Central transmission concentrator with operation control function
By introducing a combination structure of fixed and movable bubble baffles in the concentrator, and combining an electric slider and a rotary motor to adjust the bubble gap, stable processing and self-cleaning functions for bubbles of different sizes are achieved, solving the problems of bubble contamination and flocculant detection, and improving the ease of use and stability of the device.
Patent Information
- Application Number
- CN202411406960.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-10
- Publication Date
- 2025-10-17
- Estimated Expiration
- 2044-10-10
AI Technical Summary
When existing concentrators process different types of slurries, changes in bubble size cause small bubbles to easily enter the overflow tank, contaminating the overflow water, and the device lacks effective adjustment and self-cleaning functions.
A combination of fixed and movable bubble baffles is used, and the bubble treatment gap is adjusted by an electric slider and a rotary motor. Movable scrapers and movable blocks are used for self-cleaning and slurry floc sampling and testing, and a pressure sensor is used to evaluate the floc quality.
It improves the stability and efficiency of bubble treatment, prevents bubble pollution, enhances the self-cleaning ability and flocculation effect of the device, ensures the uniformity and quality detection of slurry, and extends the life of the device.
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Figure CN119280895B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of concentrators, in particular to a center transmission concentrator with operation regulation function. BACKGROUND
[0002] The concentrator is a continuous working concentration and clarification equipment, mainly used for dewatering of concentrate and tailing slurry in wet beneficiation operation, and also widely used for concentration and purification of solid-containing slurry in coal, steel, chemical industry, building materials, water source, sewage treatment, etc. The high-efficiency concentrator is actually not a simple sedimentation equipment, but a new type of dewatering equipment combining with the filtering characteristics of slurry layer.
[0003] When the concentrator is used, gas bubbles are generated in the ore slurry, so the gas bubbles need to be broken, and the size of the gas bubbles generated during the treatment of different types of ore slurry varies. The existing bubble blocking plate cannot adjust according to the change of the gas bubbles, so that when the gas bubbles become small, small gas bubbles are easy to enter the overflow tank, which pollutes the overflow water. SUMMARY
[0004] The present application relates to the technical field of concentrators, in particular to a center transmission concentrator with operation regulation function.
[0005] In order to achieve the above-mentioned purpose, the technical scheme adopted by the present application is as follows:
[0006] The center transmission concentrator with operation regulation function comprises a concentrator body, a fixed bubble blocking plate is installed on the inner wall top of the concentrator body, a movable bubble blocking plate is movably installed on the inner wall of the fixed bubble blocking plate, a plurality of fixed rods are movably installed on the inner wall below the fixed bubble blocking plate of the concentrator body, a movable scraper is movably installed on the side of the fixed rod close to the inner wall of the concentrator body, a movable block is movably installed on the side of the fixed rod away from the inner wall of the concentrator body, and an auxiliary mechanism is arranged in the movable block.
[0007] Preferably, a third sliding groove is formed in the inner wall of the fixed bubble blocking plate, a plurality of third electric sliding blocks are uniformly installed on the side of the movable bubble blocking plate close to the third sliding groove, and the third electric sliding blocks are slidably installed in the third sliding groove.
[0008] Preferably, a first sliding groove is formed in the inner wall below the fixed bubble blocking plate of the concentrator body, a first electric sliding block is installed on the side of the fixed rod close to the first sliding groove, and the first electric sliding block is slidably installed in the first sliding groove.
[0009] Preferably, a first electric telescopic rod is embeddedly installed on the side of the fixed rod close to the inner wall of the concentrator body, the telescopic end of the first electric telescopic rod is away from the fixed rod, and the telescopic end of the first electric telescopic rod is connected with the movable scraper.
[0010] Preferably, a second sliding groove is vertically arranged on the side of the fixed rod away from the inner wall of the thickener body, and a second electric sliding block is installed on the side of the movable block close to the second sliding groove and is slidably arranged in the second sliding groove.
[0011] Preferably, a rotary motor is embeddedly installed on the side of the movable block close to the second sliding groove, the installation end of the rotary motor is away from the movable block, and the installation end of the rotary motor is connected with the second electric sliding block.
[0012] Preferably, the auxiliary mechanism comprises positioning blocks and extrusion blocks, a first slot is arranged through the top of the movable block, movable covers are movably installed on the top and the bottom of the movable block, the positioning blocks are movably installed on the inner walls of the two sides of the first slot, and the extrusion blocks are movably installed on the sides close to each other of the two positioning blocks.
