Textile equipment for down jacket processing
By designing a down jacket processing equipment including a mixing bucket, a mixing box, a drop hopper and a fan, the problems of uneven filling, quantitative and fixed speed filling and low working efficiency are solved, and the uniform quantification and working efficiency of down filling are achieved.
Patent Information
- Application Number
- CN202211116233.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-09-14
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2042-09-14
AI Technical Summary
During the filling process of existing down jacket processing equipment, there are problems such as down splash, uneven filling, lack of quantitative and fixed-speed filling structure, and low working efficiency.
A textile equipment including a mixing bucket, a mixing box, a blanking hopper, a fan and a conveying pipe is adopted. Through the cooperation of the blanking motor and the fan, down filling material is delivered in a quantitative manner. Through the design of the limiting tube sleeve and clamping ring, the down fabric is ensured to be stable in connection with the conveying pipe to avoid loosening of the down fabric.
It realizes uniform quantification of down filling, improves work efficiency, reduces labor losses, and enhances the scope of application of equipment and the filling accuracy.
Smart Images

Figure CN115462587B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of down processing, in particular to a textile device for processing down garments. Background Art
[0002] During the production process of down products such as down jackets and down quilts, they need to be filled with down. The down is often filled through special and complex filling processing equipment.
[0003] Patent document CN112401377A discloses a textile machine for processing down jackets, comprising a tabletop, an equipment cabinet at the bottom of which is fixed a control panel on the right side of the upper surface of the tabletop, a hopper fixedly mounted on the left side of the upper surface of the tabletop via a support frame, a down filling tube penetrating the cabinet body on the right side of the equipment cabinet, the down filling tube comprising a down filling tube shell, an inner tube, a fixing frame, a filter, and an air return port, the inner tube fixedly mounted inside the down filling tube shell via a fixing frame, the filter fixedly mounted on the rightmost side of the down filling tube shell and the inner tube, an air return port provided at the bottom of the left side of the down filling tube shell, an operating table fixedly mounted below the down filling tube on the right side of the equipment cabinet via a supporting diagonal rod, and a drive motor fixedly mounted at the bottom of the cabinet body. The present invention solves the problems of existing down jacket processing equipment, such as the tendency for down to splash and the single function.
[0004] The above-mentioned device has the following deficiencies when in use: the above-mentioned device cannot quickly and accurately fill down products during the processing process, cannot be adapted to different down products, and the filling effect is uneven. Moreover, the above-mentioned device cannot accurately plug and fill down during the processing process, and lacks a structure for quantitative and constant speed filling, so that the amount of down filled depends solely on manual experience, which is time-consuming, labor-intensive, and has poor accuracy. Moreover, when in use, the above-mentioned device is easily separated from the down fabric and the filling port due to excessive airflow, requiring manual support, and having low working efficiency. Summary of the Invention
[0005] The purpose of the present invention is to provide a textile equipment for down jacket processing in order to solve the above-mentioned problems and shortcomings, thereby improving the overall work efficiency.
[0006] The technical problems solved by the present invention are:
[0007] (1) The above device cannot quickly and accurately fill down products during the processing process, cannot adapt to different down products, and the filling effect is uneven;
[0008] (2) The above-mentioned device cannot accurately fill the down during the processing process, and lacks a structure for quantitative and constant speed filling. Therefore, the amount of down filled depends solely on manual experience, which is time-consuming, labor-intensive and has poor accuracy.
[0009] (3) When the above device is in use, it is easy for the airflow to be too strong, causing the down fabric to separate from the filling port, requiring manual support, and the working efficiency is low.
