the bottom of the hydraulic rod, and the limiting plate slides on the supporting column;
[0014] The pressing block is fixedly arranged at the bottom of the limiting plate;
[0015] The cooling filtration unit is arranged in the workbench and the hydraulic press, and includes a driving component, a circulation component, a filtering component, a vibration component and a cooling component; the circulation component is arranged in the workbench; the driving component drives the filtering component to move; the driving component drives the vibration component to vibrate; and the driving component drives the cooling component to rotate.
[0016] Furthermore, the circulation assembly includes a cooling pipe, a bracket, a water inlet pipe, a water outlet pipe, a cooling box and a water pump;
[0017] Among them, there are two brackets, and they are symmetrically fixed in the hydraulic press; the cooling pipe is clamped on the bracket; the cooling box is fixed in the workbench; the water outlet pipe is fixed on the cooling box, and the other end of the water outlet pipe is fixedly connected to the cooling pipe; the water pump is fixed in the cooling box; the water inlet pipe is fixed on the water pump, and the other end of the water inlet pipe is fixedly connected to the cooling pipe.
[0018] Furthermore, the driving assembly includes a cleaning motor, a driving screw and a moving block;
[0019] The filter assembly includes a filter plate, a restriction column and a cleaning block;
[0020] Among them, the driving screw is rotatably arranged in the cooling box; the cleaning motor is fixedly arranged outside the cooling box, and the cleaning motor is connected to the driving screw; the moving block is rotatably arranged on the driving screw; the filter plate is fixedly arranged in the cooling box; the limiting column is fixedly arranged in the cooling box, and the limiting column passes through the moving block; the cleaning block is fixedly arranged at the bottom of the moving block.
[0021] Furthermore, the driving assembly further comprises a driving motor, a driving rod, a first rotating wheel, a belt and a second rotating wheel;
[0022] The cooling assembly includes an air bin, a rotating column and fan blades;
[0023] In which, the driving rod is rotatably arranged in the workbench; the driving motor is fixedly arranged on one side of the workbench, and the driving motor is connected to the driving rod; the first rotating wheel is fixedly arranged on the driving rod; the wind bin is fixedly arranged on the cooling box; the rotating column is rotatably arranged in the wind bin, and one end of the rotating column passes through the wind bin; the second rotating wheel is fixedly arranged on the end of the rotating column extending out of the wind bin; the belt is connected to the first rotating wheel and the second rotating wheel; the fan blades are fixedly arranged on the rotating column.
[0024] Furthermore, the vibration assembly includes a support block, a spring, a moving column, a fixing slot and a knocking block;
[0025] Among them, there are four support blocks, which are symmetrically fixed in the workbench; the moving column is slidably set on the support block; the spring is sleeved on the moving column, and the two ends of the spring are respectively fixedly connected to the support block and the moving column; the fixing groove is fixedly set on the top of the moving column; the knocking block is fixedly set on the driving rod.
[0026] Furthermore, a water baffle is fixedly connected inside the cooling box, and the water baffle is arranged above the wind bin; a fixed plate is fixedly connected to one side of the wind bin, and the other end of the fixed plate is fixedly connected to the workbench; two fixed plates are provided, and are symmetrically arranged on the wind bin.
[0027] Furthermore, a waste trough is fixedly connected to one side of the workbench, and the waste trough is communicated with the cooling box; a water supply pipe is fixedly connected to the cooling box, and the water supply pipe passes through the workbench.
[0028] A vibration hydraulic method for processing artificial quartz stone, the vibration hydraulic method comprising the following steps:
[0029] S1: The staff spreads the quartz stone powder flat in the mold, then places the mold into the fixed groove to fix it, and then uses the hydraulic press to drive the hydraulic rod to extend and retract, driving the limiting plate and the pressing block to move downward, thus pressing the quartz stone powder in the mold;
[0030] S2: The pressed gap driving rod rotates to drive the striking block to rotate, so that the fixed slot is lifted and then the fixed slot falls quickly to hit the supporting block to vibrate;
[0031] S3: When the hydraulic press is working, the water pump in the cooling box will pump cooling water into the water inlet pipe, and then send it to the cooling pipe to cool the lubricating fluid in the hydraulic press. The coolant that has absorbed heat will then return to the cooling box through the water outlet pipe, and the rotating column will then rotate to drive the fan blades to cool the coolant.
