A static electricity elimination and dust removal device for textile fabric processing

CN122579421APending Publication Date: 2026-08-14SUZHOU XIANGHEFU TEXTILE FINISHING CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-06-16
Publication Date
2026-08-14

AI Technical Summary

Technical Problem

[0004]因为,上静电吸尘辊和下静电吸尘辊是靠静电吸附灰尘的,因此会将一部分电荷又重新转移到面料上,导致面料的处理效果不佳

Benefits of technology

1.设置的处理装置能够更好的对面料上的静电进行处理,从而提高面料的处理效果;

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

This application relates to an electrostatic elimination and dust removal device for textile fabric processing. The device includes a main body and partition blocks. A processing chamber is formed within the main body. Multiple partition blocks are provided, dividing the processing chamber into a first electrostatic removal chamber, a dust removal chamber, a second electrostatic removal chamber, and a dust collection chamber. A processing device is provided on the main body, comprising an electrostatic treatment mechanism, a dust removal mechanism, and a dust collection mechanism. The electrostatic treatment mechanism is located in both the first and second electrostatic removal chambers. The dust removal mechanism is located in the dust removal chamber, and the dust collection mechanism is located in the dust collection chamber. This application improves the processing effect of fabrics.
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Description

Technical Field

[0001] This application relates to the technical field of textile fabric processing, and in particular to a static electricity elimination and dust removal device for textile fabric processing. Background Technology

[0002] During the production process of textile fabrics, due to the influence of the processing environment and processing technology, some dust will remain on the surface of the fabric. If this fabric is directly rolled up without surface dust removal treatment, it will affect subsequent processes and directly affect the quality of the product.

[0003] Currently, Chinese patent CN215210123U discloses a dust removal device for textile fabrics, including a dust removal box body. The dust removal box body has an inlet on one side and an outlet on the other side. A control device is located below the outlet. A dust removal fan is located on the top of the dust removal box body. An electrostatic removal chamber is located inside the dust removal box body near the inlet. A dust removal chamber and a dust collection chamber are located inside the dust removal box body near the outlet. Partition plates are provided between the electrostatic removal chamber and the dust collection chamber, as well as between the dust collection chamber and the dust removal chamber. The partition plates have connecting openings. The dust collection component includes an upper electrostatic dust collection roller and a lower electrostatic dust collection roller, which are respectively located above and below the connecting openings. A dust scraper box is located on one side of both the upper and lower electrostatic dust collection rollers. The upper and lower electrostatic dust collection rollers are rotating rollers with electrostatic charge. The upper and lower electrostatic dust-collecting rollers adsorb and separate dust from the upper and lower surfaces of the fabric, while the dust scraper box scrapes away the dust adsorbed by the upper and lower electrostatic dust-collecting rollers.

[0004] Because the upper and lower electrostatic dust collection rollers rely on electrostatic adsorption to attract dust, some of the charge will be transferred back to the fabric, resulting in poor fabric treatment. Summary of the Invention

[0005] In order to improve the processing effect of fabrics, this application provides a static electricity elimination and dust removal device for textile fabric processing.

[0006] This application provides a static electricity elimination and dust removal device for textile fabric processing, which adopts the following technical solution: A static electricity elimination and dust removal device for textile fabric processing includes a main body and partition blocks. A processing chamber is formed within the main body. Multiple partition blocks are provided, dividing the processing chamber into a first static electricity removal chamber, a dust removal chamber, a second static electricity removal chamber, and a dust collection chamber. A processing device is provided on the main body, comprising a static electricity treatment mechanism, a dust removal mechanism, and a dust collection mechanism. The static electricity treatment mechanism is provided in both the first and second static electricity removal chambers. The dust removal mechanism is located in the dust removal chamber, and the dust collection mechanism is located in the dust collection chamber.

[0007] By adopting the above technical solution, the static electricity treatment mechanism in the first static electricity removal chamber first performs static electricity removal operation on the fabric, then the dust removal mechanism in the dust removal chamber performs dust removal operation on the fabric, then the static electricity treatment mechanism in the second static electricity removal chamber performs static electricity removal operation on the fabric, and finally the dust collection mechanism in the dust collection chamber performs dust collection operation; the treatment device provided in this application can better treat static electricity on the fabric, thereby improving the fabric treatment effect.

