A powder suction machine for flannel processing

CN119972665A8Inactive Publication Date: 2025-07-08JIANGSU HONGSHU TEXTILE TECH CO LTD
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Patent Information

Application Number
CN202510357429.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-25
Publication Date
2025-07-08
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The dense three-dimensional interwoven structure of flannel makes it difficult for airflow to penetrate to the roots of the villi for deep cleaning, and the enhanced airflow may cause the roots of the villi to break, affecting the appearance quality of the finished fabric.

Method used

A powder absorbing machine for flannel processing is designed, including a conveying device, a powder absorbing chamber, a rotating tube, a tapping plate, a discrete drive unit and an absorbing unit. The discrete drive unit drives the slap plate to hit the flannel, and combines the recoil to provide gas shock, the cushioning member buffers the strike force, and the flannel interior is cleaned deeply through the impact tube.

Benefits of technology

It realizes rapid and comprehensive cleaning of flannel, effectively separates impurities on the bottom of the flannel, prevents excessive slap damage to the flannel fiber structure, improves the thoroughness and efficiency of cleaning, and extends the service life of flannel.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of textile conveying, and specifically relates to a powder suction machine for flannel processing, which includes a conveying device and a powder suction bin, and further includes a rotating pipe movably installed in the powder suction bin; and a plurality of them are provided, and the plurality of rotating pipes are respectively located above the conveying device; a slapping plate provided on the rotating pipe and a plurality of them are provided; a discrete driving unit provided in the powder suction bin and connected to the rotating pipe and the slapping plate, for driving the rotating pipe to rotate and synchronously driving a plurality of slapping plates provided on the rotating pipe to rotate; an absorption unit provided on the powder suction bin for extracting the dust separated from the flannel by the slapping of the slapping plate from the powder suction bin. This powder suction machine for flannel processing can effectively separate impurities such as dust and fine particles at the bottom of the fluff from the flannel by driving the slapping plate to slap the flannel through the discrete driving unit. This mechanical slapping method is more efficient than the traditional air blowing and can quickly and comprehensively clean the flannel.
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Description

Technical Field

[0001] The invention relates to the technical field of textile conveying, in particular to a powder suction machine for flannel processing. Background Art

[0002] In the flannel processing, dust removal is a crucial link, and its importance is reflected in many aspects. First of all, dust removal is crucial to improving the quality of the finished product. Flannel is favored for its soft and delicate fluff texture. If fiber debris, dust and other impurities generated during processing remain on the surface of the fabric, it will seriously affect its appearance and touch, and may cause problems such as uneven fluff, pilling or color difference. Through dust removal, the surface of the fabric can be kept clean, providing a uniform base for subsequent dyeing and finishing processes, thereby improving the quality of the final product. Secondly, dust removal helps protect production equipment. Textile machinery is prone to accumulate fiber dust in the combing, spinning and other links. Long-term accumulation may cause equipment components to clog and increase the failure rate. Regular dust removal can not only reduce mechanical wear and extend equipment life, but also reduce maintenance costs and ensure the smooth progress of the production process.

[0003] Flannel materials are very easy to absorb dust and impurities during the production and processing due to their unique fiber structure and fluff characteristics. These dusts not only pollute the surface of the material, but also deeply embed into the underlying structure of the fluffy fluff through electrostatic action, causing quality risks to subsequent printing, dyeing, sewing and other processes. The current industry uses air jet technology to clean dust. However, although the surface dust of flannel can be effectively stripped by high-pressure airflow, it is limited by the dense three-dimensional interwoven structure of the fluff, which makes it difficult for the airflow to penetrate to the root of the fluff for deep cleaning. If the airflow is provided to complete the cleaning of the root of the fluff, it will lead to the probability of the root of the fluff breaking, affecting the appearance quality of the finished fabric. For this reason, we propose a powder suction machine for flannel processing. Summary of the invention

[0004] One of the technical problems to be solved by the present application is that due to the dense three-dimensional interwoven structure of flannel hair, it is difficult for airflow to penetrate to the hair roots for deep cleaning. If airflow is provided to clean the hair roots, the hair roots are more likely to break, affecting the appearance quality of the finished fabric.