[0010] The objectives of the present invention can be achieved through the following technical solutions: A textile equipment for down jacket processing, comprising a working bracket, a stirring bucket is installed on the upper part of the working bracket, a stirring box is installed on the upper part of the stirring bucket, and the stirring bucket and the stirring box are connected to each other, a stirring motor is installed on one side of the stirring bucket, a feeding hopper is installed on one side of the stirring box, a blanking hopper is installed on the lower part of the stirring bucket, a blanking motor and a fan are respectively provided on the side of the blanking hopper away from the stirring motor, the blanking motor is located above the fan, a conveying cylinder is installed on the side of the blanking hopper close to the stirring motor, a conveying tube for filling down fabric with down is installed on one end of the conveying tube, a support plate for holding down fabric is provided in the middle of the working bracket and below the conveying tube, a limiting pipe sleeve for docking with the filling port of the down fabric is slidably sleeved on the outer periphery of the conveying tube.
[0011] As a further solution of the invention, the end of the driving shaft of the blanking motor is fixedly connected to a first transmission rod, both ends of the first transmission rod are rotatably connected to the blanking hopper, and the outer periphery of the first transmission rod is fixedly connected to four material-distributing plates at equal angles.
[0012] As a further solution of the invention, one side of the bottom of the two side walls of the hopper is arc-shaped and the center of the arc is on the axial center line of the first transmission rod. A conveying port is opened on the other side of the bottom of the two side walls of the hopper, and the outer side of the two side walls of the hopper is located at the outer periphery of the conveying port and is fixedly connected with a docking ring.
[0013] As a further solution of the invention, a shielding frame is installed on the upper inner side of the dropping hopper and on the side close to the conveying port. The upper part of the shielding frame is adapted to the top of the dropping hopper and the bottom of the mixing bucket. The lower part of the shielding frame is arc-shaped and the lower axis of the shielding frame is coaxial with the first transmission rod.
[0014] As a further solution of the invention, both sides of the outer periphery of the material-diverting plate are in frictional contact with the inner walls on both sides of the drop hopper, and the outer peripheral side edges of the material-diverting plate are in frictional contact with the arc-shaped inner wall of the drop hopper and the lower arc-shaped inner wall of the shielding frame respectively. One side of the mixing bucket is inclined, and the lowest point of the mixing bucket is connected to the drop hopper.
[0015] As a further solution of the invention, support slide rails are fixedly connected to both sides of the delivery pipe, the support slide rails are slidably connected to the limiting pipe sleeve, and a sealing ring is fixedly sleeved on the side of the outer periphery of the limiting pipe sleeve close to the delivery pipe.
[0016] As a further solution of the invention, support frames are fixedly connected on both sides of one end of the limiting pipe sleeve, and a mounting frame is installed on the side of the support frame away from the conveying pipe. Each mounting frame is rotatably connected to a pair of symmetrically arranged support columns, and a clamping bracket is fixedly connected to the support column.
[0017] As a further solution of the invention, clamping rings are provided on both sides of one end of the limiting pipe sleeve, and the two sides of the clamping ring are respectively fixedly connected to the clamping bracket. A sealing ring is fixedly connected to the inner side of the clamping ring, and a transmission gear is fixedly sleeved on the middle part of the support column. The two transmission gears on each mounting frame are engaged with each other for transmission.
[0018] As a further solution of the invention, the sealing ring is semicircular in shape, and both ends of the sealing ring are equipped with clips for mutual connection. The inner side of the sealing ring is adapted to the outer periphery of the sealing ring, and a number of ventilation holes evenly distributed in a circular array are opened inside both ends of the limiting tube sleeve.
[0019] As a further solution of the invention, the end of the driving shaft of the stirring motor is fixedly connected to a second transmission rod, and the two ends of the second transmission rod are respectively rotatably connected to the stirring bucket. The outer periphery of the second transmission rod is fixedly connected to a number of stirring rods evenly distributed in a circular array, and the length of the stirring rod is adapted to the inclined side wall of the stirring bucket. The conveying pipe is sealed with the conveying cylinder through a connecting pipe sleeve.
