A cleaning device and cleaning method for sweet potato wine processing
By designing a cleaning device for sweet potato wine processing, a sweet potato separating module and a high-pressure rinsing module are used to rotate and clean the sweet potatoes, solving the problems of low efficiency of manual cleaning and incomplete cleaning by equipment. This achieves a highly efficient and non-damaging sweet potato cleaning effect, thereby improving the quality of winemaking.
Patent Information
- Application Number
- CN202310630255.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-05-31
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2043-05-31
AI Technical Summary
In the process of sweet potato wine processing, manual cleaning is inefficient, while equipment cleaning is incomplete and can easily damage the sweet potatoes, affecting their subsequent use.
Design a cleaning device for sweet potato wine processing, including a buffer module, a sweet potato separating module, and a high-pressure rinsing module. The sweet potato separating module rotates the sweet potatoes and is combined with high-pressure rinsing. The reciprocating push module controls the number of sweet potatoes falling. Combined with a water pump, the wastewater is discharged to ensure the cleaning effect.
It improved the quality and efficiency of sweet potato cleaning, reduced sweet potato damage, ensured brewing quality, and reduced labor intensity.
Smart Images

Figure CN116473248B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of sweet potato wine processing technology, specifically to a cleaning device and cleaning method for sweet potato wine processing. Background Technology
[0002] Sweet potato wine is a type of rice wine made from sweet potatoes using traditional or modern techniques and yeast. Sweet potatoes are common perennial dicotyledonous plants, herbaceous plants with slender vines, stems that lie prostrate on the ground, and tuberous roots. They produce lactic acid through anaerobic respiration. The skin is whitish or reddish, and the flesh is mostly yellowish-white, but can also be purple. Besides being used for food, it can also be used to make sugar and wine.
[0003] In the process of sweet potato wine processing, cleaning the raw sweet potato ingredients is an important step. Because sweet potatoes vary in shape, manual cleaning is effective but inefficient. Equipment cleaning typically involves placing the sweet potatoes in a cleaning tank and cleaning them by stirring. However, this method often fails to clean concave areas of the sweet potatoes thoroughly and can damage them, affecting their usability. Therefore, this paper proposes a cleaning device and method for sweet potato wine processing to address these issues. Summary of the Invention
[0004] The purpose of this invention is to provide a cleaning device and cleaning method for sweet potato wine processing, so as to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, the present invention provides the following technical solution:
[0006] As an optional solution of the cleaning device and cleaning method for sweet potato wine processing described in this invention, the cleaning device and cleaning method for sweet potato wine processing includes a cleaning tank, a mobile frame with wheels is installed at the bottom of the cleaning tank, a water pump is installed above the mobile frame, one end of the water pump is connected to a connecting pipe, and the other end of the connecting pipe is connected to the cleaning tank.
[0007] The inner wall of the cleaning tank is fixedly connected to a buffer module for buffering, and the buffer module is provided with a sweet potato separating module for rotating the sweet potatoes and a high-pressure rinsing module for cleaning the sweet potatoes, which are arranged vertically. The outer sides of the sweet potato separating module and the high-pressure rinsing module are fixedly connected to the cleaning tank, and the sweet potato separating module and the high-pressure rinsing module are rotatably connected.
[0008] Below the buffer module is a fixing ring, with its outer side fixedly connected to the cleaning tank. The inner side of the fixing ring is equipped with a reciprocating pushing module fixedly connected to the cleaning tank. Cleaning the sweet potato raw materials is a crucial step in the sweet potato wine processing. While manual cleaning is effective due to the varying shapes of the sweet potatoes, it is inefficient. Equipment cleaning typically involves placing the sweet potatoes together inside the cleaning tank and cleaning them through agitation. This method is particularly effective for cleaning concave areas of the sweet potatoes. The original sweet potatoes were not cleaned properly and were easily damaged by the stirring rod, affecting their subsequent use. This device addresses this by placing the screened sweet potatoes vertically outside the sweet potato separating module and activating it. The separating module and buffer module work together to rotate the sweet potatoes, which in turn rotate on their own. Simultaneously, a high-pressure rinsing module provides high-pressure rinsing, while a reciprocating module ensures that only 1-2 sweet potatoes fall at a time, maximizing their residence time within the separating module and ensuring effective cleaning.
