Textile cloth cleaning device
By installing a rotating capture float with a mounting shaft and attachment rod in the suction box, combined with air filtration by the filter box, the problems of warp and weft threads becoming disordered and falling during the suction of textile fabric are solved, achieving efficient cleaning of the float and stable conveying of the textile fabric.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-09
- Publication Date
- 2026-04-07
AI Technical Summary
During the suction process, the warp and weft threads of the textile fabric may become disordered or be sucked into the suction fan from below, leading to frequent malfunctions.
A textile cleaning device is designed, including a suction box, a through box, a mounting shaft, and an attachment rod. A fan is installed at the top, the mounting shaft drives the attachment rod to rotate, the attachment rod captures floating threads, and a filter box and filter plate are set to filter the air and prevent impurities from entering.
This effectively prevents the warp and weft threads of the textile from becoming misaligned and sagging, ensuring that the float is smoothly pulled away, while also preventing textile contamination and improving the stability and efficiency of equipment operation.
Smart Images

Figure CN224092212U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of auxiliary equipment for textile processing, and in particular to a textile cleaning device. Background Technology
[0002] Textile fabrics (such as gauze) are generally made from yarn through weaving. During the processing of textile fabrics, loose threads (short lint pieces attached to the fabric) may exist. These loose threads can generally be removed from the fabric using a suction method. A suction box can be used, which has an inlet and an outlet directly opposite the inlet. A fan is connected to the top (or bottom) of the suction box, and an opening (or other opening) is located directly opposite the fan. During operation, the textile fabric enters the suction box through the inlet and exits through the outlet. The fan draws outside air into the suction box through the opening, then through the textile fabric. As the air passes through the fabric, it carries the loose threads away, which are then drawn off by the fan, thus removing the loose threads. However, in actual operation, if the exhaust fan is placed above the fabric, a greater suction force is required to successfully draw in the float, which may cause the warp and weft threads on the fabric to become disordered. If the exhaust fan is placed below the fabric, the fabric may fall severely and be accidentally drawn into the exhaust fan. Therefore, there are many malfunctions during operation. Utility Model Content
[0003] To address the shortcomings of existing technologies, this utility model provides a textile cleaning device that solves the problem that textiles may become misaligned or sucked into the exhaust fan from below during the suction process.
[0004] According to an embodiment of this utility model, a textile cleaning device includes a suction box and a through box that runs horizontally through the suction box. An installation shaft is installed inside the suction box and located above the through box. A driver is installed outside the suction box to drive the installation shaft to rotate. Several attachment rods extending from one end to the other are fixedly arranged on the outer periphery of the installation shaft. An air extraction pipe is fixedly connected to the suction box, and a fan is connected to the end of the air extraction pipe. When the fan is running, the airflow inside the suction box passes through the attachment rods and enters the air extraction pipe. An inlet and an outlet are respectively provided at both ends of the through box outside the suction box. An outlet and an inlet are also provided inside the suction box, located on its top and bottom surfaces respectively. An inlet is also provided on the bottom surface of the suction box. A filter box that can cover the inlet is also pulled out of the suction box. The top surface of the filter box is open, and a through frame communicating with the inlet is provided on the bottom surface. A filter plate is also pulled out of the filter box. The exhaust fan is positioned at the top, and the textile fabric enters through the inlet and exits through the outlet. Unlike existing technologies, this solution features a through-hole on the suction box for the textile fabric to pass through. The textile fabric is prevented from excessively shifting upwards or downwards by the suction box's limiting mechanism. Additionally, the suction box contains an installation shaft and an attachment rod. The attachment rod rotates with the installation shaft, allowing the float to attach before being drawn away by the exhaust fan. This allows the float to smoothly leave the textile fabric and be captured by the attachment rod, even with relatively low suction force from the exhaust fan. This also prevents the warp and weft threads from becoming misaligned or the textile fabric from accidentally falling, solving the problem in existing technologies where the textile fabric may become misaligned or be sucked into the exhaust fan from below during the suction process.
