Ore pulp stirring equipment

By designing a slurry mixing equipment with a slurry guide assembly and a detection module, the problem of easy formation of ore powder when contacting water is solved, efficient slurry mixing and real-time concentration adjustment are achieved, and the quality of the slurry is ensured.

CN120022799AInactive Publication Date: 2025-05-23YANGZHOU HUANRUI TECH CO LTD
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Patent Information

Application Number
CN202510502262.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-22
Publication Date
2025-05-23
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing slurry mixing equipment is prone to form agglomeration when the ore powder comes into contact with water, resulting in low stirring efficiency.

Method used

A slurry mixing equipment was designed. By setting up a placement barrel and a turntable, the ore powder was dispersed and injected into the inside of the barrel, and the mixing of water and ore powder was accelerated using the liquid conduction assembly and scraper. At the same time, the detection module, data processing module, display module and control module are used to monitor and adjust the slurry concentration in real time.

Benefits of technology

It effectively avoids the accumulation of ore powder in the mixing equipment, improves the mixing efficiency between water and ore powder, reduces the agglomeration frequency, and ensures the quality of ore slurry by real-time monitoring and adjustment of the ore slurry concentration.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses ore pulp stirring equipment, and belongs to the technical field of ore pulp stirring, the ore pulp stirring equipment comprises a barrel body, a discharging component is arranged inside and outside the barrel body, the discharging component comprises stirring blades which are fixedly connected to the outer side of a rotating rod and are arranged in parallel, and a placing barrel is fixedly connected to the upper side of the interior of the barrel body; through holes are formed in the lower side of the interior of the containing barrel in an annular array arrangement and penetrating mode, and a rotating disc is rotationally connected to the lower side of the interior of the containing barrel in a lap joint mode. Ore powder is dispersed and thrown into the barrel body through the arranged containing disc in the rotating process of the rotating disc, and meanwhile, the residual ore powder can be reduced through centrifugal force of the rotating disc; the ore powder is injected into the barrel body in a dispersed mode, a large amount of ore powder is prevented from being accumulated in the same area in the barrel body, then water and the ore powder can be rapidly mixed, the frequency of caking of the ore powder and the water is reduced, and the purpose of improving the ore pulp mixing efficiency is achieved.
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Description

Technical Field

[0001] The present invention relates to the technical field of ore slurry stirring, and more specifically to ore slurry stirring equipment. Background Art

[0002] Slurry refers to a liquid mixture formed by adding water and other auxiliary materials to solid raw materials such as ore and mineral soil in order to extract target elements in industrial production. Slurry is mainly composed of ore that has been crushed and ground and mixed with water. It contains solid particles of different sizes, which may be corrosive or have high hardness. The transmission and processing of slurry is an important part of the production process in the mining, metallurgical and related industrial fields.

[0003] Slurry stirring is an important part of the mineral processing process. Stirring is usually divided into two methods: mechanical stirring and compressed air stirring. Mechanical stirring converts mechanical energy into kinetic energy of the fluid through the stirrer, thereby generating shear force and vortex to drive the internal flow of the fluid, while compressed air stirring uses bubbles generated by compressed air to stir the slurry. There will be a small amount of loss in the addition process of mineral water powder and water; In the prior art, before the slurry mixing equipment mixes the slurry, the staff will calculate the amount of ore and the water supply, and pour the calculated ore powder and water into the slurry mixing equipment. However, after the ore powder comes into contact with water, the ore powder will pile up together during the pouring process and cannot be mixed with water in time, thereby forming lumps. If the auxiliary agent is not fully mixed, the mixing efficiency of the slurry will be affected. Summary of the invention

[0004] In view of the problems existing in the prior art, the object of the present invention is to provide a slurry stirring device.

[0005] To solve the above problems, the present invention adopts the following technical solution, which can disperse the ore powder and inject it into the barrel when the slurry is stirred, so as to avoid a large amount of ore powder accumulating in the same area inside the barrel, thereby allowing water and ore powder to be mixed quickly.

