Ball mill for production of thinned grinding wheel

By using a worm gear and worm shaft in conjunction with a material stop assembly, the problem of the ball mill tank rotating under the weight of the material is solved, achieving stable tank angle maintenance and convenient loading and unloading, thus improving production efficiency and equipment lifespan.

CN224221464UActive Publication Date: 2026-05-12FOSHAN DINGHE SUPERHARD MATERIALS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
FOSHAN DINGHE SUPERHARD MATERIALS CO LTD
Filing Date
2025-02-13
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

In the process of producing thinner grinding wheels, the traditional ball mill tank tends to rotate rapidly under the influence of material gravity, making it difficult to align the inlet and outlet, which affects production efficiency and shortens the equipment life.

Method used

The angle of the tank is adjusted by a combination of worm gear and worm, and the tank tilting and lid opening are linked by a material stop assembly, ensuring that the tank does not rotate on its own under the action of material gravity, thus improving the automation and convenience of loading and unloading.

Benefits of technology

This achieves stable maintenance of the tank angle, preventing tank damage due to impact, improving production efficiency and safety, and reducing operating steps and labor intensity.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of ball mills, and discloses a ball mill for producing a thinned grinding wheel, which comprises a main body assembly, a tank body, a support frame, a fixed shaft and a rotating frame, the support frame is positioned below the tank body, the fixed shaft is fixed on the support frame, and the rotating frame is rotatably connected with the fixed shaft. The utility model has the beneficial effects that the angle of the tank body is adjusted by adopting the matching mode of the worm gear and the worm, the self-locking characteristic is realized, when the worm stops rotating, the worm gear can be stably kept at the current position and cannot automatically rotate under the gravity action of materials in the tank body, and meanwhile, the linkage of inclination of the tank body and opening of the tank cover is realized; the feeding and discharging processes are more automatic and convenient, an operator does not need to respectively incline the tank body and open the tank cover, the operation steps and the labor intensity are reduced, the tank cover cannot be opened by external force in the rotating process of the tank body, and safety accidents caused by accidental opening of the tank cover during running of the ball mill are avoided.
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Description

Technical Field

[0001] This utility model relates to the field of ball mill technology, and in particular to a ball mill for producing thinner grinding wheels. Background Technology

[0002] In the production of thinning grinding wheels, ball mills are a commonly used and crucial piece of equipment for grinding and mixing raw materials to obtain fine materials that meet production requirements. Traditional ball mills often use a fixed disc and a limiting rod to control the direction of the grinding tank. The direction of the tank's inlet and outlet is adjusted by engaging different limiting slots on the fixed disc with the limiting rod, thus meeting the needs of different tank postures during feeding, unloading, and normal grinding. Due to the accumulation of material, the overall weight of the tank increases significantly. When the operator moves the limiting rod to change the tank's direction, the tank has a strong downward rotational tendency under the force of the material's own gravity. Often, before the operator can move the limiting rod to the appropriate limiting slot position, the tank quickly rotates downwards. This not only prevents the tank's inlet and outlet from accurately aligning with the feeding or unloading positions, affecting production efficiency, but also causes significant impact on the tank itself, thus shortening its service life and increasing equipment maintenance costs. Utility Model Content

[0003] In view of the problems existing in the ball mills for producing thinned grinding wheels mentioned above and / or in the present invention, this utility model is proposed.

[0004] Therefore, the problem that this utility model aims to solve is the inconvenience of unloading materials from the ball mill.

[0005] To solve the above-mentioned technical problems, this utility model provides the following technical solution: a ball mill for producing thinner grinding wheels, comprising a main body, a tank, a support frame, a fixed shaft, and a rotating frame, wherein the support frame is located below the tank, the fixed shaft is fixed to the support frame, and the rotating frame is rotatably connected to the fixed shaft;

[0006] An adjustment assembly, located on one side of the tank body, includes an adjustment component, which includes a worm gear and a worm. The worm gear is sleeved on the fixed shaft, one end of the worm gear is fixed to the rotating frame, and the worm is disposed on one side of the worm gear and engaged with the worm gear.

