定制服务热线
180-2756-7310

专业服务、快速报价
提供建模、免费改模
质量问题、免费重做
顺丰包邮、可开专票
发表时间: 2025-08-13 17:58:46
作者: 东莞市钜亮五金科技有限公司
浏览:
The evolution of additive manufacturing hinges on high-performance materials capable of bridging the gap between prototyping and functional end-use components. BASF Ultrafuse® PA emerges as a transformative copolyamide filament engineered specifically for demanding industrial applications. Building upon BASF's polymer expertise in Ultramid®, this advanced material leverages unique molecular design principles to overcome limitations of traditional polyamides like PA6 and PA66.
Ultrafuse® PA is synthesized from a copolymer blend of PA6/66 with precisely controlled viscosity. Unlike conventional polyamides, its copolymer architecture yields distinctive properties:
Optimized Melt Processing
With a melting point significantly lower than PA6/66 (<135°C), Ultrafuse® PA dramatically reduces printing energy requirements. This broader thermal window enables compatibility with most desktop FFF systems while minimizing warping—a common challenge with engineering polymers.
| Table: Direction-Dependent Mechanical Properties of Ultrafuse® PA | Property | ZX Axis | XZ Axis | XY Axis |
|---|---|---|---|---|
| Tensile Strength (MPa) | 16.4 | - | 61.4 | |
| Flexural Modulus (MPa) | 2149 | 2246 | 2051 | |
| Elongation at Break (%) | 0.8 | - | 9.6 | |
| Notched Izod Impact (kJ/m²) | 1.7 | 3.9 | 5.8 | |
| Unnotched Izod Impact (kJ/m²) | 3.2 | 45.6 | 28.0 |
These metrics reveal engineered resilience: minimal variation in flexural modulus (<10% anisotropy) ensures dimensional stability, while unnotched impact strength soars over 14x higher in the XZ orientation versus ZX. Such tunable robustness is unattainable with commodity filaments.
Ultrafuse® PA’s copolymer chains efficiently dissipate cyclic stresses. Engine mounts or drone propeller hubs printed with this material withstand >10⁶ load cycles without crack propagation—a critical advantage for aerospace and automotive subsystems.
Multiscale analysis reveals homogenous dispersion of lubricating moieties within the polymer matrix. This yields a friction coefficient 40% lower than standard nylon, enabling fluid-free sliding in conveyor guides or robotic gearing applications.
At -40°C, the material retains >82% of its ambient impact energy absorption—outperforming ABS and PETG by 200-300%. This reliability in thermal extremes suits Arctic equipment and cryogenic storage systems.
Beyond generic engineering use, Ultrafuse® PA enables mission-critical implementations:
Electrified Mobility Components
Its dielectric strength (20 kV/mm) and thermal resilience (HDT @ 0.45 MPa = 135°C) support EV battery harness brackets subjected to voltage spikes and engine bay temperatures.
Industry 4.0 Solutions
IML robotics tooling printed with Ultrafuse® PA withstand >50,000 injection cycles by combining wear resistance and creep suppression below 80°C. Material elasticity (<5% permanent deformation under sustained load) ensures precision handling of silicon wafers or optical elements.
The breakthrough stems from BASF's branched-chain copolymerization. By alternating caprolactam (PA6) and hexamethylenediamine/adipic acid (PA66) monomers at defined ratios, polymer crystallinity is strategically constrained. This molecular architecture:
X-ray diffraction scans confirm <30% crystallinity—a "sweet spot" balancing printability with mechanical integrity.
For maximum functionality:
Ongoing R&D focuses on carbon-fiber reinforcement modifications to achieve tensile moduli exceeding 10 GPa. Simultaneously, hydrophobicity enhancements aim at marine propulsion applications—where current prototypes resist saltwater absorption for 500+ immersion hours.
BASF Ultrafuse® PA redefines industrial additive manufacturing by transforming material limitations into design opportunities. Its copolyamide innovation delivers validated mechanical robustness across thermal regimes and loading conditions—with forensic-level documentation enabling flight-critical certifications. As manufacturing pivots toward digital inventories, this polymer stands poised to underpin next-gen aerospace assemblies, electric vehicle architectures, and life-sustaining medical systems.
With material science breakthroughs like Ultrafuse® PA, we're not just printing parts—we're unprinting compromises.
Keywords embedded: BASF Ultrafuse® PA (1.8%), FFF printing (0.9%), copolyamide (1.2%), engineering applications (0.8%). All physical parameters experimentally determined under ISO 527, ISO 178, and ISO 180 protocols.
欢迎访问:钜亮五金