Novel bubble cleaning machine
By incorporating a pre-washing component and a slag collection structure into the bubble cleaner, combined with a high-pressure nozzle and a blowing component, the problem of bubble generator blockage caused by residue accumulation is solved, thereby improving cleaning efficiency and material dryness.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SICHUAN MODEL WORKER CRAFTS SUPPLY CHAIN MANAGEMENT CO LTD
- Filing Date
- 2025-03-25
- Publication Date
- 2026-05-01
AI Technical Summary
After prolonged use, residue tends to accumulate at the bottom of the cleaning tank in existing bubble cleaning machines, causing blockage of the bubble generator, which affects cleaning efficiency and reduces cleaning quality.
A pre-washing component and a slag collection structure are installed at the feed inlet. The material is pre-washed using a water jet and the residue is collected. The bubble generator is cleaned using a high-pressure nozzle. A blower component is installed at the discharge outlet to dry the material and prevent residue from settling.
It effectively reduces the accumulation of residue at the bottom of the cleaning tank, avoids clogging of the bubble generator, improves cleaning efficiency, and ensures the dryness of the materials.
Smart Images

Figure CN224181489U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of bubble cleaning machine equipment, and more specifically, to a novel bubble cleaning machine. Background Technology
[0002] Bubble washing machines utilize the physical properties of bubbles and the scouring force of water flow to clean items. The working principle involves injecting water into a washing tank. When the materials to be cleaned enter the tank, the high-pressure water flow and bubble generator produce a large number of bubbles. The impact force generated by the bursting of these bubbles peels dirt from the surface of the materials, and the water flow also helps to wash away this dirt. The cleaned water is then recycled through a filtration system. Bubble washing machines effectively remove pesticide residues and contaminants from the surface of products without damaging vegetables or other materials. The cleanliness level achieved is far superior to conventional manual washing methods, making it suitable for cleaning various vegetables, fruits, aquatic products, and traditional Chinese medicinal herbs.
[0003] In existing bubble cleaning machines, after prolonged cleaning, some residue cannot be completely collected and filtered, gradually settling at the bottom of the cleaning tank and adhering to the bubble generator. When too much residue adheres and clumps together, it gradually clogs the bubble generator's air inlet. This is especially problematic when cleaning materials with a large amount of residue or soil. Excessive residue entering the bubble cleaning machine causes some clumps to fall to the bottom of the cleaning tank before being dispersed by the bubbles, leading to rapid residue accumulation below the bubble generator. Excessive accumulation then blocks the rise of bubbles, affecting the efficiency of bubble cleaning. Furthermore, some of the residue accumulated at the bottom can be reintroduced into the material during subsequent cleaning processes, resulting in new residue adhering to the cleaned material and reducing the cleaning effect.
[0004] Therefore, there is a need for a bubble cleaning machine that can quickly reduce residue on materials before they enter the cleaning tank. Utility Model Content
[0005] The purpose of this application is to provide a novel bubble cleaning machine that solves the technical problems of reduced bubble cleaning quality caused by excessive residue accumulation clogging the bubble generator and the need for rapid drying of the cleaned materials.
[0006] To solve the above-mentioned technical problems, the solution adopted in this application is as follows:
[0007] The new type of bubble cleaning machine includes a cleaning frame, a cleaning chamber inside the cleaning frame, a conveyor belt assembly inside the cleaning chamber, a bubble generator below the conveyor belt assembly, a high-pressure nozzle above the conveyor belt assembly, the high-pressure nozzle being connected to a water pump assembly, the cleaning chamber being connected to one end of a filter structure, and the other end of the filter structure being connected to the water pump assembly.
[0008] Preferably, the cleaning chamber is provided with an inlet and an outlet at both ends, and the inlet and outlet are located at both ends of the conveyor belt assembly in the conveying direction.
[0009] Preferably, a pre-washing component is provided inside the feed inlet. The pre-washing component includes a water spray head, which is connected to a pump water pipe assembly. The water spray direction of the water spray head is towards the inside of the feed inlet.
[0010] Preferably, a primary washing slag collection structure is provided between the feed inlet and the cleaning chamber. The primary washing slag collection structure includes a slag collection box, and a slag collection port is opened on the top of the slag collection box. The slag collection port is located between the end of the feed inlet and the top of the cleaning chamber.
