Dip dyeing device for textile fabric production
By designing the fabric circulation conveying and vibration structure of the rack, dipping pool and disturbing roller device, the problem of unstable fabric stacking and operation in existing equipment is solved, and efficient and stable dipping effect is achieved, and the service life and dipping efficiency of the equipment are improved.
Patent Information
- Application Number
- CN202510797505.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-16
- Publication Date
- 2025-08-01
AI Technical Summary
When used in existing fabric dipping and dyeing equipment, the fabric cannot be fully toggled and rolled, resulting in stacking affecting the dipping and dyeing effect, and the equipment is unstable, frequent clamping of fabrics leads to low efficiency, equipment is prone to failure, and dye disturbances are not good.
The structural design includes a frame, a dipping pool, a disturbing pool, a disturbing roller device and a tensioning roller device is adopted. The servo motor drives the disturbing roller device to realize the circulating conveying, up and down swinging and vibration of the fabric, and improve the contact between the dye liquid and the fabric, and combines the discharge vibration roller device to shake off the excess dye liquid to ensure continuous immersion.
It improves the contact between the dye liquid and the fabric, improves the impregnation efficiency, equipment operation stability, extends the service life of the equipment, and ensures the continuous impregnation and dyeing effect of the fabric.
Smart Images

Figure CN120401154A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the field of fabric dyeing, and particularly relates to a dyeing device for textile fabric production. Background Art
[0002] During the manufacturing process of textiles, a dyeing process is required. Generally, the dyeing process adopts an immersion method. Immersion is a processing technique in which the object to be dyed is immersed in a dye bath containing dyes and required auxiliaries, so that the dyes gradually dye the object to be dyed. When carrying out immersion, a fabric dyeing device is needed. When the existing fabric dyeing equipment is used, the fabric is directly put into the dyeing tank for dyeing. During dyeing, the fabric cannot be fully stirred and tumbled, resulting in fabric stacking and affecting the dyeing effect.
[0003] A fabric dyeing equipment disclosed in a Chinese patent with the application number CN202211094801.X includes a swing pool, a dyeing pool, and hanging rods. The dyeing pool is arranged inside the swing pool. There are multiple dyeing pools, and each dyeing pool is arranged side by side in the left - right direction. The swing pool is adapted to swing back and forth around a horizontal axis. The dyeing pool is adapted to move towards the lower side of the swing pool when the swing pool swings. The hanging rod is detachably connected to the dyeing pool. The hanging rod spans across the inside of the dyeing pool. The hanging rod is adapted to hang the fabric, and the dyeing pool is adapted to hold the dye. The upper edge of the fabric is fixed on the hanging rod, and the lower end of the fabric hangs in the dyeing pool. Dye is injected into the dyeing pool, and the swing pool is driven to swing back and forth. The dye penetrates through the fabric back and forth, realizing efficient dyeing of multiple pieces of fabric at one time and improving the dyeing uniformity of the fabric. Although the above - mentioned device can dye multiple pieces of fabric at one time, it needs to frequently clamp the fabric, resulting in low dyeing efficiency; in order to improve the full contact between the dye solution and the fabric, the method of shaking the dyeing pool is adopted. By driving the dyeing pool to swing to drive the dye to be disturbed, the impact on the equipment is large, resulting in unstable operation of the equipment, easy occurrence of failures, and poor dye disturbance effect. Summary of the Invention
[0004] The purpose of the present invention is to provide a dyeing device for textile fabric production in view of the deficiencies of the prior art.
[0005] To achieve the above - mentioned purpose, the specific technical solution of the present invention is as follows: An impregnation device for textile fabric production, comprising a frame. An impregnation tank is fixedly installed on the frame. A feeding and discharging box is installed at the upper left end of the impregnation tank. A discharging vibrating roller device is arranged in the feeding and discharging box. A disturbance tank is arranged at the middle position of the impregnation tank. An installation plate is arranged at the middle of the upper end surface of the disturbance tank. A reciprocating driving device is arranged on the installation plate. A first disturbance device capable of sliding vertically up and down is slidably connected to the installation plate. The first disturbance device is in rolling contact with the reciprocating driving device. A second disturbance device is fixedly installed directly below the first disturbance device. A third disturbance device is fixedly installed directly below the second disturbance device. Disturbance roller devices that are parallel to each other and vertically corresponding up and down are respectively rotatably connected to the first disturbance device, the second disturbance device and the third disturbance device. The disturbance roller devices are arranged at intervals. A tensioning roller device is arranged on the right side of the impregnation tank. The tensioning roller device is located directly to the right of the second disturbance device.
