Debugging device for ball mill production
By designing a ball mill debugging device including a base frame, a test chamber, a motor, a screw and a clamping component, the problem of unstable connection of the ball mill during the debugging process is solved, stable testing and convenient disassembly are achieved, and the testing effect and efficiency are improved.
Patent Information
- Application Number
- CN202422932586.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-29
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2034-11-29
AI Technical Summary
Most existing ball mill debugging methods control the motor direction and timing, which may cause vibration and unstable connection, affecting the test results.
A debugging device including a base frame, a test chamber, a motor, a screw, a moving frame, a clamping component and a pushing component was designed. The motor drives the screw and the clamping component to fix the ball mill body, ensuring that multiple surfaces are fixed, avoiding unstable connections, and facilitating movement.
It achieves stable connection of the ball mill body during testing, improves test effect and efficiency, avoids unstable connection, and facilitates quick disassembly.
Smart Images

Figure CN223361783U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of ball mill production equipment, in particular to a debugging device for ball mill production. Background Art
[0002] A ball mill is a key piece of equipment for pulverizing materials after crushing. This type of mill incorporates a predetermined number of steel balls within its cylinder as a grinding medium. It is widely used in the production of cement, silicate products, new building materials, refractories, fertilizers, ferrous and non-ferrous metal beneficiation, glass, and ceramics for dry or wet grinding of various ores and other grindable materials. Ball mills require commissioning upon completion of production, and existing commissioning methods typically rely on controlling the motor's direction and timing. During commissioning, vibrations can occur in ball mills, potentially disconnecting the interface between the mill and the test chamber. This can lead to unstable testing and compromised test results. Utility Model Content
[0003] In view of this, the utility model provides a debugging device for ball mill production, which can fix multiple surfaces of the spherical inkjet mill body during testing, making the spherical inkjet mill body more stable during testing and improving the testing effect of the spherical inkjet mill.
[0004] The technical solution is: a debugging device for ball mill production, including a base frame, a test chamber, a motor, a screw, a movable frame, a ball mill body, a clamping component and a pushing component. The test chamber is provided on the upper part of the base frame, the motor is provided on the base frame, the screw is rotatably connected to the base frame, the screw is fixedly connected to the output shaft of the motor, the movable frame is slidably connected to the base frame, the movable frame and the screw are threadedly connected, the ball mill body is placed on the movable frame, the clamping component is arranged in the movable frame, and the pushing component is arranged on the test chamber.
[0005] Furthermore, the clamping component includes motor 2, a screw, a limit rod and a splint. Motor 2 is provided on the movable frame. A screw is provided on the output shaft of motor 2. The screw is provided with two threads. The two threads of the screw rotate in opposite directions. The screw is rotatably connected to the movable frame. Two limit rods are provided on the movable frame. Two splints are slidably connected to the movable frame. Both splints are connected to the screw through threads, and both splints pass through the two limit rods.
[0006] Furthermore, the pushing component includes a fixed frame, a threaded rod, a fixed rod, a pulley, a belt, a motor three, a skateboard, an electric push rod and a push plate. Two fixed frames are provided on the test chamber, and two threaded rods are rotatably connected to the base frame. The threaded rods are rotatably connected to the fixed frame. Two fixed rods are provided on the base frame, and the fixed rods are fixedly connected to the fixed frame. Pulleys are provided at the lower parts of the two threaded rods, and a belt is wound around the two pulleys. Motor three is provided at the lower part of the base frame, and the output shaft of motor three is fixedly connected to one of the threaded rods. A skateboard is slidably connected to the test chamber, and the skateboard is threadedly connected to the two threaded rods. The skateboard passes through the two fixed rods, and an electric push rod is provided on the skateboard. The telescopic rod of the electric push rod passes through the skateboard, and a push plate is provided on the telescopic rod of the electric push rod.
