Thickener vibrator based on micro-fine particle mineral radial gradient sedimentation
By using a dense machine vibrator based on radial gradient sedimentation of fine-grained minerals in the sulfur concentrate concentrated pool, the problem of loss caused by foam hardening and agglomeration during sulfur concentrate processing is solved, and the recovery rate and production efficiency of sulfur concentrate are improved.
Patent Information
- Application Number
- CN202510342652.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-21
- Publication Date
- 2025-05-06
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the processing and production of sulfur concentrate, a large amount of foam is generated when transported to the dense pool through a pipeline after flotation. The foam floats on the surface of the dense pool. The long-term wind and sun blows, causing the foam to harden and agglomerate. The hardened foam falls into the overflow groove along the periphery of the dense pool through extrusion, causing the loss of sulfur concentrate and the loss of sulfur concentrate recovery.
A dense machine vibrator based on radial gradient sedimentation of fine-grain minerals is adopted. The device includes a rotating column shell and a power column shell. Through a rotating mechanism, a power transmission rod, an installation transmission rod and a vibration mechanism, the principle of mechanical vibration defoaming is used to periodically eliminate foam to avoid loss caused by foam hardening and agglomeration.
It effectively avoids the loss of foam hardening and agglomeration, improves the recovery rate of sulfur concentrate, and ensures the production efficiency and product quality of sulfur concentrate.
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Figure CN119926003A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of sulfur concentrate production and processing, in particular to a thickener vibrator based on radial gradient sedimentation of micro-fine-grained minerals. Background Art
[0002] Sulfur concentrate refers to a concentrate product with a high sulfur content in the form of sulfides that is enriched from sulfur-containing ores through mineral processing.
[0003] During the processing and production, sulfur concentrate needs to enter the thickening tank for concentration and then filtration. When the sulfur concentrate is transported to the thickening tank through pipelines after flotation, a large amount of foam is generated. The foam floats on the surface of the thickening tank. Long-term wind and sun exposure causes the foam to harden and agglomerate and float on the pool surface. The hardened foam is squeezed and falls into the overflow ditch along the periphery of the thickening tank, causing the loss of sulfur concentrate and the loss of sulfur concentrate recovery rate.
[0004] In order to solve the above problem, a device is needed to prevent the hardened foam from falling into the overflow ditch along the periphery of the thickening tank through squeezing, causing the loss of sulfur concentrate and the loss of sulfur concentrate recovery rate. Summary of the invention
[0005] In view of the deficiencies in the prior art, the present invention provides a thickener vibrator based on radial gradient sedimentation of fine-grained minerals, which solves the problem that sulfur concentrate needs to enter a thickening tank for concentration and then filtration during processing and production. A large amount of foam is generated when the sulfur concentrate is transported to the thickening tank through a pipeline after flotation. The foam floats on the surface of the thickening tank. Long-term exposure to wind and sun causes the foam to harden and agglomerate and float on the tank surface. The hardened foam is squeezed and falls into the overflow ditch along the periphery of the thickening tank and flows away, causing the loss of sulfur concentrate and the loss of sulfur concentrate recovery rate.
[0006] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a thickener vibrator based on radial gradient sedimentation of fine-grained minerals, comprising a rotating column shell and a power column shell, a rotating mechanism for rotation is provided on the lower side of the inner wall of the power column shell, a brake motor is fixedly installed at the center of the lower side of the inner wall of the rotating column shell, and the output shaft wall of the brake motor is meshedly connected with a plurality of second bevel gears through a first bevel gear, a power transmission rod is fixedly connected to the inner walls of the plurality of second bevel gears, and a power installation rod shell is rotatably installed on the rod wall of the power transmission rod;
[0007] Several standard sections are provided on the side of several power mounting rod shells away from the rotating column shell, and the head and tail of several standard sections are connected by fixing bolts to form a rod body structure. Several standard sections include mounting rod shells, and a circular groove is provided on the side of the mounting rod shell close to the rotating column shell. Several mounting rod shells are rotatably installed with mounting transmission rods at the center of the interior, and the rod walls of several mounting transmission rods and several power transmission rods are wound and connected with adjustment ropes, and the lower ends of several adjustment ropes are provided with vibration mechanisms for vibration through connecting fasteners.
