Automatic feeding and discharging cleaning device for dehydrated vegetables
Patent Information
- Application Number
- CN202611097131.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-07-23
- Publication Date
- 2026-08-21
AI Technical Summary
[0003]现有清洗装置在工作时,清洗仓通常保持固定姿态,仅依靠单一方向的水流或搅拌叶片对蔬菜进行冲刷,这种静态或准静态的清洗方式使得仓内不同区域的蔬菜受洗程度差异较大,位于中心或底部的物料难以获得充分的水力冲击,而靠近出水口或搅拌源的物料则可能因过度冲刷而破损,导致整体清洗效果不稳定
[0015](1)、本申请通过电动推杆带动插板与螺纹滑块的插槽插接,配合螺纹转杆驱动摩擦轮转动,可使清洗仓在万向轴支撑下沿波浪形板产生规律性摇摆倾斜,实现清洗仓内水流的多角度动态翻滚,有效避免清洗死角,显著提升水流对脱水蔬菜表面的全面冲刷效果。
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Figure CN122604087A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of dehydrated vegetable processing technology, specifically relating to an automatic loading and unloading cleaning device for dehydrated vegetables. Background Technology
[0002] In the processing of dehydrated vegetables, washing is a crucial pretreatment step to remove dirt, impurities, and some microorganisms from the surface of the vegetables. Currently, the washing equipment commonly used in the industry is mostly fixed washing chambers or drum washing machines, whose working principle mainly relies on soaking, water rinsing, or mechanical agitation.
[0003] When existing cleaning devices are in operation, the cleaning chamber usually remains in a fixed position, relying solely on a single-direction water flow or stirring blades to rinse the vegetables. This static or quasi-static cleaning method results in significant differences in the degree of washing of vegetables in different areas of the chamber. Materials located in the center or at the bottom cannot receive sufficient water impact, while materials near the water outlet or stirring source may be damaged due to excessive rinsing, leading to unstable overall cleaning results. Summary of the Invention
[0004] To address the shortcomings of existing technologies, this invention provides an automatic loading and unloading cleaning device for dehydrated vegetables, which solves the problems mentioned in the background section.
[0005] To achieve the above objectives, the present invention provides an automatic loading and unloading cleaning device for dehydrated vegetables, including a base, an L-shaped bracket fixed on one side of the upper surface of the base, and sliding grooves provided in both the horizontal and vertical parts of the L-shaped bracket. A horizontal driver is installed in the sliding groove of the horizontal part of the L-shaped bracket, and an electric push rod is installed on the side of the horizontal driver. A hollow electric gripper is installed at the moving end of the electric push rod. A cleaning assembly is fitted to the middle of the upper surface of the base and the vertical part of the L-shaped bracket. The cleaning assembly includes a threaded rotating rod that passes through and is rotatably connected in the groove of the vertical part of the L-shaped bracket, a universal shaft fixed in the middle of the upper surface of the base, a vertical bracket and three telescopic brackets fixed in the upper surface of the base, and an insert plate fixed to the side of the moving end of the electric push rod. A threaded slider is slidably connected in the groove of the vertical part of the L-shaped bracket. The threaded slider is threadedly connected to the threaded rotating rod. A slot adapted to the insert plate is opened on the left side of the threaded slider. A friction wheel is fixed at the bottom of the threaded rotating rod. A cleaning chamber is fitted at the top of the universal shaft. A corrugated plate is fixed at the bottom of the cleaning chamber. An irregularly shaped rubber block is fixed on the side of the cleaning chamber. This application uses an electric push rod to drive the insert plate to engage with the slot of the threaded slider, and in conjunction with the threaded rotating rod to drive the friction wheel to rotate, the cleaning chamber can be regularly swayed and tilted along the corrugated plate under the support of the universal shaft, realizing the multi-angle dynamic tumbling of the water flow in the cleaning chamber, effectively avoiding cleaning dead corners, and significantly improving the overall rinsing effect of the water flow on the surface of dehydrated vegetables.
[0006] Preferably, the top ends of the vertical support and the three telescopic supports are rotatably connected with ball bearings. The ball bearings at the top end of the vertical support are attached to the concave part of the corrugated plate, and the ball bearings at the top ends of the three telescopic supports are attached to the concave part of the corrugated plate. The vertical support and the three telescopic supports are arranged in a ring.