[0005] In order to solve the above-mentioned technical problems, the embodiment of the present application provides a powder suction machine for flannel processing, including a conveying device, a powder suction bin, and a rotating tube, which is movably installed in the powder suction bin; and multiple rotating tubes are provided, and the multiple rotating tubes are respectively located above the conveying device; a slapping plate is arranged on the rotating tube, and multiple slapping plates are provided; a discrete driving unit is arranged in the powder suction bin and connected to the rotating tube and the slapping plate, and is used to drive the rotating tube to rotate, and synchronously drive the multiple slapping plates arranged on the rotating tube to rotate; an absorption unit is arranged on the powder suction bin, and is used to extract the dust separated by the slapping of the slapping plate from the powder suction bin.

[0006] In some embodiments, the discrete drive unit includes a slapping piece arranged in the powder suction bin, which controls the slapping plate to slap the flannel. A recoil piece is arranged in the powder suction bin, and the recoil piece is used to perform gas impact on the bottom surface of the flannel. A power piece is arranged on the recoil piece, and the power piece is used to provide power for the recoil piece. A buffer piece is arranged on the slapping plate to buffer the slapping force of the slapping plate on the flannel.

[0007] In some embodiments, the slapping member includes a rotating shaft arranged in the powder suction bin, one end of the rotating shaft passes through the powder suction bin, the other end of the rotating shaft located in the powder suction bin is connected to a rotating tube, a plurality of connecting ropes are arranged on the rotating tube, the connecting ropes are connected to the slapping plate, a power worm gear is arranged at one end of the rotating shaft located outside the powder suction bin, a plurality of positioning plates are arranged on the powder suction bin, a power worm screw engaged with the power worm gear is rotatably arranged on the positioning plate, a driving motor is arranged on the powder suction bin, and a power output end of the driving motor is connected to the power worm screw.

[0008] In some embodiments, the recoil part includes a plurality of pneumatic bins arranged in a powder suction bin, an extrusion plate is slidably arranged in the pneumatic bin, an extrusion spring is arranged on the extrusion plate, a rotating shaft is rotatably arranged in the pneumatic bin, one end of the rotating shaft passes through the pneumatic bin, a pushing block is arranged at one end of the rotating shaft located in the pneumatic bin, the pushing block is in contact with the side of the extrusion plate away from the extrusion spring, a plurality of recoil grooves are opened on the pneumatic bin, the recoil grooves are connected with the pneumatic bin, and a pushing groove connected with the recoil groove is arranged on the conveying device.

[0009] In some embodiments, the power part includes a synchronous worm gear arranged on a rotating shaft, and the synchronous worm gear is arranged at one end of the rotating shaft located outside the pneumatic bin; a fixed plate is arranged on the powder suction bin, and a synchronous worm is rotatably arranged on the fixed plate; an extension rod is arranged on the powder suction bin, and one end of the extension rod passes through the powder suction bin; a driving gear 1 is arranged on the synchronous worm; a driving gear 2 that meshes with the driving gear 1 is arranged at one end of the extension rod located in the powder suction bin; a transmission shaft is rotatably arranged on the powder suction bin, and a transmission pulley is arranged on the transmission shaft, the rotating shaft and the extension rod, and a transmission belt is arranged on the transmission pulley.

[0010] In some embodiments, the buffer member includes a diverter bin arranged in the rotating tube, a ventilation pipe is arranged on the diverter bin, a buffer bin is provided on the slapping plate, the buffer bin is connected to the ventilation pipe, a plurality of air holes are provided on the side of the slapping plate in contact with the flannel, the air holes are connected to the buffer bin, a connecting hole is provided on the diverter bin, a transfer bin is provided in the powder suction bin, the transfer bin is rotatably connected to the rotating shaft and the rotating tube, a docking hole for use with the connecting hole is provided on the transfer bin, a docking tube is provided on the powder suction bin, the docking tube is connected to the transfer bin, a diverter pipe is provided on the docking tube, and an air supply pipe is provided on the diverter pipe.

[0011] In some embodiments, the absorption unit includes an absorption piece arranged on the powder absorption bin, which is used to absorb the dust in the powder absorption bin. The powder absorption bin is provided with an impact piece, which is used to drive the dust impurities that are knocked off the flannel to fly into the powder absorption bin.

