A type of cow bone cleaner
By designing a movable screen in the bovine bone cleaner with vertical periodic movement in conjunction with ultrasonic waves, the problem of incomplete impurity removal during bovine bone cleaning is solved, achieving comprehensive cleaning of impurities on the surface of bovine bones and improving cleaning efficiency and quality.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- BIYANG COUNTY BAIYUN FOOD CO LTD
- Filing Date
- 2025-07-09
- Publication Date
- 2026-05-26
AI Technical Summary
Existing industrial-grade ultrasonic cleaners, when cleaning cow bones, suffer from poor impurity removal due to the fixed position of the bones, and some impurities may be re-adsorbed, affecting the cleaning effect.
Design a bovine bone cleaner that uses the vertical periodic movement of a movable screen combined with ultrasonic cleaning to achieve vertical movement of bovine bones within the cleaning solution. A vibration mechanism drives the movable screen to move vertically periodically, and combined with ultrasonic cleaning, removes impurities from the surface of the bovine bones.
It significantly improves the cleaning effect of cattle bones, allowing impurities on the surface of the bones to be fully removed and absorbed into the cleaning solution, thus improving cleaning efficiency and quality.
Smart Images

Figure CN224268093U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of bovine bone cleaning technology, specifically a bovine bone cleaner. Background Technology
[0002] The cow bone cleaner is a specialized piece of equipment designed for the cow bone processing industry. It is mainly used to remove oil stains, blood stains and impurities from the surface of cow bones, thereby improving cleaning efficiency and quality. Industrial-grade ultrasonic cleaners are important equipment for cleaning the surface of cow bones in the industry.
[0003] Existing industrial-grade ultrasonic cleaners first place cow bones inside a filter basket, then place the filter basket inside the cleaning chamber, submerging the cow bones in cleaning fluid. Ultrasonic waves emitted by an ultrasonic generator then cause high-frequency mechanical vibrations in the cleaning fluid, peeling away impurities from the surface of the cow bones. However, the position of the cow bones inside the cleaning fluid remains unchanged, limiting the effectiveness of impurity removal. Some impurities may re-adhere to the surface of the cow bones upon removal due to their fixed position, affecting the overall cleaning effect. Utility Model Content
[0004] The technical problem to be solved by this utility model is to overcome the existing defects and provide a bovine bone cleaner. The bovine bone is moved vertically and periodically in the cleaning liquid by the vertical periodic movement of the movable screen. Combined with ultrasonic waves, it can thoroughly clean the impurities on the surface of the bovine bone, greatly improve the cleaning effect of the bovine bone, and can effectively solve the problems in the background technology.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a bovine bone cleaner, comprising a cleaning chamber, a drive chamber being provided in the middle of the left and right surfaces of the cleaning chamber, and a vibration mechanism;
[0006] Vibration mechanism: It includes a movable screen, a rotating shaft, a rotating handle, a sliding groove, and a sliding column. The movable screen is slidably connected to the inside of the cleaning chamber. The inner walls of the front and rear sides of the cleaning chamber are fixedly connected with symmetrically distributed guide strips. The front and rear ends of the movable screen are provided with notches, which are tightly slidably connected to the longitudinally adjacent guide strips. The left and right ends of the cleaning chamber are rotatably connected with symmetrically distributed rotating shafts. The end of the rotating shaft away from the center of the cleaning chamber extends into the interior of the adjacent drive chamber. The end of the rotating shaft near the center of the cleaning chamber is fixedly connected with a rotating handle, and the end of the rotating handle near the center of the cleaning chamber is fixedly connected with a sliding column. The left and right ends of the movable screen are provided with symmetrically distributed sliding grooves, and the sliding columns are slidably connected to the interior of the adjacent sliding grooves. The vertical periodic movement of the movable screen realizes the vertical movement of the bovine bone in the cleaning solution. Combined with ultrasonic waves, it enables the comprehensive cleaning of impurities on the surface of the bovine bone, greatly improving the cleaning effect of the bovine bone.