[0006] As a further setting of the above solution, sliding grooves are symmetrically arranged on the front and rear inner walls of the right side area of the impregnation tank. A feeding roller group and a discharging roller group arranged in parallel are rotatably connected in the left side area of the impregnation tank. The discharging roller group is located at the upper right of the feeding roller group. The tensioning roller device includes a tensioning roller. Sliding table devices are rotatably connected to both ends of the tensioning roller. A vertically arranged tensioning spring column is fixedly connected to the left end surface of the sliding table device. The sliding table device is slidably connected to the sliding groove. The left end of the tensioning spring column is fixedly connected to the sliding groove.
[0007] As a further setting of the above solution, an inclined groove inclined right downward is arranged on the bottom plate of the feeding and discharging box. A support roller is rotatably connected to the upper left end of the inclined groove. The discharging vibrating roller device is arranged in parallel with the support roller.
[0008] As a further setting of the above solution, the installation plate is fixedly installed at the middle of the upper end surface of the disturbance tank. A vertically penetrating first installation groove and a second installation groove are opened at the middle of the installation plate. A rotating circular groove is opened between the first installation groove and the second installation groove. Vertically penetrating guiding circular grooves are opened at the front and rear ends of the installation plate.
[0009] As a further setting of the above solution, the reciprocating driving device includes a servo motor and a cam. The servo motor is fixedly installed on the installation plate. A first belt pulley is fixedly connected to the output shaft of the servo motor. A rotating shaft is arranged at the center of the cam. The cam is rotatably connected in the first installation groove through the rotating shaft. The front end of the rotating shaft penetrates through the rotating circular groove and extends into the second installation groove. A second belt pulley is fixedly connected to the front end of the rotating shaft. The second belt pulley is in transmission connection with the first belt pulley through a transmission belt. Half of the cam is set as an arc section, and the other half is set as an elliptical arc section. The length of the minor axis of the elliptical arc section is equal to the diameter of the arc section. Vibration teeth are opened on the arc surface of the elliptical arc section.
[0010] As a further setting of the above solution, the first disturbance device includes a first rotating bracket. A disturbance roller device is rotatably connected inside the first rotating bracket. Both ends of the first rotating bracket are fixedly connected with first mounting platforms. Vertically upward guide columns are fixedly connected to the first mounting platforms. The upper ends of the guide columns are fixedly connected with limit platforms. A spring device is sleeved on the guide columns. The guide columns are slidably connected with guide circular grooves. The upper end of the spring device is fixedly connected with the limit platform, and the lower end of the spring device is fixedly connected with a mounting plate. The upper end of the first rotating bracket is fixedly connected with a fixed bridge plate. A square groove is formed at the center of the fixed bridge plate. A rolling disc is rotatably connected inside the square groove. The rolling disc is in rolling contact with a cam.
[0011] As a further setting of the above solution, the second disturbance device includes a second rotating bracket. Both ends of the second rotating bracket are fixedly connected with second mounting platforms. Vertically upward fixed mounting frames are connected to the second mounting platforms. The fixed mounting frames are fixedly connected with the first mounting platforms. The third disturbance device includes a third rotating bracket. Both ends of the third rotating bracket are fixedly connected with third mounting platforms. Vertically upward fixed mounting frames are connected to the third mounting platforms. The fixed mounting frames are fixedly connected with the second mounting platforms. Vertically downward buffer spring columns are evenly arranged on the lower end surface of the third rotating bracket. The lower ends of the buffer spring columns are fixedly connected with the bottom plate of the disturbance pool.
[0012] As a further setting of the above solution, a disturbance roller device is rotatably connected inside the second rotating bracket and the third rotating bracket. A waterproof cavity is provided inside one side of the first mounting platform, the second mounting platform and the third mounting platform.