[0032] S4: The coolant enters the cooling box and passes through the filter plate, which filters the scale in the coolant. The cleaning block then sends the scale to the waste tank and collects it after processing.
[0033] Beneficial effects of the present invention:
[0034] (1) When the hydraulic press starts working, the temperature of the lubricating oil inside the hydraulic press will rise, so the circulation component set in the hydraulic press will work, allowing cooling water to pass through the hydraulic press. The cooling water passing through the hydraulic press will absorb and take out the temperature of the lubricating oil, so that the lubricating oil in the hydraulic press can be cooled, which can better enable the parts in the hydraulic press to operate and extend the service life of the parts and hydraulic rods;
[0035] (2) The filter assembly is driven by the driving assembly to move, and the filter assembly filters the scale precipitated in the cooling water and discharges the scale from the workbench for unified collection after the work is completed. This setting can prevent the precipitated scale from clogging the pipeline, thereby affecting the cooling work of the lubricating oil;
[0036] (3) When the cooling water circulates and absorbs heat, the driving component will drive the cooling component to rotate. The rotating cooling component will cool down the cooling water that absorbs heat, allowing the cooling water to cool down quickly and then enter the hydraulic press to absorb the heat generated by the lubricating oil;
[0037] (4) When the hydraulic rod drives the pressing block to press the quartz powder, the pressing block will be lifted at intervals. At this time, the driving component will drive the vibration component to vibrate, and the vibration component will vibrate the mold placed on the workbench to make the quartz powder in the mold more dense. Then the hydraulic rod will drive the pressing block to descend and press. The reciprocating pressing makes the pressed quartz object stronger. BRIEF DESCRIPTION OF THE DRAWINGS
[0038] The present invention will be further described below with reference to the accompanying drawings.
[0039] Figure 1 It is a front perspective view of the vibrating hydraulic device of the present invention;
[0040] Figure 2 is a cross-sectional view of the hydraulic press of the present invention;
[0041] Figure 3 A perspective view of a circulation assembly according to the present invention;
[0042] Figure 4 is a perspective view of the filter assembly of the present invention;
[0043] Figure 5 A perspective view of the cooling assembly of the present invention;
[0044] Figure 6 is a three-dimensional diagram of the vibration component of the present invention;
[0045] Figure 7 is a cross-sectional view of the workbench of the present invention;
[0046] Figure 8 It is a rear perspective view of the vibrating hydraulic equipment of the present invention.
[0047] Description of the drawings: 1. Workbench; 2. Support column; 3. Hydraulic press; 4. Hydraulic motor; 5. Hydraulic rod; 6. Limiting plate; 7. Pressing block; 8. Fixed trough; 9. Waste trough; 10. Water outlet pipe; 11. Water inlet pipe; 12. Driving motor; 13. Water supply pipe; 14. Cooling pipe; 15. Bracket; 16. Spring; 17. Moving column; 18. Driving rod; 19. Knocking block; 20. Driving screw; 21. Limiting column; 22. Moving block; 23. Cleaning block; 24. Filter plate; 25. Cooling box; 26. Water pump; 27. First rotor; 28. Belt; 29. Second rotor; 30. Fixed plate; 31. Rotating column; 32. Fan blade; 33. Wind bin; 34. Water baffle; 35. Support block; 36. Cleaning motor; 37. Circulation component; 38. Filter component; 39. Cooling component; 40. Vibration component. DETAILED DESCRIPTION
[0048] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making any creative efforts shall fall within the scope of protection of the present invention.
