Heat setting treatment device for deformation resistance of yarn clothes

By installing a hidden roller and drive bar limiting column structure at the bottom of the base plate of the yarn and garment heat setting device, the problem of manual labor in handling and placing clothes is solved, enabling labor-saving operation of the base plate and improving production efficiency.

CN224259008UActive Publication Date: 2026-05-19SHAOXING JINDESHENG GARMENT CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHAOXING JINDESHENG GARMENT CO LTD
Filing Date
2025-07-01
Publication Date
2026-05-19

AI Technical Summary

Technical Problem

On existing yarn garment ironing production lines, it is quite laborious for workers to manually remove and pick up the garments and accompanying base plates from the conveyor belt. Therefore, it is necessary to design a heat-setting base plate structure that is easy to pick up and put down.

Method used

Design a heat setting device for yarn garments. The bottom of the base plate is equipped with hidden rollers. The rollers are manually driven to extend so as to pull the base plate in and out of the conveyor belt. The base plate can be operated with less effort through a drive bar and limit post structure.

Benefits of technology

This technology enables labor-saving placement and removal of the base plate, improving production efficiency and reducing the intensity of manual labor.

✦ Generated by Eureka AI based on patent content.

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    Figure CN224259008U_ABST
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Abstract

The utility model relates to a thermoforming processing device for yarn clothing deformation resistance, which comprises a rectangular bearing bottom plate, two sides of the lower end face of the bearing bottom plate are respectively and fixedly connected with a channel-steel-shaped channel beam, a notch of a channel in the channel beam faces downwards, and a plurality of guide grooves which are longitudinally distributed and obliquely arranged are respectively formed on two side walls of the channel beam. A plurality of rolling wheels opposite to the guide grooves are inserted into the groove beams, transverse pin shafts are fixedly inserted into the rolling wheels, and the two ends of the pin shafts are inserted into the guide grooves of the groove beams respectively; a longitudinal driving strip is inserted into the groove beam on the upper side of the roller, a plurality of right-triangle-shaped convex blocks are formed on the lower end face of the driving strip, the convex blocks are located over the roller, a plurality of limiting columns abut against the lower end face of the driving strip between the convex blocks, and the two ends of each limiting column are fixedly inserted into the groove beam; the upper end face of the driving strip abuts against the bottom face of the inner side of the groove beam. Hidden rollers are arranged at the bottom of the heat-setting bottom plate, the rollers can extend out through manual driving, and the bottom plate can be conveniently pulled to go in and out of a conveying belt.
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Description

Technical fields:

[0001] This utility model relates to the technical field of garment shaping devices, and more specifically to a heat-setting device for yarn garments to resist deformation. Background technology:

[0002] Yarn garments refer to clothing made primarily of various yarns. The fabric used in making yarn garments can be dried and set using a tenter frame to resist deformation. The finished garments can then be heat-set using ironing. Ironing achieves its anti-deformation effect by altering the density and orientation of the yarn fibers. It reduces the fabric's ability to deform, changes the fiber structure, and uses heating and moisture spraying to decrease the fabric's resistance to deformation, making it easier to adjust. Pressure causes the fiber molecules to align as needed, changing the structural density, while air suction and dehumidification allow the fabric to cool and dry rapidly on its new shape, improving its resistance to deformation. Currently, some factories use manual assembly lines for ironing. The main body of these ironing production lines is a conveyor belt with accompanying soleplates supporting the yarn garments. Multiple ironing stations are located on both sides of the conveyor belt, allowing for the ironing of different parts of the garment. However, manually removing the garments and accompanying soleplates from the conveyor belt is laborious, so a heat-setting soleplate structure that is easy to handle is needed. Utility Model Content:

[0003] The purpose of this utility model is to address the shortcomings of existing technologies by providing a heat-setting device for yarn garments to resist deformation. The bottom of the heat-setting base plate is equipped with hidden rollers, which can be extended by manual drive to facilitate pulling the base plate in and out of the conveyor belt.

[0004] A heat-setting device for anti-deformation treatment of yarn garments includes a rectangular support base plate. Channel beams in the shape of channel steel are fixed to both sides of the lower end face of the support base plate. The groove openings of the channels in the channels face downwards. Several longitudinally distributed and obliquely positioned guide grooves are formed on the side walls of the channels. Several rollers opposite to the guide grooves are inserted into the channels. Transverse pins are inserted and fixed into the rollers, with both ends of the pins inserted into the guide grooves of the channels. A longitudinal drive bar is inserted into the channel beam above the rollers. Several right-angled triangular protrusions are formed on the lower end face of the drive bar, located directly above the rollers. Several limiting posts abut against the lower end face of the drive bar between the protrusions, with both ends of the limiting posts inserted and fixed to the channels. The upper end face of the drive bar abuts against the inner bottom surface of the channels.

