Pug slurrying equipment
Through the combined driving method of main drive motor, reducer and belt, combined with bearing seat and discharge mechanism, the high-precision gear transmission problem of clay slurry equipment in the ceramic industry is solved, and the low-cost, low-noise and high-efficiency clay slurry effect is achieved.
Patent Information
- Application Number
- CN202421672822.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-15
- Publication Date
- 2025-08-08
- Estimated Expiration
- 2034-07-15
AI Technical Summary
The cylinder transmission method of clay slurry equipment in the existing ceramic industry requires high-precision gears, which leads to high processing difficulty and high maintenance costs, and the transmission method is prone to damage.
The combined driving method of main drive motor, main reducer, auxiliary drive motor, auxiliary reducer and belt is adopted, combined with the bearing seat and feeding mechanism, the installation cost and noise are reduced through belt transmission, and high-efficiency slurry is achieved through large reduction ratio and small reduction ratio switching.
It reduces equipment installation and maintenance costs, reduces noise, improves slurry efficiency, and realizes high-efficiency slurry slurry through switching of large torque and high speed.
Smart Images

Figure CN223199258U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of ceramics, in particular to a mud material slurrying device. Background Art
[0002] The raw materials of the ceramic industry and the sanitary ware industry are made by slurrying the soil into mud and then carrying out subsequent processing. When the mud is slurried into mud, the cylinder is driven by a driving motor to rotate and balls are placed in the cylinder to continuously impact the mud.
[0003] In the prior art, when the cylinder is driven to rotate, gears are usually set on the outer wall of the cylinder for transmission. However, the teeth of the gears require high processing precision, which makes the processing difficult. At the same time, the transmission method of the gears requires high maintenance costs when parts are damaged. Utility Model Content
[0004] In order to solve at least one problem existing in the above-mentioned prior art, according to one aspect of the utility model, a mud slurrying equipment is provided, including: a cylinder for accommodating mud and slurrying the mud; a feeding mechanism, which is arranged at the feeding end of the cylinder, and is used to convey mud to the cylinder; a bearing seat, the bearing seat including two, which are arranged at both ends of the cylinder along the axial direction of the cylinder; a driving mechanism, including a main driving motor, a main reducer, an auxiliary driving motor, an auxiliary reducer, a belt and a pulley, the main reducer is connected to the output shaft of the main driving motor, the auxiliary reducer is connected to the output shaft of the auxiliary driving motor and is connected to the main reducer, the pulley is connected to the main reducer, and the belt is respectively arranged on the outside of the cylinder and the pulley; a discharging mechanism, the discharging mechanism is located at the discharging end of the cylinder, and is used to classify and collect the slurry and impurities flowing out of the cylinder.
[0005] In some embodiments, the feeding mechanism includes a feeding hopper, a conveying pipe and a liner. The feeding hopper is connected to the conveying pipe. The liner is arranged in the conveying pipe and corresponds to the feeding port of the feeding hopper. The liner is detachably connected to the conveying pipe.
[0006] In some embodiments, the conveying pipe includes an inclined portion and a horizontal portion arranged at an obtuse angle, the horizontal portion has an extending section extending into the cylinder, and the inclined portion is connected to the feed hopper;
[0007] The mud material slurrying equipment further comprises an anti-overflow structure, which is arranged at the feed end of the cylinder and connected to the extending section, and is used to prevent the overflow of mud.
[0008] In some embodiments, the anti-overflow structure includes a water retaining ring, a water retaining plate, and a first sealing ring;
[0009] The water retaining ring is sleeved on the outer wall of the extending section close to the feed end;
[0010] The water baffle is connected to the feed end;
[0011] The first sealing ring is connected to the water baffle, extends toward the center of the cylinder, and abuts against the extending section.
[0012] In some embodiments, the overflow prevention structure also includes a water retaining plate, which is connected to the feed end and located outside the cylinder, including a constant diameter section and a variable diameter section, the constant diameter section is connected to the feed end, and the diameter of the variable diameter section gradually increases in the direction away from the feed end.
[0013] In some embodiments, the cylinder body includes an outer cylinder, an inner liner and a plurality of lifting plates provided on the inner wall of the outer cylinder. The lifting plates are arranged at intervals along the circumference of the outer cylinder, and each of the lifting plates extends along the axial direction of the outer cylinder.
