Highland barley impurity removing and grinding all-in-one machine

By designing an integrated barley debris removal and grinding machine, using technical means such as semi-circular air duct and rebound components, the problem of difficult separation of barley skin and barley kernel during the debris removal process is solved, and efficient removal of barley and improvement of purity is achieved.

CN120054676AActive Publication Date: 2025-05-30INST OF AGRO PROD PROCESSING SCI & TECH SICHUAN ACAD OF AGRI SCI +1
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Patent Information

Application Number
CN202510536797.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-27
Publication Date
2025-05-30
Estimated Expiration
2045-04-27

AI Technical Summary

Technical Problem

In the prior art, after the barley after water absorption and centrifugation dehydration during the decomposition process, the remaining aqueous barley skins and barley kernels are difficult to effectively separate from the barley kernels, which affects the purity and processing quality of barley.

Method used

A barley debris removal and grinding integrated machine is designed, using semi-circular air ducts, chip recesses, inclined filter plates, heating arc plates, arc screen plates and discharge ports. Through the role of hot air drying and rebound components, the barley skin is separated and removed to improve the purity of barley.

Benefits of technology

The aqueous barley skin is effectively processed, which improves the purity and processing quality of barley and reduces the burden on subsequent screening.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of highland barley processing, and provides a highland barley impurity removing and grinding all-in-one machine which comprises a box body and further comprises a feeding hopper installed at the top of the box body; the bifurcated discharging opening is formed in the bottom of the feeding hopper; the grain feeding assembly is mounted in the bifurcated discharging opening and is used for discharging the stacked highland barley grains in a split-flow and batch-by-batch manner; the two semi-ring air ducts are installed on the left side and the right side of the interior of the box body correspondingly, and the upper middle portions of the outer ring walls of the two semi-ring air ducts communicate with the left side and the right side of the forked discharging opening correspondingly; the bouncing reverse assembly is installed in the middle of the inner ring wall of the semi-ring air duct and used for making contact with and bouncing highland barley particles discharged into the semi-ring air duct for the first time, and the scrap opening is installed at the top of the inner ring wall of the semi-ring air duct. When the highland barley hulling device is used, the half-ring air duct, the elastic reversing assembly and the air exhaust assembly are utilized, so that highland barley hulls contained in highland barley and impurities attached to the highland barley hulls are removed, and the purity and the processing quality of the highland barley are improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of highland barley processing, and more specifically, to an integrated machine for removing impurities and grinding highland barley. Background Art

[0002] As a highland crop rich in nutritional value, highland barley can be directly consumed as the main food or ground into flour to make various pasta, providing diverse tastes and nutrients for consumers.

[0003] In order to obtain higher-quality highland barley raw materials, impurity removal treatment is required. First, after the highland barley raw materials are harvested, they are initially screened by a vibrating screen to remove large impurities such as stones and soil clods. Then, the highland barley that has passed the initial screening enters the cleaning process, where the surface is cleaned using high-pressure water to remove impurities such as dust and pesticide residues. The cleaned highland barley is soaked in water for a period of time to fully absorb water and expand, softening the highland barley grains, which is not only convenient for removing attached impurities but also for subsequent dehulling and grinding processes of highland barley.

[0004] In the above-mentioned highland barley impurity removal process, after the highland barley absorbs water and expands, centrifugal force is usually used to drain the water on its surface. Although softened highland barley grains are obtained, which is convenient for subsequent dehulling operations, it also results in some water-containing highland barley husks remaining in the dehulled highland barley grains. Due to the presence of water, the water-containing highland barley husks are tightly combined with the highland barley kernels, making it difficult to effectively separate them in the subsequent screening process, thus affecting the purity and final processing quality of highland barley.

[0005] Therefore, this application proposes an integrated machine for removing impurities and grinding highland barley to solve the above problems. Summary of the Invention

[0006] Technical Problem to be Solved: Aiming at the problems existing in the prior art, the purpose of the present invention is to provide an integrated machine for removing impurities and grinding highland barley, which solves the problem that after the highland barley that has absorbed water and expanded and undergone centrifugal dehydration is dehulled, the remaining water-containing highland barley husks are difficult to separate from the highland barley kernels by screening, affecting the purity and processing quality of highland barley.