[0020] Beneficial effects of the present invention:
[0021] (1) The down filling material is conveyed into the mixing box through the feeding hopper. The material of the mixing box is transparent, which is convenient for the staff to observe whether the down filling material inside is fully and evenly stirred. Under the action of the inclined side wall of the mixing hopper, the down filling material accumulates at the lowest point of the mixing hopper and falls into the drop hopper. Under the action of the drop motor, the down filling material is quantitatively moved to the air outlet of the fan. Driven by the wind force of the fan, the down filling material passes through the conveying cylinder and enters the interior of the conveying pipe. At the same time, the outer periphery of the limiting pipe sleeve on the conveying pipe is connected with the filling port of the down fabric, and the limiting pipe sleeve is slid on the conveying pipe until the down is filled. The inner bottom of the fabric abuts against the pipe opening of the conveying pipe. Under the push of the fan, the down filling material is filled into the down fabric through the conveying pipe. As the down filling material is continuously filled, the down fabric continuously moves until the limiting pipe sleeve moves to the pipe opening of the conveying pipe. The down filling material is quantitatively conveyed by the control of the blanking motor, and the down fabric is supported by the support plate, so that the staff can conveniently and quickly carry out continuous quantitative filling of several down fabrics. By connecting the pipe sleeve 11, various lengths of conveying pipes 10 can be installed on the conveying cylinder 9 to adapt to different down products and improve the scope of application.
[0022] (2) Rotate the material-dispensing plate and cooperate with the hopper to push the down filling material falling into the hopper to the conveying port. The material-dispensing plate is respectively in friction contact with the inner walls on both sides of the hopper, the arc-shaped inner wall of the hopper and the inner wall of the lower arc of the shielding frame to seal. The fully stirred down filling material is guided by the upper part of the shielding frame to fall into the hopper. The down filling material falling on the material-dispensing plate is first pushed to the bottom of the hopper and then pushed to the conveying port. The conveying port uses the airflow generated by the fan to convey the down filling material into the conveying cylinder. At the same time, the material-dispensing plate maintains a sealed state through friction with the shielding frame, which facilitates the wind force of the fan to push the down filling material. Filling material, to prevent the down filling material from flowing back into the mixing bucket, improve the airflow efficiency of the fan, reduce wind waste, through the cooperation of the evenly distributed equi-angled paddle plates and the blanking hopper, the down filling material is uniformly transported through the adjacent paddle plates. The number of paddle plates can also be increased. The blanking motor is a stepping motor. The angle of the blanking motor is controlled to control the rotation speed and frequency of the paddle plates. The blanking motor only rotates the angle between the adjacent paddle plates each time, and only moves a fan-shaped area surrounded by the adjacent paddle plates to the delivery port each time, thereby achieving quantitative and constant speed delivery of down filling material and ensuring delivery accuracy;
[0023] (3) When the filling port of the down fabric is sleeved on the limiting tube sleeve, one of the clamping rings is rotated to drive the clamping bracket to rotate, so that the support column rotates accordingly. Through the meshing transmission of the two transmission gears, the clamping bracket and the clamping ring on the other side rotate synchronously, so that the clamping rings on both sides rotate synchronously and cooperate with the limiting tube sleeve to clamp the filling port of the down fabric, so as to prevent the down fabric from being separated from the delivery tube during filling. The sealing ring and the sealing ring increase the friction when clamping the filling port of the down fabric, further preventing the down fabric from loosening. The air transported into the down fabric along with the down filling material during filling is discharged outward through the vent hole of the limiting tube sleeve, so as to prevent the internal air pressure of the down fabric from increasing and damaging the down fabric, and facilitate the uniform and quantitative distribution of the down filling material in the down fabric, thereby reducing manpower loss and improving work efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] To facilitate understanding by those skilled in the art, the present invention is further described below with reference to the accompanying drawings.