[0005] The rear end of the drive bar is bent into a vertical folded plate, and a longitudinal T-shaped connecting column is inserted into the folded plate. The front end of the connecting column passes through the positioning block and is inserted and fixed to the longitudinal column sleeve. The front end of the column sleeve extends out of the channel beam and is fixed to a transverse tie rod. A "U"-shaped handle is fixed to the lower end surface of the support base plate on the front side of the tie rod. A spring is inserted into the connecting column. One end of the spring presses against the folded plate and the other end presses against the positioning block. The positioning block is inserted and fixed inside the channel beam.

[0006] Preferably, the guide grooves are linearly and uniformly distributed on the channel beam, the width of the guide groove is equal to the diameter of the pin, the distance from the lower end face of the channel beam to the lower end of the guide groove is greater than the radius of the roller, and the depth of the channel inside the channel beam is greater than the diameter of the roller.

[0007] Preferably, the width of the drive bar is equal to the width of the channel in the channel beam, the protrusions on the drive bar are linearly and uniformly distributed, and the distance from the end of the protrusion to the lower end face of the channel beam is less than the diameter of the roller.

[0008] Preferably, a number of horizontal support beams are fixedly connected between the channel beams, and the lower end face of the horizontal support beams is flush with the lower end face of the channel beams.

[0009] Preferably, a rectangular upper clamping plate is provided above the supporting base plate, and several vertical T-shaped connecting pins are fixed to the lower end faces of both sides of the upper clamping plate; through holes are formed on the supporting base plate directly below the connecting pins.

[0010] The drive bar has several longitudinal snap-fit ​​holes formed on it. The snap-fit ​​holes are composed of a circular through hole on the rear side and a longitudinal groove on the front side. The connecting pin is inserted into the through hole of the supporting base plate and the snap-fit ​​hole of the drive bar. The lower end of the connecting pin abuts against the lower end surface of the drive bar.

[0011] The channel beam is formed with clearance holes that are opposite to the connecting pins.

[0012] Preferably, the diameter of the through hole and the diameter of the through hole on the buckle hole are greater than the diameter of the lower end of the connecting pin, and the diameter of the lower end of the connecting pin is greater than the groove width of the buckle hole.

[0013] Preferably, the lower end face of the handle and the lower end face of the pull rod are not lower than the lower end face of the channel beam, and a gap is provided between the upper end face of the pull rod and the supporting base plate.

[0014] The beneficial effects of this utility model are as follows:

[0015] The bottom of this heat-setting base plate is equipped with hidden rollers. The rollers can be extended by manual drive, making it easy to pull the base plate in and out of the conveyor belt. Attached image description:

[0016] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0017] Figure 2 This is a top view of the structure of this utility model;

[0018] Figure 3 for Figure 2 Schematic diagram of the cross-sectional structure at point AA;

[0019] Figure 4 This is a side view of the structure of this utility model.

[0020] In the diagram: 1. Support plate; 11. Through hole; 2. Channel beam; 3. Roller; 4. Pin; 5. Drive bar; 51. Protrusion; 52. Snap-in hole; 521. Through hole; 522. Snap-in groove; 53. Folding plate; 6. Limiting post; 7. Connecting post; 8. Post sleeve; 9. Tie rod; 10. Positioning block; 20. Spring; 30. Handle; 40. Connecting pin; 50. Upper clamping plate; 60. Cross support beam. Detailed implementation method:

[0021] Example: See Figures 1 to 4 As shown, a heat-setting device for anti-deformation treatment of yarn garments includes a rectangular support base plate 1. Channel beams 2 in the shape of channel steel are fixed to both sides of the lower end face of the support base plate 1. The groove openings of the channels in the channel beams 2 face downwards. Several longitudinally distributed and obliquely placed guide grooves 21 are formed on the side walls of the channel beams 2. Several rollers 3 opposite to the guide grooves 21 are inserted into the channel beams 2. A transverse pin 4 is inserted and fixed into the rollers 3. The two ends of the pin 4 are respectively inserted into the guide grooves 21 of the channel beams 2. A longitudinal drive bar 5 is inserted into the channel beam 2 on the upper side of the rollers 3. Several right-angled triangular protrusions 51 are formed on the lower end face of the drive bar 5. The protrusions 51 are located directly above the rollers 3. Several limiting posts 6 are abutted against the lower end face of the drive bar 5 between the protrusions 51. The two ends of the limiting posts 6 are respectively inserted and fixed on the channel beams 2. The upper end face of the drive bar 5 abuts against the inner bottom surface of the channel beams 2.