[0008] Optionally, the static electricity treatment mechanism includes static eliminators, with two static eliminators each in the first static electricity removal chamber and the second static electricity removal chamber, forming a gap between the two static eliminators for the fabric to pass through.

[0009] By adopting the above technical solution, when the fabric passes through the gap between the two static eliminators, the two static eliminators will perform static electricity treatment.

[0010] Optionally, each side of the fabric is provided with a plurality of the dust removal mechanisms. Each dust removal mechanism includes a first isolation block, a second isolation block, a third isolation block, an electrostatic adsorption roller, a first adjustment component, a second adjustment component, and a first suction component. The first isolation block and the second isolation block are both disposed on the main body, and the first isolation block, the second isolation block, and the main body form an isolation cavity. The third isolation block is disposed on the main body through the first adjustment component and can block the isolation cavity. The electrostatic adsorption roller is disposed on the main body through the second adjustment component and can enter the isolation cavity. The first suction component is disposed on the main body and located within the isolation cavity.

[0011] By adopting the above technical solution, multiple dust removal mechanisms located on the same side of the fabric work alternately. That is, after the electrostatic adsorption roller has worked for a period of time, the second adjustment component is activated first to move the electrostatic adsorption roller into the isolation chamber; then the first adjustment component drives the isolation block to move, so that the third isolation block seals the isolation chamber; after the charge on the electrostatic adsorption roller is released, the first suction component adsorbs the impurities on the electrostatic adsorption roller.

[0012] Optionally, a cleaning mechanism is provided on the first isolation block. The cleaning mechanism includes a first cleaning block, a fixing block, a second cleaning block, and a third adjusting component. The fixing block is disposed on the first isolation block, and the first cleaning block is slidably disposed on the fixing block. The second cleaning block is disposed on the second isolation block. The third adjusting component is disposed on the main body, and both the first cleaning block and the first adjusting component are connected to the third adjusting component. Both the first cleaning block and the second cleaning block can abut against the side wall of the electrostatic adsorption roller, and the first cleaning block and the second cleaning block are parallel.

[0013] By adopting the above technical solution, when the second adjustment component drives the electrostatic adsorption roller to move into the isolation cavity and abut against the second cleaning block, the first adjustment component drives the first cleaning block to move through the third adjustment component, so that the first cleaning block also abuts against the side wall of the electrostatic adsorption roller; when the first cleaning block and the second cleaning block rotate, the electrostatic adsorption roller that has released its charge rotates, and the first cleaning block and the second cleaning block will clean the electrostatic adsorption roller.

[0014] Optionally, the second adjustment component includes a first cylinder, a first adjustment block, and a first driving member. The first cylinder is disposed on the main body, and the first adjustment block is disposed on the piston rod of the first cylinder. The electrostatic adsorption roller is disposed on the first adjustment block, and the first driving member is disposed on and connected to the electrostatic adsorption roller.

[0015] By adopting the above technical solution, the first cylinder is started, the piston rod of the first cylinder drives the first adjusting block to move, and the first adjusting block drives the electrostatic adsorption roller to move; the first driving component is started, and the first driving component drives the electrostatic adsorption roller to rotate.

[0016] Optionally, the main body is provided with a locking mechanism, which includes a locking block, a second adjusting block, a first spring, a stop block, and a fourth adjusting component. The locking block is slidably disposed on the main body and is connected to the first adjusting component. A first sliding groove communicating with the isolation cavity is formed on the main body. One end of the second adjusting block is slidably disposed in the first sliding groove, and the first adjusting block can abut against the second adjusting block. One end of the first spring is connected to the second adjusting block and the other end is connected to the main body. The stop block is disposed on the second adjusting block and covers the first sliding groove. The fourth adjusting component is disposed on the main body, and both the locking block and the second adjusting block are connected to the fourth adjusting component.

