Efficient rice processing device
By designing structures such as rotating bars, ring blocks, linkage blocks and plugs in the rice treatment device, forming a spiral wire and a magnetic induction vector field, the motor tremor and damage caused by grease leakage in the existing device is solved, and more efficient rice treatment and more convenient maintenance are achieved.
Patent Information
- Application Number
- CN202411925032.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-25
- Publication Date
- 2025-05-06
- Estimated Expiration
- 2044-12-25
AI Technical Summary
The existing rice treatment device is accompanied by continuous tremors in the stage when the motor is used to differentiate the filtering of rice husks, causing the grease leakage to shift to the motor's rotating parts, weakening the rotation flexibility of the rotating parts, easily causing damage to the motor, which is not conducive to maintenance and efficient progress.
An efficient rice treatment device is designed to form a spiral wire and a magnetic induction vector field through structures such as rotating bars, ring blocks, linkage blocks and plugs. The design of linkage blocks and rings is used to extend the retention time of grease and reduce the impact of grease on the swivel parts.
It effectively inhibits the progress of grease, improves the plugging function of the clogging ring, reduces the motor tremor, extends the service life of the motor, and improves the efficiency of rice processing and maintenance convenience.
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Figure CN119926791A_ABST
Abstract
Description
Technical field:
[0001] The invention belongs to the technical field of agricultural devices, and in particular relates to a highly efficient rice processing device. Background technology:
[0002] Rice processing is the stage of removing the husk and cortex of rice. Rice grains consist of husk, cortex, embryo and endosperm. The goal of rice processing is to distinguish and filter out rice to make rice with better edible quality.
[0003] The existing rice processing device is accompanied by continuous vibration when using a motor to distinguish and filter out rice husks, which can easily cause the grease in the motor to leak and shift to the rotating parts in the motor, weakening the rotation flexibility of the rotating parts and easily causing damage to the motor, which is not conducive to maintaining the rice processing device and promoting the efficient progress of rice processing. Summary of the invention:
[0004] The present invention provides an efficient rice processing device, which aims to solve the problem that the existing rice processing device is accompanied by continuous vibration during the stage of using a motor to distinguish and filter out rice and rice husks, which may cause the grease in the motor to leak and shift to the rotating parts in the motor, weaken the rotational flexibility of the rotating parts, easily cause damage to the motor, and be unfavorable for maintaining the rice processing device and promoting the efficient progress of rice processing.
[0005] The embodiment of the present invention provides a high-efficiency rice processing device, comprising a supporting block 1 and a supporting block 2 mounted on the supporting block 1, the supporting block 1 and the supporting block 2 are connected via a spiral beryllium copper wire 1, the supporting block 2 is fixedly connected to a motor via a connecting piece, a rotating rod is mounted in the motor, an electric wire is mounted in the motor, a rotating part corresponding to the electric wire is mounted on the rotating rod, linkage blocks adapted to the rotating rod are symmetrically mounted in the motor, a blocking ring 1 is mounted on the end of the linkage block closer to the rotating part, a through-hole 2 is reserved on the blocking ring 1 for the rotating rod to pass through, a plurality of circles are reserved on the wall surface of the through-hole 2, and the circle closer to the rotating part is larger than the circle closer to the linkage block.
[0006] The diameter of the circle increases gradually from the linkage block toward the rotating member.
[0007] A connecting block 1 is arranged on the end of the rotating lever which is closer to the second through-port, and a passage cavity 1 is reserved between the connecting block 1 and the second through-port.
[0008] A flange is arranged on the end of the inner wall surface of the through opening closer to the rotating member.
[0009] The flange is connected to the ring track which is closer to the rotating member.
[0010] An inlet hole 2 is arranged outside the motor, and the inlet hole 2 is connected to a guide gap toward the linkage block at one end facing the inside of the motor. The linkage block comprises a ring block 1 and a ring block 2. The ring block 1 is arranged on the rotating lever, and a passage cavity 2 is reserved between the ring block 1 and the ring block 2. The guide gap is closer to the passage cavity 2.
