A fiber filter device for ginger crushing

CN224644351UActive Publication Date: 2026-08-18SHANDONG JIANGJUN FOOD TECH CO LTD
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Patent Information

Application Number
CN202522177947.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-15
Publication Date
2026-08-18
Estimated Expiration
2035-10-15

AI Technical Summary

Technical Problem

[0004]本实用新型公开一种用于生姜粉碎的纤维过滤装置,旨在解决现有生姜粉碎过滤装置采用推板将纤维从带孔滤板转移至烘干区时,因纤维易附着在滤板上难以彻底清除,长期运行会导致纤维堆积,既污染过滤液又堵塞滤孔的技术问题

Benefits of technology

[0009] As can be seen from the above, the fiber filtration device for ginger crushing provided by this utility model has the effect of using two perforated filter plates in the drying and filtration conversion component to repeatedly switch between the ginger pressing area and the drying area, so that the ginger fiber is directly transferred to the drying area for drying. Moreover, the perforated filter plates in the ginger pressing area are dried and the ginger fiber is transferred in the drying area to ensure the cleanliness of the main body. This solves the problem that the traditional push plate cannot completely push all the fibers with moisture to the drying area, which may cause the residual fibers to accumulate and contaminate the filtrate while clogging the filter holes after long-term operation, thus improving the technical effect of improving work efficiency.

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Abstract

The utility model discloses a kind of for raw ginger crushing fiber filter device, it is related to raw ginger production and processing technical field, and it includes: machine bin, the opening inside of the lower end side of machine bin is slidably connected with liquid storage drawer, the inside of liquid storage drawer is provided with activated carbon filter plate.The utility model discloses a kind of for raw ginger crushing fiber filter device has the effect of repeatedly converting back and forth in raw ginger squeezing area and drying area using two filter plates with hole in drying filter conversion assembly, raw ginger fiber is directly transferred to drying area for drying under the action, and the filter plate with hole that conversion is transferred to raw ginger squeezing area is guaranteed the cleanness of body after drying and the transfer of raw ginger fiber in drying area, solve the situation that traditional push plate push cannot completely push all fiber with moisture to drying area, and cause long time work possibly lead to the fiber accumulation of residual, while plugging filter hole, filter liquid is polluted, improve work efficiency.
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Description

Technical Field

[0001] This utility model relates to the field of ginger production and processing technology, and in particular to a fiber filtration device for ginger crushing. Background Technology

[0002] Ginger is a common spice and medicinal plant. Its rhizome is widely used in cooking and traditional medicine, and has various effects such as anti-inflammatory, antioxidant, nausea relief and digestive promotion. The dietary fiber in ginger can help maintain intestinal health and improve bowel movements and digestive system function.

[0003] Existing fiber filtration devices for ginger pulverization typically use a pusher plate to directly push the filtered fibers from the perforated filter plate to the drying area when transferring them to the drying area. During this process, because the ginger fibers tend to adhere firmly to the perforated filter plate after being squeezed, the pusher plate alone cannot push all the moisture-laden fibers to the drying area. Prolonged operation may result in the accumulation of residual fibers, which can contaminate the filtrate and clog the filter holes. Utility Model Content

[0004] This utility model discloses a fiber filtration device for ginger pulverization, aiming to solve the technical problem that when existing ginger pulverization and filtration devices use a pusher plate to transfer fibers from a perforated filter plate to the drying zone, the fibers easily adhere to the filter plate and are difficult to remove completely. Long-term operation leads to fiber accumulation, which contaminates the filtrate and clogs the filter holes.

[0005] To achieve the above objectives, the present invention adopts the following technical solution: A fiber filtration device for grinding ginger, comprising: The machine compartment has a liquid storage pull-out box that is slidably connected inside the opening on one side of the lower end. The liquid storage pull-out box is equipped with an activated carbon filter plate. The area inside the machine compartment above the liquid storage pull-out box is the ginger pressing and filtering area. A dry fiber pull-out box is slidably connected inside the opening on one end of the outer wall of the machine compartment. The area inside the machine compartment above the dry fiber pull-out box is the drying area. The drying and filtration conversion assembly is located inside the machine compartment. It is used to transfer the ginger fiber that has been filtered out in the ginger pressing and filtering area to the drying area for drying.

