Rice lifting device for rice production and processing and use method of rice lifting device

By designing a multi-silo and transmission chain system, combined with technical means of reverse plate, elastic plate and wave blowing plate, the problem of materials with high humidity prone to clumping, loosening and spilling during the lifting process is solved, and the stability and efficiency of the rice lifting device are improved.

CN119911604AActive Publication Date: 2025-05-02LIAN YUN GANG DUO JIN NONG YE KE JI FA ZHAN YOU XIAN GONG SI
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Patent Information

Application Number
CN202510210684.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-25
Publication Date
2025-05-02
Estimated Expiration
2045-02-25

AI Technical Summary

Technical Problem

The existing rice lifting devices are prone to partial clumping and partial looseness when dealing with materials with high humidity, causing the materials to shake and spill during the lifting process, wasting materials and affecting the efficiency of improvement.

Method used

A rice lifting device for rice production and processing is designed, using multiple silos and transmission chain systems. Through the coordination of the reversing plate and the elastic plate, the materials are evenly distributed and compacted in the silo, reducing spilling and waste. At the same time, the wave blowing plate and piston rod system are used to break the adhesive connection between the material and the device and disperse the material particles.

Benefits of technology

It effectively reduces the shaking and spilling of materials during the lifting process, improves the stability and efficiency of the lifting process, and reduces material waste.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of rice production lifting equipment, and discloses a rice lifting device for rice production and processing and a using method thereof.The rice lifting device comprises a body, the top of the body is fixedly connected with a feeding hopper, the right side of the body is fixedly connected with a discharging port, the interior of the body is rotationally connected with two rotating rollers, and the front face of the body is fixedly connected with a motor; and the output end of the motor rotationally penetrates into the main body. When the overturning plates rotate relatively, the tops of materials entering the stock bin can be compacted relatively, the possibility that the materials deviate or scatter due to the change of the gravity center in the stock bin along with lifting of a transmission chain is reduced, and the situation that the materials scatter due to shaking in the lifting process is reduced; and through relative overturning of the two overturning plates, a block layer can be formed at the top of a material while the material is compacted, so that the situation that the material is scattered can be reduced, the stability of the lifting process is improved, and meanwhile, the situation of waste is reduced.
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Description

Technical Field

[0001] The invention relates to the technical field of rice production and lifting equipment, and in particular to a rice lifting device for rice production and processing and a use method thereof. Background Art

[0002] As we all know, rice is rice, and a lifting device is needed during the production and processing of rice to facilitate its injection into the processing area;

[0003] When materials are being lifted, generally existing lifting devices basically make the materials flow into a circulating silo through a funnel to achieve the purpose of lifting. Generally, when lifting materials with high humidity, existing lifting devices basically transport them to an open silo for lifting. When materials with high humidity enter the interior of the lifting silo through the funnel, they are prone to local agglomeration and local looseness in the silo, which can easily cause shaking when the silo is lifted to the corner of the device, causing the material to spill, which not only wastes materials but also affects the lifting efficiency of the device. Summary of the invention

[0004] The object of the present invention is to provide a rice lifting device for rice production and processing and a method of using the same to solve the problems raised in the above-mentioned background technology.

[0005] To solve the above technical problems, the present invention is achieved through the following technical solutions:

[0006] The present invention is a rice lifting device for rice production and processing, comprising a main body, a feeding hopper is fixedly connected to the top of the main body, a discharge port is fixedly connected to the right side of the main body, two rotating rollers are rotatably connected to the inside of the main body, a motor is fixedly connected to the front of the main body, and the output end of the motor rotates and penetrates into the inside of the main body, and further comprising:

[0007] The transmission mechanism includes two transmission chains, a rotating roller 2 for driving the transmission chain to rotate, a transmission roller, and a placement mechanism for driving the material to be lifted;

[0008] The placing mechanism includes a plurality of bins, two rectangular slots for limiting rotation, a plurality of sliding slots 1 and 2;

[0009] The two transmission chains are both sleeved and connected to the outer surfaces of the two rotating rollers, the rotating roller 2 is rotatably connected to the inner walls of the two transmission chains, the transmission roller is rotatably connected to the side walls of the two transmission chains, and one end of the transmission roller close to the motor is fixedly connected to the output end of the motor.

[0010] Furthermore, several silos are rotatably connected to the side wall of the transmission chain on one side close to the transmission chain, two rectangular grooves are opened on the side wall of the silo, two sliding grooves 1 are opened on the outer wall of the silo close to the rectangular groove, two sliding grooves 2 are opened on the side of the silo close to the sliding groove 1, the side wall of the sliding groove 2 is fixedly connected with a right-angled triangle block, and a square groove is opened on the inner wall of the silo close to the transmission chain.

[0011] Furthermore, a pushing mechanism is arranged inside the placing mechanism, and the pushing mechanism includes an inclined block 1 slidably connected inside a sliding groove 1, an L-plate is fixedly connected to the side wall of the inclined block 1, an end of the L-plate away from the inclined block 1 is rotatably connected to a telescopic plate, two ends of the two telescopic plates away from the L-plate are slidably connected to a reversal plate, and two right-angled triangle blocks 2 are fixedly connected to one side of the reversal plate close to the L-plate.

