Novel cleaning mechanism
By introducing an ultrasonic rod and a one-way valve structure into the cleaning mechanism, the problems of equipment contamination and incomplete cleaning caused by the mixing of liquid and gas are solved, achieving efficient and stable cleaning results.
Patent Information
- Application Number
- CN202422585725.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-25
- Publication Date
- 2025-10-24
- Estimated Expiration
- 2034-10-25
AI Technical Summary
In existing cleaning systems, direct mixing of liquid and gas can easily contaminate the equipment. Excessive liquid tension and pressure can lead to incomplete cleaning or product damage. Mixing of liquid and gas in pipelines can cause equipment instability.
A novel cleaning mechanism was designed, which uses an ultrasonic rod to generate ultrasonic waves to enhance the pressure of gas and liquid, and prevents liquid-gas mixing through a one-way valve and a sealing ring. Multiple liquid channels and gas regulating valves are used to control the flow rate and ensure that liquid and gas are used independently.
This improved cleaning results, prevented equipment contamination and product damage, and ensured equipment stability and high-precision cleaning requirements.
Smart Images

Figure CN223465196U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a cleaning technical field, concretely is a novel cleaning mechanism. BACKGROUND
[0002] In the existing cleaning mechanism, especially when applied to high-precision cutting machine equipment and various cleaning equipment, the use of cleaning liquid often accompanies a series of problems. First of all, when liquid and gas directly converge, due to the rebound strength of liquid, it is easy to contaminate the surrounding machine equipment, which not only affects the normal operation of the equipment, but also increases the maintenance cost. Secondly, the tension of the cleaning liquid is too large, which is also a problem to be solved. When the size of the liquefied particles or bubbles exceeds 0.02mm, it is difficult to clean the fine grooves of the product, resulting in poor cleaning effect and failing to meet the high-precision cleaning requirements. Furthermore, the excessive pressure of the cleaning liquid is also a common risk point. Excessive pressure may displace the product or even damage the product, causing huge losses to production.
[0003] In addition, the mixed use of liquid and gas pipelines is also a difficulty in the existing cleaning mechanism. In actual operation, liquid may enter the gas pipeline, or gas may enter the liquid pipeline. This mixed use not only causes cleaning failure or invalidation, but also affects the stability and service life of the equipment. Therefore, how to solve the problem of mixed use of liquid and gas pipelines and ensure the normal operation and cleaning effect of the equipment has become an important topic in the design of the current cleaning mechanism. UTILITY MODEL CONTENT
[0004] In view of the deficiencies of the prior art, the utility model provides a novel cleaning mechanism, aiming at solving the problems existing in the existing cleaning mechanism, such as cleaning liquid pollution, large liquid tension, large liquid pressure and mixed use of liquid and gas pipelines.
[0005] To achieve the above purpose, the utility model realizes the following technical scheme:
[0006] A novel cleaning mechanism, characterized by comprising a cleaning shell, one end of the cleaning shell is closed and the other end is fixedly connected with a cleaning nozzle, an ultrasonic wave rod is fixedly arranged inside the cleaning shell and the cleaning nozzle, an inner flow channel is arranged inside the ultrasonic wave rod, an outer flow channel is formed between the outer side of the ultrasonic wave rod and the inner wall of the cleaning shell and the cleaning nozzle, an air inlet is arranged on the closed end of the cleaning shell and communicated with the inner flow channel, a gas inlet one-way valve is fixedly arranged on the outer side of the cleaning shell and corresponds to the position of the air inlet, a liquid inlet is arranged on the outer side of the cleaning shell and communicated with the outer flow channel, a cleaning liquid inlet one-way valve is fixedly arranged on the outer side of the cleaning shell and corresponds to the position of the liquid inlet, and a plurality of liquid channels are arranged inside the cleaning nozzle and located at the end of the outer flow channel.
[0007] The priority technical scheme is that a first sealing ring is fixedly arranged at the connection between the outer side of the end of the ultrasonic rod and the inner side of the cleaning shell and is located between the air inlet and the liquid inlet.
[0008] The priority technical scheme is that a second sealing ring is fixedly arranged at the connection between the cleaning shell and the cleaning nozzle.
