LEMBAS: Non-stick coatings for sensitive elastomer rollers
The LEMBAS project focuses on elastomer rollers used in film manufacturing, the packaging industry, paper production, and medical technology. In these applications, even small particles released from the roller surface can quickly become a problem.
"Silicone coatings are still widely used for these applications," explains Adam El-Sarout, also a member of the Thin Film Processing Group at Fraunhofer ILT. "While they provide the required non-stick properties, they do not always offer the durability demanded by today's high-speed manufacturing processes." Together with the coating specialist Rhenotherm, the LEMBAS team is developing laser-based manufacturing processes that use high-performance polymers such as PEEK, polyamide, and polypropylene. Compared with silicone, these materials offer greater resistance to wear, improved chemical stability, and a longer service life, all without the use of PFAS.
"The real challenge is the processing window," says El-Sarout. "High-performance polymers require high melting temperatures, but elastomers such as EPDM can tolerate only limited heat. Heating an entire rubber roller in a furnace would damage the substrate." The laser solves precisely this problem by generating high temperatures only where they are needed and only for a very short time within the coating material. The functional layer melts, while the elastomer component beneath it remains largely protected from thermal damage.
To ensure long-term adhesion, the researchers are developing not only the non-stick coating itself but also an intermediate layer that protects the elastomer and strengthens the bond to the functional topcoat. They are also tailoring the optical and rheological properties of the materials to the laser process while investigating suitable coating and laser pre-treatment methods.
"A replacement material must do more than provide the required functionality," says Vedder. "It also has to be compatible with the component, the substrate's temperature limits, and the manufacturing process." If that step succeeds, the process offers several advantages: reduced wear, fewer product contaminants, less cleaning and lower solvent consumption, and significantly lower energy requirements than conventional furnace-based processes.