[0011] A notch is reserved at one end of the blocking ring 1 which is closer to the through opening 2, and the notch is connected with the through cavity 2 and the through cavity 1.
[0012] The upper end of the supporting block 2 is fixedly connected to the supporting plate 2, the upper end of the supporting block 1 is fixedly connected to the supporting plate 1, the spiral beryllium copper wire is located between the supporting plate 2 and the supporting plate of the supporting block 1, the lower end of the supporting block 2 is connected to the supporting block via the spiral beryllium copper wire 2, and the spiral beryllium copper wire 2 is a spiral beryllium copper wire that withstands axial tension.
[0013] A plurality of filter covers are arranged on the supporting plate 2, an outlet hole 1 is arranged on the side wall of the filter cover, a top plate is arranged on the top of the filter cover, and an inlet hole 1 is reserved on the top plate.
[0014] The two ends of the rotating lever extend out of the motor and are connected to the circle block. A socket is reserved on the circle block, and a balancing mass block is fixedly connected to the circle block.
[0015] The beneficial effects of the present invention are:
[0016] 1. The present invention rotates the circle block by rotating the rotating lever, and moves the supporting block 2 by the balancing mass block on the circle block. When the rotating lever rotates at a higher speed, the supporting block 2 is advantageous for distinguishing rice grains from rice husks. The electric wire wound into a spiral shape generates a magnetic induction vector which rotates at a constant speed in space. The magnetic vector field is then rotated by the rotating member to rotate the rotating lever. During the stage of the linkage block rotating, the linkage block in the connecting cover improves the stability of the rotation of the rotating lever.
[0017] 2. In the present invention, the diameter of the several circles of the linkage block toward the rotating part increases gradually, which is beneficial to the retention of the grease. Since the grease will gradually become solid in the linkage block, during the operation stage of the rice processing device, if the grease advances from the linkage block through the second opening toward the rotating part, the circle channel is beneficial to extending the advancing length of the grease through the second opening, and the grease gradually becomes solid in the circle channel. The grease that has become solid in the circle channel is beneficial to inhibiting the grease from advancing toward the rotating part, which is beneficial to the maintenance of the motor, and improves the blocking function of the blocking ring one, which is beneficial to inhibiting the grease from advancing to the rotating part, and is beneficial to the maintenance of the rotating part. The connecting block one is beneficial to inhibiting the grease from advancing to the rotating part, and the rotating lever is rotated to rotate the grease on the connecting block one, and the grease on the connecting block one is thrown into the circle channel. The flange improves the inhibitory function of the grease advancing in the passage cavity one, which is beneficial to limiting the diameter of the passage cavity one and enhancing the blocking function of the passage cavity one.
[0018] 3. The present invention arranges the second introduction hole outside the connecting cover, and the second introduction hole is connected with the guide gap. The grease is guided into the connecting cover through the second introduction hole and the guide gap, and then guided into the second passage cavity of the connecting block from the end of the blocking ring one on the linkage block. A round ball is arranged in the second passage cavity. The ring block one and the ring block two rotate through the round ball, and the grease is guided into the second passage cavity, thereby improving the flexibility of the round ball movement. The diameter of the recess is similar to that of the second passage cavity. The grease is guided into the second passage cavity from the guide gap, and then slowly guided downward in the second passage cavity. After being received by the recess, it is guided downward again through the first passage cavity, resulting in the grease being retained in the circle of the second passage for a while, and the grease slowly becomes solid in the circle. The grease that becomes solid in the circle is conducive to inhibiting the grease from moving toward the rotating part, and several circles are not connected to each other.
[0019] 4. The present invention facilitates the differential filtering of rice and rice husks through a plurality of filter covers. The differentially filtered rice and rice husks are guided away from the guide hole through the guide hole, and the rice to be processed is guided into the filter cover through the guide hole for differential filtering.