[0014] In some embodiments, the mud slurrying equipment further includes two oil supply mechanisms, one of the oil supply mechanisms is connected to one of the bearing seats, and is used to deliver lubricating oil to the corresponding bearing seat.
[0015] In some embodiments, the bearing seat includes a first mounting seat, an end cover, a pressure cover, a bearing, a second sealing ring, and a third sealing ring;
[0016] The first mounting seat is connected to the side of the cylinder, and the bearing is sleeved outside the cylinder and accommodated in the first mounting seat;
[0017] The end cap is connected to the first mounting seat;
[0018] The gland is connected to the end of the cylinder and abuts against the bearing;
[0019] The second sealing ring is provided between the bearing and the gland;
[0020] The third sealing ring is arranged between the end cover and the pressure cover.
[0021] In some embodiments, the discharging mechanism includes a drum screen and spiral sheets disposed in the drum screen, and the drum screen is connected to the discharging end of the cylinder.
[0022] In some embodiments, the mud slurrying equipment further comprises a grid mesh, which is provided at the discharge end of the cylinder body to block the outflow of stones and balls, and an outflow hole is provided at the center of the grid mesh.
[0023] In summary, the mud slurrying equipment provided by the utility model has the following technical effects:
[0024] The mud material to be broken up is conveyed to the cylinder through the feeding mechanism, and the cylinder is driven to rotate by the driving mechanism to break up the mud material into slurry. When the cylinder rotates, bearing seats are set at both ends of the cylinder to enable the cylinder to rotate smoothly. A discharging mechanism is set at the discharging end of the cylinder, and when the cylinder discharges the mud, the slurry and impurities can be classified and collected, thereby facilitating the subsequent production of the mud. When the cylinder is driven, the cylinder is driven to rotate by means of a belt. Since the installation cost of the belt is low, the mud slurrying equipment can have a low installation cost and is convenient for the later Maintenance, at the same time, through the belt drive mode, it can have lower noise, and is further provided with a main drive motor, a main reducer, an auxiliary drive motor, and an auxiliary reducer. When the cylinder is driven to rotate, it is driven by the auxiliary drive motor, the auxiliary reducer and the main reducer. Since it has a larger reduction ratio at this time, it can provide a larger torque to the cylinder, which is convenient for driving the cylinder to rotate smoothly; after completing the drive of the cylinder, it can be switched to the main drive motor and the main reducer for driving. At this time, it has a smaller reduction ratio, which can make the cylinder have a higher rotation speed, so as to improve the efficiency of mud slurrying. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Figure 1 This is a front view of the mud slurrying equipment according to an embodiment of the present utility model;
[0026] Figure 2 for Figure 1 A top view of the mud slurrying equipment;
[0027] Figure 3 for Figure 1 Schematic diagram of the structure of the cylinder;
[0028] Figure 4 for Figure 1 The enlarged schematic diagram of point I in the middle;
[0029] Figure 5 for Figure 1 Structural diagram of the bearing seat and anti-overflow structure;
[0030] Figure 6 for Figure 1 Schematic diagram of the structure of the end of the cylinder.
[0031] Figure: 100-slurry slurrying equipment, 10-cylinder, 11-feed end, 12-discharge end, 13-outer cylinder, 14-inner lining, 15-lifting plate, 20-feeding mechanism, 21-feed hopper, 211-dispensing port, 22-conveying pipe, 221-inclined portion, 222-horizontal portion, 2221-insertion section, 23-liner, 30-bearing seat, 31-first mounting seat, 32-end cover, 33-bearing, 34-second sealing ring, 35-third sealing ring Ring, 36- gland, 40- driving mechanism, 41- main driving motor, 42- main reducer, 43- auxiliary driving motor, 44- auxiliary reducer, 45- belt, 46- pulley, 50- discharging mechanism, 51- drum screen, 52- spiral sheet, 60- anti-overflow structure, 61- water retaining ring, 62- water retaining plate, 63- first sealing ring, 64- water retaining plate, 641- constant diameter section, 642- variable diameter section, 70- oil supply mechanism, 80- grid net, 81- outflow hole. DETAILED DESCRIPTION
[0032] For better understanding and implementation, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings in the embodiments of the present invention.
[0033] In the description of the present invention, it should be noted that the terms "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", etc., indicating directions or positional relationships, are based on the directions or positional relationships shown in the accompanying drawings. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific direction, be constructed and operated in a specific direction. Therefore, they cannot be understood as limitations on the present invention.
