Textile processing mask airtightness detection device

By designing a mask airtightness detection device, the mask can detect airtightness through the bubble generation rate without contacting water directly, which solves the problem of incomplete detection data in the prior art and achieves more accurate mask airtightness detection.

CN119984662AInactive Publication Date: 2025-05-13BINZHOU CHENGCHEN TEXTILE TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510147668.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-11
Publication Date
2025-05-13
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the prior art, the airtightness detection method of masks lacks support for diverse data, and the breathability of masks when they come into contact with water will be affected, resulting in incomplete detection data.

Method used

A textile processing mask airtightness detection device is designed. The mask is installed on the snap of the drive assembly and moves along the arc-shaped slide to the detection position. The buckle of the detection component is covered on the mask. The gas sent out from the detection airtightness through the mask and enters the water of the transparent frame to generate bubbles, simulating the detection of the mask airtightness under the human body's breathing conditions.

Benefits of technology

The device can more accurately detect the airtightness of the mask, avoid the reduction of breathability caused by the mask's direct contact with water, and improve the integrity and accuracy of the detection.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a textile processing mask airtightness detection device, and relates to the technical field of airtightness detection, the textile processing mask airtightness detection device comprises a base, a sliding table is fixed on the base, a detection assembly is installed at the top of the sliding table, the detection assembly comprises a sliding seat, the sliding seat is slidably installed on the sliding table, and a transparent frame is fixed on the surface of the sliding seat. A buckle frame is installed at one end of the transparent frame, the mask is installed on a buckle of the driving assembly and moves to a detection position along the arc-shaped sliding plate, the mask is covered with the buckle frame of the detection assembly, gas sent out by the detection gas supply frame penetrates through the mask and enters water of the transparent frame to generate bubbles, and the mask does not make direct contact with the water in the process. However, the air tightness of the mask can still be known through the generation rate of bubbles in water, and the influence of gas generated by breathing after a human body wears the mask on the air tightness of the mask can be simulated to a certain extent under the condition of heating in the central tube, so that the detection of the air tightness of the mask is more accurate.
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Description

Technical Field

[0001] The invention relates to the technical field of airtightness detection, in particular to an airtightness detection device for a textile processing mask. Background Art

[0002] During the textile processing, in order to prevent the workers from inhaling flying catkins, masks are needed for proper protection. The quality of the mask further determines the amount of flying catkins inhaled by the textile operators. The quality of the mask is tested by testing the air tightness of the mask.

[0003] In the prior art, in order to more intuitively see the air tightness of the mask, the mask is usually exposed to water. After air is sent through the mask at one end and enters the water, bubbles are formed in the water. The air tightness of the mask can be determined based on the rate of bubble generation. However, this method of detecting air tightness lacks diverse data support. For example, when a person wears a mask, the exhaled air usually has a certain temperature, and water droplets are formed when a temperature difference is formed with the external environment. When the mask is soaked in water, its air permeability will be affected because water molecules will fill the fiber gaps of the mask material, thereby reducing the air permeability of the mask. The air tightness data detected by directly placing the mask in water and connecting it to an air supply device is not complete. Summary of the invention

[0004] In view of the shortcomings of the prior art, the purpose of the present invention is to provide an air tightness detection device for a textile processing mask to solve the problems raised in the above-mentioned background technology. The present invention has a novel structure. The mask is installed on the buckle of the driving component and moves along the arc-shaped slide to the detection position. The buckle frame of the detection component covers the mask, and the gas sent out by the detection air supply frame passes through the mask and enters the water in the transparent frame to generate bubbles. In this process, the mask is not directly in contact with water, but the air tightness of the mask can still be known by the bubble generation rate in the water. Under the heating condition in the central tube, the influence of the gas generated by the breathing of the human body after wearing it on the air tightness of the mask can be simulated to a certain extent, so that the detection of the air tightness of the mask is more accurate.