[0009] As an optional embodiment of the cleaning device and cleaning method for sweet potato wine processing described in this invention, the cleaning tank is slidably connected to a sealing plate, and a mesh collection cover in the shape of an inverted frustum is fixedly connected to the inner side of the sealing plate.
[0010] The fixed ring has discharge holes on both sides. During the rotation cleaning of sweet potatoes, the sweet potatoes can fall through the discharge holes of the fixed ring as the sweet potato separating module rotates. The reciprocating pushing module is used to push the sweet potatoes down and support the sweet potatoes above to prevent multiple sweet potatoes from falling at once. When the sweet potatoes fall into the mesh collection cover, they can be rinsed by the high-pressure washing module. The wastewater after cleaning can be pumped out by a water pump. After the sweet potatoes are cleaned, the mesh collection cover can be moved by the sliding sealing plate to facilitate centralized collection and processing of the sweet potatoes.
[0011] As an optional embodiment of the cleaning device and cleaning method for sweet potato wine processing described in this invention, the buffer module includes a buffer airbag and springs. The outer side of the buffer airbag is fixedly connected to the inner wall of the cleaning tank. The inner side of the buffer airbag is fixedly connected to a uniformly distributed spring. The inner side of the buffer airbag is fixedly connected to a uniformly distributed vertically arranged moving plate. When the sweet potato separating module drives the sweet potatoes to rotate, the larger sweet potatoes squeeze the moving plate, the moving plate squeezes the buffer airbag, and then squeezes the springs. At this time, the sweet potatoes can be buffered to avoid violently squeezing them and causing them to be injured, which would affect their subsequent use.
[0012] As an optional embodiment of the cleaning device and cleaning method for sweet potato wine processing described in this invention, the sweet potato separating module includes a connecting rod and a first motor. Both ends of the connecting rod are fixedly connected to the cleaning tank. The first motor is fixedly connected to the center of the connecting rod. A rotating shaft is fixedly connected to the end of the main shaft of the first motor. A rotating rod is fixedly connected to the outer side of the rotating shaft. The bottom of the rotating rod is rotatably connected to a high-pressure rinsing module. The other end of the rotating rod is fixedly connected to a mesh frame. Vertically arranged, evenly distributed separating plates are fixedly connected to the outer side of the mesh frame. When the sweet potatoes are placed vertically between the separating plates, the first motor is activated to drive the rotating shaft to rotate. The rotating shaft drives the rotating rod to rotate, which in turn drives the outer mesh frame to rotate. The mesh frame then drives the separating plates to rotate. At this time, the separating plates cause the sweet potatoes between them to rotate. The sweet potatoes themselves, in conjunction with the buffer module, can rotate. This, combined with the high-pressure rinsing module, allows for a thorough cleaning of the sweet potato surface, effectively cleaning even the concave areas of the sweet potatoes.
[0013] As an optional solution of the cleaning device and cleaning method for sweet potato wine processing described in this invention, the high-pressure flushing module includes a support frame and a dual-shaft motor. The two ends of the support frame are fixedly connected to the cleaning tank. The dual-shaft motor is fixedly connected to the center of the support frame. A hollow tube is fixedly connected to the upper main shaft of the dual-shaft motor. The outer side of the hollow tube is connected to a uniformly distributed water spray pipe. The other end of each water spray pipe is connected to a high-pressure nozzle.
[0014] The lower main shaft of the dual-output shaft motor is fixedly connected to a rotating tube. The lower end of the rotating tube is connected to a uniformly distributed spraying disc. The bottom of the spraying disc has uniformly distributed through holes. When cleaning sweet potatoes, the external water pump is started, and then the dual-output shaft motor is started to drive the upper main shaft to rotate, which in turn drives the hollow tube to rotate. The hollow tube drives the outer water spray pipe and high-pressure nozzle to rotate, thereby thoroughly rinsing the rotating sweet potatoes. At the same time, when the sweet potatoes fall into the mesh collection cover after cleaning, the dual-output shaft motor drives the lower rotating tube to rotate, which in turn drives the spraying disc to rotate. At this time, the water can be discharged through the through holes at the bottom of the spraying disc, and the cleaned sweet potatoes are cleaned again to ensure the quality of sweet potato cleaning.
