Specialized in PE, PVC, TPE, TPU and Low Smoke Zero Halogen (LSZH) wire and cable compound and materials.
In high-rise buildings, subway tunnels, new energy power stations and industrial complex scenarios, the fire safety of wires and cables is directly related to life and property and system reliability.
YINSU Flame Retardant Company provides customized flame retardant solutions for global customers, covering PE (polyethylene), PVC (polyvinyl chloride), TPE (thermoplastic elastomer), TPU (thermoplastic polyurethane) and LSZH (low smoke and halogen free) wire and cable systems to meet all safety requirements, ranging from UL94 V-0 flame retardant certification to EN 45545 fire protection for rail transportation and IEC 60754 low smoke and halogen free toxicity. All-round safety requirements.
Material Common Use Typical FR Type YINSU Flame Retardant Item No.
PE HDPE, LDPE, LLDPE, Red phosphorus, halogen free FR, PRP-950X, PE-XT-20, YS-F22B, MCA-B
Cross-linked PE cables, Bromine antimony masterbatch MDH, ATH
Plastic insulated cables.
PVC PVC &Plastic insulated power cables, T3 / ATO alternatives T3, T30
Aluminum stranded wires,
Prefabricated branch cables.
TPE Insulated wires, flexible cables Organic phosphorus YS-F22B, YS-9003
Shielded insulated cables
TPU Special purpose cables Organic phosphorus YS-F22B, YS-9003
Power cables for frequency converters.
Others Welcome to consult more details.
The manufacturing process for ceramicized silicone rubber cables encompasses three core stages: vulcanization, extrusion, and curing. Temperature control, mold selection, and curing parameters at each stage directly impact the fire resistance and quality consistency of the finished product. This article systematically outlines the key process considerations and practical parameters for the production of ceramicized silicone rubber cables, providing cable engineers with a practical process guide to help avoid common issues such as rough extrusion surfaces and air bubbles.
PVC cable material is based on polyvinyl chloride as the base resin, add stabilizers, dioctyl phthalate, diisodecyl phthalate, dioctyl terephthalate, trioctyl trimellitate and other plasticizers, as well as inorganic fillers such as calcium carbonate, additives and lubricants and other additives, after the mixing and kneading of extrusion and the preparation of particles.
Aluminum hydroxide has emerged as a highly effective flame retardant with numerous advantages and a promising future in fire safety. Its unique properties and mechanisms make it a valuable tool in preventing and minimizing the impact of fires in various industries. Aluminum hydroxide's ability to release water vapor and act as a heat sink sets it apart as an exceptional flame retardant. By cooling down the surrounding environment and reducing the temperature of materials, it effectively limits the spread of flames and slows down the combustion process. Its endothermic decomposition and formation of a protective char layer further enhance its fire-retardant efficacy.
Magnesium hydroxide (MDH) flame retardants offer a promising solution for enhancing fire safety in various industries. Despite their limitations, ongoing research and development efforts are focused on addressing these challenges and improving the performance of MDH as a flame retardant.