Radish rapid dehydration device and blank processing method
By designing a fast radish dehydration device, using a combination of extrusion, brine assisted and air-drying dehydration, the problem of high-salt pickling in the existing radish dehydration technology is solved, and the effect of efficient dehydration, environmental protection and cost reduction is achieved.
Patent Information
- Application Number
- CN202510657612.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-21
- Publication Date
- 2025-06-27
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing radish dehydration technology mainly relies on high-salt pickling, which leads to long pickling time and high salt content. Desalting treatment consumes a lot of water resources, which poses environmental pressure and high production costs.
A fast radish dehydration device is designed, including a collection extrusion assembly, a lift assembly and a jet assembly, which achieves efficient dehydration through a combination of extrusion, brine assisted and air-drying dehydration.
The device can efficiently dehydrate radishes, reduce moisture content, reduce production costs, avoid environmental problems caused by high-salt pickling, and extend the storage time of radishes.
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Figure CN120203251A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of food processing, and particularly relates to a rapid radish dehydration device and a blank processing method. Background Art
[0002] After radishes are harvested, they cannot be stored for a long time due to their high water content, and serious losses will occur during long-term storage. Generally, they need to be stored by pickling; traditional radish preservation mostly uses high-salt pickling, which has problems such as long pickling time and high salt content. Moreover, desalination treatment is required for subsequent product processing, which not only causes waste of water resources, but also faces huge environmental protection pressure for brine discharge, and at the same time raises the production cost of radish processing enterprises.
[0003] When dehydrating existing radishes, high-salt pickling is always used, and dehydration is carried out through high salt. A large amount of water resources are consumed for desalination treatment during subsequent processing.
[0004] Therefore, how to provide a rapid radish dehydration device and a blank processing method with high dehydration efficiency is an urgent problem to be solved by those skilled in the art. Summary of the Invention
[0005] The main object of the present invention is to provide a rapid radish dehydration device and a blank processing method to solve the above technical problems. The device is provided with a collection and extrusion assembly, a lifting assembly, and a jetting assembly. The collection and extrusion assembly can dehydrate radishes by extrusion. The lifting assembly can push the collection and extrusion assembly and the radishes inside into the water storage cavity, and assist in separating out moisture and removing the pungent substances of radishes through brine. At the same time, the jetting assembly can assist in air-drying dehydration. The mutual cooperation of the collection and extrusion assembly, the lifting assembly, and the jetting assembly ensures a higher dehydration effect on radishes.
[0006] To achieve the above object, the present invention adopts the following technical solutions: A rapid radish dehydration device includes a dehydration housing. A water storage cavity is arranged inside the dehydration housing. Sliding grooves are arranged on both sides corresponding to the water storage cavity. An inlet and an outlet are also arranged on the side of the water storage cavity. The top end inside the water storage cavity is slidably connected with a collection and extrusion assembly through the sliding grooves. A support plate is hinged to the side of the dehydration housing, and a support plate support assembly is arranged at the bottom end of the support plate. A jetting assembly is also connected inside the dehydration housing. Strip-shaped holes are arranged on both opposite sides of the dehydration housing in the vertical direction of the support plate. Lifting assemblies are arranged on the outer walls of both sides of the dehydration housing where the strip-shaped holes are located, and the lifting assemblies are connected to the collection and extrusion assembly through the strip-shaped holes.
[0007] Further, the jet component includes a pipeline connection cavity, branch pipelines, and a main pipeline. The top of the dehydration housing is connected to the pipeline connection cavity. A plurality of branch pipelines are arranged inside the water storage cavity. One end of each branch pipeline abuts against the bottom end of the water storage cavity. The other end of each branch pipeline penetrates through the extrusion driving component and the dehydration housing and extends into the pipeline connection cavity to be connected to the main pipeline. The end of the main pipeline away from the branch pipelines penetrates through the outer wall of the pipeline connection cavity and is connected to the outside. A plurality of air outlet holes are provided at the bottom ends of the branch pipelines.
