Impurity removing machine for cypress seeds
By designing a cypress seed impurity removal machine, a motor-driven crankshaft drives a transmission plate to make the impurity removal disc slide up and down, thereby achieving automatic separation of cypress seeds from their shells. This solves the problems of high labor intensity and low efficiency in manual impurity removal, and improves the efficiency and practicality of impurity removal.
Patent Information
- Application Number
- CN202422981060.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-04
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2034-12-04
AI Technical Summary
Existing methods for removing impurities from cypress seeds rely on manual trampling, which results in high labor intensity, low efficiency, and insufficient practicality.
A cypress seed impurity removal machine was designed, comprising an impurity removal barrel, a top cover, an impurity removal disc, and a drive mechanism. The crankshaft driven by the motor drives the transmission plate, causing the impurity removal disc to slide up and down reciprocally. The impact of the cypress seeds with the top cover separates them from the cypress seed shells, and the cypress seeds are then sieved out through the sieve holes.
It effectively reduced the labor intensity of staff, improved the efficiency of removing impurities from cypress seeds, and enhanced the practicality of the impurity removal process.
Smart Images

Figure CN223530792U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of cypress seed impurity removal processing, and in particular to a cypress seed impurity removal machine. Background Technology
[0002] Cypress seeds are the seeds of the cypress tree. The kernels of cypress seeds are edible and can also be used in medicine. They are rich in nutrients and have high medicinal value.
[0003] The cypress seeds picked from the cypress tree are covered with a cypress seed shell. The cypress seeds need to be dried in the sun. After drying, the cypress seeds will burst open like bean pods, but the cypress seeds and the cypress seed shells will still be connected. Therefore, it is necessary to remove the cypress seed shells by removing impurities and separate the cypress seeds from the cypress seed shells.
[0004] Currently, the existing methods for removing impurities from cypress seeds mostly involve first manually trampling the seeds to remove them from their shells, and then sieving them using a sieve. This method is labor-intensive for workers, has low efficiency in removing impurities from cypress seeds, and is not very practical. Utility Model Content
[0005] To solve the above-mentioned technical problems, this utility model provides a cypress seed impurity removal machine that can effectively reduce the labor intensity of workers, improve the efficiency of cypress seed impurity removal, and enhance practicality.
[0006] Technical solution
[0007] To achieve the above objectives, this utility model provides the following technical solution: a cypress seed impurity removal machine, comprising an impurity removal mechanism and a drive mechanism. The impurity removal mechanism includes an impurity removal barrel, a top cover, and an impurity removal disc. The bottom of the impurity removal barrel is bucket-shaped, and three sets of L-shaped support legs are fixedly and equidistantly arranged in a ring on the outer wall of the impurity removal barrel. A discharge pipe is fixedly connected to the bottom of the impurity removal barrel. Two sets of L-shaped limiting grooves are symmetrically arranged at the top of the inner wall of the impurity removal barrel. Two sets of limiting blocks are symmetrically arranged on the top cover. The top cover is mounted on the top of the impurity removal barrel through the cooperation of the limiting blocks and the L-shaped limiting grooves. A handle is fixedly arranged at the top of the top cover. Two sets of guide blocks are symmetrically fixed on the impurity removal disc. Two sets of guide grooves are symmetrically arranged on the inner wall of the impurity bin. The impurity removal disc is slidably installed inside the impurity removal bin through the cooperation of the guide block and the guide groove. Multiple sets of sieve holes are evenly arranged on the impurity removal disc. The driving mechanism includes a motor. A fixing plate is fixedly installed on the outer wall of the front side of the impurity removal bin. The motor is fixedly installed on the fixing plate. A connecting seat is fixedly installed on the outer wall of the rear side of the impurity removal bin. A crankshaft is rotatably installed on the impurity removal bin and the connecting seat. The front end of the crankshaft is fixedly connected to the output end of the motor. Two sets of transmission plates are symmetrically rotatably mounted on the crankshaft. Two sets of hinge seats are symmetrically fixed at the bottom end of the impurity removal disc. The two sets of transmission plates are respectively hinged to the two sets of hinge seats.
[0008] Preferably, the top of the impurity removal barrel is symmetrically fitted with two sets of knob bolts. The bottom of the two sets of knob bolts passes through the transverse grooves of the two sets of L-shaped limiting grooves and is pressed against the top of the two sets of limiting blocks respectively.
[0009] Preferably, an observation port is provided on the outer wall of the front side of the impurity removal barrel, and an observation window is fixedly installed inside the observation port.