[0012] In some embodiments, the absorption member includes a suction pipe arranged on the powder suction bin, the suction pipe is connected to the powder suction bin, a synchronous pipe is arranged on the suction pipe, a discharge pipe is arranged on the powder suction bin, the discharge pipe is connected to the synchronous pipe, a dust suction pump is arranged in the discharge pipe, a baffle is arranged at the discharge port in the discharge pipe, and the discharge pipe is connected to the air supply pipe.

[0013] In some embodiments, the impact member includes a guide pipe arranged on the discharge pipe, a connecting pipe is arranged on the guide pipe, an impact bin is arranged on the powder suction bin, the impact bin is connected with the connecting pipe, a plurality of impact tubes are arranged in the powder suction bin, the impact tube is connected with the impact bin, and the impact tube is a retractable pipe, an impact groove is opened at the bottom of the impact tube, a guide plate is arranged at the bottom of the impact tube, and the guide plate is an arc-shaped plate.

[0014] In some embodiments, a buffer groove is provided on the conveying device at the position of the pushing groove, a plurality of buffer springs are arranged in the buffer groove, a buffer plate is arranged on the buffer spring, and the buffer plate is a hollow plate made of silicone material.

[0015] The present invention has at least the following beneficial effects:

[0016] 1. The discrete drive unit drives the flapping plate to flap the flannel, which can effectively separate impurities such as dust and fine particles at the bottom of the fluff from the flannel. This mechanical flapping method is more efficient than traditional manual flapping or wind blowing, and can quickly and comprehensively clean the flannel;

[0017] 2. The buffer can buffer the impact between the slapping plate and the flannel, preventing the fiber structure of the flannel from being damaged due to excessive slapping. This is particularly important for protecting precious or delicate flannel products, which can extend their service life and maintain their original texture;

[0018] 3. The benefit of the recoil piece is that it can provide additional gas impact in the opposite direction of the slapping plate during the slapping process. This two-way force can further enhance the slapping effect and make it easier to remove impurities from the flannel. At the same time, this design may also help reduce energy loss during the slapping process and improve overall efficiency.

[0019] 4. Impurities inside the flannel are removed by inserting the impact tube deep into the flannel and ventilating the impact tube. The impact tube can penetrate deep into the flannel, allowing the gas to directly act on the area where the impurities are located. This deep cleaning capability ensures that the impurities are effectively removed from the flannel, improving the thoroughness of the cleaning. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0021] Figure 2 For the present invention Figure 1 Schematic diagram of the structure of the powder suction bin removed;

[0022] Figure 3 For the present invention Figure 2 Schematic diagram of the structure of the dissection conveying device;

[0023] Figure 4 It is a schematic diagram of the cross-sectional structure of the rotating tube and the slapping plate of the present invention;

[0024] Figure 5 For the present invention Figure 4 Another structural diagram;

[0025] Figure 6 It is a schematic diagram of the cross-sectional structure of the rotating tube of the present invention;

[0026] Figure 7 This is a schematic diagram of the explosion structure of the recoil piece of the present invention;

[0027] Figure 8This is a schematic diagram of the absorption unit structure of the present invention;

[0028] Fig. 9 For the present invention Figure 8 Schematic diagram of the enlarged structure of the middle A area;

[0029] Fig.10 This is a schematic diagram of the cross-sectional structure of the discharge pipe of the present invention;

[0030] Fig.11 This is a structural diagram of Embodiment 2 of the present invention.

[0031] In the figure: 1. conveying device; 2. powder suction bin; 3. rotating tube; 4. slapping plate; 5. discrete drive unit; 6. slapping member; 61. rotating shaft; 62. connecting rope; 63. power worm gear; 64. positioning plate; 65. power worm; 66. driving motor; 7. recoil member; 71. pneumatic bin; 72. extrusion plate; 73. extrusion spring; 74. rotating shaft; 75. pushing block; 76. recoil slot; 77. pushing slot; 8. power member; 81. synchronous worm gear; 82. fixing plate; 83. synchronous worm; 84. extension rod; 85. transmission shaft; 86. transmission pulley; 87. transmission belt; 88. driving gear 1; 89 , driving gear 2; 9, buffer; 91, diversion bin; 92, ventilation pipe; 93, buffer bin; 94, air hole; 95, connecting hole; 96, transfer bin; 97, docking hole; 98, docking pipe; 99, diversion pipe; 910, air supply pipe; 10, absorption unit; 11, absorption; 111, suction pipe; 112, synchronization pipe; 113, discharge pipe; 114, dust suction pump; 115, baffle; 12, impact piece; 121, guide pipe; 122, connecting pipe; 123, impact bin; 124, impact pipe; 125, impact groove; 126, guide plate; 13, buffer groove; 14, buffer spring; 15, buffer plate. DETAILED DESCRIPTION