[0008] Further, the collection and extrusion component includes an extrusion driving mechanism and a collection mechanism. The extrusion driving mechanism is fixed at the top of the collection mechanism. The extrusion driving mechanism includes an extrusion housing, a first lead screw, a driving housing, and an extrusion plate. An extrusion plate lifting driving component is arranged inside the driving housing. A first lead screw is arranged inside the extrusion housing. One end of the first lead screw penetrates through the driving housing and the extrusion housing and is fixedly connected to the extrusion plate.
[0009] Further, the extrusion plate lifting driving component includes a worm, a driving motor, an anti-rotation stopper, a bearing, and a worm gear. The part of the first lead screw located inside the driving housing is connected to the worm gear. An internal thread is provided at the connection hole at the center of the worm gear. Two anti-rotation stoppers are also sleeved on the part of the first lead screw located inside the driving housing. The two anti-rotation stoppers are respectively located at the upper and lower ends of the worm gear. The anti-rotation stopper abuts against the inner wall of the driving housing through the end away from the worm gear. Bearings are provided at the abutting positions of the anti-rotation stopper and the inner wall of the driving housing. The inner wall of the driving housing is also fixedly connected to a first driving motor. The output end of the first driving motor is connected to one end of the worm. The other end of the worm is rotatably connected to the inner wall of the driving housing. The worm and the worm gear mesh with each other.
[0010] Further, the collection mechanism includes a collection housing. The extrusion driving mechanism is fixedly connected to the top of the collection housing. A connection door is hingedly connected to one side of the collection housing. Connection ears are provided on both opposite sides of the collection housing in the vertical direction of the connection door. The connection ears are connected to the lifting component. A protrusion is provided on the outer wall of the collection housing and is slidably connected to the sliding groove inside the dehydration housing. A plurality of water outlet holes are provided at the bottom end of the collection housing.
[0011] Further, the lifting component includes a second driving motor, a first support plate, and a third lead screw. The first support plate is fixed on the outer wall of the dehydration housing. The second driving motor is fixedly connected to the top of the first support plate. The driving end of the second driving motor penetrates through the first support plate and is connected to one end of the third lead screw. The other end of the third lead screw is in threaded connection with the threaded hole provided on the connection ear.
[0012] Further, the pallet support assembly includes a first connecting slider, a telescopic unit, a second support plate, a third driving motor, a second lead screw, and a second connecting slider. A T-shaped chute is provided on one side of the pallet. The first connecting slider is slidably connected in the T-shaped chute. One end of the first connecting slider is hinged to one end of the telescopic unit. The end of the telescopic unit away from the first connecting slider is fixedly connected to the second connecting slider. The outer wall of the dehydration housing is fixedly connected to the second support plate. The second support plate is slidably connected to the second connecting slider through a sliding track. The second support plate is also fixedly connected with a third driving motor. The output end of the third driving motor is connected to one end of the second lead screw. The other end of the second lead screw passes through a threaded hole provided on the second connecting slider and is rotatably connected to the outer wall of the dehydration housing. The second connecting slider is threadedly connected to the second lead screw through the threaded hole.
[0013] A method for processing embryos of radishes for rapid dehydration includes the following steps: S1. Cut the radishes into slices or strips. After cutting, the radishes are treated with salt mixing. The salt mixing amount is 1% - 2%, and the radishes are pickled for 1h - 3h. S2. Dehydration treatment. Place the preliminarily pickled radishes into the collection housing. The collection housing is lowered to the bottom end of the water storage chamber through the lifting assembly. When lowering, the connecting door will be closed. Start the first driving motor. The first driving motor drives the first lead screw to lift by driving the operation of the worm gear and the worm, and realizes the dehydration of the radishes by lifting and squeezing the pressing plate. At the same time, the air outlet holes of the branch pipes can assist in discharging the water of the radishes, so that the water squeezed out by the radishes in each part of the collection housing can be quickly drained. S3. Sink in the water tank for treatment. Pour brine with a salt concentration of 4% - 5% through the water inlet, and ventilate through the main pipe. A large number of bubbles are generated at the air outlet holes of the branch pipes, so that the tumbling radishes can simultaneously achieve the effect of bubble cleaning, accelerate the balance between the radishes and the brine, precipitate water, and remove the pungent substances of the radishes.