[0006] In a preferred embodiment, the drying and filtration conversion assembly includes: The rotating rod is connected to the rotating holes that are opened opposite each other on the inner walls of both sides of the machine compartment via bearings; The conversion motor is fixedly connected to one side of the outer wall of the machine compartment, and the drive end of the conversion motor is connected to one end of the rotating rod through a coupling; Two ratchet sleeves are fixedly connected to the outer walls of both ends of the rotating rod located inside the machine compartment. The two downward-facing track plates are fixedly connected to the inner walls of the two sides of the cabin, and the two downward-facing track plates are located directly above the corresponding ratchet sleeve shafts. The two upward-facing track plates are fixedly connected to the inner walls of the two sides of the cabin, and are located directly below the corresponding ratchet sleeve shaft.

[0007] In a preferred embodiment, the drying and filtration conversion assembly further includes: The two downward-facing ratchet plates are slidably connected to the corresponding downward-facing track plates located inside one end of the ginger pressing and filtering area. The two downward-facing ratchet plates are respectively engaged with the corresponding ratchet sleeve shafts. The same perforated filter plate is fixedly connected to the opposite side of the two downward-facing ratchet plates. The two upward-facing ratchet plates are slidably connected to the corresponding upward-facing track plate inside one end of the drying area. The two upward-facing ratchet plates are respectively engaged with the corresponding ratchet sleeve shaft. The same perforated filter plate is fixedly connected to the opposite side of the two upward-facing ratchet plates. Support clamps are fixedly connected to two opposite sides of the lower track plate and two opposite sides of the upper track plate, respectively. The two support clamps are located on the same vertical line and are both within the ginger pressing and filtering area. One of the perforated filter plates in the ginger pressing and filtering area is engaged with one of the support clamps.

[0008] In a preferred embodiment, two dryers are equally spaced along one inner wall of the machine compartment. The two dryers are located on the same vertical line and both within the drying area. One dryer is positioned directly above one of the downward-facing track plates, and the other dryer is located between the corresponding downward-facing track plate and the corresponding upward-facing track plate. A rotating door is installed at the upper end of the machine compartment within the drying area. A pulverizing cylinder is fixedly connected to the upper outer wall of the machine compartment within the ginger pressing and filtering area. The interior of the pulverizing cylinder is connected to the interior of the machine compartment. A feed inlet is provided on the upper side of the pulverizing cylinder, and a pulverizing hole is also provided on the upper side. A pulverizing shaft is connected to the pulverizing hole via a bearing. Multiple pulverizing blades are equally spaced on the outer wall of the pulverizing shaft. A pulverizing... The drive end of the motor is connected to one end of the crushing shaft via a coupling. Multiple fixed blocks are fixedly connected at equal intervals on the upper side of the machine chamber. Rotation holes are opened on opposite sides of two opposing fixed blocks, and the same bidirectional lead screw is connected inside the two rotation holes via bearings. The same guide rail is fixedly connected to opposite sides of the other two opposing fixed blocks. The bidirectional lead screw and guide rail are located on opposite sides of the crushing cylinder. Two moving blocks are fitted onto the outer walls of the bidirectional lead screw and guide rail. Extrusion cylinders are installed on opposite sides of the multiple moving blocks. These extrusion cylinders slide within corresponding sliding slots on the upper side of the machine chamber. A pressing plate is fixedly connected to the telescopic end of every two opposing extrusion cylinders, and the two pressing plates are located inside the machine chamber.

[0009] As can be seen from the above, the fiber filtration device for ginger crushing provided by this utility model has the effect of using two perforated filter plates in the drying and filtration conversion component to repeatedly switch between the ginger pressing area and the drying area, so that the ginger fiber is directly transferred to the drying area for drying. Moreover, the perforated filter plates in the ginger pressing area are dried and the ginger fiber is transferred in the drying area to ensure the cleanliness of the main body. This solves the problem that the traditional push plate cannot completely push all the fibers with moisture to the drying area, which may cause the residual fibers to accumulate and contaminate the filtrate while clogging the filter holes after long-term operation, thus improving the technical effect of improving work efficiency. Attached Figure Description

[0010] Figure 1 This is a schematic diagram of the overall structure of a fiber filtration device for pulverizing ginger proposed in this utility model.