[0008] Furthermore, the rotating mechanism includes a power vertical rod rotatably installed on the lower side of the inner wall of the power column housing, and a power gear column is fixedly installed on the rod wall of the power vertical rod, the surface of the power gear column is meshingly connected with a driving gear plate, and the rear of the driving gear plate is mounted inside the power column housing through a limiting longitudinal rod, a driving cylinder is fixedly installed in front of the driving gear plate, and the fixed end of the driving cylinder is embedded and fixedly connected with the inner wall of the power column housing.
[0009] Furthermore, the vibration mechanism includes a connection hole plate fixedly mounted on the surface of the connection fastener, a vibration motor is fixedly mounted on one side surface of the connection hole plate, and a protective cover is fixedly mounted around the vibration motor on one side surface of the connection hole plate;
[0010] A crown gear is fixedly installed on the rod wall of several installation transmission rods and the rod wall of several power transmission rods on one side close to the rotating column shell, and the bottom surface of the crown gear is rotatably connected to a fixed vertical shaft through a spur gear, and the lower ends of several fixed vertical shafts are provided with a combing mechanism for combing adjustment ropes, and a fixed clamping block is fixedly installed on one end of several power transmission rods away from the rotating column shell and one end of several installation transmission rods away from the rotating column shell, and a connecting sleeve matching the fixed clamping block is fixedly installed on one end of several installation transmission rods close to the rotating column shell.
[0011] Furthermore, the combing mechanism includes a rotating block fixedly installed at the lower end of the fixed vertical shaft, and the rotating block is slidably connected to a pushing frame through a cylindrical block, and several of the power mounting rod shells and the inner wall of the mounting rod shells are located at the lower side of the adjusting rope and are provided with a wire-taking opening, and the lower side of the power mounting rod shell and the surface of the mounting rod shell are located on the opposite side of the wire-taking opening and are fixedly installed with a supporting block, the surface of the adjusting rope is located at the lower side of the wire-taking opening and is sleeved with a pushing ring, and two guide rods are fixedly installed on opposite sides of the pushing ring, and two guide rods are fixedly installed on the opposite sides of the pushing ring, and two guide rod ends away from the pushing frame are fixedly installed with limiting circular blocks.
[0012] Furthermore, the rotating column shell is arranged directly above the power column shell, and the rotating column shell and the power column shell are two cylindrical shell structures with the same diameter, the output end of the brake motor is rotatably connected to the center of the upper side of the inner wall of the rotating column shell, the surfaces of several power mounting rod shells are fixedly installed with the surfaces of the rotating column shells, the rod walls of several power transmission rods are all arranged through the interior of the power mounting rod shell and extend to the opposite ends of the power mounting rod shell, and the rod walls of several mounting transmission rods are all arranged through the interior of the mounting rod shell and extend to the opposite ends of the mounting rod shell;
[0013] The upper end of the power vertical rod passes through the upper side of the inner wall of the power column housing and is fixedly connected to the bottom surface of the rotating column housing. The surface of the limiting longitudinal rod is slidably mounted on the driving tooth plate to ensure that the driving tooth plate slides on the rod wall of the limiting longitudinal rod.
[0014] Further, a plurality of the second bevel gears are equidistantly arranged on the top surface of the first bevel gear, and the diameter of the second bevel gear is less than eight times the diameter of the first bevel gear.
[0015] Furthermore, several of the fixed vertical shafts are respectively rotatably connected to the inside of the corresponding mounting rod shell and the power mounting rod shell, and the top surface of the fixed vertical shaft is set at a position six centimeters higher than the inner wall of the corresponding mounting rod shell and the power mounting rod shell, and the upper side of the surface of several of the fixed vertical shafts is fixedly connected to the inner wall of the spur gear.