[0014] S4. Place the radishes balanced in the brine into the collection housing and perform extrusion dehydration again.
[0015] S5. Hot air at 40 - 65°C is introduced into the main pipe for 30 - 100 minutes.
[0016] S6. The processed radishes are mixed with 1% table salt, 0.05% calcium chloride, and 0.05% sodium benzoate, packed in a vacuum bag, the air in the bag is squeezed out and sealed, and then stored in a warehouse.
[0017] Compared with the prior art, the present invention has the following beneficial effects: The present invention is provided with a collection and extrusion assembly, a lifting assembly, and a jet assembly. The collection and extrusion assembly can dehydrate radishes by extrusion. The lifting assembly can push the collection and extrusion assembly and the radishes inside into the water storage cavity, and assist in separating water and removing the pungent substances of the radishes through brine. At the same time, the jet assembly can assist in air-drying and dehydration. The mutual cooperation of the collection and extrusion assembly, the lifting assembly, and the jet assembly ensures a higher dehydration effect for the radishes. At the same time, the radishes after efficient dehydration can be stored for a longer time with low salt, and at the same time, a large amount of water resources can be avoided when desalting the radishes pickled with high salt. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are only the embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained according to the provided drawings.
[0019] Figure 1 It is a schematic side sectional structure diagram of the present invention.
[0020] Figure 2 It is a schematic side structure diagram of the present invention.
[0021] Figure 3 It is a schematic partial structure diagram of part A.
[0022] Among them, 1 - dehydration housing, 1.1 - strip-shaped hole, 2 - pipeline connection cavity, 3 - collection and extrusion assembly, 4 - collection mechanism, 4.1 - collection housing, 4.2 - connection door, 4.3 - connection ear, 5 - water storage cavity, 5.1 - sliding groove, 5.2 - water inlet, 5.3 - water outlet, 6 - branch pipeline, 7 - main pipeline, 8 - extrusion plate, 9 - extrusion drive mechanism, 10 - first lead screw, 11 - drive housing, 12 - worm, 13 - first drive motor, 14 - second lead screw, 15 - anti-rotation stopper, 16 - bearing, 17 - worm gear, 18 - second drive motor, 19 - first support plate, 20 - third lead screw, 21 - support plate, 22 - first connection slider, 23 - telescopic unit, 24 - second support plate, 25 - third drive motor, 26 - second connection slider. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0023] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the 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 belong to the scope of protection of the present invention.
[0024] As shown Figures 1 to 3 in the figure, the present invention provides a rapid dehydration device for radishes, including a dehydration housing 1. A water storage chamber 5 is arranged inside the dehydration housing 1. Sliding grooves 5.1 are arranged on both sides corresponding to the water storage chamber 5. An inlet 5.2 and an outlet 5.3 are also arranged on the side of the water storage chamber 5. A collection and extrusion assembly 3 is slidably connected to the top end inside the water storage chamber 5 through the sliding grooves 5.1. A support plate 21 is hinged to the side of the dehydration housing 1. A support assembly for the support plate is arranged at the bottom end of the support plate 21. An air jet assembly is also connected inside the dehydration housing 1. Strip-shaped holes 1.1 are arranged on both opposite sides of the dehydration housing 1 in the vertical direction of the support plate 21. Lifting assemblies are arranged on the outer walls of both sides of the dehydration housing 1 where the strip-shaped holes 1.1 are arranged. The lifting assemblies are connected to the collection and extrusion assembly 3 through the strip-shaped holes 1.1.
[0025] In this embodiment, the air jet assembly includes a pipeline connection chamber 2, branch pipelines 6, and a main pipeline 7. The pipeline connection chamber 2 is connected to the top end of the dehydration housing 1. A plurality of branch pipelines 6 are arranged inside the water storage chamber 5. One end of each branch pipeline 6 abuts against the bottom end of the water storage chamber 5. The other end of each branch pipeline 6 penetrates through the extrusion drive assembly 3 and the dehydration housing 1 and extends into the pipeline connection chamber 2 to be connected to the main pipeline 7. One end of the main pipeline 7 away from the branch pipelines 6 penetrates through the outer wall of the pipeline connection chamber 2 and is connected to the outside. A plurality of air outlet holes are arranged at the bottom ends of the branch pipelines 6. The branch pipelines 6 can be used for ventilation and can also assist in dehydration when squeezing radishes.