[0006] A slurry stirring device comprises a barrel and a fixing frame arranged on the upper side of the barrel, a driving motor is arranged on the upper side of the fixing frame, a transmission member is arranged at the output end of the driving motor, a rotating rod is arranged on the left side of the lower end of the transmission member, and a material discharge member is arranged inside and outside the barrel; The discharge component includes stirring blades fixedly connected to the outside of the rotating rod and arranged in parallel, a placement bucket is fixedly connected to the upper inner side of the barrel body, through holes are arranged in a circular array on the lower inner side of the placement bucket, a turntable is rotatably overlapped on the lower inner side of the placement bucket, and partition bars are fixedly connected to the outer side of the turntable in a circular array, and the turntable is fixedly connected to the outer side of the rotating rod.

[0007] Furthermore, the rotating rod passes through the fixing frame and the placing bucket from top to bottom respectively, and the partition bar is arc-shaped. After the partition bar rotates, it slides and contacts the lower side of the inner part of the placing bucket, and passes through the through hole counterclockwise after the partition bar rotates.

[0008] Furthermore, a liquid guiding assembly is provided inside the barrel body, and the liquid guiding assembly includes scraping strips arranged in a circular array and fixedly connected to the outer side of the rotating rod.

[0009] Furthermore, the scraper strip is in an inverted "L" shape, the outer surface of the scraper strip is in sliding contact with the inner wall of the barrel body, a liquid guide groove is provided inside the scraper strip, the liquid guide groove is in an inverted "L" shape, and the scraper strip is placed below the barrel.

[0010] Furthermore, a detection component is provided on the inside and outside of the barrel body, and the detection component includes a feeding table fixedly connected to the back side of the barrel body.

[0011] Furthermore, a storage cavity is provided on the upper inner side of the feeding platform, the upper and front sides of the storage cavity are both connected to the outside, the storage cavity is located above the placement bucket, a detection component is provided on the left side of the lower end of the placement bucket, a data processing module, a display module and a control module are provided on the left side of the feeding platform, a nozzle is provided through the inner back side of the storage cavity, and the nozzle faces the inside of the storage cavity, and the other end of the nozzle is connected to an external water supply device through a pipeline; Detection module: an ultrasonic detector for collecting the slurry concentration parameters inside the barrel, which includes an ultrasonic transmitter and an ultrasonic receiver, and transmits the collected parameters to the data processing module; Data processing module: used to judge the slurry concentration through the slurry concentration parameters transmitted by the detection module. When the slurry concentration is lower or higher than the preset parameters, the amount of ore powder and water to be added is calculated, and then a signal is sent to the control module and the calculation result is transmitted to the display module; Display module: used to display the amount of ore powder and water that needs to be added; Control module: used to control the operation time of the external water supply equipment according to the data transmitted by the data processing module; the data processing module compares the collected slurry concentration data with the preset parameters: ; ; in, is the slurry concentration of the slurry being tested, To preset the slurry concentration parameters; The data processing module calculates the amount of ore powder that needs to be added when the slurry concentration is lower than the preset parameter using the following formula based on the data transmitted by the detection module: M=( - )×V×ρ / (100% - ); Where M is the weight of the ore powder to be added, V is the volume of the current slurry, and ρ is the density of the ore powder; The data processing module calculates the amount of water that needs to be added when the slurry concentration is higher than the preset parameter using the following formula based on the data transmitted by the detection module: W=( - )× V / ; Among them, W is the weight of water that needs to be added. After the weight of water that needs to be added is calculated, the control module will control the corresponding operation time of the external water supply equipment according to the data transmitted by the data processing module.

[0012] Furthermore, a shaking assembly is provided inside the feeding table, and the shaking assembly includes a placement plate slidably connected to the inside of the storage cavity, and the placement plate is inclined and has a "U" shape.

[0013] Furthermore, the lower inner side of the storage cavity is provided with embedding grooves arranged in a rectangular array, a pressure spring is fixedly connected between the embedding groove and the placement plate, electric push rods are provided on the front and rear sides of the right inner end of the feeding table, the electric push rods are controlled by a control module, the telescopic end of the electric push rod is fixedly connected with a baffle, the baffle is slidably overlapped on the right inner side of the storage cavity, the baffle moves downward and is squeezed and contacted with the lower inner side of the placement plate, the placement plate moves downward and is squeezed and contacted with the lower inner side of the storage cavity, the back of the baffle is arranged in a linear array and fixedly connected with extrusion bars, the extrusion bars move downward and are squeezed and contacted with the lower inner side of the placement plate.

