Ball mill for ore grinding

By designing a grinding ball mill that includes processing components and inlet and outset components, the problem of existing ball mills requiring manual replacement of equipment and materials during the grinding process is solved, and automatic replacement of grinding balls and continuous abrasives is realized, reducing production costs and labor intensity.

CN120079480AActive Publication Date: 2025-06-03TAIHE IRON MINE CHONGQING IRON & STEEL GROUP MINING
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Patent Information

Application Number
CN202510495612.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-21
Publication Date
2025-06-03
Estimated Expiration
2045-04-21

AI Technical Summary

Technical Problem

When existing ball mills grind the materials coarse and fine grinding, staff need to take out the grinded materials and replace the equipment for processing, resulting in the need to increase the equipment and spend a lot of manpower during production, increasing production costs and labor intensity.

Method used

A ball mill for grinding is designed, including processing components and inlet and outlet components. The processing component drives the moving support block to drive the reversing moving frame to rotate through the lifting hydraulic cylinder, changing the inclination angle of the ball milling barrel, realizing the replacement of the grinding ball and continuous grinding of materials. The inlet and outlet components are driven by hydraulic cylinders and motors to realize continuous input of abrasives and automatic replacement of grinding balls.

Benefits of technology

It realizes automatic replacement of grinding balls and continuous feeding and discharge during the grinding process, reducing dependence on staff, reducing production costs and labor intensity, and improving grinding efficiency and effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a ball mill for ore grinding, and relates to the technical field of ball milling, the bottom end of a supporting integration frame is rotatably connected with a bearing treatment frame, one side of the bottom end of the bearing treatment frame is rotatably connected with a transposition moving frame, and the side end of the transposition moving frame is rotatably connected with a moving supporting block; a plurality of lifting hydraulic cylinders are installed at the positions, corresponding to the movable supporting blocks, of the side end of the bearing treatment frame at equal intervals, a coupling gearbox is installed at one end of the supporting integration frame, and a hydraulic motor is installed at one end of the coupling gearbox through a motor base. A processing hydraulic cylinder is matched to drive a supporting bearing plate and a discharging fixing barrel to move downwards, and the side end of an injection fixing pipe is attached to the side end of a ball milling barrel, so that grinding balls are thrown into the inner side of the ball milling barrel, replacement and filling of the grinding balls are achieved, the grinding balls can be replaced in the grinding process when materials are subjected to rough grinding and fine grinding, and the grinding efficiency is improved. Equipment does not need to be replaced.
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Description

Technical Field

[0001] The present invention relates to the technical field of ball milling, and specifically relates to a ball mill for ore grinding. Background Art

[0002] A ball mill is a grinding equipment widely used in industries such as mining, metallurgy, building materials, and chemical industry. It is mainly used to crush materials to a micron or nanometer fineness. Its core principle is that the cylinder rotates driven by a motor to generate centrifugal force, lifting the grinding medium and materials to a certain height and then dropping them. The falling grinding medium impacts and breaks the materials, and at the same time, the rolling friction further grinds the materials.

[0003] However, when the existing ball mill conducts rough grinding and fine grinding on materials, it requires workers to take out the ground materials and then replace the equipment for processing. As a result, during production, additional equipment is needed for processing, and a large amount of manpower is required for material replacement during processing, increasing production costs and the labor intensity of workers. Summary of the Invention

[0004] The present invention provides a ball mill for ore grinding, which can effectively solve the problem proposed in the above background art that when the existing ball mill conducts rough grinding and fine grinding on materials, it requires workers to take out the ground materials and then replace the equipment for processing. As a result, during production, additional equipment is needed for processing, and a large amount of manpower is required for material replacement during processing, increasing production costs and the labor intensity of workers.

[0005] To achieve the above object, the present invention provides the following technical solution: A ball mill for ore grinding, including a support integration frame, and a processing component is arranged on the support integration frame;

[0006] The processing component includes a load-bearing processing frame;

[0007] The bottom end of the support integration frame is rotatably connected to the load-bearing processing frame. One side of the bottom end of the load-bearing processing frame is rotatably connected to a transposition moving frame. The side end of the transposition moving frame is rotatably connected to a moving support block. A number of lifting hydraulic cylinders are equidistantly installed at positions corresponding to the moving support block on the side end of the load-bearing processing frame;