[0005] Furthermore, several support columns are installed inside the box, extending from the inlet to the outlet.
[0006] Furthermore, a pressure plate is vertically installed through the top surface of one end of the box's inlet, and the bottom surface of the pressure plate is curved.
[0007] Furthermore, an adjusting rod can be detachably connected through the box. The adjusting rod is vertically positioned and has an upper limit ring and a lower limit ring fixedly mounted on it. The end of the pressure plate located outside the box is also fixedly connected to a horizontal plate with a through hole. The adjusting rod passes through the through hole, and the upper limit ring and the lower limit ring are located above and below the through hole, respectively.
[0008] Furthermore, two pressure pillars are also installed inside the box, one near the inlet and one near the outlet, and the two pressure pillars are located above all the support pillars.
[0009] Furthermore, several protrusions are provided on the inner top surface of the box, extending from one end to the other. The cross-section of the protrusions is arc-shaped, and the air outlets include multiple protrusions spaced apart from the protrusions.
[0010] Furthermore, the top surface of the suction box is provided with two upper convex covers that are close to the inlet and outlet respectively. The mounting shaft includes a pair located directly below the two upper convex covers. The upper ends of the two upper convex covers are connected to suction pipes, and the attachment rod part on the mounting shaft is incorporated into the upper convex covers.
[0011] Furthermore, the top surface of the suction box is recessed between the two upper convex covers to form a lower convex part, the bottom surface of which is arc-shaped and close to the top surface passing through the box.
[0012] Furthermore, the air intake includes a pair located on both sides of the lower protrusion.
[0013] Furthermore, the filter plate includes an outer frame and multiple layers of steel mesh that are detachably fixed inside the outer frame. The steel mesh has mesh holes of equal size, with the lower mesh holes being larger than the upper mesh holes.
[0014] Compared with the prior art, the present invention has the following beneficial effects:
[0015] A through-hole is provided on the suction box for the fabric to pass through. Inside the through-hole, the fabric is vertically and vertically limited, preventing accidental excessive downward or upward displacement. The suction box also contains a mounting shaft and an attachment rod. The attachment rod rotates with the mounting shaft, allowing floats to attach before being drawn away by the suction fan. This allows the floats to smoothly leave the fabric and be captured by the attachment rod, even with relatively low suction from the fan. This also prevents the warp and weft threads from becoming misaligned or the fabric from accidentally falling, solving the problem in existing technologies where the fabric may become misaligned or sucked into the fan from below during suction. The included filter box and its filter plate filter the air entering the suction box, preventing the introduction of additional impurities that could contaminate the fabric. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the internal overall structure of an embodiment of the present utility model;
[0017] Figure 2 This is a schematic diagram of the end face structure of the suction box in an embodiment of the present invention;
[0018] Figure 3 for Figure 1 Enlarged schematic diagram of a local structure at point A;
[0019] Figure 4 for Figure 1 Enlarged schematic diagram of the local structure at point B;
[0020] Figure 5 for Figure 1 Enlarged schematic diagram of the local structure at point C;
[0021] Figure 6This is an enlarged schematic diagram of a portion of the filter plate structure according to an embodiment of the present utility model;
[0022] Figure 7 for Figure 3 Enlarged schematic diagram of the local structure at point D;
[0023] In the above attached figures:
[0024] Suction box 1, through box 2, textile fabric 3, air outlet 4, air inlet 5, air intake 6, suction pipe 7, mounting shaft 8, driver 9, attachment rod 10, upper convex cover 11, round hole 12, mounting plate 13, sleeve 14, first extension cylinder 15, second extension cylinder 16, lower convex part 17, arc transition surface 18, filter box 19, filter plate 20, outer frame 21, steel mesh 22, support block 23, locking rod 24, connecting plate 25, positioning rod 26, ear plate 27, upright plate 28, support plate 29, recess 30, support column 31, pressure plate 32, adjusting rod 33, upper limit ring 34, lower limit ring 35, horizontal plate 36, through hole 37, mounting block 38, pressure column 39, protrusion 40, guide plate 41, inlet 42, outlet 43, through frame 44, threaded hole 45. Detailed Implementation
[0025] The technical solution of this utility model will be further described below with reference to the accompanying drawings and embodiments.