[0034] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as those commonly understood by those skilled in the art in the art of the present invention. The terms used herein in the specification of the present invention are only for the purpose of describing specific embodiments and are not intended to limit the present invention.
[0035] The present invention will be further described in detail below with reference to the accompanying drawings.
[0036] See also Figures 1 to 6 The mud slurrying equipment 100 provided in an embodiment of the present utility model includes a cylinder 10, a feeding mechanism 20, a bearing seat 30, a driving mechanism 40 and a discharging mechanism 50.
[0037] Among them, see Figure 1 and Figure 2The cylinder 10 is used to accommodate mud and slurry the mud; the feeding mechanism 20 is arranged at the feeding end 11 of the cylinder 10, for conveying mud to the cylinder 10; the bearing seat 30 includes two, which are arranged at both ends of the cylinder 10 along the axial direction of the cylinder 10; the driving mechanism 40 includes a main driving motor 41, a main reducer 42, an auxiliary driving motor 43, an auxiliary reducer 44, a belt 45 and a pulley 46, the main reducer 42 is connected to the output shaft of the main driving motor 41, the auxiliary reducer 44 is connected to the output shaft of the auxiliary driving motor 43, and is connected to the input end of the main reducer 42, the pulley 46 is connected to the main reducer 42, and the belt 45 is respectively arranged on the outside of the cylinder 10 and the pulley 46; the discharging mechanism 50 is located at the discharging end 12 of the cylinder 10, for classifying and collecting the slurry and impurities flowing out of the cylinder 10.
[0038] The above-mentioned mud material slurrying equipment 100 conveys the mud material to be broken up to the cylinder 10 through the feeding mechanism 20, and drives the cylinder 10 to rotate through the driving mechanism 40 to break up the mud material into mud. When the cylinder 10 rotates, bearing seats 30 are provided at both ends of the cylinder 10 so that the cylinder 10 can rotate smoothly. A discharge mechanism 50 is provided at the discharge end 12 of the cylinder 10. When the cylinder 10 discharges the mud, the slurry and impurities can be classified and collected, thereby facilitating the subsequent production of the mud. When the cylinder 10 is driven, the cylinder 10 is driven to rotate by means of a belt 45. Since the installation cost of the belt is low, the mud material slurrying equipment 100 can have a low installation cost. And it is convenient for later maintenance. At the same time, it can have lower noise through the belt 45 transmission method. A main drive motor 41, a main reducer 42, an auxiliary drive motor 43, and an auxiliary reducer 44 are further provided. When the cylinder 10 is driven to rotate, it is driven by the auxiliary drive motor 43, the auxiliary reducer 44 and the main reducer 42. Since it has a larger reduction ratio at this time, it can provide a larger torque to the cylinder 10, which is convenient for smoothly driving the cylinder 10 to rotate; after completing the drive of the cylinder 10, it can be switched to the main drive motor 41 and the main reducer 42 for driving. At this time, it has a smaller reduction ratio, which can make the cylinder 10 have a larger rotation speed to improve the efficiency of mud slurrying.
[0039] It can be understood that pulping balls are provided in the cylinder 10 so as to continuously impact the mud material through the pulping balls, thereby achieving the effect of breaking up and pulping the mud material.
[0040] Among them, see Figure 3When the mud is slurried, the cylinder 10 of this embodiment includes an outer cylinder 13 and an inner lining 14 and a plurality of lifting plates 15 provided on the inner wall of the outer cylinder 13. The plurality of lifting plates 15 are arranged at intervals along the circumference of the outer cylinder 13, and each lifting plate 15 extends along the axial direction of the outer cylinder 13. Therefore, through the setting of the inner lining 14, when the mud collides with the cylinder 10, it collides with the inner lining 14, thereby avoiding wear on the steel plate of the outer cylinder 13; at the same time, through the design of the lifting plates 15, the convex lifting plates 15 drive the balls and mud to move upward, and the thrown balls and mud collide with each other, thereby achieving the effect of lifting and breaking up the mud, thereby improving the slurrying efficiency.
[0041] Specifically, the inner liner 14 and the lifting plate 15 are synchronously mounted on the outer cylinder 13 by bolts, that is, in a detachable connection manner, so that the inner liner 14 and the lifting plate 15 can be replaced after being worn out during long-term use.