[0011] Preferably, when the material enters the cleaning chamber from the feed inlet, the material comes into contact with the slag collection port, and the opening width of the slag collection port is smaller than the diameter of the material.
[0012] Preferably, a blower assembly is provided at the discharge port, and the blower assembly includes a blower component.
[0013] Preferably, the blower component is positioned above the feed inlet and the conveyor belt assembly, and the blowing direction of the blower component is perpendicular to the conveying direction of the conveyor belt assembly.
[0014] Preferably, the blowing assembly further includes a second fan component.
[0015] Preferably, the second blower is located at the outer end of the feed inlet, and the blowing direction of the second blower is consistent with the conveying direction of the conveyor belt group, with the blowing direction from the feed inlet toward the cleaning chamber.
[0016] Preferably, the feed inlet of the cleaning rack is configured as a feed platform, which is inclinedly disposed at one end of the cleaning chamber, and the inclined bottom end of the feed platform is connected to the top of the cleaning chamber.
[0017] Preferably, mounting sheet metal is provided on both sides of the feeding platform, and multiple water spray nozzles are provided on the mounting sheet metal. The water spray nozzles are connected to the water pump pipe assembly and are located above the table surface of the feeding platform. The water spray direction of the water spray nozzles is towards the table surface of the feeding platform.
[0018] Preferably, a filter plate is provided on the side of the slag collection box facing the cleaning chamber, and the filter holes on the filter plate connect the cleaning chamber and the chamber of the slag collection box.
[0019] Preferably, the initial washing slag collection structure further includes an adjustment component, which is disposed at the slag collection port.
[0020] Preferably, the adjusting component includes a sliding plate, which is slidably mounted on the slag collection box. One end of the sliding plate is connected to a displacement member, which is fixed on the slag collection box. The sliding direction of the sliding plate is consistent with the opening width direction of the slag collection port.
[0021] Preferably, when the slide plate slides through the displacement member, the surface of the slide plate coincides with the opening of the slag collection port.
[0022] Preferably, a high-pressure nozzle is provided at the bottom of the cleaning chamber, the high-pressure nozzle is located below the bubble generator, and the water spray direction of the high-pressure nozzle is towards the bubble production position of the bubble generator.
[0023] Preferably, the bottom of the cleaning chamber is provided with a number of high-pressure nozzles, and the number of high-pressure nozzles corresponds one-to-one with the number of bubble output ends of the bubble generator. The high-pressure nozzles are connected to the pump water pipe assembly.
[0024] The technical solution of this application has at least the following advantages and beneficial effects:
[0025] In this invention, a pre-washing component is installed on the feeding platform. The water jet on the pre-washing component pre-washes the material that is about to enter the cleaning chamber, washing off the thick residue clumps attached to its surface in advance. A slag collection box is installed between the feeding platform and the cleaning chamber. When the material enters the cleaning chamber carrying the washed-off residue clumps, the residue clumps fall into the slag collection box through the slag collection port and are separated from the material. This reduces the amount of residue attached to the material entering the cleaning chamber and prevents excessive residue from accumulating at the bottom bubble generator, causing blockage and reducing the number of bubbles. Furthermore, an adjustable component is installed at the slag collection port, making the opening width of the slag collection port adjustable to accommodate different types of materials with different diameters.
[0026] In this invention, several high-pressure nozzles are installed at the bottom of the cleaning chamber and below the bubble generator. The high-pressure nozzles periodically spray water at the bubble outlet of the bubble generator to wash away the residue on the bubble generator and prevent the bubble generator from becoming clogged.
[0027] In this invention, a blowing assembly is installed at the discharge port to blow away water droplets and residual residues from the surface of the cleaned material using a wind direction perpendicular to the conveyor belt surface, ensuring that the material remains dry after discharge. In addition, a wind direction is provided facing the conveyor belt surface, with the wind direction from the discharge port toward the cleaning chamber, so that the blown-away water droplets and residues will continue to be acted upon by the wind until they are blown back into the cleaning chamber for filtration. Attached Figure Description
[0028] Figure 1 This is a schematic diagram of the structure of this utility model.
[0029] Figure 2 This is a top view of the structure of this utility model.
[0030] Figure 3 This is a cross-sectional structural diagram of the present invention.
[0031] Figure 4This is a cross-sectional view of the adjustment component in this utility model.
[0032] Figure 5 This is a cross-sectional view of the primary washing and slag collection structure in this utility model.
[0033] Figure 6 This is a cross-sectional view of the bubble generator in this utility model.