[0008] One end of the support integration frame is provided with a coupling gearbox. One end of the coupling gearbox is provided with a hydraulic motor through a motor base. The output shaft of the coupling gearbox is clamped with a transmission gear. The inside of the support integration frame is rotatably connected to a ball mill barrel. One end of the ball mill barrel is provided with a driven gear;

[0009] A collection and separation sleeve is clamped to the side end of the support integration frame. A number of double-convex separation net plates are equidistantly embedded and installed on the side end of the ball mill barrel. On one side of the top end of the support integration frame, processing hydraulic cylinders are symmetrically installed. On the top ends of the two processing hydraulic cylinders, a support bearing plate is installed. A blanking fixed barrel is sleeved on the top end of the support bearing plate. An injection fixed pipe is connected through the bottom end of the blanking fixed barrel.

[0010] According to the above technical solution, one end of the lifting hydraulic cylinder is clamped and connected to the moving support block. The moving support block is slidably installed inside the load-bearing processing frame. The driving gear is meshed with the driven gear.

[0011] According to the above technical solution, the output shaft of the hydraulic motor is clamped and connected to the input shaft of the coupling gearbox. The longitudinal section of the double-convex separation net plate is in a U shape. The outer diameter of the injection fixed pipe is equal to the outer diameter of one end of the ball mill barrel.

[0012] According to the above technical solution, access and power sliding rails are symmetrically clamped to the bottom end of the load-bearing processing frame. At the bottom ends of the two access and power sliding rails, a processing moving frame is installed through a rail seat. A number of load-bearing hydraulic cylinders are equidistantly clamped to the top end of the processing moving frame. A processing installation sleeve is clamped to the top ends of the multiple load-bearing hydraulic cylinders. A commutation motor is installed at one end of the processing installation sleeve through a motor seat. The output shaft of the commutation motor is clamped with a correction fitting frame;

[0013] One end of the correction fitting frame is installed with a swing motor through a motor seat. The output shaft of the swing motor is clamped with an integration processing plate. Insertion electric push rods are symmetrically clamped to one end of the integration processing plate. An insertion vacuum sleeve is installed at one end of the insertion electric push rod. A vacuum pipe frame is connected through one end of the insertion vacuum sleeve;

[0014] One end of the correction fitting frame is installed with an air pump through a motor seat. External electric push rods are symmetrically installed at one end of the insertion vacuum sleeve. A push plate is clamped to one end of the two external electric push rods. A restricting valve is embedded and installed at one end of the vacuum pipe frame.

[0015] According to the above technical solution, the processing moving frame is slidably connected to the load-bearing processing frame. The correction fitting frame is rotatably connected to the processing installation sleeve.

[0016] According to the above technical solution, the side end of the vacuum pipe frame is installed through the side end of the correction fitting frame. One end of the vacuum pipe frame is connected to one end of the air pump through a rotary joint.

[0017] According to the above technical solution, the external push plate is slidably installed inside the insertion vacuum sleeve;

[0018] The input ends of the lifting hydraulic cylinder, hydraulic motor, processing hydraulic cylinder, access and power sliding rails, load-bearing hydraulic cylinders, commutation motor, swing motor, insertion electric push rods, air pump, external electric push rods, and restricting valve are all electrically connected to the output end of an external controller;

[0019] The input end of the external controller is electrically connected to the output end of the external power supply.

[0020] According to the above technical solution, the support integration frame is provided with an inlet and outlet component;

[0021] The inlet and outlet component includes a feeding fixed hopper;

[0022] One end of the support integration frame is clamped with a feeding fixed hopper. A number of squeezing hydraulic cylinders are equidistantly installed at one end of the feeding fixed hopper. One end of the plurality of squeezing hydraulic cylinders is provided with a squeezing treatment plate. The inner side of the support integration frame is clamped with a collection fixed box. Deployment electric slide rails are symmetrically installed at the top of the collection fixed box. A deployment treatment cover is installed at the top of the deployment electric slide rail through a slide rail seat;

[0023] At a position corresponding to the collection and separation sleeve at one end of the support integration frame, deployment motors are symmetrically installed through motor seats. The output shaft of the deployment motor is clamped with a deployment and closing plate. A number of outer scraping porous plates are equidistantly installed on the side of the ball milling barrel. A number of spring telescopic rods are equidistantly installed inside the outer scraping porous plates. One end of the plurality of spring telescopic rods is provided with a special-shaped scraping plate. One end of the inner side of the ball milling barrel is clamped with a treatment reset rod. One end of the treatment reset rod is clamped with a treatment reset plate. A recycling box is installed at one end of the load-bearing treatment frame.