[0017] Optionally, the first electrostatic removal chamber, the dust removal chamber, the second electrostatic removal chamber, and the dust collection chamber are all equipped with a conveying mechanism. The conveying mechanism includes a first conveying roller, a second conveying roller, and a fifth adjusting component. The first conveying roller is rotatably mounted on the main body. The second conveying roller is mounted on the main body via the fifth adjusting component. Both the first conveying roller and the second conveying roller are pressed against the fabric.

[0018] By adopting the above technical solution, the fifth adjustment component can not only adjust the position of the second conveyor roller so that both the first and second conveyor rollers are pressed against the fabric, but also drive the second conveyor roller to rotate. In this way, the first and second conveyor rollers will drive the fabric to move, so that the fabric can move better in the processing cavity of the main body.

[0019] Optionally, two dust collection chambers are provided, and each dust collection chamber is equipped with a dust collection mechanism. Each dust collection mechanism includes a tapping roller, a second driving member, a floating roller, a sixth adjusting component, and a second suction component. The tapping roller is rotatably mounted on the main body via the second driving member; the floating roller is mounted on the main body via the sixth adjusting component; and the second suction component is mounted on the main body. In each dust collection chamber, the second suction component and the tapping roller are located on opposite sides of the fabric, and the second suction components in both dust collection chambers are located on opposite sides of the fabric.

[0020] By adopting the above technical solution, in order to reduce the wrinkles on the fabric when the conveying mechanism is conveying the fabric, the fabric needs to be in a taut state within the main body; when the second driving component drives the beating roller to rotate, the fabric will fluctuate when the beating roller beats the fabric, and the floating roller will tension the fabric under the action of the sixth adjusting component, so that the fabric is always in a taut state.

[0021] In summary, this application includes at least one of the following beneficial technical effects: 1. The set-up processing device can better handle static electricity on the fabric, thereby improving the processing effect of the fabric; 2. The conveying mechanism allows the fabric to move better within the processing chamber of the main body. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the structure of the static electricity elimination and dust removal equipment for textile fabric processing in the embodiments of this application; Figure 2 This is a schematic diagram of the transmission mechanism in an embodiment of this application; Figure 3 This is a schematic diagram of the dust removal mechanism in the embodiments of this application; Figure 4This is a schematic diagram of the structure of the first suction component in the embodiments of this application; Figure 5 This is a schematic diagram of the cleaning mechanism in the embodiments of this application; Figure 6 This is a schematic diagram of the structure of the third adjustment component in the embodiments of this application; Figure 7 This is a schematic diagram of the dust collection mechanism in the embodiments of this application.

[0023] Reference numerals: 1. Main body; 11. First electrostatic removal chamber; 12. Dust removal chamber; 13. Second electrostatic removal chamber; 14. Dust collection chamber; 2. Separating block; 21. Through hole; 3. Electrostatic treatment mechanism; 31. Electrostatic eliminator; 4. Dust removal mechanism; 41. First isolation block; 42. Second isolation block; 43. Third isolation block; 44. Electrostatic adsorption roller; 45. First adjusting component; 451. Adjusting motor; 452. First rotating shaft; 453. Second rotating shaft; 454. First bevel gear; 455. Second bevel gear; 46. Second adjusting component; 461. First cylinder; 462. First adjusting block; 47. First suction component; 471. First suction hood; 472. First suction pipe; 5. Dust collection mechanism; 51. Beating roller; 52. Second driving component; 53. Floating roller; 54. Sixth adjusting component; 541. First connecting block; 542. 543. Second connecting block; 55. Second suction assembly; 551. Second suction cover; 552. Second suction tube; 6. Cleaning mechanism; 61. First cleaning block; 62. Second cleaning block; 63. Fixing block; 64. Third adjusting assembly; 641. Adjusting screw; 642. Third bevel gear; 643. Third rotating shaft; 644. Fourth bevel gear; 645. Fifth bevel gear; 646. Sixth bevel gear; 7. Locking mechanism; 71. Locking block; 72. Second adjusting block; 73. First spring; 74. Stop block; 75. Fourth adjusting assembly; 751. First rack; 752. Fourth rotating shaft; 753. First gear; 754. Second gear; 755. Second rack; 8. Conveying mechanism; 81. First conveying roller; 82. Second conveying roller; 83. Fifth adjusting assembly; 831. Second cylinder; 832. Third adjusting block. Detailed Implementation

[0024] The following is in conjunction with the appendix Figure 1-7 This application will be described in further detail.