[0005] In order to achieve the above-mentioned purpose, the present invention is implemented through the following technical scheme: a textile processing mask air tightness detection device, including a base, a slide is fixed on the base, and a detection component is installed on the top of the slide, the detection component includes a slide seat, the slide seat is slidably installed on the slide seat, a transparent frame is fixed on the surface of the slide seat, a buckle frame is installed on one end of the transparent frame, the base is located on one side of the buckle frame and a moving component is provided, the moving component includes an arc-shaped slide plate, the arc-shaped slide plate is provided with two groups, and arc plates are fixed on the top and bottom of the arc-shaped slide plate, a detection air frame is installed on the surface of the arc-shaped slide plate on the side of the base facing the buckle frame, and the other side of the base is provided with an arc plate. A drying air outlet frame is installed on the surface of the curved slide on the side, and driving components are provided on both sides of the two groups of curved slides, and the driving component includes a vertical frame, and the two sides of the vertical frame are fixedly connected to the two curved slides and the curved plate, and an annular groove is opened inside the vertical frame, and sliders are equidistantly slidably connected in the annular groove, and a buckle is provided on the outer surface of the slider. A central tube is provided at the center of the moving component, and the top and bottom of the central tube are fixedly connected to the two curved slides, and an air intake pipe is fixed on the side of the top of the central tube away from the buckle frame, and the air intake pipe passes through the curved slide, the curved slide located at the bottom of the air intake pipe is a removal station, and the arc plate at the upper end of the curved slide is a placement station.

[0006] Furthermore, the detection component also includes a Z-shaped tube, which is connected between the transparent frame and the buckle frame, and the Z-shaped tube is connected to a position near the bottom of the transparent frame, and an air outlet is opened at the top of the transparent frame.

[0007] Furthermore, electric push rods are fixed on both sides of the slide at the bottom of the slide seat, and the extended ends of the electric push rods are fixedly connected to the slide seat. A sealing ring is provided on the outer ring surface of the buckle frame, and the buckle frame and the detection air outlet frame are in the same straight line.

[0008] Furthermore, a sealing plug is inserted into the inner seal of the air intake pipe, and a connecting rod is fixed to the outer end of the sealing plug, a transverse plate is fixed to the outer end of the connecting rod, connecting frames are fixed on both sides of the transverse plate, and the connecting frames are fixedly connected to both sides of the slide seat.

[0009] Furthermore, the movable component also includes a heating rod, the heating rod is installed at the axis of the central tube, and a connecting pipe is provided at the position of the central tube corresponding to the detection air outlet frame and the drying air outlet frame, and a fan is installed inside the connecting pipe.

[0010] Furthermore, a spray head is installed inside the detection air outlet frame, and the outer end of the spray head is connected to a delivery pipe, and the delivery pipe passes through the middle gap of the driving component and is connected to the transparent frame.

[0011] Furthermore, a mounting cross bar is fixed on the surface of the arc-shaped slide plate at the bottom of the air inlet pipe, mounting frames are fixed on both sides of the base located at the arc-shaped slide plate, and the arc-shaped slide plate is fixedly connected to the mounting frame via the mounting cross bar.

[0012] Furthermore, the driving assembly also includes a conveyor pulley, the center of the vertical frame is hollowed out, and conveyor pulleys are rotatably installed at the top and bottom of the hollow position of the vertical frame, belts are sleeved on the outer surfaces of the two conveyor pulleys, and the conveyor pulleys in the same straight line in the vertical frames on both sides of the arc-shaped skateboard are connected by an axle rod.

[0013] Furthermore, a slide frame is fixed on the outer surface of the sliding block, and the bottom of the buckle slides along the inside of the slide frame, and one end of the slide frame is fixedly connected to the belt.

[0014] Furthermore, a spring is fixed inside the sliding frame, and the other end of the spring is fixedly connected to the buckle.

[0015] Beneficial effects of the present invention:

[0016] 1. The present invention can adjust the position of the buckle through the spring inside the slide frame, so that the two hooks of the mask can maintain close contact with the arc surface of the arc slide after being buckled on the buckle. The motor drives the transmission belt wheel to rotate, and the belt drives the buckle to move along the ring groove, which can drive multiple groups of masks to move at the same time. Undetected masks can be detected at the same time, and the detected masks can be dried, thereby improving the overall detection efficiency.

[0017] 2. The present invention is installed at the bottom of the air intake pipe by installing a cross bar. This position is the upper end of the mask removal station. Therefore, before the driving assembly moves to this position, the mask has been removed and there will be no movement interference. At the same time, the circular movement of the driving assembly will not be affected by the setting of the position of the air intake pipe and the installing cross bar. The arc-shaped slide is connected to the mounting frame by installing the cross bar to maintain the vertical state.