[0016] Furthermore, some of the fixed blocks are blocks with a pentagonal prism structure, some of the connecting sleeves are groove blocks with a pentagonal prism structure, and the surface of the connecting sleeve is set five millimeters away from the inner wall of the circular groove, and some of the connecting fasteners are assembly structures with inverted U-shaped blocks and symmetrically fixed installation circular rings on the lower side.
[0017] Furthermore, the top view shapes of the plurality of push frames are a combination of a rectangle and two semicircles, and the inner wall of the push frame is in contact with the column wall of the cylindrical block.
[0018] Furthermore, several of the wire collection openings are arc-shaped, the rod walls of the two corresponding guide rods are slidably penetrated through the interior of the corresponding support block, and the ends of the two guide rods close to the push frame are fixedly connected to the surface of the push frame.
[0019] Compared with the prior art, the present invention provides a thickener vibrator based on radial gradient sedimentation of fine-grained minerals, which has the following beneficial effects:
[0020] 1. The vibration motor of the device drives the connecting hole plate to generate mechanical vibration force. In this way, the principle of mechanical vibration defoaming is adopted, and the vibration force is used to eliminate foam. The vibration mechanism is driven by the adjustment rope and other structures to perform defoaming operations periodically and at different positions on the pool surface to avoid loss caused by hardening and agglomeration of foam and ensure product recovery rate.
[0021] 2. The device uses the setting that the diameter of the second bevel gear is larger than the diameter of the first bevel gear, which can ensure that the first bevel gear rotates several circles while the second bevel gear rotates one circle, and can better transmit the transmission force to the power transmission rod and the installation transmission rod, so that the adjustment rope is wound and rolled, so that the position of the connecting hole plate can be adjusted up and down.
[0022] 3. The device utilizes the vertical transmission effect of the fixed vertical axis to ensure that the crown gear rotates while driving the spur gear to rotate, thereby ensuring that the crown gear rotation drives the structure to tighten the adjustment rope while also performing left and right line management operations on the tightened adjustment rope.
[0023] 4. The clamping connection between the fixed clamping block and the connecting sleeve of the device can ensure that the power transmission rod and the installation transmission rod rotate at the same time, and through the clamping connection between the fixed clamping block and the connecting sleeve, it can ensure that the vibration range of the entire device has an adjustable effect, thereby improving the practical performance of the device.
[0024] 5. The device utilizes the arc setting of the wire-reeling opening to protect the surface of the adjusting rope and avoid the surface wear and breakage of the adjusting rope. The setting of the guide rod can ensure the stable left and right movement of the pushing ring, thereby ensuring that the adjusting rope will not accumulate and knot when it is reeled in or released. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Figure 1 It is an overall stereogram of the present invention;
[0026] Figure 2 For the present invention Figure 1 A schematic diagram of the enlarged structure of the middle part A;
[0027] Figure 3 For the present invention Figure 1 The enlarged structural diagram of the middle B part;
[0028] Figure 4 It is a vertical cutaway perspective view of the whole of the present invention;
[0029] Figure 5 For the present invention Figure 4 The enlarged structural diagram of the middle C part;
[0030] Figure 6 For the present invention Figure 4 The enlarged structural diagram of the middle D part;
[0031] Figure 7 For the present invention Figure 4 The enlarged structural diagram of the middle E part;
[0032] Figure 8 A three-dimensional diagram of the mounting rod housing of the present invention;
[0033] Fig. 9 For the present invention Figure 8 The enlarged structural diagram of the middle F part;
[0034] Fig.10 For the present invention Figure 8 Schematic diagram of the enlarged structure of the middle G part.