[0026] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc., indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.
[0027] like Figure 1-4As shown, this embodiment provides a textile cleaning device, which includes a suction box 1 and a through box 2 that runs horizontally through the suction box 1. The two ends of the through box 2 are located outside the suction box 1, and an inlet 42 and an outlet 43 are respectively provided on the end face of the through box 2. The textile fabric 3 is introduced into the through box 2 through the inlet 42 and exited through the outlet 43 after passing through the through box 2. Throughout the process, the textile fabric 3 also passes through the suction box 1. Furthermore, the through box 2 is also provided with a device located inside the suction box 1. Furthermore, the suction box 1 has an air outlet 4 and an air inlet 5 located on its top and bottom surfaces, respectively. An air inlet 6 is also provided on the bottom surface of the suction box 1. An air extraction pipe 7 is fixedly connected to the suction box 1, and a fan is connected to the end of the pipe 7. When the fan is running, air from outside the suction box 1 enters through the air inlet 6, then through the air inlet 5, passes through the through-box 2, passes through the textile fabric 3, and re-enters the suction box 1 through the air outlet 4, finally being drawn in by the fan. Moreover, the suction box 1 also has an air outlet 4 located inside the through-box 2. The mounting shaft 8 is located above the suction box 1, and a driver 9 is installed outside the suction box 1 to drive the mounting shaft 8 to rotate. Several attachment rods 10 are also fixedly arranged on the outer periphery of the mounting shaft 8, extending from one end to the other. When the exhaust fan is running, the airflow in the suction box 1 enters the exhaust pipe 7 after passing through the attachment rods 10. When the air passes through the textile fabric 3, it can carry the floating thread on the textile fabric 3 upward and away. At the same time, the driver 9 drives the mounting shaft 8 to rotate, and the rotating attachment rods 10 can be used to attach the floating thread. The floating thread can move upward with the rotation of the attachment rods 10 and then be drawn in by the exhaust fan. This arrangement allows the exhaust fan to provide a small suction force so that the floating thread can leave the textile fabric 3 smoothly and be captured by the attachment rods 10. At the same time, this also avoids the warp and weft threads of the textile fabric 3 from becoming disordered or the textile fabric 3 from falling down accidentally. This solves the problem that the warp and weft threads of the textile fabric 3 may become disordered during the suction process in the prior art. In addition, the exhaust fan is located above in this solution, which also solves the problem that the textile fabric 3 may be sucked into the exhaust fan from below.
[0028] like Figure 1 , 2As shown, the top surface of the suction box 1 is provided with two upper convex covers 11, respectively near the inlet 42 and the outlet 43. The mounting shaft 8 includes a pair located directly below the two upper convex covers 11. The upper ends of the two upper convex covers 11 are connected to suction pipes 7. The attachment rods 10 on the mounting shaft 8 are partially inserted into the upper convex covers 11. The upper convex covers 11 allow part of the attachment rods 10 to be inserted / removed during rotation. During the rotation of the mounting shaft 8, when the attachment rods 10 are at their lowest position, they are close to the top surface passing through the box 2. At this time, the float moves a small distance upward with the air and can contact the attachment rods 10. The attachment rods 10 can be arranged densely and have a needle-like structure, so that the float can be attached to the attachment rods 10 under the upward movement of the air. Then, as the mounting shaft 8 rotates and the air continues to move upward, the float can move smoothly upward. Near the highest point, that is, where the upper convex cover 11 and the exhaust pipe 7 are connected, the air continues to move upward. Under the air carrying, most of the float can detach from the attachment rod 10 and be drawn away by the exhaust fan through the exhaust pipe 7. The remaining small part continues to be attached to the attachment rod 10. At the same time, since the air is upward throughout the process, the small part of the float attached to the attachment rod 10 is also continuously moving closer to the mounting shaft 8. Therefore, it can continuously supply the float for a period of time (such as the time required to finish a round of suction operation) and transfer most of the float to the exhaust pipe 7, thereby ensuring the normal operation of the equipment.