[0032] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0033] Example 1: Please refer to Figure 1-Figure 10 The present invention provides a technical solution: a powder suction machine for flannel processing, comprising a conveying device 1, a powder suction bin 2, and a rotating tube 3, which is movably installed in the powder suction bin 2; and multiple rotating tubes 3 are provided, and the multiple rotating tubes 3 are respectively located above the conveying device 1; a slapping plate 4 is provided on the rotating tube 3, and multiple slapping plates are provided.

[0034] The discrete driving unit 5 is arranged in the powder suction bin 2 and connected with the rotating tube 3 and the clapping plate 4, and is used for driving the rotating tube 3 to rotate and synchronously driving the multiple clapping plates 4 arranged on the rotating tube 3 to rotate.

[0035] The advantage of the discrete drive unit 5 is that the discrete drive unit 5 can be used to drive the slapping plate 4 to slap the flannel, which can effectively separate impurities such as dust and fine particles at the bottom of the fluff from the flannel. This mechanical slapping method is more efficient than traditional manual slapping or wind blowing, thereby achieving the purpose of quickly and comprehensively cleaning the flannel. At the same time, the setting of the buffer 9 can buffer the slapping force between the slapping plate 4 and the flannel, prevent damage to the fiber structure of the flannel due to excessive slapping, and avoid the flannel hair from being broken due to the slapping of the slapping plate 4. This is particularly important for protecting precious or delicate flannel products, and can also extend their service life and maintain their original texture.

[0036] Finally, the benefit of the recoil member 7 is that it can provide additional gas shock in the opposite direction of the slapping of the slapping plate 4 during the slapping process. This bidirectional force can further enhance the slapping effect, making it easier to remove impurities from the flannel and further improve the protection of the flannel during the slapping process. At the same time, this design may also help reduce energy loss during the slapping process and improve overall efficiency.

[0037] The absorption unit 10 is disposed on the powder suction bin 2 and is used to extract the dust separated by the flapping plate 4 from the powder suction bin 2 .

[0038] The advantage of the absorption unit 10 is that by inserting the impact tube 124 deep into the flannel and ventilating the impact tube 124 to remove impurities inside the flannel, the impact tube 124 can penetrate deep into the flannel, so that the gas can directly act on the area where the impurities are located. This deep cleaning capability ensures that the impurities are effectively removed from the flannel, thereby improving the thoroughness of cleaning. This deep cleaning mechanism not only improves the comprehensiveness and thoroughness of cleaning, but also when the dust waste is guided to the powder suction bin 2, the absorption member 11 can complete the absorption task more efficiently and thoroughly, further enhancing the efficiency and effectiveness of the entire cleaning process.

[0039] The discrete drive unit 5 includes a slapping piece 6 arranged in the powder suction bin 2, and the slapping plate 4 is controlled by the slapping piece 6 to slap the flannel. A recoil piece 7 is arranged in the powder suction bin 2, and the recoil piece 7 is used to perform gas impact on the bottom surface of the flannel. A power piece 8 is arranged on the recoil piece 7, and the power piece 8 is used to provide power for the recoil piece 7. A buffer piece 9 is arranged on the slapping plate 4 for buffering the slapping force of the slapping plate 4 on the flannel.

[0040] The striking member 6 includes a rotating shaft 61 arranged in the powder suction bin 2, one end of the rotating shaft 61 passes through the powder suction bin 2, one end of the rotating shaft 61 located in the powder suction bin 2 is connected to the rotating tube 3, a plurality of connecting ropes 62 are arranged on the rotating tube 3, the connecting ropes 62 are connected to the striking plate 4, a power worm gear 63 is arranged at one end of the rotating shaft 61 located outside the powder suction bin 2, a plurality of positioning plates 64 are arranged on the powder suction bin 2, a power worm 65 engaged with the power worm gear 63 is rotatably arranged on the positioning plate 64, a driving motor 66 is arranged on the powder suction bin 2, and a power output end of the driving motor 66 is connected to the power worm gear 65.

