A snake meat grinding device
By designing rotating components and crushing bones, the particle uniformity and efficiency of the snake meat crushing device have been improved, solving the problem of uneven particle size in existing devices and reducing costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGXI JINSHENGTANG BIOMEDICAL TECH CO LTD
- Filing Date
- 2025-08-31
- Publication Date
- 2026-08-04
AI Technical Summary
Existing snake meat crushing devices suffer from poor particle uniformity due to directional friction during the crushing process, affecting crushing efficiency and quality and failing to meet high process requirements.
The design incorporates a rotating component and a crushing bone, causing the drum to rotate in opposite directions to the crushing blade. The crushing bone repeatedly compresses the snake meat, and the rotating block adjusts the drum volume to control particle size. Combined with a mixing blade, this promotes uniform crushing of the snake meat.
This improved the uniformity of the snake meat particles after grinding, enhanced grinding efficiency, and reduced the manufacturing cost of the device.
Smart Images

Figure CN224586014U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of medicinal material pulverization technology, and in particular to a snake meat pulverizing device. Background Technology
[0002] Snake meat is rich in protein, various amino acids, and essential trace elements. It typically needs to be ground into powder for better taste and easier absorption. Current technology generally uses small-scale medicinal herb grinders. This involves placing dried snake meat into a trough, closing the trough, and starting a motor to grind the meat into powder using blades within the trough. Its core advantages are low operating costs and small footprint. However, as the pharmaceutical industry demands increased process control, energy efficiency, and adaptability to complex environments in snake meat powder preparation, current technology reveals the following pain points.
[0003] Existing high-speed blenders suffer from reduced performance due to insufficient heat dissipation during prolonged operation, and in severe cases, this can damage the electromechanical components, failing to adequately meet user needs.
[0004] The existing technology provides some solutions to the above problems. For example, the utility model patent with patent application number CN202122360639.9 provides a Chinese herbal medicine cell wall breaking pulverizer. This solution uses fans on both sides of the shell. After the fans are started, they cool down the heat sink that absorbs the heat of the motor, thus avoiding the motor being in a high-temperature state for a long time, which would cause the cell wall breaking pulverizer to malfunction and be damaged. However, this solution only considers the temperature control of the motor. During the continuous pulverization of snake meat, the snake meat is always subjected to directional friction, which can easily reduce the uniformity of the snake meat pulverization on the pulverizer. For example, the snake meat in the upper and lower layers of the feed trough cannot be turned over, resulting in uneven particle size and color of the pulverized snake powder. When the above problems occur on the pulverizer, it is impossible to effectively improve the pulverization efficiency and quality of snake meat, which limits the use effect of small herbal medicine pulverizers. Utility Model Content
[0005] To address the above shortcomings, this utility model provides a snake meat pulverizing device that solves the problem that existing snake meat is always subjected to directional friction during the pulverizing process, resulting in limited particle uniformity in the pulverizer. Consequently, small-scale medicinal herb pulverizers cannot meet the high process requirements when pulverizing snake meat, thus limiting the effectiveness of small-scale medicinal herb pulverizers.
[0006] To achieve the above objectives, the present invention adopts the following technical solution: A snake meat pulverizing device includes a frame, a controller, and a motor. The controller is mounted on the side of the frame. The outer edges of both sides of the motor are rotatably connected to the upper end of the frame. The controller is electrically connected to the motor. A can and a cover are fixedly mounted on the output end face of the motor. The cover seals the can. A pulverizing blade is connected inside the can. The lower end face of the pulverizing blade is fixedly connected to the output shaft of the motor. A rotating drum is rotatably connected inside the can. Multiple crushing bones in a circumferential array are provided on the inner wall of the rotating drum. The crushing bones are strip-shaped, and their extension direction is at a certain angle to the axis of the rotating drum. A control groove is provided inside the cover. A rotating component is provided in the control groove. The rotating drum is connected to the pulverizing blade through the rotating component. The rotating component is used to make the rotation direction of the drum opposite to the rotation direction of the pulverizing blade when the snake meat is pulverized.