[0013] As a further setting of the above solution, the disturbance roller device includes a main shaft. Axially distributed and circumferentially arranged disturbance long plates are provided on the main shaft. Linear arrangement support rings are fixedly connected to the outer edges of the disturbance long plates. The support rings and the main shaft are concentric with the central axis. One end of the main shaft is connected with a driving motor. The driving motor is located inside the waterproof cavity to ensure the normal operation of the driving motor.
[0014] Advantages of the present invention: The fabric passes through the inlet and outlet box with the support of the support roller and the feed roller group and enters the dipping pool. The fabric passes horizontally to the right through the two disturbance roller devices, turns upward around the tensioning roller device, and then passes horizontally to the left through the two disturbance roller devices again. The fabric passes out of the inlet and outlet box under the guiding support of the discharge roller group. The servo motor drives the cam to rotate. When the arc section of the cam contacts the rolling disc, the first disturbance device, the second disturbance device, and the third disturbance device remain stationary. The drive motor drives the main shaft to rotate, driving the disturbance long plate to rotate. The disturbance long plate drives the dye liquor near the upper and lower surfaces of the fabric to be disturbed. When the elliptical arc section of the cam contacts the rolling disc, the drive motor shuts down, driving the first disturbance device, the second disturbance device, and the third disturbance device to move up and down. The disturbance long plate and the support ring are in rolling contact with the fabric, driving the fabric to swing up and down. The tensioning roller device automatically adjusts the tension of the fabric. At the same time, under the action of the vibrating teeth, the fabric vibrates synchronously. This equipment realizes the circular conveying of the fabric in the equipment, greatly improves the contact degree between the dye liquor and the fabric, enhances the dipping effect, improves the dipping efficiency, the equipment runs stably, and significantly improves the service life of the equipment.
[0015] When the fabric discharges from the inlet and outlet box, the dipped fabric is located above the undipped fabric. The discharge vibration roller device drives the fabric to vibrate, shaking the excess dye liquor downward onto the undipped fabric, without affecting the subsequent dipping. The remaining dye liquor automatically flows back into the dipping pool along the chute, further ensuring the continuous dipping of the fabric and improving the working efficiency. Brief Description of the Drawings
[0016] Figure 1 It is a schematic cross-sectional view of the overall structure of the present invention; Figure 2 It is a schematic diagram of the disturbance mechanism of the present invention; Figure 3 It is a schematic diagram of the dipping pool of the present invention; Figure 4 It is a schematic diagram of the mounting plate of the present invention; Figure 5 It is a schematic diagram of the tensioning roller device of the present invention; Figure 6 It is a schematic diagram of the reciprocating drive device of the present invention; Figure 7 It is a schematic diagram of the first disturbance device of the present invention; Figure 8 It is a schematic diagram of the second disturbance device and the third disturbance device of the present invention; Figure 9 It is a schematic diagram of the disturbance roller device of the present invention.
[0017] Frame; 2. Dyeing bath; 201. Stirring bath; 202. Chute; 203. Feeding roller group; 204. Discharging roller group; 205. Mounting plate; 2051. First mounting groove; 2052. Rotating circular groove; 2053. Second mounting groove; 2054. Guide circular groove; 3. Inlet and outlet box; 301. Inclined chute; 302. Support roller; 4. Discharging vibration roller device; 5. Tensioning roller device; 501. Tensioning roller; 502. Slide table device; 503. Tensioning spring column; 6. Reciprocating drive device; 601. Servo motor; 602. First pulley; 603. Cam; 6031. Arc segment; 6032. Elliptical arc segment; 6033. Vibration teeth; 6034. Rotating shaft; 604. Second pulley; 605. Transmission belt; 7. First stirring device; 701. First rotating bracket; 702. First mounting table; 703. Waterproof cavity; 704. Guide post; 705. Limiting table; 706. Spring device; 707. Fixed bridge plate; 7071. Square groove; 7072. Rolling disc; 8. Second stirring device; 801. Second rotating bracket; 802. Second mounting table; 803. Fixed mounting frame; 9. Third stirring device; 901. Third rotating bracket; 902. Third mounting table; 903. Buffer spring column; 10. Stirring roller device; 1001. Main shaft; 1002. Stirring long plate; 1003. Support ring; 1004. Driving motor; 11. Fabric. Detailed implementation manners
[0018] In order to enable those skilled in the art of this technology to better understand the solution of this application, the technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings in the embodiments of this application. Obviously, the described embodiments are only a part of the embodiments of this application, rather than all the embodiments. Based on the embodiments in this application, all other embodiments obtained by those of ordinary skill in the art without making creative efforts shall fall within the protection scope of this application.