[0025] This application discloses an electrostatic elimination and dust removal device for textile fabric processing.

[0026] refer to Figure 1A static electricity elimination and dust removal device for textile fabric processing includes a main body 1, a processing chamber formed within the main body 1, and four partition blocks 2 integrally disposed within the main body 1, dividing the processing chamber into five different chambers. Each partition block 2 has a through hole 21 communicating with two adjacent chambers. A conveying mechanism 8 is disposed at both ends of each chamber. The five chambers, along the fabric movement direction, are sequentially designated as a first static electricity removal chamber 11, a dust removal chamber 12, a second static electricity removal chamber 13, a first dust collection chamber 14, and a second dust collection chamber 14. One end of the main body 1 has an inlet communicating with the first static electricity removal chamber 11, and the end of the main body 1 away from the inlet has an outlet communicating with the second dust collection chamber 14. The main body 1 is equipped with a processing device, which includes an electrostatic treatment mechanism 3 located in the first electrostatic removal chamber 11 and the second electrostatic removal chamber 13, and the electrostatic treatment mechanism 3 is located between two conveying mechanisms 8; multiple dust collectors are arranged between the two conveying mechanisms 8 in the dust removal chamber 12; and a dust collection mechanism 5 is arranged between the two conveying mechanisms 8 in the first dust collection chamber 14 and the second dust collection chamber 14.

[0027] refer to Figure 1 and Figure 2 Each conveying mechanism 8 includes a first conveying roller 81 rotatably connected to the main body 1; a second conveying roller 82 is disposed below the first conveying roller 81. A fifth adjusting assembly 83 is disposed on the main body 1, the fifth adjusting assembly 83 includes two second cylinders 831, the cylinder bodies of the second cylinders 831 are fixedly connected to the main body 1, and a third adjusting block 832 is fixedly connected to the piston rod of each second cylinder 831. The two ends of the second conveyor belt roller are respectively rotatably connected to the two third adjusting blocks 832; a drive motor is fixedly connected to one of the third adjusting blocks 832, and the output shaft of the drive motor is connected to one end of the second conveying roller 82.

[0028] First, the fabric is passed between the first conveyor roller 81 and the second conveyor roller 82. Then, the second cylinder 831 is activated. The piston rod of the second cylinder 831 drives the third adjusting block 832 to move. The third adjusting block 832 drives the second conveyor roller 82 to move closer to the first conveyor roller 81, so that both the second conveyor roller 82 and the first conveyor roller 81 press against the fabric. Then, the active motor is activated. The output shaft of the active motor drives the second conveyor roller 82 to rotate, and the first conveyor roller 81 and the second conveyor roller 82 will drive the fabric to move.

[0029] refer to Figure 1 and Figure 2 The static electricity treatment mechanism 3 includes two static eliminators 31 fixedly connected to the main body 1, with a gap between the two static eliminators 31 for the fabric to pass through. When the fabric passes through the gap between the two static eliminators 31, the static eliminators 31 will perform a static electricity removal operation on the fabric.

[0030] refer to Figure 1 and Figure 3 Each side of the fabric is provided with at least two dust removal mechanisms 4. In this embodiment, two dust removal mechanisms 4 are provided on each side of the fabric. Each dust removal mechanism 4 includes a first isolation block 41 and a second isolation block 42 fixedly connected to the main body 1. The first isolation block 41, the second isolation block 42 and the main body 1 form an isolation cavity.