[0007] To solve the above technical problems, the present invention provides the following technical solutions: A hulled barley impurity removal and flour milling integrated machine, including a box body, further including: a feed hopper installed at the top of the box body; a bifurcated discharge port installed at the bottom of the feed hopper; a grain inlet component installed inside the bifurcated discharge port for diverting and batch discharging the accumulated hulled barley grains; two semi-circular air ducts respectively installed on the left and right sides inside the box body, the upper middle parts of the outer ring walls of the two semi-circular air ducts are respectively connected to the left and right sides of the bifurcated discharge port; a bouncing component installed in the middle of the inner ring wall of the semi-circular air duct for elastically bouncing the hulled barley grains first discharged into the semi-circular air duct; a debris port installed at the top of the inner ring wall of the semi-circular air duct, and the inclination angle of the debris port is set at 30-45 degrees; an inclined filter plate installed in the middle of the debris port, and the top end of the inclined filter plate is connected to the inner wall of the top of the outer ring wall of the semi-circular air duct; heating arc plates are buried at the inner walls of the upper inner and outer ring walls of the semi-circular air duct, a curved sieve plate is installed at the lower middle part of the outer ring wall of the semi-circular air duct, and a discharge port is installed at the bottom end of the outer ring wall of the semi-circular air duct, and the discharge port penetrates the inner walls of the left and right sides at the bottom end of the box body; an air extraction component is arranged on the outer side of each semi-circular air duct, and the air extraction component is connected to both ends of the semi-circular air duct.

[0008] In a new embodiment, the grain inlet component includes: a round-headed horizontal box which is of a hollow structure and is installed in the middle of the bifurcated discharge port; inner frame grooves respectively installed on the left and right sides of the round-headed horizontal box; a squeezing horizontal plate slidably installed in the middle of the inner frame groove, and a horizontal blocking plate is installed at the outer end of the squeezing horizontal plate, and the horizontal blocking plate also slides in the inner frame groove; a return spring, one end of which is connected to the front and rear parts of the outer end of the squeezing horizontal plate, and the other end is connected to the inner wall of the inner end of the inner frame groove at the front and rear parts; a central shaft is arranged between the two inner frame grooves, and the central shaft is rotatably installed in the middle of the round-headed horizontal box, and striking arc plates are installed on the upper and lower parts of the central shaft; a driving motor is installed in the front middle part of the bifurcated discharge port, and the output end of the driving motor penetrates the front wall of the bifurcated discharge port and is fixedly connected to one end of the central shaft.

[0009] In a new embodiment, the bouncing component includes: two air source generators respectively installed at the lower parts of the left and right inner walls of the box body; a semi-circular air bag installed in the middle of the inner ring wall of the semi-circular air duct; an air delivery pipe, one end of which is connected to the exhaust port of the air source generator, and the other end is connected to the outer side of the semi-circular air bag; a wear-resistant layer is arranged on the outer wall of the semi-circular air bag.

[0010] In a new embodiment, the lower parts of both sides of the bifurcated discharge port are obliquely arranged, and the opening direction faces the position of the corresponding semi-circular air bag.

[0011] In a new embodiment, a number of air-permeable filter holes are arranged at equal intervals in the upper middle part of the inclined filter plate, and the inner side of the inclined filter plate is in an arc shape.

[0012] In a new embodiment, impurity collection boxes are installed on the upper inner walls of the left and right sides of the box body, and the top end of the impurity collection box is communicated with the bottom end of the debris opening.

[0013] In a new embodiment, crushing boxes are installed on the left and right sides of the middle part of the bottom end of the box body, and a plurality of partition plates are installed in the crushing boxes.

[0014] In a new embodiment, the air extraction assembly includes: horizontal discharge ports respectively installed at both ends of the semi-circular air duct, with a filter screen installed inside; an air extraction pump arranged on the outer side of the horizontal discharge port, and a double-headed air pipe installed at the air extraction port of the air extraction pump; a right-angled air pipe one, one end of which is connected to one of the connection ends of the double-headed air pipe, and the other end is connected to the outer end of the upper horizontal discharge port; a right-angled air pipe two, one end of which is connected to the other connection end of the double-headed air pipe, and the other end is connected to the outer end of the lower horizontal discharge port; air flow valves respectively installed in the middle parts of the right-angled air pipe one and the right-angled air pipe two.

[0015] In a new embodiment, partition cavities are provided on both the left and right sides of the box body, and air extraction pumps are installed on the inner middle inner walls of the partition cavities. Assembly plates are installed on the left and right parts of the front and rear sides of the box body, and air-permeable plates are installed on the left and right parts of the assembly plates.