[0007] Furthermore, the vibration mechanism also includes driven gears, transmission gears, drive cylinders, and fixed discs. The driven gears are all fixedly connected to the ends of the rotating shafts away from the center of the cleaning chamber. The driven gears are all located inside adjacent drive chambers. Two longitudinally adjacent driven gears are meshed with each other. The ends of the two rear rotating shafts away from the center of the cleaning chamber are all fixedly connected to transmission gears. The ends of the drive chambers away from the center of the cleaning chamber are all rotatably connected to transmission shafts. The ends of the transmission shafts near the center of the cleaning chamber are all fixedly connected to drive cylinders. The upper end of the inner arc surface of the drive cylinder is fixedly connected to evenly distributed teeth 1, which are all installed in conjunction with adjacent transmission gears. The end of the drive cylinder near the center of the cleaning chamber is fixedly connected to a fixed disc. The lower end of the outer arc surface of the fixed disc is fixedly connected to evenly distributed teeth 2, which are all installed in conjunction with adjacent transmission gears, thereby realizing the vertical periodic movement of the movable screen.
[0008] Furthermore, a controller is installed on the left side of the cleaning chamber. The input terminal of the controller is electrically connected to an external power source to control various electrical appliances.
[0009] Furthermore, a support plate is fixedly connected to the lower end of the cleaning chamber. A motor is installed at the rear end of the upper surface of the support plate. A drive bevel gear is fixedly connected to the rear end of the motor output shaft. Symmetrically distributed supports are fixedly connected to the rear end of the upper surface of the support plate. A drive shaft is rotatably connected to the upper end between two supports. Drive pulleys are fixedly connected to both ends of the drive shaft. A driven pulley is fixedly connected to the end of the drive shaft away from the center of the cleaning chamber. The drive pulleys are all connected to the adjacent driven pulleys through a transmission belt. The input end of the motor is electrically connected to the output end of the controller to provide driving force for the vertical periodic movement of the movable screen.
[0010] Furthermore, an ultrasonic generator is provided at the front end of the upper surface of the support plate, and ultrasonic probes are evenly distributed at the bottom of the cleaning chamber. The input ends of the ultrasonic probes are electrically connected to the output end of the ultrasonic generator, and the input end of the ultrasonic generator is electrically connected to the output end of the controller, thereby realizing ultrasonic cleaning of the bovine bone.
[0011] Furthermore, a water inlet pipe is provided at the left end of the front surface of the cleaning chamber, and a water outlet pipe is provided at the right end of the rear surface of the cleaning chamber. An electric valve is provided in the middle of both the water inlet and the water outlet pipes. The input ends of the two electric valves are electrically connected to the output end of the controller to control the entry and exit of the cleaning fluid.
[0012] Furthermore, the upper end of the cleaning chamber is fixedly connected to a uniformly distributed support frame, and the top wall of the support frame is provided with a cleaning pipe. The water inlet of the cleaning pipe is connected to an external water tank, and the lower end of the cleaning pipe is provided with a uniformly distributed nozzle, which sprays the cleaning solution when the cow bone is removed.
[0013] Compared with the prior art, the beneficial effects of this utility model are as follows: This cow bone cleaner has the following advantages:
[0014] A motor drives a pulley mechanism, which in turn drives a gear mechanism, enabling the rotating shaft to rotate periodically. A slide bar supports the movable screen, allowing it to move vertically and periodically. This vertical movement of the movable screen causes the cow bones to move vertically within the cleaning solution. Combined with ultrasonic waves, this ensures thorough cleaning of impurities from the cow bone surface, allowing them to leave the bone and enter the cleaning solution, thus significantly improving the cleaning effect. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the structure of this utility model;
[0016] Figure 2 This is a cross-sectional view of the internal structure of this utility model;
[0017] Figure 3 This is a cross-sectional view of the upper side of the present invention;
[0018] Figure 4 This is an enlarged structural diagram of point A in this utility model;
[0019] Figure 5 This is a cross-sectional structural diagram of the vibration mechanism of this utility model.