[0035] In the figure: 1. rotating column shell; 2. power column shell; 3. brake motor; 4. first bevel gear; 5. second bevel gear; 6. power transmission rod; 7. power mounting rod shell; 8. mounting rod shell; 9. circular groove; 10. mounting transmission rod; 11. power vertical rod; 12. power gear column; 13. driving gear plate; 14. limiting longitudinal rod; 15. driving cylinder; 16. adjusting rope; 17. connecting hole plate; 18. vibration motor; 19. protective cover; 20. crown gear; 21. spur gear; 22. fixed vertical axis; 23. fixed block; 24. connecting sleeve; 25. connecting fastener; 26. rotating block; 27. cylindrical block; 28. pushing frame; 29. wire collection port; 30. support block; 31. pushing ring; 32. guide rod; 33. limiting circular block. DETAILED DESCRIPTION
[0036] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. 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 creative work are within the scope of protection of the present invention.
[0037] See also Figures 1 to 10 The thickener vibrator based on radial gradient sedimentation of fine-grained minerals in this embodiment includes a rotating column shell 1 and a power column shell 2. A rotating mechanism for rotation is provided on the lower side of the inner wall of the power column shell 2. A brake motor 3 is fixedly installed at the center of the lower side of the inner wall of the rotating column shell 1, and the output shaft wall of the brake motor 3 is meshedly connected with a plurality of second bevel gears 5 through a first bevel gear 4. A power transmission rod 6 is fixedly connected to the inner wall of the plurality of second bevel gears 5, and a power installation rod shell 7 is rotatably installed on the rod wall of the power transmission rod 6.
[0038] Several power mounting rod shells 7 are each provided with several standard sections on the side away from the rotating column shell 1, and the head and tail of the several standard sections are connected by fixing bolts to form a rod body structure, several standard sections include mounting rod shells 8, and the mounting rod shells 8 are provided with a circular groove 9 on the side close to the rotating column shell 1, and several mounting rod shells 8 are each rotatably installed with mounting transmission rods 10 at the center of the inside, and the rod walls of several mounting transmission rods 10 and several power transmission rods 6 are both wound and connected with adjustment ropes 16, and the lower ends of several adjustment ropes 16 are each provided with a vibration mechanism for vibration through a connecting fastener 25.
[0039] The rotating mechanism includes a power vertical rod 11 rotatably installed on the lower side of the inner wall of the power column housing 2, and a power gear column 12 is fixedly installed on the rod wall of the power vertical rod 11, and a driving gear plate 13 is meshingly connected to the surface of the power gear column 12, and the rear of the driving gear plate 13 is mounted inside the power column housing 2 through a limiting longitudinal rod 14, and a driving cylinder 15 is fixedly installed in front of the driving gear plate 13, and the fixed end of the driving cylinder 15 is embedded and fixedly connected to the inner wall of the power column housing 2.
[0040] The vibration mechanism includes a connection hole plate 17 fixedly mounted on the surface of the connection fastener 25, a vibration motor 18 is fixedly mounted on one side surface of the connection hole plate 17, and a protective cover 19 is fixedly mounted around the vibration motor 18 on one side surface of the connection hole plate 17;
[0041] A crown gear 20 is fixedly installed on the rod wall of several installation transmission rods 10 and the rod wall of several power transmission rods 6 on the side close to the rotating column shell 1, and the bottom surface of the crown gear 20 is rotatably connected to a fixed vertical shaft 22 through a spur gear 21, and the lower ends of multiple fixed vertical shafts 22 are provided with combing mechanisms for combing adjustment ropes 16, and fixed blocks 23 are fixedly installed on the ends of several power transmission rods 6 away from the rotating column shell 1 and the ends of several installation transmission rods 10 away from the rotating column shell 1, and connecting sleeves 24 matching the fixed blocks 23 are fixedly installed on the ends of several installation transmission rods 10 close to the rotating column shell 1.