[0049] See also Figures 1-8 As shown, the present invention is a vibrating hydraulic device for processing artificial quartz stone, comprising a workbench 1, a support column 2, a hydraulic press 3, a hydraulic motor 4, a hydraulic rod 5, a limiting plate 6 and a pressure block 7; and further comprising a cooling filter unit provided in the workbench 1 and the hydraulic press 3;
[0050] There are four support columns 2, which are fixed at the four corners of the top of the workbench 1;
[0051] The hydraulic press 3 is fixedly arranged on the top of the support column 2;
[0052] The hydraulic rod 5 is fixedly arranged at the bottom of the hydraulic press 3;
[0053] The hydraulic motor 4 is fixedly arranged on the top of the hydraulic press 3;
[0054] The limiting plate 6 is fixedly arranged at the bottom of the hydraulic rod 5, and the limiting plate 6 slides on the supporting column 2;
[0055] The pressing block 7 is fixedly arranged at the bottom of the limiting plate 6;
[0056] The cooling and filtering unit is arranged in the workbench 1 and the hydraulic press 3, and includes a driving component, a circulation component 37, a filtering component 38, a vibration component 40 and a cooling component 39; the circulation component 37 is arranged in the workbench 1; the driving component drives the filtering component 38 to move; the driving component drives the vibration component 40 to vibrate; and the driving component drives the cooling component 39 to rotate;
[0057] The staff puts the quartz stone crushed into powder into the mold, and then places the mold on the workbench 1. The hydraulic motor 4 drives the hydraulic press 3 to rotate, so that the hydraulic rod 5 moves up and down. The lifting of the hydraulic rod 5 drives the limiting plate 6 and the pressing block 7 to move up and down, and the limiting plate 6 slides on the support column 2, so that the limiting plate 6 and the pressing block 7 can move vertically up and down.
[0058] When the hydraulic press 3 starts working, the temperature of the lubricating oil inside the hydraulic press 3 will rise, so the circulation component 37 set in the hydraulic press 3 will work to allow cooling water to pass through the hydraulic press 3. The cooling water passing through the hydraulic press 3 will absorb the temperature of the lubricating oil and bring it out. In this way, the lubricating oil in the hydraulic press 3 is cooled, which can better enable the parts in the hydraulic press 3 to operate and extend the service life of the parts and the hydraulic rod 5.
[0059] Because the cooling water used is all tap water, there are some mineral elements in these water bodies. When the cooling water absorbs the temperature of the lubricating oil, the minerals in the water body will precipitate to form scale. The circulation component 37 keeps running to flush the water, and the scale may not accumulate in the pipe. When the equipment stops running, the precipitated scale will settle inside the pipe, thereby blocking the cooling pipe 14. Therefore, when cooling the lubricating oil, the cooling water is allowed to pass through the filter component 38, and the drive component drives the filter component 38 to move. The filter component 38 filters the scale precipitated in the cooling water and discharges the scale from the workbench 1 for unified collection after the work is completed. This arrangement can prevent the precipitated scale from clogging the pipe, thereby affecting the cooling work of the lubricating oil;
[0060] When the cooling water circulates and absorbs heat, the driving assembly drives the cooling assembly 39 to rotate. The rotating cooling assembly 39 cools down the cooling water that absorbs heat, allowing the cooling water to cool down quickly and then enter the hydraulic press 3 to absorb the heat generated by the lubricating oil.
[0061] When the hydraulic rod 5 drives the pressing block 7 to press the quartz stone powder, the pressing block 7 will be lifted at intervals. At this time, the driving component will drive the vibration component 40 to vibrate. The vibration component 40 will vibrate the mold placed on the workbench 1 to make the quartz stone powder in the mold more compact. Then the hydraulic rod 5 will drive the pressing block 7 to descend for pressing. The reciprocating pressing makes the strength of the pressed quartz stone object higher.
[0062] See also Figure 2 、 Figure 3 、 Figure 7 and Figure 8 As shown, the circulation assembly 37 includes a cooling pipe 14, a bracket 15, a water inlet pipe 11, a water outlet pipe 10, a cooling box 25 and a water pump 26;
[0063] Two brackets 15 are provided and symmetrically fixedly arranged in the hydraulic press 3; the cooling pipe 14 is clamped on the bracket 15; the cooling box 25 is fixedly arranged in the workbench 1; the water outlet pipe 10 is fixedly arranged on the cooling box 25, and the other end of the water outlet pipe 10 is fixedly connected to the cooling pipe 14; the water pump 26 is fixedly arranged in the cooling box 25; the water inlet pipe 11 is fixedly arranged on the water pump 26, and the other end of the water inlet pipe 11 is fixedly connected to the cooling pipe 14;
[0064] The cooling water is drawn into the water inlet pipe 11 through the water pump 26 in the cooling box 25, and then enters the cooling pipe 14 from the water inlet pipe 11. The bracket 15 in the hydraulic press 3 supports the cooling pipe 14 to prevent the cooling pipe 14 from lacking support and fixation in the hydraulic press 3. After the cooling water absorbs heat in the cooling pipe 14, it is discharged from the water outlet pipe 10 into the cooling box 25. There is a certain height difference between the water outlet pipe 10 and the water pump 26. This arrangement is to ensure that when the cooling water absorbs heat and enters the cooling box 25 from the water outlet pipe 10, the cooling water can quickly dissipate heat through the height difference, thereby lowering the water temperature of the cooling water.