[0011] Figure 2 This is a schematic cross-sectional view of the internal structure of the grinding cylinder of a fiber filtration device for grinding ginger, as proposed in this utility model.

[0012] Figure 3 This is a schematic diagram of the internal structure of a fiber filtration device for pulverizing ginger proposed in this utility model.

[0013] Figure 4This is a schematic diagram of the overall structure of the drying and filtration conversion component of a fiber filtration device for ginger pulverization proposed in this utility model.

[0014] In the attached diagram: 1. Liquid storage pull-out box; 2. Activated carbon filter plate; 3. Machine compartment; 4. Crushing cylinder; 5. Crushing motor; 6. Rotating door; 7. Dryer; 8. Drying and filtration conversion assembly; 801. Lower facing track plate; 802. Upper facing ratchet plate; 803. Conversion motor; 804. Upper facing track plate; 805. Lower facing ratchet plate; 806. Support clamp plate; 807. Rotating rod; 808. Racket sleeve shaft; 809. Perforated filter plate; 9. Dry fiber pull-out box; 10. Fixing block; 11. Guide rail rod; 12. Moving block; 13. Pressing plate; 14. Crushing blade; 15. Drive motor; 16. Bidirectional lead screw; 17. Extrusion cylinder; 18. Crushing shaft. Detailed Implementation

[0015] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.

[0016] The fiber filtration device for ginger pulverization disclosed in this utility model is mainly applied to the scenario where existing ginger pulverization and filtration devices use a pusher plate to transfer fibers from a perforated filter plate to the drying zone. Because the fibers are easy to adhere to the filter plate and are difficult to remove completely, long-term operation will lead to fiber accumulation, which will both pollute the filtrate and clog the filter holes.

[0017] Reference Figures 1-3 A fiber filtration device for grinding ginger, comprising: The machine compartment 3 has a liquid storage pull-out box 1 that is slidably connected inside the opening on one side of the lower end of the machine compartment 3. The liquid storage pull-out box 1 is equipped with an activated carbon filter plate 2. The area inside the machine compartment 3 above the liquid storage pull-out box 1 is the ginger pressing and filtering area. The dry fiber pull-out box 9 is slidably connected inside the opening on one end of the outer wall of the machine compartment 3. The area inside the machine compartment 3 above the dry fiber pull-out box 9 is the drying area.

[0018] The drying and filtration conversion component 8 is located inside the machine compartment 3. The drying and filtration conversion component 8 is used to transfer the ginger fiber that has been filtered out in the ginger pressing and filtration area to the drying area for drying.

[0019] Reference Figure 1 , Figure 3 and Figure 4 In a preferred embodiment, the drying and filtration conversion assembly 8 includes: The rotating rod 807 is connected to the rotating holes on both sides of the inner wall of the machine compartment 3 via bearings; The conversion motor 803 is fixedly connected to one side of the outer wall of the machine compartment 3, and the drive end of the conversion motor 803 is connected to one end of the rotating rod 807 through a coupling.

[0020] Two ratchet sleeves 808 are fixedly connected to the outer walls of both ends of the rotating rod 807 located inside the machine compartment 3.

[0021] The two downward-facing track plates 801 are respectively fixedly connected to the inner walls of both sides of the machine compartment 3, and the two downward-facing track plates 801 are respectively located directly above the corresponding ratchet sleeve shaft 808. The two upward-facing track plates 804 are respectively fixedly connected to the inner walls of the two sides of the machine compartment 3, and the two upward-facing track plates 804 are respectively located directly below the corresponding ratchet sleeve shaft 808.

[0022] In this solution, the drying and filtration conversion component 8 also includes: Two downward-facing ratchet plates 805 are slidably connected to the corresponding downward-facing track plates 801 located inside one end of the ginger pressing and filtering area. The two downward-facing ratchet plates 805 are respectively engaged with the corresponding ratchet sleeve shafts 808. The same perforated filter plate 809 is fixedly connected to the opposite side of the two downward-facing ratchet plates 805.