[0024] According to the above technical solution, one end of the feeding fixed hopper is sleeved with one end of the ball milling barrel. The squeezing treatment plate is slidably installed inside the feeding fixed hopper. The deployment treatment cover is slidably installed at the top of the collection fixed box.

[0025] According to the above technical solution, the longitudinal section of the deployment and closing plate is arc-shaped;

[0026] The input ends of the squeezing hydraulic cylinders, the deployment electric slide rails and the deployment motors are all electrically connected to the output end of the external controller.

[0027] Compared with the prior art, the beneficial effects of the present invention:

[0028] 1. A processing component is provided. The lifting hydraulic cylinder drives the moving support block to push the transposition moving frame to rotate and rise, enabling the support integration frame to rotate along the load-bearing processing frame and changing the inclination angle of the ball mill barrel. At this time, the inside of the ball mill barrel can still continue the grinding process. The incoming and outgoing electric slide rails drive the processing moving frame and the load-bearing hydraulic cylinder to move to the material taking position. The load-bearing hydraulic cylinder drives the processing mounting sleeve to lift and lower, and cooperates with the transposition motor to drive the correction fitting frame to change the rotation angle, adjusting the angle of the correction fitting frame according to the angle of the ball mill barrel to achieve equipment alignment processing. The insertion electric push rod drives the insertion vacuum sleeve to insert into the inner side of the ball mill barrel, and the insertion vacuum sleeve, the vacuum pipe rack and the air pump are used to adsorb and fix the grinding balls to achieve the taking of the grinding balls. By repeating the operation, the external taking process of the grinding balls is completed. The processing hydraulic cylinder drives the support load-bearing plate and the feeding fixed barrel to move downward, and the side end of the injection fixing pipe is attached to the side end of the ball mill barrel, so that the grinding balls are put into the inner side of the ball mill barrel to achieve the replacement and filling of the grinding balls. This enables the replacement of the grinding balls during the grinding process when performing rough grinding and fine grinding on the material, without the need to replace the equipment, and at the same time, there is no need for workers to carry the material, achieving different operations with a single device, effectively reducing the production cost and the labor intensity of the workers.

[0029] 2. An incoming and outgoing component is provided. The grinding material to be ground is put into the inner side of the input fixed hopper. The squeezing hydraulic cylinder drives the squeezing processing plate to push the grinding material along the input fixed hopper into the inner side of the ball mill barrel. The processing reset rod and the processing reset plate are used to isolate the feeding position, achieving continuous feeding and grinding and grinding isolation. The unfolding electric slide rail drives the unfolding processing cover to open the collection fixed box, and the unfolding motor drives the unfolding and closing plate to open the collection separation sleeve. The grinding material that meets the standard is put into the inner side of the collection fixed box. The centrifugal force is used to push the special-shaped scraper to move along the outer scraping porous plate. The spring telescopic rod, the special-shaped scraper and the outer scraping are used for multi-limit processing, and the special-shaped scraper is used to fit with the collection separation sleeve to push the outer discharge, achieving synchronous discharging processing of the ball mill. The ball mill centrifugal force drives the scraping component to rotate and process, pushing the grinding material to move outward. With continuous feeding processing, synchronous operation of equipment incoming and outgoing is achieved, and double-layer isolation is used to reduce the occurrence of dust splashing and overflow, improving the discharging speed of the equipment and ensuring the grinding effect and efficiency of the equipment for the material.

[0030] In summary, through the mutual cooperation of the processing component and the incoming and outgoing component, the incoming and outgoing material synchronous component and the grinding and simultaneous replacement of the grinding balls are used for coordinated linkage to achieve incoming material grinding and outgoing material grinding. And through tilting and shaking, combined with slag scraping treatment, the equipment's grinding treatment of the material is realized, improving the grinding effect, effectively reducing the production cost and the labor intensity of the workers, and ensuring the grinding efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0031] The accompanying drawings are used to provide a further understanding of the present invention and form a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention and do not constitute a limitation to the present invention.