[0016] In a new embodiment, a base and a material collection hopper are respectively installed outside and in the middle of the bottom end of the box body. A flour mill is installed on the bottom wall of the base, and the feeding port of the flour mill is connected to the bottom end of the material collection hopper. A powder discharge port is installed at the rear end of the flour mill and penetrates through the rear wall of the base and extends to the outside.

[0017] Advantageous effects: Compared with the prior art, the advantages of the present invention are as follows: 1. By setting a semi-circular air duct, a debris opening, an inclined filter plate, a heating arc plate, a curved sieve plate and a discharge port, the highland barley grains are shunted into the semi-circular air duct, and the hot air attracts the light highland barley husks to the inclined filter plate for collection. At the same time, the elastic rebound assembly rebounds the highland barley, so that the attached highland barley husks are dried and separated. After the heavy highland barley grains are dried by the hot air, they fall to the lower air extraction area of the semi-circular air duct, and are screened for crushed grains by the curved sieve plate. The high-quality highland barley is discharged from the discharge port, effectively treating the water-containing highland barley husks and improving the purity and processing quality of the highland barley.

[0018] 2. By driving the central shaft and the striking arc plate to rotate by the driving motor, intermittent impact on the extrusion cross plate in the inner frame groove is realized, so that the transverse blocking cross plate slides to block or open the bifurcated discharge port, thereby intermittently controlling the input of highland barley and reducing the load of subsequent air separation and impurity removal in the semi-circular air duct.

[0019] 3. By setting a gas source generator, a semi-circular airbag and an air pipe, the gas source generator inflates the semi-circular airbag through the air pipe, making it bounce the highland barley grains, improving the impurity removal efficiency, promoting hot air drying and enhancing the purity of the highland barley. The wear-resistant layer enhances the durability of the airbag and extends the service life of the elastic rebound assembly.

[0020] 4. By setting up discharge ports, air extraction pumps, air pipes and air flow valves, effective air extraction from the upper and lower air extraction areas of the semi-circular air duct is achieved. The upper discharge port and the right-angled air pipe 1 are responsible for sucking the hulls in the upper air extraction area, and the lower discharge port and the right-angled air pipe 2 reduce the influence of rice dust in the lower air extraction area. The air flow valves control the intensity of both respectively to meet different air extraction requirements. Description of the Drawings

[0021] Figure 1 It is a three-dimensional structural schematic diagram of the present invention.

[0022] Figure 2 It is a schematic diagram of the internal structure of the box body of the present invention.

[0023] Figure 3 It is a schematic diagram of the internal structure of the base of the present invention.

[0024] Figure 4 It is a schematic diagram of the position structure of the semi-circular air duct of the present invention.

[0025] Figure 5 It is a schematic diagram of the internal structure of the feed hopper and the bifurcated discharge port of the present invention.

[0026] Figure 6 For the present invention Figure 5 Enlarged view at A.

[0027] Figure 7 It is a schematic diagram of the internal structure of the round-headed horizontal box of the present invention.

[0028] Figure 8 It is a schematic diagram of the position structure of the return spring of the present invention.

[0029] Figure 9 It is a schematic diagram of the air extraction assembly structure of the present invention.

[0030] Figure 10 It is a schematic diagram of the internal structure of the granule-breaking box of the present invention.

[0031] Figure 11 It is a schematic diagram of the position structure of the arc-shaped sieve plate of the present invention.

[0032] Figure 12 It is a schematic diagram of the elastic rebound assembly structure of the present invention.

[0033] Figure 13 It is a schematic diagram of the position structure of the inclined filter plate of the present invention.

[0034] Figure 14 It is a schematic diagram of the connection state of the double-headed air pipe of the present invention.

[0035] Figure 15 It is a side view of the inclined filter plate of the present invention.