[0023] The two upward-facing ratchet plates 802 are slidably connected to the corresponding upward-facing track plate 804 located inside one end of the drying area. The two upward-facing ratchet plates 802 are respectively engaged with the corresponding ratchet sleeve shaft 808. The same perforated filter plate 809 is fixedly connected to the opposite side of the two upward-facing ratchet plates 802.

[0024] Supporting clamps 806 are fixedly connected to the opposite side of two downward-facing track plates 801 and the opposite side of two upward-facing track plates 804 respectively. The two supporting clamps 806 are located on the same vertical line and are both within the ginger pressing and filtering area. One of the perforated filter plates 809 located in the ginger pressing and filtering area is engaged with one of the supporting clamps 806.

[0025] When filtering and drying ginger fibers, the conversion motor 803 drives the rotating rod 807 to rotate the two ratchet sleeve shafts 808. Since the two upper-facing ratchet plates 802 and the two lower-facing ratchet plates 805 are respectively engaged with the corresponding ratchet sleeve shafts 808, under the action of the two ratchet sleeve shafts 808, the perforated filter plate 809 containing ginger fibers moves to the drying area, while the other clean and tidy perforated filter plate 809 moves simultaneously to the ginger pressing and filtering area for the next pressing of ginger fibers. The perforated filter plate 809 containing ginger fibers is thoroughly dried by the two dryers 7.

[0026] Subsequently, staff members open the rotating door 6 to scrape the dried ginger fibers directly into the dry fiber pull-out box 9 for collection. At this time, the perforated filter plate 809 becomes dry and clean again, ready to repeat the next conversion. During this process, the two perforated filter plates 809 repeatedly switch back and forth between the ginger pressing area and the drying area, allowing the ginger fibers to be directly transferred to the drying area for drying. The perforated filter plate 809 in the ginger pressing area is kept clean after drying and the transfer of ginger fibers. This solves the problem that traditional push-plate pushers cannot completely push all the moisture-containing fibers to the drying area, which may cause residual fibers to accumulate and contaminate the filtrate while clogging the filter holes during long-term operation, thus improving work efficiency.

[0027] Reference Figures 1-3 In a preferred embodiment, two dryers 7 are equally spaced on one side inner wall of the machine compartment 3. The two dryers 7 are located on the same vertical line and are both located in the drying area. One dryer 7 is located directly above one of the lower-facing track plates 801, and the other dryer 7 is located between the corresponding lower-facing track plate 801 and the corresponding upper-facing track plate 804. A rotating door 6 is provided at the upper end of the drying area of ​​the machine compartment 3. A crushing cylinder 4 is fixedly connected to the upper outer wall of the machine compartment 3 in the ginger pressing and filtering area. The interior of the crushing cylinder 4 is connected to the interior of the machine compartment 3. A feed inlet is opened on the upper side of the crushing cylinder 4. A crushing hole is opened on the upper side of the crushing cylinder 4. A crushing shaft 18 is connected to the inside of the crushing hole through a bearing. Multiple crushing blades 14 are equally spaced on the outer wall of the crushing shaft 18. A crushing motor 5 is fixedly connected to the upper side of the crushing cylinder 4.

[0028] The drive end of the crushing motor 5 is connected to one end of the crushing shaft 18 via a coupling. Multiple fixing blocks 10 are fixedly connected at equal intervals on the upper side of the machine chamber 3. Rotation holes are opened on the opposite side of two opposing fixing blocks 10. The same bidirectional lead screw 16 is connected inside the two rotation holes via bearings. The same guide rail rod 11 is fixedly connected on the opposite side of the other two opposing fixing blocks 10. The bidirectional lead screw 16 and the guide rail rod 11 are located on both sides of the crushing cylinder 4.

[0029] Two moving blocks 12 are respectively fitted on the outer walls of the bidirectional lead screw 16 and the guide rail rod 11. Each of the multiple moving blocks 12 has a pressing cylinder 17 on its opposite side. The multiple pressing cylinders 17 slide in the corresponding sliding slots on the upper side of the machine chamber 3. Each pair of opposite pressing cylinders 17 has a pressing plate 13 fixedly connected to its telescopic end. The two pressing plates 13 are located inside the machine chamber 3.

