MULTI-STATION ADAPTIVE WALNUT SHELL PRE-BREAKING SYSTEM
20210401025 · 2021-12-30
Assignee
- QINGDAO UNIVERSITY OF TECHNOLOGY (Qingdao, Shandong, CN)
- XINJIANG JIANG NING LIGHT INDUSTRIAL MACHINERY ENGINEERING TECHNOLOGY CO., LTD. (Urumqi, Xinjiang, CN)
Inventors
- Changhe Li (Qingdao, CN)
- Mingcun SHI (Qingdao, CN)
- Yiping FENG (Qingdao, CN)
- Yitian FENG (Qingdao, CN)
- Zhenming JIA (Qingdao, CN)
- Leilei ZHAO (Qingdao, CN)
- Rong WANG (Qingdao, CN)
- Yucheng Wang (Qingdao, CN)
- Yanbin Zhang (Qingdao, CN)
- Ji CHE (Qingdao, CN)
- Runze Li (Qingdao, CN)
- Cai WANG (Qingdao, CN)
- Min Yang (Qingdao, CN)
- Yali Hou (Qingdao, CN)
Cpc classification
B07B1/15
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A multi-station adaptive walnut shell pre-breaking system, including a feeding device and a shell pre-breaking device. The feeding device includes a feeding box, a single-helix twister and a double-helix twister are disposed in the feeding box, the single-helix twister and the double-helix twister rotate in opposite directions, and an adjustable spring partition is disposed below the single-helix twister and the double-helix twister; the shell pre-breaking device includes a shell pre-breaking box, a plurality of squeezing stations are provided in the shell pre-breaking box, each of the squeezing stations is provided with a shell pre-breaking assembly, the shell pre-breaking assembly includes a falling U-shaped plate and a squeezing U-shaped plate.
Claims
1. A multi-station adaptive walnut shell pre-breaking system, the system comprising: a feeding device and a shell pre-breaking device fixed to a frame, the feeding device is disposed above the shell pre-breaking device, and a funnel device is disposed below the shell pre-breaking device; the feeding device comprises a feeding box, a single-helix twister and a double-helix twister parallel to each other are disposed in the feeding box, the single-helix twister and the double-helix twister rotate in opposite directions, and an adjustable spring partition is disposed below the single-helix twister and the double-helix twister; the shell pre-breaking device comprises a shell pre-breaking box, a plurality of squeezing stations are provided in the shell pre-breaking box, each of the squeezing stations is provided with a shell pre-breaking assembly, the shell pre-breaking assembly comprises a falling U-shaped plate and a squeezing U-shaped plate arranged oppositely, a first end of the falling U-shaped plate is hinged to the shell pre-breaking box, a second end of the falling U-shaped plate is pushed to move by a falling cam, the end of the squeezing U-shaped plate opposite to the first end of the falling U-shaped plate is pushed to move by a squeezing cam, the end of the squeezing U-shaped plate opposite to the second end of the falling U-shaped plate is hinged to the shell pre-breaking box, the squeezing cam is in a far rest state when the falling cam moves, and the falling cam is in a far rest state when the squeezing cam moves.
2. The multi-station adaptive walnut shell pre-breaking system according to claim 1, wherein the single-helix twister and the double-helix twister are each arranged horizontally, a first baffle is fixedly disposed above the single-helix twister, a second baffle is fixedly disposed above the double-helix twister, the first baffle and the second baffle are arranged oppositely on side walls of the feeding box, the first baffle and the second baffle each tilt downward from the ends connected to the feeding box to the other ends, and a feeding inlet is formed between the first baffle and the second baffle.
3. The multi-station adaptive walnut shell pre-breaking system according to claim 1, wherein short helical blades and long helical blades are fixed on the outer side of a double-helix blade fixing shaft of the double-helix twister, the short helical blades and the long helical blades are arranged in parallel, and the short helical blades are shorter than the long helical blades; and helical blades of the single-helix twister are tangent to the long helical blades of the double-helix twister.