[0036] The reference numerals in the figure are: 1, box body; 2, feed hopper; 3, bifurcated discharge port; 4, inlet particle assembly; 401, round-head horizontal box; 402, inner frame groove; 403, extrusion horizontal plate; 404, transverse resistance horizontal plate; 405, return spring; 406, central shaft; 407, impact arc plate; 408, drive motor; 5, semi-circular air duct; 6, elastic rebound assembly; 601, air source generator; 602, semi-circular airbag; 603, gas transmission pipe; 604, wear-resistant layer; 7, debris port; 8, inclined filter plate; 9, heating arc plate; 10, arc sieve plate; 11, discharge port; 12, air extraction assembly; 1201, transverse discharge port; 1202, air extraction pump; 1203, double-headed air pipe; 1204, right-angle air pipe 1; 1205, right-angle air pipe 2; 1206, air flow valve; 13, air-permeable filter hole; 14, impurity collection box; 15, crushed grain box; 16, partition plate; 17, partition chamber; 18, assembly plate; 19, air-permeable plate; 20, base; 21, aggregate hopper; 22, flour mill; 23, powder discharge port. Specific implementation manner

[0037] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention; obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0038] The embodiment of the present application provides a hulling and milling integrated machine for hulless barley, which solves the problem that during the hulling process of hulless barley that has undergone water absorption expansion and centrifugal dehydration, the residual water-containing hulless barley husks are difficult to screen and separate from the hulless barley kernels, affecting the purity and processing quality of hulless barley. During use, the semi-circular air duct 5, the elastic rebound assembly 6 and the air extraction assembly 12 are used to remove the hulless barley husks and impurities attached to the hulless barley husks contained in the hulless barley, improving the purity and processing quality of hulless barley.

[0039] The technical solutions in the embodiments of the present application are as follows to solve the above technical problems.

[0040] Example 1: Please refer to Figures 1 - 15, a hulless barley impurity removal and flour milling integrated machine, including a box body 1, and also including: a feed hopper 2, installed at the top of the box body 1; a bifurcated discharge port 3, installed at the bottom of the feed hopper 2; a grain inlet component 4, installed inside the bifurcated discharge port 3, used for diverting and discharging the piled hulless barley grains in batches; two semi-circular air ducts 5, respectively installed on the left and right sides inside the box body 1, and the upper middle parts of the outer ring walls of the two semi-circular air ducts 5 are respectively communicated with the left and right sides of the bifurcated discharge port 3; a bounce-back component 6, installed in the middle of the inner ring wall of the semi-circular air duct 5, used for contacting and bouncing the hulless barley grains first discharged into the semi-circular air duct 5; a debris port 7, installed at the top of the inner ring wall of the semi-circular air duct 5, and the inclination angle of the debris port 7 is set at 30-45 degrees; an inclined filter plate 8, installed in the middle of the debris port 7, and the top end of the inclined filter plate 8 is connected to the inner wall of the top of the outer ring wall of the semi-circular air duct 5; heating arc plates 9 are buried in the inner walls of the upper inner and outer ring walls of the semi-circular air duct 5, a curved sieve plate 10 is installed at the middle and lower part of the outer ring wall of the semi-circular air duct 5, a discharge port 11 is installed at the bottom end of the outer ring wall of the semi-circular air duct 5, and the discharge port 11 penetrates through the inner walls of the left and right sides at the bottom end of the box body 1; an air extraction component 12 is arranged on one side of the semi-circular air duct 5 facing outward, and the air extraction component 12 is communicated with both ends of the semi-circular air duct 5.

[0041] By setting the semi-circular air duct 5, the debris port 7, the inclined filter plate 8, the heating arc plate 9, the curved sieve plate 10 and the discharge port 11, the hulless barley grains are injected into the box body 1 through the feed hopper 2 (ramp plates are also installed on both sides inside the feed hopper 2, refer to Figure 5As shown, it can be matched with the round-headed horizontal box 401 in the particle-entering component 4 to form a highland barley input diversion path), and the forked discharge port 3 and the particle-entering component 4 are diverted and discharged in batches into the upper exhaust zone in the semi-annular air duct 5 on both sides. On the one hand, when the highland barley first enters the semi-annular air duct 5, the relatively light highland barley skin will be attracted by the hot air drying in the upper exhaust zone of the semi-annular air duct 5 (the hot air is heated by the heating arc plate 9, and the exhaust component 12 is used to extract hot air to form hot air attraction, and the attracted highland barley skin can be dried during the transportation process), and transported upward to the position of the inclined filter plate 8 for interception and collection. On the other hand, since the discharge port of the forked discharge port 3 faces the corresponding rebound component 6, the discharged highland barley will contact the rebound component 6, and the highland barley will rebound upward for a distance under the influence of the rebound component 6. During the rebound and rising process, the highland barley skin attached to the highland barley itself is subjected to a secondary hot air dehumidification. Separation and drying (wherein, the middle part of the semi-annular air duct 5 is the dividing line, the upper area of ​​the semi-annular air duct 5 is the upper air pumping area, and the lower area of ​​the semi-annular air duct 5 is the lower air pumping area, and the specific action length of the air pumping is also the dividing line with the middle part of the semi-annular air duct 5), and the highland barley grains with larger mass, on the one hand, are affected by the rebound component 6, and will be attracted by the hot air in the upper air pumping area. This process can improve the drying effect of the highland barley grains. On the other hand, due to their own large mass, they will fall into the lower air pumping area of ​​the semi-annular air duct 5, and be rolled and screened through the arc sieve plate 10 at the lower part of the semi-annular air duct 5, thereby screening out the broken highland barley grains, and better and higher quality highland barley grains will roll to the discharge port 11 for discharge. In summary, the problem of processing the residual water-containing highland barley skin after the highland barley that has been swelled by water absorption and centrifugal dehydration is shelled in the process of highland barley impurity removal is solved, thereby improving the purity and processing quality of highland barley.