[0007] A material-blocking assembly, disposed on one side of the tank body, includes a material-blocking component, a tank cover, a rubber plate, a fixing sleeve, a fixing plate, a rotating shaft, a small sleeve, and a rotating plate. The tank body has inlet and outlet ports. The tank cover is disposed on one side of the inlet and outlet ports. The rubber plate is disposed inside the tank cover and is rotatably connected to the tank cover. The fixing sleeve is fixed to the tank cover. The rotating shaft is inserted into the fixing sleeve. The rotating plate is fixed on both sides of the rotating shaft. The other end of the rotating plate is fixed to the rotating frame. One end of the small sleeve is sleeved outside the rotating shaft, and the rotating plate is sleeved outside the rotating shaft.

[0008] In a preferred embodiment of the ball mill for producing thinned grinding wheels according to the present invention, the material blocking assembly further includes a transmission component disposed on one side of the tank cover, comprising a moving plate, a slider, and a fixed block. The moving plate is located at the bottom of the rotating plate, and a sliding groove is provided on the rotating plate. The slider slides in the sliding groove. The fixed block is fixed on the fixed plate, and a moving groove is provided on the fixed block. The moving plate slides in the moving groove.

[0009] In a preferred embodiment of the ball mill for producing thinned grinding wheels according to the present invention, a locking block is fixed on the moving plate, and a locking groove is provided on the fixing block, wherein the locking block engages with the locking groove.

[0010] In a preferred embodiment of the ball mill for producing thinned grinding wheels according to this utility model, the transmission component further includes a support plate, a first support rod, a second support rod, a third support rod, and a stop block. The support plate is fixed to the support frame, the first support rod is fixed to the support plate, the second support rod is fixed to the first support rod, the third support rod is fixed to the second support rod, and the stop block is fixed to the third support rod.

[0011] In a preferred embodiment of the ball mill for producing thinned grinding wheels according to the present invention, the stop block is conical in shape, and the moving plate can contact the stop block.

[0012] In a preferred embodiment of the ball mill for producing thinned grinding wheels according to the present invention, the material blocking assembly further includes a locking component, which includes an arc-shaped plate, an auxiliary block, and a locking block. One end of the arc-shaped plate is fixed to the fixed plate, the auxiliary block is fixed to the arc-shaped plate, and a sliding groove is provided in the auxiliary block. The locking block slides in the sliding groove.

[0013] In a preferred embodiment of the ball mill for producing thinned grinding wheels according to the present invention, a first spring is fixed on one side of the locking block.

[0014] In a preferred embodiment of the ball mill for producing thinned grinding wheels according to the present invention, an extension plate is fixed on the rotating plate, a force-bearing plate is fixed on the small sleeve, and a second spring is fixed on one side of the extension plate.

[0015] In a preferred embodiment of the ball mill for producing thinned grinding wheels according to this utility model, the number of the stop blocks is two sets.

[0016] In a preferred embodiment of the ball mill for producing thinned grinding wheels according to the present invention, the main component further includes a power component, which is located on the rotating frame.

[0017] The beneficial effects of this utility model are as follows: The worm gear and worm shaft are used to adjust the tank angle, which has a self-locking characteristic. When the worm shaft stops rotating, the worm gear can be stably maintained in its current position and will not rotate on its own due to the gravity of the material inside the tank. Simultaneously, the tank tilting and lid opening are linked, making the feeding and unloading processes more automated and convenient. Operators no longer need to perform separate operations for tilting the tank and opening the lid, reducing operating steps and labor intensity. During tank rotation, the lid cannot be opened by external force, preventing safety accidents caused by accidental lid opening during ball mill operation. Attached Figure Description

[0018] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort. Among them:

[0019] Figure 1 Overall structural diagram of a ball mill used for producing thinner grinding wheels.

[0020] Figure 2 To reduce the thickness of ball mills used in grinding wheel production Figure 1 Enlarged view of the structure at point A in the middle.

[0021] Figure 3 To reduce the thickness of ball mills used in grinding wheel production Figure 1 Enlarged view of the structure at point B in the middle.

[0022] Figure 4 To reduce the thickness of ball mills used in grinding wheel production Figure 1 Enlarged view of the structure at point C.

[0023] Figure 5 Another structural view of the tank of a ball mill used for grinding wheel production to reduce the thickness of the grinding wheel.

[0024] Figure 6Cross-sectional structural diagram of the locking block of a ball mill used for thinning grinding wheels.

[0025] Figure 7 A structural diagram of the rotating plate of a ball mill used for thinning grinding wheels.