[0042] The combing mechanism includes a rotating block 26 fixedly installed at the lower end of the fixed vertical shaft 22, and the rotating block 26 is slidably connected to a pushing frame 28 through a cylindrical block 27, and the inner walls of a plurality of power mounting rod shells 7 and mounting rod shells 8 are located at the lower side of the adjusting rope 16 and are provided with a wire-receiving opening 29, and a support block 30 is fixedly installed on the lower side of the surface of the power mounting rod shell 7 and the mounting rod shell 8 located on the opposite side of the wire-receiving opening 29, a pushing ring 31 is sleeved on the surface of the adjusting rope 16 located at the lower side of the wire-receiving opening 29, and two guide rods 32 are fixedly installed on the opposite sides of the pushing ring 31, and two ends of the guide rods 32 away from the pushing frame 28 are fixedly installed with limiting circular blocks 33.
[0043] Among them, the rotating column shell 1 is arranged directly above the power column shell 2, and the rotating column shell 1 and the power column shell 2 are two cylindrical shell structures with the same diameter. The output end of the brake motor 3 is rotatably connected to the center of the upper side of the inner wall of the rotating column shell 1, and the surfaces of several power mounting rod shells 7 are fixedly installed on the surface of the rotating column shell 1. The rod walls of several power transmission rods 6 are all set through the interior of the power mounting rod shell 7 and extend to the opposite ends of the power mounting rod shell 7. The rod walls of several mounting transmission rods 10 are all set through the interior of the mounting rod shell 8 and extend to the opposite ends of the mounting rod shell 8.
[0044] The upper end of the power vertical rod 11 passes through the upper side of the inner wall of the power column housing 2 and is fixedly connected to the bottom surface of the rotating column housing 1. The surface of the limiting longitudinal rod 14 is slidably installed with the driving tooth plate 13 to ensure that the driving tooth plate 13 slides on the rod wall of the limiting longitudinal rod 14.
[0045] Specifically, a number of second bevel gears 5 are equidistantly arranged on the top surface of the first bevel gear 4, and the diameter of the second bevel gear 5 is less than eight times the diameter of the first bevel gear 4. A number of fixed vertical shafts 22 are respectively rotatably connected to the internal parts of the corresponding mounting rod shells 8 and the power mounting rod shells 7, and the top surfaces of the fixed vertical shafts 22 are set at a position six centimeters higher than the inner walls of the corresponding mounting rod shells 8 and the power mounting rod shells 7. The upper sides of the surfaces of a number of fixed vertical shafts 22 are fixedly connected to the inner walls of the spur gears 21. By utilizing the vertical transmission effect of the fixed vertical shafts 22, it is possible to ensure that the crown gear 20 rotates while driving the spur gear 21 to rotate, thereby ensuring that the crown gear 20 rotates to drive the structure to tighten the adjustment rope 16 while also performing left and right wire management operations on the tightened adjustment rope 16.
[0046] It should be noted that several fixed blocks 23 are blocks with a pentagonal prism structure, several connecting sleeves 24 are groove blocks with a pentagonal prism structure, and the surface of the connecting sleeve 24 is set five millimeters away from the inner wall of the circular groove 9, several connecting fasteners 25 are assembly structures of inverted U-shaped blocks with symmetrically fixed installation circular rings on the lower side, and several push frames 28 are a combination of a rectangle and two semicircles in top view, and the inner wall of the push frame 28 is in contact with the column wall of the cylindrical block 27.
[0047] The arc-shaped openings 29 are used to protect the surface of the adjusting rope 16 and avoid the surface wear and breakage of the adjusting rope 16. The rod walls of the two corresponding guide rods 32 are slidably penetrated through the interior of the corresponding support block 30. The ends of the two guide rods 32 close to the push frame 28 are fixedly connected to the surface of the push frame 28. The setting of the guide rods 32 can ensure the stable left and right movement of the push ring 31, thereby ensuring that the adjusting rope 16 will not accumulate or knot when it is wound or released.