[0029] In a further embodiment, the driver 9 can be a drive motor as in the prior art. Two sets of drive motors and mounting shafts 8 are provided, respectively located at both ends of the suction box 1. In an even further embodiment, the drive motor and mounting shaft 8 can be made as a single detachable unit, facilitating the cleaning of the attachment rods 10 on the mounting shaft 8. Specifically, a circular hole 12 is provided on the side wall of the suction box 1 below one end of the upper convex cover 11, forming a circle with the upper convex cover 11. The diameter of this circular hole 12 is slightly larger than the maximum circular diameter of the outer edges of all attachment rods 10. A mounting plate 13 can be detachably installed outside this circular hole 12, and the driver 9 is fixed to the mounting plate 13. One end of the mounting shaft 8 rotates through the mounting plate 13 and is fixedly connected to the shaft of the drive motor, while the other end can be rotatably connected to the inner wall of the suction box 1 on the opposite side. More specifically, a sleeve 14 that allows the end of the mounting shaft 8 to be inserted and rotate freely can be fixedly connected to the inner wall of the suction box 1. The sleeve 14 provides rotational support for the end of the mounting shaft 8 away from the driver 9, so that the mounting shaft 8 can stably rotate when the driver 9 is running. When it is necessary to clean the attachment rod 10, the mounting plate 13 can be removed, and the driver 9, the mounting plate 13, and the mounting shaft 8 can be pulled out together. The detachable connection of the mounting plate 13 can be made using conventional connection methods, such as bolt locking.
[0030] In a further embodiment, a first extension cylinder 15 and a second extension cylinder 16 located on both sides of the suction box 1 can be fixedly connected between the upper convex cover 11 and the suction box 1. The mounting plate 13 and the first extension cylinder 15 are detachably connected, and the sleeve 14 is fixed inside the second extension cylinder 16 (the first extension cylinder 15 is open at both ends, one end is connected to the mounting plate 13 and the other end is connected to the round hole 12, while the second extension cylinder 16 is closed at one end for the sleeve 14 to fix, and the other end is connected to the suction box 1 and the upper convex cover 11). This arrangement allows both ends of the mounting shaft 8 to extend beyond both sides of the suction box 1, and further allows the attachment rod 10 to completely cover the through box 2 below, maximizing the attachment range of the float line.
[0031] In a more detailed design, the attachment rod 10 can also be an arc-shaped structure. When the driver 9 is running, the rotation direction of the mounting shaft 8 is the same as the bending direction of the arc-shaped structure. In this way, when the mounting shaft 8 rotates, the attachment rod 10 can provide a similar upward scooping assistance. Combined with air movement, it makes it easier for the float line to attach to the attachment rod 10. At the same time, at the connection between the upper convex cover 11 and the air extraction pipe 7, it provides a similar upward throwing effect. Combined with air movement, it makes most of the float line detach from the attachment rod 10 more smoothly.
[0032] like Figure 1 , 5 As shown, the top surface of the suction box 1 is recessed 30 downwards between the two upper convex covers 11 to form a lower convex part 17. The bottom surface of the lower convex part 17 is arc-shaped and close to the top surface of the through box 2. That is, the lower convex part 17 divides the space of the suction box 1 above the through box 2 into two parts, front and back. The corresponding exhaust fans are assisted by two mounting shafts 8 to make the float line be drawn away. At the same time, there are arc-shaped transition surfaces 18 on both sides of the lower convex part 17. The air inlets 6 include a pair located on both sides of the lower convex part 17. Air enters from the air inlets 6 on both sides, passes through the through box 2, and then comes into contact with the arc-shaped transition surfaces 18. The air is then guided by the arc-shaped transition surfaces 18 to move more smoothly toward the mounting shafts 8. At the same time, the curved square attachment rod 10 is directly opposite the arc-shaped transition surface 18, so that the float line is more smoothly attached to the attachment rod 10.