[0041] The advantage of setting up the slapping member 6 is that it can drive the slapping plate 4 to slap the flannel, and the slapping force is controllable, so that impurities such as dust and fine particles at the bottom of the fluff can be effectively separated from the flannel, so as to achieve the purpose of removing impurities inside the flannel. This mechanical slapping method is more efficient than traditional manual slapping or wind blowing, and greatly improves the cleaning efficiency and cleaning effect.

[0042] The recoil member 7 includes a plurality of pneumatic bins 71 arranged in the powder suction bin 2, a squeezing plate 72 is slidably arranged in the pneumatic bin 71, a squeezing spring 73 is arranged on the squeezing plate 72, a rotating shaft 74 is rotatably arranged in the pneumatic bin 71, one end of the rotating shaft 74 passes through the pneumatic bin 71, a pushing block 75 is arranged at one end of the rotating shaft 74 located in the pneumatic bin 71, the pushing block 75 is in contact with the side of the squeezing plate 72 away from the squeezing spring 73, a plurality of recoil grooves 76 are opened on the pneumatic bin 71, the recoil grooves 76 are connected with the pneumatic bin 71, and a pushing groove 77 connected with the recoil groove 76 is arranged on the conveying device 1.

[0043] The advantage of the recoil piece 7 is that it can provide additional gas shock in the opposite direction of the striking of the striking plate 4 during the striking process. This bidirectional force can further enhance the striking effect, making it easier to remove impurities from the flannel. The use of the recoil piece 7 provides an additional protective barrier for the flannel while striking. Under the action of the striking, the flannel may be damaged due to uneven force or excessive impact, and the gas released by the recoil piece 7 can effectively alleviate this impact pressure, disperse and reduce the direct force on the flannel, thereby ensuring the integrity and durability of the flannel while efficiently removing impurities.

[0044] The power member 8 includes a synchronous worm gear 81 arranged on the rotating shaft 74, and the synchronous worm gear 81 is arranged at one end of the rotating shaft 74 outside the pneumatic bin 71. A fixed plate 82 is arranged on the powder suction bin 2, and a synchronous worm 83 is rotatably arranged on the fixed plate 82. An extension rod 84 is arranged on the powder suction bin 2, and one end of the extension rod 84 passes through the powder suction bin 2. A driving gear 1 88 is arranged on the synchronous worm 83. A driving gear 2 89 engaged with the driving gear 1 88 is arranged at one end of the extension rod 84 located in the powder suction bin 2. A transmission shaft 85 is rotatably arranged on the powder suction bin 2, and a transmission pulley 86 is arranged on the transmission shaft 85, the rotating shaft 61 and the extension rod 84, and a transmission belt 87 is arranged on the transmission pulley 86.

[0045] The buffer member 9 includes a diverter bin 91 arranged in the rotating tube 3, the diverter bin 91 is provided with a vent pipe 92, a buffer bin 93 is provided on the slap plate 4, the buffer bin 93 is connected to the vent pipe 92, a plurality of air holes 94 are provided on the side of the slap plate 4 in contact with the flannel, the air holes 94 are connected to the buffer bin 93, a connecting hole 95 is provided on the diverter bin 91, a transfer bin 96 is provided in the powder suction bin 2, the transfer bin 96 is rotatably connected to the rotating shaft 61 and the rotating tube 3, a docking hole 97 used in conjunction with the connecting hole 95 is provided on the transfer bin 96, a docking tube 98 is provided on the powder suction bin 2, the docking tube 98 is connected to the transfer bin 96, a diverter pipe 99 is provided on the docking tube 98, and an air supply pipe 910 is provided on the diverter pipe 99.

[0046] The benefit of setting the buffer member 9 is that it can buffer the impact force between the slapping plate 4 and the flannel, prevent the fiber structure of the flannel from being damaged due to excessive slapping, and avoid the flannel nap from being broken due to the slapping of the slapping plate 4.