4. The multi-station adaptive walnut shell pre-breaking system according to claim 1, wherein the adjustable spring partition comprises a U-shaped notched baffle arranged horizontally, one end of the U-shaped notched baffle is fixedly connected to the feeding box through two screw stem, the screw stem are sleeved with springs, the other end of the U-shaped notched baffle is provided with a plurality of U-shaped openings from which walnuts fall, and the U-shaped openings are correspondingly formed above the falling U-shaped plates and the squeezing U-shaped plates.
5. The multi-station adaptive walnut shell pre-breaking system according to claim 1, wherein the falling U-shaped plates and the squeezing U-shaped plates are each arranged vertically, the cross sections of the two are U-shaped, and the falling U-shaped plates and the squeezing U-shaped plates are opposite to form vertical cylindrical structures.
6. The multi-station adaptive walnut shell pre-breaking system according to claim 5, wherein the inner sides of the falling U-shaped plates and the squeezing U-shaped plates are provided with a plurality of trapezoidal grooves, there are gaps between the adjacent trapezoidal grooves, and the gaps are gradually reduced from top to bottom.
7. The multi-station adaptive walnut shell pre-breaking system according to claim 1, wherein a side of the falling U-shaped plate is connected to the shell pre-breaking box through a falling U-shaped plate tension spring, and a side of the squeezing U-shaped plate is connected to the shell pre-breaking box through a squeezing U-shaped plate tension spring.
8. The multi-station adaptive walnut shell pre-breaking system according to claim 1, wherein the falling cams of the plurality of squeezing stations are staggered by a set angle and fixed to the same rotating shaft; and the squeezing cams of the plurality of squeezing stations are staggered by a set angle and fixed to the same rotating shaft.
9. The multi-station adaptive walnut shell pre-breaking system according to claim 1, wherein the side of the falling U-shaped plate is hinged together with a falling U-shaped plate bearing by a pin, and the falling U-shaped plate bearing is in contact fit with the falling cam; the side of the squeezing U-shaped plate is hinged together with a squeezing U-shaped plate bearing by a pin, and the squeezing U-shaped plate bearing is in contact fit with the squeezing cam.
10. The multi-station adaptive walnut shell pre-breaking system according to claim 1, wherein the squeezing cam has two actuating travels, the contour of the squeezing cam corresponding to the first actuating travel is a quadratic polynomial curve, and the contour of the squeezing cam corresponding to the second actuating travel is a linear polynomial curve; and the squeezing cam and the falling cam are each connected to a power device by a driving mechanism.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0039] The accompanying drawings constituting a part of the present application are intended to provide a further understanding of the present application, and the illustrative embodiments of the present application and the descriptions thereof are intended to interpret the present application and do not constitute improper limitations to the present application.
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[0100] In the figures: feeding device I, shell pre-breaking device II, frame III, funnel device IV; I-01-feeding box front baffle, I-02-triangle iron connecting plate, I-03-feeding box left baffle, I-04-rhombic seat bearing, I-05-hexagon flange bolt, I-06-hexagon flange nut, I-07-feeding box rear baffle, I-08-single-helix twister V-shaped baffle, I-09-adjustable spring partition, I-10-double-helix twister V-shaped baffle, I-11-rhombic seat bearing, I-12-large spur gear, I-13-pulley I, I-14-small spur gear, I-15-deep groove ball bearing, I-16-ring bearing seat, I-17-feeding box right baffle, I-18-double-helix twister, I-19-single-helix twister, I-20-large spur gear positioning key, I-21-hexagon socket cap screw, I-22-small spur gear positioning key, I-23-set screw,
II-01-shell pre-breaking box, II-02-squeezing cam, II-03-falling U-shaped plate, II-04-squeezing U-shaped plate, II-05-shaft I, II-06-rhombic seat bearing, II-07-shaft II, II-08-falling U-shaped plate tension spring, II-09-shaft III, II-10-pulley II, II-11-pulley III, II-12-pulley IV, II-13-shaft IV, II-14-squeezing U-shaped plate tension spring, II-15-squeezing cam set screw, II-16-hexagon flange bearing seat positioning nut, II-17-hexagon flange bearing seat positioning bolt, II-18-falling cam, II-19-falling cam positioning screw, II-20-falling U-shaped plate bearing, II-21-pin, II-22-hexagon socket cap positioning screw, II-23-pin, II-24-squeezing U-shaped plate bearing,