[0018] 3. After the air inlet pipe is opened, the fans in the two connecting pipes of the present invention can be turned on at the same time to blow outside air into the detection air outlet frame, and pass through the mask outside the detection air outlet frame to enter the detection component. This process is a detection of the air tightness of the mask under normal conditions. When the heating rod is turned on, the incoming air is heated. Subsequently, the spray head in the detection air outlet frame is electrically driven, and part of the water source in the transparent frame is sucked into the inside of the spray head through a small water pump and a delivery pipe, and sprayed out to contact with the hot air to form hot and humid air to simulate the air people breathe. The rate at which the air passes through the mask is calculated, and the first calculation result is combined to obtain a more accurate mask air tightness result. When the heating rod is turned on, part of the hot air is sucked into the drying air outlet frame to blow onto the surface of the mask to dry the water molecules on the mask after the detection. Because the mask is not in direct contact with water, the drying is also faster.

[0019] 4. The present invention drives the slide seat to move along the slide table through an electric push rod, and the buckle frame moves to the position of the air frame detection. When the mask moves to this position, the buckle frame can squeeze and cover the edge of the mask through its own sealing ring to maintain the sealing around the mask. The gas passing through the mask enters the transparent frame through the Z-shaped tube. The transparent frame is not full of water, leaving a certain space for exhausting gas. Bubbles are generated after the gas enters the water. The rate of bubble generation is calculated to obtain the air tightness result of the mask.

[0020] 5. The transparent frame of the present invention is convenient for manual observation of bubbles. The Z-shaped tube can prevent water in the transparent frame from flowing back and contacting the mask, which can keep the gas from entering the water to generate bubbles and avoid direct contact between the water source and the mask to interfere with detection. The delivery pipe is divided into two sections, one section is an L-shaped plastic tube sent out by the detection air frame, and the other section is a corrugated tube connecting the plastic tube and the transparent frame. The elasticity of the corrugated tube can meet the requirements of the detection component moving toward the detection air frame.

[0021] 6. Compared with the prior art, the mask of the present invention is installed on the buckle of the driving component and moves along the arc-shaped slide to the detection position. The buckle frame of the detection component covers the mask, and the gas sent out by the detection air supply frame passes through the mask and enters the water in the transparent frame to generate bubbles. In this process, the mask is not in direct contact with water, but the air tightness of the mask can still be known by the bubble generation rate in the water. Under the heating condition in the central tube, the influence of the gas generated by the breathing of the human body after wearing it on the air tightness of the mask can be simulated to a certain extent, so that the detection of the air tightness of the mask is more accurate. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 This is a schematic diagram of the overall structure of a device for detecting air tightness of a textile processing mask according to the present invention;

[0023] Figure 2 This is a schematic diagram of the structure of a detection component of an air tightness detection device for a textile processing mask of the present invention;

[0024] Figure 3 This is a schematic diagram of the outer surface structure of a moving component of a textile processing mask air tightness detection device of the present invention;

[0025] Figure 4 This is a schematic diagram of the interior of a moving component of an air tightness detection device for a textile processing mask of the present invention;

[0026] Figure 5 This is a schematic diagram of the internal structure of a central frame of a textile processing mask air tightness detection device of the present invention;

[0027] Figure 6 This is a schematic diagram of the structure of a driving component of a textile processing mask air tightness detection device of the present invention;

[0028] Figure 7 The present invention is a schematic diagram of the internal structure of an air-tightness detection frame of a textile processing mask.

[0029] In the figure: 1. base; 11. slide; 2. moving component; 21. arc slide; 22. air inlet pipe; 23. arc plate; 24. detection air outlet frame; 241. spray head; 25. connecting pipe; 26. center pipe; 261. sealing plug; 262. connecting rod; 27. drying air outlet frame; 28. conveying pipe; 29. ​​heating rod; 3. detection component; 31. slide; 32. transparent frame; 33. air outlet; 34. Z-shaped pipe; 35. buckle frame; 36. sealing ring; 37. connecting frame; 38. electric push rod; 39. horizontal plate; 4. driving component; 41. vertical frame; 42. ring groove; 43. conveyor pulley; 44. belt; 45. slider; 46. slide frame; 47. spring; 48. buckle; 5. mounting frame. DETAILED DESCRIPTION

[0030] In order to make the technical means, creative features, objectives and effects achieved by the present invention easy to understand, the present invention is further explained below in conjunction with specific implementation methods.