[0047] When the conveying device 1 conveys flannel, the flannel will pass through the powder suction bin 2. At this time, the driving motor 66 works, driving the power worm 65 to rotate synchronously. The rotation of the power worm 65 drives the power worm gear 63 engaged with it to rotate. The rotation of the power worm gear 63 drives the rotating shaft 61 to rotate. The rotation of the rotating shaft 61 drives the rotating tube 3 to rotate. The rotation of the rotating tube 3 drives the slapping plate 4 set thereon to rotate. The slapping plate 4 contacts the flannel during the rotation and slaps the flannel.

[0048] While the rotating tube 3 rotates, the air supply pipe 910 supplies gas to the diverter pipe 99 and the docking pipe 98. At this time, the gas enters the transfer bin 96. When the connecting hole 95 on the rotating tube 3 is docked with the docking hole 97 on the transfer bin 96, the gas enters the diverter bin 91 through the connecting hole 95. At this time, the air pressure in the diverter bin 91 increases. When the air pressure in the diverter bin 91 increases, the gas enters the buffer bin 93 on the clapping plate 4 through the ventilation pipe 92, and is ejected from the air hole 94 when the clapping plate 4 contacts the flannel, so as to achieve the effect of buffering the clapping force between the clapping plate 4 and the flannel.

[0049] When the rotating shaft 61 rotates, the transmission pulley 86 is driven to rotate. When the transmission pulley 86 rotates, the extension rod 84 is driven to rotate through the transmission shaft 85 and the transmission belt 87. The rotation of the extension rod 84 drives the driving gear 2 89 to rotate. The rotation of the driving gear 2 89 drives the driving gear 1 88 to rotate. The rotation of the driving gear 1 88 drives the synchronous worm 83 to rotate. The rotation of the synchronous worm 83 drives the synchronous worm wheel 81 to rotate. The rotation of the synchronous worm wheel 81 drives the rotating shaft 74 to rotate. The rotation of the rotating shaft 74 drives the pushing block 75 to rotate. The pushing block 75 drives the extrusion plate 72 to perform piston motion in the pneumatic chamber 71, so that the gas in the pneumatic chamber 71 is sprayed to the bottom of the flannel through the recoil groove 76 and the pushing groove 77.

[0050] The absorption unit 10 includes an absorption piece 11 arranged on the powder suction bin 2, and the absorption piece 11 is used to absorb the dust in the powder suction bin 2. The powder suction bin 2 is provided with an impact piece 12, and the impact piece 12 is used to drive the dust impurities that are knocked off the flannel to fly into the powder suction bin 2.

[0051] The absorption member 11 includes a suction pipe 111 arranged on the powder suction bin 2, the suction pipe 111 is connected with the powder suction bin 2, a synchronous pipe 112 is arranged on the suction pipe 111, a discharge pipe 113 is arranged on the powder suction bin 2, the discharge pipe 113 is connected with the synchronous pipe 112, a dust suction pump 114 is arranged in the discharge pipe 113, a baffle 115 is arranged at the discharge port of the discharge pipe 113, and the discharge pipe 113 is connected with the air supply pipe 910.

[0052] The impact member 12 includes a guide pipe 121 arranged on the discharge pipe 113, a connecting pipe 122 is arranged on the guide pipe 121, an impact bin 123 is arranged on the powder suction bin 2, the impact bin 123 is connected with the connecting pipe 122, a plurality of impact pipes 124 are arranged in the powder suction bin 2, the impact pipe 124 is connected with the impact bin 123, and the impact pipe 124 is a retractable pipe, an impact groove 125 is opened at the bottom of the impact pipe 124, a guide plate 126 is arranged at the bottom of the impact pipe 124, and the guide plate 126 is an arc plate.

[0053] The advantage of the impact piece 12 is that the impact tube 124 can be inserted deep into the flannel and air can be ventilated to the impact tube 124 to remove impurities inside the flannel. The impact tube 124 can penetrate deep into the flannel, so that the gas can directly act on the area where the impurities are located, thereby improving the thoroughness of cleaning.

[0054] When the dust suction pump 114 is working, the dust and gas in the powder suction bin 2 enter the discharge pipe 113 through the suction pipe 111 and the synchronization pipe 112, and the filtered gas is discharged from the discharge pipe 113 again. When the gas is discharged, it is affected by the upper and lower baffles 115 in the discharge pipe 113, and enters the air supply pipe 910 and the guide pipe 121 respectively. The gas entering the guide pipe 121 enters the impact pipe 124 through the connecting pipe 122 and the impact bin 123, and then the impact pipe 124 extends into the flannel at one end to spray gas, and under the action of the guide plate 126, the impact direction of the airflow is changed, thereby driving the impurities in the flannel to fly out of the flannel, facilitating the subsequent suction of the suction pipe 111.