[0032] In the accompanying drawings:

[0033] Figure 1 is a schematic perspective view of the present invention;

[0034] Figure 2 is a schematic structural view of the processing component of the present invention;

[0035] Figure 3 is a schematic installation structure view of the collection and separation sleeve of the present invention;

[0036] Figure 4 is the Figure 3 schematic enlarged view of the structure of area A of the present invention;

[0037] Figure 5 is a schematic installation structure view of the outgoing push plate of the present invention;

[0038] Figure 6 is a schematic installation structure view of the swing motor of the present invention;

[0039] Figure 7 is a schematic structural view of the inlet and outlet component of the present invention;

[0040] Figure 8 is a schematic installation structure view of the input fixing hopper of the present invention;

[0041] Reference numerals in the figure: 1, support integration frame;

[0042] 2, processing component; 201, load-bearing processing frame; 202, transposition moving frame; 203, moving support block; 204, lifting hydraulic cylinder; 205, coupling gearbox; 206, hydraulic motor; 207, transmission gear; 208, ball mill barrel; 209, driven gear; 210, collection and separation sleeve; 211, double-convex separation mesh plate; 212, processing hydraulic cylinder; 213, support load-bearing plate; 214, blanking fixing barrel; 215, injection fixing pipe; 216, inlet and outlet electric slide rail; 217, processing moving frame; 218, load-bearing hydraulic cylinder; 219, processing installation sleeve; 220, transposition motor; 221, correction fitting frame; 222, swing motor; 223, integrated processing plate; 224, insertion electric push rod; 225, insertion vacuum sleeve; 226, vacuum pipe frame; 227, air pump; 228, outgoing electric push rod; 229, outgoing push plate; 230, limiting valve;

[0043] 3. Inlet and outlet components; 301. Input fixed hopper; 302. Squeezing hydraulic cylinder; 303. Squeezing treatment plate; 304. Collection fixed box; 305. Unfolding electric slide rail; 306. Unfolding treatment cover; 307. Unfolding motor; 308. Unfolding closing plate; 309. Outer scraping perforated plate; 310. Spring telescopic rod; 311. Special-shaped scraping plate; 312. Treatment reset rod; 313. Treatment reset plate; 314. Recycling box. Detailed implementation manner

[0044] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are only for the purpose of illustrating and explaining the present invention, and are not intended to limit the present invention.

[0045] Embodiment: As Figure 1-8 shown, the present invention provides a technical solution, a ball mill for grinding, including a support integration frame 1, and the support integration frame 1 is provided with a treatment component 2;

[0046] The treatment component 2 includes a load-bearing treatment frame 201, a transposition moving frame 202, a moving support block 203, a lifting hydraulic cylinder 204, a coupling gearbox 205, a hydraulic motor 206, a transmission gear 207, a ball mill barrel 208, a driven gear 209, a collection separation sleeve 210, a double-convex separation net plate 211, a treatment hydraulic cylinder 212, a support load-bearing plate 213, a blanking fixed barrel 214, an injection fixed pipe 215, an inlet and outlet electric slide rail 216, a treatment moving frame 217, a load-bearing hydraulic cylinder 218, a treatment installation sleeve 219, a transposition motor 220, a correction fitting frame 221, a swing motor 222, an integration treatment plate 223, an insertion electric push rod 224, an insertion vacuum sleeve 225, a vacuum pipe frame 226, an air pump 227, an outer electric push rod 228, an outer push plate 229, and a limiting valve 230;

[0047] The bottom end of the support integration frame 1 is rotatably connected to the load-bearing treatment frame 201. One side of the bottom end of the load-bearing treatment frame 201 is rotatably connected to the transposition moving frame 202. The side end of the transposition moving frame 202 is rotatably connected to the moving support block 203. A number of lifting hydraulic cylinders 204 are equidistantly installed at the position of the load-bearing treatment frame 201 corresponding to the moving support block 203. One end of the lifting hydraulic cylinder 204 is snap-connected to the moving support block 203. The moving support block 203 is slidably installed inside the load-bearing treatment frame 201 to realize the steering and lifting treatment of the support integration frame 1, realize the internal slag discharge and volleyball treatment, and ensure the stability of ball milling. One end of the support integration frame 1 is installed with a coupling gearbox 205. One end of the coupling gearbox 205 is installed with a hydraulic motor 206 through a motor base. The output shaft of the coupling gearbox 205 is snap-connected to a transmission gear 207. The ball milling barrel 208 is rotatably connected inside the support integration frame 1. One end of the ball milling barrel 208 is installed with a driven gear 209. The transmission gear 207 is meshed with the driven gear 209. The output shaft of the hydraulic motor 206 is snap-connected to the input shaft of the coupling gearbox 205 to realize stable meshing transmission and ensure the stability of the equipment's rotational transmission and rotational linkage;