[0020] Other features and advantages of the present invention will be described in the following description, and partly become apparent from the description, or understood through implementation of the present invention. The purpose and other advantages of the present invention can be realized and obtained through the structures particularly pointed out in the description and the drawings. Description of the drawings:
[0021] The accompanying drawings are used to provide a further understanding of the present invention and constitute a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention and do not constitute a limitation of the present invention. In the accompanying drawings:
[0022] Figure 1 It is a structural diagram of the rice processing device of the present invention;
[0023] Figure 2 This is a structural diagram of the rice processing device of the present invention;
[0024] Figure 3 This is a structural diagram of the spiral beryllium copper wire 2 in the present invention;
[0025] Figure 4 is a structural diagram of the motor in the present invention;
[0026] Figure 5 is a structural diagram of the motor of the present invention;
[0027] Figure 6 It is a structural diagram of the blocking circle 1 in the present invention;
[0028] Figure 7 It is a structural diagram of the first cavity in the present invention;
[0029] Figure 8It is a structural diagram of the rotating lever in the present invention;
[0030] Fig. 9 It is a structural diagram of the rotating lever of the present invention;
[0031] Fig.10 It is a top view of the structure of the blocking circle 1 in the present invention;
[0032] Fig.11 It is a bottom view structural diagram of the blocking circle 1 in the present invention;
[0033] Fig.12 It is a detailed structural diagram of the blocking ring 1 in the present invention.
[0034] Figure numerals: 21, support block 1; 22, support plate 1; 23, spiral beryllium copper wire 1; 24, spiral beryllium copper wire 2; 31, motor; 32, rotating lever; 33, circle block; 34, connecting cover; 35, linkage block; 36, blocking circle 1; 37, wire; 38, rotating member; 39, introduction hole 2; 310, blocking circle 2; 41, support block 2; 42, support plate 2; 43, connecting member; 44, bending block; 51, filter cover; 52, outlet hole 1; 61, top plate; 6 2. Inlet hole 1; 242. Connecting rod; 243. Connecting ring; 322. Connecting block 1; 323. Passage cavity 1; 332. Balance mass block; 342. Inner chamber; 343. Passage 1; 344. Connecting block 2; 345. Screw 1; 352. Ring block 1; 353. Ring block 2; 243. Passage cavity 2; 362. Passage 2; 363. Passage 3; 364. Ring channel; 365. Notch; 366. Screw 2; 3642. Flange; 392. Diversion gap. Specific implementation method:
[0035] In order to make the purpose, technical solution and advantages of the technical solution of the present invention clearer, the technical solution of the embodiment of the present invention will be clearly and completely described in conjunction with the drawings of specific embodiments of the present invention. The same figure marks in the drawings represent the same parts. It should be noted that the described embodiments are part of the embodiments of the present invention, not all of the embodiments. Based on the described embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0036] Reference Figure 1-Figure 12The embodiment of the present invention provides an efficient rice processing device, comprising a supporting block 1 21 and a supporting block 2 41 mounted on the supporting block 1 21, the supporting block 1 21 and the supporting block 2 41 are connected via a spiral beryllium copper wire 1 23, the supporting block 2 41 is fixedly connected to a motor 31, a rotating rod 32 is mounted in the motor 31, a wire 37 is mounted in the motor 31, the wire 37 is a wire wound in a spiral shape, and a rotating rod 32 is mounted on the rotating rod 32 to be opposite to the wire 37. The corresponding rotating member 38 is a rotating component in the motor. The motor 31 has symmetrically arranged linkage blocks 35 adapted to the rotating rod 32. The linkage block 35 has a blocking ring 36 at one end closer to the rotating member 38. The blocking ring 36 has a second opening 362 reserved on the blocking ring 36 for the rotating rod 32 to pass through. A plurality of circle channels 364 are reserved on the wall of the second opening 362. The circle channels 364 closer to the rotating member 38 are larger than the circle channels 364 closer to the linkage block 35.