[0055] Example 2: Please refer to Fig.11 The present invention provides a technical solution: a buffer groove is opened at the position of the pushing groove on the conveying device, a plurality of buffer springs are arranged in the buffer groove, a buffer plate is arranged on the buffer spring, and the buffer plate is a hollow plate made of silicone material. The arrangement of the buffer plate and the buffer spring significantly enhances the buffering effect when the slapping plate slaps the flannel, and the elastic restoring force of the buffer spring can effectively absorb and disperse the impact force generated by the slapping, while the buffer plate made of silicone material, with its good flexibility and impact resistance, further ensures that the flannel will not be damaged due to excessive force when being slapped. At the same time, the combined use of the buffer spring and the silicone buffer plate can also effectively reduce the noise and vibration generated during the slapping process, which not only improves the working environment and reduces the noise pollution to the operator, but also helps to protect other components of the conveying device from vibration damage, thereby extending the service life of the entire system.

[0056] It should be noted that, in this article, relational terms such as first and second, etc. are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device.

[0057] While the embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that many changes, modifications, substitutions and variations can be made to the embodiments without departing from the principles and spirit of the invention.

Claims

1. A powder suction machine for flannel processing, comprising a conveying device (1) and a powder suction bin (2), characterized in that: Also includes: A rotating tube (3) is movably mounted in the powder suction bin (2); A plurality of rotating tubes (3) are provided, each of which is located above the conveying device (1); A plurality of slapping plates (4) are arranged on the rotating tube (3); A discrete driving unit (5) is arranged in the powder suction bin (2) and is connected to the rotating tube (3) and the clapping plate (4), and is used to drive the rotating tube (3) to rotate and synchronously drive a plurality of clapping plates (4) arranged on the rotating tube (3) to rotate; The absorption unit (10) is arranged on the powder suction bin (2) and is used to extract the dust separated by the beating plate (4) from the powder suction bin (2).

2. The powder suction machine for flannel processing according to claim 1, characterized in that: The discrete drive unit (5) includes a slapping piece (6) arranged in the powder suction bin (2), and the slapping plate (4) is controlled by the slapping piece (6) to slap the flannel. A recoil piece (7) is arranged in the powder suction bin (2), and the recoil piece (7) is used to perform gas impact on the bottom surface of the flannel. A power piece (8) is arranged on the recoil piece (7), and the power piece (8) is used to provide power for the recoil piece (7). A buffer piece (9) is arranged on the slapping plate (4) for buffering the slapping force of the slapping plate (4) on the flannel.

3. The powder suction machine for flannel processing according to claim 2, characterized in that: The slapping member (6) comprises a rotating shaft (61) arranged in the powder suction bin (2), one end of the rotating shaft (61) passes through the powder suction bin (2), one end of the rotating shaft (61) located in the powder suction bin (2) is connected to the rotating tube (3), a plurality of connecting ropes (62) are arranged on the rotating tube (3), the connecting ropes (62) are connected to the slapping plate (4), one end of the rotating shaft (61) located outside the powder suction bin (2) is provided with a power worm gear (63), a plurality of positioning plates (64) are arranged on the powder suction bin (2), a power worm (65) engaged with the power worm gear (63) is rotatably arranged on the positioning plate (64), and a driving motor (66) is arranged on the powder suction bin (2), and a power output end of the driving motor (66) is connected to the power worm gear (65).

4. The powder suction machine for flannel processing according to claim 3, characterized in that: The recoil member (7) comprises a plurality of pneumatic bins (71) arranged in the powder suction bin (2), a squeezing plate (72) being slidably arranged in the pneumatic bin (71), a squeezing spring (73) being arranged on the squeezing plate (72), a rotating shaft (74) being rotatably arranged in the pneumatic bin (71), one end of the rotating shaft (74) passing through the pneumatic bin (71), a pushing block (75) being arranged at one end of the rotating shaft (74) located in the pneumatic bin (71), the pushing block (75) being in contact with a side of the squeezing plate (72) away from the squeezing spring (73), a plurality of recoil grooves (76) being arranged on the pneumatic bin (71), the recoil grooves (76) being communicated with the pneumatic bin (71), and a pushing groove (77) being communicated with the recoil grooves (76) being arranged on the conveying device (1).