[0015] As an optional embodiment of the cleaning device and cleaning method for sweet potato wine processing described in this invention, the hollow tube and the rotating tube are rotatably connected to a rotating ring on their outer sides. The outer side of the rotating ring is connected to a connecting frame, and the other side of the connecting frame is connected to an external pipe. The other end of the external pipe is connected to a water pump. To ensure stable water discharge, the external water pump discharges water into the hollow connecting frame through the external pipe, and then into the hollow tube and the rotating tube through the rotating ring, ensuring that the water can rinse the sweet potatoes. At the same time, the connection between the hollow tube and the rotating tube and the rotating ring is hollowed out, which ensures that the water can be discharged normally into the hollow tube and the rotating tube.
[0016] As an optional embodiment of the cleaning device and cleaning method for sweet potato wine processing described in this invention, the reciprocating push module includes a fixed frame, a support column, and a second motor. The support column is fixedly connected to the bottom of the fixed frame, and both ends of the support column are fixedly connected to the cleaning tank. The second motor is fixedly connected inside the fixed frame, and a reciprocating lead screw is fixedly connected to the end of the main shaft of the second motor. A slider is slidably connected to the outside of the reciprocating lead screw, and a movable sleeve is fixedly connected to the other end of the slider. A sliding plate is fixedly connected to the outside of the movable sleeve, and a push plate is fixedly connected to the other end of the sliding plate. Meanwhile, the sweet potato rotates inside the sweet potato separating module. At this time, the sweet potatoes are discharged through the feeding hole inside the fixed ring. The second motor drives the reciprocating screw to rotate, which drives the slider to move. The slider drives the moving sleeve to move, which in turn causes the sliding plate to move back and forth, eventually driving the push plate to move. When the push plate moves, it can block the feeding hole of the fixed ring, preventing all the sweet potatoes from falling and ensuring that the sweet potatoes stay inside the sweet potato separating module. Only 1-2 sweet potatoes can fall between each separating plate at a time, and the sweet potatoes between each separating plate fall in sequence, ensuring that the sweet potatoes can be thoroughly cleaned. The outside of the push plate is slidably connected to the fixed frame, thus ensuring that the moving sleeve moves stably and is not prone to rotation.
[0017] As an optional embodiment of the cleaning device and cleaning method for sweet potato wine processing described in this invention, the cleaning method comprises the following steps:
[0018] Step 1: To ensure the quality of brewing, first sort the sweet potatoes by size. Pick out the ones that are the right size and place them vertically on the outside of the sweet potato separating module.
[0019] Step 2: The sweet potato is rotated by activating the sweet potato separator module, and a buffer module is used in conjunction to ensure that the sweet potato can rotate while maintaining its integrity.
[0020] Step 3: While the sweet potato is rotating, the high-pressure rinsing module is activated simultaneously. At this time, the sweet potato can be rotated to perform high-pressure rinsing, ensuring the rinsing quality.
[0021] Step 4: During the sweet potato rotation cleaning, the reciprocating push module is activated to ensure that 1-2 sweet potatoes fall stably in sequence.
[0022] Step 5: As the cleaned sweet potatoes fall, they can be collected through a mesh collection cover, and a high-pressure washing module can clean them again to ensure they are thoroughly cleaned.
[0023] Step Six: After cleaning, the sweet potatoes can be removed by moving the mesh collection cover. Then, the wastewater from the cleaning can be discharged through a water pump and connecting pipe to prevent it from accumulating at the bottom of the cleaning tank and contaminating the cleaned sweet potatoes.
[0024] Compared with the prior art, the beneficial effects of the present invention are:
[0025] During cleaning, the present invention involves placing sweet potatoes vertically between the partition plates of the sweet potato partitioning module, and driving the rotating shaft to rotate via the first motor, which in turn causes the rotating rod to rotate the mesh frame. This allows multiple groups of sweet potatoes to rotate, and in conjunction with the high-pressure washing module, the sweet potatoes between the partition plates can be subjected to high-pressure washing, which washes away the soil in the concave interior of the sweet potato surface, greatly ensuring the quality and efficiency of sweet potato cleaning and reducing the labor intensity of workers.