[0033] like Figure 1 , 3As shown in Figure 6, the suction box 1 is also equipped with a pair of filter boxes 19 that can be pulled out to cover the two air inlets 6 respectively. The top surface of the filter box 19 is open, and the bottom surface is provided with a through frame 44 that communicates with the air inlets 6. A filter plate 20 is also pulled out inside the filter box 19. External air enters the filter box 19 through the air inlets 6 and then enters the suction box 1 through the filter plate 20. The filter box 19 located below the box 2 inside the suction box 1 can filter the intake air, thereby preventing the introduction of external impurities. Specifically, the filter plate 20 can be a three-dimensional mesh structure. For example, the filter plate 20 can include an outer frame 21 and a multi-layer steel mesh that can be detachably fixed inside the outer frame 21. 22. The steel mesh 22 has uniformly sized mesh holes, with the lower mesh holes being larger than the upper mesh holes, thus effectively intercepting impurities in the air passing through the filter plate 20. More specifically, multiple support blocks 23 can be fixedly connected to the inner wall of the outer frame 21. For example, multiple sets of two support blocks 23 can be fixed to the inner wall on opposite sides, with two sets of support blocks 23 connected to one steel mesh 22. The steel mesh 22 can be detachably locked to the support blocks 23 by locking rods 24 (such as bolts). A certain distance is left between the upper and lower steel meshes 22, and the steel mesh 22 itself has a certain degree of flexibility, so it can be disassembled one by one in the later stage, which is convenient for cleaning and maintenance.
[0034] Furthermore, a connecting plate 25 is fixedly connected to one end of the outer frame 21. The outer frame 21 and the filter box 19 are designed to be pulled out, and the connecting plate 25 is detachably connected to the pull-out box via a positioning rod 26 (e.g., threaded connection). The filter box 19, which connects to the internal filter plate 20 and other structures, has a considerable weight and can maintain a certain stability after being inserted into the suction box 1. The filter plate 20 is fixed to the filter box 19 as a whole via the connecting plate 25 and the positioning rod 26. When cleaning, the entire filter box 19 is pulled out first, and then the filter plate 20 is removed for cleaning. Alternatively, the filter plate 20 can be directly removed and pulled out for cleaning. Furthermore, one end of the filter box 19 is located outside the suction box 1 and is fixedly connected to a pair of ear plates 27, which allow the filter box 19 to be easily pulled out.
[0035] like Figure 1 , 5 As shown, a vertical plate 28 is fixedly connected to the middle section of the suction box 1, and support plates 29 are also connected to both ends. The vertical plate 28 and support plates 29 enable the suction box 1 to stand on the ground. The vertical plate 28 extends into the suction box 1 and is fixedly connected to the through box 2. In this way, the vertical plate 28 also provides support for the middle section of the through box 2. The air inlet 6 and the filter box 19 are located on both sides of the vertical plate 28, and the vertical plate 28 is also provided with a recess 30 for the end of the filter box 19 to abut, thus providing more stable support and positioning for the filter box 19.