[0048] The side end of the support integration frame 1 is snap-connected to a collection and separation sleeve 210. A number of double-convex separation net plates 211 are equidistantly embedded and installed on the side end of the ball milling barrel 208. The longitudinal section of the double-convex separation net plate 211 is in a U shape to realize screening and external discharge and internal stable ball milling treatment. On one side of the top end of the support integration frame 1, two treatment hydraulic cylinders 212 are symmetrically installed. The top ends of the two treatment hydraulic cylinders 212 are installed with a support load-bearing plate 213. A feeding fixed barrel 214 is sleeved on the top end of the support load-bearing plate 213. The bottom end of the feeding fixed barrel 214 is connected through an injection fixed pipe 215. The outer diameter of the injection fixed pipe 215 is equal to the outer diameter of one end of the ball milling barrel 208 to realize the stable and rapid input of grinding balls;

[0049] The bottom end of the load-bearing treatment frame 201 is symmetrically snap-connected to an inlet and outlet electric slide rail 216. The bottom ends of the two inlet and outlet electric slide rails 216 are installed with a treatment moving frame 217 through a slide rail seat. The treatment moving frame 217 is slidably connected to the load-bearing treatment frame 201 to adjust the position of the treatment moving frame 217. A number of load-bearing hydraulic cylinders 218 are equidistantly snap-connected to the top end of the treatment moving frame 217. The top ends of the multiple load-bearing hydraulic cylinders 218 are snap-connected to a treatment installation sleeve 219. One end of the treatment installation sleeve 219 is installed with a transposition motor 220 through a motor base. The output shaft of the transposition motor 220 is snap-connected to a correction and cooperation frame 221;

[0050] One end of the correction fitting frame 221 is provided with a swing motor 222 through a motor base. The output shaft of the swing motor 222 is clamped with an integrated processing board 223. One end of the integrated processing board 223 is symmetrically clamped with insertion electric push rods 224. One end of the insertion electric push rods 224 is provided with insertion vacuum sleeves 225. One end of the insertion vacuum sleeves 225 is connected through and penetrated by a vacuum tube frame 226. One end of the correction fitting frame 221 is provided with an air pump 227 through a motor base. The correction fitting frame 221 is rotatably connected with the processing installation sleeve 219. The side end of the vacuum tube frame 226 is installed through the side end of the correction fitting frame 221. One end of the vacuum tube frame 226 and one end of the air pump 227 are connected through a connector to achieve stable correction and alignment processing and improve the efficiency of ball picking. One end of the insertion vacuum sleeve 225 is symmetrically provided with outward electric push rods 228. One end of the two outward electric push rods 228 is clamped with an outward push plate 229. The outward push plate 229 is slidably installed inside the insertion vacuum sleeve 225 to achieve volleyball processing. One end of the vacuum tube frame 226 is embedded with a limiting valve 230;

[0051] For the stable operation of the equipment, the input ends of the lifting hydraulic cylinder 204, hydraulic motor 206, processing hydraulic cylinder 212, in-out electric slide rail 216, load-bearing hydraulic cylinder 218, transposition motor 220, swing motor 222, insertion electric push rod 224, air pump 227, outward electric push rod 228 and limiting valve 230 are all electrically connected to the output end of an external controller;

[0052] The input end of the external controller is electrically connected to the output end of an external power supply.

[0053] The support integration frame 1 is provided with an in-out component 3;

[0054] The in-out component 3 includes a feeding fixed hopper 301, a squeezing hydraulic cylinder 302, a squeezing processing plate 303, a collecting fixed box 304, an unfolding electric slide rail 305, an unfolding processing cover 306, an unfolding motor 307, an unfolding and closing plate 308, an outer scraping porous plate 309, a spring telescopic rod 310, a special-shaped scraping plate 311, a processing reset rod 312, a processing reset plate 313 and a recycling box 314;

[0055] One end of the support integration frame 1 is clamped with a feeding fixed hopper 301. One end of the feeding fixed hopper 301 is equidistantly provided with a plurality of squeezing hydraulic cylinders 302. One end of the multiple squeezing hydraulic cylinders 302 is provided with a squeezing processing plate 303. One end of the feeding fixed hopper 301 is sleeved with one end of the ball mill barrel 208. The squeezing processing plate 303 is slidably installed inside the feeding fixed hopper 301 to achieve alignment feeding processing and ensure the stable operation of feeding and discharging. The inside of the support integration frame 1 is clamped with a collecting fixed box 304. The top end of the collecting fixed box 304 is symmetrically provided with unfolding electric slide rails 305. The top end of the unfolding electric slide rails 305 is installed with an unfolding processing cover 306 through a slide rail seat. The unfolding processing cover 306 is slidably installed on the top end of the collecting fixed box 304 to achieve support and closing;