[0025] Figure 1 This is a front view of the overall structure of the present invention;
[0026] Figure 2 It is a schematic diagram of the overall structure of the drop hopper of the present invention;
[0027] Figure 3 Schematic diagram of the internal structure of the drop hopper of the present invention;
[0028] Figure 4 This is a schematic diagram of the overall structure of the limiting sleeve of the present invention;
[0029] Figure 5 This is a top view of the overall structure of the limiting sleeve of the present invention;
[0030] Figure 6 Schematic diagram of the internal structure of the stirring bucket of the present invention;
[0031] In the figure: 1. working bracket; 2. stirring bucket; 3. stirring motor; 4. stirring box; 5. feeding hopper; 6. blanking hopper; 7. blanking motor; 8. fan; 9. conveying cylinder; 10. conveying pipe; 11. connecting pipe sleeve; 12. support plate; 13. limiting pipe sleeve; 14. conveying port; 15. shielding frame; 16. first transmission rod; 17. material selection plate; 18. docking ring; 19. supporting slide rail; 20. sealing ring; 21. support frame; 22. mounting frame; 23. support column; 24. clamping bracket; 25. clamping ring; 26. sealing ring; 27. transmission gear; 28. second transmission rod; 29. stirring rod. DETAILED DESCRIPTION
[0032] In order to further illustrate the technical means and effects adopted by the present invention to achieve the predetermined purpose of the invention, the specific implementation methods, structures, features and effects of the present invention are described in detail below in conjunction with the accompanying drawings and preferred embodiments.
[0033] See also Figure 1-6 As shown: A textile equipment for down jacket processing, including a working support 1, a stirring bucket 2 is installed on the upper part of the working support 1, a stirring box 4 is installed on the upper part of the stirring bucket 2, and the stirring bucket 2 and the stirring box 4 are connected to each other, a stirring motor 3 is installed on one side of the stirring bucket 2, a feeding hopper 5 is installed on one side of the stirring box 4, a blanking hopper 6 is installed on the lower part of the stirring bucket 2, and a blanking motor 7 and a fan 8 are respectively provided on the side of the blanking hopper 6 away from the stirring motor 3. The blanking motor 7 is located above the fan 8, and the blanking hopper 6 is close to the stirring motor 3. A conveying cylinder 9 is installed on one side near the stirring motor 3, and a conveying pipe 10 for filling down fabric with down is installed at one end of the conveying cylinder 9. A support plate 12 for holding down fabric is provided in the middle of the working bracket 1 and below the conveying pipe 10. A limiting pipe sleeve 13 for docking with the filling port of the down fabric is slidably sleeved on the outer periphery of the conveying pipe 10. One side of the stirring bucket 2 is inclined, and the lowest point of the stirring bucket 2 is connected to the dropping hopper 6. The conveying pipe 10 is sealed and connected to the conveying cylinder 9 through a connecting pipe sleeve 11.
[0034] During operation, the down filling material is conveyed to the mixing box 4 through the feeding hopper 5. The material of the mixing box 4 is transparent, which is convenient for the staff to observe whether the down filling material inside is fully and evenly stirred. Under the action of the inclined side wall of the mixing bucket 2, the down filling material accumulates at the lowest point of the mixing bucket 2 and falls into the dropping hopper 6. Under the action of the dropping motor 7, the down filling material is quantitatively moved to the air outlet of the fan 8. Driven by the wind force of the fan 8, the down filling material passes through the conveying cylinder 9 and enters the interior of the conveying pipe 10. At the same time, the outer periphery of the limiting pipe sleeve 13 on the conveying pipe 10 is in contact with the down fabric. The filling port of the down fabric is docked, and the limiting sleeve 13 is slid on the conveying pipe 10 until the inner bottom of the down fabric abuts against the pipe port of the conveying pipe 10. Under the push of the fan 8, the down filling material is filled into the down fabric through the conveying pipe 10. As the down filling material is continuously filled, the down fabric continuously moves until the limiting sleeve 13 moves to the pipe port of the conveying pipe 10. The down filling material is quantitatively conveyed by the control of the blanking motor 7, and the down fabric is supported by the support plate 12, so that the staff can conveniently and quickly carry out continuous quantitative filling of several down fabrics.