[0048] The working principle of the above embodiment is:
[0049] Before using the device, the power column housing 2 is first fixed in the middle of the structure that needs to be vibrated to ensure the normal use effect in the later stage. The driving cylinder 15 drives the driving gear plate 13 to move, thereby rotating the power vertical rod 11 in the power gear column 12. Since the driving gear plate 13 is driven by the driving cylinder 15 to extend and retract, the power gear column 12 can rotate forward and reverse, thus ensuring that the structure in the rotating column housing 1 can rotate forward and reverse;
[0050] When the device is in use, the vibration motor 18 on the connecting hole plate 17 is placed in the thickening tank of the sulfur concentrate processing by adjusting the rope 16. The vibration force generated by the vibration motor 18 performs physical defoaming treatment on the thickening tank of the sulfur concentrate processing. In order to ensure uniform defoaming treatment in the thickening tank of the sulfur concentrate processing, the rotation of the rotating column shell 1 is used to drive the connecting hole plate 17 to rotate, so that the sulfur concentrate processing solution at different depths can be vibrated.
[0051] When it is necessary to vibrate the sulfur concentrate processing solution at different depths, the brake motor 3 drives the power transmission rod 6 in the second bevel gear 5 to rotate through the first bevel gear 4. Under the rotation of the power transmission rod 6, the adjustment rope 16 wound on the power transmission rod 6 can be wound or loosened. When the adjustment rope 16 is wound or loosened, the spur gear 21 under the crown gear 20 is driven to rotate under the rotation of the power transmission rod 6. The spur gear 21 drives the cylindrical block 27 under the rotating block 26 through the fixed vertical shaft 22 to run in a circle around the fixed vertical shaft 22. Because the cylindrical block 27 is eccentrically fixed on the rotating block 26, the cylindrical block 27 drives the push frame 28 to perform horizontal reciprocating operation while the cylindrical block 27 runs in a circle. The space of the push frame 28 can adapt to the longitudinal operation of the cylindrical block 27, so that the push frame 28 can only run horizontally.
[0052] The push frame 28 performs horizontal reciprocating operation, which can drive the push ring 31 at the upper end of the guide rod 32 to pull the adjustment rope 16 to also perform reciprocating horizontal movement, thereby avoiding the problem of the power transmission rod 6 being piled up and messed up in the process of winding the adjustment rope 16. When the power transmission rod 6 runs in the opposite direction, it can also drive the push ring 31 to pull the adjustment rope 16 to perform reciprocating horizontal movement, ensuring the smooth lifting and lowering of the vibration structure in the connection hole plate 17 under the adjustment rope 16;
[0053] The standard section of the device, that is, the installation transmission rod 10 in the installation rod shell 8, is connected and transmitted through the fixed block 23 and the connecting sleeve 24 during operation, which can ensure that the above-mentioned power transmission rod 6 drives the structure to operate, and the installation transmission rod 10 can also drive the structure to perform the same operation. This will not only increase the vibration range of the vibration structure on the connecting hole plate 17, but also improve the adaptability of the device by adjusting and reducing the size of the pool body through the adjustment and reduction of the standard section. The connecting line of the vibration motor 18 of the device can be set in the adjusting rope 16, which can ensure that the connecting line will be wound when the adjusting rope 16 is wound, and the connecting line of the vibration motor 18 It can extend out of the device and connect with the power supply structure. Because the rotating column shell 1 does not make circular motion, there will be no problem of entanglement of the transmission connection lines of the vibration motor 18 and other electrical structures when the overall device is running, which can ensure the normal operation of the structure inside the device. The device can perform radial gradient sedimentation on fine-grained minerals, that is, perform vibration precipitation at different positions on micro-grained minerals, which can avoid the problem of overflow and waste of foam after the hardening of the sulfur concentrate. Since the vibration is periodic and movable, gradient vibration is formed to reduce the foam density after the hardening of the sulfur concentrate, and thus this structure is called a thickener vibrator for radial gradient sedimentation of fine-grained minerals.