[0026] In this embodiment, the collection and extrusion assembly 3 includes an extrusion drive mechanism 9 and a collection mechanism 4. The extrusion drive mechanism 9 is fixed to the top end of the collection mechanism 4. The extrusion drive mechanism 9 includes an extrusion housing, a first lead screw 10, a drive housing 11, and an extrusion plate 8. An extrusion plate lifting drive assembly is arranged inside the drive housing 11. A first lead screw 10 is arranged inside the extrusion housing. One end of the first lead screw 10 penetrates through the drive housing 11 and the extrusion housing and is fixedly connected to the extrusion plate 8. The extrusion plate lifting drive assembly inside the extrusion housing can drive the first lead screw 10 to rotate, thereby driving the up and down movement of the extrusion plate 8 for extrusion or opening.
[0027] In this embodiment, the extrusion plate lifting drive assembly includes a worm 12, a drive motor 13, an anti-rotation stopper 15, a bearing 16, and a worm gear 17. A part of the first lead screw 10 located inside the drive housing 11 is connected to the worm gear 17. An internal thread is provided at the connection hole at the center of the worm gear 17. A part of the first lead screw 10 located inside the drive housing 11 is also sleeved with two anti-rotation stoppers 15. The two anti-rotation stoppers 15 are respectively located at the upper and lower ends of the worm gear 17. One end of the anti-rotation stopper 15 away from the worm gear 17 abuts against the inner wall of the drive housing 11. Bearings 16 are provided at the abutting positions of the anti-rotation stopper 15 and the inner wall of the drive housing 11. A first drive motor 13 is also fixedly connected to the inner wall of the drive housing 11. The output end of the first drive motor 13 is connected to one end of the worm 12. The other end of the worm 12 is rotatably connected to the inner wall of the drive housing 11. The worm 12 meshes with the worm gear 17. The anti-rotation stopper 15 and the bearing 16 can stably clamp the worm gear 17 at a certain fixed position of the first lead screw 10, and at the same time prevent the rotation of the worm gear 17 from affecting the whole.
[0028] In this embodiment, the collection mechanism 4 includes a collection housing 4.1. The top of the collection housing 4.1 is fixedly connected with an extrusion drive mechanism 9. One side of the collection housing 4.1 is hingedly connected with a connection door 4.2. Connection ears 4.3 are provided on both opposite sides of the collection housing 4.1 in the vertical direction of the connection door 4.2. The connection ears 4.3 are connected to the lifting assembly. A protrusion is provided on the outer wall of the collection housing 4.1 and is slidably connected to a sliding groove 5.1 inside the dehydration housing 1. Multiple water outlet holes are provided at the bottom end of the collection housing 4.1. When the opening angle of the connection door 4.2 is small, it is convenient to pour the radishes into the collection housing 4.1 obliquely along the connection door 4.2. When taking out the radishes, the radishes can be collected along the opened connection door 4.2, which is more convenient for the collection and placement of the radishes. And due to the cooperation of the support plate 21, the angle of the connection door 4.2 can be controlled. The connection ears 4.3 can cooperate with the lifting assembly to realize the overall lifting of the collection and extrusion assembly 3.
[0029] In this embodiment, the lifting assembly includes a second drive motor 18, a first support plate 19, and a third lead screw 20. The first support plate 19 is fixed on the outer wall of the dehydration housing 1. The top of the first support plate 19 is fixedly connected with a second drive motor 18. The drive end of the second drive motor 18 penetrates through the first support plate 19 and is connected to one end of the third lead screw 20. The other end of the third lead screw 20 is threadedly connected to a threaded hole provided on the connection ear 4.3. The second drive motor 18 can drive the third lead screw 20 to rotate and drive the collection mechanism 4 to move up and down along the third lead screw 20 through the connection ear 4.3. When the collection mechanism 4 moves up and down, it will drive the extrusion drive mechanism 9 to move up and down.