[0014] Compared with the prior art, the present invention has the following beneficial effects: The present invention disperses the ore powder into the barrel body through the placement disk during the rotation of the turntable. At the same time, the centrifugal force of the turntable can reduce the residual ore powder. When the ore slurry is stirred, the ore powder is dispersedly injected into the barrel body to avoid a large amount of ore powder accumulating in the same area inside the barrel body, so that water and ore powder can be quickly mixed, and the frequency of agglomeration of ore powder and water is reduced, so as to achieve the purpose of improving the slurry mixing efficiency.

[0015] The present invention guides the water source into the deep inside of the barrel body through the provided liquid guide groove, thereby accelerating the mixing of water and ore powder. Since the scraper can not only scrape off the ore powder adhering to the inner wall of the barrel body during rotation to avoid waste of ore powder, but also can introduce water into the deep inside of the barrel body, so that the water can be fully mixed with the ore powder, thereby further improving the slurry mixing efficiency.

[0016] The present invention can calculate the demand for ore powder and water after detecting the slurry concentration and comparing the slurry concentration with preset parameters through the detection module, data processing module, display module and control module. Since the concentration of the slurry can be detected during the stirring process, when the slurry concentration is lower than the preset parameters, the weight of the ore powder that needs to be added can be displayed to the staff. When the slurry concentration is higher than the preset parameters, the operating time of the external water supply equipment can be controlled to ensure that the water supply meets the demand, thereby ensuring the quality of the slurry after stirring. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 It is a structural schematic diagram of the present invention; Figure 2 It is a cross-sectional structural schematic diagram of the present invention; Figure 3 It is a front view cross-sectional structural schematic diagram of the placement barrel of the present invention; Figure 4 It is a schematic diagram of the structure of the partition strip of the present invention; Figure 5 It is a schematic diagram of the front cross-sectional structure of the scraper strip of the present invention; Figure 6 It is a structural schematic diagram of the feeding platform of the present invention; Figure 7 It is a schematic diagram of the left side cross-sectional structure of the storage chamber of the present invention; Figure 8 It is a schematic diagram of the left side cross-sectional structure of the feeding table of the present invention; Fig. 9 It is a schematic diagram of the partial working framework of the detection module, data processing module and display module of the present invention; Fig.10 It is a schematic diagram of the partial working process of the detection module, data processing module and display module of the present invention.

[0018] Description of the numbers in the figure: 1. Barrel body; 11. Fixed frame; 12. Driving motor; 13. Transmission member; 14. Rotating rod; 2. Discharging component; 21. Stirring blade; 22. Placement barrel; 23. Through hole; 24. Turntable; 25. Partition bar; 26. Liquid guide component; 261. Scraper bar; 262. Liquid guide groove; 3. Detection component; 31. Feeding table; 32. Storage cavity; 33. Detection module; 34. Data processing module; 35. Display module; 36. Control module; 37. Nozzle; 38. Shaking component; 381. Placement plate; 382. Embedded groove; 383. Pressure spring; 384. Electric push rod; 385. Baffle; 386. Extrusion strip. DETAILED DESCRIPTION

[0019] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention; it is obvious that the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments, and all other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making creative work are within the scope of protection of the present invention.

[0020] See also Figures 1 to 10 A slurry mixing device comprises a barrel 1 and a fixing frame 11 arranged on the upper side of the barrel 1, a driving motor 12 is arranged on the upper side of the fixing frame 11, a transmission member 13 is arranged at the output end of the driving motor 12, a rotating rod 14 is arranged on the left side of the lower end of the transmission member 13, and a discharging member 2 is arranged inside and outside the barrel 1; The discharge component 2 includes stirring blades 21 fixedly connected to the outer side of the rotating rod 14 and arranged in parallel. A placement barrel 22 is fixedly connected to the upper inner side of the barrel body 1. The inner lower side of the placement barrel 22 is arranged in a circular array and is penetrated by through holes 23. A turntable 24 is rotatably overlapped on the inner lower side of the placement barrel 22. The outer side of the turntable 24 is fixedly connected to a partition bar 25 arranged in a circular array. The turntable 24 is fixedly connected to the outer side of the rotating rod 14.

[0021] The rotating rod 14 passes through the fixing frame 11 and the placing bucket 22 from top to bottom respectively. The partition bar 25 is arc-shaped. After the partition bar 25 rotates, it slides and contacts the lower side of the inner part of the placing bucket 22. After the partition bar 25 rotates, it passes through the through hole 23 counterclockwise.

