The project focuses on the assessment of robust, accurate, and automated CFD methodologies for aerodynamic analysis of cycling performance, including workflow automation, mesh generation, simulation, post-processing and validation against wind-tunnel measurements. The resulting tool will subsequently be used to assist design and position optimisation activities.
You will be responsible for the following activities
- Develop, validate and optimise a high-fidelity CFD workflows for aerodynamic analysis of cycling equipment and rider configurations.
- Design automated simulation pipelines including geometry preparation, mesh generation, solver execution, and post-processing.
- Validate CFD predictions against experimental wind-tunnel measurements and establish best-practice guidelines for turbulence modelling and simulations.
- Support supervision of postgraduate and undergraduate research students contributing to the same project.
We welcome candidates who bring diverse perspectives, experiences, and approaches to their work.
About you
We encourage applications from individuals with a wide range of backgrounds and experiences. You should demonstrate:
Essential criteria:
- PhD (or near completion) in engineering, maths or physics, on research topics directly related to one or more of computational fluid dynamics, turbulent flows, aerodynamics, flow control.
- Experience using CFD software such as OpenFOAM, Code_Saturne & Star CCM+.
- Experience developing scientific software using Python and/or C++.
- Experience with external aerodynamic simulations.
- Experience with mesh generation and numerical simulation workflows.
Desirable criteria:
- Experience working in Linux and high-performance computing environments.
- Experience with turbulence modelling (RANS, LES, or hybrid RANS-LES methods).
- Experience working with industrial partners.
- Track record of peer-reviewed publications.
- Ability to contribute to future funding applications and external communications.
We value transferable skills and real-world experience as much as formal qualifications.
Our benefits include:
- Generous employer contribution pension
- 29 days annual leave plus bank holidays, along with Christmas closure
- Ride to work and EV car scheme available
For more information, please seeUniversity of Manchester Benefits. You can also find information on our Flexible and Hybrid workinghere.
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Enquiries about the role, shortlisting and interviews.
Name: Prof Alistair Revell
Email Address:alistair.revell@manchester.ac.uk
General enquiries and administrative support: recruitmentservices.people@manchester.ac.uk
Technical and job portal support: jobseekersupport.jobtrain.co.uk/support/home
This role is not eligible for Skilled Worker visa sponsorship. Applicants must demonstrate the right to work in the UK.
Applications close at midnight on the closing date.
£37,694 to £46,049 per annum, depending on relevant experience