[0007] Preferably, the irregularly shaped rubber block is composed of two irregularly shaped ring structures, the lower half of the irregularly shaped rubber block is a half-small ring structure, and the upper half of the irregularly shaped rubber block is a half-large ring structure, and the connection points are mutually compatible.
[0008] Preferably, in the initial state, the lower half of the irregularly shaped rubber block of the cleaning chamber is in contact with the friction wheel, and in the tilted state, the upper half of the irregularly shaped rubber block is in contact with the friction wheel.
[0009] Preferably, the cleaning chamber is equipped with a flow guiding component for changing the direction of water flow.
[0010] Preferably, the flow guiding assembly includes four annularly arranged flow guiding plates fixed to the inner wall of the washing chamber and a multi-directional hollow chamber fixed to the bottom of the inner wall of the washing chamber. The multi-directional hollow chamber has eight cavities, each with a T-shaped rod that passes through and is slidably connected to it. A fan-shaped flow guiding block is fixed to the end of each T-shaped rod. A spring is fitted between each T-shaped rod and the inner wall of the cavity of the multi-directional hollow chamber. A metal ball is fitted into each cavity of the multi-directional hollow chamber. This application provides a corrugated plate and a telescopic bracket at the bottom of the washing chamber, so that when the washing chamber tilts, the contact position between the irregularly shaped rubber block and the friction wheel changes synchronously. Under the action of inertia and gravity, the metal ball moves, thereby driving the fan-shaped flow guiding blocks in the multi-directional hollow chamber to extend sequentially, guiding the water flow to be sprayed directionally along the convex direction of the corrugated plate, achieving differentiated hydraulic impact on dehydrated vegetables in different areas and improving the overall washing uniformity.
[0011] Preferably, the direction of each fan-shaped guide block in the multi-directional hollow chamber corresponds to the protruding part of the corrugated plate.
[0012] Preferably, the top of the inner wall of the cleaning chamber is equipped with a centrifugal shielding component to reduce splashing of cleaning water.
[0013] Preferably, the centrifugal shielding assembly includes an annular chamber with an annular groove inside. Multiple partition plates are fixed within the annular groove, and a baffle is rotatably connected between every two partition plates. A horizontal plate is fixed to one side of each baffle within the annular groove, and an elastic bladder is fixed between each horizontal plate and its adjacent partition plate. This application assembles a centrifugal shielding assembly at the top of the inner wall of the cleaning chamber. When the cleaning chamber rotates and oscillates, the baffle automatically adjusts its opening and closing angle under the combined action of centrifugal force and the elastic bladder, effectively intercepting and guiding splashing water while reducing the diffusion of external water mist. This improves the working environment and avoids excessive waste of water resources, meeting energy conservation and environmental protection requirements.
[0014] The advantages of this application are:
[0015] (1) This application uses an electric push rod to drive the insert plate to be inserted into the slot of the threaded slider, and the threaded rotating rod drives the friction wheel to rotate. This allows the cleaning chamber to swing and tilt regularly along the wave-shaped plate under the support of the universal shaft, realizing the multi-angle dynamic tumbling of the water flow in the cleaning chamber, effectively avoiding cleaning dead corners, and significantly improving the overall rinsing effect of the water flow on the surface of dehydrated vegetables.
[0016] (2) The application sets a corrugated plate and a telescopic bracket at the bottom of the cleaning chamber, so that when the cleaning chamber is tilted, the position of the irregular rubber block and the friction wheel changes synchronously. Then, under the action of inertia and gravity, the metal ball moves, thereby driving the fan-shaped guide block in the multi-directional hollow chamber to extend in sequence, guiding the water flow to spray in the direction of the corrugated plate, realizing differentiated hydraulic impact on dehydrated vegetables in different areas, and improving the overall cleaning uniformity.