[0031] See also Figures 1 to 7The present invention provides a technical solution: a textile processing mask air tightness detection device, comprising a base 1, a slide 11 is fixed on the base 1, and a detection component 3 is installed on the top of the slide 11, the detection component 3 comprises a slide seat 31, the slide seat 31 is slidably installed on the slide 11, a transparent frame 32 is fixed on the surface of the slide seat 31, a buckle frame 35 is installed at one end of the transparent frame 32, the base 1 is provided with a moving component 2 on one side of the buckle frame 35, the moving component 2 comprises an arc-shaped slide plate 21, the There are two groups of arc-shaped slides 21, and arc plates 23 are fixed on the top and bottom of the arc-shaped slides 21. A detection air outlet frame 24 is installed on the surface of the arc-shaped slide 21 on the side of the base 1 facing the buckle frame 35, and a drying air outlet frame 27 is installed on the surface of the arc-shaped slide 21 on the other side of the base 1. Drive components 4 are provided on both sides of the two groups of arc-shaped slides 21. The drive components 4 include vertical frames 41. The vertical frames 41 are fixedly connected to the two arc-shaped slides 21 and the arc plates 23 on both sides, and an annular groove 42 is opened inside the vertical frames 41. The annular groove 42 is equidistantly slidably connected with a slider 45, and the outer surface of the slider 45 is provided with a buckle 48. A central tube 26 is provided at the center of the moving component 2, and the top and bottom of the central tube 26 are fixedly connected to two arc-shaped slide plates 21. An air intake pipe 22 is fixed to the side of the top of the central tube 26 away from the buckle frame 35, and the air intake pipe 22 passes through the arc-shaped slide plate 21. The arc-shaped slide plate 21 is located at the bottom of the air intake pipe 22 as a removal station, and the arc plate 23 at the upper end of the arc-shaped slide plate 21 is a placement station. When the device is used, The mask is manually placed on the arc plate 23 at the top of the arc-shaped slide plate 21, and the ear hooks on both sides of the mask are buckled onto the buckles 48. The mask is transported through the cooperation of the moving component 2 and the driving component 4. When it moves to the position of the air supply frame for detecting the air supply, the buckle frame 35 of the detection component 3 covers the surface of the mask, and the gas enters the transparent frame 32 through the mask. The air tightness of the mask under normal conditions is obtained from the bubble rate generated in the transparent frame 32, and the hot and humid air is sent out through the mask, which can simulate the detection of the air tightness of the mask after being worn by humans.

[0032] In this embodiment, the detection component 3 also includes a Z-shaped tube 34, a Z-shaped tube 34 is connected between the transparent frame 32 and the buckle frame 35, the Z-shaped tube 34 is connected to the transparent frame 32 near the bottom, an air outlet 33 is opened on the top of the transparent frame 32, the slide 11 is fixed with electric push rods 38 on both sides of the bottom of the slide 31, and the extended end of the electric push rod 38 is fixedly connected to the slide 31, a sealing ring 36 is provided on the outer ring surface of the buckle frame 35, and the buckle frame 35 and the detection air outlet frame 24 are in the same straight line, the internal seal of the air inlet pipe 22 is plugged with a sealing plug 261, and a connecting rod 262 is fixed to the outer end of the sealing plug 261, and a cross plate 39 is fixed to the outer end of the connecting rod 262, and connecting frames 37 are fixed on both sides of the cross plate 39, and the connecting frame 37 is fixedly connected to both sides of the slide 31, and the slide 31 is driven to move along the slide 11 by the electric push rod 38, The buckle frame 35 moves toward the position of the detection air outlet frame 24. When the mask moves to this position, the buckle frame 35 can squeeze and cover the edge of the mask through its own sealing ring 36 to maintain the sealing around the mask. The gas passing through the mask enters the transparent frame 32 through the Z-tube 34. The transparent frame 32 is not full of water, leaving a certain space for gas discharge. Bubbles are generated after the gas enters the water. The rate of bubble generation is calculated to obtain the mask air tightness result. The transparent frame 32 is convenient for manual observation of bubbles. The Z-tube 34 can prevent water in the transparent frame 32 from flowing back and contacting the mask, which can keep the gas from entering the water to generate bubbles and avoid direct contact between the water source and the mask to interfere with the detection. The delivery pipe 28 is divided into two sections, one section is an L-shaped plastic pipe sent out by the detection air outlet frame 24, and the other section is a corrugated pipe connecting the plastic pipe and the transparent frame 32. The elasticity of the bellows can meet the movement of the detection component 3 toward the detection air outlet frame 24.