[0010] Preferably, the inner sides of the three sets of L-shaped support legs are all fixedly connected to the bottom bracket of the impurity removal bucket with reinforcing rods.
[0011] Preferably, stiffening plates are fixedly provided on the bottom outer side of all three sets of L-shaped support legs.
[0012] Compared with the prior art, the beneficial effects of this utility model are as follows: During use, by rotating the top cover counterclockwise, the limiting block aligns with the L-shaped limiting groove in the vertical position. Then, the top cover can be removed. Next, the dried, shelled cypress seeds are placed into the impurity removal barrel, supported by the impurity removal disc. The top cover is then closed, and rotated clockwise to engage the limiting block in the horizontal position of the L-shaped limiting groove, preventing the top cover from detaching from the impurity removal barrel. Then, the motor is started, driving the crankshaft to rotate. The crankshaft, through the hinge between the transmission plate and the hinge seat, drives the impurity removal disc upwards. The reciprocating sliding motion of the impurity removal disc causes the cypress seeds to move, continuously impacting the bottom of the top cover. This constant impact causes the cypress seeds to detach from their shells. Since the diameter of the cypress seeds is smaller than that of the shells, the detached seeds pass through the sieve holes of the impurity removal disc and fall to the bottom of the impurity removal barrel, where they are discharged through the discharge pipe. This completes the impurity removal process. Afterward, the top cover is opened to remove the cypress seed shells from the impurity removal disc. This effectively reduces the labor intensity of workers, improves the efficiency of cypress seed impurity removal, and enhances practicality. Attached Figure Description
[0013] Figure 1 This is a schematic diagram of the isometric structure of this utility model;
[0014] Figure 2 This is a front view structural diagram of the present invention;
[0015] Figure 3 This is a schematic diagram of a partial sectional view of the structure of this utility model.
[0016] Figure 4 This is a partial isometric structural schematic diagram of this utility model;
[0017] Figure 5 This is a utility model Figure 4 A schematic diagram of the bottom isometric structure;
[0018] Figure 6 This is an isometric structural diagram of the top cover in this utility model;
[0019] The following are labels in the attached diagram: 1. Impurity removal bucket; 2. L-shaped support leg; 3. Discharge pipe; 4. L-shaped limiting groove; 5. Top cover; 6. Handle; 7. Motor; 8. Fixing plate; 9. Impurity removal disc; 10. Guide block; 11. Guide groove; 12. Connecting seat; 13. Crankshaft; 14. Transmission bar; 15. Hinge seat; 16. Limiting block; 17. Knob bolt; 18. Observation window; 19. Reinforcing rod; 20. Rib plate. Detailed Implementation
[0020] The specific embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are used to illustrate this utility model, but are not intended to limit its scope.
[0021] Example
[0022] Please see Figures 1-6This utility model discloses a cypress seed impurity removal machine, comprising an impurity removal barrel 1, a top cover 5, and an impurity removal disc 9. The bottom of the impurity removal barrel 1 is bucket-shaped, and three sets of L-shaped support legs 2 are fixedly fixed in a ring at equal intervals on the outer wall of the impurity removal barrel 1. A discharge pipe 3 is fixedly connected to the bottom of the impurity removal barrel 1. Two sets of L-shaped limiting grooves 4 are symmetrically provided at the top of the inner wall of the impurity removal barrel 1. Two sets of limiting blocks 16 are symmetrically provided on the top cover 5. The top cover 5 is installed on the top of the impurity removal barrel 1 through the cooperation of the limiting blocks 16 and the L-shaped limiting grooves 4. A handle 6 is fixedly provided at the top of the top cover 5. Two sets of guide blocks 10 are symmetrically fixed on the impurity removal disc 9. The inner wall of the impurity removal barrel 1 is front-to-back. Two sets of guide grooves 11 are symmetrically arranged at the rear. The impurity removal disc 9 is slidably installed inside the impurity removal barrel 1 through the cooperation of the guide block 10 and the guide groove 11. Multiple sets of screen holes are evenly arranged on the impurity removal disc 9. A fixing plate 8 is fixedly installed on the front outer wall of the impurity removal barrel 1. The motor 7 is fixedly installed on the fixing plate 8. A connecting seat 12 is fixedly installed on the rear outer wall of the impurity removal barrel 1. A crankshaft 13 is rotatably mounted on the impurity removal barrel 1 and the connecting seat 12. The front end of the crankshaft 13 is fixedly connected to the output end of the motor 7. Two sets of transmission plates 14 are symmetrically rotatably mounted on the crankshaft 13. Two