[0026] Figure 8 To reduce the thickness of ball mills used in grinding wheel production Figure 7 Enlarged view of the structure at point D.

[0027] Figure 9 A cross-sectional view of the stationary block of a ball mill used for thinning grinding wheels. Detailed Implementation

[0028] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.

[0029] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the spirit of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0030] Secondly, the term "an embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in one embodiment" appearing in different places in this specification does not necessarily refer to the same embodiment, nor is it a single or selective embodiment that excludes other embodiments.

[0031] Example 1

[0032] Reference Figures 1-9 This is the first embodiment of the present invention. This embodiment provides a ball mill for producing thinner grinding wheels. The ball mill for producing thinner grinding wheels includes a main body component 100, a tank 101, a support frame 102, a fixed shaft 103, and a rotating frame 104. The support frame 102 is located below the tank 101, the fixed shaft 103 is fixed on the support frame 102, and the rotating frame 104 is rotatably connected to the fixed shaft 103.

[0033] Thinning grinding wheel material and steel balls are added into tank 101. The tank 101 is rotated by power component 105, and the steel ball will grind the material, thereby refining the material.

[0034] The support frame 102 provides stable support for the ball mill. The rotating frame 104 can rotate around the fixed shaft 103. The tank 101 and the fixed shaft 103 will rotate synchronously, thereby adjusting the position of the loading and unloading ports 101-1 for loading and unloading operations.

[0035] The adjustment assembly 200 is located on one side of the tank body 101 and includes an adjustment component 201. The adjustment component 201 includes a worm wheel 201a and a worm 201b. The worm wheel 201a is sleeved on the fixed shaft 103. One end of the worm wheel 201a is fixed to the rotating frame 104. The worm 201b is located on one side of the worm wheel 201a and engages with the worm wheel 201a.

[0036] The bottom of the worm gear 201b is provided with a plate 201e, which is fixed on the support frame 102. The worm gear 201b and the plate 201e are connected by a bearing.

[0037] When the worm 201b is rotated, the worm wheel 201a meshes with the worm 201b, and the worm 201b will drive the worm wheel 201a to rotate, thereby causing the rotating frame 104 to rotate synchronously, which in turn causes the tank body 101 to tilt and adjust the position of the upper and lower feed ports 101-1.

[0038] Meanwhile, the worm gear 201a and worm 201b have self-locking characteristics. When the worm 201b stops rotating, the worm gear 201a can be stably kept in the current position and will not rotate on its own due to the gravity of the material in the tank. This avoids damage to the tank 101 due to impact from rapid rotation, ensuring the structural integrity and service life of the tank 101. It also avoids inaccurate loading and unloading caused by uncontrolled rotation of the tank 101, reducing material waste and production delays.

[0039] An extension post 201c is fixed on the worm gear 201b, and a handle 201d is fixed on the extension post 201c. Rotating the handle 201d causes the extension post 201c to rotate, thereby causing the worm gear 201b to rotate.

[0040] A baffle assembly 300, disposed on one side of the tank body 101, includes a baffle 301, which is also disposed on one side of the tank body 101. The assembly includes a tank cover 301a, a rubber plate 301b, a fixing sleeve 301c, a fixing plate 301d, a rotating shaft 301e, a small sleeve 301f, and a rotating plate 301g. The tank body 101 has inlet / outlet ports 101-1. The tank cover 301a is disposed on one side of the inlet / outlet ports 101-1, and the rubber plate 301b is disposed on... The can is placed inside the can lid 301a, which is rotatably connected to the rubber plate 301b. The fixed sleeve 301c is fixed on the can lid 301a. The rotating shaft 301e is inserted into the fixed sleeve 301c. The rotating plate 301g is fixed on both sides of the rotating shaft 301e. The other end of the rotating plate 301g is fixed to the rotating frame 104. One end of the small sleeve 301f is sleeved on the outside of the rotating shaft 301e, and the rotating plate 301g is sleeved on the outside of the rotating shaft 301e.

[0041] The baffle 301 is designed to block the loading and unloading ports 101-1 to prevent the raw materials and steel balls from leaving the tank 101 from the loading and unloading ports 101-1 when the tank 101 is being ground by the power component 105.

