1: V-0 flame retardant grade rating
2: 280 MPa high tensile strength capacity
3: 320 MPa excellent flexural strength
4: 230°C heat deflection temperature rating
5: Over 10¹⁵ Ω surface resistivity
Flame-retardant Nylon CF PA66&PA6 CF30 is a flame-retardant grade carbon fiber reinforced nylon composite material, using a nylon 66 and nylon 6 alloy matrix with 30% carbon fiber and eco-friendly flame retardants. This innovative Flame-retardant Nylon CF technology combines excellent flame retardancy with mechanical strength, achieving V-0 rating, providing safe and reliable solutions for electronics and transportation sectors.
V-0 certified, limiting oxygen index (LOI) ≥32%. PA66&PA6 CF30 maintains stable flame retardancy in high-temperature environments.
Tensile strength 280 MPa, flexural strength 320 MPa. PA66&PA6 CF30 provides excellent structural strength while maintaining flame retardancy.
Heat deflection temperature (1.82 MPa) reaches 230°C. PA66&PA6 CF30 continuous service temperature up to 160°C.
Surface resistivity >10¹⁵ Ω. PA66&PA6 CF30 meets strict insulation requirements for electronic applications.
Widely used in electronic connectors, new energy vehicle battery modules, rail transit interior components, aerospace assemblies, and other fields, particularly suitable for applications requiring both flame retardancy and mechanical performance.
In new energy vehicle battery bracket applications, PA66&PA6 CF30 replaces traditional metal materials. Test data shows: 40% weight reduction, V-0 flame rating, and passes 1000-hour aging test. This innovative Flame-retardant Nylon CF solution perfectly meets dual requirements for lightweight and safety in electric vehicles.
For more technical information (such as detailed datasheets, product catalogs), quotations, or further technical clarification, please feel free to contact us. It should be noted that the properties of different carbon fiber reinforced thermoplastic composites may vary depending on matrix resin type, carbon fiber content and specifications, production processes and other factors. The advantages of specific materials need to be accurately evaluated based on actual application requirements through comparative testing with specific carbon fiber reinforced plastics. Additionally, thermoplastic composites from different manufacturers may have variations in performance indicators.
Conductors < 10⁵ Ω/sq. Antistatic Materials 10⁵ ~ 10¹² Ω/sq. Insulators > 10¹² Ω/sq. Static-Dissipative 10⁶ ~ 10¹¹ Ω/sq. *Key Influencing Factors Humidity: Increased moisture can reduce resistivity (e.g., in polymers). Temperature: Affects carrier mobility (↑ heat may lower semiconductor resistivity). Surface Contamination: Dust/oils alter readings significantly. Additives: Carbon black, metallic fillers can lower resistivity. *Applications Electronics: Antistatic materials (10⁶–10⁹ Ω/sq) prevent electrostatic discharge (ESD). Aerospace: Composites must control resistivity to avoid charge buildup. Medical Devices: Insulating materials (>10¹² Ω/sq) ensure patient safety. *Examples Polypropylene (PP): ~10¹⁶ Ω/sq (excellent insulator). Carbon Fiber Composites: 10³–10⁶ Ω/sq (static dissipation). ESD Flooring: 10⁶–10⁹ Ω/sq.
The table presents key performance data of carbon fiber grades. T300, with a tensile strength of 3530 MPa and a tensile modulus of 230 GPa, has a relatively low tensile elongation at break of 1.5% and a body density of 1.76 g/cm³. As the grade increases, for example, T700S shows an enhanced tensile strength of 4900 MPa compared to T300, while maintaining the same tensile modulus but with a higher elongation at break of 2.1%. T800S and T1000G both have a tensile modulus of 294 GPa, and their tensile strengths are 5880 MPa and 6370 MPa respectively. T1100G stands out with the highest tensile strength of 7000 MPa and a tensile modulus of 324 GPa. Generally, with the increase in product grade, the tensile strength and modulus tend to rise, while the density remains relatively stable around 1.8 g/cm³.
If you want to obtain information such as product specifications, performance, and price, choose a suitable product according to your own needs. Meanwhile, you can ask the manufacturer to provide samples for testing to ensure that the material meets your usage requirements. If you are interested in purchasing this composite material, please contact the manufacturer Carbon (Xiamen) New Material directly.
Carbon (Xiamen) New Material Co., Ltd. aims to provide buyers with "one-stop" worry-free high-quality services. Here you can find all information about carbon fiber engineering plastics. If you still have questions, please send us an email for consultation!
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What are CF Reinforced Thermoplastic Composites?
CF Reinforced Thermoplastic Composites are materials where carbon fibers are incorporated into a thermoplastic matrix. They combine the strength and stiffness of carbon fibers with the processability and recyclability of thermoplastics. For instance, they are used in automotive parts like bumper beams.
What are the benefits of CF Reinforced Thermoplastic Composites over traditional composites?
The key benefits include faster production cycles, easier recyclability, and better impact resistance. They also offer design flexibility. An example is in the manufacturing of consumer electronics casings where complex shapes can be achieved more easily.
How are CF Reinforced Thermoplastic Composites processed?
Common processing methods include injection molding, extrusion, and compression molding. Injection molding is widely used for mass production. For example, in the production of small components for the medical industry.
What industries use CF Reinforced Thermoplastic Composites?
They are utilized in aerospace, automotive, medical, and sports equipment industries. In aerospace, they can be found in interior components. In the medical field, they might be used in prosthetics.
How does the carbon fiber content affect the properties of the composites?
Higher carbon fiber content generally leads to increased strength and stiffness but may reduce ductility. A moderate content is often balanced for specific applications. For example, a higher content might be preferred in structural parts of a race car.
What are the challenges in using CF Reinforced Thermoplastic Composites?
Challenges include higher material costs, complex processing equipment requirements, and ensuring uniform fiber dispersion. Issues with adhesion between the fibers and the matrix can also arise. An example is in achieving consistent quality in large-scale production.