[0007] The beneficial effects are as follows: first, the ball mill body is manually placed in the mobile frame, and then motor one, motor two, motor three and the electric push rod are started. The two clamps will clamp the ball mill body, and the push plate will push the ball mill body so that the input end of the ball mill body is inserted into the interface of the test chamber. In this way, the ball mill body can be fixed on multiple surfaces during the test, making the ball mill body more stable during the test, and avoiding as much as possible the unstable connection between the ball mill body and the test chamber during the test. At the same time, through the drive of motor one, the mobile frame can be moved conveniently, which facilitates the rapid disassembly of the ball mill body and improves the test effect and efficiency of the ball mill. BRIEF DESCRIPTION OF THE DRAWINGS
[0008] Figure 1 It is a schematic diagram of the three-dimensional structure of the utility model.
[0009] Figure 2 It is a partial three-dimensional structural diagram of the utility model.
[0010] Figure 3 It is a schematic diagram of the cross-sectional three-dimensional structure of the utility model.
[0011] Figure numbers: 1_base frame, 2_test chamber, 3_motor 1, 4_screw, 5_moving frame, 6_ball mill body, 71_motor 2, 72_screw, 73_limiting rod, 74_clamp, 81_fixed frame, 82_threaded rod, 83_fixed rod, 84_pulley, 85_belt, 86_motor 3, 87_slide plate, 88_electric push rod, 89_push plate. DETAILED DESCRIPTION
[0012] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0013] Example 1: A debugging device for ball mill production, such as Figure 1-Figure 3As shown, it includes a base frame, a test chamber, a motor 1, a screw, a moving frame, a ball mill body, a clamping component and a pushing component. The test chamber is provided on the upper part of the base frame, the motor 1 is welded on the base frame, the base frame is rotatably connected to the screw, the screw is fixedly connected to the output shaft of the motor 1, the base frame is slidably connected to the moving frame, the moving frame and the screw are connected by threads, the ball mill body is placed on the moving frame, the clamping component is arranged in the moving frame, and the pushing component is arranged on the test chamber.
[0014] Furthermore, the clamping component includes motor 2, a screw, a limit rod and a splint. The movable frame is connected to motor 2 by bolts. A screw is provided on the output shaft of motor 2. The screw is provided with two threads. The two threads of the screw rotate in opposite directions. The screw is rotatably connected to the movable frame. Two limit rods are welded on the movable frame. Two splints are slidably connected to the movable frame. Both splints are connected to the screw by threads, and both splints pass through the two limit rods.
[0015] Furthermore, the pushing component includes a fixed frame, a threaded rod, a fixed rod, a pulley, a belt, a motor three, a skateboard, an electric push rod and a push plate. Two fixed frames are welded on the test chamber, and two threaded rods are rotatably connected to the base frame. The threaded rod is rotatably connected to the fixed frame. Two fixed rods are connected to the base frame by rivets, and the fixed rod is fixedly connected to the fixed frame. The lower parts of the two threaded rods are connected to the pulley through a flat key, and a belt is wound around the two pulleys. Motor three is welded on the lower part of the base frame, and the output shaft of motor three is fixedly connected to one of the threaded rods. A skateboard is slidably connected to the test chamber, and the skateboard is threadedly connected to the two threaded rods. The skateboard passes through the two fixed rods, and an electric push rod is provided on the skateboard. The telescopic rod of the electric push rod passes through the skateboard, and the push plate is connected to the telescopic rod of the electric push rod by bolts.