[0036] like Figure 1-7 As shown, the inlet 42 and outlet 43 in this scheme are relatively small in height, while the air inlet 6 is larger. When the exhaust fan is running, air mainly enters through the air inlet 6. More specifically, several support columns 31 are also provided inside the through box 2, arranged from the inlet 42 to the outlet 43. These support columns 31 are at the same level, providing upward support for the textile fabric 3. This allows the air inlet 5 on the through box 2 to be set larger. For example, the air inlet 5 can be a pair located on both sides of the lower protrusion 17. Such air inlets 5 allow more air to enter the through box 2 from below, rather than from the inlet 42 and outlet 43 at both ends of the through box 2. When the textile fabric 3 passes through the through box 2, auxiliary tools can be used, such as connecting a pair of traction strips to the end of the textile fabric 3. The two traction strips can be made of steel and have a length greater than the overall length of the through box 2. In this way, the traction strips pass smoothly through the through box 2, thereby allowing the textile fabric 3 to pass smoothly as well.
[0037] Furthermore, a pressure plate 32 is vertically installed through the top surface of one end of the inlet 42 of the through box 2. The bottom surface of the pressure plate 32 is arc-shaped. When the pressure plate 32 moves vertically, the arc-shaped surface of the bottom surface can be raised / lowered. During the passage of the traction strip of the textile fabric 3, the arc-shaped surface is raised to avoid obstruction. After the traction strip has completely passed through and been removed, the arc-shaped surface can be lowered, so that the pressure plate 32 presses the textile fabric 3 down to below the top surface of the first support column 31. When the exhaust fan is running, the textile fabric 3 will move slightly upward. The pressure plate 32 limits the entry of the textile fabric 3 at this point to prevent the textile fabric 3 from pressing upward against the top surface of the through box 2. More specifically, an adjusting rod 33 can also be detachably connected to the through box 2. The adjusting rod 33 is vertically set and has an upper limit ring 34 and a lower limit ring 35 fixedly installed on it. The end of the pressure plate 32 located outside the through box 2 is also fixedly connected to a horizontal plate 36. A through hole 37 is provided on the horizontal plate 36, through which the adjusting rod 33 passes. The upper limit ring 34 and the lower limit ring 35 are located above and below the through hole 37, respectively. More specifically, an installation block 38 is fixedly connected to the top surface of the horizontal plate 36 outside the suction box 1. The installation block 38 is located below the horizontal plate 36 and is provided with a threaded hole 45. The lower end of the adjusting rod 33 is provided with a threaded section that is threaded to the threaded hole 45. The lower end of the adjusting rod 33 is threaded to the threaded hole 45. At the same time, the distance between the upper limit ring 34 and the lower limit ring 35 is greater than the thickness of the horizontal plate 36, that is, the horizontal plate 36 will not contact the upper limit ring 34 and the lower limit ring 35 at the same time, and neither of them will pass through the through hole 37. When the adjusting rod 33 rotates upward, it drives the lower limit ring 35 to move upward and contact the horizontal plate 36. If it continues to rotate, it will lift the horizontal plate 36 to move upward, so that the pressure plate 32 can move upward. Conversely, the pressure plate 32 can move downward.
[0038] Furthermore, two pressure pillars 39 are rotatably installed inside the through-box 2, near the inlet 42 and outlet 43 respectively. These two pressure pillars 39 are located above all the support pillars 31 and are positioned above the textile fabric 3. When the exhaust fan is running, they provide upper limits at both ends of the textile fabric 3, preventing it from excessively rising and sticking to the top surface of the through-box 2. Both the support pillars 31 and the pressure pillars 39 are round rod structures, which can be fixedly connected to the through-box 2 or rotatably connected to it. The movement of the textile fabric 3 is mainly achieved through externally applied traction. The support pillars 31 and the pressure pillars 39 have smooth arc surfaces in direct contact with the textile fabric 3, minimizing their impact. In an even more advanced design, several protrusions 40 are also provided on the inner top surface of the through-box 2, extending from one end to the other. The cross-section of each protrusion 40 is arc-shaped. Furthermore, the air outlet 4 includes multiple outlets spaced apart from the protrusions 40. The bottom surfaces of these protrusions 40 are also arc-shaped, similar to the pressure column 39, to prevent the textile fabric 3 from directly adhering to the inner top surface of the passage box 2. The air outlets 4 are spaced apart from the protrusions 40, and they are all elongated, so that the floating thread of the textile fabric 3 can gradually pass through the air outlet 4 during movement, without directly adhering to the inner top surface of the passage box 2. Moreover, the end of the passage box 2 with the inlet 42 can be an open structure, which can facilitate the insertion of the traction bar into the passage box 2. A pair of guide plates 41 can also be fixedly connected to the top surface of the open end, and the pressure plate 32 slides through the two guide plates 41, so that the pressure plate 32 moves up and down more smoothly. At the same time, the pressure plate 32 and the guide plate 41 also play a role in preventing a large amount of air from being sucked into the passage box 2.