[0012] Furthermore, an auxiliary mechanism is provided inside the silo, and the auxiliary mechanism includes two rotating plates rotatably connected inside the silo, two spring rods are rotatably connected to the bottom of the rotating plates, one end of the two spring rods away from the rotating plates is fixedly connected to the bottom inner wall of the silo, and two connecting plates are rotatably connected to the side wall of the rotating plates, and one end of the connecting plate away from the rotating plates is rotatably connected to a second tilting block, and the second tilting block is slidably connected to the bottom inner wall of the main body, and flexible cloth is provided on the top of the two rotating plates;

[0013] The flexible cloth is fixedly connected to the inside of the silo, and the bottoms of the two rotating plates are rotatably connected with counterweight balls, which penetrate the outer wall of the silo.

[0014] Furthermore, the side wall of the silo is provided with a rotating mechanism, which includes a sliding plate slidably connected to the inside of the square groove, a raised rod fixedly connected to the bottom of the sliding plate, a spring plate fixedly connected to the side of the sliding plate close to the raised rod, and two gear shafts are provided at the bottom of the raised rod, which are rotatably connected to the inside of the square groove.

[0015] Furthermore, the two gear shafts are meshingly connected, wherein a thread groove is provided on the top of one of the gear shafts, the protrusion on the protruding rod is slidably connected inside the thread groove, and a trapezoidal block is slidably connected to the bottom of the gear shaft.

[0016] Furthermore, an expansion mechanism is provided on the outer surface of the trapezoidal block, and the expansion mechanism includes a sliding plate 2 slidably connected to the outer surfaces of the two trapezoidal blocks, the sliding plate 2 is slidably connected to the side wall of the silo, and two elastic plates are fixedly connected between the two sliding plates 2. The side walls of the elastic plates are provided with two strip grooves, and a wave blowing plate is provided inside the strip groove.

[0017] Furthermore, one side of the wave blowing plate away from the sliding plate 2 is fixedly connected to the inside of the strip groove, the outer surfaces of the two elastic plates are slidably connected to two sliding frames, the top of the sliding frames is fixedly connected to a return spring, the two wave blowing plates are fixedly connected to the elastic plate 2, and a spring ball is fixedly connected between the two elastic plates 2.

[0018] Furthermore, a blowing mechanism is provided on the side wall of the second sliding plate, and the blowing mechanism includes a piston box fixedly connected to the side of the second sliding plate close to the elastic plate, a piston rod is slidably connected inside the piston box, and a one-way plate one is rotatably connected inside the piston rod, and an end of the piston rod away from the second sliding plate penetrates the outer wall of the piston box and extends to the outside, and an extended end of the piston rod is fixedly connected to two connecting pipes, and an end of the connecting pipe away from the piston rod is fixedly connected to the side wall of the wave blowing plate, and a movable plate is rotatably connected to the side wall of the wave blowing plate on the side of the piston rod close to the wave blowing plate, and an end of the movable plate away from the piston rod is rotatably connected to the side wall of the wave blowing plate;

[0019] The wave blowing plate is connected to the interior of the sliding plate 2 through a connecting pipe, an air inlet hole is provided on one side of the piston box close to the sliding plate 2, and the interior of the air inlet hole is rotatably connected to the one-way plate 2.

[0020] Furthermore, a rice lifting method for rice production and processing, and a rice lifting device for rice production and processing, the method comprising the following steps:

[0021] S1: Place the material: first connect the discharge port to the pipe or container to be received, then start the motor and place the material to be lifted into the hopper;

[0022] S2: Start lifting: When the motor is working, it will drive the transmission roller to rotate. When the transmission roller rotates, it will drive several silos to rotate through two transmission chains. When the silos pass through the bottom outlet of the hopper, the material inside the hopper will flow into the silo and fall onto the flexible layer inside the silo;

[0023] S3: Lifting and discharging: Then, the multiple transmission chains that receive the materials will be lifted up under the drive of the transmission chains. Then, when the materials are lifted to the top of the rotating roller 2, the side wall of the silo will contact the outer surface of the rotating roller 2 and reverse under the rotation of the rotating roller 2 and the transmission chain. At this time, the overturned silo will dump the materials into the discharge port and discharge them.