[0054] The installation method, connection method or setting method disclosed in this embodiment are all common mechanical connection methods, and they can be implemented as long as they can achieve their beneficial effects. In addition, the electrical components appearing in this embodiment are all electrically connected to the main controller and the power supply. The main controller can be a conventional known device such as a computer that plays a control role. Technicians in this field can control the electrical components through simple programming, and the existing disclosed power connection technology is also common knowledge in this field, so the specific structural composition and working principle will not be described in detail in this embodiment.
Claims
1. A thickener vibrator based on radial gradient sedimentation of fine-grained minerals, comprising a rotating column shell (1) and a power column shell (2), characterized in that: A rotating mechanism for rotation is provided on the lower side of the inner wall of the power column housing (2); a brake motor (3) is fixedly mounted at the center of the lower side of the inner wall of the rotating column housing (1); and the output shaft wall of the brake motor (3) is meshedly connected to a plurality of second bevel gears (5) via a first bevel gear (4); a power transmission rod (6) is fixedly connected to the inner walls of the plurality of second bevel gears (5); and a power mounting rod housing (7) is rotatably mounted on the rod wall of the power transmission rod (6); A plurality of standard sections are provided on the side of the power installation rod housing (7) away from the rotating column housing (1), and the head and tail of the plurality of standard sections are connected by fixing bolts to form a rod body structure. A plurality of standard sections include an installation rod housing (8), and a circular groove (9) is provided on the side of the installation rod housing (8) close to the rotating column housing (1). A installation transmission rod (10) is rotatably installed at the center of the interior of the plurality of installation rod housings (8). The rod walls of the plurality of installation transmission rods (10) and the rod walls of the plurality of power transmission rods (6) are wound and connected with adjustment ropes (16), and the lower ends of the plurality of adjustment ropes (16) are provided with a vibration mechanism for vibration through a connecting fastener (25).
2. The thickener vibrator based on radial gradient sedimentation of fine-grained minerals according to claim 1, characterized in that: The rotating mechanism comprises a power vertical rod (11) rotatably mounted on the lower side of the inner wall of the power column housing (2), and a power gear column (12) is fixedly mounted on the rod wall of the power vertical rod (11), a driving gear plate (13) is meshingly connected to the surface of the power gear column (12), and the rear of the driving gear plate (13) is mounted inside the power column housing (2) through a limiting longitudinal rod (14), a driving cylinder (15) is fixedly mounted on the front of the driving gear plate (13), and the fixed end of the driving cylinder (15) is embedded and fixedly connected to the inner wall of the power column housing (2).
3. The thickener vibrator based on radial gradient sedimentation of fine-grained minerals according to claim 2, characterized in that: The vibration mechanism comprises a connection hole plate (17) fixedly mounted on the surface of the connection fastener (25), a vibration motor (18) fixedly mounted on one side surface of the connection hole plate (17), and a protection cover (19) fixedly mounted on one side surface of the connection hole plate (17) around the vibration motor (18); A crown gear (20) is fixedly mounted on the rod wall of the plurality of installation transmission rods (10) and the rod wall of the plurality of power transmission rods (6) on the side close to the rotating column housing (1), and the bottom surface of the crown gear (20) is rotatably connected to a fixed vertical shaft (22) via a spur gear (21), and a combing mechanism for combing the adjustment rope (16) is provided at the lower end of the plurality of fixed vertical shafts (22), a fixed clamping block (23) is fixedly mounted on the end of the plurality of power transmission rods (6) away from the rotating column housing (1) and the end of the plurality of installation transmission rods (10) away from the rotating column housing (1), and a connecting sleeve (24) matching the fixed clamping block (23) is fixedly mounted on the end of the plurality of installation transmission rods (10) close to the rotating column housing (1).