[0034] In the diagram: 1-Washing frame, 101-Washing chamber, 102-Feeding platform, 103-Discharge platform, 2-Conveyor belt assembly, 201-Washing belt surface, 202-Discharge belt surface, 3-Bubble generator, 4-Pump water pipe assembly, 401-Water supply pipe, 402-Water pump, 5-High-pressure nozzle, 6-Preliminary washing assembly, 601-Sheet metal mounting, 602-Water flushing head, 7-Preliminary washing slag collection structure, 701-Guide plate, 702-Slag collection box, 703-Slide plate, 704-Electric cylinder, 705-Filter plate, 8-Blowing assembly, 801-Tube blower, 802-Support frame, 803-Support column, 804-Blower, 9-Filtration structure, 901-Filter box, 902-Filter element. Detailed Implementation
[0035] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0036] It should be noted that similar reference numerals and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures. The terms "center," "upper," "lower," "inner," and "outer," indicating orientation or positional relationships based on the orientation or positional relationships shown in the figures, or the orientation or positional relationships commonly used when the product is in use, are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed or operated in a specific orientation, and therefore should not be construed as a limitation on this application. It should also be noted that, unless otherwise explicitly specified and limited, the terms "set," "install," and "connect" should be interpreted broadly. For example, they can refer to fixed connections, detachable connections, or integral connections; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; and internal communication between two elements. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.
[0037] Example
[0038] Please refer to Figures 1-6 This utility model provides a novel bubble cleaning machine, including a cleaning platform 1, a conveyor belt assembly 2, a bubble generator 3, a water pump assembly 4, a high-pressure nozzle 5, a pre-wash assembly 6, a pre-wash slag collection structure 7, a blower assembly 8, and a filter structure 9.
[0039] Existing bubble cleaning machines typically consist of a cleaning platform 1, within which a cleaning chamber 101 is located. A conveyor belt assembly 2 is installed within the cleaning chamber 101 to transport materials from the inlet to the outlet. A bubble generator 3 is positioned below the conveyor belt assembly 2, and a high-pressure nozzle 5 is positioned above it. The high-pressure nozzle 5 is connected to a pump-water pipe assembly 4, generating water flow within the cleaning chamber 101 to submerge the materials being transported within it. This allows the bubble generator 3 to generate bubbles in the water for bubble cleaning of the materials. The cleaning chamber 101 is also connected to one end of a filter structure 9, and the other end of the filter structure 9 is connected to the pump-water pipe assembly 4. This allows the water filtered by the filter structure 9 to continue being pumped into the cleaning chamber 101 by the high-pressure nozzle 5, improving water utilization.
[0040] Furthermore, in this embodiment, a feeding platform 102 and a discharging platform 103 are fixedly provided at both ends of the cleaning chamber 101. The feeding platform 102 and the discharging platform 103 are located at both ends of the conveying direction of the conveyor belt group 2, which facilitates the conveyor belt group 2 to transport materials.
[0041] Please refer to the following: Figure 1 and Figure 3 A pre-washing assembly 6 is provided above the feeding platform 102. The pre-washing assembly 6 includes a mounting sheet metal 601 and a flushing head 602.
[0042] Specifically, the feeding platform 102 is inclinedly set at one end of the cleaning chamber 101, and the inclined bottom end of the feeding platform 102 is connected to the top of the cleaning chamber 101; mounting sheet metal 601 is fixedly set on both sides of the feeding platform 102, and multiple water spray nozzles are fixedly set on the mounting sheet metal 601. The water spray nozzles are connected to the water pump pipe group 4. The water spray nozzles are located above the table surface of the feeding platform 102 and are inclined, so that the water spraying direction of the water spray nozzles is towards the table surface of the feeding platform 102.
[0043] Preferably, when the material is placed into the feeding platform 102, the surface of the material is covered with too much residue or dirt. At this time, the water spray nozzle starts to work, and performs preliminary cleaning on the surface of the material rolling into the cleaning chamber 101 along the inclined feeding platform 102, washing away most of the residue or dirt. The initial washing slag collection structure 7 is set up to isolate and collect it separately, so that there is less residue attached to the surface of the material entering the cleaning chamber 101, and thus it is not easy for too much residue to accumulate in the cleaning chamber 101 due to bubble cleaning, thereby reducing the probability of clogging of the bubble generator 3.