[0056] At one end of the support integration frame 1, deployment motors 307 are symmetrically installed through motor bases corresponding to the position of the collection and separation sleeve 210. The output shaft of the deployment motor 307 is clamped with a deployment and closing plate 308. The longitudinal section of the deployment and closing plate 308 is arc-shaped to ensure the stability of sealing. A number of outer scraping perforated plates 309 are equidistantly installed on the side end of the ball milling barrel 208. A number of spring telescopic rods 310 are equidistantly installed inside the outer scraping perforated plates 309. One end of multiple spring telescopic rods 310 is installed with a special-shaped scraping plate 311. One end of the ball milling barrel 208 is clamped with a processing reset rod 312. One end of the processing reset rod 312 is clamped with a processing reset plate 313. One end of the load-bearing processing frame 201 is installed with a recycling box 314;

[0057] For the stable operation of the equipment, the input ends of the extrusion hydraulic cylinder 302, the deployment electric slide rail 305, and the deployment motor 307 are all electrically connected to the output end of an external controller.

[0058] The working principle and usage process of the present invention: When using the ball mill, the processing hydraulic cylinder 212 drives the support load-bearing plate 213 and the feeding fixed barrel 214 to move downward, so that the side end of the injection fixed pipe 215 fits with the side end of the ball milling barrel 208. The required grinding balls are put into the inside of the feeding fixed barrel 214. The grinding balls fall into the inside of the ball milling barrel 208 along the feeding fixed barrel 214 and the injection fixed pipe 215, realizing the filling of the grinding balls. After the filling of the grinding balls is completed, the hydraulic motor 206 and the coupling gearbox 205 drive the driving gear 207 to rotate. The driving gear 207 drives the driven gear 209 to engage and drive, and the driven gear 209 drives the ball milling barrel 208 to rotate, starting the rotation of the ball milling barrel 208;

[0059] When the rotation speed of the ball milling barrel 208 reaches the grinding speed, the staff puts the grinding material to be ground into the inside of the input fixed hopper 301 through an external feeding device. The extrusion hydraulic cylinder 302 drives the extrusion processing plate 303 to enter the inside of the ball milling barrel 208 along the input fixed hopper 301. The grinding material pushes the processing reset plate 313 to slide into the inside of the ball milling barrel 208. At this time, the processing reset rod 312 is stretched, and the grinding material is pushed into the inside of the ball milling barrel 208. After the pushing is completed, the processing reset rod 312 drives the processing reset plate 313 to reset, realizing continuous feeding processing, so as to ensure continuous grinding processing. During the grinding process, the fine dust generated by grinding and the ground grinding material are thrown outwards along the double-convex separation mesh plate 211 with the centrifugal force, and the grinding material is separated, realizing self-separation discharging operation. The grinding material enters the inside of the collection and separation sleeve 210 after being thrown out along the ball milling barrel 208. When the ball milling barrel 208 rotates, the centrifugal force pushes the special-shaped scraping plate 311 to move along the outer scraping perforated plate 309, so that the side end of the special-shaped scraping plate 311 fits with the inner side end of the collection and separation sleeve 210, and the grinding material is pushed, preventing the grinding material from adhering to the inner side of the collection and separation sleeve 210, realizing stable discharging processing;

[0060] After the abrasive accumulates to a certain amount after grinding, the unfolding electric slide rail 305 drives the unfolding treatment cover 306 to move, opens the collection fixing box 304, and the unfolding motor 307 drives the unfolding and closing plate 308 to rotate along the collection and separation sleeve 210, putting the internal abrasive into the inside of the collection fixing box 304 to realize the recovery treatment of the abrasive. When the internal abrasive needs to be ground in two steps of rough grinding and fine grinding, after the rough grinding is completed, the lifting hydraulic cylinder 204 drives the moving support block 203 to move along the load-bearing treatment frame 201, and the moving support block 203 pushes the transposition moving frame 202 to rotate and rise. The transposition moving frame 202 rotates and pushes the support integration frame 1 to rotate along the load-bearing treatment frame 201, realizing the rotation and inclination of the ball milling barrel 208. At this time, the rotation speed of the ball milling barrel 208 is reduced so that the internal can still continue the grinding treatment. According to gravity and the rolling of the grinding balls, the grinding balls are moved to the bottom position of the ball milling barrel 208. The incoming and outgoing electric slide rail 216 drives the treatment moving frame 217 and the load-bearing hydraulic cylinder 218 to move to the material taking position. The load-bearing hydraulic cylinder 218 drives the treatment mounting sleeve 219 to rise, and the transposition motor 220 drives the correction fitting frame 221 to rotate and align along the treatment mounting sleeve 219, adjusting the angle of the correction fitting frame 221 according to the angle of the ball milling barrel 208 to realize the equipment alignment treatment;