[0017] (3) This application equips the top of the inner wall of the cleaning chamber with a centrifugal shielding component. When the cleaning chamber rotates and swings, the baffle automatically adjusts the opening and closing angle under the cooperation of centrifugal force and elastic bladder, effectively intercepting and guiding the splashing water flow, while reducing the diffusion of external water mist. This not only improves the working environment, but also avoids excessive waste of water resources, which meets the requirements of energy conservation and environmental protection. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0019] Figure 2 This is a schematic diagram of the cleaning component structure of the present invention;
[0020] Figure 3 This is a two-dimensional planar schematic diagram of the present invention;
[0021] Figure 4 This is a cross-sectional schematic diagram of a portion of the structure of the present invention;
[0022] Figure 5 This is a schematic diagram of the flow guiding component structure of the present invention;
[0023] Figure 6 This is the invention Figure 5 Enlarged view of point A in the middle;
[0024] Figure 7 This is a schematic diagram of the centrifugal shielding component structure of the present invention;
[0025] Figure 8 This is the invention Figure 7 Enlarged view of section B in the middle.
[0026] Explanation of key figure labels:
[0027] 100. Base; 200. L-shaped bracket; 300. Slide groove; 400. Lateral actuator; 500. Electric push rod; 600. Hollow-out electric gripper;
[0028] 700. Cleaning assembly; 701. Cleaning chamber; 702. Threaded rotating rod; 703. Universal joint; 704. Vertical support; 705. Telescopic support; 706. Insert plate; 707. Friction wheel; 708. Threaded slider; 709. Irregularly shaped rubber block; 710. Corrugated plate; 711. Ball bearing;
[0029] 800. Flow guide assembly; 801. Flow guide plate; 802. Multi-directional hollow chamber; 803. Cavity; 804. T-shaped rod; 805. Spring; 806. Fan-shaped flow guide block; 807. Metal ball;
[0030] 900, Centrifugal shielding assembly; 901, Annular chamber; 902, Annular groove; 903, Divider plate; 904, Baffle plate; 905, Horizontal plate; 906, Elastic capsule. Detailed Implementation
[0031] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are merely some, not all, of the embodiments of the present application. All other embodiments obtained by those skilled in the art based on the embodiments of the present application without creative effort should fall within the scope of protection of the present application.
[0032] Example 1, as Figures 1-3 As shown, an automatic loading and unloading cleaning device for dehydrated vegetables includes a base 100. An L-shaped bracket 200 is fixed on one side of the upper surface of the base 100. The horizontal and vertical parts of the L-shaped bracket 200 are provided with sliding grooves 300. A horizontal driver 400 is installed in the sliding groove 300 of the horizontal part of the L-shaped bracket 200. An electric push rod 500 is installed on the side of the horizontal driver 400. A hollow electric gripper 600 is installed at the moving end of the electric push rod 500.A cleaning assembly 700 is assembled on the middle of the upper surface of the base 100 and the vertical part of the L-shaped bracket 200. The cleaning assembly 700 includes a threaded rotating rod 702 that passes through and is rotatably connected in the slide groove 300 of the vertical part of the L-shaped bracket 200, a universal shaft 703 fixed in the middle of the upper surface of the base 100, a vertical bracket 704 and three telescopic brackets 705 fixed in the upper surface of the base 100, and an insert plate 706 fixed to the side of the moving end of the electric push rod 500. A threaded slider 708 is slidably connected in the slide groove 300 of the vertical part of the L-shaped bracket 200. The threaded slider 708 is threadedly connected to the threaded rotating rod 702. A slot adapted to the insert plate 706 is provided on the left side of the threaded slider 708. When the insert plate 706 and the threaded slider 708 are connected, the screw 708 is slidably connected in the slide groove 300 of the vertical part of the L-shaped bracket 200. After the slot 8 is fully inserted, the electric push rod 500 starts again, and its moving end extends downward, ready to send the hollow electric gripper 600 and the vegetables it holds into the cleaning chamber 701. Simultaneously, due to the insertion of the insert plate 706 and the threaded slider 708, the moving end of the electric push rod 500 drives the threaded slider 708 to slide downward along the groove 300 of the vertical part of the L-shaped bracket 200. A friction wheel 707 is fixed to the bottom of the threaded rotating rod 702. As the threaded slider 708 moves downward, it forces the friction wheel 707 to rotate. The cleaning chamber 701 is mounted at the top of the