sets of hinge seats 15 are symmetrically fixed at the bottom end of the impurity removal disc 9. Two sets of transmission plates 14 are respectively hinged to two sets of hinge seats 15. In use, the top cover 5 is rotated counterclockwise by the handle 6 to align the limiting block 16 with the L-shaped limiting groove 4 in the vertical groove position. Then the top cover 5 can be removed. Next, the dried shelled cypress seeds are placed into the impurity removal barrel 1, supported by the impurity removal disc 9. The top cover 5 is then closed and rotated clockwise to lock the limiting block 16 into the horizontal groove of the L-shaped limiting groove 4, preventing the top cover 5 from detaching from the impurity removal barrel 1. Then the motor 7 is started, which drives the crankshaft 13 to rotate. The crankshaft 13 is connected to the hinge seat 15 via the transmission plates 14. The hinge drives the impurity removal disc 9 to slide up and down repeatedly. This movement of the disc causes the cypress seeds to move and continuously impact the bottom of the top cover 5. Through this continuous impact, the cypress seeds detach from their shells. Since the diameter of the cypress seeds is smaller than that of the shells, the detached seeds fall through the sieve holes of the disc 9 to the bottom of the impurity removal barrel 1 and are discharged through the discharge pipe 3. This completes the impurity removal process. Afterward, the top cover 5 is opened to remove the cypress seed shells from the disc 9. This effectively reduces the labor intensity of workers, improves the efficiency of cypress seed impurity removal, and enhances practicality.
[0023] The top of the impurity removal barrel 1 is symmetrically fitted with two sets of knob bolts 17. The bottom of the two sets of knob bolts 17 passes through the transverse grooves of the two sets of L-shaped limiting grooves 4 and is pressed against the top of the two sets of limiting blocks 16 respectively. By setting the knob bolts 17, after the top cover 5 is installed and the limiting blocks 16 are inserted into the transverse grooves of the L-shaped limiting grooves 4, the bottom of the knob bolts 17 is pressed against the limiting blocks 16 by turning the knob bolts 17, thereby more reliably pressing and fixing the top cover 5 and preventing the top cover 5 from rotating during the impact of the cypress seeds.
[0024] An observation opening is provided on the outer wall of the front side of the impurity removal barrel 1, and an observation window 18 is fixedly installed inside the observation opening. By setting the observation window 18, it is convenient to observe the impurity removal status of the cypress seeds inside the impurity removal barrel 1, so that the top cover 5 can be opened in time for replenishment.
[0025] The inner sides of the three sets of L-shaped support legs 2 are all fixedly connected to the bottom bracket of the impurity removal tank 1 with reinforcing rods 19; by setting the reinforcing rods 19, the connection between the L-shaped support legs 2 and the impurity removal tank 1 can be made more secure and stable.
[0026] All three sets of L-shaped support legs 2 have stiffening plates 20 fixedly installed on the bottom outer side; by installing stiffening plates 20, the bottom of the L-shaped support legs 2 is less prone to bending, thus improving the structural strength.
[0027] This utility model discloses a cypress seed impurity removal machine. Its working principle is as follows: During use, by rotating the top cover 5 counterclockwise with the handle 6, the limiting block 16 aligns with the L-shaped limiting groove 4 in the vertical groove position. Then, the top cover 5 can be removed. Next, the dried, shelled cypress seeds are placed into the impurity removal barrel 1, supported by the impurity removal disc 9. The top cover 5 is then closed, and rotated clockwise, causing the limiting block 16 to engage in the horizontal groove of the L-shaped limiting groove 4, preventing the top cover 5 from detaching from the impurity removal barrel 1. Then, the motor 7 is started, driving the crankshaft 13 to rotate. Shaft 13 drives the impurity removal disc 9 to slide up and down repeatedly through the hinge of transmission plate 14 and hinge seat 15. The up and down sliding of the impurity removal disc 9 causes the cypress seeds to move, which in turn causes the cypress seeds to continuously collide with the bottom of the top cover 5. Through the continuous collision of the cypress seeds, the cypress seeds are separated from the cypress seed shells. The diameter of the cypress seeds is smaller than that of the cypress seed shells. The separated cypress seeds fall through the sieve holes of the impurity removal disc 9 to the bottom of the impurity removal barrel 1 and are discharged through the discharge pipe 3, thus completing the impurity removal of the cypress seeds. After that, the top cover 5 is opened to clean the cypress seed shells on the impurity removal disc 9.