[0024] The present invention has the following beneficial effects:

[0025] 1. In the present invention, when the silo is driven by the transmission chain and separated from the bottom of the feed hopper, the two rotating plates inside the silo will rotate downward due to the gravity of the materials themselves. At the same time, when the counterweight ball at the bottom of the sliding silo is separated from the outer surface of the rotating roller, the counterweight ball will also drive the two rotating plates to rotate inside the silo under its own weight. When the rotating plate rotates downward, it will compress the spring rod and push the inclined block 2 to slide at the bottom of the silo through the connecting plate. When the inclined block 2 slides, it will squeeze the side wall of the inclined block 1 and push it to slide inside the sliding groove 1. When the inclined block 1 slides, it will drive the L plate and the telescopic plate to slide upward synchronously. When the two telescopic plates slide upward, they will drive the reversing plate to move inside the rectangular groove. The reversal plate slides when the right-angled triangle block 2 on the reversal plate contacts the right-angled triangle block on the side wall of the second sliding groove, the reversal plate will rotate inside the rectangular groove as the telescopic plate continues to move upward. At this time, the reversal plate will rotate relatively on the top of the silo. When the reversal plate rotates relatively, the top of the material entering the silo will be relatively compacted, thereby reducing the possibility of the material shifting or spilling due to the change of the center of gravity when the transmission chain is lifted inside the silo, and reducing the situation of material spilling due to shaking during lifting. The relative flipping of the two reversal plates can form a blocking layer on the top of the material while compacting the material, thereby reducing the situation of material spilling, improving the stability of the lifting process and reducing waste.

[0026] 2. In the present invention, when the two reversing plates are rotating synchronously, the rotation of the two reversing plates will press the side walls of the two sliding plates downwards during the movement. When the sliding plates are pressed downwards, the protruding rods will slide in the thread grooves inside one of the gear shafts. When the protruding rods slide down, they will slide in the thread grooves inside the gear shafts through the protrusions on their surfaces and drive one of the gear shafts to rotate during the sliding. When one of the gear shafts rotates, it will drive the other gear shaft to rotate relatively. When the two gear shafts rotate, they will drive the sliding plate 2 to slide through the two trapezoidal blocks. When the two sliding plates 2 of the electric cabinet slide, they will contact with the sliding plate 2. The two elastic plates connected to each other are squeezed, and when the two elastic plates are squeezed, a bulge will occur in the middle of the two elastic plates. When the two elastic plates are deformed, they will push the materials on both sides of the silo inside the material, so that the materials inside the silo are redistributed inside it, reducing the situation where the materials are over-compacted and loosened locally when the two flip plates rotate to compact the materials, reducing the phenomenon of materials agglomerating in the silo due to local over-compaction, and reducing the vibration and tilt of the silo due to uneven distribution of materials after compaction, thereby improving the stability of the device during the lifting process.

[0027] 3. In the present invention, when the middle parts of the two elastic plates are bulged and deformed, the bulged elastic plate in the middle will push the two sliding frames to slide to both sides on their surfaces. When the sliding frames slide, they will slide on the side walls of the wave blowing plate. At the same time, when the sliding frames slide, they will squeeze the wave blowing plate. When the sliding frames slide to the raised parts on the wave blowing plate, they will squeeze the wave blowing plate to rotate backward. Then, when the sliding frames continue to slide and disengage from the raised parts on the wave blowing plate, the wave blowing plate will reset under its own elasticity. At this time, the concave parts on the wave blowing plate will contact the sliding frames. Then, when the sliding frames continue to slide, the wave blowing plate will rotate back and forth. When rotating back and forth, the piston rod will be driven by the movable plate to slide back and forth inside the piston box. When the piston rod slides, the gas inside the piston box will be squeezed. At this time, the one-way plate on the piston rod will open, and the one-way plate in the air inlet hole on the piston box will be closed. Then, when the gas is squeezed by the piston rod, the gas will enter the wave blowing plate through the piston rod and the connecting pipe and be ejected inside the material through the wave blowing plate. The reciprocating rotation of the wave blowing plate and the ejection of gas can blow away the material adhered to the wave blowing plate and the bottom of the silo, breaking the sticky connection between the material and the device, dispersing the material particles, thereby reducing the adhesion of the material when it is compacted and pushed by the elastic plate.

[0028] 4. In the present invention, when the wave blowing plate is squeezed by the sliding frame and rotates back and forth, the rotation of the wave blowing plate will squeeze the two sides of the elastic plate 2 back and forth, and the two ends of the elastic plate 2 will perform reciprocating contraction and bulge movements after being squeezed back and forth. When the elastic plate 2 is moving, it will drive the spring balls between the two elastic plates 2 to shake inside the material. When the spring balls are shaking, certain vibrations will be generated inside the material, thereby reducing the increase in friction between the material inside the silo and its side walls after the material is compacted, resulting in increased pressure on the material flow resistance during discharge due to the friction between the material and the inner wall of the silo after the material is compacted when the silo rotates to the top of the main body for discharging, resulting in local stagnation and incomplete discharge of the material when the material is discharged from the silo, affecting the material conveying efficiency of the lifting device.

[0029] Of course, any product implementing the present invention does not necessarily need to achieve all of the advantages described above at the same time. BRIEF DESCRIPTION OF THE DRAWINGS

[0030] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings required for describing the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other accompanying drawings can be obtained based on these accompanying drawings without paying creative work.