[0042] See also Figure 4 and Figure 5 The liner 23 is provided in the conveying pipe 22 and is arranged corresponding to the feeding port 211 of the feed hopper 21. The liner 23 is detachably connected to the conveying pipe 22. In this way, the mud material is put into the cylinder 10 through the conveying pipe 22. At the same time, the liner 23 is provided at the position of the conveying pipe 22 corresponding to the feed hopper 21. When the mud material is put in from the feed hopper 21, it will directly hit the liner 23 to protect the conveying pipe 22 and reduce the impact wear of the mud material on the conveying pipe 22. The liner 23 is further detachably connected to the conveying pipe 22, for example, by plugging or snapping. The liner 23 can be replaced after being worn out after long-term use, thereby further ensuring the protection of the conveying pipe 22.
[0043] Specifically, the lining plate 23 of this embodiment is a rubber lining plate 23 , and when mud is fed from the feed hopper 21 , it hits the rubber lining plate 23 and produces less noise.
[0044] Furthermore, in order to facilitate the lining plate 23, a switch door can be provided at the end of the conveying pipe 22, and the switch door is rotatably provided relative to the conveying pipe so that the conveying pipe 22 can be opened to disassemble and replace the lining plate 23.
[0045] Among them, see Figure 4 and Figure 5The conveying pipe 22 of this embodiment includes an obtuse-angled portion 221 and a horizontal portion 222. The horizontal portion 222 has an extending section 2221 extending into the cylinder 10. The inclined portion 221 is connected to the feed hopper 21. The mud slurrying equipment 100 also includes an anti-overflow structure 60. The anti-overflow structure 60 is provided at the feed end 11 of the cylinder 10 and is connected to the extending section 2221 to prevent the overflow of mud. In this way, through the setting of the inclined portion 221, when receiving the mud, the mud can be discharged according to its own gravity. Slide into the cylinder 10; by extending the conveying pipe 22 into the cylinder 10, and providing an overflow prevention structure 60 and connecting it with the extension section 2221 of the conveying pipe 22, when the cylinder 10 rotates, the mud flows between the extension section 2221 and the inner wall of the cylinder 10, flows to the overflow prevention structure 60, and is blocked back into the cylinder 10 by the overflow prevention structure 60, thereby reducing the overflow or splashing of mud from the feed end 11 by extending the horizontal part 222 into the cylinder 10 and cooperating with the overflow prevention structure 60.
[0046] Specifically, see Figure 5 The overflow prevention structure 60 includes a water retaining ring 61, a water retaining plate 62 and a first sealing ring 63; the water retaining ring 61 is sleeved on the outer wall of the extension section 2221 near the feed end 11; the water retaining plate 62 is connected to the feed end 11, and the first sealing ring 63 is connected to the water retaining plate 62, extending toward the center direction of the cylinder 10, and abutting against the extension section 2221. Therefore, since the first sealing ring 63 is made of compressible material, the cylinder 10 can continue to rotate relative to the extension section 2221, and is blocked by the cooperation of the water retaining ring 61 and the first sealing ring 63, the slurry cannot splash out from the feed end 11, thereby achieving an anti-splashing effect; at the same time, the water retaining plate 62 is set to prevent mud from overflowing.
[0047] Furthermore, the anti-overflow structure 60 also includes a water retaining plate 64, which is connected to the feed end 11 and is located outside the cylinder 10. It includes a constant diameter section 641 and a variable diameter section 642. The constant diameter section 641 is connected to the feed end 11, and the diameter of the variable diameter section 642 gradually increases in the direction away from the feed end 11. Therefore, even if a small amount of slurry overflows from the feed end 11, it is blocked by the water retaining plate 62 to avoid entering the bearing seat 30.
[0048] Specifically, see Figure 5 In order to protect the bearing seat 30, the bearing seat 30 includes a first mounting seat 31, an end cover 32, a pressure cover 36, a bearing 33, a second sealing ring 34 and a third sealing ring 35;
[0049] Among them, the first mounting seat 31 is connected to the side of the cylinder 10, the bearing 33 is sleeved on the outside of the cylinder 10 and accommodated in the first mounting seat 31; the end cover 32 is connected to the first mounting seat 31, so that it is a whole with the first mounting seat 31, used to prevent the overflow of lubricating oil; the pressure cover 36 is connected to the end of the cylinder 10 and abuts against the bearing 33, and the end cover 32 and the first mounting seat 31 can be fine-tuned along the radial direction of the cylinder 10; the second sealing ring 34 is arranged between the bearing 33 and the pressure cover 36; the third sealing ring 35 is arranged between the first mounting seat 31 and the end cover 326. In this way, by setting the third sealing ring 35, water is prevented from entering the bearing 33 from between the first mounting seat 31 and the end cover 32; by setting the second sealing ring 34 between the pressure cover 36 and the bearing 33, water is prevented from entering the bearing 33 from the end of the cylinder 10.