5. The powder suction machine for flannel processing according to claim 4, characterized in that: The power member (8) comprises a synchronous worm gear (81) arranged on the rotating shaft (74), the synchronous worm gear (81) being arranged at one end of the rotating shaft (74) outside the pneumatic bin (71), a fixed plate (82) being arranged on the powder suction bin (2), a synchronous worm (83) being rotatably arranged on the fixed plate (82), an extension rod (84) being arranged on the powder suction bin (2), one end of the extension rod (84) passing through the powder suction bin (2), a driving gear 1 (88) being arranged on the synchronous worm (83), a driving gear 2 (89) being arranged at one end of the extension rod (84) located inside the powder suction bin (2) and meshing with the driving gear 1 (88), a transmission shaft (85) being rotatably arranged on the powder suction bin (2), a transmission pulley (86) being arranged on the transmission shaft (85), the rotating shaft (61) and the extension rod (84), and a transmission belt (87) being arranged on the transmission pulley (86).

6. The powder suction machine for flannel processing according to claim 5, characterized in that: The buffer member (9) comprises a flow distribution chamber (91) arranged in the rotating tube (3), the flow distribution chamber (91) is provided with a ventilation pipe (92), the slapping plate (4) is provided with a buffer chamber (93), the buffer chamber (93) is connected to the ventilation pipe (92), a plurality of air holes (94) are provided on the side of the slapping plate (4) in contact with the flannel, the air holes (94) are connected with the buffer chamber (93), the flow distribution chamber (91) is provided with a connecting hole (95), the suction A transfer bin (96) is arranged in the powder bin (2), the transfer bin (96) is rotatably connected to the rotating shaft (61) and the rotating tube (3), a docking hole (97) for use with the connecting hole (95) is provided on the transfer bin (96), a docking tube (98) is arranged on the powder suction bin (2), the docking tube (98) is communicated with the transfer bin (96), a shunt tube (99) is arranged on the shunt tube (99), and an air supply tube (910) is arranged on the shunt tube (99).

7. The powder suction machine for flannel processing according to claim 1, characterized in that: The absorption unit (10) comprises an absorption piece (11) arranged on the powder absorption bin (2), and the absorption piece (11) is used to absorb the dust in the powder absorption bin (2). The powder absorption bin (2) is provided with an impact piece (12), and the impact piece (12) is used to drive the dust impurities that are knocked off the flannel to fly into the powder absorption bin (2).

8. The powder suction machine for flannel processing according to claim 7, characterized in that: The absorption member (11) comprises a suction pipe (111) arranged on the powder suction bin (2), the suction pipe (111) being connected to the powder suction bin (2), a synchronous pipe (112) being arranged on the suction pipe (111), a discharge pipe (113) being arranged on the powder suction bin (2), the discharge pipe (113) being connected to the synchronous pipe (112), a dust suction pump (114) being arranged in the discharge pipe (113), a baffle (115) being arranged in the discharge pipe (113) at the position of the discharge port, and the discharge pipe (113) being connected to the air supply pipe (910).

9. The powder suction machine for flannel processing according to claim 8, characterized in that: The impact member (12) comprises a guide pipe (121) arranged on the discharge pipe (113), a connecting pipe (122) being arranged on the guide pipe (121), an impact bin (123) being arranged on the powder suction bin (2), the impact bin (123) being connected to the connecting pipe (122), a plurality of impact pipes (124) being arranged in the powder suction bin (2), the impact pipes (124) being connected to the impact bin (123), the impact pipes (124) being telescopic pipes, an impact groove (125) being arranged at the bottom of the impact pipe (124), a guide plate (126) being arranged at the bottom of the impact pipe (124), the guide plate (126) being an arc-shaped plate.

10. The powder suction machine for flannel processing according to claim 1, characterized in that: A buffer groove (13) is provided on the conveying device (1) at the position of the pushing groove (77), a plurality of buffer springs (14) are arranged in the buffer groove (13), a buffer plate (15) is arranged on the buffer spring (14), and the buffer plate (15) is a hollow plate made of silicone material.