[0031] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0032] Figure 2 It is a schematic diagram of the overall partial cross-sectional structure of the present invention;

[0033] Figure 3 For the present invention Figure 2 Enlarged view of point A in the middle;

[0034] Figure 4 It is a schematic diagram of the main structure of the present invention;

[0035] Figure 5 It is a schematic diagram of the driving mechanism of the present invention;

[0036] Figure 6 It is a schematic diagram of the auxiliary mechanism of the present invention;

[0037] Figure 7 For the present invention Figure 6 Enlarged view of point B in the middle;

[0038] Figure 8 It is a schematic diagram of the expansion mechanism of the present invention;

[0039] Fig. 9 It is a schematic diagram of the partial structure of the auxiliary mechanism of the present invention;

[0040] Fig.10 The figure is a flow chart of the method for using the present invention.

[0041] In the accompanying drawings, the components represented by the reference numerals are listed as follows:

[0042] In the figure: 1. Main body; 101. Feed hopper; 102. Discharge port; 103. Rotating roller; 104. Motor; 2. Transmission mechanism; 201. Transmission chain; 202. Rotating roller 2; 203. Transmission roller; 3. Placement mechanism; 301. Bin; 302. Rectangular slot; 303. Sliding slot 1; 304. Sliding slot 2; 4. Pushing mechanism; 401. Tilt block 1; 402. L plate; 403. Telescopic plate; 404. Reversing plate; 5. Auxiliary mechanism; 50 1. Rotating plate; 502. Spring rod; 503. Connecting plate; 504. Tilt block 2; 6. Rotating mechanism; 601. Sliding plate; 602. Raised rod; 603. Gear shaft; 604. Trapezoidal block; 7. Expansion mechanism; 701. Sliding plate 2; 702. Elastic plate; 703. Wave blowing plate; 704. Elastic plate 2; 705. Sliding rack; 8. Blowing mechanism; 801. Piston box; 802. Piston rod; 803. Connecting pipe; 804. Movable plate. DETAILED DESCRIPTION

[0043] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the 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.

[0044] See also Figure 1 - Fig. 9 As shown, the present invention is a rice lifting device for rice production and processing, comprising a main body 1, a feed hopper 101 is fixedly connected to the top of the main body 1, a discharge port 102 is fixedly connected to the right side of the main body 1, two rotating rollers 103 are rotatably connected inside the main body 1, a motor 104 is fixedly connected to the front of the main body 1, and the output end of the motor 104 rotates and penetrates into the inside of the main body 1, and also includes;

[0045] The transmission mechanism 2 includes two transmission chains 201, a rotating roller 202 for driving the transmission chain 201 to rotate, a transmission roller 203, and a placement mechanism 3 for driving the material to be lifted;

[0046] The placing mechanism 3 includes a plurality of material bins 301, two rectangular slots 302 for limiting rotation, a plurality of sliding slots 1 303, and a sliding slot 2 304;

[0047] The two transmission chains 201 are both sleeved and connected to the outer surfaces of the two rotating rollers 103, the rotating roller 202 is rotatably connected to the inner walls of the two transmission chains 201, the transmission roller 203 is rotatably connected to the side walls of the two transmission chains 201, and the end of the transmission roller 203 close to the motor 104 is fixedly connected to the output end of the motor 104. When the motor 104 is working, it will drive the transmission roller 203 to rotate. When the transmission roller 203 rotates, it will drive several silos 301 to rotate through the two transmission chains 201. When the silo 301 passes through the bottom outlet of the hopper 101, the material inside the hopper 101 will flow into the interior of the silo 301 and fall onto the flexible layer inside the silo 301.

[0048] Several silos 301 are rotatably connected to the side wall of the transmission chain 201 on one side close to the transmission chain 201, two rectangular grooves 302 are opened on the side wall of the silo 301, two sliding grooves 1 303 are opened on the outer wall of the silo 301 on the side close to the rectangular groove 302, two sliding grooves 2 304 are opened on the side of the silo 301 close to the sliding groove 1 303, and the side wall of the sliding groove 2 304 is fixedly connected with a right-angled triangle block, and a square groove is opened on the inner wall of the silo 301 on the side close to the transmission chain 201. When the silo 301 is driven by the transmission chain 201 and separated from the bottom of the hopper 101, the two rotating plates 501 inside the silo 301 will rotate downward due to the gravity of the material itself.

[0049] A pushing mechanism 4 is arranged inside the placing mechanism 3, and the pushing mechanism 4 includes a tilting block 401 slidably connected inside the sliding groove 303, and the side wall of the tilting block 401 is fixedly connected with an L-plate 402, and the end of the L-plate 402 away from the tilting block 401 is rotatably connected with a telescopic plate 403, and the ends of the two telescopic plates 403 away from the L-plate 402 are slidably connected with a reversal plate 404, and the reversal plate 404 is fixedly connected with two right-angled triangle blocks 2 on one side close to the L-plate 402. When the tilting block 401 slides, it will drive the L-plate 402 and the telescopic plate 403 to slide upward synchronously, and when the two telescopic plates 403 slide upward, they will drive the reversal plate 404 to slide inside the rectangular groove 302.