[0050] Furthermore, since the outer ring of the bearing 33 needs to rotate relative to the inner ring for a long time, the mud slurrying equipment 100 also includes two oil supply mechanisms 70, one oil supply mechanism 70 is connected to a bearing seat 30, and is used to deliver lubricating oil to the corresponding bearing seat 30. Therefore, through the setting of the oil supply mechanism 70, oil can be continuously supplied to the bearing 33 to avoid wear of the bearing 33 when it lacks oil.
[0051] The oil supply method may be to extract the oil through a pump and transport it through a pipeline.
[0052] See also Figure 1 and Figure 2 The discharging mechanism 50 of this embodiment includes a drum screen 51 and a spiral piece 52 arranged in the drum screen 51 when discharging. The drum screen 51 is connected to the discharge end 12 of the cylinder 10 and rotates with the cylinder 10. Therefore, when the mud is discharged from the discharge end 12 of the cylinder 10, the small-particle mud leaks out of the drum screen 51, and the large-particle screen impurities such as branches are driven by the spiral piece 52 to be discharged to the end of the drum screen 51, preventing deposition and clogging in the drum screen 51, thereby achieving the effect of classifying and collecting the mud, which is convenient for the next production operation of the mud.
[0053] Further, see Figure 6 The mud slurrying equipment 100 also includes a grid mesh 80, which is arranged at the discharge end 12 of the cylinder 10 to block the outflow of stones and balls, and an outflow hole 81 is provided in the center of the grid mesh 80. In this way, as the height of the mud continues to increase, large-particle impurities such as branches are sent out from the center hole 81 of the grid mesh 80, and large-particle stones and balls are blocked by the grid mesh 80 and continue to remain in the cylinder 10. The remaining stones can also serve as balls to slurry the mud.
[0054] Among them, the mud pulping equipment 100 of this embodiment has a higher pulping efficiency than the pulping method of the pulper in the form of stirring on the market, and avoids the wear of the stirring blades. At the same time, the mud pulping equipment 100 of this application can also discharge impurities and branches through the grid mesh 80 at the end, and there is no need for regular cleaning of the cylinder in the later stage, so that the pulping equipment can continue to pulp and ensure production efficiency.
[0055] The above-mentioned mud material slurrying equipment 100 can reduce the overflow of slurry from the cylinder 10 by extending the conveying pipe 22 in the feeding mechanism 20 into the cylinder 10, and cooperating with the water retaining ring 61, the water retaining plate 62 and the first sealing ring 63 in the overflow prevention structure 60; by arranging the lining 14 and the lifting plate 15 in the outer cylinder 13, the outer cylinder 13 can be protected, and the lifting plate 15 can improve the slurrying efficiency of the mud material; through the oil supply mechanism 70, the bearing 33 can be continuously supplied with oil. Oil is supplied to avoid wear of the bearing 33 due to lack of oil; a second sealing ring 34 and a third sealing ring 35 are provided in the bearing seat 30 to prevent water or mud from entering the bearing 33, thereby protecting the bearing 33; the discharging mechanism 50 is provided with a drum screen 51 and a spiral sheet 52 to facilitate the separation of mud and impurities; a grid mesh 80 is provided at the discharging end 12 of the cylinder 10 to block large-sized stones in the cylinder 10, and the slurrying effect can be achieved in combination with the ball stone later.
[0056] The technical means disclosed in the present invention are not limited to those disclosed in the above-mentioned embodiments, but also include technical solutions composed of any combination of the above-mentioned technical features. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principles of the present invention, and such improvements and modifications are also considered to be within the scope of protection of the present invention.