[0016] First, manually place the ball mill body in the moving frame, then start motor 1, motor 2, motor 3 and electric push rod, the output shaft of motor 2 drives the screw to rotate, the screw rotation will drive the two clamps to move towards each other, the two clamps will clamp the ball mill body, the output shaft of motor 1 drives the lead screw to rotate, the lead screw rotation will drive the moving frame, motor 2, screw and two clamps to move towards the test chamber, when the input end of the ball mill body contacts the interface of the test chamber, the output shaft of motor 3 drives one of the threaded rods and one of the clamps The two pulleys rotate, one of which drives the belt, the other pulley and the other threaded rod to rotate. The rotation of the two threaded rods will drive the slide plate, the electric push rod and the push plate to move downward. At this time, the telescopic rod of the electric push rod will extend, and the telescopic rod of the electric push rod will drive the push plate to move. The push plate will contact the ball mill body, and the push plate will push the ball mill body so that the input end of the ball mill body is inserted into the interface of the test chamber. After the test is completed, the telescopic rod of the electric push rod will shrink, and the telescopic rod of the electric push rod will drive the push plate to move in the opposite direction, and the push plate will be separated from the ball mill body. The output shaft drives one of the threaded rods and one of the pulleys to rotate in the opposite direction, and one of the pulleys drives the belt, the other pulley and the other threaded rod to rotate in the opposite direction. The reverse rotation of the two threaded rods will drive the slide plate, the electric push rod and the push plate to move upward, and the output shaft of the motor drives the screw to rotate in the opposite direction. The reverse rotation of the screw will drive the mobile frame, the motor 2, the screw and the two splints to move in the direction away from the test chamber, and the input end of the ball mill body is disengaged from the interface of the test chamber. The output shaft of the motor 2 drives the screw to rotate in the opposite direction, and the reverse rotation of the screw will drive the two splints to move in the direction away from each other, and the two splints no longer clamp the ball mill body. Then the ball mill body is manually removed and the next ball mill to be tested is replaced in the mobile frame. This reciprocating process can fix the ball mill body on multiple surfaces during the test, making the ball mill body more stable during the test, and avoiding as much as possible the unstable connection between the ball mill body and the test chamber during the test. At the same time, the mobile frame is conveniently moved by the drive of the motor one, which facilitates the rapid disassembly of the ball mill body and improves the testing effect and efficiency of the ball mill.
[0017] The above is only a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and modifications can be made without departing from the principles of the present invention. These improvements and modifications should also be regarded as within the scope of protection of the present invention.
Claims
1. A debugging device for ball mill production, characterized in that: It includes a base frame, a test chamber, a motor, a screw, a moving frame, a ball mill body, a clamping component and a pushing component. The test chamber is provided on the upper part of the base frame, the motor is provided on the base frame, the screw is rotatably connected to the base frame, the screw is fixedly connected to the output shaft of the motor, the moving frame is slidably connected to the base frame, the moving frame and the screw are connected by threads, the ball mill body is placed on the moving frame, the clamping component is arranged in the moving frame, and the pushing component is arranged on the test chamber.
2. A debugging device for ball mill production according to claim 1, characterized in that: The clamping component includes motor 2, a screw, a limit rod and a splint. Motor 2 is provided on the mobile frame. A screw is provided on the output shaft of motor 2. The screw is provided with two threads. The two threads of the screw rotate in opposite directions. The screw is rotatably connected to the mobile frame. Two limit rods are provided on the mobile frame. Two splints are slidably connected to the mobile frame. Both splints are connected to the screw through threads, and both splints pass through the two limit rods.
3. The debugging device for ball mill production according to claim 1, characterized in that: The pushing components include a fixed frame, a threaded rod, a fixed rod, a pulley, a belt, a motor three, a skateboard, an electric push rod and a push plate. Two fixed frames are provided on the test chamber, and two threaded rods are rotatably connected to the base frame. The threaded rods are rotatably connected to the fixed frame. Two fixed rods are provided on the base frame, and the fixed rods are fixedly connected to the fixed frame. Pulleys are provided at the lower parts of the two threaded rods, and a belt is wound around the two pulleys. Motor three is provided at the lower part of the base frame, and the output shaft of motor three is fixedly connected to one of the threaded rods. A skateboard is slidably connected to the test chamber, and the skateboard is threadedly connected to the two threaded rods. The skateboard passes through the two fixed rods, and an electric push rod is provided on the skateboard. The telescopic rod of the electric push rod passes through the skateboard, and a push plate is provided on the telescopic rod of the electric push rod.