[0020] In the diagram: 1. Cleaning chamber, 2. Drive chamber, 3. Support plate, 4. Vibration mechanism, 41. Movable screen, 42. Rotating shaft, 43. Rotating handle, 44. Slide groove, 45. Sliding column, 46. Driven gear, 47. Transmission gear, 48. Drive cylinder, 49. Fixed plate, 5. Drive shaft, 6. Drive pulley, 7. Driven pulley, 8. Motor, 9. Ultrasonic generator, 10. Ultrasonic probe, 11. Notch, 12. Guide bar, 13. Bracket, 14. Cleaning pipe, 15. Electric valve, 16. Controller. Detailed Implementation
[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0022] Please see Figure 1-5 This embodiment provides a technical solution: a bovine bone cleaner, including a cleaning chamber 1, a drive chamber 2 is provided in the middle of the left and right sides of the cleaning chamber 1, a controller 16 is provided on the left side of the cleaning chamber 1, the input end of the controller 16 is electrically connected to an external power supply, and a vibration mechanism 4 is also included.
[0023] Vibration mechanism 4: It includes a movable screen 41, a rotating shaft 42, a rotating handle 43, a sliding groove 44, and a sliding column 45. The movable screen 41 is slidably connected to the inside of the cleaning chamber 1. The inner walls of the front and rear sides of the cleaning chamber 1 are fixedly connected with symmetrically distributed guide bars 12. The front and rear ends of the movable screen 41 are provided with notches 11, which are tightly slidably connected to the longitudinally adjacent guide bars 12. The left and right ends of the cleaning chamber 1 are rotatably connected with symmetrically distributed rotating shafts 42. The ends of the rotating shafts 42 away from the center of the cleaning chamber 1 extend into the interior of the adjacent drive chamber 2. The ends of the rotating shafts 42 near the center of the cleaning chamber 1 are fixedly connected with rotating handles 43. The ends of the rotating handles 43 near the center of the cleaning chamber 1 are fixedly connected with sliding columns 45. The left and right ends of the movable screen 41 are provided with notches 11. The vibration mechanism 4 includes symmetrically distributed grooves 44, with sliding columns 45 slidably connected to the interior of adjacent grooves 44. It also includes driven gears 46, transmission gears 47, drive cylinders 48, and a fixed disc 49. Each driven gear 46 is fixedly connected to the end of a rotating shaft 42 away from the center of the cleaning chamber 1. Each driven gear 46 is located inside an adjacent drive chamber 2, and two longitudinally adjacent driven gears 46 are meshed together. Transmission gears 47 are fixedly connected to the ends of the two rear rotating shafts 42 away from the center of the cleaning chamber 1. A drive shaft is rotatably connected to the end of each drive chamber 2 away from the center of the cleaning chamber 1. A drive cylinder 48 is fixedly connected to the end of the drive shaft near the center of the cleaning chamber 1. Evenly distributed teeth are fixedly connected to the upper end of the inner arc surface of the drive cylinder 48. Each drive cylinder 48 is installed in conjunction with an adjacent transmission gear 47. A fixed plate 49 is fixedly connected to the end of the drive cylinder 48 closest to the center of the cleaning chamber 1. Evenly distributed teeth 2 are fixedly connected to the lower end of the outer arc surface of the fixed plate 49, and each tooth 2 is installed in conjunction with an adjacent transmission gear 47. A support plate 3 is fixedly connected to the lower end of the cleaning chamber 1. A motor 8 is installed at the rear end of the upper surface of the support plate 3. A drive bevel gear is fixedly connected to the rear end of the output shaft of the motor 8. Symmetrically distributed supports are fixedly connected to the rear end of the upper surface of the support plate 3. A drive shaft 5 is rotatably connected between the upper ends of the two supports. Drive pulleys 6 are fixedly connected to both ends of the drive shaft 5. A driven pulley 7 is fixedly connected to the end of the drive shaft furthest from the center of the cleaning chamber 1. Each drive pulley 6 is connected to an adjacent driven pulley 7. The driving pulley 7 is connected via a transmission belt. The input end of the motor 8 is electrically connected to the output end of the controller 16. The controller 16 enables the motor 8 to operate. The rotation of the output shaft of the motor 8 drives the bevel gear to rotate, which in turn drives the driven bevel gear to rotate. The driven bevel gear then drives the