[0022] By adopting the above technical solution, after the ore powder that has been pre-proportioned is poured into the placing barrel 22, the corresponding proportion of water is injected into the barrel body 1, and then the driving motor 12 on the upper side of the fixing frame 11 is started. After the driving motor 12 is running, the rotating rod 14 is driven to rotate through the transmission member 13. At this time, the rotating disk 24 on the outer side of the rotating rod 14 rotates inside the placing barrel 22. After the ore powder is poured into the placing barrel 22, the ore powder covering the top of the rotating disk 24 is separated by the partition bar 25, and then the rotating disk 24 continues to drive the partition bar 25 to rotate, and the ore powder gradually slides from the gap between the two adjacent partition bars 25 to the through hole 23, and then passes through the through hole 23 of the barrel body. 1, so that the ore powder is dispersed into the barrel body 1 and mixed with water. At the same time, the rotating rod 14 drives the stirring blade 21 to rotate when rotating, and stirs the water and the ore powder. During the continuous rotation of the turntable 24, the ore powder remaining on the surface of the turntable 24 gradually slides to the through hole 23 due to the centrifugal force generated during the rotation of the turntable 24. When the slurry is stirred, the ore powder is dispersedly injected into the barrel body 1, avoiding a large amount of ore powder from accumulating in the same area inside the barrel body 1, thereby allowing water and ore powder to be quickly mixed, reducing the frequency of agglomeration of ore powder and water, so as to achieve the purpose of improving the slurry mixing efficiency.

[0023] like Figure 1 As shown, a liquid guiding assembly 26 is disposed inside the barrel body 1 , and the liquid guiding assembly 26 includes scraping strips 261 arranged in a circular array and fixedly connected to the outer side of the rotating rod 14 .

[0024] The scraper 261 is in an inverted "L" shape, and the outer surface of the scraper 261 is in sliding contact with the inner wall of the barrel body 1. A liquid guide groove 262 is provided inside the scraper 261, and the liquid guide groove 262 is in an inverted "L" shape. The scraper 261 is located below the barrel 22.

[0025] By adopting the above technical solution, while the rotating rod 14 drives the stirring blade 21 to mix the ore powder and water, the rotating rod 14 also drives the scraper 261 to rotate, so that the scraper 261 is always in contact with the inner wall of the barrel body 1 during the rotation process, and the ore powder adhering to the inner wall of the barrel body 1 is scraped off. At the same time, after the water is poured into the barrel body 1 and mixed with the ore powder, part of the water will remain on the surface of the slurry, while some ore powder at the bottom of the slurry will not be in contact with the water. At this time, the liquid guide groove 262 inside the scraper will guide the water and guide the water to the bottom of the slurry. Since the scraper can not only scrape off the ore powder adhering to the inner wall of the barrel body 1 during the rotation process to avoid wasting the ore powder, but also introduce water into the deep inside of the barrel body 1, so that the water can be fully mixed with the ore powder, thereby further improving the slurry mixing efficiency.

[0026] like Figure 1As shown, a detection component 3 is provided on the inside and outside of the barrel body 1 , and the detection component 3 includes a feeding table 31 fixedly connected to the back side of the barrel body 1 .