[0026] Furthermore, when the sweet potato separating module moves the sweet potato, the sweet potato separating module, together with the buffer module, can cause the sweet potato to rotate. When the sweet potato comes into contact with the buffer module, in order to prevent the sweet potato from being injured, the spring inside the buffer module can drive the moving plate on the outside of the buffer airbag to move to a certain extent. At this time, when encountering a larger sweet potato, the sweet potato can squeeze the moving plate, effectively ensuring the integrity of the sweet potato as a whole, thereby ensuring the quality of subsequent brewing.
[0027] When rinsing sweet potatoes, the double-shaft motor drives the hollow tube to rotate, which in turn rotates the spray pipe. The water is discharged through the high-pressure nozzle and then through the mesh frame to rinse the sweet potatoes. When the sweet potatoes rotate and move above the feed hole of the fixed ring, they can fall normally. The reciprocating push module ensures that only 1-2 sweet potatoes fall at a time, ensuring that the sweet potatoes inside the cleaning tank can stay for a long time and that they are thoroughly cleaned.
[0028] When a sweet potato falls onto the mesh collection cover, the water can fall normally, and the wastewater is pumped out through a water pump and connecting pipe to prevent the wastewater from contaminating the sweet potato. After cleaning, the sweet potato inside the mesh collection cover can be removed by moving the moving plate. The moving frame also makes the device easy to move and use. Attached Figure Description
[0029] Figure 1 A schematic diagram of the overall structure of a cleaning device and cleaning method for processing sweet potato wine;
[0030] Figure 2 A cross-sectional view of a cleaning device and cleaning method for processing sweet potato wine, showing the cleaning tank.
[0031] Figure 3 A schematic diagram of the structure of the fixing ring in a cleaning device and cleaning method for sweet potato wine processing;
[0032] Figure 4 A schematic diagram of the buffer module of a cleaning device and cleaning method for sweet potato wine processing;
[0033] Figure 5 A schematic diagram of the structure of a sweet potato separating module, which is a cleaning device and cleaning method for sweet potato wine processing.
[0034] Figure 6 A top view of the frame of a cleaning device and cleaning method for processing sweet potato wine;
[0035] Figure 7 A schematic diagram of the high-pressure flushing module of a cleaning device and cleaning method for sweet potato wine processing;
[0036] Figure 8 This is a schematic diagram of the reciprocating drive module of a cleaning device and cleaning method for sweet potato wine processing.
[0037] In the diagram: 1. Cleaning tank; 2. Movable frame; 3. Water pump; 4. Connecting pipe; 5. Buffer module; 501. Buffer airbag; 502. Spring; 503. Movable plate; 6. Sweet potato separator module; 601. Connecting rod; 602. First motor; 603. Rotating shaft; 604. Rotating rod; 605. Mesh frame; 606. Separator plate; 7. High-pressure flushing module; 701. Support frame; 702. Dual-shaft motor; 703. Hollow tube; 70 4. Spray pipe; 705. High-pressure nozzle; 706. Rotating pipe; 707. Spray disc; 708. Rotating ring; 709. Connecting frame; 710. External pipe; 8. Reciprocating push module; 801. Fixed frame; 802. Support column; 803. Second motor; 804. Reciprocating lead screw; 805. Slider; 806. Moving sleeve; 807. Sliding plate; 808. Push plate; 9. Fixed ring; 10. Mesh collection cover; 11. Sealing plate. Detailed Implementation
[0038] Example 1:
[0039] Please see Figure 1 and Figure 2 The present invention provides a technical solution:
[0040] A cleaning device and cleaning method for sweet potato wine processing includes a cleaning tank 1, a movable frame 2 with wheels installed at the bottom of the cleaning tank 1, a water pump 3 installed above the movable frame 2, one end of the water pump 3 being connected to a connecting pipe 4, and the other end of the connecting pipe 4 being connected to the cleaning tank 1.
[0041] The inner wall of the cleaning tank 1 is fixedly connected to a buffer module 5 for buffering, and the buffer module 5 is provided with a sweet potato separating module 6 for rotating the sweet potato and a high-pressure rinsing module 7 for cleaning the sweet potato. The outer sides of the sweet potato separating module 6 and the high-pressure rinsing module 7 are fixedly connected to the cleaning tank 1, and the sweet potato separating module 6 and the high-pressure rinsing module 7 are rotatably connected.
