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Thermal Spray Coating Consultancy and Research and Development Services

Thermal spraying can be used to deposit metals, cermets (such as WC-Co), ceramics, polymers in layers typically 60 μm to 10 mm thick, for a wide range of engineering applications. Conventional thermal spray techniques include flame spraying and electric arc spraying. These have been used since the mid-1900s and continue to be developed. More advanced thermal spray processes include detonation gun, high velocity oxy-fuel (HVOF), plasma and suspension/precursor spraying. Each process gives different coating characteristics for the same coating material, which determines the coating performance.

Almost any material can be deposited so long as it melts or becomes plastic during the spraying process. Blends of different materials to produce composite or graded thermal spray coatings are possible. At the substrate surface, the particles form 'splats' or 'platelets' that interlock and build up to form the coating.

The deposit does not fuse with the substrate or form a solid solution. The bond is primarily mechanical. Hence, adhesion depends on the molten particle impact velocity as well as the surface condition, which must be clean and roughened by grit blasting or machining prior to spraying. Bond strengths between ca. 10 MPa and >80 MPa can be obtained depending on the thermal spray process and spray parameters used.

Thermal spraying can offer a technically superior and commercially competitive solution to many industrial challenges, including:

  • Replacement of chrome or cadmium plating;
  • Wear, corrosion and thermal protection, e.g. biomass and waste-to-energy plants, offshore structures, subsea pump internals, impeller wear rings, valve plugs/balls/discs and seats, rock drill internals, compressor blades and vanes, bearing housings, glass plungers, printing rolls, textile guides;
  • Biocompatible coatings on orthopaedic and dental implants;
  • Dielectric coatings for electrical insulation in power hybrid circuits and heating elements;
  • Spray forming e.g. manufacture of thin walled hollow cylindrical objects from pre-shaped cores;
  • Component surface restoration after wear or damage

Contact us to find out how we can help your company achieve success with thermal spray coatings:

rory.lipington@twi.co.uk

TWI's Expertise

TWI uses a wide range of commercially-available thermal spray equipment, so that technology developments are transferable to industry. The available process technologies are:

  • Latest generation cold spray system
  • Three different high velocity oxy-fuel (HVOF) systems
  • High velocity air fuel (HVAF)
  • Plasma spray (APS)
  • Twin wire arc spray
  • Flame spray

We offer the following services to our Members:

  • Applications development, upscaling and manufacturing development
  • Coatings research and development
  • Consultancy services and materials selection
  • Coating failure investigations
  • Coating characterisation and testing

Current and recent research projects include the development of improved sacrificial coatings for sea-water corrosion resistance of steel structures, corrosion mitigation of boiler tubes in biomass or waste-to-energy plants, development of antifouling coatings for renewable energy applications, and the development of functional coatings for windfarm applications.

Internal research conducted in the past ten years has resulted in our innovative and versatile proprietary method for applying thick thermal spray coatings to composite materials: CompoSurfTM.

In addition to this, as a membership-based engineering organisation working across all industry sectors and with a variety of processes, we complete dozens of confidential leading-edge projects for individual Member companies each year.

See how TWI can help your company by contacting us: 

rory.lipington@twi.co.uk

Thermal Spray at TWI - Insights into Thermal Spray Work and Expertise

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Plasma Spray Coatings for Geothermal Applications

The lifetime and efficiency of geothermal heat exchangers are adversely affected by the presence of geothermal fluids, hot gases, and humidity in varying temperature conditions. Generally, expensive heat exchanger materials are used in these systems due to the corrosion and scaling threat, but the GeoHex project has been investigating coatings and surface modification solutions to improve heat transfer performance and guard against corrosion and scaling.

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Geo-Drill: High Velocity Oxygen Fuel (HVOF) Spraying

TWI has been exploring a wide range of HVOF coatings, including both cermet coatings and alloy coatings, for protecting drilling components. The Geo-Drill Project is working to develop “holistic” drilling technologies that have the potential to drastically reduce the cost of drilling to large depths (5km or more) and at high temperatures (250ºC or more).

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MatIC Director Recognised by ASM Thermal Spray Society

Dr Shiladitya Paul, Director of the Materials Innovation Centre, was commended by the ASM Thermal Spray Society (TSS) for his contribution as a reviewer for the Journal of Thermal Spray Technology. The ASM TSS carries a membership of around 1,500 people globally, representing over 500 leading companies, research institutions and universities.

Enquire about our thermal spraying capabilities and consultancy services today:


rory.lipington@twi.co.uk