[0050] An auxiliary mechanism 5 is provided inside the silo 301. The auxiliary mechanism 5 includes two rotating plates 501 rotatably connected inside the silo 301. Two spring rods 502 are rotatably connected to the bottom of the rotating plates 501. One end of the two spring rods 502 away from the rotating plates 501 is fixedly connected to the bottom inner wall of the silo 301. Two connecting plates 503 are rotatably connected to the side wall of the rotating plates 501. One end of the connecting plates 503 away from the rotating plates 501 is rotatably connected to a second tilting block 504. The second tilting block 504 is slidably connected to the bottom inner wall of the main body 1. Flexible cloth is provided on the top of the two rotating plates 501.

[0051] Among them, the flexible cloth is fixedly connected to the inside of the silo 301, and the bottom of the two rotating plates 501 is rotatably connected with a counterweight ball, which penetrates the outer wall of the silo 301. When the rotating plate 501 rotates downward, it will compress the spring rod 502 and at the same time push the tilting block 2 504 to slide at the bottom of the silo 301 through the connecting plate 503. When the tilting block 2 504 slides, it will squeeze the side wall of the tilting block 1 401 and push it to slide inside the sliding groove 1 303.

[0052] The side wall of the silo 301 is provided with a rotating mechanism 6, which includes a sliding plate 601 slidably connected to the inside of the square groove, a raised rod 602 is fixedly connected to the bottom of the sliding plate 601, a spring plate is fixedly connected to the side of the sliding plate 601 close to the raised rod 602, and two gear shafts 603 are provided at the bottom of the raised rod 602. The two gear shafts 603 are rotatably connected to the inside of the square groove. When the two reversal plates 404 rotate synchronously, the rotation of the two reversal plates 404 will squeeze the side walls of the two sliding plates 601 downward during their movement. When the sliding plate 601 is squeezed downward, it will drive the raised rod 602 to slide in the threaded groove inside one of the gear shafts 603.

[0053] The two gear shafts 603 are meshingly connected, wherein a threaded groove is provided on the top of one of the gear shafts 603, and the protrusion on the raised rod 602 is slidably connected inside the threaded groove, and a trapezoidal block 604 is slidably connected to the bottom of the gear shaft 603. When the raised rod 602 slides down, it will slide in the threaded groove inside the gear shaft 603 through the protrusion on its surface and drive one of the gear shafts 603 to rotate while sliding. When one of the gear shafts 603 rotates, it will drive the other gear shaft 603 to rotate relatively.

[0054] An expansion mechanism 7 is provided on the outer surface of the trapezoidal block 604, and the expansion mechanism 7 includes a sliding plate 701 slidably connected to the outer surfaces of the two trapezoidal blocks 604, and the sliding plate 701 is slidably connected to the side wall of the silo 301, and two elastic plates 702 are fixedly connected between the two sliding plates 701, and two strip grooves are provided on the side wall of the elastic plate 702, and a wave blowing plate 703 is provided inside the strip groove. When the two gear shafts 603 rotate, the sliding plates 701 will be driven to slide through the two trapezoidal blocks 604, and the two sliding plates 701 of the electric cabinet will squeeze the two elastic plates 702 connected thereto when sliding.

[0055] The side of the wave blowing plate 703 away from the sliding plate 701 is fixedly connected to the inside of the strip groove, the outer surfaces of the two elastic plates 702 are slidably connected to two sliding frames 705, the top of the sliding frame 705 is fixedly connected to a return spring, the two wave blowing plates 703 are fixedly connected to the elastic plate 704, and the two elastic plates 704 are fixedly connected to a spring ball. When the two elastic plates 702 are squeezed, a bulge will appear in the middle of them. When the two elastic plates 702 are deformed, they will push the material to both sides of the inside of the silo 301.

[0056] The side wall of the sliding plate 701 is provided with a blowing mechanism 8, which includes a piston box 801 fixedly connected to the side of the sliding plate 701 close to the elastic plate 702, the piston box 801 is slidably connected with a piston rod 802 inside, the piston rod 802 is rotatably connected with a one-way plate 1 inside, the end of the piston rod 802 away from the sliding plate 701 penetrates the outer wall of the piston box 801 and extends to the outside, the extended end of the piston rod 802 is fixedly connected with two connecting pipes 803, the end of the connecting pipe 803 away from the piston rod 802 is fixedly connected to the side wall of the wave blowing plate 703, the side of the piston rod 802 close to the wave blowing plate 703 is rotatably connected with a movable plate 804, and the end of the movable plate 804 away from the piston rod 802 is rotatably connected to the side wall of the wave blowing plate 703;

[0057] Among them, the wave blowing plate 703 is connected with the interior of the sliding plate 2 701 through a connecting pipe 803, and an air inlet hole is opened on the side of the piston box 801 close to the sliding plate 2 701. The internal rotation of the air inlet hole is connected with the one-way plate 2, and the wave blowing plate 703 will rotate back and forth. When the wave blowing plate 703 rotates back and forth, it will drive the piston rod 802 through the movable plate 804 to slide back and forth inside the piston box 801. When the piston rod 802 slides, it will squeeze the gas inside the piston box 801. At this time, the one-way plate on the piston rod 802 will open, and the one-way plate in the air inlet hole on the piston box 801 will be closed.