[0031] refer to Figure 1 and Figure 4 The main body 1 is provided with a second adjustment component 46, which includes two first cylinders 461 disposed on the main body 1. A first adjustment block 462 is connected to the piston rod of the first cylinder 461. An electrostatic adsorption roller 44 is disposed between the two first adjustment blocks 462, and the two ends of the electrostatic adsorption roller 44 are respectively rotatably connected to the two first adjustment blocks 462. A first driving component is disposed on one of the first adjustment blocks 462. The first driving component can be a motor directly connected to the electrostatic adsorption roller 44, or it can be a direct motor gear combination transmission method.

[0032] The first cylinder 461 is activated, and the piston rod of the first cylinder 461 drives the first adjusting block 462 to move. The first adjusting block 462 drives the electrostatic adsorption roller 44 to move into the isolation chamber.

[0033] refer to Figure 3 , Figure 5 and Figure 6 The main body 1 is rotatably equipped with a third isolation block 43 that can seal the isolation cavity.

[0034] The main body 1 has a first cavity and a first adjustment component 45. The first adjustment component 45 includes an adjustment motor 451 fixedly connected to the main body 1, and a first rotating shaft 452 connected to the output shaft of the adjustment motor 451. Both the adjustment motor 451 and the first rotating shaft 452 are located in the first cavity of the main body 1. A second rotating shaft 453 is rotatably connected to the main body 1. A third isolation block 43 is fixed to the second rotating shaft 453, and a part of the second rotating shaft 453 is located in the first cavity of the main body 1. A first bevel gear 454 is keyed to the first rotating shaft 452, and a second bevel gear 455 that meshes with the first bevel gear 454 is keyed to the second rotating shaft 453.

[0035] Start the regulating motor 451. The output shaft of the regulating motor 451 drives the first rotating shaft 452 to rotate. The first bevel gear 454 on the first rotating shaft 452 drives the second bevel gear 455 to rotate. The second bevel gear 455 drives the second rotating shaft 453 to rotate. The second rotating shaft 453 drives the third isolation block 43 to rotate, so that the third isolation block 43 blocks the isolation cavity.

[0036] refer to Figure 3 , Figure 5 and Figure 6 A cleaning mechanism 6 is provided on the first isolation block 41. The cleaning mechanism 6 includes a fixing block 63 fixedly connected to the first isolation block 41. A first groove is provided on the fixing block 63, and the first cleaning block 61 is slidably connected in the first groove. A second cleaning block 62 is obliquely fixed on the second isolation block 42. The first cleaning block 61 and the second cleaning block 62 are located in the same plane and are arranged in parallel.

[0037] A second cavity is formed on the first isolation block 41. A third adjustment assembly 64 is provided on the main body 1. The third adjustment assembly 64 includes an adjustment screw 641 rotatably connected to the fixed block 63. A threaded hole is formed on the first cleaning block 61 to cooperate with the adjustment screw 641. The end of the adjustment screw 641 away from the first cleaning block 61 is located in the second cavity of the first isolation block 41. A third bevel gear 642 is keyed to the adjustment screw 641 located in the second cavity. A third rotating shaft 643 is rotatably connected in the second cavity of the first isolation block 41. One end of the third rotating shaft 643 is located in the first cavity of the main body 1. A fourth bevel gear 644 that meshes with the third bevel gear 642 is keyed to the third rotating shaft 643. A fifth bevel gear 645 is keyed to the first rotating shaft 452. A sixth bevel gear 646 that meshes with the fifth bevel gear 645 is keyed to the third rotating shaft 643.

[0038] When the first adjusting block 462 drives the electrostatic adsorption roller 44 into the isolation chamber and the second cleaning block 62 abuts against the side wall of the electrostatic adsorption roller 44, the adjusting motor 451 is started to drive the first rotating shaft 452 to rotate, causing the third isolation block 43 to rotate. When the first rotating shaft 452 rotates, the fifth bevel gear 645 on the first rotating shaft 452 drives the sixth bevel gear 646 to rotate, the sixth bevel gear 646 drives the third rotating shaft 643 to rotate, the fourth bevel gear 644 on the third rotating shaft 643 drives the third bevel gear 642 to rotate, the third bevel gear 642 drives the adjusting screw 641 to rotate, and the adjusting screw 641 drives the first cleaning block 61 to slide in the first groove of the fixed block 63. When the third isolation block 43 blocks the isolation chamber, the end of the first cleaning block 61 away from the first isolation block 41 abuts against the side wall of the electrostatic adsorption roller 44, and the axis of the electrostatic adsorption roller 44 is located between the first cleaning block 61 and the second cleaning block 62.