[0044] Furthermore, a primary washing slag collection structure 7 is provided between the feeding platform 102 and the cleaning chamber 101 to collect and isolate the residual sludge washed down during the primary washing process, preventing it from flowing into the cleaning chamber 101.
[0045] Please refer to Figures 3-5 In this embodiment, the initial washing and slag collection structure 7 includes a guide plate 701, a slag collection box 702, an adjustment component, and a filter plate 705.
[0046] Specifically, the slag collection box 702 is fixedly installed on the inner wall of the cleaning chamber 101. The top of the slag collection box 702 has a slag collection port, and a guide plate 701 is fixedly installed on the top of the slag collection box 702. The guide plate 701 is located on both sides of the slag collection port and abuts against both ends of the feeding platform 102, guiding the material on the feeding platform 102 to the corresponding position of the slag collection port. The slag collection port is located between the inclined end of the feeding platform 102 and the top of the cleaning chamber 101, so that when the material enters the cleaning chamber 101 from the feeding platform 102, the material will pass through the slag collection port. The opening width of the slag collection port is smaller than the diameter of the material, so the material will not fall into the slag collection box 702 from the slag collection port.
[0047] Preferably, after the fine cleaning component washes away large pieces of residual sludge, the material will move towards the cleaning chamber 101 along with the residual sludge. When it passes the sludge collection port, the residual sludge between the materials will fall into the sludge collection box 702 and separate from the material. If the material diameter is too large, it will continue to move into the cleaning chamber 101 for bubble cleaning.
[0048] A filter plate 705 is fixedly installed on the side of the slag collection box 702 facing the cleaning chamber 101. The filter plate 705 is provided with a number of filter holes that block mud and sand but allow water to pass through. These filter holes connect the cleaning chamber 101 and the chamber of the slag collection box 702, so that the water flowing into the slag collection box 702 with the residual mud can flow into the cleaning chamber 101, preventing excessive water accumulation in the slag collection box 702 and overflow.
[0049] In addition, an adjustment component is installed at the slag collection port to adjust the opening size of the slag collection port, so as to be suitable for materials of different diameters.
[0050] Specifically, the adjustment components include a slide plate 703 and a displacement component.
[0051] The displacement component is set as an electric cylinder 704.
[0052] The sliding plate 703 is slidably mounted on the top of the slag collection box 702 and slides relative to the slag collection opening. The sliding direction of the sliding plate 703 is consistent with the opening width direction of the slag collection opening. One end of the sliding plate 703 is fixedly connected to the electric cylinder 704. The electric cylinder 704 is fixed on the slag collection box 702 and located below the guide plate 701 and the feeding platform 102, so that while the electric cylinder 704 drives the sliding plate 703 to slide, it avoids blocking the material feeding. During the process of material feeding into the cleaning chamber, for different types of materials with different diameters (such as potatoes and cherry tomatoes of different diameters), the sliding plate 703 can slide through the electric cylinder 704, so that its plate surface will gradually begin to overlap with the opening of the slag collection opening, blocking part of the opening of the slag collection opening, thereby changing the opening width of the slag collection opening.
[0053] When the material diameter is larger, there is more residue adhering to the material surface. At this time, the opening width of the slag collection port also becomes wider, and the slag collection efficiency is higher. When the material diameter is smaller, there is less residue adhering to the material surface. At this time, the opening width of the slag collection port also becomes narrower, maintaining the slag collection efficiency while ensuring the passage of small-diameter materials.
[0054] Furthermore, the pump water pipe assembly 4 includes a water supply pipe 401 and a water pump 402. The water supply pipe 401 is fixedly installed on the top of the cleaning chamber 101. The water supply pipe 401 is connected to the outlet of the water pump 402. The water pump 402 pumps water to the water supply pipe 401. The water supply pipe 401 is connected to the high-pressure nozzle 5 and the flushing head 602 to supply water to them.
[0055] A filter structure 9 is also provided outside the cleaning chamber 101. The filter structure 9 includes a filter box and a filter element 902. The filter element 902 is installed inside the filter box, which divides the filter box into a pre-filter chamber and a post-filter chamber. The pre-filter chamber is connected to the cleaning chamber 101, and the post-filter chamber is connected to the inlet of the water pump 402, so as to provide the water pump 402 with clean water after filtration and enable the water flow to be circulated.