drive shaft 5 to rotate, which in turn drives the two drive pulleys 6 to rotate. Each of the two drive pulleys 6 drives the adjacent driven pulley 7 to rotate via a corresponding transmission belt. The rotation of the driven pulley 7 drives the adjacent transmission shaft to rotate, which in turn drives the adjacent drive cylinder 48 to rotate. The rotation of the drive cylinder 48 drives the adjacent fixed disc 49 to rotate. When the teeth on the outer arc surface of the fixed disc 49 contact the transmission gear 47, the transmission gear 47 begins to rotate.The rotation of the transmission gear 47 drives the adjacent rotating shaft 42 to rotate. The rotation of the rear rotating shaft 42 drives the adjacent driven gear 46 to rotate. The rotation of the rear driven gear 46 drives the adjacent driven gear 46 to rotate. The two longitudinally adjacent driven gears 46 rotate in opposite directions, causing the two longitudinally adjacent rotating shafts 42 to rotate towards the center of the cleaning chamber 1. The rotation of the rotating shaft 42 drives the adjacent rotating handle 43 to rotate towards the center of the cleaning chamber 1. The upward rotation of the rotating handle 43 drives the adjacent sliding column 45 to rotate upward. The upward rotation of the sliding column 45 pulls the movable screen 41 upward. The notch of the movable screen 41 slides with the adjacent guide bar 12 to ensure the stability of the sliding of the movable screen 41. When the teeth on the outer arc surface of the fixed disk 49 finish contacting the transmission gear 47, the teeth on the inner arc surface of the drive cylinder 48 begin to contact the transmission gear 47, causing the transmission gear 47 to rotate in the opposite direction. The rotation of the drive gear 47 in the opposite direction causes the adjacent shaft 42 to rotate in the opposite direction. The reverse rotation of the rear shaft 42 causes the adjacent driven gear 46 to rotate in the opposite direction. The reverse rotation of the rear driven gear 46 causes the adjacent driven gear 46 to rotate in the opposite direction. The opposite rotation directions of the two longitudinally adjacent driven gears 46 cause the two longitudinally adjacent shafts 42 to rotate away from the center of the cleaning chamber 1. The rotation of the shafts 42 causes the adjacent rotating handle 43 to rotate away from the center of the cleaning chamber 1. The downward rotation of the rotating handle 43 causes the adjacent sliding column 45 to rotate downward. The downward rotation of the sliding column 45 pulls the movable screen 41 downward. As the drive cylinder 48 rotates in a circular motion, the movable screen 41 moves vertically periodically, thereby achieving vertical periodic movement of the bovine bone within the cleaning liquid. This allows impurities on the surface of the bovine bone to overflow, further improving the cleaning effect on the bovine bone surface.
[0024] The support plate 3 has an ultrasonic generator 9 mounted on its upper surface at the front end (with technical parameters covering an input voltage of 220V, operating temperature from -25℃ to 60℃, and an output frequency of 20KHz-120KHz, and a wide-range sweep frequency adjustment capability of 10Hz-2kHz). The bottom of the cleaning chamber 1 has evenly distributed ultrasonic probes 10, the input ends of which are electrically connected to the output end of the ultrasonic generator 9. The input end of the ultrasonic generator 9 is electrically connected to the output end of the controller 16, which controls the operation of the ultrasonic generator 9. The ultrasonic generator 9 first generates signals through its internal signal generator. An electrical signal of a specific frequency (usually 20kHz-130kHz) is generated by the ultrasonic generator 9. The signal drives the transducer (such as piezoelectric ceramic) to convert electrical energy into high-frequency mechanical vibration. The high-frequency mechanical vibration is transmitted to the cleaning fluid through the ultrasonic probe 10. Under the alternating action of the sound waves, the liquid forms tiny bubbles (cavitation nuclei). When the sound pressure reaches the threshold, the bubbles expand and close rapidly, generating instantaneous high-pressure shock waves. This directly destroys the adhesion between the dirt and the surface of the cow bone, removing oil, particles and other impurities. At the same time, the shock wave when the bubbles close and the liquid jet can penetrate into the tiny gaps on the surface of the cow bone, achieving all-round cleaning of the cow bone.