III-01-motor, III-02-hexagon flange motor positioning bolt, III-03-hexagon flange motor positioning nut, III-04-motor positioning baffle, III-05-driving pulley, III-06-iron stand; I-0101-adjustable spring partition left positioning hole, I-0102-adjustable spring partition right positioning hole, I-0301-single-helix twister left positioning hole, I-0302-double-helix twister left positioning hole, I-1701-single-helix twister right positioning hole, I-1702-double-helix twister right positioning hole, I-0901-U-shaped notched baffle, I-0902-right screw stem, I-0903-right spring, I-0904-left screw stem, I-0905-left spring, I-1801-small spur gear positioning key slot, I-1802-double-helix blade fixing shaft, I-1803-short helical blade, I-1804-long helical blade, I-1901-large spur gear positioning key slot, I-1902-single-helix blade fixing shaft, I-1903-helical blade,
II-0101-falling U-shaped plate box tension spring hanging ring, II-0102 squeezing U-shaped plate box tension spring hanging ring, II-0103-shaft I positioning hole, II-0104-shaft III positioning hole, II-0105-shaft II positioning hole, II-0106-shaft IV positioning hole, II-0201-squeezing cam positioning screw hole, II-0301-falling U-shaped plate sleeve, II-0302-falling U-shaped plate tension spring hanging ring, II-0303-falling U-shaped plate U-shaped bearing positioning groove, II-0401-squeezing U-shaped plate U-shaped bearing positioning groove, II-0402-squeezing U-shaped plate tension spring hanging ring, II-0403-squeezing U-shaped plate sleeve, II-1801-falling cam positioning screw hole, III-0101-ordinary round head flat key.
DETAILED DESCRIPTION OF EMBODIMENTS
[0101] It should be noted that the following detailed descriptions are exemplary and are intended to provide further descriptions of the present application. All technical and scientific terms used herein have the same meanings as commonly understood by those ordinary skilled in the art to which the present application belongs, unless specified otherwise.
[0102] It should be noted that terms used herein are intended to describe specific embodiments only rather than to limit the exemplary embodiments according to the present application. As used herein, unless otherwise clearly stated in the context, singular forms are also intended to include plural forms. In addition, it should also be understood that when the terms “contain” and/or “comprise” are used in the description, it indicates the presence of features, steps, operations, devices, ingredients, and/or combinations thereof.
[0103] For the convenience of description, the terms “upper”, “lower”, “left” and “right” in the present disclosure only indicate the upper, lower, left and right directions of the drawings, do not limit the structures, are only for the convenience of description and the simplification of description, do not indicate or imply that the devices or elements must have specific directions or be constructed and operated in specific directions, and therefore cannot be understood as limitations to the present disclosure.
[0104] As introduced in the background section, the inventors found that the existing shell pre-breaking devices are unsatisfactory in shell breaking effect, and usually have the disadvantages of high unit energy consumption and poor economy. In order to solve the above technical problems, the present application proposes a multi-station adaptive walnut shell pre-breaking system.
[0105] The present application provides a multi-station adaptive walnut shell pre-breaking system, comprising a feeding device and a shell pre-breaking device fixed to a frame, wherein the feeding device is disposed above the shell pre-breaking device, and a funnel device is disposed below the shell pre-breaking device;
[0106] The feeding device comprises a feeding box, a single-helix twister and a double-helix twister parallel to each other are disposed in the feeding box, the single-helix twister and the double-helix twister rotate in opposite directions, and an adjustable spring partition is disposed below the single-helix twister and the double-helix twister;
[0107] The shell pre-breaking device comprises a shell pre-breaking box, a plurality of squeezing stations are provided in the shell pre-breaking box, each of the squeezing stations is provided with a shell pre-breaking assembly, the shell pre-breaking assembly comprises a falling U-shaped plate and a squeezing U-shaped plate arranged oppositely, a first end of the falling U-shaped plate is hinged to the shell pre-breaking box, a second end of the falling U-shaped plate is pushed to move by a falling cam, the end of the squeezing U-shaped plate opposite to the first end of the falling U-shaped plate is pushed to move by a squeezing cam, the end of the squeezing U-shaped plate opposite to the second end of the falling U-shaped plate is hinged to the shell pre-breaking box, the squeezing cam is in a far rest state when the falling cam moves, and the falling cam is in a far rest state when the squeezing cam moves.