universal joint 703, and a corrugated plate 710 is fixed to the bottom of the cleaning chamber 701. The tops of the vertical bracket 704 and the three telescopic brackets 705 are all rotatably connected. The vertical support 704 has ball bearings 711 attached to its top. The ball bearings 711 at the top of the vertical support 704 are fitted into the concave portion of the corrugated plate 710. The ball bearings 711 at the top of the three telescopic supports 705 are also fitted into the concave portion of the corrugated plate 710. The vertical support 704 and the three telescopic supports 705 are arranged in a ring. A shaped rubber block 709 is fixed to the side of the cleaning chamber 701. The shaped rubber block 709 consists of two shaped ring structures. The lower half of the shaped rubber block 709 is a smaller ring structure, and the upper half is a larger ring structure. The connection points are mutually compatible. In the initial state, the lower half of the shaped rubber block 709 is in contact with the friction wheel 707. When the cleaning chamber 701 is tilted, the shaped rubber block 709... The upper part of the rubber block 709 is in contact with the friction wheel 707. The corrugated plate 710 at the bottom of the cleaning chamber 701 forms a dynamic cooperation with the vertical support 704 distributed in a ring and the ball bearings 711 at the top of the three telescopic supports 705. In each rotation of the cleaning chamber 701, the concave part and the convex part of the corrugated plate 710 will alternately pass over each ball bearing 711. When the convex part rolls over the ball bearing 711, it will lift the corresponding side of the cleaning chamber 701, while the concave part allows the side to fall when it passes over. Due to the support of the universal joint 703, the tilt direction and angle of the cleaning chamber 701 will undergo periodic and regular three-dimensional changes with rotation under the alternating support and yielding of the four ball bearings 711, that is, a composite posture of rotation and swaying.This application uses a horizontal driver 400 to drive the insertion plate 706 to engage with the slot of the threaded slider 708, and in conjunction with the threaded rotating rod 702 to drive the friction wheel 707 to rotate, so that the cleaning chamber 701 can sway and tilt regularly along the corrugated plate 710 under the support of the universal joint 703, realizing the multi-angle dynamic tumbling of the water flow in the cleaning chamber 701, effectively avoiding cleaning dead corners, and significantly improving the overall rinsing effect of the water flow on the surface of dehydrated vegetables.
[0033] In practical use, the above-mentioned equipment first controls the position of the hollow electric gripper 600 via the electric push rod 500 and the horizontal driver 400 to grip the dehydrated vegetables. Then, the electric push rod 500 moves the hollow electric gripper 600 upwards after gripping the dehydrated vegetables. Next, the horizontal driver 400 moves it along the slide groove 300 on the horizontal part of the L-shaped bracket 200 until the insert plate 706 on the side of the electric push rod 500 engages with the slot on the side of the threaded slider 708. Then, the electric push rod 500 pushes the hollow electric gripper 600 downwards into the washing chamber 701. During this movement, the threaded slider 708 moves vertically... As the threaded slider 708 and the threaded rotating rod 702 are threadedly engaged, the movement of the threaded slider 708 forces the threaded rotating rod 702 to rotate, and the friction wheel 707 at its bottom rotates accordingly. The friction wheel 707 contacts the irregularly shaped rubber block 709 fixed to the side wall of the cleaning chamber 701. The irregularly shaped rubber block 709 is composed of two semi-ring structures of different specifications, with the lower half being smaller and the upper half being larger. This causes the contact radius and friction torque between the friction wheel 707 and the irregularly shaped rubber block 709 to change non-linearly under different tilt angles. Therefore, the irregularly shaped rubber block 709 can continuously adhere to the friction wheel 707 and drive the cleaning chamber 701 to rotate. While the cleaning chamber 701 rotates, a corrugated plate 710 is fixed at the bottom of the cleaning chamber 701. Its concave part contacts the ball bearings 711 at the top of a fixed vertical support 704 and three telescopic supports 705. This allows the cleaning chamber 701 to sway and tilt regularly along the corrugated plate 710 under the support of the universal joint 703, realizing the multi-angle dynamic tumbling of the water flow in the cleaning chamber 701, effectively avoiding cleaning dead corners, and significantly improving the overall rinsing effect of the water flow on the surface of the dehydrated vegetables.