[0065] See also Figure 2 、 Figure 4 and Figure 7 As shown, the drive assembly includes a cleaning motor 36, a drive screw 20 and a moving block 22;
[0066] The filter assembly 38 includes a filter plate 24, a restriction column 21 and a cleaning block 23;
[0067] The drive screw 20 is rotatably disposed in the cooling box 25; the cleaning motor 36 is fixedly disposed outside the cooling box 25 and is in communication with the drive screw 20; the moving block 22 is rotatably disposed on the drive screw 20; the filter plate 24 is fixedly disposed in the cooling box 25; the limiting column 21 is fixedly disposed in the cooling box 25 and passes through the moving block 22; the cleaning block 23 is fixedly disposed at the bottom of the moving block 22;
[0068] The driving screw 20 is driven by the cleaning motor 36 to rotate, and the rotating driving screw 20 will drive the moving block 22 to move. The moving moving block 22 will allow the cleaning block 23 to scrape on the filter plate 24. Because the cooling water will fall on the filter plate 24 after coming out of the water outlet pipe 10, the filter plate 24 will filter the precipitated scale to prevent the scale from clogging the filter plate 24. Therefore, the filter plate 24 is cleaned by the cleaning block 23 so that the cooling water can pass through the filter plate 24 smoothly. The filter plate 24 can also break up the water flow and disperse the cooling water into more small water droplets, which can increase the contact area between the cooling water and the air, so that the cooling water can dissipate heat faster. When the moving block 22 moves, the limiting column 21 is to prevent the moving block 22 from flipping on the driving screw 20, so the limiting block limits the moving block 22, so that the moving block 22 can only move forward and backward and will not rotate with the thread on the driving screw 20.
[0069] See also Figure 2 、 Figure 5 and Figure 8 As shown, the driving assembly further includes a driving motor 12, a driving rod 18, a first rotating wheel 27, a belt 28 and a second rotating wheel 29;
[0070] The cooling assembly 39 includes an air bin 33, a rotating column 31 and fan blades 32;
[0071] The drive rod 18 is rotatably arranged in the workbench 1; the drive motor 12 is fixedly arranged on one side of the workbench 1, and the drive motor 12 is connected to the drive rod 18; the first rotating wheel 27 is fixedly arranged on the drive rod 18; the air silo 33 is fixedly arranged on the cooling box 25; the rotating column 31 is rotatably arranged in the air silo 33, and one end of the rotating column 31 passes through the air silo 33; the second rotating wheel 29 is fixedly arranged on the end of the rotating column 31 extending out of the air silo 33; the belt 28 is sleeved on the first rotating wheel 27 and the second rotating wheel 29; the fan blade 32 is fixedly arranged on the rotating column 31;
[0072] The driving motor 12 drives the driving rod 18 to rotate, and the rotating driving rod 18 drives the first rotating wheel 27 to rotate, and the first rotating wheel 27 drives the belt 28 and the second rotating wheel 29 to rotate, and the second rotating wheel 29 drives the rotating column 31 to rotate, so that the fan blades 32 in the wind bin 33 rotate, and the fan blades 32 quickly blow the external airflow into the cooling box 25 to cool the cooling water in the cooling box 25.
[0073] See also Figure 2 、 Figure 6 and Figure 7 As shown, the vibration assembly 40 includes a support block 35, a spring 16, a moving column 17, a fixing slot 8 and a knocking block 19;
[0074] Among them, there are four support blocks 35, which are symmetrically fixed in the workbench 1; the moving column 17 is slidably set on the support blocks 35; the spring 16 is sleeved on the moving column 17, and the two ends of the spring 16 are respectively fixedly connected to the support block 35 and the moving column 17; the fixing groove 8 is fixedly set on the top of the moving column 17; the knocking block 19 is fixedly set on the driving rod 18;
[0075] The driving rod 18 is rotated to drive the striking block 19 to rotate. The rotating striking block 19 causes the fixed groove 8 and the movable block 22 to move upward, and compresses the spring 16 on the movable column 17. When the striking block 19 is separated from the fixed groove 8, the fixed groove 8 is pulled downward by the spring 16. The downward moving fixed groove 8 collides with the support block 35 to generate vibration, and the reciprocating operation is performed in sequence to vibrate and compact the mold and quartz stone powder placed in the fixed groove 8.