Embodiment 1
[0108] The walnut shell pre-breaking system disclosed by this embodiment is further described below with reference to
[0109] As shown in
[0110] As shown in
[0111] The motor III-01 is a power device of the shell pre-breaking system of the present disclosure. The motor III-01 drives a single-helix twister and a double-helix twister of the feeding device I through a drive mechanism, and the squeezing cam and falling cam of the shell pre-breaking device II move. The drive mechanism is composed of pulleys, gears, a drive belt, etc. The motor III-01 is driven by the belt to drive the falling cam in the shell pre-breaking device to move, the other pulley at a shaft end that cooperates with the falling cam drives the single-helix twister and the squeezing cam to move simultaneously by belt drive, and the single-helix twister drives the double-helix twister to rotate reversely by gear engagement.
[0112] As shown in
[0113] As shown in
[0114] As shown in
[0115] A double-helix blade fixing shaft I-1802 in the double-helix twister I-18 penetrates through a double-helix twister right positioning hole I-1702 on the feeding box right baffle I-17 and a double-helix twister left positioning hole I-0302 on the feeding box left baffle I-03 respectively, and the left and right shaft ends of the double-helix blade fixing shaft I-1802 match with two deep groove ball bearings I-15 respectively, wherein the two deep groove ball bearings I-15 are respectively fixed to two ring bearing seats I-16 by set screws I-23, and the two ring bearing seats I-16 are respectively fixed to the feeding box right baffle I-17 and the feeding box left baffle I-03 by welding; the large spur gear I-12 cooperates with a large spur gear positioning key slot I-1901 on the single-helix twister I-19 through a large spur gear positioning key I-20, and the small spur gear I-14 cooperates with a small spur gear positioning key slot I-1801 on the double-helix twister I-18 through a small spur gear positioning key I-22, so that the large spur gear I-12 engages with the small spur gear I-14; the pulley I I-13 is fixed to a right shaft end position of the large spur gear positioning key slot I-1901 on the single-helix blade fixing shaft I-1902 through a hexagon socket cap screw I-21; the large spur gear I-12 drives the two twisters to rotate in opposite directions by engagement drive to separate walnuts of different sizes, and the falling speed of walnuts is retarded by friction between the helical blades and the surfaces of the walnuts.
[0116] A single-helix twister V-shaped baffle I-08 (i.e., a first baffle) is fixed to the feeding box rear baffle I-07 by welding, and the single-helix twister V-shaped baffle I-08 is tangent to the helical blades of the single-helix twister I-19, tilts downward, and functions to prevent the walnuts from falling outside the opening of the U-shaped plate of the shell pre-breaking device with the rotation of the single-helix twister I-19; a double-helix twister V-shaped baffle I-10 (i.e., a second baffle) is fixed to the feeding box front baffle I-01 by welding, and the double-helix twister V-shaped baffle I-10 is tangent to the helical blades of the double-helix twister I-18, tilts downward, and functions to prevent the walnuts from falling outside the opening of the U-shaped plate of the shell pre-breaking device with the rotation of the double-helix twister I-18. A feeding inlet is formed between the single-helix twister V-shaped baffle I-08 and the double-helix twister V-shaped baffle I-10.
