Cloth heat dissipation structure of embossing machine
By ensuring that the embossed fabric and the unembossed fabric are closely bonded during the fabric conveying process of the embossing machine, the problem of needing an additional device for cooling the embossed fabric is solved. This achieves rapid heat dissipation and preheating of the unembossed fabric, saving energy.
Patent Information
- Application Number
- CN202520077575.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-14
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2035-01-14
AI Technical Summary
Existing embossing machines require additional cooling devices after the fabric has been embossed, resulting in wasted heat resources and additional electricity consumption.
By designing a fabric heat dissipation structure for an embossing machine, the embossed fabric and the unembossed fabric are closely bonded during the conveying process. The low temperature of the unembossed fabric is used to transfer heat to the embossed fabric, thereby achieving rapid heat dissipation and preheating of the unembossed fabric, reducing energy consumption.
It enables rapid heat dissipation of the embossed fabric, while simultaneously using heat to preheat the unembossed fabric, thus saving energy consumption.
Smart Images

Figure CN223738328U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of embossing machine technology, specifically to a heat dissipation structure for embossing machine fabric. Background Technology
[0002] A fabric embossing machine is a device used in fabric production to add patterns to fabrics. Textile fabrics are embossed using an embossing machine. After the embossing machine performs hot embossing on the textile fabric, the internal temperature of the textile fabric is relatively high. Therefore, after the embossing is completed, the fabric needs to be cooled and cannot be stored immediately. Thus, a cooling device is required to cool it down. This not only wastes heat resources but also requires an additional cooling device that consumes extra electrical energy. Utility Model Content
[0003] To address the aforementioned technical deficiencies, this invention provides a fabric heat dissipation structure for embossing machines. This structure allows the embossed fabric to dissipate heat quickly without the need for an additional cooling device, and it effectively utilizes the heat generated by the embossed fabric.
[0004] This utility model discloses a fabric heat dissipation structure for an embossing machine, including an embossing machine with a feed inlet at one end and a discharge outlet at the other end. A first mounting frame is mounted on the embossing machine at the feed inlet, and a second mounting frame is mounted on the embossing machine at the discharge outlet. A take-up roller is mounted on the first mounting frame, and a first guide roller is mounted on the first mounting frame between the take-up roller and the feed inlet. A second guide roller is mounted on the second mounting frame, and a second guide roller is mounted on the second mounting frame between the second guide roller and the discharge outlet. The frame is equipped with an unwinding roller, a take-up roller, a first guide roller, and a second guide roller, all of which are parallel and on the same horizontal plane. The lower sides of the first and second guide rollers are at the same height as the feed inlet and the discharge outlet, respectively. The upper sides of the first and second guide rollers are higher than the upper side of the embossing machine. The first mounting frame is equipped with a first power mechanism for driving the take-up roller and the first guide roller, and the second mounting frame is equipped with a second power mechanism for driving the unwinding roller and the second guide roller.
[0005] The principle of the above technical solution is as follows: the fabric released from the unwinding roller first passes around the second guide roller, then around the first guide roller, and enters the embossing machine through the feed inlet. After being embossed by the embossing machine, the fabric comes out from the discharge outlet. The embossed fabric then passes around the second guide roller and the first guide roller in sequence, and is finally wound up by the take-up roller. When the embossed fabric passes around the second guide roller and the first guide roller again, the embossed fabric is closely bonded to the unembossed fabric released from the unwinding roller. During the conveying process, since the temperature of the unembossed fabric is lower, the heat on the embossed fabric is quickly transferred to the unembossed fabric. This not only allows the embossed fabric to dissipate heat quickly, but also uses the heat on the embossed fabric to preheat the unembossed fabric, reducing the heating time during embossing and indirectly saving energy.
[0006] Preferably, the diameters of the first guide roller and the second guide roller are both greater than 0.5 meters, while the diameter of the fabric on the take-up roller and the unwind roller is less than 0.5 meters during operation to prevent changes in the fabric diameter from affecting the fabric conveying process.
[0007] Furthermore, the interiors of the No. 1 and No. 2 guide rollers are hollow. Since the diameters of both the No. 1 and No. 2 guide rollers are greater than 0.5 meters, the hollow interiors can greatly reduce the weight.
[0008] The heat dissipation structure for embossing machine fabric obtained by this utility model has the following advantages: by closely bonding the hot-embossed fabric with the un-embossed fabric during the conveying process, it not only achieves timely heat dissipation of the hot-embossed fabric, but also uses the heat on the hot-embossed fabric to preheat the un-embossed fabric, making it reach the embossing temperature more quickly, thus indirectly saving energy. Attached Figure Description
[0009] Figure 1 This is a schematic diagram of the structure of Embodiment 1 of this utility model. Detailed Implementation
[0010] To further illustrate the technical means and effects adopted by this utility model in order to achieve the intended utility model purpose, the following detailed description of the specific implementation methods, structure, features and effects of this utility model is provided in conjunction with the accompanying drawings and preferred embodiments.