[0013] Preferably, rotary shafts are embeddedly installed on the inner walls of the two sides of the top and the bottom of the first slot, the output ends of the rotary shafts are connected with the movable covers, and a plurality of holes are uniformly arranged through the movable covers.
[0014] Preferably, second electric telescopic rods are embeddedly installed on the inner walls of the two sides of the first slot, the telescopic ends of the second electric telescopic rods are close to each other, and the telescopic ends of the second electric telescopic rods are connected with the positioning blocks.
[0015] Preferably, second slots are arranged in the sides close to each other of the two positioning blocks, the extrusion blocks are slidably arranged in the second slots, a plurality of pressure sensors are uniformly installed on the inner wall bottoms of the second slots, spring telescopic rods are connected with the ends of the pressure sensors close to the extrusion blocks, and the ends of the spring telescopic rods close to the extrusion blocks are connected with the extrusion blocks.
[0016] Compared with the prior art, the present application has the following advantages:
[0017] In the present application, the fixed bubble blocking plate, the movable bubble blocking plate and the movable block are arranged, the position of the movable bubble blocking plate on the fixed bubble blocking plate is changed, the gap between the movable bubble blocking plate and the fixed bubble blocking plate is adjusted, the movable bubble blocking plate and the fixed bubble blocking plate can be adjusted according to the size of the processed bubbles, the stability of the device in processing bubbles of different sizes is increased, and the use convenience of the device is increased.
[0018] When the device processes the bubbles, if there are too many bubbles inside the thickener body, the movable block moves around the inner circle of the movable bubble baffle, and in the process of moving around, the movable block is rotated by the rotating motor, so that the bubbles close to the movable bubble baffle and the fixed bubble baffle can be broken in the process of moving around, further enhancing the breaking effect of the device on the bubbles, preventing the bubbles from flowing into the overflow tank through the movable bubble baffle and the fixed bubble baffle, and causing pollution to the overflow water, and increasing the use function stability of the device;
[0019] The movable block rotates to a horizontal state, at this time the first slot is in a horizontal state, and the water surface position of the thickener body is located at the middle position of the first slot, and then the advancing end of the movable block rotating around the inner wall of the thickener body drives the movable cover to rotate, so that the movable cover is opened, and in the process of moving around the thickener body by the movable block, the fine ore particles in the broken bubbles will enter the inside of the movable block under the rotation of the movable block, and through the "swallowing" of the bubbles by the movable block, the fine ore particles in the bubbles can collide rapidly in the inside of the movable block after the bubbles are broken, thereby accelerating the fusion between the fine ore particles, enhancing the flocculation effect of the device on the ore slurry, and increasing the use convenience of the device.
[0020] In the present application, the fixed rod and the movable scraper are provided, and when the fixed rod moves around the inner wall of the thickener body, the movable scraper is extended by the first electric telescopic rod at this time, so that the movable scraper abuts against the inner wall of the thickener body, and the movable scraper can scrape off the ore slurry attached to the inner wall of the thickener body through the rotation of the fixed rod, realizing self-cleaning of the inner wall of the thickener body, and increasing the use convenience of the device.
[0021] In the present application, the positioning block and the extrusion block are provided, the movable block moves downward, and then the movable block is inserted into the ore slurry flocculation material deposited at the bottom of the thickener body to complete sampling of the flocculation and deposition material at the bottom of the thickener body, the two positioning blocks move close to each other, the extrusion block extrudes the ore slurry flocculation material taken in the inside of the movable block when the two positioning blocks move close to each other, the second electric telescopic rod is extended by a preset length, the two extrusion blocks extrude the ore slurry flocculation material, the extrusion block slides into the second slot under the extrusion of the ore slurry flocculation material, the extrusion block extrudes the spring telescopic rod, the spring telescopic rod extrudes the pressure sensor, the pressure value measured by the pressure sensor at this time is transmitted to the background control system, the background control system compares the pressure value measured at this time with the standard pressure value, so as to reflect the stability and structural strength of the flocculation group, indirectly evaluate the tightness, complete quality detection of the ore slurry flocculation material, and adjust the addition amount of the flocculant according to the measurement result, so that the quality of the flocculation material is enhanced, and the use convenience of the device is increased;
[0022] By controlling the depth of the movable block descending, the device can detect the quality of the slurry flocculation at different depths of the thickener body, so that a more scientific discharge time of the slurry flocculation can be calculated, the quality of the slurry flocculation discharged by the device is unified, and the difficulty of subsequent processing of the slurry flocculation is reduced.