[0058] A rice lifting method for rice production and processing, and a rice lifting device for rice production and processing, the method comprising the following steps:

[0059] S1: Placing materials: First, connect the discharge port 102 to the pipe or container to be received, then start the motor 104 and place the materials to be lifted into the hopper 101;

[0060] S2: Start lifting: When the motor 104 is working, it will drive the transmission roller 203 to rotate. When the transmission roller 203 rotates, it will drive several silos 301 to rotate through two transmission chains 201. When the silos 301 pass through the bottom outlet of the hopper 101, the material inside the hopper 101 will flow into the silo 301 and fall onto the flexible layer inside the silo 301;

[0061] S3: Lifting and discharging: Then, the multiple transmission chains 201 that receive the materials will be lifted up under the drive of the transmission chains 201. Then, when the materials are lifted to the top of the rotating roller 202, the side walls of the silo 301 will contact the outer surface of the rotating roller 202 and flip over under the rotation of the rotating roller 202 and the transmission chain 201. At this time, the flipped silo 301 will dump the materials into the discharge port 102 and discharge them.

[0062] When in use, when the silo 301 is driven by the transmission chain 201 and is separated from the bottom of the hopper 101, the two rotating plates 501 inside the silo 301 will be rotated downward by the gravity of the material itself. At the same time, when the silo 301 slides, the counterweight ball at the bottom of the silo 301 is separated from the outer surface of the rotating roller 103, the counterweight ball will also drive the two rotating plates 501 to rotate inside the silo 301 under its own weight. When the rotating plate 501 rotates downward, it will compress the spring rod 502 and at the same time push the tilting block 2 504 to slide at the bottom of the silo 301 through the connecting plate 503. When the tilting block 2 504 slides, it will squeeze the side wall of the tilting block 1 401 and push it to slide inside the sliding groove 1 303. When the tilting block 1 401 slides, it will drive the L plate 402 and the telescopic plate 403 to slide upward synchronously. The flip plate 404 slides inside the rectangular groove 302. When the right-angled triangle block 2 on the reversal plate 404 contacts the right-angled triangle block on the side wall of the sliding groove 2 304, the reversal plate 404 will rotate inside the rectangular groove 302 as the telescopic plate 403 continues to move upward. At this time, the reversal plate 404 will rotate relatively on the top of the silo 301. When the reversal plate 404 rotates relatively, the top of the material entering the silo 301 will be relatively compacted, thereby reducing the possibility of the material shifting or spilling due to the change of the center of gravity when the transmission chain 201 is lifted inside the silo 301. It also reduces the situation of material spilling due to shaking during lifting. Through the relative flipping of the two reversal plates 404, a blocking layer can be formed on the top of the material while compacting the material, thereby reducing the situation of material spilling, improving the stability of the lifting process and reducing waste.

[0063] When the two reversing plates 404 are rotating synchronously, the rotation of the two reversing plates 404 will squeeze the side walls of the two sliding plates 601 downwards during their movement. When the sliding plate 601 is squeezed downwards, it will drive the raised rod 602 to slide in the threaded groove inside one of the gear shafts 603. When the raised rod 602 slides down, it will slide in the threaded groove inside the gear shaft 603 through the protrusions on its surface and drive one of the gear shafts 603 to rotate when sliding. When one of the gear shafts 603 rotates, it will drive the other gear shaft 603 to rotate relatively. When the two gear shafts 603 rotate, they will drive the sliding plate 2 701 to slide through the two trapezoidal blocks 604. The two sliding plates 2 701 of the electric cabinet When sliding, the two elastic plates 702 connected thereto are squeezed. When the two elastic plates 702 are squeezed, the middle parts thereof are deformed to bulge. When the two elastic plates 702 are deformed, the materials are pushed toward the two sides of the inside of the silo 301 inside the materials, so that the materials inside the silo 301 are redistributed inside the materials, and the situation that the materials are partially over-compacted and loosened when the two flip plates 404 rotate to compact the materials is reduced, and the phenomenon that the materials agglomerate in the silo 301 due to local over-compaction is reduced, and the vibration and tilting of the silo 301 due to uneven distribution of the compacted materials are reduced, thereby improving the stability of the device during the lifting process.

[0064] When the two elastic plates 702 are bulged and deformed in the middle, the elastic plate 702 with the bulge in the middle will push the two sliding frames 705 to slide to both sides on its surface. When the sliding frames 705 slide, they will slide on the side walls of the wave blowing plate 703. At the same time, when the sliding frames 705 slide, they will also squeeze the wave blowing plate 703. When the sliding frames 705 slide to the raised parts on the wave blowing plate 703, they will squeeze the wave blowing plate 703 to rotate backward. Then, when the sliding frames 705 continue to slide and disengage from the raised parts on the wave blowing plate 703, the wave blowing plate 703 will reset under its own elasticity. At this time, the recessed parts on the wave blowing plate 703 will contact the sliding frames 705. Then, when the sliding frames 705 continue to slide, the wave blowing plate 703 will rotate back and forth. When rotating back and forth, the piston rod 802 will be driven by the movable plate 804 to slide back and forth inside the piston box 801. When the piston rod 802 slides, the gas inside the piston box 801 will be squeezed. At this time, the one-way plate on the piston rod 802 will open, and the one-way plate in the air inlet on the piston box 801 will be closed. Then, when the gas is squeezed by the piston rod 802, the gas will enter the wave blowing plate 703 through the piston rod 802 and the connecting pipe 803 and be ejected inside the material through the wave blowing plate 703. The reciprocating rotation of the wave blowing plate 703 and the ejection of gas can blow away the material adhered to the wave blowing plate 703 and the bottom of the silo 301, breaking the sticky connection between the material and the device, and dispersing the material particles, thereby reducing the adhesion of the material when it is compacted and pushed by the elastic plate 702.