[0039] refer to Figure 3 and Figure 4The main body 1 is provided with a first suction assembly 47, which includes a first suction cover 471. A first suction pipe 472 is fixedly connected to the first suction cover 471. One end of the first suction pipe 472, away from the first suction cover 471, extends out of the main body 1 and is connected to a first suction component. The first suction component can be a negative pressure fan or a negative pressure pump. In this application, the main body 1, the first isolation block 41, and the second isolation block 42 are all provided with a first suction cover 471.

[0040] When there is no longer any charge on the electrostatic adsorption roller 44 and both the first cleaning block 61 and the second cleaning block 62 are in contact with the peripheral sidewall of the electrostatic adsorption roller 44, the first suction component and the first driving component are activated. The first driving component drives the electrostatic adsorption roller 44 to rotate, and the first cleaning block 61 and the second cleaning block 62 will clean off the impurities adhering to the electrostatic adsorption roller 44. The impurities located in the isolation chamber will enter the first suction hood 471 and finally be discharged through the first suction pipe 472.

[0041] refer to Figure 3 , Figure 5 and Figure 6 The main body 1 has a second sliding groove communicating with the first cavity, and a first sliding groove communicating with the first cavity and the isolation cavity. The main body 1 is provided with a locking mechanism 7, which includes a locking block 71 slidably connected in the second sliding groove, and a locking groove that engages with the locking block 71 on the first rotating shaft 452. A second adjusting block 72 is slidably connected in the first sliding groove, with one end of the second adjusting block 72 located in the isolation cavity and the other end located in the first cavity of the main body 1. A first spring 73 is fixedly connected to the second adjusting block 72, with the end of the first spring 73 away from the second adjusting block 72 connected to the main body 1. A stop block 74 is fixedly connected to the second adjusting block 72 located in the isolation cavity, and the stop block 74 always covers the first sliding groove.

[0042] A fourth adjustment component 75 is provided on the second adjustment block 72 located in the first cavity. The fourth adjustment component 75 includes a first rack 751 fixedly connected to the second adjustment block 72; a fourth rotating shaft 752 is rotatably provided on the main body 1, and a first gear 753 that meshes with the first rack 751 is keyed to the fourth rotating shaft 752. A second gear 754 is keyed to the end of the fourth rotating shaft 752 away from the first gear 753. A second rack 755 that meshes with the second gear 754 is fixedly connected to the locking block 71.

[0043] When the first adjusting block 462 moves the electrostatic adsorption roller 44 into the isolation chamber, the first adjusting block 462 abuts against the second adjusting block 72 and pushes the second adjusting block 72 to move. The first rack 751 on the second adjusting block 72 drives the first gear 753 to rotate, the first gear 753 drives the fourth rotating shaft 752 to rotate, the fourth rotating shaft 752 drives the second gear 754 to rotate, the second gear 754 drives the second rack 755 to move, and the second rack 755 will drive the locking block 71 to move. When the peripheral wall of the electrostatic adsorption roller 44 abuts against the second cleaning block 62, the locking block 71 is no longer engaged with the locking groove on the first rotating shaft 452, so the first rotating shaft 452 can rotate, reducing the phenomenon of damage caused by the first cleaning block 61 colliding with the electrostatic adsorption roller 44 due to misoperation of the adjusting motor 451. When the second adjusting block 72 moves, the stop block 74 will always cover the first sliding groove, reducing the phenomenon of impurities entering the first cavity.