[0023] By sampling and detecting the slurry flocculation at the same height level of the thickener body through multiple movable blocks, and then comparing the detection results of the multiple movable blocks, the uniformity of the slurry flocculation in the thickener body can be detected, so that the uniformity of the slurry can be detected, the uneven distribution of the slurry flocculation is avoided, the local pressure increase of the thickener body is avoided, the use stability of the device is improved, and the service life of the device is prolonged. BRIEF DESCRIPTION OF DRAWINGS
[0024] Figure 1 It is a schematic diagram of the overall structure of the present application;
[0025] Figure 2 It is a schematic diagram of the first electric sliding block mounting structure of the present application;
[0026] Figure 3 It is a schematic diagram of the movable scraper mounting structure of the present application;
[0027] Figure 4 It is a schematic diagram of the first electric telescopic rod mounting structure of the present application;
[0028] Figure 5 It is a schematic diagram of the second electric sliding block mounting structure of the present application;
[0029] Figure 6 It is a schematic diagram of the second electric sliding block and rotating motor mounting structure of the present application;
[0030] Figure 7 It is a schematic diagram of the movable cover and rotating shaft mounting structure of the present application;
[0031] Figure 8 It is a schematic diagram of the positioning block and extrusion block mounting structure of the present application;
[0032] Figure 9 It is a schematic diagram of the second electric telescopic rod mounting structure of the present application;
[0033] Figure 10 It is a schematic diagram of the positioning block cross-section structure of the present application;
[0034] Figure 11 It is a schematic diagram of the third electric sliding block mounting structure of the present application;
[0035] Figure 12Figure 1 is a schematic view of the movable bubble blocking plate and the third electric sliding block mounting structure of the present application.
[0036] In the figure: 1, concentrator body; 2, fixed bubble blocking plate; 3, movable bubble blocking plate; 4, fixed rod; 5, movable block; 6, first sliding groove; 7, first electric sliding block; 8, movable scraper; 9, movable cover; 10, opening; 11, first electric telescopic rod; 12, second sliding groove; 13, second electric sliding block; 14, rotating motor; 15, rotating shaft; 16, first slot; 17, positioning block; 18, extrusion block; 19, second electric telescopic rod; 20, second slot; 21, pressure sensor; 22, spring telescopic rod; 23, third sliding groove; 24, third electric sliding block. DETAILED DESCRIPTION
[0037] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments of the present application.
[0038] REFERENCE Figures 1-12 A central transmission concentrator with operation regulation function, comprising a concentrator body 1, a fixed bubble blocking plate 2 is installed on the inner wall top of the concentrator body 1, a movable bubble blocking plate 3 is movably installed on the inner wall of the fixed bubble blocking plate 2, a plurality of fixed rods 4 are movably installed on the inner wall below the fixed bubble blocking plate 2 of the concentrator body 1, a movable scraper 8 is movably installed on the side of the fixed rod 4 close to the inner wall of the concentrator body 1, a movable block 5 is movably installed on the side of the fixed rod 4 away from the inner wall of the concentrator body 1, and an auxiliary mechanism is arranged in the movable block 5. The position of the movable bubble blocking plate 3 changes on the fixed bubble blocking plate 2, thereby adjusting the tooth gap between the movable bubble blocking plate 3 and the fixed bubble blocking plate 2, so that the movable bubble blocking plate 3 and the fixed bubble blocking plate 2 can be adjusted according to the size of the processed bubbles, the stability of the device for processing bubbles of different sizes is increased, and the use convenience of the device is increased. The movable scraper 8 abuts against the inner wall of the concentrator body 1, at this time, through the rotation of the fixed rod 4, the movable scraper 8 can scrape off the attached ore slurry on the inner wall of the concentrator body 1, realize self-cleaning of the inner wall of the concentrator body 1, and increase the use convenience of the device. The auxiliary mechanism can assist in crushing bubbles and can also swallow small bubble particles, so that after the bubbles are crushed, the small particles in the bubbles can quickly collide in the inside of the movable block 5, thereby accelerating the fusion between the small particles, enhancing the flocculation effect of the device on the ore slurry, and increasing the use convenience of the device. The flocculation material at the bottom of the concentrator body 1 can also be sampled and detected, and the use function diversity of the device is increased.