[0030] In this embodiment, the pallet support assembly includes a first connecting slider 22, a telescopic unit 23, a second support plate 24, a third driving motor 25, a second lead screw 14, and a second connecting slider 26. A T-shaped chute is provided on one side of the pallet 21. The first connecting slider 22 is slidably connected in the T-shaped chute. One end of the first connecting slider 22 is hinged to one end of the telescopic unit 23. The end of the telescopic unit 23 away from the first connecting slider 22 is fixedly connected to the second connecting slider 26. The outer wall of the dehydration housing 1 is fixedly connected with a second support plate 24. The second support plate 24 is slidably connected with the second connecting slider 26 through a sliding track. The second support plate 24 is also fixedly connected with a third driving motor 25. The output end of the third driving motor 25 is connected to one end of the second lead screw 14. The other end of the second lead screw 14 passes through a threaded hole provided on the second connecting slider 26 and is rotatably connected to the outer wall of the dehydration housing 1. The second connecting slider 26 is threadedly connected with the second lead screw 14 through the threaded hole; the pallet 21 is used to support the connecting door 4.2. Since the connecting door 4.2 is hinged to the collection housing 4.1 and the connecting door 4.2 can be opened at an angle greater than 90°, the pallet 21 can ensure the overall angle of the connecting door 4.2 and facilitate the subsequent closing of the connecting door; the telescopic unit 23 can be a cylinder or a hydraulic cylinder. Specifically, a cylinder is used in this embodiment; the first connecting slider 22 can move along the T-shaped chute. The second connecting slider 26 can drive the telescopic unit 23 to move horizontally under the cooperation of the third driving motor 25, the slide rail, and the second lead screw 14; the second connecting slider 26 and the first connecting slider 22 can drive the pallet 21 to rotate along the hinge, controlling the overall angle of the pallet 21 and the connecting door 4.2.
[0031] A method for processing embryos of radishes for rapid dehydration includes the following steps: S1. Cut the radishes into pieces or strips. After cutting, the radishes are mixed with salt. The amount of salt mixed is 1% - 2%, and the radishes are pickled for 1h - 3h; S2. Dehydration treatment. First, open the connecting door 4.2 and place the initially pickled radishes into the collection housing 4.1. The collection housing 4.1 is lowered to the bottom end of the water storage chamber 5 along the strip-shaped hole 1.1 through the lifting assembly. When lowering, the connecting door 4.2 will be closed. Start the first driving motor 13. The first driving motor 13 drives the first lead screw 10 to lift by driving the operation of the worm gear 17 and the worm 12, so that the pressing plate 8 lifts to squeeze the radishes to achieve dehydration of the radishes. At the same time, the air outlet holes of the branch pipe 6 can assist in discharging the water of the radishes. The water will not be blocked due to excessive squeezing of the radishes, and the water in the middle can be smoothly squeezed out, enabling the water squeezed out by the radishes in each part of the collection housing 4.1 to be quickly drained, and 40% of the water can be dehydrated; S3. Sink treatment: Pour brine with a salt concentration of 4% - 5% through the water inlet 5.2, and at the same time, ventilate through the main pipeline 7. A large number of bubbles are generated at the air outlet of the branch pipeline 6, enabling the tumbling radishes to achieve the effect of bubble cleaning, accelerating the balance between the radishes and the brine, separating out moisture, and removing pungent substances from the radishes.
[0032] S4. Place the radishes that have been balanced in the brine into the collection housing 4.1 and squeeze them again to dehydrate. 50% - 60% of the moisture can be removed, so that the total moisture content of the radishes is removed by 70% - 80%. The radishes with 75% of the moisture removed have the best crispness after storage.
[0033] S5. Pass hot air at 40 - 65 °C through the main pipeline 7 for 30 - 100 minutes. This can not only dry the moisture on the surface of the radishes, remove the unpleasant pungent taste, but also generate the aroma of the radishes.
[0034] S6. Mix the processed radishes with 1% salt, 0.05% calcium chloride, and 0.05% sodium benzoate, pack them in a vacuum bag, squeeze out the air in the bag, seal it, and store it in a warehouse at a temperature below 12 °C.