[0007] Further, the rotating assembly includes a hexagonal shaft, a rotating block, a connecting ring, a gear set, and an adjusting component. The rotating block includes a sliding part and a rotating part, which are rotatably connected. A control groove is provided inside the cover. The sliding part is elastically connected to the control groove. The rotating part is slidably connected to the control groove and rotates along the inner wall of the control groove. The lower end face of the rotating part extends into the rotating drum. A hexagonal groove is provided on the lower end face of the rotating part. One end face of the hexagonal shaft is vertically connected to the crushing blade, and the other end face is slidably connected to the hexagonal groove. The hexagonal groove and the hexagonal shaft are clearance-fitted. An external toothed part is provided on the outer wall of the rotating part. The connecting ring is rotatably connected to the lower end face of the control groove. The lower end face of the connecting ring and the upper end face of the rotating drum are respectively provided with mutually cooperating positioning pins and positioning holes. The external toothed part is connected to the connecting ring through the gear set. The adjusting component is connected to the sliding part.
[0008] Furthermore, the adjusting component includes an adjusting groove, a knob, a pressure plate, a pressure block, and a locking element. The adjusting groove is located within the cover body, and the locking element is located within the adjusting groove. The control groove communicates with the outside through the adjusting groove. The knob is elastically connected to the adjusting groove. The upper and lower ends of the outer edge of the knob are respectively provided with a locking block and a graduated line. The adjusting groove contains multiple adjusting parts arranged in a vertical array. Interconnected grooves are formed between the multiple adjusting parts. The locking block is slidably connected to the groove. The graduated line extends outside the adjusting groove and has the same number as the adjusting parts. Collinear indicator grooves are formed on the upper surface of the cover body and the upper surface of the knob. The groove is located within the vertical projection plane of the indicator groove. The pressure plate and the pressure block are both hinged to the control groove. One end of the pressure plate is connected to the lower surface of the knob, and the other end engages with the pressure block. A first helical tooth is provided at the end of the pressure block away from the pressure plate. The first helical tooth is connected to the sliding part through the locking element.
[0009] Furthermore, in the above scheme, the locking component includes a sliding tooth, a worm gear, and a turbine. The worm gear and the turbine are both connected to the adjusting groove. One end of the worm gear is provided with a second helical tooth, and the other end meshes with the turbine. The second helical tooth and the first helical tooth mesh. The sliding tooth is provided on the sliding part and meshes with the turbine.
[0010] Furthermore, in the above scheme, the gear set includes an internal gear and a fixed gear. The internal gear is located on the inner edge surface of the connecting ring, the fixed gear is hinged to the control groove, and the external gear meshes with the internal gear through the fixed gear.
[0011] Furthermore, in the above scheme, the rotating part is a trapezoidal frustum with the inclined surface of the frustum facing the inner wall of the rotating cylinder.
[0012] Furthermore, the outer surface of the crushed bone is provided with a guide surface one and a guide surface two on both sides. The guide surface one is semi-circular arc-shaped, and the guide surface two is trapezoidal with serrated inclined surfaces.
[0013] Furthermore, the above scheme also includes a powder-stirring blade arranged in a spiral upward on the hexagonal shaft, and the vertical cross-section of the powder-stirring blade is teardrop-shaped.
[0014] Compared with the prior art, the beneficial effects of this utility model are that by setting a rotating component, a rotating drum, and a crushing bone, the rotating component can realize that the rotating drum and the crushing blade rotate in opposite directions when the snake meat is crushed. In conjunction with the crushing bone, the snake meat in the center of the rotating drum is continuously guided to the inner wall of the rotating drum, so that the snake meat is subjected to multiple compressions from different directions, thereby improving the uniformity of the snake meat after crushing. Furthermore, by adjusting the volume inside the rotating drum by the rotating block, the particle size of the snake meat after crushing can be controlled. In addition, the setting of external power is reduced and the structure is simple, thereby effectively reducing the manufacturing cost of the crushing device. Attached Figure Description
[0015] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below.
[0016] Figure 1 This is a schematic diagram of the overall structure of the snake meat crushing device of this utility model; Figure 2 for Figure 1 Full cross-section view at point AA; Figure 3 for Figure 2 Enlarged view of the adjusting and locking components at point B; Figure 4 This is a schematic diagram of the structural state in which the rotating part further enters the rotating cylinder after the knob is pressed in this utility model; Figure 5 This is a three-dimensional structural diagram of the rotating component in this utility model; Figure 6 for Figure 1 Full cross-section at the CC point; Figure 7 This is a three-dimensional structural diagram of the transfer cylinder of this utility model.