[0035] The end of the driving shaft of the blanking motor 7 is fixedly connected to the first transmission rod 16, and both ends of the first transmission rod 16 are rotatably connected to the blanking hopper 6. The outer periphery of the first transmission rod 16 is fixedly connected to four material-dividing plates 17 evenly distributed at equal angles. When working, the material-dividing plates 17 are rotated and cooperate with the blanking hopper 6 to push the down filling material falling into the blanking hopper 6 to the conveying port 14 for quantitative conveying.
[0036] One side of the bottom of the two side walls of the hopper 6 is in an arc shape and the center of the arc is on the axis of the first transmission rod 16. A conveying port 14 is opened on the other side of the bottom of the two side walls of the hopper 6, and the outer side of the two side walls of the hopper 6 is located at the outer periphery of the conveying port 14 and is fixedly connected with a docking ring 18. The hopper 6 is sealed and docked with the air outlet of the fan 8 and the feed end of the conveying cylinder 9 through the two docking rings 18, thereby realizing quick disassembly and maintenance and reducing the difficulty of maintenance.
[0037] A shielding frame 15 is installed on the inner upper part of the hopper 6 and on one side close to the conveying port 14. The upper part of the shielding frame 15 is adapted to the top of the hopper 6 and the bottom of the mixing bucket 2. The lower part of the shielding frame 15 is arc-shaped and the lower axis of the shielding frame 15 is coaxial with the first transmission rod 16. The outer periphery of the material stripping plate 17 is in friction with the inner walls of the two sides of the hopper 6. The outer peripheral side edges of the material stripping plate 17 are respectively in friction with the arc-shaped inner wall of the hopper 6 and the shielding frame 15. The inner wall of the lower arc is in friction contact with each other. When working, the material-diverting plate 17 is in friction contact with the inner walls of both sides of the hopper 6, the arc-shaped inner wall of the hopper 6 and the inner wall of the lower arc of the shielding frame 15 to seal. The down filling material that has been fully stirred is guided by the upper part of the shielding frame 15 to fall into the hopper 6. The down filling material that falls on the material-diverting plate 17 is first pushed to the bottom of the hopper 6 and then pushed to the conveying port 14. The conveying port 14 uses the fan 8 to generate The airflow conveys the down filling material into the conveying cylinder 9. At the same time, the stripping plate 17 maintains a sealed state through friction with the shielding frame 15, which facilitates the wind force of the fan 8 to push the down filling material and prevent the down filling material from flowing back into the mixing bucket 2, thereby improving the airflow efficiency of the fan 8 and reducing wind force waste. Through the cooperation of the stripping plates 17 uniformly distributed at equal angles and the blanking hopper 6, a uniform and equal amount of down filling material is conveyed through adjacent stripping plates 17, and the number of stripping plates 17 can also be increased. The blanking motor 7 is a stepping motor. The angle of the blanking motor 7 is controlled to control the rotation speed and frequency of the stripping plate 17. In this embodiment, the included angle of adjacent stripping plates 17 is ninety degrees, and the blanking motor 7 rotates at one time by ninety degrees. Each time, only a fan-shaped area surrounded by adjacent stripping plates 17 is moved to the conveying port 14, thereby realizing quantitative and constant speed conveying of down filling material and ensuring conveying accuracy.
