Completed Materials & Manufacturing Chemistry

Blended Steel

In plain English

AI plain-English summary

Engineers are mixing two different metal powders into a single billet, then fusing them under high pressure and heat to create a new alloy with a smooth, gradual change in composition from one metal to the other. This matters because combining metals with very different properties—like a tough low-alloy steel and a corrosion-resistant stainless steel—usually requires welding them together. Welding creates a sharp, weak joint where the two metals meet, often prone to cracking or failure. The new approach, called diffusion bonding of blended powders, aims to eliminate that weak seam entirely by creating a seamless gradient of material. If successful, this technique could replace traditional tungsten inert gas welding for joining dissimilar steels. That would mean stronger, more reliable components in critical infrastructure—such as pipelines, pressure vessels, or structural parts in power plants and chemical processing equipment—where a welded joint is currently the weakest link. The process also allows manufacturers to tailor a material’s properties precisely for a specific application, using off-the-shelf metal powders. The key challenge is removing surface oxides from the powders before bonding, while also preventing excessive atomic diffusion that could weaken the final material.

View original technical description
Metal powders with precise compositions and size profiles as low as 16µm are readily available at scale for use in additive manufacturing and metal injection moulding processes. TISICS have developed a novel process for mixing precise ratios of metal powders to produce bespoke combinations, then diffusion bonding the mixture via hot-isostatic pressing to fabricate novel alloys. Using these techniques we shall attempt to manufacture a functionally graded billet combining a low alloy steel and a super austenitic stainless steel with a smooth composition gradient and mechanical properties not inferior to the parent alloys. It is critical to reduce or entirely eliminate surface oxides from the powders prior to diffusion bonding, it is also critical to avoid excessive atomic diffusion at the powder interfaces while still achieving full consolidation. Should this approach be successful it has the potential to replace the traditional approach of combining the two alloys through tungsten inert gas welding.

View the original record at the funder ↗

Related Research

Grants with similar aims, by meaning.

BLEND - Innovation in Functionally Graded Materials
Development of Laser Powder Bed Fusion process for Complex Concentrated Alloys (a.k.a. High Entropy Alloys)
Diffusion Bonding Titanium Alloys to Stainless Steels
Increasing bearing life by combining a novel manufacturing bearing steel process with multiscale modelling techniques
Mechanised production of moulded high strength aluminium tanks

Original classification

Feasibility Studies

Plain English summaries and category classifications on this site are generated by AI and may not perfectly reflect the original research.