[0033] In this embodiment, the moving component 2 also includes a heating rod 29, a heating rod 29 is installed at the axis of the central tube 26, and a connecting pipe 25 is provided at the position of the central tube 26 corresponding to the detection air outlet frame 24 and the drying air outlet frame 27, a fan is installed inside the connecting pipe 25, a spray head 241 is installed inside the detection air outlet frame 24, and the outer end of the spray head 241 is connected to a conveying pipe 28, the conveying pipe 28 passes through the middle gap of the driving component 4 and is connected to the transparent frame 32, the movement of the detection component 3 will open the sealing plug 261 through the connecting frame 37 and the cross plate 39, after the air inlet pipe 22 is opened, the fans in the two connecting pipes 25 can be turned on at the same time, the outside air is blown into the detection air outlet frame 24, and passes through the mask on the outside of the detection air outlet frame 24 to enter the detection Inside the measuring component 3, this process is a test of the air tightness of the mask under normal conditions. When the heating rod 29 is turned on, the incoming air is heated, and then the spray head 241 in the air frame 24 is detected to be electrically driven. A small water pump and a delivery pipe 28 are used to draw part of the water source in the transparent frame 32 into the spray head 241, and spray it out to contact with the hot air to form hot and humid air, simulating the air people breathe. The rate at which the air passes through the mask is measured, and the first calculation result is combined to obtain a more accurate mask air tightness result. When the heating rod 29 is turned on, part of the hot air is sucked into the drying air frame 27 and blown onto the surface of the mask to dry the water molecules on the mask after the test. Because the mask is not in direct contact with water, the drying is also faster.

[0034] In this embodiment, a mounting cross bar is fixed on the surface of the arc-shaped slide 21 at the bottom of the air inlet pipe 22, and mounting frames 5 are fixed on both sides of the base 1 located on the arc-shaped slide 21, and the arc-shaped slide 21 is fixedly connected to the mounting frames 5 through the mounting cross bars. The mounting cross bars are not numbered in the figure and are installed at the bottom of the air inlet pipe 22. This position is the upper end of the mask removal station. Therefore, before the drive assembly 4 moves to this position, the mask has been removed and there will be no movement interference. At the same time, the circular movement of the drive assembly 4 will not be affected by the setting of the position of the air inlet pipe 22 and the mounting cross bar. The arc-shaped slide 21 is connected to the mounting frame 5 by the mounting cross bars to maintain the vertical state.

[0035] In this embodiment, the driving component 4 also includes a conveyor pulley 43. The center of the vertical frame 41 is hollowed out, and the conveyor pulleys 43 are rotatably installed at the top and bottom of the hollowed-out position of the vertical frame 41. The outer surfaces of the two conveyor pulleys 43 are sleeved with belts 44. The conveyor pulleys 43 in the same straight line in the vertical frames 41 on both sides of the arc-shaped slide plate 21 are connected by an axle rod. A slide frame 46 is fixed to the outer surface of the slider 45, and the bottom of the buckle 48 slides along the inside of the slide frame 46. One end of the slide frame 46 is fixedly connected to the belt 44. A spring 47 is fixed inside the slide frame 46, and the other end of the spring 47 is fixedly connected to the buckle 48. The trajectory of the annular groove 42 is The conveyor pulley 43 drives the belt 44 to move along the same trajectory, and then when the belt 44 drives the slide frame 46 to move, the slider 45 at the bottom of the slide frame 46 will move synchronously along the annular groove 42, and the spring 47 inside the slide frame 46 can adjust the position of the buckle 48 so that the two hooks of the mask can maintain close contact with the arc surface of the arc slide 21 after being buckled on the buckle 48. The motor drives the conveyor pulley 43 to rotate, and the belt 44 drives the buckle 48 to move along the annular groove 42, which can drive multiple groups of masks to move at the same time, and can detect undetected masks at the same time, and dry the detected masks, thereby improving the overall detection efficiency.