[0017] In the diagram: 1. Frame; 11. Controller; 12. Motor; 13. Tank; 14. Rotary drum; 141. Positioning hole; 15. Crushing bone; 151. Guide surface one; 152. Guide surface two; 16. Cover; 161. Indicator groove; 17. Control groove; 18. Crushing blade; 2. Rotating assembly; 21. Hexagonal shaft; 211. Mixing blade; 212. Hexagonal groove; 22. Rotating block; 221. Sliding part; 222. Rotating part; 2221. External toothed part; 23. Connecting ring; 231. Locating pin; 24. Gear set; 241. Internal gear; 242. Fixed gear; 25. Adjusting component; 251. Adjusting groove; 252. Adjusting part; 2521. Groove; 253. Knob; 2531. Locking block; 2532. Grating line; 254. Pressure plate; 255. Pressure block; 2551. First helical gear; 26. Locking component; 261. Sliding tooth; 262. Worm; 2621. Second helical gear; 263. Turbine. Detailed Implementation
[0018] 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. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the scope of protection of the present utility model.
[0019] In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating the orientation or positional relationship, are based on the orientation or positional relationship shown in the accompanying drawings and are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0020] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances. Furthermore, the technical features involved in the different embodiments of this utility model described below can be combined with each other as long as they do not conflict with each other.
[0021] This utility model provides a snake meat pulverizing device, the technical solution of which is as follows: Please see Figures 1 to 7 A snake meat pulverizing device includes a frame 1, a controller 11, and a motor 12. The controller 11 is mounted on the side of the frame 1. The outer edges of both sides of the motor 12 are rotatably connected to the upper end of the frame 1. The controller 11 and the motor 12 are electrically connected. A tank 13 and a cover 16 are fixedly mounted on the output end face of the motor 12. The cover 16 seals the tank 13. A pulverizing blade 18 is connected inside the tank 13. The lower end face of the pulverizing blade 18 is fixedly connected to the output shaft of the motor 12. A rotatable part of the device is rotatably connected inside the tank 13. There is a rotating drum 14, and multiple crushing bones 15 arranged in a circular array on the inner wall of the rotating drum 14. The crushing bones 15 are strip-shaped and the extension direction of the crushing bones 15 is at a certain angle to the axis of the rotating drum 14. A control groove 17 is opened in the cover 16, and a rotating component 2 is provided in the control groove 17. The rotating drum 14 is connected to the crushing blade 18 through the rotating component 2. The rotating component 2 is used to make the rotation direction of the rotating drum 14 opposite to the rotation direction of the crushing blade 18 when the snake meat is crushed.
[0022] Please see Figures 1 to 5The rotating assembly 2 includes a hexagonal shaft 21, a rotating block 22, a connecting ring 23, a gear set 24, and an adjusting component 25. The rotating block 22 includes a sliding part 221 and a rotating part 222. The sliding part 221 and the rotating part 222 are rotatably connected. A control groove 17 is provided inside the cover 16. The sliding part 221 is elastically connected to the control groove 17. The rotating part 222 is slidably connected to the control groove 17 and rotates along the inner wall of the control groove 17. The lower end face of the rotating part 222 extends into the rotating drum 14. A hexagonal groove 212 is provided on the lower end face of the rotating part 222. One end face of the hexagonal shaft 21 is vertically connected to the crushing blade 18, and the other end face is slidably connected to the hexagonal groove 212. The hexagonal groove 212 and the hexagonal shaft 21 are clearance-fitted. The outer wall of the rotating part 222... The device includes an external gear 2221, a connecting ring 23 rotatably connected to the lower end face of the control groove 17, and a positioning pin 231 and a positioning hole 141 respectively on the lower end face of the connecting ring 23 and the upper end face of the rotating cylinder 14. The external gear 2221 is connected to the connecting ring 23 via a gear set 24. An adjusting component 25 is connected to the sliding part 221. The adjusting component 25 includes an adjusting groove 251, a knob 253, a pressure plate 254, a pressure block 255, and a locking component 26. The adjusting groove 251 is located inside the cover 16, and the locking component 26 is located inside the adjusting groove 251. The control groove 17 communicates with the outside through the adjusting groove 251. The knob 253 is elastically connected to the adjusting groove 251. The upper and lower ends of the outer edge of the knob 253 are respectively provided with a locking block 2531 and a locking component 2531. The adjustment groove 251 has multiple vertically arranged adjustment parts 252 with engravings 2532. Interconnected grooves 2521 are formed between the adjustment parts 252. A locking block 2531 is slidably connected to the grooves 2521. The engravings 2532 extend outside the adjustment groove 251 and are the same number as the adjustment parts 252. Collinear indicator grooves 161 are formed on the upper surface of the cover 16 and the upper surface of the knob 253. The grooves 2521 are located within the vertical projection plane of the indicator grooves 161. Both the pressure plate 254 and the pressure block 255 are hinged to the control groove 17. One end of the pressure plate 254 is connected to the lower surface of the knob 253, and the other end engages with the pressure block 255. A first helical tooth 255 is provided at the end of the pressure block 255 away from the pressure plate 254. 