[0037] A supporting block 21 is mounted on the supporting block 1 21. The supporting block 21 41 is connected to the supporting block 1 21 via a spiral beryllium copper wire 1 23. The supporting block 2 41 is fixedly connected to the motor 31 via a connecting piece 43. The connecting piece 43 is used to connect the pipe ends. A rotating lever 32 is mounted inside the motor 31. Both ends of the rotating lever 32 extend out of the motor 31 and are connected to the circle block 33. A socket is reserved on the circle block 33. A balancing mass block 332 is fixedly connected to the circle block 33. The rotating lever 32 rotates to rotate the circle block 33, and the supporting block 2 41 moves via the balancing mass block 332 on the circle block 33. When the rotating speed of the rotating lever 32 increases, the supporting block 2 41 is facilitated to distinguish between rice grains and rice husks.
[0038] The motor 31 is provided with an electric wire 37, and a rotating member 38 corresponding to the electric wire 37 is provided on the rotating rod 32. The electric wire 37 wound into a spiral generates a magnetic vector field in which a magnetic induction vector rotates at a constant speed in space, and then the rotating rod 32 is rotated through the rotating member 38. Both ends of the rotating rod 32 are provided with linkage blocks 35, and the linkage blocks 35 include a ring block 1 352 and a ring block 2 353. The ring block 1 352 is enclosed in the rotating rod 32. A connecting cover 34 is symmetrically arranged on the movable lever 32 and the motor 31, and a through-port 343 is reserved on the connecting cover 34 for the rotating lever 32 to pass through. A linkage block 35 corresponding to the rotating lever 32 is arranged in the connecting cover 34, and an inner chamber 342 is arranged in the connecting cover 34. The inner chamber 342 is connected with the through-port 1 343, and a connecting block 2 344 is arranged at the lower end of the inner chamber 342, and a blocking ring 1 36 is arranged on the connecting block 2 344.
[0039] When the linkage block 35 rotates, the linkage block 35 in the connection cover 34 improves the stability of the rotation of the rotating lever 32. When the rice processing device is in operation, the motor 31 vibrates, which may cause the grease in the linkage block 35 to flow from the linkage block 35 to the rotating member 38 along with the vibration of the motor 31. The grease flowing to the rotating member 38 weakens the rotation flexibility of the rotating member 38, which may cause damage to the motor.
[0040] A blocking ring 36 is arranged between the linkage block 35 and the rotating member 38. A plurality of channels 364 are reserved on the inner wall of the opening 362 of the blocking ring 1 36. The diameters of the plurality of channels 364 from the linkage block 35 toward the rotating member 38 increase gradually, which is beneficial to the retention of the grease. Since the grease will gradually become solid in the linkage block 35, when the rice processing device is in operation, if the grease advances from the linkage block 35 through the opening 362 toward the rotating member 38, the channel 364 will help to extend the advancing length of the grease through the opening 362, and the grease will gradually become solid in the channel 364. The grease that has become solid in the channel 364 will help to inhibit the grease from advancing toward the rotating member 38, which is beneficial to the maintenance of the motor and improves the blocking function of the blocking ring 1 36.
[0041] The diameter of the circle channel 364 increases gradually from the linkage block 35 toward the rotating member 38 , which helps to prevent the grease from advancing to the rotating member 38 and helps to protect the rotating member 38 .
[0042] A connecting block 1 322 is arranged on the end of the rotating lever 32 closer to the second opening 362, and a passage cavity 1 323 is reserved between the connecting block 1 322 and the second opening 362. The connecting block 1 322 is conducive to inhibiting the grease from advancing to the rotating member 38. The rotating lever 32 is rotated to rotate the grease on the connecting block 1 322, and the grease on the connecting block 1 322 is thrown to the circle 364. A flange 3642 is arranged on the end of the inner wall of the second opening 362 closer to the rotating member 38. The flange 3642 is located on the passage cavity 1 323, and the flange 3642 is connected to the circle 364 closer to the rotating member 38. The flange 3642 enhances the function of inhibiting the grease advancing in the passage cavity 1 323, helps to limit the diameter of the passage cavity 1 323, and enhances the plugging function of the passage cavity 1 323.