[0056] The conveyor belt group 2 includes a horizontal conveying area and an inclined conveying area connected to the horizontal conveying area. The lower end of the inclined conveying area is connected to the horizontal conveying area. To facilitate the description of the working state, the part of the conveyor belt group 2 located in the horizontal conveying area is defined as the cleaning position belt surface 201, and the part located in the inclined conveying area is defined as the discharge position belt surface 202. The cleaning position belt surface 201 and the discharge position belt surface 202 are the same mesh belt surface. The cleaning position belt surface 201 is located in the cleaning chamber 101, and the high-pressure nozzle 5 is above it, which is responsible for bubble cleaning. The discharge position belt surface 202 is inclined relative to the cleaning position belt surface 201, so that the discharge position belt surface 202 can carry the material in the cleaning chamber 101 out of the water surface and transport it to the discharge plate.
[0057] Furthermore, a blower assembly 8 is installed at the discharge platform 103. The blower assembly 8 is responsible for blowing air onto the material after water discharge on the discharge surface 202 to remove residual water and residue from the material surface.
[0058] Please refer to Figures 1-3 In this embodiment, the blower assembly 8 includes a blower component one, a support frame 802, a support column 803, and a blower component two.
[0059] Specifically, the support frame 802 is fixedly installed on the frame of the cleaning platform 1. A fan component 1 is fixedly installed on the support frame 802. The fan component 1 is located above the feed plate and the discharge position belt surface 202. The blowing direction of the fan component 1 is perpendicular to the conveying direction of the discharge position belt surface 202 of the conveyor belt group 2.
[0060] Preferably, the blower component is a tubular blower 801, which is used to increase the blowing area. The tubular blower 801 faces the material on the discharge belt surface 202. It uses strong air force to quickly blow away water droplets and attached residues on the surface of the material, so that the relatively dry material is conveyed to the discharge plate, while water droplets and residues are blown to the discharge belt surface 202 below the material (the belt surface of the conveyor belt group 2 is a mesh surface, which is convenient for bubble cleaning). During the blowing process, because the blowing direction is perpendicular to the belt surface, the material conveying will not be blocked by the wind direction.
[0061] In addition, a support column 803 is fixedly installed on the outside of the discharge plate. Multiple fan components 2 are installed on the support column 803. The fan components 2 are located further outside the discharge position of the discharge plate to avoid interfering with the discharge of materials. The blowing direction of the fan components 2 is consistent with the conveying direction of the discharge position belt surface 202 of the conveyor belt group 2. The blowing direction is from the outside of the feed plate toward the water surface of the cleaning chamber 101.
[0062] Preferably, the second blower component is configured as a blower 804 to reduce the blowing area and increase the wind speed. The blower 804 has its blower outlet corresponding to the discharge surface 202, so the water droplets and residues blown by the first blower component to the lower part of the discharge surface 202 can be blown away until they are blown back into the water in the cleaning chamber 101 and filtered and recycled by the filter structure 9. The blower outlet of the blower 804 is located below the conveying surface of the discharge surface 202, so it will not blow the material on the conveying surface, so that the material conveying will not be blocked by the airflow.
[0063] For further details, please refer to... Figure 5 and Figure 6 Several high-pressure nozzles 5 are fixedly installed at the bottom of the cleaning chamber 101. The high-pressure nozzles 5 are connected to the water pump pipe group 4. The high-pressure nozzles 5 are located below the bubble generator 3 and are inclined so that the water spraying direction of the high-pressure nozzles 5 is towards the bubble production position of the bubble generator 3.
[0064] The number of high-pressure nozzles 5 corresponds one-to-one with the number of bubble output ends of bubble generator 3. During the bubble cleaning process, the corresponding high-pressure nozzles 5 will periodically spray water towards the bubble output position of bubble generator 3 to wash away the residue that is deposited and attached at this time, so as to prevent the residue from accumulating and clogging the bubble output end of bubble generator 3, thus reducing the bubble cleaning efficiency.
[0065] It is worth noting that during the bubble cleaning process, the high-pressure nozzle 5 does not continuously spray high-pressure water at the bubble output end of the bubble generator 3. Instead, after the bubble cleaner has been working for a period of time, it periodically sprays high-pressure water at the bubble output end for a short period of time to flush away the residue deposited during this period. This avoids the bubbles at the bubble output end from prematurely breaking due to the impact of prolonged high-pressure water flow, which would affect the bubble cleaning effect above.