1. The first helical tooth 2551 is connected to the sliding part 221 through the locking member 26. The locking member 26 includes a sliding tooth 261, a worm 262 and a turbine 263. The worm 262 and the turbine 263 are both connected to the adjusting groove 251. One end of the worm 262 is provided with a second helical tooth 2621, and the other end meshes with the turbine 263. The second helical tooth 2621 meshes with the first helical tooth 2551. The sliding tooth 261 is provided on the sliding part 221 and meshes with the turbine 263. The gear set 24 includes an internal gear 241 and a fixed gear 242. The internal gear 241 is provided on the inner edge surface of the connecting ring 23. The fixed gear 242 is hinged to the control groove 17. The external tooth 2221 meshes with the internal gear 241 through the fixed gear 242.
[0023] Please see Figures 5 to 7The rotating part 222 is a trapezoidal frustum with the inclined surface of the frustum facing the inner wall of the rotating cylinder 14. The outer surface of the crushing bone 15 is provided with a guide surface 151 and a guide surface 152 on both sides. The guide surface 151 is semi-circular arc-shaped, and the guide surface 152 is trapezoidal with a serrated inclined surface. The hexagonal shaft 21 is also provided with a stirring plate 211 arranged in a spiral upward. The vertical cross-section of the stirring plate 211 is teardrop-shaped.
[0024] Please see Figures 1 to 7 The staff opened the cover 16 and loaded the snake meat into the rotating drum 14, then closed the cover 16 to seal the drum 14. At this time, the controller 11 started the motor 12 to rotate, which in turn drove the pulverizing blade 18 to rotate synchronously. The snake meat at the bottom of the rotating drum 14 was pulverized by the pulverizing blade 18 first. Due to the rotation of the pulverizing blade 18, the snake meat was subjected to centrifugal force while being pulverized and was thrown onto the crushing bone 15 on the inner wall of the rotating drum 14. Since the vortex-shaped crushing bone 15 rotates in the opposite direction to the rotation of the pulverizing blade 18, the snake meat between the crushing bones 15... The snake meat is constantly subjected to downward pressure towards the crushing blade 18, which allows the snake meat on the upper layer of the rotating drum 14 to continuously contact the crushing blade 18 via the crushing bone 15. This prevents differences in the number of times the upper and lower layers of snake meat are crushed by the crushing blade 18, thus avoiding a decrease in the uniformity of the snake meat particles. The spiral arrangement of the mixing plate 211 promotes the transport of snake meat from the bottom to the upper layer of the rotating drum 14, so that the snake meat powder originally on the upper layer is crushed together by the crushing bone 15 and the crushing blade 18, thereby improving the crushing efficiency of the snake meat in the rotating drum 14; furthermore, the rotating part 222... Because of the height difference of the inclined plane of the trapezoidal truncated cone, the rotating part 222, as it rotates following the pulverizing blade 18, can pry open the deep snake meat along an arc path, guiding the snake meat onto the crushing bone 15 on the inner wall of the rotating drum 14. After being crushed by the crushing bone 15, the snake meat is further crushed by the pulverizing blade 18. As the rotating part 222 goes deeper, the gaps between the snake meat particles in the rotating drum 14 decrease. The operator controls the displacement of the rotating part 222 by using the knob 253, thereby changing the gaps between the snake meat particles and controlling the size of the snake meat particles. The staff drives the motor 12 to rotate forward and backward via the controller 11, allowing the snake meat to selectively contact the guide surface 151 and guide surface 152 on the crushing bone 15. When the motor 12 rotates forward, large pieces of snake meat are initially crushed by the guide surface 151, resulting in snake meat that is initially crushed into fragments of similar size. The uniform fragments can improve the uniformity of subsequent crushing. When the motor 12 rotates backward, the fragmented snake meat is finely crushed by the serrated inclined surface of the guide surface 152, and then further crushed by the crushing blade 18, thus completing the crushing of the snake meat.