[0065] When the wave blowing plate 703 rotates back and forth under the squeeze of the sliding frame 705, the rotation of the wave blowing plate 703 will squeeze the two sides of the elastic plate 2 704 back and forth. When the two ends of the elastic plate 2 704 are squeezed back and forth, they will reciprocate and shrink and bulge. When the elastic plate 2 704 moves, it will drive the spring balls between the two elastic plates 2 704 to shake inside the material. When the spring balls shake, they will generate certain vibrations inside the material, reducing the increase of friction between the material inside the silo 301 and its side wall after the material is compacted. As a result, when the silo 301 rotates to the top of the main body 1 for discharging, the friction between the material and the inner wall of the silo 301 after the material is compacted increases the flow resistance of the material during discharge, resulting in local stagnation and incomplete discharge of the material when the material is discharged from the silo 301, affecting the conveying efficiency of the lifting device for the material;

[0066] Among them, when the silo 301 with materials rotates with the side wall of the rotating roller 202, the side wall of the silo 301 will contact the rotating roller 202, and then when it continues to rotate, the contact between the silo 301 and the rotating roller 202 will be reversed with the rotation of the rotating roller 202. At this time, the counterweight ball will be reset when the silo 301 tilts downward.

[0067] The preferred embodiments of the present invention disclosed above are only used to help illustrate the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific implementation methods described. Obviously, many modifications and changes can be made according to the content of this specification. This specification selects and specifically describes these embodiments in order to better explain the principles and practical applications of the present invention, so that those skilled in the art can understand and use the present invention well. The present invention is limited only by the claims and their full scope and equivalents.

Claims

1. A rice lifting device for rice production and processing, comprising a main body (1), a feed hopper (101) is fixedly connected to the top of the main body (1), a discharge port (102) is fixedly connected to the right side of the main body (1), two rotating rollers (103) are rotatably connected inside the main body (1), a motor (104) is fixedly connected to the front of the main body (1), and the output end of the motor (104) rotates and penetrates into the inside of the main body (1), characterized in that: Also includes; A transmission mechanism (2), the transmission mechanism (2) comprising two transmission chains (201), a second rotating roller (202) for driving the transmission chain (201) to rotate, a transmission roller (203), and a placement mechanism (3) for driving the material to be lifted; A placing mechanism (3), the placing mechanism (3) comprising a plurality of bins (301), two rectangular slots (302) for limiting rotation, a plurality of sliding slots 1 (303), and sliding slots 2 (304); The two transmission chains (201) are both sleeved and connected to the outer surfaces of the two rotating rollers (103); the second rotating roller (202) is rotatably connected to the inner walls of the two transmission chains (201); the transmission roller (203) is rotatably connected to the side walls of the two transmission chains (201); and one end of the transmission roller (203) close to the motor (104) is fixedly connected to the output end of the motor (104).

2. A rice lifting device for rice production and processing according to claim 1, characterized in that: A plurality of the silos (301) are rotatably connected to the side wall of the transmission chain (201) on one side thereof; two rectangular grooves (302) are provided on the side wall of the silo (301); two sliding grooves 1 (303) are provided on the outer wall of the silo (301) on one side thereof close to the rectangular groove (302); two sliding grooves 2 (304) are provided on the side of the silo (301) close to the sliding groove 1 (303); a right-angled triangle block is fixedly connected to the side wall of the sliding groove 2 (304); and a square groove is provided on the inner wall of the silo (301) on one side thereof close to the transmission chain (201).

3. A rice lifting device for rice production and processing according to claim 2, characterized in that: A pushing mechanism (4) is arranged inside the placing mechanism (3), and the pushing mechanism (4) comprises an inclined block (401) slidably connected inside a sliding groove (303), a side wall of the inclined block (401) is fixedly connected with an L-plate (402), one end of the L-plate (402) away from the inclined block (401) is rotatably connected with a telescopic plate (403), and one end of the two telescopic plates (403) away from the L-plate (402) is slidably connected with a reversing plate (404), and one side of the reversing plate (404) close to the L-plate (402) is fixedly connected with two right-angled triangle blocks (2).