[0117] As shown in
[0118] As shown in
[0119] As shown in
[0120] As shown in
[0121] As shown in
[0122] The nine falling cams II-18 are also staggered at a certain angle and fixed to a shaft II II-07 by falling cam positioning screws II-19, the falling cam positioning screws II-19 pass through falling cam positioning screw holes II-1801 of the falling cams II-18 to fixedly connect the falling cams II-18 with the shaft II II-07, the shaft II II-07 passes through a shaft II positioning hole II-0105 on the shell pre-breaking box II-01, each falling cam II-18 is located in the middle of each station of the shell pre-breaking box II-01, and rhombic seat bearings II-06 match with two shaft ends of the shaft II II-07 respectively and are fixed to the shell pre-breaking box II-01 by hexagon flange bearing positioning bolts II-17 and hexagon flange bearing positioning nuts II-16; the pulley II II-10 and the pulley III II-11 are fixed to the right end of the shaft II II-07 by hexagon socket cap positioning screws II-22; the falling U-shaped plates II-03 are located in the nine stations of the shell pre-breaking box II-01, a falling U-shaped plate sleeve II-0301 is fixedly disposed on a side of each falling U-shaped plate II-03, the falling U-shaped plate sleeve II-0301 is hinged to the shell pre-breaking box II-01 by a shaft III II-09, the falling U-shaped plate sleeve II-0301 is in clearance fit with the shaft III II-09, a falling U-shaped plate bearing II-20 is hinged together with a falling U-shaped plate U-shaped bearing positioning groove II-0303 of the falling U-shaped plate II-03 by a pin II-21, wherein the pin II-21 is in clearance fit with the falling U-shaped plate bearing II-20 and in interference fit with the falling U-shaped plate U-shaped bearing positioning groove II-0303, one end of a falling U-shaped plate tension spring II-08 is connected to a falling U-shaped plate tension spring hanging ring II-0302 and the other end of the falling U-shaped plate tension spring II-08 is connected to a falling U-shaped plate box tension spring hanging ring II-0101, the falling U-shaped plate bearing II-20 is always in contact with the falling cam II-18 under the action of the falling U-shaped plate tension spring II-08, and the rolling friction between the cam and the bearing reduces energy consumption and improves economic efficiency; the shaft III II-09 is in interference fit with a shaft III positioning hole II-0104 on the shell pre-breaking box II-01.
[0123] The squeezing U-shaped plates II-04 and the falling U-shaped plates II-03 are cut from round iron pipes, and hinged together with the shell pre-breaking box through the shafts. The squeezing U-shaped plates II-04 and the falling U-shaped plates II-03 are each arranged vertically, and their horizontal cross sections are U-shaped. The squeezing U-shaped plates II-04 and the falling U-shaped plates II-03 are opposite to form vertical cylindrical structures. A plurality of trapezoidal grooves (not shown in the figures) are machined in the inner U-shaped squeezing surfaces of the squeezing U-shaped plates II-04 and the falling U-shaped plates II-03 to increase the friction with the surfaces of walnuts, there are gaps between the trapezoidal grooves, and the gaps are gradually reduced from top to bottom to position the walnuts of various sizes.
[0124] As shown in
[0125] As shown in
[0126] Wherein, the equation of the quadratic polynomial motion law is:
[0127] In the equation, S is a displacement, θ is a rotation angle of the cam, ω is an angular velocity of the cam, a is an acceleration, and C.sub.0, C.sub.1, and C.sub.2 are constants.
[0128] The equation of the linear polynomial motion law is:
[0129] In the equation, S is a displacement, θ is a rotation angle of the cam, ω is an angular velocity of the cam, a is an acceleration, and C.sub.0 and C.sub.1 are constants.