[0030] When pressing ginger fiber, the drive motor 15 drives two sets of opposing moving blocks 12 to move closer to each other, thereby resetting the two pressing plates 13. Then, multiple extrusion cylinders 17 drive the corresponding pressing plates 13 to press and filter the ginger fiber, thereby improving the filtration efficiency of ginger fiber through external extrusion.

[0031] Working principle: First, ginger is put into the crushing cylinder 4 through the feed inlet. The crushing motor 5 drives the crushing shaft 18 to crush the ginger with multiple crushing blades 14. When crushing the ginger into fibers, the drive motor 15 drives two sets of opposing moving blocks 12 to move away from each other, thereby moving the two pressing plates 13 away from each other. This causes the ginger fibers to fall from the inside of the crushing cylinder 4 onto the perforated filter plate 809 located in the ginger pressing and filtering area. Then, the drive motor 15 drives the two sets of opposing moving blocks 12 to move closer to each other, thereby resetting the two pressing plates 13.

[0032] Subsequently, multiple extrusion cylinders 17 drive the corresponding pressing plates 13 to press and filter the ginger fiber. The filtration efficiency of the ginger fiber is improved by external pressure. The filtered juice first flows through the perforated filter plate 809 into the activated carbon filter plate 2 for secondary filtration and finally flows into the liquid storage box 1 for unified collection.

[0033] After this batch of ginger fiber is pressed, the conversion motor 803 drives the rotating rod 807 to rotate the two ratchet sleeve shafts 808. Since the two upper-facing ratchet plates 802 and the two lower-facing ratchet plates 805 are respectively engaged with the corresponding ratchet sleeve shafts 808, under the action of the two ratchet sleeve shafts 808, the perforated filter plate 809 containing ginger fiber moves to the drying area, while the other clean and tidy perforated filter plate 809 moves simultaneously to the ginger pressing and filtering area for the next pressing of ginger fiber. The perforated filter plate 809 containing ginger fiber is thoroughly dried by the two dryers 7.

[0034] Then, the staff opened the rotating door 6 and scraped the dried ginger fiber directly into the dry fiber pull-out box 9 for collection. At this time, the perforated filter plate 809 became dry and clean again, waiting to repeat the next conversion.

[0035] During this process, the ginger fibers are directly transferred to the drying area by the repeated switching between the ginger pressing area and the drying area by two perforated filter plates 809. The perforated filter plates 809 in the ginger pressing area are dried and the ginger fibers are transferred in the drying area to ensure the cleanliness of the filter body. This solves the problem that traditional push plates cannot push all the moisture-containing fibers to the drying area, which may cause residual fibers to accumulate and contaminate the filtrate and clog the filter holes during long-term operation, thus improving work efficiency.

[0036] The above description is merely a preferred embodiment of this utility model, but the protection scope of this utility model is not limited thereto. The substitutions may be replacements of some structures, devices, or method steps, or they may be complete technical solutions. Equivalent substitutions or modifications made based on the technical solution and inventive concept of this utility model should all be covered within the protection scope of this utility model.

Claims

1. A fiber filtration device for grinding ginger, characterized in that, include: The machine compartment (3) has a liquid storage pull box (1) slidably connected inside the opening on one side of the lower end of the machine compartment (3). An activated carbon filter plate (2) is installed inside the liquid storage pull box (1). The area inside the machine compartment (3) above the liquid storage pull box (1) is the ginger pressing and filtering area. A dry fiber pull box (9) is slidably connected inside the opening on one end of the outer wall of the machine compartment (3). The area inside the machine compartment (3) above the dry fiber pull box (9) is the drying area. The drying and filtration conversion assembly (8) is located inside the machine compartment (3). The drying and filtration conversion assembly (8) is used to transfer the ginger fiber from the ginger pressing and filtration area to the drying area for drying.