[0009] The priority technical scheme is that the gas inlet one-way valve is connected with the gas regulating valve through a pipeline, and the liquid inlet one-way valve is connected with the liquid regulating valve through a pipeline.
[0010] The priority technical scheme is that a fixing sheet is fixedly arranged at the outer side of the cleaning shell, and the fixing sheet is provided with a mounting fixing hole.
[0011] The priority technical scheme is that the number of the liquid channels is 8.
[0012] The utility model provides a novel cleaning mechanism. It has the following beneficial effects:
[0013] (1) The utility model is widely applied in high-precision cutting machine equipment, and can also be popularized in cleaning equipment. It can completely solve the pollution caused by the rebound of cleaning liquid, the cleaning failure caused by excessive liquid tension, the product displacement or damage caused by excessive hydraulic pressure and the stability problem caused by the mixing of liquid and gas pipelines.
[0014] (2) The utility model can produce ultrasonic waves, thereby enhancing the gas / liquid pressure, improving the cleaning effect and reducing the risk of product damage.
[0015] (3) The utility model can produce fine bubbles in liquid, so that the residual adhesion is continuously, stably and powerfully impacted, thereby being loosened and carried away by the bubbles, thereby realizing efficient cleaning.
[0016] (4) The utility model can reduce the liquid tension, form fine particles or bubbles, and will not impact the product during cleaning, thereby realizing stable cleaning. DRAWINGS
[0017] Figure 1 It is a structural schematic diagram of the utility model;
[0018] Figure 2 It is a structural schematic diagram of the utility model Figure 1 ;
[0019] Figure 3 It is a structural schematic diagram of the utility model Figure 1 ;
[0020] Figure 4 It is a gas-liquid flow direction schematic diagram of the utility model;
[0021] Figure: 1-washing housing, 2-washing nozzle, 3-ultrasonic rod, 5-inner flow channel, 6-outer flow channel, 7-air inlet, 8-gas inlet check valve, 9-liquid inlet, 10-washing liquid inlet check valve, 11-liquid channel, 12-first sealing ring, 13-second sealing ring, 14-gas regulating valve, 15-liquid regulating valve, 16-fixed sheet, 17-fixed hole. DETAILED DESCRIPTION
[0022] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the protection scope of the utility model.
[0023] As shown in the figure, Figures 1-4
[0024] A novel cleaning mechanism, including cleaning housing 1, one end of cleaning housing 1 is closed and the other end is fixedly connected with washing nozzle 2, ultrasonic rod 3 is fixedly arranged in cleaning housing 1 and washing nozzle 2, inner flow channel 5 is arranged in ultrasonic rod 3, outer flow channel 6 is formed between the outer side of ultrasonic rod 3 and the inner wall of cleaning housing 1 and washing nozzle 2, air inlet 7 that communicates with inner flow channel 5 is arranged on the closed end of cleaning housing 1, gas inlet check valve 8 is fixedly arranged on the outer side of cleaning housing 1 and corresponds the position of air inlet 7, liquid inlet 9 that communicates with outer flow channel 6 is arranged on the outer side of cleaning housing 1, washing liquid inlet check valve 10 is fixedly arranged on the outer side of cleaning housing 1 and corresponds the position of liquid inlet 9, a plurality of liquid channels 11 are arranged in the inner part of washing nozzle 2 and located at the end of outer flow channel 6.
[0025] First sealing ring 12 is fixedly arranged at the connection between the outer side of the end of ultrasonic rod 3 and the inner side of cleaning housing 1 and located between air inlet 7 and liquid inlet 9. Second sealing ring 13 is fixedly arranged at the connection between cleaning housing 1 and washing nozzle 2.
[0026] Gas inlet check valve 8 is connected with gas regulating valve 14 through pipeline, and washing liquid inlet check valve 10 is connected with liquid regulating valve 15 through pipeline.
[0027] Fixed sheet 16 is fixedly arranged on the outer side of cleaning housing 1, and fixed hole 17 is arranged on fixed sheet 16.
[0028] The number of liquid channels 11 is eight.