[0042] Below the aforementioned buffer module 5, there is also a fixing ring 9, and the outer side of the fixing ring 9 is fixedly connected to the cleaning tank 1. The inner side of the aforementioned fixing ring 9 is provided with a reciprocating push module 8, which is fixedly connected to the cleaning tank 1.
[0043] The steps for the above cleaning method are as follows:
[0044] Step 1: To ensure the quality of brewing, first sort the sweet potatoes by size. Pick out the ones that are the right size and place them vertically outside the sweet potato separating module 6.
[0045] Step 2: The sweet potato is rotated by activating the sweet potato separator module 6, and is used in conjunction with the buffer module 5 to ensure that the sweet potato can rotate and maintain its integrity.
[0046] Step 3: While the sweet potato is rotating, the high-pressure rinsing module 7 is activated simultaneously. At this time, the sweet potato can be rotated to perform high-pressure rinsing, ensuring the rinsing quality.
[0047] Step 4: During the sweet potato rotation cleaning, the reciprocating push module 8 is activated to ensure that 1-2 sweet potatoes fall stably in sequence.
[0048] Step 5: When the cleaned sweet potatoes fall, they can be collected by the mesh collection cover 10, and the high-pressure washing module 7 can clean the sweet potatoes again to ensure that they are cleaned.
[0049] Step Six: After cleaning, the sweet potatoes can be removed by moving the mesh collection cover 10. Then, the wastewater after cleaning can be discharged by the water pump 3 and the connecting pipe 4 to avoid accumulating at the bottom of the cleaning tank 1 and contaminating the cleaned sweet potatoes.
[0050] In the process of sweet potato wine processing, cleaning the raw sweet potatoes is a crucial step. While manual cleaning is effective due to the varying shapes of the sweet potatoes, it is inefficient. Equipment cleaning typically involves placing the sweet potatoes in a cleaning tank and agitating them. However, this method sometimes misses areas with concave parts, resulting in a muddy taste in the brewed wine. Furthermore, the sweet potatoes are easily damaged by the agitator, affecting their usability. This device, however, addresses this issue by vertically placing the screened sweet potatoes... Outside the sweet potato separating module 6, the sweet potato separating module 6 is activated. At this time, the sweet potato separating module 6 and the buffer module 5 work together to make the sweet potatoes rotate. The sweet potatoes can rotate on their own. At the same time, the high-pressure washing module 7 can wash the sweet potatoes under high pressure. Meanwhile, the reciprocating pushing module 8 is used to ensure that only 1-2 sweet potatoes fall at a time after cleaning, ensuring that the sweet potatoes stay inside the sweet potato separating module 6 for a certain period of time. This greatly ensures the cleaning quality and efficiency of the sweet potatoes and reduces the labor intensity of the staff. The water pump 3 and the connecting pipe 4 work together to discharge the sewage inside the cleaning tank 1 in a timely manner to prevent impurities from contaminating the sweet potatoes.
[0051] Example 2
[0052] This embodiment is an improvement made to Implementation 1. Please refer to [link / reference]. Figure 2 and Figure 3 Specifically, the cleaning tank 1 is slidably connected to a sealing plate 11, and a mesh collection cover 10 in the shape of an inverted frustum is fixedly connected to the inner side of the sealing plate 11.
[0053] The aforementioned fixing ring 9 has feeding holes on both sides.
[0054] During the rotation cleaning process of sweet potatoes, the sweet potatoes can be rotated along with the sweet potato separating module 6 and fall through the feeding hole of the fixing ring 9. At the same time, the reciprocating pushing module 8 is set to push the sweet potatoes inside the feeding hole to fall steadily, and to support the sweet potatoes above to prevent multiple sweet potatoes from falling at once. When the sweet potatoes fall into the mesh collection cover 10, they can be rinsed by the high-pressure washing module 7. At the same time, the wastewater after cleaning can be pumped out by the water pump 3. After the sweet potatoes are cleaned, the mesh collection cover 10 can be moved by the sliding sealing plate 11 to facilitate the centralized collection and processing of sweet potatoes.
[0055] Example 3
[0056] This embodiment is an improvement upon the two implementation examples. Please refer to [link / reference]. Figure 2 and Figure 4Specifically, the buffer module 5 includes a buffer airbag 501 and a spring 502. The outer side of the buffer airbag 501 is fixedly connected to the inner wall of the cleaning tank 1. The inner side of the buffer airbag 501 is fixedly connected with evenly distributed springs 502. The inner side of the buffer airbag 501 is fixedly connected with evenly distributed vertically arranged movable plates 503.