[0042] The size of the rubber plate 301b is larger than that of the upper and lower feed ports 101-1, and it fits tightly with the upper and lower feed ports 101-1. The rubber plate 301b is rotatably connected to the can cover 301a through a rotating shaft. When the can body 101 is rotated and polished, the rubber plate 301b will rotate accordingly, while the can cover 301a will not rotate.

[0043] When the worm gear 201b is rotated to adjust the tilt angle of the tank body 101, the rotation of the rotating frame 104 will drive the baffle 301 to rotate synchronously, so that the tank body 101 and the baffle 301 are relatively stationary, and will not affect the baffle 301's baffle effect on the upper and lower material ports 101-1.

[0044] The small sleeve 301f and the rotating plate 301g are used to drive the can cover 301a to rotate around the rotating shaft 301e, thereby moving the rubber plate 301b away from the loading and unloading port 101-1, which facilitates loading and unloading operations. The small sleeve 301f is fixed to the fixed sleeve 301c, and one end of the rotating plate 301g is sleeved on the outside of the small sleeve 301f. Both are concentric with the rotating shaft 301e, but there is a certain gap between them.

[0045] The rotating shaft 301e is fitted with a torsion spring 301k. The two ends of the torsion spring 301k are fixed to the fixed plate 301d and the fixed sleeve 301c. The torsion spring 301k is always in a compressed state. The restoring force of the torsion spring 301k is relatively large, so that the can cover 301a always tends to close and ensures that the rubber plate 301b can fit tightly with the upper and lower feed ports 101-1.

[0046] Example 2

[0047] Reference Figures 1-9 This is the second embodiment of the present invention, which is based on the previous embodiment.

[0048] Specifically, the baffle assembly 300 also includes a transmission component 302, which is disposed on one side of the can cover 301a. It includes a moving plate 302a, a slider 302b, and a fixed block 302c. The moving plate 302a is located at the bottom of the rotating plate 301g. A sliding groove 301g-1 is provided on the rotating plate 301g. The slider 302b slides in the sliding groove 301g-1. The fixed block 302c is fixed on the fixed plate 301d. A moving groove 302c-1 is provided on the fixed block 302c. The moving plate 302a slides in the moving groove 302c-1.

[0049] The transmission member 302 is provided to realize the linkage between the inclination of the tank body 101 and the opening of the tank cover 301a. When the tank body 101 is inclined to a certain angle, the tank cover 301a will automatically open without additional operation by the operator. The fixing block 302c is used to support and position the moving plate 302a.

[0050] When the moving plate 302a moves, it will drive the slider 302b to slide in the chute 301g-1, so that the rotating plate 301g rotates around the rotating shaft 301e. The rotation of the rotating plate 301g will drive the small sleeve 301f to rotate, and the tank cover 301a rotates synchronously, so that the rubber plate 301b moves away from the loading and unloading port 101-1 for loading and unloading.

[0051] Specifically, a clamping block 302d is fixed on the moving plate 302a, and a clamping groove 302c-2 is formed on the fixing block 302c. The clamping block 302d is engaged with the clamping groove 302c-2.

[0052] Through the settings of the clamping block 302d and the clamping groove 302c-2, it is ensured that the moving plate 302a can only move horizontally along the direction of the clamping groove 302c-2.

[0053] Specifically, the transmission member 302 further includes a support plate 302e, a first support rod 302f, a second support rod 302g, a third support rod 302h and a stop block 302i. The support plate 302e is fixed on the support frame 102, the first support rod 302f is fixed on the support plate 302e, the second support rod 302g is fixed on the first support rod 302f, the third support rod 302h is fixed on the second support rod 302g, and the stop block 302i is fixed on the third support rod 302h.

[0054] The support plate 302e, the first support rod 302f, the second support rod 302g and the third support rod 302h provide stable support for the stop block 302i. When the inclination angle of the tank body 101 is adjusted by rotating the worm 201b, the stop block 302i will not rotate. The first support rod 302f, the second support rod 302g and the third support rod 302h form a shape similar to the Chinese character "ji", ensuring that it will not affect the rotation of the moving plate 302a along with the rotation of the worm 201b.

[0055] Specifically, the stop block 302i is conical, and the moving plate 302a can contact the stop block 302i.