[0019] It should be noted that, without conflict, the embodiments in this application and the features in the embodiments may be combined with each other. The following will refer to the attached Figures 1 - 9 and describe this application in detail with reference to the embodiments.
[0020] This embodiment discloses an impregnation device for textile fabric production. A soaking pool 2 is fixedly installed on a frame 1. An inlet and outlet box 3 is installed at the upper left end of the soaking pool 2. A discharge vibrating roller device 4 is provided in the inlet and outlet box 3. A disturbance pool 201 is provided at the middle position of the soaking pool 2. At the middle of the upper end surface of the disturbance pool 201, there is an installation plate 205. A reciprocating driving device 6 is provided on the installation plate 205. A first disturbance device 7 that can slide vertically up and down is slidably connected to the installation plate 205. The first disturbance device 7 is in rolling abutment with the reciprocating driving device 6. A second disturbance device 8 is fixedly installed directly below the first disturbance device 7. A third disturbance device 9 is fixedly installed directly below the second disturbance device 8. Disturbance roller devices 10 that are parallel to each other and vertically corresponding up and down are respectively rotatably connected to the first disturbance device 7, the second disturbance device 8, and the third disturbance device 9. The disturbance roller devices 10 are arranged at intervals. A tensioning roller device 5 is provided on the right side of the soaking pool 201. The tensioning roller device 5 is located directly to the right of the second disturbance device 8.
[0021] As Figure 3 , Figure 5 shown, sliding grooves 202 are symmetrically provided on the front and rear inner walls of the right side area of the soaking pool 2. A feeding roller group 203 and a discharging roller group 204 that are arranged in parallel are rotatably connected in the left side area of the soaking pool 2. The discharging roller group 204 is located at the upper right of the feeding roller group 203. The tensioning roller device 5 includes a tensioning roller 501. Sliding table devices 502 are rotatably connected to both ends of the tensioning roller 501. A vertically arranged tensioning spring column 503 is fixedly connected to the left end surface of the sliding table device 502. The sliding table device 502 is slidably connected to the sliding groove 202. The left end of the tensioning spring column 503 is fixedly connected to the sliding groove 202. When the fabric 11 is wound around the tensioning roller 501, a pressure is applied to the tensioning roller 501. The tensioning spring column 503 provides elastic support for the tensioning roller 501, automatically adjusting the tension of the fabric 11 and ensuring the stability of the load borne by the fabric 11, keeping the fabric 11 in a straightened state.
[0022] An inclined groove 301 that slopes diagonally downward to the right is provided on the bottom plate of the inlet and outlet box 3. A support roller 302 is rotatably connected to the upper left end of the inclined groove 301. The discharge vibrating roller device 4 is arranged in parallel with the support roller 302. The fabric 11 enters the soaking pool 2 through the inlet and outlet box 3 with the support of the support roller 302 and the feeding roller group 203. The fabric 11 horizontally passes through the disturbance pool 201 to the right, turns upward around the tensioning roller 501, and then horizontally passes through the disturbance pool 201 to the left again. The fabric 11 exits the inlet and outlet box 3 under the guiding support of the discharging roller group 204, realizing the cyclic conveyance of the fabric 11 in the device.
[0023] As Figure 4As shown, the mounting plate 205 is fixedly installed at the middle of the upper end face of the disturbance pool 201. A vertically penetrating first mounting groove 2051 and a second mounting groove 2053 are formed in the middle of the mounting plate 205. A rotating circular groove 2052 is formed between the first mounting groove 2051 and the second mounting groove 2053. Vertically penetrating guide circular grooves 2054 are formed at the front and rear ends of the mounting plate 205.