[0044] Reference 1 and Figure 7 The dust collection mechanism 5 includes two rotatably connected beater rollers 51 on the main body 1. A second drive component 52, which is a drive motor, is mounted on the main body 1, and its output shaft is connected to the beater rollers 51. Two floating rollers 53 are mounted on the main body 1, with the two beater rollers 51 positioned between them. Two sixth adjustment components 54 are mounted on the main body 1, each connected to one of the floating rollers 53. Each sixth adjustment component 54 includes two first connecting blocks 541 fixed to the main body 1. A second groove is formed on each first connecting block 541, and a second connecting block 542 is slidably connected within the second groove. The two ends of the floating rollers 53 are rotatably connected to the two second connecting blocks 542. A second spring 543 is mounted within the second groove, with one end connected to the second connecting block 542 and the other end connected to the first connecting block 541.

[0045] The main body 1 is provided with a second suction assembly 55. The second suction assembly 55 includes a second suction cover 551 fixedly connected to the main body 1. A second suction pipe 552 is fixedly connected to the second suction cover 551. One end of the second suction pipe 552 away from the second suction cover 551 extends out of the main body 1 and is connected to a second suction component. The second suction component can be a negative pressure fan or a negative pressure pump.

[0046] In the first suction chamber 14, the second suction hood 551 and the tapping roller 51 are located above the fabric, and the floating roller 53 is located below the fabric. When the second spring 543 is in its normal state, the fabric contacting the floating roller 53 is located above the fabric contacting the first conveyor roller 81. In the second suction chamber 14, the second suction hood 551 and the tapping roller 51 are located below the fabric, and the floating roller 53 is located above the fabric. When the second spring 543 is in its normal state, the fabric contacting the floating roller 53 is located below the fabric contacting the first conveyor roller 81. When the second spring 543 is in its normal state, the fabric is in a taut state.

[0047] When the tapping roller 51 taps the fabric, the fabric vibrates, and the second spring 543 deforms. The restoring elastic deformation of the second spring 543 drives the floating roller 53 to move, which in turn propels the fabric. As the tapping roller 51 taps the fabric, dust moves off the fabric and enters the second suction hood 551.

[0048] The implementation principle of the static elimination and dust removal equipment for textile fabric processing according to the embodiments of this application is as follows: the fabric undergoes a first static elimination operation in the first static elimination chamber 11, then the fabric enters the dust removal chamber 12 for dust removal, then the fabric enters the second static elimination chamber 13 for a second static elimination operation, then the fabric enters the first dust collection chamber 14 for a first dust collection operation, then the fabric enters the second dust collection chamber 14 for a second dust collection operation, and finally moves out of the main body 1.

[0049] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A static electricity elimination and dust removal device for textile fabric processing, comprising a main body (1) and a partition block (2), wherein a processing cavity is formed within the main body (1), characterized in that, The partition block (2) is provided in multiple ways, and the multiple partition blocks (2) divide the processing chamber into a first electrostatic removal chamber (11), a dust removal chamber (12), a second electrostatic removal chamber (13), and a dust collection chamber (14). The main body (1) is provided with a processing device, which includes an electrostatic treatment mechanism (3), a dust removal mechanism (4) and a dust collection mechanism (5). The electrostatic treatment mechanism (3) is provided in both the first electrostatic removal chamber (11) and the second electrostatic removal chamber (13). The dust removal mechanism (4) is installed inside the dust removal chamber (12); The vacuuming mechanism (5) is located inside the vacuuming chamber (14).

2. The static electricity elimination and dust removal equipment for textile fabric processing according to claim 1, characterized in that, The static electricity treatment mechanism (3) includes a static electricity eliminator (31). Both the first static removal chamber (11) and the second static removal chamber (13) are provided with two static eliminators (31), and a gap is formed between the two static eliminators (31) for the fabric to pass through.

3. The static electricity elimination and dust removal equipment for textile fabric processing according to claim 1, characterized in that, Each side of the fabric is provided with a plurality of the dust removal mechanisms (4), and each dust removal mechanism (4) includes a first isolation block (41), a second isolation block (42), a third isolation block (43), an electrostatic adsorption roller (44), a first adjustment component (45), a second adjustment component (46), and a first suction component (47). The first isolation block (41) and the second isolation block (42) are both disposed on the main body (1), and the first isolation block (41), the second isolation block (42) and the main body (1) form an isolation cavity; The third isolation block (43) is disposed on the main body (1) via the first adjustment component (45) and is capable of sealing the isolation cavity. The electrostatic adsorption roller (44) is mounted on the main body (1) via the second adjustment component (46), and the electrostatic adsorption roller (44) can enter the isolation cavity; The first suction component (47) is disposed on the main body (1) and located inside the isolation cavity.