[0056] As the tank body 101 tilts, the moving plate 302a tilts accordingly and rotates around the fixed shaft 103. When the moving plate 302a rotates to the position where it contacts the stop block 302i, the inclined surface of the stop block 302i will press against the moving plate 302a, thereby causing the moving plate 302a to move along the direction of the slot 302c-2, and then move towards the support plate 302e, thereby causing the slider 302b to slide in the slide groove 301g-1, and then causing the rotating plate 301g to rotate around the rotating shaft 301e. The rotation of the rotating plate 301g will drive the small sleeve 301f to rotate, and the tank cover 301a will rotate synchronously, thereby causing the rubber plate 301b to move away from the loading and unloading port 101-1 for loading and unloading.

[0057] Specifically, the material stop assembly 300 also includes a locking component 303, which includes an arc plate 303a, an auxiliary block 303b, and a locking block 303c. One end of the arc plate 303a is fixed to the fixed plate 301d, and the auxiliary block 303b is fixed to the arc plate 303a. A sliding groove 303b-1 is provided in the auxiliary block 303b, and the locking block 303c slides in the sliding groove 303b-1.

[0058] The locking element 303 is designed to ensure that the rubber plate 301b fits tightly against the feed inlet / outlet 101-1. When the tank body 101 is rotating, the can cover 301a cannot be opened by external force, thus ensuring the sealing effect of the tank body 101. The arc plate 303a and the auxiliary block 303b provide stable support for the locking block 303c. When the locking block 303c is located on the side away from the rubber plate 301b, the opening of the can cover 301a will be restricted.

[0059] Example 3

[0060] Reference Figures 1-9 This is the third embodiment of the present invention, which is based on the first two embodiments.

[0061] Specifically, a first spring 303d is fixed to one side of the locking block 303c.

[0062] One end of the locking block 303c is inclined. When the can lid 301a changes from the open state to the closed state, the edge of the can lid 301a will first contact and press against the locking block 303c, thereby causing the locking block 303c to move upward to the auxiliary block 303b, so as not to affect the closing of the can lid 301a. When the can lid 301a is closed, the rubber plate 301b is compressed and tightly fits against the upper and lower feed ports 101-1. The inclined surface of the locking block 303c will be pressed, and the first spring 303d will return to its original state, so that the right-angled surface of the locking block 303c fits against the end face of the can lid 301a, thereby preventing the can lid 301a from opening.

[0063] One end of the locking block 303c is provided with a pull rope 303e, and the other end of the pull rope 303e is fixed to the rotating plate 301g. When the rotating plate 301g rotates to open the can lid 301a, it drives the pull rope 303e to move synchronously, thereby applying a pulling force to the locking block 303c and compressing the first spring 303d, thereby unlocking the locking block 303c from restricting the can lid 301a.

[0064] Specifically, an extension plate 301h is fixed on the rotating plate 301g, a force-bearing plate 301i is fixed on the small sleeve 301f, and a second spring 301j is fixed on one side of the extension plate 301h.

[0065] The other end of the second spring 301j is in contact with the force plate 301i.

[0066] When the rotating plate 301g rotates, the extension plate 301h rotates accordingly. At this time, the second spring 301j will be compressed. The force plate 301i will not rotate, which will prevent the small sleeve 301f and the fixed sleeve 301c from rotating. Therefore, the can lid 301a will not open. However, due to the rotation of the rotating plate 301g, the pull rope 303e will move synchronously, thereby applying a pulling force to the locking block 303c and compressing the first spring 303d, thereby unlocking the restriction of the locking block 303c on the can lid 301a.

[0067] When the second spring 301j is compressed to its shortest length, the rotating plate 301g continues to rotate, cooperating with the second spring 301j to make the force plate 301i rotate. The force plate 301i drives the small sleeve 301f and the fixed sleeve 301c to rotate, thereby causing the can cover 301a to rotate around the rotating shaft 301e and open. At this time, loading and unloading operations can be carried out.

[0068] Specifically, there are two sets of stop blocks 302i.

[0069] By setting two stops 302i, when the can 101 is tilted up or down, the moving plate 302a can contact the corresponding stop 302i, thereby moving the rotating plate 301g and driving the can cover 301a to open.

[0070] Specifically, the main component 100 also includes a power component 105, which is located on the rotating frame 104.