[0022] The rear end of the drive bar 5 is bent into a vertical folded plate 53. A longitudinal T-shaped connecting column 7 is inserted into the folded plate 53. The front end of the connecting column 7 passes through the positioning block 10 and is inserted and fixed to the longitudinal column sleeve 8. The front end of the column sleeve 8 extends out of the channel beam 2 and is fixed to a transverse tie rod 9. A "U"-shaped handle 30 is fixed to the lower end surface of the support base plate 1 on the front side of the tie rod 9. A spring 20 is inserted into the connecting column 7. One end of the spring 20 presses against the folded plate 53 and the other end presses against the positioning block 10. The positioning block 10 is inserted and fixed inside the channel beam 2.

[0023] The guide grooves 21 are linearly and uniformly distributed on the channel beam 2. The width of the guide grooves 21 is equal to the diameter of the pin 4. The distance from the lower end face of the channel beam 2 to the lower end of the guide grooves 21 is greater than the radius of the roller 3. The depth of the channel inside the channel beam 2 is greater than the diameter of the roller 3. Thus, the roller 3 can enter the channel beam 2 or extend out of the lower end face of the channel beam 2.

[0024] The width of the drive bar 5 is equal to the width of the channel inside the channel beam 2, and the length of the roller 3 is also equal to the width of the channel inside the channel beam 2. The protrusions 51 on the drive bar 5 are linearly and evenly distributed. The distance from the end of the protrusion 51 to the lower end face of the channel beam 2 is less than the diameter of the roller 3. The roller 3 can be driven to extend out of the lower end face of the channel beam 2 through the protrusions 51.

[0025] Several horizontal support beams 60 are fixedly connected between the channel beams 2, and the lower end face of the horizontal support beams 60 is flush with the lower end face of the channel beams 2.

[0026] A rectangular upper clamping plate 50 is provided above the supporting base plate 1, and several vertical T-shaped connecting pins 40 are fixed to the lower end faces of both sides of the upper clamping plate 50; through holes 11 are formed on the supporting base plate 1 directly below the connecting pins 40.

[0027] The drive bar 5 is formed with a plurality of longitudinal snap-fit ​​holes 52. The snap-fit ​​holes 52 are composed of a circular through hole 521 on the rear side and a longitudinal slot 522 on the front side. The connecting pin 40 is inserted into the through hole 11 of the supporting base plate 1 and the snap-fit ​​holes 52 of the drive bar 5. The lower end of the connecting pin 40 abuts against the lower end surface of the drive bar 5.

[0028] The channel beam 2 is formed with a clearance hole opposite to the connecting pin 40. The clearance hole and the through hole 11 coincide, which facilitates the connecting pin 40 to enter and exit the through hole 11.

[0029] The diameter of the through hole 11 and the diameter of the through hole 521 on the buckle hole 52 are greater than the diameter of the lower end of the connecting pin 40. The diameter of the lower end of the connecting pin 40 is greater than the groove width of the buckle hole 522. The connecting pin 40 can exit the drive bar 5 through the through hole 521 of the buckle hole 52.

[0030] The lower end face of the handle 30 and the lower end face of the pull rod 9 are not lower than the lower end face of the channel beam 2. A gap is provided between the upper end face of the pull rod 9 and the supporting base plate 1 to facilitate holding the pull rod 9 and the handle 30.

[0031] Working principle: This structure is a heat setting device for yarn garments to resist deformation. The heat setting device mainly consists of rollers 3 set in the channel beam 2. By holding the handle 30 and pulling the pull rod 9, the drive bar 5 is driven forward, and then the protrusion 51 pushes down the rollers 3, causing the rollers 3 to extend out of the lower end face of the channel beam 2. Then, the rollers 3 are used to pull the support plate 1, which replaces the lifting and lowering of the support plate 1, saving a lot of effort.

[0032] Simultaneously, the garment on the support plate 1 needs to be reversed, so the upper clamping plate 50 is raised. By pulling the lever 9, the through hole 521 is aligned with the connecting pin 40, so the connecting pin 40 can pass through the drive bar 5. After releasing the lever 9, the drive bar 5 moves backward and engages with the connecting pin 40, so the garment is clamped between the upper clamping plate 50 and the support plate 1. Thus, the garment can be reversed. Pulling the lever 9 removes the support plate 1, allowing the garment to be placed on the upper clamping plate 50 for ironing.