[0042] For further information, see Figure 15 A number of air permeable filter holes 13 are arranged equidistantly in the upper middle part of the inclined filter plate 8, and the inner side of the inclined filter plate 8 is arranged in an arc surface. The air permeable filter holes 13 can make the ventilation effect of the inclined filter plate 8 more significant and smooth, and it is also convenient for the exhaust component 12 to perform exhaust operation on the upper exhaust area of ​​the semi-annular air duct 5. The arc surface setting of the inclined filter plate 8, on the one hand, increases the contact area between the attracted barley husk and the inclined filter plate 8, so that more impurities are trapped thereon. On the other hand, it helps to disperse the stress concentration of the inclined filter plate 8 when it is subjected to force, and reduce the risk of damage caused by excessive stress. Compared with the plane structure, the arc surface design can better absorb and disperse energy when impacted, thereby improving the impact resistance of the inclined filter plate 8.

[0043] For further information, see Figure 9, impurity collection boxes 14 are installed on the upper inner walls of the left and right sides of the box body 1. The top end of the impurity collection box 14 is communicated with the bottom end of the debris port 7. By setting the impurity collection box 14, when the inclined filter plate 8 needs to be cleaned, only the air extraction assembly 12 needs to be stopped, and the dried hulled barley husks on it will gradually fall into the impurity collection box 14 for collection. It should be noted that when the air extraction assembly 12 stops working, the feeding into the semi-circular air duct 5 also needs to be stopped to avoid corresponding problems.

[0044] Further, please refer to Figure 9 and Figure 10 , crushing boxes 15 are installed on the left and right sides of the middle part of the bottom end of the box body 1, and a plurality of partition plates 16 are installed in the crushing boxes 15. By setting the crushing boxes 15 and the partition plates 16, the system can effectively collect the crushed hulled barley grains screened by the arc-shaped sieve plate 10 by using the crushing boxes 15. The partitioning effect of the partition plates 16 in the internal space of the crushing boxes 15 forms a plurality of independent storage spaces. These spaces are not only used to temporarily store the fallen crushed hulled barley grains, but also can effectively prevent the crushed hulled barley grains from accumulating extensively during the falling process, thereby reducing the generation and flying of rice dust and avoiding polluting the internal space of the semi-circular air duct 5.

[0045] Further, please refer to Figure 3 , a base 20 and a collecting hopper 21 are respectively installed on the outer and middle parts of the bottom end of the box body 1. A flour mill 22 is installed on the bottom wall of the base 20, and the feeding port of the flour mill 22 is connected to the bottom end of the collecting hopper 21. A powder discharge port 23 is installed at the rear end of the flour mill 22, passing through the rear wall of the base 20 and extending to the outside. By setting the base 20, the collecting hopper 21, the flour mill 22 and the powder discharge port 23, the collecting hopper 21 can be used to centrally discharge the hulled barley grains in the two discharge ports 11 and convey them into the flour mill 22 for flour milling. After the flour milling is completed, the hulled barley flour is discharged through the powder discharge port 23 for collection and utilization.

