**Policy Summary:**
The Ministry of Rural Development highlights a technological advancement by the International Advanced Research Centre for Powder Metallurgy and New Materials (ARCI), an autonomous institute of the Department of Science and Technology (DST), in developing cost-effective, durable coatings for high-temperature industrial applications, specifically within the power sector. The innovation focuses on an air-based cold spray process using custom-designed, energy-efficient nozzles, which are IP-owned by ARCI. This method replaces the traditionally expensive nitrogen or helium gas with air, significantly reducing operational costs.
The technology utilizes a DeLaval nozzle to propel micron-sized particles at supersonic speeds, bonding them to metal substrates through plastic deformation. This solid-state process preserves the material's original microstructure, enhancing its resistance to oxidation, corrosion, and thermomechanical fatigue under extreme pressure and temperature conditions. ARCI's design optimizes the particle's residence time within the thermal jet, enabling effective bonding at lower pressures and temperatures.
Using commercially available NiCr powders and air as the process gas, ARCI has successfully produced dense, uniform coatings. These coatings demonstrated excellent performance, withstanding 1000 hours of thermal cycling at 1100°C. The formation of a dense, impermeable, columnar oxide scale confirms the coating's superior oxidation resistance and long-term thermal stability. The research was published in Surface and Coating Technology under Elsevier. Release ID: 2157927
Key Entities Referenced
Ministry of Rural Development: The Indian governmental ministry under which the information was released.
International Advanced Research Centre for Powder Metallurgy and New Materials ARCI: An autonomous institute of Department of Science and Technology DST, involved in developing cost-effective cold spray process using air.
Department of Science and Technology DST: The Indian governmental department under which ARCI operates.
High Velocity OxyFuel HVOF: A thermal spray technique used to apply Nibased overlay coatings.
Atmospheric Plasma Spray APS: A thermal spray technique used to apply Nibased overlay coatings.
NiCr alloys: Commercially available powders used by ARCI for cold spraying to produce dense, uniform coatings.
Surface and Coating Technology: The journal under Elsevier where the article was published.
Delhi: Location of Press Information Bureau (PIB).
Ministry of Rural Development
Air and ingenious nozzles could transform coatings
for high temperature tolerance
Posted On: 19 AUG 2025 4:04PM by PIB Delhi
The air we breathe can (be used to) create high-tech, ultra-durable coatings on metal surfaces that can sustain
at extreme pressure and temperature by resisting oxidation. Such coatings are useful for equipment used in
power plant systems to enhance component longevity.
Engineering components in the power sector face very high pressure and temperature conditions, leading to
gradual degradation due to oxidation, corrosion, and thermo-mechanical fatigue.
To protect these components, Ni-based overlay coatings widely recognized for their durability are commonly
applied using thermal spray techniques like High Velocity Oxy-Fuel (HVOF), Detonation Spraying, and
Atmospheric Plasma Spray (APS). These methods involve melting or partial melting of the material before it
solidifies on the surface.
In contrast, cold spraying offers a solid-state alternative that avoids melting entirely. Using a De-Laval nozzle,
it propels micron-sized particles at supersonic speeds. These particles bond to the substrate through plastic
deformation, preserving the material's original microstructure. However, commonly used cold spray processes
are expensive due to the use of costly nitrogen or helium gas.
International Advanced Research Centre for Powder Metallurgy and New Materials (ARCI), an autonomous
institute of Department of Science and Technology (DST) has successfully used air as the process gas, instead
of the typically expensive nitrogen or helium, offering a more cost-effective and sustainable solution for the
cold spray process.
Additionally, custom-designed, energy-efficient nozzles, developed and IP-owned by ARCI, an autonomous
institute of Department of Science and Technology, enable effective coating at lower pressures and
temperatures, reducing the process’s energy demands.
Fig: 3D Design of Nozzle and its effect on powder ((a) Nozzle geometry used to deposit the coatings; and In-
flight (b) velocity and (c) temperature distribution of the powders injected in the nozzle.)
A key insight driving this innovation is ARCI’s deep understanding of how Ni–Cr alloys behave at elevated
temperatures. As the temperature rises, the alloy softens, improving its ability to deform and bond uponimpact. ARCI’s nozzle design increases the particles' residence time in the thermal jet, allowing them to heat
just enough to bond more effectively without needing extreme conditions. This intuitive design solution
exemplifies ARCI’s strength in translating material behaviour into process-level innovation.
Using commercially available Ni–Cr powders and air as the process gas, ARCI produced dense, uniform
coatings. These were thermally cycled for 1000 hours at 1100°C, demonstrating excellent performance. The
formation of a dense, impermeable, columnar oxide scale confirmed the coating's superior oxidation
resistance and long-term thermal stability.
This work highlights the potential of cold-sprayed Ni–Cr coatings for high-temperature industrial
applications. With its blend of material insight, process innovation, and cost-efficiency, ARCI continue to
lead in delivering sustainable solutions to meet the evolving challenges of the power sector. The article was
published in Surface and Coating Technology under Elsevier.
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NKR/PSM/AV
(Release ID: 2157927)