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all doctoral candidates to thrive and achieve their full potential. At Cranfield, we value our diverse staff and student community and maintain a culture where everyone can work and study together
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AI techniques for damage analysis in advanced composite materials due to high velocity impacts - PhD
to provide an accessible and inclusive environment to enable all doctoral candidates to thrive and achieve their full potential. At Cranfield, we value our diverse staff and student community and maintain a
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. Funding This is a self-funded PhD. Find out more about fees. Cranfield Doctoral Network Research students at Cranfield benefit from being part of a dynamic, focused and professional study environment and
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. Cranfield Doctoral Network Research students at Cranfield benefit from being part of a dynamic, focused and professional study environment and all become valued members of the Cranfield Doctoral Network
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This fully funded PhD studentship, sponsored by the EPSRC Doctoral Landscape Awards (DLA) offers a bursary of £22,000 per annum, covering UK full tuition fees, the funding only covers the home fee
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more about tuition fees. Cranfield Doctoral Network Research students at Cranfield benefit from being part of a dynamic, focused and professional study environment and all become valued members
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enthusiasm for the subject and technology Have the willing to publish research findings in international journals Funding Self-funded Cranfield Doctoral Centre Research students at Cranfield benefit from being
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This studentship is open to both UK and International applications. This is a self funded PhD opportunity. Find out more about tuition fees. Cranfield Doctoral Network Research students at Cranfield benefit from
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-funded PhD project includes the ability to participate in industry-led research initiatives and access to the Cranfield Doctoral Training Network. You will gain knowledge of high temperature materials
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The research in this doctoral opportunity will analytical and numerically model the changes in modal responses of a structure under thermo-mechanical loads. Sub-surface fatigue in mechanical