[0036] When using the device, the mask is manually placed on the arc plate 23 at the top of the arc-shaped slide plate 21, and the ear hooks on both sides of the mask are buckled on the buckles 48. The springs 47 inside the slide frame 46 can adjust the position of the buckles 48 so that the two hooks of the mask can maintain close contact with the arc surface of the arc-shaped slide plate 21 after being buckled on the buckles 48. The mask is transported through the cooperation of the moving component 2 and the driving component 4. When it moves to the position of the air supply frame for detecting, the movement of the detection component 3 will open the sealing plug 261 through the connecting frame 37 and the cross plate 39, and the air intake pipe 22 is opened. After that, the fans in the two connecting pipes 25 can be turned on at the same time to blow the outside air into the detection air frame 24, and pass through the mask outside the detection air frame 24 to enter the detection component 3. This process is a test of the air tightness of the mask under normal conditions. When the heating rod 29 is turned on, the incoming air is heated. Then the spray head 241 in the detection air frame 24 is electrically driven, and part of the water source in the transparent frame 32 is sucked into the spray head 241 through a small water pump and a delivery pipe 28, and sprayed out to contact with the hot air to form hot and humid air, simulating The air that people breathe is measured and the speed at which the air passes through the mask is calculated. The first calculation result is combined to obtain a more accurate result of the air tightness of the mask. When the heating rod 29 is turned on, part of the hot air is sucked into the drying air frame 27 and blown onto the surface of the mask to dry the water molecules on the mask after the detection. Because the mask is not in direct contact with water, the drying is also faster. The electric push rod 38 drives the slide 31 to move along the slide 11, and the buckle frame 35 moves to the position of the detection air frame 24. When the mask moves to this position, the buckle frame 35 moves to the position of the detection air frame 24. The sealing ring 36 can be used to squeeze and cover the edge of the mask to maintain the sealing around the mask. The gas passing through the mask enters the transparent frame 32 through the Z-shaped tube 34. The transparent frame 32 is not full of water, leaving a certain space for gas discharge. After the gas enters the water, bubbles are generated. The rate of bubble generation is calculated to obtain the mask air tightness result. The transparent frame 32 is convenient for manual observation of bubbles. The Z-shaped tube 34 can prevent the water in the transparent frame 32 from flowing back and contacting the mask, which can not only keep the gas from entering the water to generate bubbles, but also avoid the direct contact between the water source and the mask to interfere with the detection.

[0037] The basic principles and main features of the present invention and the advantages of the present invention are shown and described above. For those skilled in the art, it is obvious that the present invention is not limited to the details of the above exemplary embodiments, and the present invention can be implemented in other specific forms without departing from the spirit or basic characteristics of the present invention.

[0038] In addition, it should be understood that although the present specification is described according to implementation modes, not every implementation mode contains only one independent technical solution. This description of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment may also be appropriately combined to form other implementation modes that can be understood by those skilled in the art.

Claims

1. A textile processing mask air tightness detection device, comprising a base (1), characterized in that: A slide table (11) is fixed on the base (1), and a detection component (3) is installed on the top of the slide table (11). The detection component (3) includes a slide seat (31). The slide seat (31) is slidably installed on the slide table (11). A transparent frame (32) is fixed on the surface of the slide seat (31). A buckle frame (35) is installed at one end of the transparent frame (32). The base (1) is provided with a moving component (2) on one side of the buckle frame (35). The moving component (2) includes an arc-shaped slide plate (21). The arc-shaped slide plate (21) is provided with two groups, and arc plates (23) are fixed on the top and bottom of the arc-shaped slide plate (21). A detection air outlet frame (24) is installed on the surface of the arc-shaped slide plate (21) on the side of the base (1) facing the buckle frame (35), and a drying air outlet frame (27) is installed on the surface of the arc-shaped slide plate (21) on the other side of the base (1). The two groups of the arc-shaped slide plates (21) are provided on the upper and lower surfaces of the arc-shaped slide plates (23). A driving assembly (4) is provided on both sides of the slide plate (21), the driving assembly (4) comprising a vertical frame (41), the two sides of the vertical frame (41) are fixedly connected to the two arc-shaped slide plates (21) and the arc plate (23), and an annular groove (42) is provided inside the vertical frame (41), a slider (45) is equidistantly slidably connected in the annular groove (42), and a buckle (48) is provided on the outer surface of the slider (45), a central tube (26) is provided at the center of the moving assembly (2), and the top and bottom of the central tube (26) are fixedly connected to the two arc-shaped slide plates (21), an air intake pipe (22) is fixed on the side of the top of the central tube (26) away from the buckle frame (35), and the air intake pipe (22) passes through the arc-shaped slide plate (21), the arc-shaped slide plate (21) located at the bottom of the air intake pipe (22) is a removal station, and the arc plate (23) at the upper end of the arc-shaped slide plate (21) is a placement station.