[0076] See also Figure 2 As shown, a water baffle 34 is fixedly connected to the cooling box 25, and the water baffle 34 is arranged above the wind bin 33; a fixing plate 30 is fixedly connected to one side of the wind bin 33, and the other end of the fixing plate 30 is fixedly connected to the workbench 1; two fixing plates 30 are provided and are symmetrically arranged on the wind bin 33;
[0077] When the cooling water flows down from the filter plate 24, in order to prevent the cooling water from dripping directly into the air bin 33, a water baffle 34 is fixedly connected above the air bin 33. The water baffle 34 can block the cooling water and prevent the cooling water from dripping into the air bin 33. The fixed plate 30 provided in the air bin 33 is to firmly support the air bin 33, so that the air bin 33 is more stable during operation.
[0078] See also Figure 2 、 Figure 7 and Figure 8As shown, a waste trough 9 is fixedly connected to one side of the workbench 1, and the waste trough 9 is communicated with the cooling box 25; a water supply pipe 13 is fixedly connected to the cooling box 25, and the water supply pipe 13 passes through the workbench 1;
[0079] The cleaning block 23 cleans the scale on the filter plate 24, and then pushes them all into the waste tank 9. After the processing is completed, they are collected and cleaned uniformly. The water supply pipe 13 on the cooling box 25 replenishes cooling water into the cooling box 25 in time to avoid the cooling water from volatilizing due to excessive temperature and causing a lack of cooling water.
[0080] See also Figures 1 to 8 As shown, a vibration hydraulic method for processing artificial quartz stone includes the following steps:
[0081] S1: The staff spreads the quartz powder in the mold, and then places the mold into the fixing groove 8 to fix it. Then the hydraulic press 3 drives the hydraulic rod 5 to extend and retract, driving the limiting plate 6 and the pressing block 7 to descend, and pressing the quartz powder in the mold;
[0082] S2: The compressed gap driving rod 18 rotates and drives the knocking block 19 to rotate, so that the fixed groove 8 is lifted and then the fixed groove 8 falls quickly to hit the support block 35 to vibrate;
[0083] S3: When the hydraulic press 3 is working, the water pump 26 in the cooling box 25 pumps cooling water into the water inlet pipe 11, and then sends it to the cooling pipe 14 to cool the lubricating fluid in the hydraulic press 3. The cooling fluid that has absorbed heat then returns to the cooling box 25 through the water outlet pipe 10, and is then rotated by the rotating column 31 to drive the fan blades 32 to cool the cooling fluid.
[0084] S4: The coolant enters the cooling box 25 and passes through the filter plate 24, which filters the scale in the coolant. The cleaning block 23 then sends the scale to the waste tank 9 for unified collection after the processing is completed.
[0085] The working principle of the present invention is as follows: the staff puts the quartz stone crushed into powder into the mold, and then places the mold on the workbench 1. The hydraulic motor 4 drives the hydraulic press 3 to rotate, thereby causing the hydraulic rod 5 to move up and down. The lifting of the hydraulic rod 5 drives the limiting plate 6 and the pressing block 7 to move up and down, and the limiting plate 6 slides on the support column 2, which can ensure that the limiting plate 6 and the pressing block 7 can move vertically up and down.
[0086] When the hydraulic press 3 starts working, the temperature of the lubricating oil inside the hydraulic press 3 will rise, so the circulation component 37 set in the hydraulic press 3 will work to allow cooling water to pass through the hydraulic press 3. The cooling water passing through the hydraulic press 3 will absorb the temperature of the lubricating oil and bring it out. In this way, the lubricating oil in the hydraulic press 3 is cooled, which can better enable the parts in the hydraulic press 3 to operate and extend the service life of the parts and the hydraulic rod 5.
