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Showing 1 to 7 of 7 for “"In-situ alloying"”.

  1. In Situ Alloying of Titanium via Laser Powder Bed Fusion

    Laser powder bed fusion is a leading additive manufacturing technique capable of producing complex, customised titanium components. However, its broader adoption is constrained by limited commercial alloy options, the high cost of pre-alloyed powders, and pronounced anisotropy arising from coarse …

    auckland-ms Repository record for In Situ Alloying of Titanium via Laser Powder Bed Fusion (opens in a new tab)

  2. Design and Commissioning of a Hybrid Additive Manufacturing System Combining Inkjet Deposition and Laser Powder Bed Fusion

    Capabilities to combine multiple metal and/or ceramic materials in single components, and/or to achieve desired gradients in composition, will advance the performance of future propulsion and energy conversion systems. Multi-material and gradient capabilities have been demonstrated for metals in …

    mit Repository record for Design and Commissioning of a Hybrid Additive Manufacturing System Combining Inkjet Deposition and Laser Powder Bed Fusion (opens in a new tab)

  3. Characterisation of mechanically alloyed feedstock for laser-powder bed fusion: titanium silicon carbide metal matrix composite

    The research presented investigates the characterisation of new materials for the additive manufacturing (AM) industry. Herein, a metal matrix composite (MMC) with a titanium (Ti6Al4V) matrix reinforced with silicon carbide (SiC) is characterised. The research investigated an innovative and novel …

    wlv Repository record for Characterisation of mechanically alloyed feedstock for laser-powder bed fusion: titanium silicon carbide metal matrix composite (opens in a new tab)

  4. Laser Powder Bed Fusion Additive Manufacturing of Fe-based Shape Memory Alloys for Biomedical Applications

    Biodegradable Fe-Mn-Si alloys are promising candidates for biomedical implant applications, combining degradability with desirable mechanical performance and shape memory properties. However, the inherently slow corrosion rate of iron-based alloys poses challenges that limit their practical …

    unsw Repository record for Laser Powder Bed Fusion Additive Manufacturing of Fe-based Shape Memory Alloys for Biomedical Applications (opens in a new tab)

  5. The feasability of processing silver and copper using 400w laser powder bed fusion additive manufacturing

    The combined effect of accelerating climate change and the COVID-19 pandemic have resulted in governments globally placing greater emphasis on innovations in healthcare, materials science, sustainable manufacturing, and green energy solutions. Global requirements for reducing greenhouse gas …

    wlv Repository record for The feasability of processing silver and copper using 400w laser powder bed fusion additive manufacturing (opens in a new tab)

  6. Selective laser melting of Ti-35NB alloy: Processing, microstructure and properties

    The initiative of a sustainable material system needs to lower the environmental and economic impact of production processes and adopt new ways of synthesizing and re-using materials. Even though the current conventional manufacturing processes, such as powder metallurgy, casting, forging, and …

    edithcowan Repository record for Selective laser melting of Ti-35NB alloy: Processing, microstructure and properties (opens in a new tab)