[0043] The motor 31 is provided with a second introduction hole 39, and the end of the second introduction hole 39 facing the motor 31 is connected to the guide gap 392 toward the linkage block 35. The linkage block 35 includes a ring block 1 352 and a ring block 2 353. The ring block 1 352 is arranged on the rotating lever 32. A passage cavity 2 354 is reserved between the ring block 1 352 and the ring block 2 353. The guide gap 392 is closer to the passage cavity 2 354. The end of the blocking ring 1 36 closer to the second opening 362 is reserved with a notch 365, and the notch 365 is connected to the passage cavity 2 354 and the passage cavity 1 323.
[0044] A third opening 363 is reserved on the blocking ring 36, and the blocking ring 36 is connected to the connecting cover 34 via a second screw 366 protruding from the third opening 363. A second blocking ring 310 is installed on the opening 343, and the second blocking ring 310 surrounds the rotating lever 32. The second blocking ring 310 helps to suppress the impurity molecules from entering the inner chamber 342 from the opening 343, which is beneficial to the operation of the linkage block 35. The side wall of the motor 31 is connected to the connecting cover 34 via a screw 345.
[0045] A second passage cavity 354 is reserved between the ring block 1 352 and the ring block 2 353, and the guide gap 392 is closer to the second passage cavity 354. An inlet hole 2 39 is arranged outside the connecting cover 34. The end of the inlet hole 2 39 facing the motor 31 is connected to the guide gap 392 facing the linkage block 35. The guide gap 392 is located on the linkage block 35 at the end farther from the blocking ring 1 36. The second inlet hole 39 is arranged outside the connecting cover 34, and the second inlet hole 39 is connected with the guide gap 392. The grease is guided into the connecting cover 34 through the second inlet hole 39 and the guide gap 392, and is guided into the second passage cavity 354 of the connecting block 35 from the end of the blocking ring 1 36 on the connecting block 35. A round ball is arranged in the passage cavity 354. The round ball rotates between the ring block 1 352 and the ring block 2 353, and the grease is guided into the second passage cavity 354, thereby improving the flexibility of the ball movement.
[0046] The end of the blocking ring 1 36 closer to the second passage 362 is reserved with a notch 365, and the notch 365 is connected to the second passage chamber 354 and the first passage chamber 323. The notch 365 has a similar diameter to the second passage chamber 354, and the grease is guided from the guide gap 392 to the second passage chamber 354, and slowly guided downward in the second passage chamber 354, and then received by the notch 365 and guided downward again through the first passage chamber 323, resulting in the grease being retained in the circle 364 of the second passage 362 for a while, and the grease slowly solidifies in the circle 364, and the grease solidified in the circle 364 is conducive to preventing the grease from moving toward the rotating member 38, and the plurality of circles 364 are not connected to each other.
[0047] The upper end of the supporting block 2 41 is fixedly connected to the supporting plate 2 42, and the supporting block 1 21 is fixedly connected to the supporting plate 1 22. The spiral beryllium copper wire 1 23 is located between the supporting plate 22 and the supporting plate 1 22 of the supporting block 1 21. The lower end of the supporting block 21 is connected to the supporting block 1 21 via the spiral beryllium copper wire 24. The spiral beryllium copper wire 24 is a spiral beryllium copper wire that withstands axial tension. A bending block 44 is installed at the lower end of the supporting block 21, and a connecting rod 242 is installed on the inner wall of the supporting block 1 21. The spiral beryllium copper wire 24 is connected between the bending block 44 and the connecting rod 242. A connecting ring 243 is installed at one end of the spiral beryllium copper wire 24, and the spiral beryllium copper wire 24 is installed on the bending block 44 via the connecting ring 243.
[0048] A plurality of filter covers 51 are arranged on the supporting plate 42, and an outlet hole 52 is arranged on the side wall of the filter cover 51, through which the rice and rice husk are filtered and selected, and the filtered rice and rice husk are guided away from the device through the outlet hole 52, and a top plate 61 is arranged on the top of the filter cover 51, and an inlet hole 62 is reserved on the top plate 61, and the rice to be processed is filtered and selected in the filter cover 51 through the inlet hole 62.