[0071] The power assembly 105 also includes a motor 105a, a first flywheel 105b, a second flywheel 105c, and a rotating shaft 105d. The motor 105a is fixed on the rotating frame 104. The first flywheel 105b is located on one side of the motor 105a, and the second flywheel 105c is located on one side of the first flywheel 105b. The rotating shaft 105d is fixed on the tank 101, and the other end is fixed on the second flywheel 105c. The motor 105a drives the first flywheel 105b to rotate via a belt. The first flywheel 105b drives the second flywheel 105c to rotate via a belt, which in turn causes the rotating shaft 105d to rotate, thereby driving the tank 101 to rotate. Through cooperation with the steel balls inside the tank 101, the raw materials are ground into fine particles. This is existing technology, and this solution will not be described in detail. Moreover, those skilled in the art can clearly understand the working principle.

[0072] In use, rotating the handle 201d drives the extension column 201c to rotate, which in turn drives the worm gear 201b to rotate. The worm gear 201b drives the worm wheel 201a to rotate, which in turn causes the rotating frame 104 to rotate synchronously. This causes the tank body 101 to tilt, so that the inlet and outlet 101-1 face upward. At this time, as the tank body 101 tilts, the moving plate 302a tilts accordingly and rotates around the fixed shaft 103. When the moving plate 302a rotates to the position where it contacts the stop block 302i, the inclined surface of the stop block 302i will press the moving plate 302a, which causes the moving plate 302a to move along the direction of the slot 302c-2, and then moves the moving plate 302a towards the support plate 302e, which causes the slider 302b to slide in the slide groove 301g-1, and then causes the rotating plate 301g to rotate around the rotating shaft 301e.

[0073] When the rotating plate 301g rotates, the extension plate 301h rotates accordingly. At this time, the second spring 301j will be compressed. The force plate 301i will not rotate, which will prevent the small sleeve 301f and the fixed sleeve 301c from rotating. Therefore, the can lid 301a will not open. However, due to the rotation of the rotating plate 301g, the pull rope 303e will move synchronously, thereby applying a pulling force to the locking block 303c and compressing the first spring 303d, thereby unlocking the restriction of the locking block 303c on the can lid 301a.

[0074] When the second spring 301j is compressed to its shortest length, the rotating plate 301g continues to rotate, cooperating with the second spring 301j to make the force plate 301i rotate. The force plate 301i drives the small sleeve 301f and the fixed sleeve 301c to rotate, thereby causing the can cover 301a to rotate around the rotating shaft 301e and open. At this time, the feeding operation can be carried out.

[0075] After feeding is completed, the handle 201d is rotated in the opposite direction to drive the worm gear 201b to rotate in the opposite direction, thereby adjusting the tank 101 to a horizontal position. During this process, the moving plate 302a tilts in the opposite direction with the tank 101, the stop block 302i does not apply pressure to the moving plate 302a, the torsion spring 301k returns to its original state, causing the fixed sleeve 301c to rotate in the opposite direction, thereby driving the tank cover 301a to close. The edge of the tank cover 301a will first contact and press against the locking block 303c, thereby causing the locking block 303c to close. c moves upward to the auxiliary block 303b, so as not to affect the closing of the can lid 301a. When the can lid 301a is closed, the rubber plate 301b is compressed and tightly fits with the upper and lower feed ports 101-1. The inclined surface of the locking block 303c will be squeezed, and the first spring 303d will return to its original state, so that the right angle surface of the locking block 303c fits with the end face of the can lid 301a, thereby restricting the can lid 301a from opening. With the cooperation of the second spring 301j, the extension plate 301h and the force plate 301i will also return to their original state.

[0076] After grinding is completed, turn the handle 201d to make the loading and unloading ports 101-1 face downwards. When the moving plate 302a contacts the stop block 302i, the rotating plate 301g moves, which in turn drives the can cover 301a to open again, thus completing the unloading.

[0077] It should be noted that the above embodiments are only used to illustrate the technical solution of this utility model and are not intended to limit it. Although this utility model has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solution of this utility model without departing from the spirit and scope of the technical solution of this utility model, and all such modifications or substitutions should be covered within the scope of the claims of this utility model.