[0027] A storage chamber 32 is provided on the upper side of the feeding platform 31. The upper side and the front side of the storage chamber 32 are both connected to the outside. The storage chamber 32 is located above the placement barrel 22. A detection component 3 is provided on the left side of the lower end of the placement barrel 22. A data processing module 34, a display module 35 and a control module 36 are provided on the left side of the feeding platform 31. A nozzle 37 is provided through the back side of the storage chamber 32, and the nozzle 37 faces the inside of the storage chamber 32. The other end of the nozzle 37 is connected to an external water supply device through a pipeline. Detection module 33: an ultrasonic detector for collecting the slurry concentration parameters inside the barrel 1, which includes an ultrasonic transmitter and an ultrasonic receiver, and transmits the collected parameters to the data processing module 34; Data processing module 34: used to judge the slurry concentration through the slurry concentration parameter transmitted by the detection module 33, and when the slurry concentration is lower or higher than the preset parameter, calculate the amount of ore powder and water to be added, and then send a signal to the control module 36 and transmit the calculation result to the display module 35; Display module 35: used to display the amount of ore powder and water that needs to be added; Control module 36: used to control the operation time of the external water supply equipment according to the data transmitted by the data processing module 34; the data processing module 34 compares the collected slurry concentration data with the preset parameters: ; ; in, is the slurry concentration of the slurry being tested, To preset the slurry concentration parameters; The data processing module 34 calculates the amount of ore powder that needs to be added when the slurry concentration is lower than the preset parameter using the following formula based on the data transmitted by the detection module 33: M=( - )×V×ρ / (100% - ); Where M is the weight of the ore powder to be added, V is the volume of the current slurry, and ρ is the density of the ore powder; The data processing module 34 calculates the amount of water that needs to be added when the slurry concentration is higher than the preset parameter using the following formula based on the data transmitted by the detection module 33: W=( - )× V / ; Wherein, W is the weight of water that needs to be added. After the weight of water that needs to be added is calculated, the control module 36 will control the corresponding operation time of the external water supply equipment according to the data transmitted by the data processing module 34.

[0028] A shaking assembly 38 is provided inside the feeding table 31 .

[0029] By adopting the above technical solution, during the process of ore powder and water being mixed by the stirring blade 21, the detection module 33 placed under the barrel 22 detects the concentration of the mixed ore pulp through the ultrasonic wave emitted and received by the ultrasonic transmitter and the ultrasonic receiver, and transmits the collected data to the data processing module 34. Then, the data processing module 34 compares the ore pulp concentration collected by the detection module 33 with the preset parameters to determine whether the collected ore pulp concentration is higher or lower than the preset parameters. When the collected ore pulp concentration is lower than the preset parameters, the data processing module 34 calculates the amount of ore to be added, and transmits the data to the display module 35 after the calculation is completed. The calculated data is displayed by the display module 35, and the staff can fill the storage chamber 32 inside the feeding table 31 with ore powder according to the corresponding times through the data displayed by the display module 35, and then send the ore powder from the front of the storage chamber 32 into the barrel body 1 through the shaking component 38; When the collected slurry concentration is higher than the preset parameters, the data processing module 34 calculates the amount of water that needs to be added, transmits the data to the display module 35 after the calculation is completed, and displays the calculated data through the display module 35. At the same time, the data processing module 34 sends a signal to the external water supply equipment, so that the operating time of the external water supply equipment corresponds to the data displayed by the display module 35. The water delivered by the external water supply equipment is sprayed into the storage chamber 32 through the nozzle 37. Since the concentration of the slurry can be detected during the stirring process, when the slurry concentration is lower than the preset parameters, the weight of the ore powder that needs to be added can be displayed to the staff, and when the slurry concentration is higher than the preset parameters, the operating time of the external water supply equipment can be controlled to ensure that the water supply meets the demand, thereby ensuring the quality of the slurry after stirring.

[0030] like Figure 1 As shown, the shaking assembly 38 includes a placement plate 381 slidably connected to the interior of the storage cavity 32. The placement plate 381 is inclined and has a "U" shape.

[0031] Embedding grooves 382 are arranged in a rectangular array on the lower inner side of the storage cavity 32, and a pressure spring 383 is fixedly connected between the embedding grooves 382 and the placement plate 381. Electric push rods 384 are provided on the front and rear sides of the right end of the feeding table 31. The electric push rods 384 are controlled by the control module 36. The telescopic end of the electric push rod 384 is fixedly connected to a baffle 385, and the baffle 385 is slidably overlapped on the right inner side of the storage cavity 32. After the baffle 385 moves downward, it is squeezed and contacted with the inner lower side of the placement plate 381. After the placement plate 381 moves downward, it is squeezed and contacted with the inner lower side of the storage cavity 32. The back of the baffle 385 is arranged in a linear array and fixedly connected with an extrusion bar 386. After the extrusion bar 386 moves downward, it is squeezed and contacted with the inner lower side of the placement plate 381.