[0024] As Figure 6 shown, the reciprocating driving device 6 includes a servo motor 601 and a cam 603. The servo motor 601 is fixedly installed on the mounting plate 205. A first belt pulley 602 is fixedly connected to the output shaft of the servo motor 601. A rotating shaft 6034 is provided at the center of the cam 603. The cam 603 is rotatably connected in the first mounting groove 2051 through the rotating shaft 6034. The front end of the rotating shaft 6034 passes through the rotating circular groove 2052 and extends into the second mounting groove 2053. A second belt pulley 604 is fixedly connected to the front end of the rotating shaft 6034. The second belt pulley 604 is in transmission connection with the first belt pulley 602 through a transmission belt 605. Half of the cam 603 is set as an arc segment 6031, and the other half is set as an elliptical arc segment 6032. The length of the minor axis of the elliptical arc segment 6032 is equal to the diameter of the arc segment 6031. Vibration teeth 6033 are formed on the arc surface of the elliptical arc segment 6032.
[0025] As Figure 7 shown, the first disturbance device 7 includes a first rotating bracket 701. A disturbance roller device 10 is rotatably connected inside the first rotating bracket 701. First mounting platforms 702 are fixedly connected to both ends of the first rotating bracket 701. Vertically upward guide columns 704 are fixedly connected to the first mounting platforms 702. A limiting platform 705 is fixedly connected to the upper ends of the guide columns 704. A spring device 706 is sleeved on the guide columns 704. The guide columns 704 are in sliding connection with the guide circular grooves 2054. The upper end of the spring device 706 is fixedly connected to the limiting platform 705, and the lower end of the spring device 706 is fixedly connected to the mounting plate 205. The spring device 706 plays a buffering role when the first rotating bracket 701 moves up and down, improving the stability of the device. A fixed bridge plate 707 is fixedly connected to the upper end of the first rotating bracket 701. A square groove 7071 is formed at the center of the fixed bridge plate 707. A rolling disc 7072 is rotatably connected in the square groove 7071. The rolling disc 7072 is in rolling contact with the cam 603.
[0026] As Figure 8As shown, the second disturbance device 8 includes a second rotating bracket 801. Both ends of the second rotating bracket 801 are fixedly connected with second mounting platforms 802. A vertically upward fixed mounting frame 803 is connected to the second mounting platform 802. The fixed mounting frame 803 is fixedly connected with the first mounting platform 702. The third disturbance device 9 includes a third rotating bracket 901. Both ends of the third rotating bracket 901 are fixedly connected with third mounting platforms 902. A vertically upward fixed mounting frame 803 is connected to the third mounting platform 902. The fixed mounting frame 803 is fixedly connected with the second mounting platform 802. Vertically downward buffer spring columns 903 are evenly arranged on the lower end surface of the third rotating bracket 901. The lower ends of the buffer spring columns 903 are fixedly connected with the bottom plate of the disturbance pool 201. The buffer spring columns 903 provide elastic support for the third rotating bracket 901, playing a buffering role and ensuring stability during up and down movement. A disturbance roller device 10 is rotatably connected inside the second rotating bracket 801 and the third rotating bracket 901. Waterproof cavities 703 are provided inside the first mounting platform 702, the second mounting platform 802, and the third mounting platform 902 on one side.
[0027] As Figure 9 As shown, the disturbance roller device 10 includes a main shaft 1001. Axially distributed and circumferentially arranged disturbance long plates 1002 are provided on the main shaft 1001. A linearly arranged support ring 1003 is fixedly connected to the outer edge of the disturbance long plate 1002. The support ring 1003 and the main shaft 1001 have the same central axis. One end of the main shaft 1001 is connected with a driving motor 1004. The driving motor 1004 is located inside the waterproof cavity 703 to ensure the normal operation of the driving motor 1004.