4. A rice lifting device for rice production and processing according to claim 3, characterized in that: An auxiliary mechanism (5) is arranged inside the silo (301), and the auxiliary mechanism (5) comprises two rotating plates (501) rotatably connected inside the silo (301), two spring rods (502) are rotatably connected to the bottom of the rotating plates (501), one end of the two spring rods (502) away from the rotating plates (501) is fixedly connected to the bottom inner wall of the silo (301), two connecting plates (503) are rotatably connected to the side wall of the rotating plates (501), one end of the connecting plates (503) away from the rotating plates (501) is rotatably connected to a second tilting block (504), and the second tilting block (504) is slidably connected to the bottom inner wall of the main body (1), and flexible cloth is arranged on the top of the two rotating plates (501); The flexible cloth is fixedly connected to the inside of the silo (301), and the bottoms of the two rotating plates (501) are rotatably connected with a counterweight ball, which penetrates the outer wall of the silo (301).

5. A rice lifting device for rice production and processing according to claim 4, characterized in that: The side wall of the silo (301) is provided with a rotating mechanism (6), and the rotating mechanism (6) includes a sliding plate (601) slidably connected to the inside of the square groove, the bottom of the sliding plate (601) is fixedly connected to a protruding rod (602), and the side of the sliding plate (601) close to the protruding rod (602) is fixedly connected to a spring plate, and the bottom of the protruding rod (602) is provided with two gear shafts (603), and the two gear shafts (603) are rotatably connected to the inside of the square groove.

6. A rice lifting device for rice production and processing according to claim 5, characterized in that: The two gear shafts (603) are meshedly connected, wherein a thread groove is provided on the top of one of the gear shafts (603), the protrusion on the protruding rod (602) is slidably connected inside the thread groove, and a trapezoidal block (604) is slidably connected to the bottom of the gear shaft (603).

7. A rice lifting device for rice production and processing according to claim 6, characterized in that: The outer surface of the trapezoidal block (604) is provided with an expansion mechanism (7), and the expansion mechanism (7) includes a sliding plate 2 (701) slidably connected to the outer surfaces of the two trapezoidal blocks (604), and the sliding plate 2 (701) is slidably connected to the side wall of the silo (301), and two elastic plates (702) are fixedly connected between the two sliding plates 2 (701), and the side wall of the elastic plate (702) is provided with two strip grooves, and a wave blowing plate (703) is arranged inside the strip groove.

8. A rice lifting device for rice production and processing according to claim 7, characterized in that: The side of the wave blowing plate (703) away from the sliding plate (701) is fixedly connected to the inside of the strip groove, the outer surfaces of the two elastic plates (702) are slidably connected to two sliding frames (705), the top of the sliding frame (705) is fixedly connected to a return spring, the two wave blowing plates (703) are fixedly connected to the elastic plate (704), and the two elastic plates (704) are fixedly connected to a spring ball.

9. A rice lifting device for rice production and processing according to claim 8, characterized in that: The side wall of the sliding plate 2 (701) is provided with a blowing mechanism (8), and the blowing mechanism (8) comprises a piston box (801) fixedly connected to the side of the sliding plate 2 (701) close to the elastic plate (702), the interior of the piston box (801) is slidably connected to a piston rod (802), the interior of the piston rod (802) is rotatably connected to a one-way plate 1, and the end of the piston rod (802) away from the sliding plate 2 (701) penetrates the outer wall of the piston box (801). and extending to the outside, the extended end of the piston rod (802) is fixedly connected to two connecting pipes (803), one end of the connecting pipe (803) away from the piston rod (802) is fixedly connected to the side wall of the wave blowing plate (703), and the side of the piston rod (802) close to the wave blowing plate (703) is rotatably connected to a movable plate (804), and one end of the movable plate (804) away from the piston rod (802) is rotatably connected to the side wall of the wave blowing plate (703); The wave blowing plate (703) is connected to the interior of the second sliding plate (701) through a connecting pipe (803), and an air inlet hole is provided on a side of the piston box (801) close to the second sliding plate (701), and the interior of the air inlet hole is rotatably connected to the second one-way plate.

10. A rice lifting method for rice production and processing, characterized in that: Using the rice lifting device for rice production and processing as claimed in claim 9, the method comprises the following steps: S1: placing materials: firstly, the discharge port (102) is connected to the pipe or container to be received, then the motor (104) is started and the materials to be lifted are placed in the hopper (101); S2: Start lifting: When the motor (104) is working, it drives the transmission roller (203) to rotate. When the transmission roller (203) rotates, it drives a plurality of silos (301) to rotate through two transmission chains (201). When the silos (301) pass through the bottom outlet of the hopper (101), the material inside the hopper (101) flows into the silo (301) and falls onto the flexible layer inside the silo (301); S3: Lifting and discharging: Subsequently, the multiple transmission chains (201) receiving the materials will be lifted under the drive of the transmission chains (201), and then when the materials are lifted to the top of the rotating roller 2 (202), the side wall of the silo (301) will contact the outer surface of the rotating roller 2 (202) and reverse under the rotation of the rotating roller 2 (202) and the transmission chain (201), and at this time, the overturned silo (301) will pour the materials into the discharge port (102) and discharge them.

Citation Information

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