[0032] By adopting the above technical solution, after the ore powder enters the storage chamber 32, the placement plate 381 inside the storage chamber 32 will collect the ore powder. Because the baffle 385 and the extrusion strip 386 on its side are pushed downward by the electric push rod 384, the placement plate 381 can be squeezed, so that the placement plate 381 will press the pressure spring 383 below it, and the baffle 385 will also block the ore powder. When the electric push rod 384 pulls the baffle 385 upward, the ore powder will gradually slide from the storage chamber 32 into the barrel body 1, so that the amount of ore powder above the placement plate 381 is reduced. After the ore powder leaves the placement plate 381, the force exerted on the pressure spring 383 will be reduced, so that the placement plate 381 fixed with the pressure spring 383 will repeatedly shake, thereby accelerating the ore powder to leave from above the placement plate 381. At the same time, the shaking of the placement plate 381 can also prevent a small amount of ore powder from remaining above the placement plate 381.

[0033] Working principle: After the ore powder that has been pre-proportioned is poured into the placing barrel 22, the corresponding proportion of water is injected into the barrel body 1, and then the driving motor 12 on the upper side of the fixed frame 11 drives the transmission member 13 to run and drives the rotating rod 14 to rotate. At this time, the turntable 24 outside the rotating rod 14 rotates inside the placing barrel 22, and the ore powder covering the top of the turntable 24 is separated by the partition bar 25. Then the turntable 24 continues to drive the partition bar 25 to rotate, and the ore powder gradually slides from the gap between the two adjacent partition bars 25 to the through hole 23, and then passes through the through hole 23 into the barrel body 1, so that the ore powder is dispersed and mixed with water, and at this time, the stirring blade 21 that rotates with the rotating rod 14 The ore powder is stirred with the ore powder, and the ore powder remaining on the surface of the turntable 24 gradually slides toward the through hole 23 due to the centrifugal force generated during the rotation of the turntable 24. At the same time, the rotating rod 14 drives the scraper 261 to rotate, so that the scraper 261 scrapes off the ore powder adhering to the inner wall of the barrel body 1, and the liquid guide groove 262 guides the water to the bottom of the slurry. During the gradual formation of the slurry, the detection module 33 placed under the barrel 22 detects the concentration of the mixed slurry and transmits the collected data to the data processing module 34. Then the data processing module 34 compares the slurry concentration collected by the detection module 33 with the preset parameters to determine whether the collected slurry concentration is higher or lower than the preset parameters. When the concentration of the collected ore pulp is lower than the preset parameter, the data processing module 34 calculates the amount of ore that needs to be added, transmits the data to the display module 35 after the calculation is completed, and displays the calculated data through the display module 35. The staff can use the data displayed on the display module 35 to fill the storage chamber 32 inside the feeding table 31 with ore powder according to the corresponding times, and then send the ore powder from the front of the storage chamber 32 into the barrel 1 through the shaking component 38. When the concentration of the collected ore pulp is higher than the preset parameter, the data processing module 34 calculates the amount of water that needs to be added, transmits the data to the display module 35 after the calculation is completed, and displays the calculated data through the display module 35. The completed data is displayed, and at the same time, the data processing module 34 sends a signal to the external water supply equipment, so that the operating time of the external water supply equipment corresponds to the data displayed on the display module 35. The water delivered by the external water supply equipment is sprayed into the storage chamber 32 through the nozzle 37. After the ore powder enters the storage chamber 32, the placement plate 381 inside the storage chamber 32 will collect the ore powder. Because the baffle 385 and the extrusion strip 386 on its side are pushed downward by the electric push rod 384 and will block the ore powder, when the electric push rod 384 pulls the baffle 385 upward, the ore powder will gradually slide from the storage chamber 32 into the barrel body 1, so that the amount of ore powder above the placement plate 381 is reduced.

[0034] The above is only a preferred specific implementation of the present invention; however, the protection scope of the present invention is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes according to the technical solution and its improved conception within the technical scope disclosed by the present invention, which should be covered by the protection scope of the present invention.