[0061] The insertion electric push rod 224 drives the insertion vacuum sleeve 225 to insert into the inside of the ball milling barrel 208. The support integration frame 1 rotates, and the grinding balls enter the inside of the insertion vacuum sleeve 225 along the ball milling barrel 208. The vacuum tube frame 226 is controlled by the limiting valve 230, and the grinding balls are adsorbed and fixed by the insertion vacuum sleeve 225 and the vacuum tube frame 226. The lifting hydraulic cylinder 204 drives the support integration frame 1 to reset, the transposition motor 220 drives the correction fitting frame 221 to reset, and the insertion electric push rod 224 drives the insertion vacuum sleeve 225 to move to take out the grinding balls. The swing motor 222 drives the integration treatment plate 223 to rotate, and the taken-out insertion vacuum sleeve 225 rotates and fits inside the recovery box 314. The outgoing electric push rod 228 drives the outgoing push plate 229 to push the grinding balls into the inside of the recovery box 314. By repeating the operation, the external taking treatment of the grinding balls is realized, and the grinding balls are put into the ball milling barrel 208 by using the feeding fixing barrel 214 and the injection fixing pipe 215 to realize the grinding switching treatment, ensuring the grinding effect and efficiency.

[0062] Finally, it should be noted that the above are only the preferred examples of the present invention and are not used to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. A ball mill for grinding ore, comprising a supporting integrated frame (1), characterized in that: The support integration frame (1) is provided with a processing component (2); The processing component (2) includes a load-bearing processing frame (201); The bottom end of the support integration frame (1) is rotatably connected to a load-bearing processing frame (201). One side of the bottom end of the load-bearing processing frame (201) is rotatably connected to a transposition moving frame (202). The side end of the transposition moving frame (202) is rotatably connected to a moving support block (203). At equal intervals, a number of lifting hydraulic cylinders (204) are installed at the position corresponding to the moving support block (203) on the side end of the load-bearing processing frame (201); One end of the support integration frame (1) is installed with a coupling gearbox (205). One end of the coupling gearbox (205) is installed with a hydraulic motor (206) through a motor base. The output shaft of the coupling gearbox (205) is clamped with a transmission gear (207). The inner side of the support integration frame (1) is rotatably connected to a ball milling barrel (208). One end of the ball milling barrel (208) is installed with a driven gear (209); The side end of the support integration frame (1) is clamped with a collection and separation sleeve (210). At equal intervals, a number of double-convex separation net plates (211) are embedded and installed on the side end of the ball milling barrel (208). On one side of the top end of the support integration frame (1), two processing hydraulic cylinders (212) are symmetrically installed. The top ends of the two processing hydraulic cylinders (212) are installed with a support load-bearing plate (213). The top end of the support load-bearing plate (213) is sleeved with a blanking fixed barrel (214). The bottom end of the blanking fixed barrel (214) is connected through an injection fixed pipe (215).

2. A ball mill for grinding according to claim 1, characterized in that: One end of the lifting hydraulic cylinder (204) is clamped and connected to the moving support block (203). The moving support block (203) is slidably installed inside the load-bearing processing frame (201). The transmission gear (207) is meshed and connected with the driven gear (209).

3. A ball mill for grinding according to claim 1, characterized in that: The output shaft of the hydraulic motor (206) is clamped and connected to the input shaft of the coupling gearbox (205). The longitudinal section of the double-convex separation net plate (211) is in a U shape. The outer diameter of the injection fixed pipe (215) is equal to the outer diameter of one end of the ball milling barrel (208).