[0025] Wherein: a water inlet pipe is provided at the left end of the front surface of the cleaning chamber 1, and a water outlet pipe is provided at the right end of the rear surface of the cleaning chamber 1. An electric valve 15 is provided in the middle of both the water inlet pipe and the water outlet pipe. The input end of both electric valves 15 is electrically connected to the output end of the controller 16. The controller 16 realizes the operation of the electric valve 15 in the middle of the water inlet pipe. When the electric valve 15 is opened, the cleaning fluid is injected into the interior of the cleaning chamber 1 through the water inlet pipe. When the cleaning fluid level reaches the specified height, the controller 16 closes the electric valve 15.
[0026] The upper end of the cleaning chamber 1 is fixedly connected to a uniformly distributed support frame 13. Each support frame 13 has a cleaning pipe 14 on its top wall. The inlet of each cleaning pipe 14 is connected to an external water tank. The lower end of the cleaning pipe 14 has a uniformly distributed nozzle. After the surface of the cow bone is cleaned, the controller 16 shuts off the motor 8 and the ultrasonic generator 9, and opens the electric valve 15 in the middle of the outlet pipe. The used cleaning solution is removed through the outlet pipe. Then, the external water tank injects clean water into the cleaning pipe 14. The clean water is sprayed out through the uniformly distributed nozzles and sprayed onto the surface of the cow bone to clean the residual cleaning solution on the surface of the cow bone. Then, the cleaned cow bone is taken out.
[0027] The working principle of the bovine bone cleaner provided by this utility model is as follows: During operation, the operator first places the cleaning chamber 1, drive chamber 2, and other mechanisms stably in a horizontal working area. After stable placement, the operator places the bovine bones to be cleaned into the movable screen 41. Then, the operator uses the controller 16 to operate the electric valve 15 in the middle of the water inlet pipe. The electric valve 15 opens, and the operator injects cleaning fluid into the cleaning chamber 1 through the water inlet pipe. When the cleaning fluid level reaches the designated height, the operator uses the controller 16 to close the electric valve 15 and activate the ultrasonic generator 9. The ultrasonic generator 9 first generates an electrical signal of a specific frequency (usually 20kHz-130kHz) through its internal signal generator, and then the ultrasonic generator... 9. A signal-driven transducer (such as a piezoelectric ceramic) converts electrical energy into high-frequency mechanical vibration, which is then transmitted to the cleaning fluid via an ultrasonic probe 10. Under the alternating action of the sound waves, the liquid forms tiny bubbles (cavitation nuclei). When the sound pressure reaches a threshold, the bubbles rapidly expand and collapse, generating an instantaneous high-pressure shock wave. This directly disrupts the adhesion between the dirt and the surface of the cow bone, removing oil, particles, and other impurities. Simultaneously, the shock wave from the collapsing bubbles and the liquid jet can penetrate deep into the tiny crevices of the cow bone surface, achieving comprehensive cleaning. Meanwhile, the controller 16 activates the motor 8. The output shaft of the motor 8 rotates, driving a bevel gear, which in turn drives a driven bevel gear, which in turn drives the drive shaft 5. The two drive pulleys 6 rotate, and each drive pulley 6 drives the adjacent driven pulley 7 to rotate via a corresponding transmission belt. The rotation of the driven pulley 7 drives the adjacent transmission shaft to rotate, and the rotation of the transmission shaft drives the adjacent drive cylinder 48 to rotate. The rotation of the drive cylinder 48 drives the adjacent fixed disk 49 to rotate. When the teeth on the outer arc surface of the fixed disk 49 contact the transmission gear 47, the transmission gear 47 begins to rotate. The rotation of the transmission gear 47 drives the adjacent rotating shaft 42 to rotate, and the rotation of the rear rotating shaft 42 drives the adjacent driven gear 46 to rotate. The rotation of the rear driven gear 46 drives the adjacent driven gear 46 to rotate. The two longitudinally adjacent driven gears 46 rotate in opposite directions, causing the two longitudinally