[0038] Both sides of the delivery pipe 10 are fixedly connected with support rails 19, and the support rails 19 are slidably connected to the limiting pipe sleeve 13. The outer periphery of the limiting pipe sleeve 13 is fixedly sleeved with a sealing ring 20 on one side close to the delivery pipe 10. Both sides of one end of the limiting pipe sleeve 13 are fixedly connected with a support frame 21. The support frame 21 is installed with a mounting frame 22 on the side away from the delivery pipe 10. Each mounting frame 22 is rotatably connected to a pair of symmetrically arranged support columns 23, and the support columns 23 are fixedly connected to a clamping bracket 24. The other two sides of one end of the limiting pipe sleeve 13 are provided with clamps. The holding ring 25 and the two sides of the clamping ring 25 are respectively fixedly connected to the clamping bracket 24. The inner side of the clamping ring 25 is fixedly connected with a sealing ring 26. The sealing ring 26 is semicircular, and both ends of the sealing ring 26 are equipped with buckles for mutual connection. The inner side of the sealing ring 26 is adapted to the outer periphery of the sealing ring 20. The middle part of the support column 23 is fixedly sleeved with a transmission gear 27. The two transmission gears 27 on each mounting bracket 22 are engaged with each other for transmission. A number of vents evenly distributed in a ring array are opened inside both ends of the limiting sleeve 13.
[0039] During operation, when the filling port of the down fabric is sleeved on the limiting tube sleeve 13, one of the clamping rings 25 is rotated to drive the clamping bracket 24 to rotate, so that the support column 23 rotates accordingly, and the meshing transmission of the two transmission gears 27 makes the clamping bracket 24 and the clamping ring 25 on the other side rotate synchronously, so that the clamping rings 25 on both sides rotate synchronously and cooperate with the limiting tube sleeve 13 to clamp the filling port of the down fabric, to prevent the down fabric from being separated from the delivery tube 10 during filling, and increase the friction force when clamping the filling port of the down fabric through the sealing ring 26 and the sealing ring 20 to further prevent the down fabric from loosening, and lead out the air transported into the down fabric along with the down filling material during filling through the vent hole of the limiting tube sleeve 13, to prevent the internal air pressure of the down fabric from increasing and damaging the down fabric, and to facilitate the uniform and quantitative distribution of the down filling material in the down fabric.
[0040] The end of the driving shaft of the stirring motor 3 is fixedly connected to a second transmission rod 28, and both ends of the second transmission rod 28 are respectively rotatably connected to the stirring bucket 2. The outer periphery of the second transmission rod 28 is fixedly connected to a plurality of stirring rods 29 evenly distributed in a circular array, and the length of the stirring rod 29 is adapted to the inclined side wall of the stirring bucket 2.
[0041] During use, the present invention conveys the down filling material into the mixing box 4 through the feeding hopper 5. The material of the mixing box 4 is transparent, which makes it convenient for the staff to observe whether the down filling material inside is stirred sufficiently and evenly. Under the action of the inclined side wall of the mixing bucket 2, the down filling material accumulates at the lowest point of the mixing bucket 2 and falls into the dropping hopper 6. Under the action of the dropping motor 7, the down filling material is quantitatively moved to the air outlet of the fan 8. Driven by the wind of the fan 8, the down filling material passes through the conveying cylinder 9 and enters the interior of the conveying pipe 10. At the same time, the outer periphery of the limiting pipe sleeve 13 on the conveying pipe 10 is aligned with the down filling material. The filling port of the down fabric is docked, and the limiting sleeve 13 is slid on the conveying pipe 10 until the inner bottom of the down fabric abuts against the pipe opening of the conveying pipe 10. Under the push of the fan 8, the down filling material is filled into the down fabric through the conveying pipe 10. As the down filling material is continuously filled, the down fabric continuously moves until the limiting sleeve 13 moves to the pipe opening of the conveying pipe 10. The down filling material is quantitatively conveyed by the control of the blanking motor 7, and the down fabric is supported by the support plate 12, so that the staff can conveniently and quickly perform continuous quantitative filling of a plurality of down fabrics.