[0039] As one technical optimization scheme of the present application, a third sliding groove 23 is formed on the inner wall of the fixed baffle 2, and a plurality of third electric sliding blocks 24 are uniformly installed on the side of the movable baffle 3 close to the third sliding groove 23, and the third electric sliding blocks 24 are slidingly installed in the third sliding groove 23. The sliding of the third electric sliding blocks 24 in the third sliding groove 23 can drive the movable baffle 3 to move on the fixed baffle 2.
[0040] As one technical optimization scheme of the present application, a first sliding groove 6 is formed on the inner wall below the fixed baffle 2 of the thickener body 1, a first electric sliding block 7 is installed on the side of the fixed rod 4 close to the first sliding groove 6, and the first electric sliding block 7 is slidingly installed in the first sliding groove 6. The sliding of the first electric sliding block 7 in the first sliding groove 6 drives the movable block 5 to make a circular motion in the inner ring of the movable baffle 3.
[0041] As one technical optimization scheme of the present application, a first electric telescopic rod 11 is embeddedly installed on the side of the fixed rod 4 close to the inner wall of the thickener body 1, the telescopic end of the first electric telescopic rod 11 is away from the fixed rod 4, and the telescopic end of the first electric telescopic rod 11 is connected with the movable scraper 8. The first electric telescopic rod 11 drives the movable scraper 8 to make an extension motion, so that the movable scraper 8 abuts against the inner wall of the thickener body 1. At this time, through the rotation of the fixed rod 4, the movable scraper 8 can scrape off the attached ore slurry on the inner wall of the thickener body 1, realizes self-cleaning of the inner wall of the thickener body 1, and increases the use convenience of the device.
[0042] As one technical optimization scheme of the present application, a second sliding groove 12 is vertically formed on the side of the fixed rod 4 away from the inner wall of the thickener body 1, a second electric sliding block 13 is installed on the side of the movable block 5 close to the second sliding groove 12, and the second electric sliding block 13 is slidingly installed in the second sliding groove 12. Through the sliding of the second electric sliding block 13 in the second sliding groove 12, the movable block 5 can move up and down on the fixed rod 4.
[0043] As one technical optimization scheme of the present application, a rotary motor 14 is embeddedly installed on the side of the movable block 5 close to the second sliding groove 12, the installation end of the rotary motor 14 is away from the movable block 5, and the installation end of the rotary motor 14 is connected with the second electric sliding block 13. The rotary motor 14 can drive the movable block 5 to rotate, so that the movable block 5 can convert the use state according to different use requirements.
[0044] As a technical optimization scheme of the present application, the auxiliary mechanism comprises positioning blocks 17 and extrusion blocks 18, the top of the movable block 5 is provided with a first slot 16, the top and the bottom of the movable block 5 are movably provided with movable covers 9, the two side inner walls of the first slot 16 are movably provided with the positioning blocks 17, and the two positioning blocks 17 movably provided with the extrusion blocks 18 on the side close to each other. The movable cover 9 is used for sealing the first slot 16, so that the storage of the sampled ore slurry flocculation in the first slot 16 is more stable, the ore slurry flocculation can be more stable when the positioning blocks 17 and the extrusion blocks 18 extrude and detect the ore slurry flocculation, and the accuracy of the detection result of the device is ensured.
[0045] As a technical optimization scheme of the present application, the first slot 16 is embedded and installed with rotating shafts 15 on the two side inner walls of the top and the bottom, the output ends of the rotating shafts 15 are connected with the movable covers 9, and a plurality of openings 10 are uniformly and penetratingly formed in the movable covers 9. The rotating shafts 15 drive the movable covers 9 to open and close, the openings 10 can make the water of the ore slurry flocculation seep out and block the ore slurry flocculation in the first slot 16.
[0046] As a technical optimization scheme of the present application, the two side inner walls of the first slot 16 are embedded and installed with second electric telescopic rods 19, the telescopic ends of the second electric telescopic rods 19 are close to each other, and the telescopic ends of the second electric telescopic rods 19 are connected with the positioning blocks 17. The extension of the second electric telescopic rods 19 can make the two positioning blocks 17 move close to each other.