[0034] Example 2, as Figures 3-6As shown, based on Embodiment 1, the cleaning chamber 701 is internally equipped with a flow guiding component 800 for changing the direction of water flow. The flow guiding component 800 includes four annularly arranged flow guiding plates 801 fixed to the inner wall of the cleaning chamber 701 and a multi-directional hollow chamber 802 fixed to the bottom of the inner wall of the cleaning chamber 701. The multi-directional hollow chamber 802 has a total of eight cavities 803. Each cavity 803 is slidably connected to a T-shaped rod 804. Each end of each T-shaped rod 804 is fixed with a fan-shaped flow guiding block 806. A spring 805 is installed between each T-shaped rod 804 and the inner wall of the cavity 803 of the multi-directional hollow chamber 802. Each cavity 803 of the multi-directional hollow chamber 802 is equipped with a metal ball 807. The direction of each fan-shaped flow guiding block 806 in the multi-directional hollow chamber 802 corresponds to the protruding part of the corrugated plate 710. This application sets a corrugated plate 710 and a telescopic bracket 705 at the bottom of the cleaning chamber 701. When the cleaning chamber 701 is tilted, the contact position of the irregular rubber block 709 and the friction wheel 707 changes simultaneously. Then, under the action of inertia and gravity, the metal ball 807 moves, thereby driving the fan-shaped guide blocks 806 in the multi-directional hollow chamber 802 to extend in sequence, guiding the water flow to be sprayed in a directional manner according to the convex direction of the corrugated plate 710, realizing differentiated water impact on dehydrated vegetables in different areas, and improving the overall cleaning uniformity.
[0035] In specific use, based on Embodiment 1, when the cleaning chamber 701 rotates and tilts under the action of the corrugated plate 710, the metal ball 807 rolls along the inner wall of the cavity 803 under the combined action of gravity and inertia, compressing the spring 805 in the corresponding direction and pushing the T-shaped rod 804, causing the fan-shaped guide block 806 to extend outward. Since the direction of each fan-shaped guide block 806 corresponds to a protruding direction of the corrugated plate 710, when the chamber tilts to one side, the fan-shaped guide block 806 on that side is activated and extends. Combined with the pre-guiding effect of the four annular guide plates 801 fixed on the inner wall of the cleaning chamber 701, the water in the chamber is directed to the area corresponding to the protrusion of the corrugated plate 710, so that the water flow is concentrated to flush the dehydrated vegetable area that is currently in a low or high position as needed, realizing differentiated hydraulic impact on dehydrated vegetables in different areas and improving the overall cleaning uniformity.
[0036] Example 3, as Figure 4 , Figure 7 and Figure 8As shown, based on Embodiment 1, the top of the inner wall of the cleaning chamber 701 is equipped with a centrifugal shielding component 900 for reducing splashing of cleaning water. The centrifugal shielding component 900 includes an annular chamber 901, with an annular groove 902 inside the annular chamber 901. Multiple partition plates 903 are fixed in the annular groove 902, and a baffle 904 is rotatably connected between every two partition plates 903. A horizontal plate 905 is fixed to one side of each baffle 904 located in the annular groove 902, and an elastic bladder 906 is fixed between each horizontal plate 905 and its adjacent partition plate 903. This application equips the top of the inner wall of the cleaning chamber 701 with the centrifugal shielding component 900. When the cleaning chamber 701 rotates and oscillates, the baffle 904 automatically adjusts its opening and closing angle under the cooperation of centrifugal force and the elastic bladder 906, effectively intercepting and guiding splashing water, while reducing the diffusion of external water mist. This improves the working environment and avoids excessive waste of water resources, meeting energy conservation and environmental protection requirements.
[0037] In specific use, based on Embodiment 1, when the cleaning chamber 701 rotates and generates a rotational angular velocity, the baffle 904 is subjected to centrifugal force and swings outward. The horizontal plate 905 rotates accordingly and stretches or compresses the elastic bladder 906. At this time, the elastic bladder 906 provides a reset resistance. The baffle 904 unfolds and forms a dynamic annular barrier, which can intercept high-speed splashing water droplets generated by the water flow and allow them to flow back into the cleaning chamber 701 along the surface of the baffle 904, while reducing the diffusion of water mist out of the chamber.