[0042] The material-dividing plate 17 is rotated and matched with the hopper 6 to push the down filling material falling into the hopper 6 to the conveying port 14. The material-dividing plate 17 is respectively in friction contact with the inner walls on both sides of the hopper 6, the arc-shaped inner wall of the hopper 6 and the lower arc inner wall of the shielding frame 15 to be sealed. The fully stirred down filling material is guided by the upper part of the shielding frame 15 to fall into the hopper 6, and the down filling material falling on the material-dividing plate 17 is first pushed to the bottom of the hopper 6, and then pushed to the conveying port 14. The conveying port 14 uses the airflow generated by the fan 8 to convey the down filling material to the conveying cylinder 9. At the same time, the material-dividing plate 17 maintains a sealed state by friction with the shielding frame 15, which is convenient for the wind force of the fan 8 to push the down filling material. The down filling material is moved to prevent the down filling material from flowing back into the mixing bucket 2, thereby improving the airflow efficiency of the fan 8 and reducing wind power waste. Through the cooperation of the evenly distributed equi-angled paddle plates 17 and the blanking hopper 6, the adjacent paddle plates 17 are used to deliver an even and equal amount of down filling material. The number of paddle plates 17 can also be increased. The blanking motor 7 is a stepping motor. The angle of the blanking motor 7 is controlled to control the rotation speed and frequency of the paddle plates 17. The blanking motor 7 only rotates the angle between the adjacent paddle plates 17 each time, and only moves a fan-shaped area surrounded by the adjacent paddle plates 17 to the delivery port 14 each time, thereby achieving quantitative and constant speed delivery of down filling material and ensuring delivery accuracy.
[0043] When the filling port of the down fabric is sleeved on the limiting tube sleeve 13, one of the clamping rings 25 is rotated to drive the clamping bracket 24 to rotate, so that the support column 23 rotates accordingly, and the meshing transmission of the two transmission gears 27 makes the clamping bracket 24 and the clamping ring 25 on the other side rotate synchronously, so that the clamping rings 25 on both sides rotate synchronously and cooperate with the limiting tube sleeve 13 to clamp the filling port of the down fabric, so as to prevent the down fabric from being separated from the conveying tube 10 during filling. The friction force is increased when clamping the filling port of the down fabric, further preventing the down fabric from loosening, and the air transported into the down fabric along with the down filling material during filling is discharged outward through the vent holes of the limiting tube sleeve 13, preventing the increase of internal air pressure of the down fabric and damage to the down fabric, and facilitating the uniform quantitative distribution of the down filling material in the down fabric. The drop hopper 6 is sealed and docked with the air outlet of the fan 8 and the feed end of the conveying cylinder 9 through two docking rings 18, thereby realizing quick disassembly and maintenance and reducing the difficulty of maintenance.
[0044] The above description is merely a preferred embodiment of the present invention and does not constitute any form of limitation to the present invention. Although the present invention has been disclosed as a preferred embodiment as above, it is not intended to limit the present invention. Any person skilled in the art can make some changes or modifications to equivalent embodiments using the technical contents disclosed above without departing from the scope of the technical solution of the present invention. However, any brief modifications, equivalent changes and modifications made to the above embodiments based on the technical essence of the present invention without departing from the content of the technical solution of the present invention are still within the scope of the technical solution of the present invention.
