Active Materials & Manufacturing Chemistry

Thermally Sprayed Coatings to inhibit bondcoat - Ceramic Matrix Composite (CMC) Interactions

In plain English

AI plain-English summary

Jet engines rely on a ceramic coating system to stop steam from eating through their silicon carbide components, and this PhD project will redesign that coating to prevent chemical reactions between the metal bondcoat and the ceramic matrix composite (CMC). The problem is that current environmental barrier coatings (EBCs) protect CMCs from steam but do not stop the silicon bondcoat from reacting with the CMC itself at high temperatures. Those reactions degrade the interface, shortening engine life and limiting how hot engines can run. Without a fix, the aerospace industry cannot fully exploit CMCs' low density—3.21 g/cc—to cut weight and fuel burn for NetZero aviation and hydrogen power. This project will develop new surface engineering strategies, then test them at high temperature using electron backscattered diffraction, transmission electron microscopy, and Raman spectroscopy. If successful, the work could produce coating designs that let engines run hotter and longer, directly supporting lighter, more fuel-efficient aircraft and hydrogen turbines. The research is applied and materials-focused, with no immediate consumer product—but the payoff is quieter, cheaper air travel and cleaner power generation.

View original technical description
The aerospace industry is committed to moving towards environmentally friendly solutions using space-age materials like CMCs, mainly made of silicon carbide (SiC) fibre in a SiC matrix. The CMCs only have a density of 3.21 g/cc, significantly improving weight and performance to reach NetZero in Aviation and hydrogen economy; however, CMCs rely extensively on a multi-layered coating system called EBC: a bottom layer of silicon and a top layer of ytterbium disilicate to protect them from steam. This PhD project will focus on the design and development of brand new strategies for Surface Engineering and Coatings Solutions for CMCs and the surrounding metal, high temperature testing, characterisation with electron backscattered diffraction, transmission electron microscopes and Raman spectroscopy.

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Researchers

Benjamin Gan (Student)

Related Research

Grants with similar aims, by meaning.

Adhesion strength of environmental barrier coatings on SiC/SiC CMCs for aerospace
SiC/SiC Composites for Aerospace
Core-shell thermal barrier coatings for mitigating molten silicate attack
Environmentally induced damage propagation with localised stresses in CMCs
Environmental degradation of SiC/SiC

Original classification

Studentship

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