[0039] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this utility model and are not intended to limit it. Although this utility model has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of this utility model without departing from the spirit and scope of the technical solutions of this utility model, and all such modifications or substitutions should be covered within the scope of the claims of this utility model.
Claims
1. A textile cleaning device, characterized in that, The device includes a suction box and a through box that runs horizontally through the suction box. Inside the suction box, there is a mounting shaft located above the through box. Outside the suction box, there is a driver that rotates the mounting shaft. Several attachment rods extending from one end to the other are fixedly arranged on the outer periphery of the mounting shaft. A suction pipe is fixedly connected to the suction box, and a fan is connected to the end of the suction pipe. When the fan is running, the airflow inside the suction box passes through the attachment rods and enters the suction pipe. At both ends of the through box, there are inlets and outlets located outside the suction box. Inside the through box, there are outlets and inlets located on its top and bottom surfaces, respectively. An inlet is also located on the bottom surface of the suction box. A filter box that covers the inlet is also pulled out of the suction box. The top of the filter box is open, and the bottom surface has a through frame communicating with the inlet. A filter plate is also pulled out of the filter box.
2. The textile cleaning device as described in claim 1, characterized in that, Inside the box, there are several support pillars arranged from the inlet to the outlet.
3. The textile cleaning device as described in claim 2, characterized in that, A pressure plate is vertically installed through the top surface of one end of the box's inlet, and the bottom surface of the pressure plate is curved.
4. The textile cleaning device as described in claim 3, characterized in that, An adjusting rod is detachably connected through the box. The adjusting rod is vertically set and has an upper limit ring and a lower limit ring fixed on it. The end of the pressure plate located outside the box is also fixedly connected to a horizontal plate with a through hole. The adjusting rod passes through the through hole, and the upper limit ring and the lower limit ring are located above and below the through hole, respectively.
5. The textile cleaning device as described in claim 3, characterized in that, Inside the box, there are two pressure pillars that rotate and are located near the inlet and outlet respectively, and these two pressure pillars are located above all the support pillars.
6. The textile cleaning device as described in claim 2, characterized in that, The inner top surface of the box is also provided with several protrusions extending from one end to the other. The cross-section of the protrusions is arc-shaped, and the air outlets include multiple protrusions spaced apart from the protrusions.
7. A textile cleaning device according to any one of claims 1-6, characterized in that, The top surface of the suction box is provided with two upper convex covers that are close to the inlet and outlet respectively. The mounting shaft includes a pair located directly below the two upper convex covers. The upper ends of the two upper convex covers are connected to suction pipes. The attachment rod part on the mounting shaft is incorporated into the upper convex covers.
8. The textile cleaning device as described in claim 7, characterized in that, The top surface of the suction box is recessed between the two upper convex covers to form a lower convex part. The bottom surface of the lower convex part is arc-shaped and close to the top surface passing through the box.
9. A textile cleaning device as described in claim 8, characterized in that, The air intake includes a pair located on both sides of the lower protrusion.
10. A textile cleaning device as described in claim 9, characterized in that, The filter plate includes an outer frame and multiple layers of steel mesh that can be detachably fixed inside the outer frame. The steel mesh has mesh holes of equal size, with the mesh holes at the bottom being larger than those at the top.