Fused Deposition Modeling (FDM) is a highly versatile and widely adopted additive manufacturing technology that enables the creation of precise, durable, and complex parts with exceptional efficiency. In the FDM process, a thermoplastic filament is heated to a semi-liquid state and extruded through a nozzle, depositing material layer by layer to construct a three-dimensional object based on a digital design. This method offers unparalleled design flexibility, allowing for the production of intricate geometries and functional prototypes suitable for a wide range of applications, from industrial components to consumer products. Our state-of-the-art FDM 3D printing services utilize advanced materials and cutting-edge equipment to deliver high-quality, reliable parts tailored to meet your specific needs with precision and consistency.
Standard Printing Materials:
Please pay careful attention to the material properties before selecting a thermoplastic. If you are unsure, please do not hesitate to contact us.
THIS LIST CONTAINS THE MOST POPULAR PRINTING MATERIALS; OTHER MATERIALS CAN BE ARRANGED. PLEASE CONTACT US.
PLA+ is a high-performance variant of the popular thermoplastic material, PLA. This 3D printing material is designed to offer improved strength, flexibility, and durability compared to standard PLA. It is an ideal choice for printing objects that require enhanced durability, such as toys, gears, and other functional parts. Unlike standard PLA, PLA+ has a lower melting temperature, making it easier to work with and allowing for more precise and accurate printing. It also boasts improved interlayer adhesion, which results in stronger and more detailed prints. Whether you're a hobbyist or a professional, PLA+ is an excellent choice for your 3D printing projects.
*Not recommended in environments exceeding 45°C i.e inside car, in direct sunlight.
PETG (Glycol-modified Polyethylene Terephthalate) is a versatile and durable 3D printing material that is rapidly growing in popularity. This thermoplastic material offers a unique combination of strength, flexibility, and transparency, making it ideal for a wide range of applications. Its flexibility allows for printing of objects with complex geometry and curves, while its strength makes it a popular choice for end-use parts and functional prototypes. PETG also boasts excellent resistance to impact, UV light, and chemicals, making it a reliable choice for outdoor and industrial applications. Unlike other materials such as ABS, PETG has a low odor and is safe to use, making it an ideal choice for those who are sensitive to harsh chemicals.
TPU (Thermoplastic Polyurethane) is a flexible 3D printing material that offers a unique combination of elasticity, toughness, and durability. This material is perfect for creating objects with complex geometry, such as phone cases, toys, and other functional parts. TPU's flexibility and elasticity make it an ideal choice for printing objects that need to bend, twist, and compress, such as wearables and protective gear. Additionally, TPU is highly resistant to impact and abrasion, making it an excellent choice for outdoor and industrial applications.
ABS (Acrylonitrile Butadiene Styrene) is a widely used and versatile 3D printing material known for its strength, toughness, and heat resistance. This thermoplastic material is perfect for printing objects that need to withstand high temperatures and rough conditions, such as automotive parts and household appliances. ABS has a high melting point, which makes it ideal for printing objects that need to withstand heat and pressure, such as gears and functional prototypes. It also boasts good dimensional stability, making it an ideal choice for printing precise and accurate parts. ABS is also easy to post-process, allowing for sanding, painting, and other cosmetic enhancements to be applied to your finished prints.
Engineering Printing Materials:
PA6CF (Polyamide 6 Carbon Fiber) is a high-performance 3D printing material that offers a unique combination of strength, stiffness, and durability. This material is a blend of Polyamide 6 (PA6) and carbon fiber, which makes it an ideal choice for printing objects that require high mechanical strength, such as aerospace parts, industrial prototypes, and automotive components. PA6CF is known for its exceptional resistance to high stress and impact, making it a reliable choice for demanding applications. It also boasts excellent dimensional stability and minimal warping, which makes it an ideal choice for printing precise and accurate parts. With its high stiffness and strength, PA6CF is an excellent choice for printing objects that need to withstand high stress and strain.
PA6CF (Polyamide 6 Carbon Fiber) is a high-performance 3D printing material that offers a unique combination of strength, stiffness, and durability. This material is a blend of Polyamide 6 (PA6) and carbon fiber, which makes it an ideal choice for printing objects that require high mechanical strength, such as aerospace parts, industrial prototypes, and automotive components. PA6CF is known for its exceptional resistance to high stress and impact, making it a reliable choice for demanding applications. It also boasts excellent dimensional stability and minimal warping, which makes it an ideal choice for printing precise and accurate parts. With its high stiffness and strength, PA6CF is an excellent choice for printing objects that need to withstand high stress and strain.
PCCF (Polycarbonate Carbon Fiber) is a high-performance 3D printing material that combines the strength and durability of polycarbonate with the stiffness and toughness of carbon fiber. This material is ideal for printing objects that require high mechanical strength, such as aerospace components, industrial prototypes, and consumer electronics. PCCF is known for its exceptional resistance to high stress and impact, making it a reliable choice for demanding applications. Additionally, it boasts good dimensional stability, making it an ideal choice for printing precise and accurate parts. The addition of carbon fiber to polycarbonate results in a material that is much stronger than pure polycarbonate, making it an ideal choice for printing objects that need to withstand high stress and strain.