Claims

1. A slurry stirring device, comprising a barrel and a fixing frame arranged on the upper side of the barrel, a driving motor is arranged on the upper side of the fixing frame, a transmission member is arranged at the output end of the driving motor, and a rotating rod is arranged on the left side of the lower end of the transmission member, characterized in that: The inside and outside of the barrel body are both provided with a material discharge component; The material discharging component includes stirring blades fixedly connected to the outside of the rotating rod and arranged in parallel, a placing bucket is fixedly connected to the upper inner side of the barrel body, and through holes are arranged in a circular array on the lower inner side of the placing bucket, a rotating disk is rotatably overlapped on the lower inner side of the placing bucket, and a partition bar is fixedly connected to the outer side of the rotating disk in a circular array, and the rotating disk is fixedly connected to the outer side of the rotating rod; A storage cavity is provided on the upper inner side of the feeding platform, a detection component is provided on the left side of the lower end of the placing barrel, a data processing module, a display module and a control module are provided on the left side of the feeding platform, and a nozzle is provided through the inner back side of the storage cavity; the data processing module compares the collected slurry concentration data with the preset parameters: ; ; in, is the slurry concentration of the slurry being tested, To preset the slurry concentration parameters; The data processing module calculates the amount of ore powder that needs to be added when the slurry concentration is lower than the preset parameter using the following formula based on the data transmitted by the detection module: M=( - )×V×ρ / (100% - ); Where M is the weight of the ore powder to be added, V is the volume of the current slurry, and ρ is the density of the ore powder; The data processing module calculates the amount of water that needs to be added when the slurry concentration is higher than the preset parameter using the following formula based on the data transmitted by the detection module: W=( - )× V / ; Among them, W is the weight of water that needs to be added. After the weight of water that needs to be added is calculated, the control module will control the corresponding operation time of the external water supply equipment according to the data transmitted by the data processing module.

2. A slurry stirring device according to claim 1, characterized in that: The rotating rod passes through the fixing frame and the placing bucket from top to bottom respectively, and the partition bar is arc-shaped. After the partition bar rotates, it slides and contacts the lower side of the inner part of the placing bucket. After the partition bar rotates, it passes through the through hole counterclockwise.

3. A slurry stirring device according to claim 1, characterized in that: A liquid guiding assembly is arranged inside the barrel body, and the liquid guiding assembly includes scraping strips arranged in a circular array and fixedly connected to the outer side of the rotating rod.

4. A slurry stirring device according to claim 3, characterized in that: The scraper strip is in an inverted "L" shape, the outer surface of the scraper strip is in sliding contact with the inner wall of the barrel body, a liquid guide groove is provided inside the scraper strip, the liquid guide groove is in an inverted "L" shape, and the scraper strip is located below the barrel.

5. The slurry stirring device according to claim 1, characterized in that: The inside and outside of the barrel body are jointly provided with a detection component, and the detection component includes a feeding platform fixedly connected to the back side of the barrel body.

6. A slurry stirring device according to claim 1, characterized in that: The upper side and the front side of the storage cavity are both connected to the outside world. The storage cavity is located above the bucket, and the nozzle faces the inside of the storage cavity. The other end of the nozzle is connected to an external water supply device through a pipeline. Detection module: an ultrasonic detector for collecting the slurry concentration parameters inside the barrel, which includes an ultrasonic transmitter and an ultrasonic receiver, and transmits the collected parameters to the data processing module; Data processing module: used to judge the slurry concentration through the slurry concentration parameters transmitted by the detection module. When the slurry concentration is lower or higher than the preset parameters, the amount of ore powder and water to be added is calculated, and then a signal is sent to the control module and the calculation result is transmitted to the display module; Display module: used to display the amount of ore powder and water that needs to be added; Control module: used to control the operating time of the external water supply equipment according to the data transmitted by the data processing module.

7. The slurry stirring device according to claim 1, characterized in that: A shaking assembly is provided inside the feeding table, and the shaking assembly includes a placement plate slidably connected to the inside of the storage cavity, the placement plate is inclined, and the placement plate is in a "U" shape.

8. A slurry stirring device according to claim 7, characterized in that: The lower inner side of the storage cavity is provided with embedding grooves arranged in a rectangular array, a pressure spring is fixedly connected between the embedding groove and the placement plate, electric push rods are provided on the front and rear sides of the right end of the feeding table, the electric push rods are controlled by a control module, the telescopic end of the electric push rod is fixedly connected with a baffle, the baffle is slidably overlapped on the right inner side of the storage cavity, the baffle moves downward and is pressed and contacted with the lower inner side of the placement plate, the placement plate moves downward and is pressed and contacted with the lower inner side of the storage cavity, the back of the baffle is arranged in a linear array and fixedly connected with extrusion bars, the extrusion bars move downward and are pressed and contacted with the lower inner side of the placement plate.

Citation Information

Patent Citations

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  • Ore pulp concentration adjusting device

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