4. The static electricity elimination and dust removal equipment for textile fabric processing according to claim 3, characterized in that, The first isolation block (41) is provided with a cleaning mechanism (6), which includes a first cleaning block (61), a fixing block (63), a second cleaning block (62) and a third adjustment component (64). The fixing block (63) is disposed on the first isolation block (41), and the first cleaning block (61) is slidably disposed on the fixing block (63); The second cleaning block (62) is disposed on the second isolation block (42); The third adjustment component (64) is disposed on the main body (1), and the first cleaning block (61) and the first adjustment component (45) are both connected to the third adjustment component (64); Both the first cleaning block (61) and the second cleaning block (62) can abut against the side wall of the electrostatic adsorption roller (44), and the first cleaning block (61) and the second cleaning block (62) are parallel.

5. The static electricity elimination and dust removal equipment for textile fabric processing according to claim 4, characterized in that, The second adjustment component (46) includes a first cylinder (461), a first adjustment block (462), and a first driving member. The first cylinder (461) is disposed on the main body (1), and the first adjustment block (462) is disposed on the piston rod of the first cylinder (461). The electrostatic adsorption roller (44) is disposed on the first adjustment block (462). The first driving member is disposed on the electrostatic adsorption roller (44) and connected to the electrostatic adsorption roller (44).

6. The static electricity elimination and dust removal equipment for textile fabric processing according to claim 5, characterized in that, The main body (1) is provided with a locking mechanism (7), which includes a locking block (71), a second adjusting block (72), a first spring (73), a stop block (74), and a fourth adjusting component (75). The locking block (71) is slidably disposed on the main body (1), and the locking block (71) is connected to the first adjustment component (45); The main body (1) is provided with a first sliding groove that communicates with the isolation cavity. One end of the second adjusting block (72) is slidably disposed in the first sliding groove, and the first adjusting block (462) can abut against the second adjusting block (72). One end of the first spring (73) is connected to the second adjusting block (72) and the other end is connected to the main body (1); The stop (74) is disposed on the second adjusting block (72) and covers the first sliding groove; The fourth adjustment component (75) is disposed on the main body (1), and the locking block (71) and the second adjustment block (72) are both connected to the fourth adjustment component (75).

7. The static electricity elimination and dust removal equipment for textile fabric processing according to claim 1, characterized in that, The first electrostatic removal chamber (11), the dust removal chamber (12), the second electrostatic removal chamber (13) and the dust collection chamber (14) are all equipped with a conveying mechanism (8), which includes a first conveying roller (81), a second conveying roller (82) and a fifth adjusting component (83). The first conveying roller (81) is rotatably mounted on the main body (1); The second conveying roller (82) is mounted on the main body (1) via the fifth adjusting assembly (83); Both the first conveyor roller (81) and the second conveyor roller (82) are pressed against the fabric.

8. The static electricity elimination and dust removal equipment for textile fabric processing according to claim 7, characterized in that, Two dust collection chambers (14) are provided, and each dust collection chamber (14) is provided with a dust collection mechanism (5). Each dust collection mechanism (5) includes a tapping roller (51), a second driving member (52), a floating roller (53), a sixth adjusting component (54), and a second suction component (55). The patting roller (51) is rotatably mounted on the main body (1) via the second driving member (52); The floating roller (53) is mounted on the main body (1) via the sixth adjustment component (54); The second suction assembly (55) is disposed on the main body (1). In each of the dust collection chambers (14), the second suction assembly (55) and the tapping roller (51) are located on both sides of the fabric, and the second suction assembly (55) in the two dust collection chambers (14) are located on both sides of the fabric.

Citation Information

Patent Citations

  • A dust removal device for textile fabrics

    CN215210123U