4. A ball mill for grinding according to claim 1, characterized in that: The bottom end of the load-bearing processing frame (201) is symmetrically clamped with an incoming and outgoing electric slide rail (216). The bottom ends of the two incoming and outgoing electric slide rails (216) are installed with a processing moving frame (217) through a slide rail base. At equal intervals, a number of load-bearing hydraulic cylinders (218) are clamped on the top end of the processing moving frame (217). The top ends of the multiple load-bearing hydraulic cylinders (218) are clamped with a processing installation sleeve (219). One end of the processing installation sleeve (219) is installed with a transposition motor (220) through a motor base. The output shaft of the transposition motor (220) is clamped with a correction fitting frame (221); One end of the correction fitting frame (221) is installed with a swing motor (222) through a motor base. The output shaft of the swing motor (222) is clamped with an integration processing plate (223). One end of the integration processing plate (223) is symmetrically clamped with an insertion electric push rod (224). One end of the insertion electric push rod (224) is installed with an insertion vacuum sleeve (225). One end of the insertion vacuum sleeve (225) is connected through a vacuum pipe frame (226); An air pump (227) is installed at one end of the correction matching frame (221) through a motor seat, and an outgoing electric push rod (228) is symmetrically installed at one end of the inserted vacuum sleeve (225). One end of the two outgoing electric push rods (228) is clamped with an outgoing push plate (229), and a limiting valve (230) is embedded and installed at one end of the vacuum tube frame (226).

5. A ball mill for grinding according to claim 4, characterized in that: The processing movable frame (217) is slidably connected to the load-bearing processing frame (201), and the correction matching frame (221) is rotationally connected to the processing installation sleeve (219).

6. A ball mill for grinding according to claim 4, characterized in that: The side end of the vacuum tube rack (226) is installed through the side end of the correction matching rack (221), and one end of the vacuum tube rack (226) is connected to one end of the air pump (227) through an adapter.

7. A ball mill for grinding according to claim 4, characterized in that: The outward push plate (229) is slidably mounted on the inner side of the inserted vacuum sleeve (225); The input ends of the lifting hydraulic cylinder (204), the hydraulic motor (206), the handling hydraulic cylinder (212), the in-and-out electric slide rail (216), the load-bearing hydraulic cylinder (218), the transposition motor (220), the swing motor (222), the insertion electric push rod (224), the air pump (227), the outgoing electric push rod (228) and the limiting valve (230) are all electrically connected to the output end of the external controller; The input terminal of the external controller is electrically connected to the output terminal of the external power supply.

8. A ball mill for grinding according to claim 7, characterized in that: The supporting integrated frame (1) is provided with an entry and exit assembly (3); The inlet and outlet assembly (3) comprises an input fixed bucket (301); One end of the support integration frame (1) is clamped with an input fixed bucket (301), one end of the input fixed bucket (301) is equidistantly installed with a plurality of extrusion hydraulic cylinders (302), one end of the plurality of extrusion hydraulic cylinders (302) is installed with an extrusion processing plate (303), the inner side of the support integration frame (1) is clamped with a collection fixed box (304), the top of the collection fixed box (304) is symmetrically installed with an unfolding electric slide rail (305), and the top of the unfolding electric slide rail (305) is installed with an unfolding processing cover (306) through a slide rail seat; An unfolding motor (307) is symmetrically installed through a motor seat at one end of the support integration frame (1) at a position corresponding to the collecting and separating sleeve (210); an unfolding closing plate (308) is clamped on the output shaft of the unfolding motor (307); a plurality of external scraping porous plates (309) are equidistantly installed on the side end of the ball mill barrel (208); a plurality of spring telescopic rods (310) are equidistantly installed on the inner side of the external scraping porous plates (309); a plurality of spring telescopic rods (310) are installed at one end with a special-shaped scraper (311); a processing reset rod (312) is clamped on one end of the inner side of the ball mill barrel (208); a processing reset plate (313) is clamped on one end of the processing reset rod (312); and a recovery box (314) is installed on one end of the load-bearing processing frame (201).

9. A ball mill for grinding according to claim 8, characterized in that: One end of the fixed input bucket (301) is fitted with one end of the ball mill barrel (208), the squeeze-in treatment plate (303) is slidably mounted on the inner side of the fixed input bucket (301), and the unfolding treatment cover (306) is slidably mounted on the top of the collection fixed box (304).

10. A ball mill for grinding according to claim 8, characterized in that: The longitudinal section of the unfolded closing plate (308) is arc-shaped; The input ends of the squeezing hydraulic cylinder (302), the unfolding electric slide rail (305) and the unfolding motor (307) are all electrically connected to the output end of the external controller.

Citation Information

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