[0033] The embodiments described above are illustrative of the present invention and are not intended to limit the present invention. Any person skilled in the art can modify the embodiments without departing from the spirit and scope of the present invention; therefore, the scope of protection of the present invention should be as set forth in the claims.

Claims

1. A heat setting device for anti-deformation of yarn clothing, comprising a rectangular supporting bottom plate (1), both sides of the lower end surface of the supporting bottom plate (1) are fixedly connected with a channel beam (2) in the shape of a channel steel, the notch of the channel of the channel beam (2) faces downward, characterized in that: On both side walls of the trough beam (2), a number of longitudinally distributed and obliquely arranged guiding grooves (21) are formed respectively. A number of rollers (3) opposite to the guiding grooves (21) are inserted into the trough beam (2). A transverse pin shaft (4) is inserted and fixed inside the roller (3). Both ends of the pin shaft (4) are respectively inserted into the guiding grooves (21) of the trough beam (2); A longitudinal driving bar (5) is inserted into the trough beam (2) above the roller (3). A number of right-angled triangle protrusions (51) are formed on the lower end surface of the driving bar (5). The protrusions (51) are located directly above the roller (3). A number of limiting columns (6) are abutted against the lower end surface of the driving bar (5) between the protrusions (51). Both ends of the limiting column (6) are respectively inserted and fixed on the trough beam (2). The upper end surface of the driving bar (5) abuts against the inner bottom surface of the trough beam (2); A vertical folding plate (53) is formed by bending the rear end of the driving bar (5). A longitudinal T-shaped connecting column (7) is inserted into the folding plate (53). The front end of the connecting column (7) passes through a positioning block (10) and is inserted and fixed into a longitudinal sleeve (8). The front end of the sleeve (8) extends out of the trough beam (2) and is fixedly connected with a transverse pull rod (9). A "U" shaped handle (30) is fixedly connected to the lower end surface of the supporting bottom plate (1) in front of the pull rod (9). A spring (20) is sleeved on the connecting column (7). One end of the spring (20) is pressed against the folding plate (53) and the other end is pressed against the positioning block (10). The positioning block (10) is inserted and fixed in the trough beam (2).

2. A heat setting device for anti-deformation of yarn garment according to claim 1, wherein: The guiding grooves (21) are linearly and uniformly distributed on the trough beam (2). The groove width of the guiding groove (21) is equal to the diameter of the pin shaft (4). The distance from the lower end surface of the trough beam (2) to the lower end of the guiding groove (21) is greater than the radius of the roller (3). The depth of the inner channel of the trough beam (2) is greater than the diameter of the roller (3).

3. A heat setting device for anti-deformation of yarn garment according to claim 2, wherein: The width of the driving bar (5) is equal to the groove width of the inner channel of the trough beam (2). The protrusions (51) on the driving bar (5) are linearly and uniformly distributed. The distance from the end of the protrusion (51) to the lower end surface of the trough beam (2) is less than the diameter of the roller (3).

4. A heat setting device for anti-deformation of yarn garment according to claim 1, wherein: A number of transverse support beams (60) are fixedly connected between the trough beams (2). The lower end surface of the transverse support beam (60) is flush with the lower end surface of the trough beam (2).

5. A heat setting device for anti-deformation of yarn garment according to claim 1, wherein: Above the supporting bottom plate (1), a rectangular upper clamping plate (50) is provided. A number of vertical T-shaped connecting pins (40) are respectively fixedly connected to the lower end surfaces on both sides of the upper clamping plate (50); Through holes (11) are formed on the supporting bottom plate (1) directly below the connecting pins (40). A number of longitudinal buckle holes (52) are formed on the driving bar (5). The buckle hole (52) is composed of a circular through hole (521) at the rear and a longitudinal card slot (522) at the front. The connecting pin (40) is inserted into the through hole (11) of the supporting bottom plate (1) and the buckle hole (52) of the driving bar (5). The lower end of the connecting pin (40) abuts against the lower end surface of the driving bar (5). Avoidance holes opposite to the connecting pins (40) are formed on the trough beam (2).

6. A heat setting device for anti-deformation of yarn garment according to claim 5, wherein: The aperture of the via hole (11) and the aperture of the through hole (521) of the buckle hole (52) are larger than the diameter of the lower end of the connecting pin (40), and the diameter of the lower end of the connecting pin (40) is larger than the slot width of the upper slot (522) of the buckle hole (52).

7. A heat setting device for anti-deformation of yarn garment according to claim 1, wherein: The lower end surface of the handle (30) and the lower end surface of the pull rod (9) are not lower than the lower end surface of the channel beam (2), and a gap is provided between the upper end surface of the pull rod (9) and the supporting bottom plate (1).