2. The air tightness detection device for a textile processing mask according to claim 1, characterized in that: The detection assembly (3) further comprises a Z-shaped tube (34), wherein the Z-shaped tube (34) is connected between the transparent frame (32) and the buckle frame (35), and the Z-shaped tube (34) is connected to a position close to the bottom of the transparent frame (32), and an air outlet (33) is provided at the top of the transparent frame (32).

3. The air tightness detection device for a textile processing mask according to claim 2, characterized in that: The slide table (11) is fixed with electric push rods (38) on both sides of the bottom of the slide seat (31), and the extended ends of the electric push rods (38) are fixedly connected to the slide seat (31). A sealing ring (36) is arranged on the outer ring surface of the buckle frame (35), and the buckle frame (35) and the detection air frame (24) are on the same straight line.

4. The air tightness detection device for a textile processing mask according to claim 3, characterized in that: The air inlet pipe (22) is sealed with a sealing plug (261) inserted inside, and a connecting rod (262) is fixed to the outer end of the sealing plug (261), and a transverse plate (39) is fixed to the outer end of the connecting rod (262), and connecting frames (37) are fixed on both sides of the transverse plate (39), and the connecting frames (37) are fixedly connected to both sides of the slide seat (31).

5. The air tightness detection device for a textile processing mask according to claim 1, characterized in that: The moving assembly (2) further comprises a heating rod (29), the heating rod (29) being mounted at the axis of the central tube (26), and a connecting pipe (25) being arranged at positions of the central tube (26) corresponding to the detection air outlet frame (24) and the drying air outlet frame (27), wherein a fan is mounted inside the connecting pipe (25).

6. The air tightness detection device for a textile processing mask according to claim 5, characterized in that: A spray head (241) is installed inside the detection air outlet frame (24), and the outer end of the spray head (241) is connected to a delivery pipe (28), and the delivery pipe (28) passes through the middle gap of the driving component (4) and is connected to the transparent frame (32).

7. The air tightness detection device for a textile processing mask according to claim 6, characterized in that: A mounting cross bar is fixed on the surface of the arc-shaped slide plate (21) located at the bottom of the air inlet pipe (22), and mounting frames (5) are fixed on both sides of the base (1) located at the arc-shaped slide plate (21), and the arc-shaped slide plate (21) is fixedly connected to the mounting frames (5) via the mounting cross bar.

8. The air tightness detection device for a textile processing mask according to claim 1, characterized in that: The driving assembly (4) further comprises a conveyor belt wheel (43), the center of the vertical frame (41) is hollowed out, and conveyor belt wheels (43) are rotatably mounted at the top and bottom of the hollowed-out position of the vertical frame (41), belts (44) are sleeved on the outer surfaces of the two conveyor belt wheels (43), and the conveyor belt wheels (43) in the same straight line in the vertical frames (41) on both sides of the arc-shaped slide plate (21) are connected by a shaft rod.

9. The air tightness detection device for a textile processing mask according to claim 8, characterized in that: A slide frame (46) is fixed on the outer surface of the slide block (45), and the bottom of the buckle (48) slides along the inside of the slide frame (46). One end of the slide frame (46) is fixedly connected to the belt (44).

10. The air tightness detection device for a textile processing mask according to claim 9, characterized in that: A spring (47) is fixed inside the sliding frame (46), and the other end of the spring (47) is fixedly connected to a buckle (48).