[0028] Working process: The fabric 11 passes through the inlet and outlet box 3 with the support of the support roller 301 and the feeding roller group 203 and enters the dipping pool 2. The fabric 11 passes horizontally to the right through the two disturbance roller devices 10. These two disturbance roller devices 10 are the two in the middle and lower positions among the three moving roller devices 10. The fabric 11 passes horizontally to the left again through the two disturbance roller devices 10 after passing around the tensioning roller 501 upward on the right side. These two disturbance roller devices 10 are the two in the middle and upper positions among the three moving roller devices 10. The fabric 11 passes out of the inlet and outlet box 3 under the guiding support of the discharging roller group 204. The servo motor 601 drives the cam 603 to rotate. The arc section 6031 of the cam 603 contacts the rolling disc 7072. The first disturbance device 7, the second disturbance device 8, and the third disturbance device 8 remain stationary. Then the heights of the three moving roller devices 10 remain unchanged. The driving motor 1004 drives the main shaft 1001 to rotate, driving the disturbance long plate 1002 to rotate. The disturbance long plate 1002 drives the dye liquor near the upper and lower surfaces of the fabric 11 to be disturbed, greatly improving the contact degree between the dye liquor and the fabric. When the elliptical arc section 6032 of the cam 603 contacts the rolling disc 7072, the driving motor 1004 is synchronously turned off. During the rotation of the elliptical arc section 6032, it drives the first disturbance device 7, the second disturbance device 8, and the third disturbance device 9 to move up and down, driving the disturbance long plate 7002 and the support ring 1003 to roll and contact the fabric 11, driving the fabric 11 to swing up and down. The fabric 11 drives the disturbance roller device 10 to rotate, ensuring the smooth conveyance of the fabric 11. The tensioning roller device 5 automatically adjusts the tension of the fabric 11 when the fabric 11 swings up and down. At the same time, under the buffering of the spring device 706 and the buffer spring column 903, the impact load is reduced, ensuring the stability of the equipment operation. At the same time, under the action of the vibrating teeth 6033, the fabric 11 vibrates synchronously, further improving the contact degree between the dye liquor and the fabric and enhancing the dipping effect. The arc section 6031 and the elliptical arc section 6032 of the cam 603 alternately contact the rolling disc 7072, periodically disturbing the dye liquor near the upper and lower surfaces of the fabric 11 and periodically driving the fabric 11 to swing up and down, ensuring the cyclic conveyance of the fabric 11 and realizing the continuous dipping of the fabric 11.
[0029] When the fabric 11 discharges from the inlet and outlet box 3, the dipped fabric 11 is located above the undipped fabric 11. The discharging vibration roller device 4 drives the fabric 11 to vibrate, shaking the excess dye liquor downward onto the undipped fabric 11, without affecting the subsequent dipping. The remaining dye liquor automatically flows back to the dipping pool 2 along the chute 301, further ensuring the continuous dipping of the fabric 11.
[0030] The foregoing has shown and described the basic principles, main features and advantages of the present invention. For those skilled in the art, it is obvious that the present invention is not limited to the details of the above-described exemplary embodiments, and without departing from the spirit or basic characteristics of the present invention, the present invention can be implemented in other specific forms. Therefore, in any aspect, the embodiments should be regarded as exemplary and non-limiting. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be embraced within the present invention. Any reference signs in the claims should not be construed as limiting the claims concerned.
[0031] In addition, it should be understood that although this specification is described according to the embodiments, not every embodiment only contains an independent technical solution. This narrative way of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. An impregnation device for textile fabric production, comprising a frame, on which an impregnation tank is fixedly installed, characterized in that, At the upper left end of the dipping pool, a feeding and discharging box is installed. Inside the feeding and discharging box, there is a discharging vibrating roller device. In the middle position of the dipping pool, there is a disturbance pool. In the middle of the upper end surface of the disturbance pool, there is a mounting plate. On the mounting plate, there is a reciprocating driving device. A first disturbance device that can slide vertically up and down is slidably connected to the mounting plate. The first disturbance device is in rolling contact with the reciprocating driving device. A second disturbance device is fixedly installed directly below the first disturbance device, and a third disturbance device is fixedly installed directly below the second disturbance device. On the first disturbance device, the second disturbance device, and the third disturbance device, there are respectively rotatably connected disturbance roller devices that are parallel to each other and vertically corresponding up and down. The disturbance roller devices are arranged at intervals. On the right side of the dipping pool, there is a tensioning roller device, and the tensioning roller device is located directly to the right of the second disturbance device.