[0049] The above shows and describes the basic principles and main features of the present invention and the advantages of the present invention. It should be understood by those skilled in the art that the present invention is not limited to the above embodiments. The above embodiments and descriptions are only for explaining the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention may have various changes and improvements, which fall within the scope of the present invention to be protected. The scope of protection of the present invention is defined by the attached claims and their equivalents.
Claims
1. An efficient rice processing device, comprising a supporting block 1 (21) and a supporting block 2 (41) mounted on the supporting block 1 (21), characterized in that: The support block 1 (21) and the support block 2 (41) are connected via a spiral beryllium copper wire 1 (23); the support block 2 (41) is fixedly connected to a motor (31) via a connecting piece (43); a rotating lever (32) is arranged in the motor (31); an electric wire (37) is arranged in the motor (31); a rotating member (38) corresponding to the electric wire (37) is arranged on the rotating lever (32); and a rotating member (38) corresponding to the electric wire (37) is symmetrically arranged in the motor (31). The linkage block (35) adapted to the rotating lever (32) is provided with a blocking ring (36) at one end of the linkage block (35) closer to the rotating member (38), and a second through-hole (362) is reserved on the blocking ring (36) for the rotating lever (32) to pass through, and a plurality of ring channels (364) are reserved on the inner wall of the second through-hole (362), and the ring channel (364) closer to the rotating member (38) is larger than the ring channel (364) closer to the linkage block (35).
2. An efficient rice processing device as claimed in claim 1, characterized in that: The diameter of the circle track (364) increases gradually from the linkage block (35) toward the rotating member (38).
3. The efficient rice processing device according to claim 1, characterized in that: A connecting block 1 (322) is arranged on the end of the rotating lever (32) closer to the second opening (362), and a passage cavity 1 (323) is reserved between the connecting block 1 (322) and the second opening (362).
4. An efficient rice processing device as claimed in claim 3, characterized in that: A flange (3642) is arranged on the inner wall of the second passage (362) at the end closer to the rotating member (38).
5. The efficient rice processing device according to claim 4, characterized in that: The flange (3642) is connected to the ring track (364) which is closer to the rotating member (38).
6. The efficient rice processing device according to claim 3, characterized in that: The motor (31) is provided with a second inlet hole (39) outside. The second inlet hole (39) is connected to a flow guide gap (392) toward the linkage block (35) at one end thereof facing the inside of the motor (31). The linkage block (35) comprises a first ring block (352) and a second ring block (353). The first ring block (352) is provided on the rotating lever (32). A second passage cavity (354) is reserved between the first ring block (352) and the second ring block (353). The flow guide gap (392) is relatively close to the second passage cavity (354).
7. The efficient rice processing device according to claim 6, characterized in that: A notch (365) is reserved at the end of the blocking ring 1 (36) closer to the through opening 2 (362), and the notch (365) is connected to the through cavity 2 (354) and the through cavity 1 (323).
8. The efficient rice processing device according to claim 1, characterized in that: The upper end of the supporting block 2 (41) is fixedly connected to the supporting plate 2 (42), the upper end of the supporting block 1 (21) is fixedly connected to the supporting plate 1 (22), the spiral beryllium copper wire 1 (23) is located between the supporting plate 2 (42) and the supporting plate 1 (22) of the supporting block 1 (21), the lower end of the supporting block 2 (41) is connected to the supporting block 1 (21) via the spiral beryllium copper wire 2 (24), and the spiral beryllium copper wire 2 (24) is a spiral beryllium copper wire that bears axial tension.
9. An efficient rice processing device as claimed in claim 8, characterized in that: A plurality of filter covers (51) are mounted on the second supporting plate (42), a first outlet hole (52) is mounted on the side wall of the filter cover (51), a top plate (61) is mounted on the top of the filter cover (51), and a first inlet hole (62) is reserved on the top plate (61).
10. The efficient rice processing device according to claim 1, characterized in that: The two ends of the rotating lever (32) extend out of the motor (31) and are connected to the ring block (33). A socket is reserved on the ring block (33), and a balancing mass block (332) is fixedly connected to the ring block (33).
Citation Information
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