[0046] Embodiment 2: Please refer to Figures 4 - 8 , the grain inlet assembly 4 includes: a round-headed horizontal box 401, which is of a hollow structure and is installed in the middle of the bifurcated discharge port 3; inner frame grooves 402, which are respectively installed on the left and right sides of the round-headed horizontal box 401; an extrusion horizontal plate 403, which is slidably installed in the middle of the inner frame groove 402, and a horizontal blocking horizontal plate 404 is installed at the outer end of the extrusion horizontal plate 403, and the horizontal blocking horizontal plate 404 also slides in the inner frame groove 402; a return spring 405, one end of which is connected to the front and rear parts of the outer end of the extrusion horizontal plate 403, and the other end is connected to the front and rear inner walls of the inner frame groove 402; a central shaft 406, which is arranged between the two inner frame grooves 402, and the central shaft 406 is rotatably installed in the middle of the round-headed horizontal box 401, and striking arc plates 407 are installed on the upper and lower parts of the central shaft 406; a driving motor 408, which is installed in the front middle of the bifurcated discharge port 3, and the output end of the driving motor 408 passes through the front wall of the bifurcated discharge port 3 and is fixedly connected to one end of the central shaft 406.

[0047] By setting the round-head horizontal box 401, inner frame groove 402, extrusion horizontal plate 403, horizontal resistance horizontal plate 404, return spring 405, central shaft 406, striking arc plate 407 and drive motor 408, the drive motor 408 is used to drive the connected central shaft 406 to rotate. The rotating central shaft 406 will drive the striking arc plate 407 installed on itself to rotate (the striking arc plate 407 rotates to the left and right positions), and synchronously impact and extrude the extrusion horizontal plates 403 in the inner frame grooves 402 on both sides, so that the extrusion horizontal plates 403 and the horizontal resistance horizontal plates 404 connected thereto slide stably in the inner frame grooves 402, and the horizontal resistance horizontal plates 404 will also move outwards to block the falling gaps on the left and right sides between the bifurcated discharge ports 3 and the round-head horizontal box 401, blocking the input of highland barley above. When the central shaft 406 drives the striking arc plate 407 to continue rotating (the striking arc plate 407 rotates to the upper and lower positions), the extrusion horizontal plate 403 is not under pressure and will reset through the return spring 405, so that the horizontal resistance horizontal plate 404 retracts into the inner frame groove 402, and the highland barley above can continue to be input. Through the above operations, the batch input of highland barley can be intermittently controlled, reducing the operation load for the subsequent air separation and impurity removal operation of the semi-circular air duct 5.

[0048] Further, please refer to Figure 9 、 Figure 11 and Figure 12 As shown in FIGS.

[0049] By setting the air source generator 601, semi-circular airbag 602, air delivery pipe 603 and wear-resistant layer 604, the air source generator 601 is used to inflate the semi-circular airbag 602 through the air delivery pipe 603. After the semi-circular airbag 602 contacts the discharged highland barley grains, an elastic effect is triggered, ensuring that the semi-circular airbag 602 can stably generate elastic force, realizing continuous elastic treatment of the highland barley grains, effectively improving the processing efficiency of highland barley impurity removal, and also helping the attachments and fine impurities on the surface of the highland barley grains to receive hot air drying and attraction, thereby improving the purity of the highland barley. In addition, the setting of the wear-resistant layer 604 significantly enhances the durability of the semi-circular airbag 602, reduces the wear during contact with the highland barley grains, and extends the service life of the elastic rebound component 6.

[0050] Further, please refer to Figure 5 and Figure 9, the lower part of the bifurcated discharge port 3 has obliquely arranged openings on both sides, and the opening directions face the positions of the corresponding semi-circular air bags 602. The opening directions of the bifurcated discharge port 3 are aligned with the corresponding semi-circular air bags 602, enhancing the contact efficiency between the falling hulled barley grains and the semi-circular air bags 602, enabling the hulled barley grains to impact the surface of the semi-circular air bags 602 more directly and evenly, enabling it to perform the bouncing operation more effectively, not only improving the processing efficiency of the hulled barley grains, but also ensuring the uniform force on the semi-circular air bags 602 and extending their service life.

[0051] Embodiment 3: Please refer to Figure 9 , Figure 11 and Figure 14 , the air extraction assembly 12 includes: a horizontal discharge port 1201, respectively installed at both ends of the semi-circular air duct 5, and a filter screen is installed inside it; an air extraction pump 1202, arranged on the outer side of the horizontal discharge port 1201, and a double-headed air pipe 1203 is installed at the air extraction port of the air extraction pump 1202; a right-angled air pipe one 1204, one end of which is connected to one of the connecting ends of the double-headed air pipe 1203, and the other end is connected to the outer end of the upper horizontal discharge port 1201; a right-angled air pipe two 1205, one end of which is connected to the other connecting end of the double-headed air pipe 1203, and the other end is connected to the outer end of the lower horizontal discharge port 1201; an air flow valve 1206, respectively installed in the middle of the right-angled air pipe one 1204 and the right-angled air pipe two 1205.