adjacent rotating shafts 42 to rotate. Rotating the shaft 42 towards the center of the cleaning chamber 1 causes the adjacent rotating handle 43 to rotate towards the center of the cleaning chamber 1. The upward rotation of the rotating handle 43 causes the adjacent sliding column 45 to rotate upward, pulling the movable screen 41 upward. The notch of the movable screen 41 slides against the adjacent guide bar 12, ensuring the stability of the movable screen 41's sliding. When the teeth on the outer arc surface of the fixed disk 49 cease contact with the transmission gear 47, the teeth on the inner arc surface of the drive cylinder 48 begin contact with the transmission gear 47, causing the transmission gear 47 to rotate in the opposite direction. The reverse rotation of the transmission gear 47 causes the adjacent rotating shaft 42 to rotate in the opposite direction, and the reverse rotation of the rear rotating shaft 42 causes the adjacent driven gear 46 to rotate in the opposite direction.The reverse rotation of the rear driven gear 46 drives the adjacent driven gear 46 to rotate in the opposite direction. The opposite rotation directions of two longitudinally adjacent driven gears 46 cause the two longitudinally adjacent rotating shafts 42 to rotate away from the center of the cleaning chamber 1. The rotation of the rotating shafts 42 drives the adjacent rotating handles 43 to rotate away from the center of the cleaning chamber 1. The downward rotation of the rotating handles 43 drives the adjacent sliding columns 45 to rotate downward. The downward rotation of the sliding columns 45 pulls the movable screen 41 downward. As the drive cylinder 48 rotates in a circular motion, the movable screen 41 moves vertically periodically. The cleaning process involves the vertical, periodic movement of the cow bone within the cleaning solution, ensuring that impurities on the bone surface are removed, thus improving the cleaning effect. Once the bone surface is cleaned, the controller 16 shuts off the motor 8 and the ultrasonic generator 9, and opens the electric valve 15 in the middle of the water outlet pipe. The used cleaning solution is then discharged through the outlet pipe. Next, the external water tank injects clean water into the cleaning pipe 14, which is then sprayed through evenly distributed nozzles onto the surface of the cow bone to remove any remaining cleaning solution. Finally, the cleaned cow bone is removed.
[0028] It is worth noting that the ultrasonic generator 9 disclosed in the above embodiments can be a QYCF ultrasonic generator, and the controller 16 controls the operation of the motor 8, ultrasonic generator 9 and electric valve 15 using methods commonly used in the prior art.
[0029] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the content of this utility model specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.
Claims
1. A bovine bone cleaner, comprising a cleaning chamber (1), wherein a drive chamber (2) is provided in the middle of the left and right sides of the cleaning chamber (1), characterized in that: It also includes a vibration mechanism (4); Vibration mechanism (4): It includes a movable screen (41), a rotating shaft (42), a rotating handle (43), a sliding groove (44), and a sliding column (45). The movable screen (41) is slidably connected to the inside of the cleaning chamber (1). The inner walls of the front and rear sides of the cleaning chamber (1) are fixedly connected with symmetrically distributed guide bars (12). The front and rear ends of the movable screen (41) are provided with notches (11). The notches (11) are tightly slidably connected with the longitudinally adjacent guide bars (12). The left and right ends of the cleaning chamber (1) are rotatable. The screen (41) is connected to symmetrically distributed rotating shafts (42). The ends of the rotating shafts (42) away from the center of the cleaning chamber (1) extend into the interior of the adjacent drive chamber (2). The ends of the rotating shafts (42) near the center of the cleaning chamber (1) are fixedly connected to rotating handles (43). The ends of the rotating handles (43) near the center of the cleaning chamber (1) are fixedly connected to sliding columns (45). The left and right ends of the movable screen (41) are provided with symmetrically distributed sliding grooves (44). The sliding columns (45) are slidably connected to the interior of the adjacent sliding grooves (44).