[0038] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. An automatic loading and unloading cleaning device for dehydrated vegetables, comprising a base (100), an L-shaped bracket (200) fixed on one side of the upper surface of the base (100), a sliding groove (300) provided in both the horizontal and vertical parts of the L-shaped bracket (200), a horizontal driver (400) assembled in the sliding groove (300) of the horizontal part of the L-shaped bracket (200), an electric push rod (500) assembled on the side of the horizontal driver (400), and a hollow electric gripper (600) assembled at the moving end of the electric push rod (500). Its features are, A cleaning assembly (700) is assembled on the middle of the upper surface of the base (100) and the vertical part of the L-shaped bracket (200). The cleaning assembly (700) includes a threaded rod (702) that passes through and is rotatably connected in a groove (300) in the vertical part of the L-shaped bracket (200), a universal joint (703) fixed to the middle of the upper surface of the base (100), a vertical bracket (704) and three telescopic brackets (705) fixed to the upper surface of the base (100), and an insert plate (706) fixed to the side of the moving end of the electric push rod (500). The L-shaped bracket ( A threaded slider (708) is slidably connected in the vertical section of the slide groove (300) of 200. The threaded slider (708) is threadedly connected to the threaded rotating rod (702). A slot adapted to the insert plate (706) is opened on the left side of the threaded slider (708). A friction wheel (707) is fixed at the bottom of the threaded rotating rod (702). A cleaning chamber (701) is assembled at the top of the universal shaft (703). A corrugated plate (710) is fixed at the bottom of the cleaning chamber (701). A shaped rubber block (709) is fixed on the side of the cleaning chamber (701).
2. The automatic loading and unloading cleaning device for dehydrated vegetables according to claim 1, characterized in that, The top ends of the vertical support (704) and the three telescopic supports (705) are rotatably connected with ball bearings (711). The ball bearings (711) at the top end of the vertical support (704) are attached to the concave part of the corrugated plate (710), and the ball bearings (711) at the top end of the three telescopic supports (705) are attached to the concave part of the corrugated plate (710). The vertical support (704) and the three telescopic supports (705) are arranged in a ring.
3. The automatic loading and unloading washing device for dehydrated vegetables according to claim 2, characterized in that, The irregularly shaped rubber block (709) is composed of two irregularly shaped ring structures. The lower half of the irregularly shaped rubber block (709) is a half-small ring structure, and the upper half of the irregularly shaped rubber block (709) is a half-large ring structure, and the connection points are mutually compatible.
4. The automatic loading and unloading cleaning device for dehydrated vegetables according to claim 3, characterized in that, In the initial state, the lower half of the irregular rubber block (709) of the cleaning chamber (701) is in contact with the friction wheel (707), and in the tilted state, the upper half of the irregular rubber block (709) is in contact with the friction wheel (707).
5. The automatic loading and unloading washing device for dehydrated vegetables according to claim 4, characterized in that, The cleaning chamber (701) is equipped with a flow guiding component (800) for changing the direction of water flow.
6. The automatic loading and unloading cleaning device for dehydrated vegetables according to claim 5, characterized in that, The flow guiding assembly (800) includes four flow guiding plates (801) arranged in a ring on the inner wall of the cleaning chamber (701) and a multi-directional hollow chamber (802) fixed to the bottom of the inner wall of the cleaning chamber (701). The multi-directional hollow chamber (802) has a total of eight cavities (803). Each cavity (803) is connected to a T-shaped rod (804) through and slidably. Each end of the T-shaped rod (804) is fixed with a fan-shaped flow guiding block (806). A spring (805) is installed between each T-shaped rod (804) and the inner wall of the cavity (803) of the multi-directional hollow chamber (802). Each cavity (803) of the multi-directional hollow chamber (802) is equipped with a metal ball (807).
7. The automatic loading and unloading cleaning device for dehydrated vegetables according to claim 6, characterized in that, Each fan-shaped guide block (806) in the multi-directional hollow chamber (802) corresponds to the protruding part of the corrugated plate (710).
8. The automatic loading and unloading washing device for dehydrated vegetables according to claim 7, characterized in that, The top of the inner wall of the cleaning chamber (701) is equipped with a centrifugal shielding component (900) to reduce the splashing of cleaning water.
9. An automatic loading and unloading washing device for dehydrated vegetables according to claim 8, characterized in that, The centrifugal shielding assembly (900) includes an annular chamber (901), an annular groove (902) is provided inside the annular chamber (901), a plurality of partition plates (903) are fixed in the annular groove (902), a baffle (904) is rotatably connected between every two partition plates (903), a horizontal plate (905) is fixed on one side of each baffle (904) located in the annular groove (902), and an elastic capsule (906) is fixed between each horizontal plate (905) and its adjacent partition plate (903).