2. The fiber filtration device for pulverizing ginger according to claim 1, characterized in that, The drying and filtration conversion assembly (8) includes: The rotating rod (807) is connected to the rotating holes on both sides of the inner wall of the machine compartment (3) by bearings; The conversion motor (803) is fixedly connected to one side of the outer wall of the machine compartment (3), and the drive end of the conversion motor (803) is connected to one end of the rotating rod (807) through a coupling; Two ratchet sleeves (808) are fixedly connected to the outer walls of the two ends of the rotating rod (807) inside the machine compartment (3); The two downward-facing track plates (801) are respectively fixedly connected to the inner walls of the two sides of the machine compartment (3), and the two downward-facing track plates (801) are respectively located directly above the corresponding ratchet sleeve shaft (808); The two upper-facing track plates (804) are respectively fixedly connected to the inner walls of the two sides of the cabin (3), and the two upper-facing track plates (804) are respectively located directly below the corresponding ratchet sleeve shaft (808).

3. A fiber filtration device for pulverizing ginger according to claim 2, characterized in that, The drying and filtration conversion assembly (8) also includes: The two downward-facing ratchet plates (805) are slidably connected to the corresponding downward-facing track plate (801) located inside one end of the ginger pressing and filtering area. The two downward-facing ratchet plates (805) are respectively engaged with the corresponding ratchet sleeve shaft (808). The same perforated filter plate (809) is fixedly connected to the opposite side of the two downward-facing ratchet plates (805). The two upward-facing ratchet plates (802) are slidably connected to the corresponding upward-facing track plate (804) located inside one end of the drying area. The two upward-facing ratchet plates (802) are respectively engaged with the corresponding ratchet sleeve shaft (808). The same perforated filter plate (809) is fixedly connected to the opposite side of the two upward-facing ratchet plates (802). Support clamps (806) are fixedly connected to the opposite side of two downward-facing track plates (801) and the opposite side of two upward-facing track plates (804), respectively. The two support clamps (806) are located on the same vertical line and are both within the ginger pressing and filtering area. One of the perforated filter plates (809) located in the ginger pressing and filtering area is engaged with one of the support clamps (806).

4. A fiber filtration device for pulverizing ginger according to claim 3, characterized in that, Two dryers (7) are equally spaced on one side of the inner wall of the machine compartment (3). The two dryers (7) are located on the same vertical line and are both located in the drying area. One dryer (7) is located directly above one of the lower facing track plates (801), and the other dryer (7) is located between the corresponding lower facing track plate (801) and the corresponding upper facing track plate (804).

5. A fiber filtration device for pulverizing ginger according to claim 1, characterized in that, The machine compartment (3) is equipped with a rotating door (6) at the upper end of the drying area. The upper outer wall of the machine compartment (3) is fixedly connected to a crushing cylinder (4). The interior of the crushing cylinder (4) is connected to the interior of the machine compartment (3). The upper side of the crushing cylinder (4) is provided with a feed inlet.

6. A fiber filtration device for pulverizing ginger according to claim 5, characterized in that, The upper side of the crushing cylinder (4) is provided with a crushing hole, and a crushing shaft (18) is connected inside the crushing hole through a bearing. Multiple crushing blades (14) are arranged at equal intervals on the outer wall of the crushing shaft (18). A crushing motor (5) is fixedly connected to the upper side of the crushing cylinder (4), and the drive end of the crushing motor (5) is connected to one end of the crushing shaft (18) through a coupling.

7. A fiber filtration device for pulverizing ginger according to claim 6, characterized in that, The upper side of the machine compartment (3) is fixedly connected with multiple fixed blocks (10) at equal intervals. Two of the fixed blocks (10) have rotating holes on their opposite sides. The two rotating holes are connected to the same double-acting screw (16) through bearings. The other two fixed blocks (10) are fixedly connected to the same guide rail (11) on their opposite sides. The double-acting screw (16) and the guide rail (11) are located on both sides of the crushing cylinder (4). Two moving blocks (12) are respectively fitted on the outer walls of the double-acting screw (16) and the guide rail (11). Each of the multiple moving blocks (12) has a pressing cylinder (17) on its opposite side. The multiple pressing cylinders (17) slide in the sliding slots corresponding to the upper side of the machine compartment (3). The telescopic ends of each pair of pressing cylinders (17) are fixedly connected to a pressing plate (13). The two pressing plates (13) are located inside the machine compartment (3).