[0087] Because the cooling water used is all tap water, there are some mineral elements in these water bodies. When the cooling water absorbs the temperature of the lubricating oil, the minerals in the water body will precipitate to form scale. The circulation component 37 keeps running to flush the water, and the scale may not accumulate in the pipe. When the equipment stops running, the precipitated scale will settle inside the pipe, thereby blocking the cooling pipe 14. Therefore, when cooling the lubricating oil, the cooling water is allowed to pass through the filter component 38, and the drive component drives the filter component 38 to move. The filter component 38 filters the scale precipitated in the cooling water and discharges the scale from the workbench 1 for unified collection after the work is completed. This arrangement can prevent the precipitated scale from clogging the pipe, thereby affecting the cooling work of the lubricating oil;
[0088] When the cooling water circulates and absorbs heat, the driving assembly drives the cooling assembly 39 to rotate. The rotating cooling assembly 39 cools down the cooling water that absorbs heat, allowing the cooling water to cool down quickly and then enter the hydraulic press 3 to absorb the heat generated by the lubricating oil.
[0089] When the hydraulic rod 5 drives the pressing block 7 to press the quartz stone powder, the pressing block 7 will be lifted at intervals. At this time, the driving component will drive the vibration component 40 to vibrate. The vibration component 40 will vibrate the mold placed on the workbench 1 to make the quartz stone powder in the mold more compact. Then the hydraulic rod 5 will drive the pressing block 7 to descend for pressing. The reciprocating pressing makes the strength of the pressed quartz stone object higher.
[0090] The above is a detailed description of an embodiment of the present invention. However, the content described is only a preferred embodiment of the present invention and should not be considered to limit the scope of the present invention. All equivalent changes and improvements made within the scope of the present invention should still fall within the scope of the patent coverage of the present invention.
Claims
1. A vibrating hydraulic device for processing artificial quartz stone, comprising a workbench (1), a support column (2), a hydraulic press (3), a hydraulic motor (4), a hydraulic rod (5), a limiting plate (6) and a pressure block (7); characterized in that: It also includes a cooling filter unit arranged in the workbench (1) and the hydraulic press (3); Four support columns (2) are provided, and are fixedly arranged at the four corners of the top of the workbench (1); The hydraulic press (3) is fixedly arranged on the top of the support column (2); The hydraulic rod (5) is fixedly arranged at the bottom of the hydraulic press (3); The hydraulic motor (4) is fixedly arranged on the top of the hydraulic press (3); The limiting plate (6) is fixedly arranged at the bottom of the hydraulic rod (5), and the limiting plate (6) slides on the supporting column (2); The pressing block (7) is fixedly arranged at the bottom of the limiting plate (6); The cooling filter unit is arranged in the workbench (1) and the hydraulic press (3), and comprises a driving component, a circulation component (37), a filtering component (38), a vibration component (40) and a cooling component (39); the circulation component (37) is arranged in the workbench (1); the driving component drives the filtering component (38) to move; the driving component drives the vibration component (40) to vibrate; and the driving component drives the cooling component (39) to rotate.
2. The vibration hydraulic equipment for artificial quartz stone processing according to claim 1, characterized in that: The circulation assembly (37) includes a cooling pipe (14), a bracket (15), a water inlet pipe (11), a water outlet pipe (10), a cooling box (25) and a water pump (26); Wherein, two brackets (15) are provided and symmetrically fixedly arranged in the hydraulic press (3); the cooling pipe (14) is clamped on the bracket (15); the cooling box (25) is fixedly arranged in the workbench (1); the water outlet pipe (10) is fixedly arranged on the cooling box (25), and the other end of the water outlet pipe (10) is fixedly connected to the cooling pipe (14); the water pump (26) is fixedly arranged in the cooling box (25); the water inlet pipe (11) is fixedly arranged on the water pump (26), and the other end of the water inlet pipe (11) is fixedly connected to the cooling pipe (14).
3. The vibration hydraulic equipment for artificial quartz stone processing according to claim 2, characterized in that: The drive assembly includes a cleaning motor (36), a drive screw (20) and a moving block (22); The filter assembly (38) includes a filter plate (24), a restriction column (21) and a cleaning block (23); The driving screw (20) is rotatably arranged in the cooling box (25); the cleaning motor (36) is fixedly arranged outside the cooling box (25), and the cleaning motor (36) is communicated with the driving screw (20); the moving block (22) is rotatably arranged on the driving screw (20); the filter plate (24) is fixedly arranged in the cooling box (25); the limiting column (21) is fixedly arranged in the cooling box (25), and the limiting column (21) passes through the moving block (22); and the cleaning block (23) is fixedly arranged at the bottom of the moving block (22).