[0047] As a technical optimization scheme of the present application, the two positioning blocks 17 are provided with second slots 20 on the side close to each other, the extrusion blocks 18 are slidingly installed in the second slots 20, a plurality of pressure sensors 21 are uniformly installed on the inner wall bottom ends of the second slots 20, one end of the pressure sensor 21 close to the extrusion block 18 is connected with a spring telescopic rod 22, and the other end of the spring telescopic rod 22 close to the extrusion block 18 is connected with the extrusion block 18. The two positioning blocks 17 move close to each other, the extrusion blocks 18 extrude the ore slurry flocculation taken in the movable block 5 when the two positioning blocks 17 move close to each other, the second electric telescopic rods 19 are extended by a preset length, the two extrusion blocks 18 extrude the ore slurry flocculation, the extrusion block 18 slides into the second slot 20 under the extrusion of the ore slurry flocculation, the extrusion block 18 extrudes the spring telescopic rod 22, the spring telescopic rod 22 extrudes the pressure sensor 21, the pressure value measured by the pressure sensor 21 at this time is transmitted to the background control system, the background control system compares the pressure value measured at this time with a standard pressure value, so as to reflect the stability and structural strength of the flocculation group, indirectly evaluate the compactness, and complete the quality detection of the ore slurry flocculation.
[0048] In use, the power consuming mechanisms in the device are powered by an external power supply, and the device is provided with a control system for controlling the power consuming mechanisms in the device. The concentrator body 1 is a mature technology, and therefore its specific working form will not be described in detail. The fixed bubble blocking plate 2 and the movable bubble blocking plate 3 can be assembled by multiple parts during installation, which facilitates production and subsequent installation and disassembly. The rotating shaft 15 is an electric drive shaft. When the device is in use, the rake frame leaves a predetermined distance between the edge of the rake frame and the movable block 5 during rotation, and the two do not interfere with each other during use.
[0049] When the concentrator body 1 is processing the ore pulp, bubbles will be generated inside the concentrator body 1. The bubbles will rise and flow to the fixed bubble blocking plate 2 and the movable bubble blocking plate 3 along with the overflow of the supernatant of the concentrator body 1. The bubbles will be broken when they move to the fixed bubble blocking plate 2 and the movable bubble blocking plate 3. Since the concentrator body 1 needs to process various types of ore pulp during use, and the size of the bubbles generated during the processing of different ore pulp is different, when the bubbles inside the ore pulp change, the third electric sliding block 24 slides in the third sliding groove 23 at this time, so that the movable bubble blocking plate 3 rotates inside the fixed bubble blocking plate 2. By changing the position of the movable bubble blocking plate 3 on the fixed bubble blocking plate 2, the gap between the teeth of the movable bubble blocking plate 3 and the fixed bubble blocking plate 2 is adjusted, so that the movable bubble blocking plate 3 and the fixed bubble blocking plate 2 can be adjusted according to the size of the processed bubbles, increasing the stability of the device in processing different size bubbles and increasing the convenience of the device.
[0050] When the device is processing bubbles, if there are too many bubbles inside the concentrator body 1, the first electric sliding block 7 slides inside the first sliding groove 6 at this time, so that the movable block 5 moves around the inner circle of the movable bubble blocking plate 3. During the movement of the movable block 5, the rotating motor 14 drives the movable block 5 to rotate, so that the movable block 5 can assist in breaking the bubbles near the movable bubble blocking plate 3 and the fixed bubble blocking plate 2 during the movement, further enhancing the breaking effect of the device on the bubbles, preventing the bubbles from flowing into the overflow tank through the movable bubble blocking plate 3 and the fixed bubble blocking plate 2, causing pollution to the overflow water, and increasing the stability of the use function of the device.