[0052] By setting the horizontal discharge port 1201, the air extraction pump 1202, the double-headed air pipe 1203, the right-angled air pipe one 1204, the right-angled air pipe two 1205 and the air flow valve 1206, effective air extraction of the upper and lower air extraction areas of the semi-circular air duct 5 in Embodiment 1 is achieved. Specifically, the upper horizontal discharge port 1201 cooperates with the right-angled air pipe one 1204 to be responsible for the air extraction operation of the upper air extraction area of the semi-circular air duct 5, while the lower horizontal discharge port 1201 cooperates with the right-angled air pipe two 1205 to be responsible for the air extraction operation of the lower air extraction area. These two groups of air pipes are both connected to the air extraction pump 1202 through the double-headed air pipe 1203 to achieve the air extraction function. At the same time, the air flow valve 1206 is used to respectively control the air extraction intensity of the right-angled air pipe one 1204 and the right-angled air pipe two 1205. Among them, the right-angled air pipe one 1204 is mainly responsible for sucking the hulls of the hulled barley grains in the upper air extraction area of the semi-circular air duct 5, while the right-angled air pipe two 1205 is mainly responsible for reducing the impact of the rice dust formed by the fall in the lower air extraction area, meeting the different air extraction requirements of the upper and lower areas of the semi-circular air duct 5. The filter screen of the horizontal discharge port 1201 needs to be replaced and cleaned regularly.

[0053] Furthermore, please refer to Figure 1 , Figure 2 , Figure 3 and Figure 9, partition chambers 17 are provided on both the left and right sides of the box body 1, and air extraction pumps 1202 are installed on the inner middle walls of the partition chambers 17 on the inward side. Assembly plates 18 are installed on the left and right parts of the front and back sides of the box body 1, and air permeable plates 19 are installed on the left and right parts of the assembly plates 18. By providing the partition chambers 17, the assembly plates 18 and the air permeable plates 19, the partition chambers 17 not only provide necessary installation space for the air extraction assembly 12, but also ensure the independence of the exhaust of the air extraction pumps 1202. At the same time, the air permeable plates 19 on the assembly plates 18 provide an internal and external air circulation channel for the partition chambers 17, promoting the air exchange between the inside of the partition chambers 17 and the external environment.

[0054] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features; and these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. A highland barley impurity removal and grinding machine, comprising a housing (1), characterized in that: Also includes: A feed hopper (2) mounted on the top of the box (1); A bifurcated discharge port (3) is installed at the bottom of the feed hopper (2); A particle inlet assembly (4) is installed inside the bifurcated discharge port (3) and is used to divert and discharge the accumulated highland barley particles in batches; Two semi-annular air ducts (5) are provided and are installed on the left and right sides of the interior of the box body (1), respectively; the upper middle parts of the outer annular walls of the two semi-annular air ducts (5) are respectively connected to the left and right sides of the bifurcated outlet (3); A rebound component (6) is installed in the middle of the inner ring wall of the semi-annular air duct (5) and is used to contact and rebound the highland barley particles discharged into the semi-annular air duct (5) for the first time; A debris opening (7) is installed at the top of the inner ring wall of the semi-annular air duct (5), and the debris opening (7) is set at an inclination angle of 30 to 45 degrees; An inclined filter plate (8) is installed in the middle of the debris outlet (7), and the top end of the inclined filter plate (8) is connected to the inner wall at the top of the outer ring wall of the semi-annular air duct (5); A heating arc plate (9) is embedded in the inner walls of the upper inner and outer ring walls of the semi-annular air duct (5); a curved screen plate (10) is installed in the middle and lower part of the outer ring wall of the semi-annular air duct (5); a discharge port (11) is installed at the bottom end of the outer ring wall of the semi-annular air duct (5); and the discharge port (11) passes through the inner walls on the left and right sides of the bottom end of the box body (1); An air extraction component (12) is provided on the outward side of the semi-annular air duct (5), and the air extraction component (12) is connected to both ends of the semi-annular air duct (5).