4. The vibrating hydraulic equipment for processing artificial quartz stone according to claim 3, characterized in that: The driving assembly further comprises a driving motor (12), a driving rod (18), a first rotating wheel (27), a belt (28) and a second rotating wheel (29); The cooling assembly (39) includes an air silo (33), a rotating column (31) and fan blades (32); wherein the driving rod (18) is rotatably arranged in the workbench (1); the driving motor (12) is fixedly arranged on one side of the workbench (1), and the driving motor (12) is connected to the driving rod (18); the first rotating wheel (27) is fixedly arranged on the driving rod (18); the wind bin (33) is fixedly arranged on the cooling box (25); the rotating column (31) is rotatably arranged in the wind bin (33), and one end of the rotating column (31) passes through the wind bin (33); the second rotating wheel (29) is fixedly arranged on one end of the rotating column (31) extending out of the wind bin (33); the belt (28) is sleeved on the first rotating wheel (27) and the second rotating wheel (29); and the fan blade (32) is fixedly arranged on the rotating column (31).
5. The vibration hydraulic equipment for artificial quartz stone processing according to claim 4, characterized in that: The vibration assembly (40) includes a support block (35), a spring (16), a moving column (17), a fixing groove (8) and a knocking block (19); Wherein, four support blocks (35) are provided and symmetrically fixedly arranged in the workbench (1); the moving column (17) is slidably arranged on the support block (35); the spring (16) is sleeved on the moving column (17), and the two ends of the spring (16) are fixedly connected to the support block (35) and the moving column (17) respectively; the fixing groove (8) is fixedly arranged on the top of the moving column (17); and the knocking block (19) is fixedly arranged on the driving rod (18).
6. The vibration hydraulic equipment for processing artificial quartz stone according to claim 5, characterized in that: A water baffle (34) is fixedly connected inside the cooling box (25), and the water baffle (34) is arranged above the wind bin (33); a fixed plate (30) is fixedly connected to one side of the wind bin (33), and the other end of the fixed plate (30) is fixedly connected to the workbench (1); two fixed plates (30) are provided and are symmetrically arranged on the wind bin (33).
7. The vibration hydraulic equipment for artificial quartz stone processing according to claim 6, characterized in that: A waste trough (9) is fixedly connected to one side of the workbench (1), and the waste trough (9) is communicated with the cooling box (25); a water supply pipe (13) is fixedly connected to the cooling box (25), and the water supply pipe (13) passes through the workbench (1).
8. A vibration hydraulic method for processing artificial quartz stone, using the vibration hydraulic equipment for processing artificial quartz stone according to claim 7, characterized in that: The vibration hydraulic method comprises the following steps: S1: The staff spreads the quartz powder in the mold, and then places the mold in the fixing groove (8) to fix it. Then the hydraulic press (3) drives the hydraulic rod (5) to extend and retract, driving the limiting plate (6) and the pressing block (7) to descend, thereby pressing the quartz powder in the mold; S2: The pressed gap driving rod (18) rotates and drives the knocking block (19) to rotate, so that the fixed groove (8) is lifted and then the fixed groove (8) falls quickly and hits the supporting block (35) to vibrate; S3: When the hydraulic press (3) is working, the water pump (26) in the cooling box (25) pumps cooling water into the water inlet pipe (11), and then sends the cooling water from the water inlet pipe (11) to the cooling pipe (14), thereby cooling the lubricating fluid in the hydraulic press (3). The cooling fluid that has absorbed heat then returns to the cooling box (25) through the water outlet pipe (10), and then the rotating column (31) rotates to drive the fan blades (32) to cool the cooling fluid. S4: The coolant enters the cooling box (25) and passes through the filter plate (24). The filter plate (24) filters the scale in the coolant, and then the cleaning block (23) sends the scale to the waste tank (9) to be collected after the processing is completed.
Citation Information
Patent Citations
Vacuum pressing and molding machine for artificial quartz stone slabs
CN105799040B