2. The bovine bone cleaner according to claim 1, characterized in that: The vibration mechanism (4) further includes a driven gear (46), a transmission gear (47), a drive cylinder (48), and a fixed disk (49). The driven gears (46) are all fixedly connected to the end of the rotating shaft (42) away from the center of the cleaning chamber (1). The driven gears (46) are all located inside the adjacent drive chambers (2). Two longitudinally adjacent driven gears (46) are meshed with each other. The two rear rotating shafts (42) are fixedly connected to the end away from the center of the cleaning chamber (1) with transmission gears (47). The drive chambers (2) are away from the cleaning chamber. (1) One end of the center is rotatably connected to a drive shaft. The end of the drive shaft near the center of the cleaning chamber (1) is fixedly connected to a drive cylinder (48). The upper end of the inner arc surface of the drive cylinder (48) is fixedly connected to evenly distributed teeth one. Teeth one is installed in cooperation with the adjacent drive gear (47). The end of the drive cylinder (48) near the center of the cleaning chamber (1) is fixedly connected to a fixed disk (49). The lower end of the outer arc surface of the fixed disk (49) is fixedly connected to evenly distributed teeth two. Teeth two is installed in cooperation with the adjacent drive gear (47).
3. A bovine bone cleaner according to claim 2, characterized in that: A controller (16) is provided on the left side of the cleaning chamber (1), and the input terminal of the controller (16) is electrically connected to an external power source.
4. A bovine bone cleaner according to claim 3, characterized in that: The lower end of the cleaning chamber (1) is fixedly connected to a support plate (3). A motor (8) is provided at the rear end of the upper surface of the support plate (3). A drive bevel gear is fixedly connected to the rear end of the output shaft of the motor (8). Symmetrically distributed supports are fixedly connected to the rear end of the upper surface of the support plate (3). A drive shaft (5) is rotatably connected to the upper end between the two supports. Drive pulleys (6) are fixedly connected to both the left and right ends of the drive shaft (5). A driven pulley (7) is fixedly connected to the end of the drive shaft away from the center of the cleaning chamber (1). The drive pulleys (6) are all connected to the adjacent driven pulleys (7) through a drive belt. The input end of the motor (8) is electrically connected to the output end of the controller (16).
5. A bovine bone cleaner according to claim 4, characterized in that: An ultrasonic generator (9) is provided at the front end of the upper surface of the support plate (3), and ultrasonic probes (10) are evenly distributed at the bottom of the cleaning chamber (1). The input ends of the ultrasonic probes (10) are electrically connected to the output ends of the ultrasonic generator (9), and the input ends of the ultrasonic generator (9) are electrically connected to the output ends of the controller (16).
6. A bovine bone cleaner according to claim 3, characterized in that: A water inlet pipe is provided on the left end of the front surface of the cleaning chamber (1), and a water outlet pipe is provided on the right end of the rear surface of the cleaning chamber (1). An electric valve (15) is provided in the middle of both the water inlet pipe and the water outlet pipe. The input ends of the two electric valves (15) are electrically connected to the output end of the controller (16).
7. A bovine bone cleaner according to claim 1, characterized in that: The upper end of the cleaning chamber (1) is fixedly connected to a uniformly distributed support (13), and the top wall of the support (13) is provided with a cleaning pipe (14). The water inlet of the cleaning pipe (14) is connected to an external water tank, and the lower end of the cleaning pipe (14) is provided with a uniformly distributed nozzle.