[0035] In this specification, each embodiment is described in a progressive manner. The key point of each embodiment is to illustrate the differences from other embodiments. For the same or similar parts among the embodiments, reference can be made to each other. For the device disclosed in the embodiments, since it corresponds to the method disclosed in the embodiments, the description is relatively simple, and reference can be made to the description of the method part for related parts.
[0036] The above description of the disclosed embodiments enables those skilled in the art to implement or use the present invention. Various modifications to these embodiments will be obvious to those skilled in the art. The general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention will not be limited to these embodiments shown herein, but rather to the broadest scope consistent with the principles and novel features disclosed herein.
Claims
1. A radish rapid dehydration device, characterized in that: The invention comprises a dehydration shell (1), wherein a water storage chamber (5) is arranged inside the dehydration shell (1), and sliding grooves (5.1) are arranged on the corresponding two sides of the water storage chamber (5), and a water inlet (5.2) and a water outlet (5.3) are also arranged on the side of the water storage chamber (5), and a collecting and squeezing assembly (3) is slidably connected to the top of the water storage chamber (5) through the sliding groove (5.1), a supporting plate (21) is hingedly connected to the side of the dehydration shell (1), and a supporting plate supporting assembly is arranged at the bottom of the supporting plate (21), and an air injection assembly is also connected inside the dehydration shell (1), and strip holes (1.1) are arranged on the opposite sides of the dehydration shell (1) in the vertical direction of the supporting plate (21), and lifting assemblies are arranged on the outer walls of the two sides of the dehydration shell (1) where the strip holes (1.1) are arranged, and the lifting assembly is connected to the collecting and squeezing assembly (3) through the strip holes (1.1).
2. A radish rapid dehydration device according to claim 1, characterized in that: The jet assembly comprises a pipe connection chamber (2), a branch pipe (6) and a main pipe (7); the top of the dehydration shell (1) is connected to the pipe connection chamber (2); a plurality of branch pipes (6) are arranged inside the water storage chamber (5); one end of the branch pipe (6) abuts against the bottom of the water storage chamber (5); the other end of the branch pipe (6) penetrates the extrusion drive assembly (3) and the dehydration shell (1) to extend into the pipe connection chamber (2) and to be connected to the main pipe (7); one end of the main pipe (7) away from the branch pipe (6) penetrates the outer wall of the pipe connection chamber (2) and is connected to the outside; and a plurality of air outlets are arranged at the bottom of each of the branch pipes (6).
3. The radish rapid dehydration device according to claim 1, characterized in that: The collecting and extruding assembly (3) comprises an extruding drive mechanism (9) and a collecting mechanism (4); the extruding drive mechanism (9) is fixed to the top of the collecting mechanism (4); the extruding drive mechanism (9) comprises an extruding housing, a first screw rod (10), a driving housing (11) and an extruding plate (8); an extruding plate lifting drive assembly is arranged in the driving housing (11); a first screw rod (10) is arranged in the extruding housing; one end of the first screw rod (10) passes through the driving housing (11) and the extruding housing is fixedly connected to the extruding plate (8).
4. A radish rapid dehydration device according to claim 3, characterized in that: The extrusion plate lifting drive assembly comprises a worm (12), a drive motor (13), an anti-rotation block (15), a bearing (16) and a worm wheel (17); the portion of the first screw (10) located in the drive housing (11) is connected to the worm wheel (17); an internal thread is provided at a connecting hole at the axis of the worm wheel (17); the portion of the first screw (10) located in the drive housing (11) is also sleeved with two anti-rotation blocks (15); the two anti-rotation blocks (15) are respectively located at the upper and lower ends of the worm wheel (17); The anti-rotation block (15) abuts against the inner wall of the drive housing (11) through one end away from the worm wheel (17); a bearing (16) is provided at the abutment point between the anti-rotation block (15) and the inner wall of the drive housing (11); a first drive motor (13) is also fixedly connected to the inner wall of the drive housing (11); an output end of the first drive motor (13) is connected to one end of the worm (12); the other end of the worm (12) is rotatably connected to the inner wall of the drive housing (11); and the worm (12) and the worm wheel (17) are meshed with each other.