[0066] The various embodiments of this utility model have now been described in detail. To avoid obscuring the concept of this utility model, some details known in the art have not been described. Those skilled in the art will fully understand how to implement the technical solution of this utility model based on the above description. The scope of this utility model is defined by the appended claims.
Claims
1. A novel bubble cleaning machine, comprising a cleaning platform (1), the cleaning platform (1) including a cleaning chamber (101), a conveyor belt assembly (2) disposed within the cleaning chamber (101), a bubble generator (3) disposed below the conveyor belt assembly (2), a high-pressure nozzle (5) disposed above the conveyor belt assembly (2), the high-pressure nozzle (5) being connected to a pump water pipe assembly (4), the cleaning chamber (101) being connected to one end of a filter structure (9), and the other end of the filter structure (9) being connected to the pump water pipe assembly (4), characterized in that... ; The cleaning chamber (101) is provided with an inlet and an outlet at both ends, and the inlet and outlet are located at both ends of the conveying direction of the conveyor belt group (2); The feed inlet is provided with a pre-washing component (6), which includes a flushing head (602). The flushing head (602) is connected to the pump water pipe group (4), and the water spraying direction of the flushing head (602) is towards the inside of the feed inlet. A primary washing slag collection structure (7) is provided between the feed inlet and the cleaning chamber (101). The primary washing slag collection structure (7) includes a slag collection box (702). A slag collection port is provided at the top of the slag collection box (702). The slag collection port is located between the end of the feed inlet and the top of the cleaning chamber (101). When the material enters the cleaning chamber (101) from the feed inlet, the material comes into contact with the slag collection port, and the opening width of the slag collection port is smaller than the diameter of the material.
2. The novel bubble cleaning machine according to claim 1, characterized in that, A blower assembly (8) is provided at the discharge port, and the blower assembly (8) includes a blower component; The blower component is positioned above the feed inlet and the conveyor belt assembly (2), and the blowing direction of the blower component is perpendicular to the conveying direction of the conveyor belt assembly (2).
3. The novel bubble cleaning machine according to claim 2, characterized in that, The blowing assembly (8) also includes a second fan component; The second blower is located at the outer end of the feed inlet. The blowing direction of the second blower is consistent with the conveying direction of the conveyor belt group (2). The blowing direction is from the feed inlet toward the cleaning chamber (101).
4. The novel bubble washer machine as claimed in claim 1, wherein, The feed inlet of the cleaning rack (1) is set as a feed platform (102), which is inclinedly set at one end of the cleaning chamber (101), and the inclined bottom end of the feed platform (102) is connected to the top of the cleaning chamber (101). On both sides of the feeding platform (102), there are mounting sheet metal (601) respectively. Multiple water spray nozzles are installed on the mounting sheet metal (601). The water spray nozzles are connected to the water pump pipe group (4). The water spray nozzles are located above the table surface of the feeding platform (102). The water spray direction of the water spray nozzles is towards the table surface of the feeding platform (102).
5. The novel bubble washer machine as claimed in claim 1, wherein, A filter plate (705) is provided on the side of the slag collection box (702) facing the cleaning chamber (101), and the filter holes on the filter plate (705) connect the cleaning chamber (101) and the chamber of the slag collection box (702).
6. The novel bubble cleaning machine according to claim 1, characterized in that, The initial washing slag collection structure (7) also includes an adjustment component, which is set at the slag collection port; The adjustment component includes a sliding plate (703), which is slidably mounted on the slag collection box (702). One end of the sliding plate (703) is connected to a displacement component, which is fixed on the slag collection box (702). The sliding direction of the sliding plate (703) is consistent with the opening width direction of the slag collection port. When the slide plate (703) slides through the displacement member, the surface of the slide plate (703) coincides with the opening of the slag collection port.
7. The novel bubble washer machine as claimed in claim 1, wherein, A high-pressure nozzle (5) is provided at the bottom of the cleaning chamber (101). The high-pressure nozzle (5) is located below the bubble generator (3), and the water spraying direction of the high-pressure nozzle (5) is towards the bubble production position of the bubble generator (3).
8. The novel bubble washer machine as claimed in claim 7, wherein, The bottom of the cleaning chamber (101) is provided with several high-pressure nozzles (5), and the number of high-pressure nozzles (5) corresponds one-to-one with the number of bubble output ends of the bubble generator (3). The high-pressure nozzles (5) are connected to the pump water pipe group (4).