[0029] The gas inlet one-way valve 8 is used for gas inlet and prevents liquid mixing; the cleaning nozzle 2 can spray liquid and gas, or use liquid or gas alone; the cleaning liquid inlet one-way valve 10 is used for liquid inlet and prevents gas mixing; the first sealing ring 12 can prevent liquid and gas mixing; the ultrasonic rod 3 utilizes liquid pressure to cause high-frequency deformation of the rod, thereby generating ultrasonic waves, thereby generating pressure on liquid / gas; the second sealing ring 13 can prevent liquid and gas leakage; the gas regulating valve 14 adjusts the size of the gas flow; and the liquid regulating valve 15 adjusts the size of the liquid flow.
[0030] I. When the gas path enters the gas regulating valve 14, the corresponding flow can be adjusted, then enters the gas inlet one-way valve 8, avoids the gas path reverse flow, passes through the cleaning shell 1, the inner flow channel 5 of the ultrasonic rod 3 gradually increases the pressure, and is sprayed outward through the cleaning nozzle 2. Then the liquid path enters the liquid regulating valve 15, the corresponding liquid flow can be adjusted, then enters the cleaning liquid inlet one-way valve 10, avoids the liquid path reverse flow and impact on the ultrasonic rod 3, generates ultrasonic waves, enhances liquid / gas pressure, and then flows to the liquid channel 11 at the end of the cleaning nozzle 2, the pressure is increased through the cleaning nozzle inside, at the same time, the liquid flow channel section is thinned and increased to 8 channels, until the liquid path is combined with the gas path, the liquid is thinned to the smallest 0.02mm particles and bubbles through the gas pressure, and is sprayed forward. When the gas path or the liquid path is used alone, they are independent of each other and are not affected, and will not mix with each other, so that stable production is ensured.
[0031] Although the embodiments of the utility model have been shown and described, it can be understood by those skilled in the art that various changes, modifications, replacements and variations can be made to these embodiments without departing from the principles and spirits of the utility model, and the scope of the utility model is defined by the appended claims and their equivalents.
Claims
1. A novel cleaning mechanism characterized by: The utility model provides a kind of ultrasonic cleaning device, including cleaning shell (1), the one end of the cleaning shell (1) is closed and the other end is fixedly connected with cleaning nozzle (2), the inside of the cleaning shell (1) and cleaning nozzle (2) is fixedly provided with ultrasonic wave pole (3), the inside of the ultrasonic wave pole (3) is provided with inner flow channel (5), the outside of ultrasonic wave pole (3) and the inner wall between cleaning shell (1) and cleaning nozzle (2) form outer flow channel (6), the cleaning shell (1) is provided with air inlet (7) communicated with inner flow channel (5) close to the one end, the outside of cleaning shell (1) and the position corresponding air inlet (7) are fixedly provided with gas inlet one-way valve (8), the outside of the cleaning shell (1) is provided with liquid inlet (9) communicated with outer flow channel (6), the outside of the cleaning shell (1) and the position corresponding liquid inlet (9) are fixedly provided with cleaning liquid inlet one-way valve (10), the inside of the cleaning nozzle (2) and the end of outer flow channel (6) are provided with multiple liquid channels (11).
2. A novel cleaning mechanism as claimed in claim 1, wherein: The outside of the end of ultrasonic wave pole (3) and the inside of cleaning shell (1) connection and between air inlet (7) and liquid inlet (9) are fixedly provided with first sealing ring (12).
3. A novel cleaning mechanism as claimed in claim 1, wherein: The connection of the cleaning shell (1) and cleaning nozzle (2) is fixedly provided with second sealing ring (13).
4. A novel cleaning mechanism as claimed in claim 1, wherein: The gas inlet one-way valve (8) is connected with gas regulating valve (14) by pipeline, and the cleaning liquid inlet one-way valve (10) is connected with liquid regulating valve (15) by pipeline.
5. A novel cleaning mechanism as claimed in claim 1, wherein: The outside of the cleaning shell (1) is fixedly provided with fixed sheet (16), and the fixed sheet (16) is provided with mounting fixing hole (17).
6. A novel cleaning mechanism as claimed in any one of claims 1 to 5, wherein: The number of the liquid channel (11) is 8.