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There are often some differences between the application of TPU hot melt adhesive film in the shoe material industry and the clothing industry
TPU hot melt adhesive film also has excellent chemical resistance. It is not only resistant to common solvents and chemicals, but also stable in some special corrosive environments. This makes TPU hot melt adhesive film widely used in fields that need to be exposed to chemicals, such as automobile manufacturing, medical equipment and other industries.
2023-09-05
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There are often some differences between the application of TPU hot melt adhesive film in the shoe material industry and the clothing industry

    TPU hot melt adhesive film also has excellent chemical resistance. It is not only resistant to common solvents and chemicals, but also stable in some special corrosive environments. This makes TPU hot melt adhesive film widely used in fields that need to be exposed to chemicals, such as automobile manufacturing, medical equipment and other industries.

    TPU hot melt adhesive film has good adhesive properties. TPU hot melt adhesive film can melt quickly after being heated, and bond with various substrates to form a firm bond. It is not only suitable for ordinary textiles, leather, plastic and other materials, but also can be bonded with metal, rubber and other materials. Therefore, TPU hot melt adhesive film is widely used in the manufacture and assembly of various products in various application scenarios.

    From the characteristics of the TPU hot melt adhesive film itself, the high temperature resistance of the TPU hot melt adhesive film is relatively poor, because it is a thermoplastic material that needs to be heated and melted, and then cooled and hardened to produce adhesion. The initial melting point of conventional hot melt adhesives is generally between 40 and 120, so the theoretical high temperature resistance is around 120. But in fact, when it does not reach 120, the TPU hot melt adhesive film may soften to a certain extent, so the actual temperature resistance will be a little lower than this temperature, which is about 100, which may be the current conventional standard hot melt adhesive. The product is at its peak.

    There are often some differences between the shoe industry and the apparel industry. Although it may involve the bonding of some cloth and leather, in the clothing industry, there are often relatively high requirements for washability, while the shoe material industry often does not have too many requirements in this regard, so the shoe material industry uses EVA adhesive. There are many types of laminated films, and TPU hot melt adhesive films are widely used in the clothing industry. Because the washability of TPU hot melt adhesive film is generally better than that of EVA hot-melt adhesive film, the softness is also better, which is more in line with the characteristics of the clothing industry.

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TPU hot melt adhesive film vs anaerobic adhesive: "Scene flexibility" difference in automotive interior bonding
2025-09-11
​From the perspective of curing conditions, TPU hot melt adhesive film does not need to rely on special environments, while anaerobic adhesives are severely restricted by "auerobicity". The curing principle of anaerobic glue is to undergo polymerization under conditions of lack of oxygen and catalyzed by metal ions (such as iron and copper). If it is in an environment where air circulation or metal substrates are not available, the curing speed will be greatly slowed down or even unable to cure. In automotive interiors, most bonding scenarios are "open" (such as bonding the door panel skin to PP substrate, and the ceiling fabric to the sponge), the air can freely contact the bonding surface, and the substrate is mostly non-metallic (PP, ABS, fabric, etc.), lacking metal ion catalysis, and additional catalyst is required when using anaerobic glue, and the curing time is as long as several hours, which is difficult to meet the needs of industrial production. The TPU hot melt adhesive film only needs to be melted by heating (120-160℃) and can be cured after pressurization and cooling. It does not need to rely on the ambient oxygen concentration or the base material. It can be cured stably in open or closed bonding scenarios, and the curing time only takes a few dozen seconds to a few minutes, adapting to the fast-paced needs of the interior production line.
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