[0057] When the sweet potato separator module 6 rotates the sweet potato, the larger sweet potato squeezes the moving plate 503, the moving plate 503 squeezes the buffer airbag 501, and then squeezes the spring 502. At this time, the sweet potato can be buffered to avoid violently squeezing the sweet potato and causing it to be injured, which would affect its subsequent use.
[0058] Example 4
[0059] This embodiment is an improvement upon the three implementation examples. Please refer to [link / reference]. Figure 2 , Figure 5 and Figure 6 Specifically, the sweet potato separating module 6 includes a connecting rod 601 and a first motor 602. The two ends of the connecting rod 601 are fixedly connected to the cleaning tank 1. The first motor 602 is fixedly connected to the center of the connecting rod 601. The main shaft of the first motor 602 is fixedly connected to the end of the shaft of the first motor 602. A rotating rod 604 is fixedly connected to the outside of the rotating shaft 603. The bottom of the rotating rod 604 is rotatably connected to the high-pressure rinsing module 7. The other end of the rotating rod 604 is fixedly connected to the mesh frame 605. The mesh frame 605 has evenly distributed vertically arranged separating plates 606 fixedly connected to the outside.
[0060] When the sweet potatoes are placed vertically between the partition plates 606, the first motor 602 is started to drive the rotating shaft 603 to rotate. The rotating shaft 603 drives the rotating rod 604 to rotate, which in turn drives the outer mesh frame 605 to rotate. The mesh frame 605 then drives the partition plates 606 to rotate. At this time, the partition plates 606 cause the sweet potatoes between them to rotate. The sweet potatoes themselves can rotate in conjunction with the buffer module 5. At this time, the high-pressure flushing module 7 can thoroughly flush the surface of the sweet potatoes and effectively clean the concave parts of the sweet potatoes. Because the mesh frame 605 is hollowed out, it can ensure that water can pass through normally and clean the sweet potatoes.
[0061] Example 5
[0062] This embodiment is an improvement upon the four implementation examples. Please refer to [link / reference]. Figure 2 and Figure 7Specifically, the high-pressure flushing module 7 includes a support frame 701 and a dual-shaft motor 702. The two ends of the support frame 701 are fixedly connected to the cleaning tank 1. The dual-shaft motor 702 is fixedly connected to the center of the support frame 701. A hollow tube 703 is fixedly connected to the upper main shaft of the dual-shaft motor 702. The outer side of the hollow tube 703 is connected to a uniformly distributed water spray pipe 704. The other end of each water spray pipe 704 is connected to a high-pressure nozzle 705.
[0063] The lower main shaft of the aforementioned dual-output shaft motor 702 is fixedly connected to a rotating tube 706. The lower end of the rotating tube 706 is connected to a uniformly distributed spraying disc 707. The bottom of the spraying disc 707 is provided with uniformly distributed through holes.
[0064] When cleaning sweet potatoes, an external water pump is started, which in turn starts a dual-shaft motor 702 to drive the upper main shaft to rotate, causing the hollow tube 703 to rotate. The hollow tube 703 then drives the outer spray pipe 704 and high-pressure nozzle 705 to rotate, thus thoroughly rinsing the rotating sweet potatoes. Simultaneously, when the sweet potatoes fall into the mesh collection cover 10 after cleaning, the dual-shaft motor 702 drives the lower rotating pipe 706 to rotate, which in turn causes the spray plate 707 to rotate. At this time, the water can be discharged through the through hole at the bottom of the spray plate 707, further cleaning the sweet potatoes and ensuring the quality of the cleaning process.
[0065] Example 6
[0066] This embodiment is an improvement upon the previous five implementations. Please refer to [link / reference]. Figure 7 Specifically, a rotating ring 708 is rotatably connected to the outer side of both the hollow tube 703 and the rotating tube 706. A connecting frame 709 is connected to the outer side of the rotating ring 708, and an external pipe 710 is connected to the other side of the connecting frame 709. The other end of the external pipe 710 is connected to a water pump.