2. The dipping device for textile fabric production according to claim 1, characterized in that, On the front and rear inner walls of the right side area of the dipping pool, there are symmetrically arranged sliding grooves. Inside the left side area of the dipping pool, there are rotatably connected a parallel feeding roller group and a discharging roller group. The discharging roller group is located at the upper right of the feeding roller group. The tensioning roller device includes a tensioning roller. At both ends of the tensioning roller, there are rotatably connected slide table devices. On the left end face of the slide table device, there is fixedly connected a vertically arranged tensioning spring column. The slide table device is slidably connected to the sliding groove, and the left end of the tensioning spring column is fixedly connected to the sliding groove.
3. The dipping device for textile fabric production according to claim 1, characterized in that, On the bottom plate of the feeding and discharging box, there is an inclined groove slanting right downward. At the upper left end of the inclined groove, there is a rotatably connected support roller. The discharging vibrating roller device is arranged parallel to the support roller.
4. The dipping device for textile fabric production according to claim 1, characterized in that, The mounting plate is fixedly installed in the middle of the upper end surface of the disturbance pool. In the middle of the mounting plate, there are vertically penetrating first mounting grooves and second mounting grooves. Between the first mounting groove and the second mounting groove, there is a rotating circular groove. On the front and rear ends of the mounting plate, there are vertically penetrating guiding circular grooves.
5. The dipping device for textile fabric production according to claim 4, characterized in that, The reciprocating driving device includes a servo motor and a cam. The servo motor is fixedly installed on the mounting plate. A first belt pulley is fixedly connected to the output shaft of the servo motor. A rotating shaft is provided at the center of the cam. The cam is rotatably connected in the first mounting groove through the rotating shaft. The front end of the rotating shaft penetrates through the rotating circular groove and extends into the second mounting groove. A second belt pulley is fixedly connected to the front end of the rotating shaft. The second belt pulley is in transmission connection with the first belt pulley through a transmission belt. Half of the cam is an arc section, and the other half is an elliptical arc section. The length of the minor axis of the elliptical arc section is equal to the diameter of the arc section. On the arc surface of the elliptical arc section, there are vibration teeth.
6. The dipping device for textile fabric production according to claim 5, characterized in that, The first disturbance device includes a first rotating bracket. Inside the first rotating bracket, there is a rotatably connected disturbance roller device. At both ends of the first rotating bracket, there are fixedly connected first mounting platforms. On the first mounting platforms, there are fixedly connected vertically upward guide columns. At the upper ends of the guide columns, there are fixedly connected limit platforms. A spring device is sleeved on the guide columns. The guide columns are slidably connected to the guiding circular grooves. The upper end of the spring device is fixedly connected to the limit platform, and the lower end of the spring device is fixedly connected to the mounting plate. At the upper end of the first rotating bracket, there is fixedly connected a fixed bridge plate. In the center of the fixed bridge plate, there is a square groove. Inside the square groove, there is a rotatably connected rolling disc. The rolling disc is in rolling contact with the cam.
7. The dipping device for textile fabric production according to claim 6, characterized in that, The second disturbance device includes a second rotating bracket. Both ends of the second rotating bracket are fixedly connected with second mounting platforms. A vertically upward fixed mounting frame is connected to the second mounting platforms, and the fixed mounting frame is fixedly connected to the first mounting platform. The third disturbance device includes a third rotating bracket. Both ends of the third rotating bracket are fixedly connected with third mounting platforms. A vertically upward fixed mounting frame is connected to the third mounting platforms, and the fixed mounting frame is fixedly connected to the second mounting platform. Vertically downward buffer spring columns are evenly arranged on the lower end surface of the third rotating bracket, and the lower ends of the buffer spring columns are fixedly connected to the bottom plate of the disturbance pool.
8. The dipping device for textile fabric production according to claim 7, wherein A disturbance roller device is rotatably connected inside the second rotating bracket and the third rotating bracket. Waterproof cavities are arranged inside the first mounting platform, the second mounting platform and the third mounting platform on one side.
9. The dipping device for textile fabric production according to claim 8, characterized in that, The disturbance roller device includes a main shaft. Axially distributed and circumferentially arranged disturbance long plates are arranged on the main shaft. A linearly arranged support ring is fixedly connected to the outer edge of the disturbance long plate. The support ring and the main shaft have the same central axis. One end of the main shaft is connected with a driving motor, and the driving motor is located inside the waterproof cavity.
Citation Information
Patent Citations
A fabric dyeing equipment
CN115182121B