[0025] During the process of sealing the tank 13 by the cover 16, the positioning pin 231 on the connecting ring 23 is inserted into the positioning hole 141 of the rotating drum 14 for fixation, and the hexagonal shaft 21 on the crushing blade 18 is inserted into the hexagonal groove 212 on the rotating part 222, thereby realizing the synchronous rotation of the rotating block 22 and the crushing blade 18. This causes the outer tooth 2221 of the outer edge of the rotating part 222 to drive the inner gear 241 to rotate through the fixed gear 242. Since the fixed gear 242 and the inner gear 241 are meshed internally, the rotation direction of the fixed gear 242 is the same as that of the inner gear 241. 1. The fixed gear 242 and the external gear 2221 rotate in opposite directions, thus achieving the reverse rotation of the rotating drum 14 relative to the pulverizing blade 18. When the operator wants to control the particle size of the snake meat pulverizer, the knob 253 is pressed down along the adjustment groove 251. At this time, the knob 253 and the indicator groove 161 on the cover 16 are collinear, and the locking block 2531 can move up and down along the groove 2521 between the adjustment parts 252. At the same time, the corresponding depth of the engraving line 2532 is submerged in the cover 16. At this time, the knob 253 can be turned so that the knob 253 and the cover 16 are aligned. The indicator grooves 161 on the upper part are no longer collinear, and the locking block 2531 enters the adjustment part 252 on the side through a horizontal rotation. Due to the downward pressure of the knob 253, the other end of the pressure plate 254 rotates synchronously, causing the pressure block 255 meshing with the pressure plate 254 to rotate in a mirror image, thereby driving the first helical tooth part 2551 to rotate the worm 262. As the worm 262 rotates, the turbine 263 begins to rotate, which in turn drives the sliding tooth 261 meshing with the turbine 263 to move, causing the sliding part 221 to move along the control groove 17 toward the rotating drum 14, thereby completing the process of pulverizing snake meat into particles of different sizes. After the snake meat is pulverized, the operator rotates knob 253 until it is collinear with the indicator groove 161 on the cover 16, thereby resetting the rotating block 22. The turbine 263 and worm gear 262 enable stepless locking, preventing the reaction force transmitted to the rotating block 22 during the stirring of the snake meat from damaging the aforementioned adjustment component 25, thus ensuring the stability of the equipment during use. When the cover 16 is opened, the hexagonal shaft 21 separates from the hexagonal groove 212 due to the separation of the cover 16 from the tank 13, allowing the pulverized snake meat to be poured out.
[0026] The above description is merely a specific embodiment of this utility model, but the protection scope of this utility model is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this utility model should be included within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the protection scope of the claims.
Claims
1. A snake meat pulverizing device, characterized in that, The device includes a frame (1), a controller (11), and a motor (12). The controller (11) is mounted on the side of the frame (1). The outer edges of both sides of the motor (12) are rotatably connected to the upper end of the frame (1). The controller (11) is electrically connected to the motor (12). A tank (13) and a cover (16) are fixedly mounted on the output end face of the motor (12). The cover (16) seals the tank (13). A crushing blade (18) is connected inside the tank (13). The lower end face of the crushing blade (18) is fixedly connected to the output shaft of the motor (12). A rotating rotor is rotatably connected inside the tank (13). The inner wall of the rotating cylinder (14) is provided with multiple crushing bones (15) arranged in a circular array. The crushing bones (15) are strip-shaped and the extension direction of the crushing bones (15) is at a certain angle to the axis of the rotating cylinder (14). The cover (16) is provided with a control groove (17). The control groove (17) is provided with a rotating component (2). The rotating cylinder (14) is connected to the crushing blade (18) through the rotating component (2). The rotating component (2) is used to make the rotation direction of the rotating cylinder (14) opposite to the rotation direction of the crushing blade (18) when the snake meat is crushed.