Claims

1. A ball mill for producing thinned grinding wheels, characterized in that: include, The main component (100) includes a tank (101), a support frame (102), a fixed shaft (103), and a rotating frame (104). The support frame (102) is located below the tank (101), the fixed shaft (103) is fixed to the support frame (102), and the rotating frame (104) is rotatably connected to the fixed shaft (103). An adjustment assembly (200) is located on one side of the tank body (101) and includes an adjustment component (201). The adjustment component (201) includes a worm gear (201a) and a worm (201b). The worm gear (201a) is sleeved on the fixed shaft (103). One end of the worm gear (201a) is fixed to the rotating frame (104). The worm (201b) is located on one side of the worm gear (201a) and engages with the worm gear (201a). A baffle assembly (300) is disposed on one side of the tank body (101), including a baffle (301) disposed on one side of the tank body (101), comprising a tank cover (301a), a rubber plate (301b), a fixing sleeve (301c), a fixing plate (301d), a rotating shaft (301e), a small sleeve (301f), and a rotating plate (301g). The tank body (101) has an inlet / outlet port (101-1), the tank cover (301a) is disposed on one side of the inlet / outlet port (101-1), and the rubber plate (301b) is disposed on one side of the tank cover (301a). Inside 01a), the can lid (301a) is rotatably connected to the rubber plate (301b), the fixed sleeve (301c) is fixed on the can lid (301a), the rotating shaft (301e) is inserted into the fixed sleeve (301c), the rotating plate (301g) is fixed on both sides of the rotating shaft (301e), the other end of the rotating plate (301g) is fixed to the rotating frame (104), one end of the small sleeve (301f) is sleeved outside the rotating shaft (301e), and the rotating plate (301g) is sleeved outside the rotating shaft (301e).

2. The ball mill for producing thinned grinding wheels as described in claim 1, characterized in that: The baffle assembly (300) further includes a transmission component (302) disposed on one side of the can cover (301a), including a moving plate (302a), a slider (302b), and a fixing block (302c). The moving plate (302a) is located at the bottom of the rotating plate (301g), and a sliding groove (301g-1) is provided on the rotating plate (301g). The slider (302b) slides in the sliding groove (301g-1). The fixing block (302c) is fixed on the fixing plate (301d), and a moving groove (302c-1) is provided on the fixing block (302c). The moving plate (302a) slides in the moving groove (302c-1).

3. The ball mill for producing thinned grinding wheels as described in claim 2, characterized in that: A locking block (302d) is fixed on the movable plate (302a), and a locking groove (302c-2) is opened on the fixed block (302c). The locking block (302d) engages with the locking groove (302c-2).

4. The ball mill for producing thinned grinding wheels as described in claim 2 or 3, characterized in that: The transmission component (302) further includes a support plate (302e), a first support rod (302f), a second support rod (302g), a third support rod (302h), and a stop block (302i). The support plate (302e) is fixed to the support frame (102), the first support rod (302f) is fixed to the support plate (302e), the second support rod (302g) is fixed to the first support rod (302f), the third support rod (302h) is fixed to the second support rod (302g), and the stop block (302i) is fixed to the third support rod (302h).

5. The ball mill for producing thinned grinding wheels as described in claim 4, characterized in that: The stop block (302i) is conical, and the movable plate (302a) can contact the stop block (302i).

6. The ball mill for producing thinned grinding wheels as described in claim 5, characterized in that: The material blocking assembly (300) further includes a locking member (303), which includes an arc-shaped plate (303a), an auxiliary block (303b), and a locking block (303c). One end of the arc-shaped plate (303a) is fixed to the fixed plate (301d), and the auxiliary block (303b) is fixed to the arc-shaped plate (303a). A sliding groove (303b-1) is provided in the auxiliary block (303b), and the locking block (303c) slides in the sliding groove (303b-1).

7. The ball mill for producing thinned grinding wheels as described in claim 6, characterized in that: A first spring (303d) is fixed to one side of the locking block (303c).

8. The ball mill for producing thinned grinding wheels as described in claim 6 or 7, characterized in that: An extension plate (301h) is fixed on the rotating plate (301g), a force-bearing plate (301i) is fixed on the small sleeve (301f), and a second spring (301j) is fixed on one side of the extension plate (301h).

9. The ball mill for producing thinned grinding wheels as described in claim 8, characterized in that: There are two sets of the stop blocks (302i).

10. The ball mill for producing thinned grinding wheels as described in claim 9, characterized in that: The main body component (100) also includes a power component (105) located on the rotating frame (104).