[0067] To ensure a stable water discharge, an external water pump discharges water into the hollow connecting frame 708 through the external pipe 710, and then into the hollow pipe 703 and the rotating pipe 706 through the rotating ring 708, ensuring that the water can rinse the sweet potatoes. At the same time, the connection between the hollow pipe 703 and the rotating pipe 706 and the rotating ring 708 is hollowed out, which ensures that the water can be discharged normally into the hollow pipe 703 and the rotating pipe 706.
[0068] Example 7
[0069] This embodiment is an improvement upon the previous six implementations. Please refer to [link / reference]. Figure 2 and Figure 8Specifically, the reciprocating push module 8 includes a fixed frame 801, a support column 802, and a second motor 803. The support column 802 is fixedly connected to the bottom of the fixed frame 801, and both ends of the support column 802 are fixedly connected to the cleaning tank 1. The second motor 803 is fixedly connected inside the fixed frame 801. A reciprocating lead screw 804 is fixedly connected to the end of the main shaft of the second motor 803. A slider 805 is slidably connected to the outside of the reciprocating lead screw 804. A movable sleeve 806 is fixedly connected to the other end of the slider 805. A sliding plate 807 is fixedly connected to the outside of the movable sleeve 806. A push plate 808 is fixedly connected to the other end of the sliding plate 807.
[0070] While the sweet potatoes rotate inside the sweet potato separating module 6, they are discharged through the discharge hole inside the fixing ring 9. The second motor 803 drives the reciprocating screw 804 to rotate, which in turn drives the slider 805 to move. The slider 805 then drives the moving sleeve 806 to move, which in turn causes the sliding plate 807 to move back and forth, ultimately driving the push plate 808 to move. When the push plate 808 moves, it can block the discharge hole of the fixing ring 9, preventing all the sweet potatoes from falling and ensuring that the sweet potatoes stay inside the sweet potato separating module 6 for a certain period of time. Only 1-2 sweet potatoes can fall between each separating plate 606 at a time, and the sweet potatoes between each separating plate 606 fall sequentially, ensuring that the sweet potatoes can be thoroughly cleaned. The outer side of the push plate 808 is slidably connected to the fixing frame 801, thus ensuring that the moving sleeve 806 moves stably and is not prone to rotation.
[0071] This article uses specific examples to illustrate the principles and implementation methods of the present invention. The above examples are only for the purpose of helping to understand the method and core ideas of the present invention. The above descriptions are only preferred embodiments of the present invention. It should be noted that due to the limitations of textual expression, while there are objectively infinite specific structures, those skilled in the art can make several improvements, modifications, or changes without departing from the principles of the present invention, and can also combine the above technical features in an appropriate manner. These improvements, modifications, changes, or combinations, or the direct application of the inventive concept and technical solution to other situations without modification, should all be considered within the scope of protection of the present invention.
Claims
1. A cleaning device for processing sweet potato wine, characterized in that: The system includes a cleaning tank (1), a mobile frame (2) with wheels is installed at the bottom of the cleaning tank (1), a water pump (3) is installed above the mobile frame (2), one end of the water pump (3) is connected to a connecting pipe (4), and the other end of the connecting pipe (4) is connected to the cleaning tank (1). The inner wall of the cleaning tank (1) is fixedly connected to a buffer module (5) for buffering, and the inside of the buffer module (5) is provided with a sweet potato separating module (6) for driving the sweet potato to rotate and a high-pressure rinsing module (7) for cleaning the sweet potato. The outer sides of the sweet potato separating module (6) and the high-pressure rinsing module (7) are fixedly connected to the cleaning tank (1), and the sweet potato separating module (6) and the high-pressure rinsing module (7) are rotatably connected. The buffer module (5) is also provided with a fixing ring (9) below it, and the outer side of the fixing ring (9) is fixedly connected to the cleaning tank (1). The inner side of the fixing ring (9) is provided with a reciprocating push module (8) fixedly connected to the cleaning tank (1). The sweet potato separating module (6) works in conjunction with the buffer module (5) to make the sweet potato rotate. The buffer module (5) includes a buffer airbag (501) and a spring (502). The outer side of the buffer airbag (501) is fixedly connected to the inner wall of the cleaning tank (1). The inner side of the buffer airbag (501) is fixedly connected with evenly distributed springs (502). The