5. The radish rapid dehydration device according to claim 3, characterized in that: The collecting mechanism (4) comprises a collecting shell (4.1), the top of the collecting shell (4.1) being fixedly connected to a squeezing driving mechanism (9), one side of the collecting shell (4.1) being hingedly connected to a connecting door (4.2), connecting ears (4.3) being provided on opposite sides of the collecting shell (4.1) in a vertical direction in which the connecting door (4.2) is provided, the connecting ears (4.3) being connected to a lifting assembly, a protrusion being provided on an outer wall of the collecting shell (4.1) being slidably connected to a sliding groove (5.1) inside the dehydrating shell (1), and a plurality of water outlet holes being provided at the bottom of the collecting shell (4.1).
6. The radish rapid dehydration device according to claim 5, characterized in that: The lifting assembly comprises a second drive motor (18), a first support plate (19) and a third screw rod (20); the first support plate (19) is fixed to the outer wall of the dehydration shell (1); the top end of the first support plate (19) is fixedly connected to the second drive motor (18); the driving end of the second drive motor (18) passes through the first support plate (19) and is connected to one end of the third screw rod (20); the other end of the third screw rod (20) is threadedly connected to a threaded hole provided on the connecting ear (4.3).
7. The radish rapid dehydration device according to claim 1, characterized in that: The support plate support assembly comprises a first connecting slider (22), a telescopic unit (23), a second support plate (24), a third drive motor (25), a second screw rod (14) and a second connecting slider (26); a T-shaped slide groove is provided on one side of the support plate (21); the first connecting slider (22) is slidably connected in the T-shaped slide groove; the first connecting slider (22) is hinged to one end of the telescopic unit (23); an end of the telescopic unit (23) away from the first connecting slider (22) is fixedly connected to the second connecting slider (26); the dehydration housing (1 ) is fixedly connected to the outer wall of the dehydration housing (1); the second support plate (24) is slidably connected to the second connecting slider (26) via a sliding track; the second support plate (24) is also fixedly connected to a third drive motor (25); the output end of the third drive motor (25) is connected to one end of the second screw rod (14); the other end of the second screw rod (14) passes through a threaded hole provided on the second connecting slider (26) and is rotatably connected to the outer wall of the dehydration housing (1); the second connecting slider (26) is threadedly connected to the second screw rod (14) via the threaded hole.
8. A method for processing radish embryos by rapid dehydration, implemented by using the dehydration device according to any one of claims 1 to 7, characterized in that: The steps include: S1, cutting the radish into pieces or strips, mixing the cut radish with salt, the amount of salt mixing is 1% to 2%, and pickling the radish for 1 hour to 3 hours; S2, dehydration treatment, placing the initially pickled radish in the collection shell (4.1), lowering the collection shell (4.1) to the bottom of the water storage chamber (5) via the lifting assembly, closing the connecting door (4.2) during the lowering, starting the first drive motor (13), driving the first screw (10) to move up and down by driving the worm wheel (17) and the worm (12), and dehydrating the radish by lifting and squeezing the squeezing plate (8), while the air outlet of the branch pipe (6) can assist in draining the moisture of the radish, so that the radish in each part of the collection shell (4.1) can quickly drain the squeezed moisture; S3, immersion tank treatment, pouring salt water with a salt concentration of 4%-5% through the water inlet (5.2), ventilating through the main pipe (7), and generating a large number of bubbles at the air outlet of the branch pipe (6), so that the radish can be turned over and the bubble cleaning effect can be achieved at the same time, accelerating the balance between the radish and the salt water, precipitating water and removing the spicy substances of the radish; S4, placing the radish balanced in the salt water in the collecting shell (4.1) for squeezing and dehydrating again; S5, hot air at 40 to 65°C is introduced into the main pipeline (7) for 30 to 100 minutes; S6, the processed radish is mixed with 1% salt, 0.05% calcium chloride and 0.05% sodium benzoate, packed in a vacuum bag, the air in the bag is squeezed out, sealed and stored in a warehouse.