[0011] Example 1:
[0012] like Figure 1 As shown, this utility model discloses a fabric heat dissipation structure for an embossing machine, including an embossing machine 1. One end of the embossing machine 1 has a feed inlet 2, and the other end has a discharge outlet 10. A first mounting frame 4 is mounted on the embossing machine 1 at the feed inlet 2, and a second mounting frame 9 is mounted on the embossing machine 1 at the discharge outlet 10. A take-up roller 5 is mounted on the first mounting frame 4. A first guide roller 3 is mounted on the first mounting frame 4 between the take-up roller 5 and the feed inlet 2. A second guide roller 8 is mounted on the second mounting frame 9. An unwinding roller 7 is mounted on the second mounting frame 9 between the second guide roller 8 and the discharge outlet 10. The take-up roller 5 and the unwinding roller... 7. The first guide roller 3 and the second guide roller 8 are parallel and on the same horizontal plane. The lower side of the first guide roller 3 and the lower side of the second guide roller 8 are at the same height as the feed inlet 2 and the discharge outlet 10. The upper side of the first guide roller 3 and the upper side of the second guide roller 8 are higher than the upper side of the embossing machine 1. The diameter of the first guide roller 3 and the diameter of the second guide roller 8 are both greater than 0.5 meters. The interiors of the first guide roller 3 and the second guide roller 8 are hollow. The first mounting frame 4 is equipped with a first power mechanism for driving the take-up roller 5 and the first guide roller 3. The second mounting frame 9 is equipped with a second power mechanism for driving the unwind roller 7 and the second guide roller 8.
[0013] The principle of the above technical solution is as follows: the fabric 6 released by the unwinding roller 7 first passes around the second guide roller 8, then around the first guide roller 3, and enters the embossing machine 1 through the feed inlet 2. After being embossed by the embossing machine 1, the fabric 6 comes out from the discharge outlet 10. The embossed fabric 6 passes around the second guide roller 8 and the first guide roller 3 again in sequence, and is finally wound up by the take-up roller 5. When the embossed fabric 6 passes around the second guide roller 8 and the first guide roller 3 again, the embossed fabric 6 is closely attached to the unembossed fabric 6 unwound from the unwinding roller 7. During the conveying process, since the temperature of the unembossed fabric 6 is lower, the heat on the embossed fabric 6 is quickly transferred to the unembossed fabric 6. This not only allows the embossed fabric 6 to dissipate heat quickly, but also uses the heat on the embossed fabric 6 to preheat the unembossed fabric 6, so that it reaches the embossing temperature more quickly, indirectly saving energy.
Claims
1. An embossing machine cloth heat dissipation structure, characterized in that, The utility model relates to a embossing machine, one end of embossing machine (1) is provided with feed inlet (2), the other end of embossing machine (1) is provided with discharge gate (10), be provided with a mounting bracket (4) on embossing machine (1) at feed inlet (2), be provided with second mounting bracket (9) on embossing machine (1) at discharge gate (10), be provided with winding roller (5) on a mounting bracket (4), be provided with a cloth guide roller (3) on a mounting bracket (4) between winding roller (5) and feed inlet (2), be provided with second cloth guide roller (8) on second mounting bracket (9), be provided with unwinding roller (7) on second mounting bracket (9) between second cloth guide roller (8) and discharge gate (10), winding roller (5), unwinding roller (7), cloth guide roller (3) and second cloth guide roller (8) are parallel and are in same horizontal plane, cloth guide roller (3) downside and second cloth guide roller (8) downside are with feed inlet (2) and discharge gate (10) in same height, cloth guide roller (3) upside and second cloth guide roller (8) upside are all higher than embossing machine (1) upside, be provided with a power mechanism for driving winding roller (5) and cloth guide roller (3) on a mounting bracket (4), be provided with second power mechanism for driving unwinding roller (7) and second cloth guide roller (8) on second mounting bracket (9).
2. The embosser fabric heat dissipation structure of claim 1, wherein, The diameter of the first cloth guide roller (3) and the diameter of the second cloth guide roller (8) are both greater than 0.5 meters.
3. The embosser fabric heat dissipation structure of claim 2, wherein, The first cloth guide roller (3) and the second cloth guide roller (8) are hollow inside.