[0051] The movable block 5 is driven to rotate by the rotating motor 14, so that the movable block 5 rotates to a horizontal state. At this time, the first slot 16 is in a horizontal state. At this time, the water surface position of the concentrator body 1 is located in the middle position of the first slot 16. Then, the movable block 5 performs a circular motion around the inner wall of the concentrator body 1, and the rotating shaft 15 at the forward end drives the movable cover 9 to rotate, so that the movable cover 9 is opened. At this time, during the process of the movable block 5 performing a circular motion around the concentrator body 1, the fine mineral particles in the broken bubbles will enter the interior of the movable block 5 under the rotation of the movable block 5. The fine mineral particles in the bubbles are "swallowed" by the movable block 5, so that after the bubbles are broken, the fine mineral particles inside the bubbles can quickly collide inside the movable block 5, thereby accelerating the fusion between the fine mineral particles, enhancing the flocculation effect of the device on the slurry, and increasing the convenience of use of the device.
[0052] When processing bubbles, multiple movable blocks 5 can be used in groups, that is, half of the movable blocks 5 assist in breaking the bubbles by rotation, and the other half of the movable blocks 5 "swallow" the fine mineral particles of the broken bubbles to assist in combining, thereby increasing the convenience of using the device.
[0053] When the fixed rod 4 makes a circular motion around the inner wall of the concentrator body 1, the movable scraper 8 is driven to extend by the first electric telescopic rod 11, so that the movable scraper 8 abuts the inner wall of the concentrator body 1. At this time, through the rotation of the fixed rod 4, the movable scraper 8 can scrape off the slurry attached to the inner wall of the concentrator body 1, realize self-cleaning of the inner wall of the concentrator body 1, and increase the convenience of use of the device.
[0054] After the slurry inside the concentrator body 1 has been processed for a preset time, the movable block 5 rotates to Figure 3 In the vertical state shown, the rotating shaft 15 at the bottom of the movable block 5 drives the movable cover 9 to rotate, so that the movable cover 9 no longer blocks the bottom of the movable block 5. Then, the second electric slider 13 slides in the second chute 12, causing the movable block 5 to move downward. Then, the movable block 5 is inserted into the slurry flocculent deposited at the bottom of the concentrator body 1. As the movable block 5 moves downward, the slurry flocculent deposited at the bottom of the concentrator body 1 enters the interior of the movable block 5. After the movable block 5 "swallows" a preset amount of slurry flocculent, the movable cover 9 at the bottom of the movable block 5 blocks the bottom of the movable block 5 again. Then, the movable block 5 moves upward to a height above the water surface. At this time, the sampling of the flocculated sediment at the bottom of the concentrator body 1 is completed.
[0055] Subsequently, the second electric telescopic rod 19 drives the positioning block 17 to extend, so that the two positioning blocks 17 move towards each other, and when the two positioning blocks 17 move towards each other, the extrusion block 18 extrudes the slurry flocculation in the movable block 5, and through the extension of the second electric telescopic rod 19 by a preset length, the two extrusion blocks 18 extrude the slurry flocculation, and under the extrusion of the slurry flocculation, the extrusion block 18 slides towards the inside of the second slot 20, the extrusion block 18 extrudes the spring telescopic rod 22, the spring telescopic rod 22 extrudes the pressure sensor 21, and the pressure value measured by the pressure sensor 21 at this time is transmitted to the background control system, and the background control system compares the pressure value measured at this time with the standard pressure value, so as to reflect the stability and structural strength of the flocculation group, and indirectly evaluate the tightness, complete the quality detection of the slurry flocculation, and also can adjust the addition amount of the flocculant according to the measurement result, so as to enhance the quality of the flocculation, and increase the use convenience of the device;
[0056] By controlling the depth of the movable block 5, the device can detect the quality of the slurry flocculation at different depths of the thickener body 1, so as to calculate a more scientific discharge time of the slurry flocculation, so that the quality of the slurry flocculation discharged by the device is unified, and the difficulty of subsequent processing of the slurry flocculation is reduced;
[0057] By sampling and detecting the slurry flocculation at the same height level of the thickener body 1 by the plurality of movable blocks 5, and then comparing the detection results of the plurality of movable blocks 5, the uniformity of the slurry flocculation in the thickener body 1 can be detected, so that the uniformity of the slurry can be detected, and the uneven distribution of the slurry flocculation is avoided, the local pressure increase of the thickener body 1 is avoided, the use stability of the device is increased, and the service life of the device is prolonged.
[0058] The above is only the preferred specific embodiment of the present application, but the protection scope of the present application is not limited thereto, any person skilled in the art can make equivalent replacement or change according to the technical scheme and inventive concept of the present application within the technical range disclosed by the present application, which should be covered within the protection scope of the present application.