4. The thickener vibrator based on radial gradient sedimentation of fine-grained minerals according to claim 3 is characterized by: The combing mechanism comprises a rotating block (26) fixedly mounted on the lower end of the fixed vertical shaft (22), and the rotating block (26) is slidably connected to a push frame (28) through a cylindrical block (27), and the inner walls of the power mounting rod shell (7) and the mounting rod shell (8) are both provided with a wire-receiving opening (29) at the lower side of the adjusting rope (16), and a supporting block (30) is fixedly mounted on the lower side of the surface of the power mounting rod shell (7) and the mounting rod shell (8) at the opposite side of the wire-receiving opening (29), and a pushing ring (31) is sleeved on the surface of the adjusting rope (16) at the lower side of the wire-receiving opening (29), and two guide rods (32) are fixedly mounted on opposite sides of the pushing ring (31), and two ends of the guide rods (32) away from the pushing frame (28) are fixedly mounted with limiting circular blocks (33).
5. The thickener vibrator based on radial gradient sedimentation of fine-grained minerals according to claim 4, characterized in that: The rotating column shell (1) is arranged directly above the power column shell (2), and the rotating column shell (1) and the power column shell (2) are two cylindrical shell structures with the same diameter. The output end of the brake motor (3) is rotatably connected to the center of the upper side of the inner wall of the rotating column shell (1). The surfaces of several power mounting rod shells (7) are fixedly installed with the surface of the rotating column shell (1). The rod walls of several power transmission rods (6) are all arranged through the interior of the power mounting rod shell (7) and extend to the opposite ends of the power mounting rod shell (7). The rod walls of several mounting transmission rods (10) are all arranged through the interior of the mounting rod shell (8) and extend to the opposite ends of the mounting rod shell (8). The upper end of the power vertical rod (11) penetrates the upper side of the inner wall of the power column housing (2) and is fixedly connected to the bottom surface of the rotating column housing (1). The surface of the limiting longitudinal rod (14) is slidably mounted on the driving tooth plate (13) to ensure that the driving tooth plate (13) slides on the rod wall of the limiting longitudinal rod (14).
6. The thickener vibrator based on radial gradient sedimentation of fine-grained minerals according to claim 1, characterized in that: A plurality of the second bevel gears (5) are arranged at equal intervals on the top surface of the first bevel gear (4), and the diameter of the second bevel gear (5) is less than eight times the diameter of the first bevel gear (4).
7. The thickener vibrator based on radial gradient sedimentation of fine-grained minerals according to claim 3, characterized in that: The plurality of fixed vertical shafts (22) are rotatably connected to the inside of the corresponding mounting rod housing (8) and the power mounting rod housing (7), and the top surface of the fixed vertical shaft (22) is set at a position six centimeters higher than the inner wall of the corresponding mounting rod housing (8) and the power mounting rod housing (7), and the upper side of the surface of the plurality of fixed vertical shafts (22) is fixedly connected to the inner wall of the spur gear (21).
8. The thickener vibrator based on radial gradient sedimentation of fine-grained minerals according to claim 3, characterized in that: Several of the fixing blocks (23) are blocks with a pentagonal prism structure, several of the connecting sleeves (24) are slot blocks with a pentagonal prism structure, and the surface of the connecting sleeve (24) is spaced five millimeters from the inner wall of the circular groove (9), and several of the connecting fasteners (25) are assembly structures with an inverted U-shaped block symmetrically fixedly mounted on the lower side with a circular ring.
9. The thickener vibrator based on radial gradient sedimentation of fine-grained minerals according to claim 4, characterized in that: The top view shape of the plurality of push frames (28) is a combination of a rectangle and two semicircles, and the inner wall of the push frame (28) is in contact with the column wall of the cylindrical block (27).
10. The thickener vibrator based on radial gradient sedimentation of fine-grained minerals according to claim 4, characterized in that: The plurality of wire collection openings (29) are all arranged in arc shapes, the rod walls of the two corresponding guide rods (32) are slidably arranged to penetrate the interior of the corresponding support block (30), and the ends of the two guide rods (32) close to the pushing frame (28) are fixedly connected to the surface of the pushing frame (28).