[0028] This utility model discloses a cypress seed impurity removal machine. Its installation, connection, and setting methods are all common mechanical methods; any method that achieves the desired beneficial effect can be implemented. In use, the top cover 5 is rotated counterclockwise by the handle 6 to align the limiting block 16 with the L-shaped limiting groove 4 in the vertical groove. The top cover 5 can then be removed. Next, the dried, shelled cypress seeds are placed into the impurity removal barrel 1, supported by the impurity removal disc 9. The top cover 5 is then closed, and rotated clockwise to engage the limiting block 16 in the horizontal groove of the L-shaped limiting groove 4, preventing the top cover 5 from detaching from the impurity removal barrel 1. Then, the motor 7 is started, and the motor 7 drives the curved... When shaft 13 rotates, the crankshaft 13 drives the impurity removal disc 9 to slide up and down repeatedly through the hinge of transmission plate 14 and hinge seat 15. The up and down sliding of the impurity removal disc 9 causes the cypress seeds to move, which in turn causes the cypress seeds to continuously collide with the bottom of the top cover 5. Through the continuous collision of the cypress seeds, the cypress seeds are separated from the cypress seed shells. The diameter of the cypress seeds is smaller than that of the cypress seed shells. The separated cypress seeds fall through the sieve holes of the impurity removal disc 9 to the bottom of the impurity removal barrel 1 and are discharged through the discharge pipe 3, thus completing the impurity removal of the cypress seeds. After that, the top cover 5 is opened and the cypress seed shells on the impurity removal disc 9 are cleaned off. For products purchased on the market, technicians in this industry only need to follow the accompanying instruction manual for installation and operation.
[0029] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.
Claims
1. A cypress seed impurity removal machine, characterized in that, Includes a cleaning mechanism and a drive mechanism; The impurity removal mechanism includes an impurity removal barrel (1), a top cover (5), and an impurity removal disc (9). The bottom of the impurity removal barrel (1) is bucket-shaped. Three sets of L-shaped support legs (2) are fixedly arranged in a ring at equal intervals on the outer wall of the impurity removal barrel (1). A discharge pipe (3) is fixedly connected to the bottom of the impurity removal barrel (1). Two sets of L-shaped limiting grooves (4) are symmetrically arranged at the top of the inner wall of the impurity removal barrel (1). Two sets of limiting blocks (16) are symmetrically arranged on the top cover (5). The top cover (5) is controlled by the limiting blocks. (16) The cover that matches the L-shaped limiting groove (4) is installed on the top of the impurity removal barrel (1). The top of the cover (5) is fixed with a handle (6). Two sets of guide blocks (10) are symmetrically fixed on the impurity removal plate (9). Two sets of guide grooves (11) are symmetrically arranged on the inner wall of the impurity removal barrel (1). The impurity removal plate (9) is slidably installed inside the impurity removal barrel (1) through the cooperation of the guide blocks (10) and the guide grooves (11). Multiple sets of sieve holes are evenly arranged on the impurity removal plate (9). The driving mechanism includes a motor (7), a fixing plate (8) is fixedly provided on the outer wall of the front side of the impurity removal barrel (1), the motor (7) is fixedly installed on the fixing plate (8), a connecting seat (12) is fixedly provided on the outer wall of the rear side of the impurity removal barrel (1), a crankshaft (13) is rotatably installed on the impurity removal barrel (1) and the connecting seat (12), the front end of the crankshaft (13) is fixedly connected to the output end of the motor (7), two sets of transmission plates (14) are symmetrically rotatably mounted on the crankshaft (13), and two sets of hinge seats (15) are symmetrically fixedly provided at the bottom end of the impurity removal disc (9), and the two sets of transmission plates (14) are respectively hinged to the two sets of hinge seats (15).
2. The cypress seed impurity removal machine as described in claim 1, characterized in that, The top of the impurity removal barrel (1) is symmetrically fitted with two sets of knob bolts (17). The bottom of the two sets of knob bolts (17) passes through the transverse grooves of the two sets of L-shaped limiting grooves (4) and is pressed against the top of the two sets of limiting blocks (16).
3. The cypress seed impurity removal machine as described in claim 2, characterized in that, An observation port is provided on the outer front wall of the impurity removal barrel (1), and an observation window (18) is fixedly installed inside the observation port.
4. The cypress seed impurity removal machine as described in claim 3, characterized in that, The inner side of each of the three sets of L-shaped support legs (2) is fixedly connected to the bottom support of the impurity removal bucket (1) with a reinforcing rod (19).
5. The cypress seed impurity removal machine as described in claim 4, characterized in that, The bottom outer side of each of the three sets of L-shaped support legs (2) is fixed with a stiffening plate (20).