2. The snake meat pulverizing device according to claim 1, characterized in that, The rotating assembly (2) includes a hexagonal shaft (21), a rotating block (22), a connecting ring (23), a gear set (24), and an adjusting component (25). The rotating block (22) includes a sliding part (221) and a rotating part (222). The sliding part (221) is rotatably connected to the rotating part (222). The sliding part (221) is elastically connected to the control groove (17). The rotating part (222) is slidably connected to the control groove (17) and rotates along the inner wall of the control groove (17). The lower end face of the rotating part (222) extends into the rotating cylinder (14). The lower end face of the rotating part (222) is provided with a hexagonal groove (212). One end face of the hexagonal shaft (21) is vertically connected to the crushing blade (18), and the other end face is slidably connected to the hexagonal groove (212). The hexagonal groove (212) and the hexagonal shaft (21) are in clearance fit. The outer wall of the rotating part (222) is provided with an external toothed part (2221). The connecting ring (23) is rotatably connected to the lower end face of the control groove (17). The lower end face of the connecting ring (23) and the upper end face of the rotating drum (14) are respectively provided with a positioning pin (231) and a positioning hole (141) that cooperate with each other. The external toothed part (2221) is connected to the connecting ring (23) through a gear set (24). The adjusting part (25) is connected to the sliding part (221).
3. The snake meat pulverizing device according to claim 2, characterized in that, The adjusting component (25) includes an adjusting groove (251), a knob (253), a pressure plate (254), a pressure block (255), and a locking component (26). The adjusting groove (251) is located inside the cover (16), and the locking component (26) is located inside the adjusting groove (251). The control groove (17) is connected to the outside through the adjusting groove (251). The knob (253) is elastically connected to the adjusting groove (251). The upper and lower ends of the outer edge of the knob (253) are respectively provided with a locking block (2531) and a graduated line (2532). The adjusting groove (251) has multiple adjusting parts (252) arranged in a vertical array. The multiple adjusting parts (252) are connected to each other with grooves (2521). The locking block (2531) and the groove (2521) are connected to each other. 21) Sliding connection, the engraving line (2532) extends to the outside of the adjustment groove (251) and the number of the adjustment part (252) is the same. The upper end surface of the cover (16) and the upper end surface of the knob (253) are provided with collinear indicator grooves (161). The groove (2521) is located in the vertical projection plane of the indicator groove (161). The pressure plate (254) and the pressure block (255) are both hinged to the control groove (17). One end of the pressure plate (254) is connected to the lower end surface of the knob (253), and the other end is engaged with the pressure block (255). The end of the pressure block (255) away from the pressure plate (254) is provided with a first helical tooth (2551). The first helical tooth (2551) is connected to the sliding part (221) through the locking member (26).
4. The snake meat pulverizing device according to claim 3, characterized in that, The locking member (26) includes a sliding tooth (261), a worm (262) and a turbine (263). The worm (262) and the turbine (263) are both connected to the adjusting groove (251). One end of the worm (262) is provided with a second helical tooth (2621), and the other end is engaged with the turbine (263). The second helical tooth (2621) and the first helical tooth (2551) are engaged. The sliding tooth (261) is provided on the sliding part (221) and is engaged with the turbine (263).
5. The snake meat pulverizing device according to claim 2, characterized in that, The gear set (24) includes an internal gear (241) and a fixed gear (242). The internal gear (241) is located on the inner edge surface of the connecting ring (23). The fixed gear (242) is hinged to the control groove (17). The external gear (2221) meshes with the internal gear (241) through the fixed gear (242).
6. The snake meat pulverizing device according to claim 2, characterized in that, The rotating part (222) is a trapezoidal frustum with the inclined surface of the frustum facing the inner wall of the rotating cylinder (14).
7. The snake meat pulverizing device according to claim 1, characterized in that, The outer surface of the crushed bone (15) is provided with a guide surface one (151) and a guide surface two (152) on both sides. The guide surface one (151) is semi-circular arc-shaped, and the guide surface two (152) is trapezoidal with serrated slope.
8. A snake meat pulverizing device according to claim 2, characterized in that, The hexagonal shaft (21) is also provided with a powder stirring plate (211) arranged in a spiral upward, and the vertical cross-section of the powder stirring plate (211) is teardrop-shaped.