Claims
1. A mud slurrying device (100), characterized in that: include: The cylinder (10) is used to receive the mud material and slurry the mud material; A feeding mechanism (20) is provided at the feeding end (11) of the cylinder (10) and is used to convey mud material to the cylinder (10); Bearing seats (30), including two bearing seats (30), which are arranged at both ends of the cylinder (10) along the axial direction of the cylinder (10); The driving mechanism (40) includes a main driving motor (41), a main speed reducer (42), an auxiliary driving motor (43), an auxiliary speed reducer (44), a belt (45) and a pulley (46), wherein the main speed reducer (42) is connected to the output shaft of the main driving motor (41), the auxiliary speed reducer (44) is connected to the output shaft of the auxiliary driving motor (43) and is also connected to the main speed reducer (42), the pulley (46) is connected to the main speed reducer (42), and the belt (45) is respectively sleeved on the outside of the cylinder (10) and the pulley (46); A discharge mechanism (50) is located at the discharge end (12) of the cylinder (10) and is used for classifying and collecting the slurry and impurities flowing out of the cylinder (10).
2. The mud slurrying equipment (100) according to claim 1, characterized in that: The feeding mechanism (20) comprises a feeding hopper (21), a conveying pipe (22) and a lining plate (23); the feeding hopper (21) is connected to the conveying pipe (22); the lining plate (23) is arranged in the conveying pipe (22) and is arranged corresponding to the delivery port (211) of the feeding hopper (21); and the lining plate (23) is detachably connected to the conveying pipe (22).
3. The mud slurrying equipment (100) according to claim 2, characterized in that: The conveying pipe (22) comprises an inclined portion (221) and a horizontal portion (222) arranged at an obtuse angle, the horizontal portion (222) having an extending section (2221) extending into the cylinder (10), and the inclined portion (221) is connected to the feed hopper (21); The mud material slurrying equipment (100) further comprises an anti-overflow structure (60), which is provided at the feed end (11) of the cylinder (10) and connected to the extending section (2221) for preventing the overflow of mud.
4. The mud slurrying equipment (100) according to claim 3, characterized in that: The anti-overflow structure (60) comprises a water retaining ring (61), a water retaining plate (62) and a first sealing ring (63); The water retaining ring (61) is sleeved on the outer wall of the extending section (2221) close to the feed end (11); The water baffle (62) is connected to the feed end (11); The first sealing ring (63) is connected to the water baffle (62), extends toward the center of the cylinder (10), and abuts against the extending section (2221).
5. The mud slurrying equipment (100) according to claim 4, characterized in that: The anti-overflow structure (60) further includes a water retaining plate (64), which is connected to the feed end (11) and is located outside the cylinder (10), and includes a constant diameter section (641) and a variable diameter section (642). The constant diameter section (641) is connected to the feed end (11), and the diameter of the variable diameter section (642) gradually increases in a direction away from the feed end (11).
6. The mud slurrying device (100) according to any one of claims 1 to 5, characterized in that: The cylinder (10) includes an outer cylinder (13), an inner lining (14) and a plurality of lifting plates (15) arranged on the inner wall of the outer cylinder (13). The lifting plates (15) are arranged at intervals along the circumference of the outer cylinder (13), and each of the lifting plates (15) extends along the axial direction of the outer cylinder (13).
7. The mud slurrying device (100) according to any one of claims 1 to 3, characterized in that: The mud material slurrying equipment (100) further includes two oil supply mechanisms (70), one of the oil supply mechanisms (70) being connected to one of the bearing seats (30) and being used to supply lubricating oil to the corresponding bearing seat (30).
8. The mud slurrying device (100) according to any one of claims 1 to 3, characterized in that: The bearing seat (30) includes a first mounting seat (31), an end cover (32), a pressure cover (36), a bearing (33), a second sealing ring (34) and a third sealing ring (35); The first mounting seat (31) is connected to the side of the cylinder (10), and the bearing (33) is sleeved outside the cylinder (10) and accommodated in the first mounting seat (31); The end cover (32) is connected to the first mounting seat (31); The gland (36) is connected to the end of the cylinder (10) and abuts against the bearing (33); The second sealing ring (34) is arranged between the bearing (33) and the gland (36); The third sealing ring (35) is provided between the end cover (32) and the pressure cover (36).
9. The mud slurrying device (100) according to any one of claims 1 to 3, characterized in that: The discharging mechanism (50) comprises a drum screen (51) and a spiral sheet (52) arranged in the drum screen (51), and the drum screen (51) is connected to the discharging end (12) of the cylinder (10).
10. The mud slurrying equipment (100) according to any one of claims 1 to 3, characterized in that: The mud material slurrying equipment (100) further comprises a grid net (80), which is arranged at the discharge end (12) of the cylinder (10) and is used to block the outflow of stones and balls, and an outflow hole is provided at the center of the grid net (80).