Claims
1. A textile equipment for down garment processing, characterized in that: The invention comprises a working support (1), wherein a stirring bucket (2) is installed on the upper part of the working support (1), a stirring box (4) is installed on the upper part of the stirring bucket (2), and the stirring bucket (2) and the stirring box (4) are mutually connected, a stirring motor (3) is installed on one side of the stirring bucket (2), a feeding hopper (5) is installed on one side of the stirring box (4), a dropping hopper (6) is installed on the lower part of the stirring bucket (2), and a dropping motor (7) and a fan ( 8), the blanking motor (7) is located above the fan (8), a conveying cylinder (9) is installed on the side of the blanking hopper (6) close to the stirring motor (3), one end of the conveying cylinder (9) is installed with a conveying pipe (10) for filling down fabric with down, a support plate (12) for containing down fabric is provided in the middle of the working bracket (1) and below the conveying pipe (10), and a limiting pipe sleeve (13) for docking with the filling port of the down fabric is slidably sleeved on the outer periphery of the conveying pipe (10); The end of the driving shaft of the blanking motor (7) is fixedly connected to a first transmission rod (16), both ends of the first transmission rod (16) are rotatably connected to the blanking hopper (6), and the outer periphery of the first transmission rod (16) is fixedly connected to four evenly distributed equiangular material-selecting plates (17); One side of the bottom of the two side walls of the drop hopper (6) is in an arc shape, and the center of the arc is on the axis of the first transmission rod (16). A delivery port (14) is provided on the other side of the bottom of the two side walls of the drop hopper (6), and a docking ring (18) is fixedly connected to the outer periphery of the delivery port (14) on the outer side of the two side walls of the drop hopper (6); A shielding frame (15) is installed on the upper inner side of the drop hopper (6) and on a side close to the conveying port (14). The upper part of the shielding frame (15) is adapted to the top of the drop hopper (6) and the bottom of the stirring bucket (2). The lower part of the shielding frame (15) is in an arc shape and the lower axis of the shielding frame (15) is coaxial with the first transmission rod (16). Both sides of the outer periphery of the material-diverting plate (17) are in frictional contact with the inner walls of both sides of the material-diverting hopper (6), and the outer periphery side edges of the material-diverting plate (17) are in frictional contact with the arc-shaped inner wall of the material-diverting hopper (6) and the lower arc-shaped inner wall of the shielding frame (15), respectively. One side of the stirring hopper (2) is inclined, and the lowest point of the stirring hopper (2) is connected to the material-diverting hopper (6). One end of the limiting pipe sleeve (13) is fixedly connected to a support frame (21) on both sides, and a mounting frame (22) is installed on the side of the support frame (21) away from the delivery pipe (10). A pair of symmetrically arranged support columns (23) are rotatably connected to each mounting frame (22), and a clamping bracket (24) is fixedly connected to the support column (23); A clamping ring (25) is provided on both sides of one end of the limiting pipe sleeve (13), and both sides of the clamping ring (25) are fixedly connected to the clamping bracket (24), and a sealing ring (26) is fixedly connected to the inner side of the clamping ring (25). A transmission gear (27) is fixedly sleeved on the middle part of the support column (23), and the two transmission gears (27) on each mounting bracket (22) are meshed with each other for transmission; The sealing ring (26) is semicircular, and buckles for connecting to each other are installed at both ends of the sealing ring (26). The inner side of the sealing ring (26) is adapted to the outer periphery of the sealing ring (20). A plurality of vent holes evenly distributed in a circular array are opened inside both ends of the limiting pipe sleeve (13).
2. The textile equipment for down garment processing according to claim 1, characterized in that: Both sides of the delivery pipe (10) are fixedly connected with support slide rails (19), the support slide rails (19) are slidably connected to the limiting pipe sleeve (13), and a sealing ring (20) is fixedly sleeved on the side of the outer periphery of the limiting pipe sleeve (13) close to the delivery pipe (10).
3. The textile equipment for down garment processing according to claim 1, characterized in that: The end of the driving shaft of the stirring motor (3) is fixedly connected to a second transmission rod (28), and both ends of the second transmission rod (28) are respectively rotatably connected to the stirring bucket (2). The outer periphery of the second transmission rod (28) is fixedly connected to a plurality of stirring rods (29) evenly distributed in a ring array, and the length of the stirring rods (29) is adapted to the inclined side wall of the stirring bucket (2). The delivery pipe (10) is sealed and connected to the delivery cylinder (9) through a connecting pipe sleeve (11).
Citation Information
Patent Citations
Textile equipment for down jacket processing
CN112401377A
Processing equipment for seamless down jacket and processing method thereof
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Down filling device for down jacket
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Computer air heater for down jacket production
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