2. The highland barley impurity removal and grinding machine according to claim 1, characterized in that: The particle insertion component (4) comprises: A round head transverse box (401) is a hollow structure installed in the middle of the bifurcated outlet (3); The inner frame groove (402) is respectively installed on the left and right sides of the round head horizontal box (401); An extrusion transverse plate (403) is slidably mounted in the middle of the inner frame groove (402), and a transverse blocking transverse plate (404) is mounted on an outward end of the extrusion transverse plate (403), and the transverse blocking transverse plate (404) also slides in the inner frame groove (402); A return spring (405), one end of which is connected to the front and rear portions of the outward end of the extrusion horizontal plate (403), and the other end of which is connected to the front and rear portions of the inner wall of the inward end of the inner frame groove (402); A central shaft (406) is disposed between the two inner frame grooves (402), and the central shaft (406) is rotatably mounted in the middle of the round head horizontal box (401), and striking arc plates (407) are mounted on the upper and lower parts of the central shaft (406); The driving motor (408) is installed in the front middle part of the bifurcated outlet (3), and the output end of the driving motor (408) passes through the front wall of the bifurcated outlet (3) and is fixedly connected to one end of the central shaft (406).

3. The highland barley impurity removal and grinding machine according to claim 1, characterized in that: The repelling component (6) comprises: Two gas source generators (601) are provided and are respectively installed at the lower left and right sides of the inner wall of the box body (1); A semicircular air bag (602) is installed in the middle of the inner ring wall of the semicircular air duct (5); An air delivery pipe (603), one end of which is connected to the exhaust port of the air source generator (601), and the other end of which is connected to the outward side of the semicircular air bag (602); The wear-resistant layer (604) is arranged on the outer wall of the semicircular airbag (602).

4. The highland barley impurity removal and grinding machine according to claim 1, characterized in that: The openings on both sides of the lower part of the bifurcated outlet (3) are arranged obliquely, and the openings face the corresponding semicircular airbag (602) positions.

5. The highland barley impurity removal and grinding machine according to claim 1, characterized in that: A plurality of air permeable filter holes (13) are arranged at equal intervals in the upper middle portion of the inclined filter plate (8), and the inward side of the inclined filter plate (8) is arranged in the form of an arc surface.

6. The highland barley impurity removal and grinding machine according to claim 1, characterized in that: A debris collecting box (14) is installed on the upper inner walls of the left and right sides of the box body (1), and the top end of the debris collecting box (14) is connected to the bottom end of the debris opening (7).

7. The highland barley impurity removal and grinding machine according to claim 1, characterized in that: A crushed grain box (15) is installed on both the left and right sides of the middle portion of the bottom end of the box body (1), and a plurality of partition plates (16) are installed in the crushed grain box (15).

8. The highland barley impurity removal and grinding machine according to claim 1, characterized in that: The air extraction component (12) comprises: The transverse outlets (1201) are respectively installed at both ends of the semi-circular air duct (5), and a filter screen is installed inside the transverse outlets (1201); An air pump (1202) is arranged on the outward side of the transverse discharge port (1201), and a double-ended air pipe (1203) is installed at the air discharge port of the air pump (1202); A right-angle air pipe (1204), one end of which is connected to one of the connecting ends of the double-ended air pipe (1203), and the other end of which is connected to an outward end of the upper horizontal outlet (1201); A second right-angle air pipe (1205), one end of which is connected to the other connecting end of the double-ended air pipe (1203), and the other end of which is connected to the outward end of the lower horizontal outlet (1201); The air flow valve (1206) is respectively installed in the middle of the right-angle air pipe 1 (1204) and the right-angle air pipe 2 (1205).

9. The highland barley impurity removal and grinding machine according to claim 1, characterized in that: The box body (1) is provided with a partition cavity (17) on both the left and right sides, and an air pump (1202) is installed on the inner wall of the middle part of the inner side of the partition cavity (17). The box body (1) is provided with an assembly plate (18) on both the front and rear sides and the left and right parts, and an air permeable plate (19) is installed on both the left and right parts of the assembly plate (18).

10. The highland barley impurity removal and grinding machine according to claim 1, characterized in that: The bottom end and the middle of the box body (1) are respectively provided with a base (20) and a collecting hopper (21); the bottom wall of the base (20) is provided with a grinding mill (22); the feed inlet of the grinding mill (22) is connected to the bottom end of the collecting hopper (21); and the rear end of the grinding mill (22) is provided with a powder discharge port (23) which penetrates the rear wall of the base (20) and extends to the outside.

Citation Information

Patent Citations

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