inner side of the buffer airbag (501) is fixedly connected with evenly distributed vertically arranged movable plates (503). The sweet potato separating module (6) includes a connecting rod (601) and a first motor (602). The two ends of the connecting rod (601) are fixedly connected to the cleaning tank (1). The first motor (602) is fixedly connected to the center of the connecting rod (601). The main shaft of the first motor (602) is fixedly connected to a rotating shaft (603). A rotating rod (604) is fixedly connected to the outside of the rotating shaft (603). The bottom of the rotating rod (604) is rotatably connected to the high-pressure flushing module (7). The other end of the rotating rod (604) is fixedly connected to the mesh frame (605). The outside of the mesh frame (605) is fixedly connected to vertically arranged dividing plates (606) that are evenly distributed. The reciprocating push module (8) includes a fixed frame (801), a support column (802), and a second motor (803). The bottom of the fixed frame (801) is fixedly connected to the support column (802), and both ends of the support column (802) are fixedly connected to the cleaning tank (1). The inside of the fixed frame (801) is fixedly connected to the second motor (803). The end of the main shaft of the second motor (803) is fixedly connected to a reciprocating lead screw (804). The outside of the reciprocating lead screw (804) is slidably connected to a slider (805). The other end of the slider (805) is fixedly connected to a moving sleeve (806). The outside of the moving sleeve (806) is fixedly connected to a sliding plate (807). The other end of the sliding plate (807) is fixedly connected to a push plate (808).
2. The cleaning device for sweet potato wine processing according to claim 1, characterized in that: The cleaning tank (1) is slidably connected to a sealing plate (11), and a mesh collection cover (10) in the shape of an inverted frustum is fixedly connected to the inner side of the sealing plate (11).
3. The cleaning device for sweet potato wine processing according to claim 1, characterized in that: The fixing ring (9) has feeding holes on both sides.
4. The cleaning device for sweet potato wine processing according to claim 1, characterized in that: The high-pressure flushing module (7) includes a support frame (701) and a dual-shaft motor (702). The two ends of the support frame (701) are fixedly connected to the cleaning tank (1). The dual-shaft motor (702) is fixedly connected to the center of the support frame (701). A hollow tube (703) is fixedly connected to the upper main shaft of the dual-shaft motor (702). The outer side of the hollow tube (703) is connected to a uniformly distributed water spray pipe (704). The other end of each water spray pipe (704) is connected to a high-pressure nozzle (705). The lower main shaft of the dual-output motor (702) is fixedly connected to a rotating tube (706), and the lower end of the rotating tube (706) is connected to a uniformly distributed spraying disc (707). The bottom of the spraying disc (707) is provided with uniformly distributed through holes.
5. The cleaning device for sweet potato wine processing according to claim 4, characterized in that: Both the hollow tube (703) and the rotating tube (706) are rotatably connected to a rotating ring (708). The outer side of the rotating ring (708) is connected to a connecting frame (709), and the other side of the connecting frame (709) is connected to an external pipe (710). The other end of the external pipe (710) is connected to a water pump.
6. The cleaning method of the cleaning device for sweet potato wine processing according to any one of claims 1-5, characterized in that: The cleaning method involves the following steps: Step 1: To ensure the quality of brewing, first sort the sweet potatoes by size. Pick out the ones that are the right size and place them vertically outside the sweet potato separator module (6). Step 2: The sweet potato is rotated by activating the sweet potato separator module (6) and used in conjunction with the buffer module (5) to ensure that the sweet potato can rotate and maintain its integrity. Step 3: While the sweet potato is rotating, the high-pressure rinsing module (7) is started at the same time. At this time, the sweet potato can be rotated to perform high-pressure rinsing to ensure the rinsing quality. Step 4: When cleaning the sweet potatoes by rotating, the reciprocating push module (8) is activated to ensure that 1-2 sweet potatoes fall stably in sequence. Step 5: When the cleaned sweet potatoes fall, they can be collected by the mesh collection cover (10), and the high-pressure washing module (7) can clean the sweet potatoes again to ensure that they are clean. Step 6: After cleaning, the sweet potatoes can be removed by moving the mesh collection cover (10), and then the wastewater after cleaning can be discharged by the water pump (3) and the connecting pipe (4) to avoid accumulating at the bottom of the cleaning tank (1) and contaminating the cleaned sweet potatoes.
Citation Information
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