[0130] Considering the requirements of the body structure, the speed of the squeezing cam is n.sub.0 r/min, and the diameter of the base circle is d.sub.0. Considering the gaps between walnut shells and walnut kernels, the gaps between m.sub.min to m.sub.max are obtained by consulting data and self-statistics. Considering that walnut skin has certain elasticity, cracks are not necessarily grown under small deformation, so the total bilaterally symmetrical gap value of the maximum m.sub.max is 2 m.sub.max. Because a maximum arm of force is obtained when the cam acts on a distal end of a clamping device, the diameters of walnuts are assumed to d.sub.min—d.sub.max, that is, the horizontal displacements a.sub.i between the inner grooves of the squeezing U-shaped plates and the falling U-shaped plates under different lengths are d.sub.min˜d.sub.max, the difference in displacement between two ends is approximately Δd by calculation, i.e., Δa.sub.i is Δd, so in order to ensure that the walnuts falling to the middle and bottom can be fully squeezed to produce cracks, the actuating travel h h.sub.0 of the squeezing cam is determined to be 2m.sub.max+Δd=h h.sub.0.
[0131] As shown in
[0132] The specific operating process of this solution is as follows:
[0133] Walnuts are graded by reverse rotation between the single-helix twister I-19 and the double-helix twister I-18 in the feeding device I, the walnuts fall orderly by means of friction between the helical blades I-1903 and the short helical blades I-1803, that is, each time when each station of the shell pre-breaking device completes squeezing, the falling process corresponds to one walnut, so that small walnuts enter the plurality of stations on the left side of the shell pre-breaking device II after grading, and big walnuts fall orderly by means of friction between the helical blades I-1903 and the long helical blades I-1804 to enter the plurality of stations on the right side of the shell pre-breaking device II.
[0134] The specific implementation process of this solution will be described below, taking one station and one operating cycle of the shell pre-breaking device II as an example. The operating principle of other units is similar to this.
[0135] When a walnut fed by the feeding device begins to fall, the squeezing cam II-02 of the corresponding station is at the initial phase of the first actuating travel, the falling cam II-18 is at the far rest phase, and the squeezing U-shaped plate bearing II-24 and the falling U-shaped plate bearing II-20 are always in contact with the squeezing cam II-02 and the falling cam II-18 under the action of the squeezing U-shaped plate tension spring II-14 and the falling U-shaped plate tension spring II-08, so that the squeezing U-shaped plate II-04 and the falling U-shaped plate II-03 form a U-shaped caulking groove. Because the squeezing U-shaped plate II-04 and the falling U-shaped plate II-03 are hinged together with the shell pre-breaking II-01 through the shaft IV II-13 and the shaft III II-09, the squeezing U-shaped plate II-04 and the falling U-shaped plate II-03 rotate about the shaft IV II-13 and the shaft III II-09 as centers respectively, and the walnut is automatically positioned at an appropriate position in the caulking groove under the action of gravity. After the walnut is fixed in the caulking groove, the squeezing cam II-02 enters the actuating phase, and is in rolling contact with the squeezing U-shaped plate bearing II-24 to push the squeezing U-shaped plate II-04 to squeeze the walnut centered on the shaft IV II-13. Because the squeezing cam II-02 has two actuating travels, it squeezes the walnut twice. At this time, the falling cam II-18 is in the far rest state. The walnut will undergo unrecoverable plastic deformation after the elastic deformation phase. The walnut is squeezed to produce cracks, the falling cam II-18 enters the return phase, the falling U-shaped plate II-03 rotates about the shaft III II-09 as the center under the action of the falling U-shaped plate tension spring II-08, the lower opening is opened, the squeezed walnut falls under the action of gravity and rolls out through the funnel device IV, and the squeezing cam II-02 and the falling cam II-18 respectively return to the initial phase of the first actuating travel and the far rest phase after the falling is completed to process next batch of walnuts.
[0136] Although the specific embodiments of the present disclosure are described above in combination with the accompanying drawing, the protection scope of the present disclosure is not limited thereto. It should be understood by those skilled in the art that various modifications or variations could be made by those skilled in the art based on the technical solution of the present disclosure without any creative effort, and these modifications or variations shall fall into the protection scope of the present disclosure.
[0137] Described above are merely preferred embodiments of the present disclosure, and the present disclosure is not limited thereto. Various modifications and variations may be made to the present disclosure for those skilled in the art. Any modifications, equivalent substitutions, improvements and the like made within the spirit and principle of the present disclosure shall fall within the scope of the present disclosure.