Claims
1. A central transmission concentrator with operation control function, comprising a concentrator body (1), characterized in that: A fixed bubble baffle (2) is installed on the top of the inner wall of the concentrator body (1), and a movable bubble baffle (3) is movably installed on the inner wall of the fixed bubble baffle (2). The movable bubble baffle (3) changes its position on the fixed bubble baffle (2), thereby adjusting the tooth gap between the movable bubble baffle (3) and the fixed bubble baffle (2), so that the movable bubble baffle (3) and the fixed bubble baffle (2) can be adjusted according to the size of the bubbles to be processed. A plurality of fixed rods (4) are evenly and movably installed on the inner wall below the fixed bubble baffle (2) of the concentrator body (1), and a movable scraper (8) is movably installed on the side of the fixed rod (4) close to the inner wall of the concentrator body (1), and a movable block (5) is movably installed on the side of the fixed rod (4) away from the inner wall of the concentrator body (1). An auxiliary mechanism is provided inside the movable block (5), and the auxiliary mechanism can assist in breaking the bubbles.
2. The central transmission concentrator with operation control function according to claim 1, characterized in that: A third slide groove (23) is provided on the inner wall of the fixed bubble baffle (2), and a plurality of third electric sliders (24) are evenly installed on one side of the movable bubble baffle (3) close to the third slide groove (23). The third electric sliders (24) are slidably installed inside the third slide groove (23).
3. The central transmission concentrator with operation control function according to claim 1, characterized in that: The concentrator body (1) is provided with a first chute (6) on the inner wall below the fixed bubble baffle (2), and a first electric slider (7) is installed on the side of the fixed rod (4) close to the first chute (6). The first electric slider (7) is slidably installed inside the first chute (6).
4. The central transmission concentrator with operation control function according to claim 1, characterized in that: A first electric telescopic rod (11) is embedded and installed on one side of the fixed rod (4) close to the inner wall of the concentrator body (1), the telescopic end of the first electric telescopic rod (11) is away from the fixed rod (4), and the telescopic end of the first electric telescopic rod (11) is connected to the movable scraper (8).
5. The central transmission concentrator with operation control function according to claim 1, characterized in that: A second chute (12) is vertically opened on a side of the fixed rod (4) away from the inner wall of the concentrator body (1), and a second electric slider (13) is installed on a side of the movable block (5) close to the second chute (12). The second electric slider (13) is slidably installed inside the second chute (12).
6. The central transmission concentrator with operation control function according to claim 5, characterized in that: A rotating motor (14) is embedded and installed on one side of the movable block (5) close to the second slide groove (12), and the installation end of the rotating motor (14) is away from the movable block (5). The installation end of the rotating motor (14) is connected to the second electric slider (13).
7. The central transmission concentrator with operation control function according to claim 1, characterized in that: The auxiliary mechanism includes a positioning block (17) and an extrusion block (18). A first slot (16) is provided through the top of the movable block (5). A movable cover (9) is movably mounted on the top and bottom of the movable block (5). Positioning blocks (17) are movably mounted on the inner walls of both sides of the first slot (16). Extrusion blocks (18) are movably mounted on the sides of the two positioning blocks (17) that are close to each other.
8. The central transmission concentrator with operation control function according to claim 7, characterized in that: A rotating shaft (15) is embedded and installed on both inner walls of the top and bottom of the first slot (16), and the output end of the rotating shaft (15) is connected to the movable cover (9). The movable cover (9) is evenly penetrated by a plurality of openings (10).
9. The central transmission concentrator with operation control function according to claim 7, characterized in that: Second electric telescopic rods (19) are embedded and installed on both inner walls of the first slot (16), the telescopic ends of the second electric telescopic rods (19) are close to each other, and the telescopic ends of the second electric telescopic rods (19) are connected to the positioning blocks (17).
10. The central transmission concentrator with operation control function according to claim 7, characterized in that: The two positioning blocks (17) are each provided with a second slot (20) on a side close to each other, the extrusion block (18) is slidably mounted inside the second slot (20), a plurality of pressure sensors (21) are evenly mounted on the bottom end of the inner wall of the second slot (20), one end of the pressure sensor (21) close to the extrusion block (18) is connected to a spring telescopic rod (22), and one end of the spring telescopic rod (22) close to the extrusion block (18) is connected to the extrusion block (18).
Citation Information
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