Completed Mathematics & Statistics Physics & Astronomy

Analysis of Nonlinear Partial Differential Equations

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The equations that describe how tsunamis travel, how aircraft wings flex, and how blood flows through arteries all belong to a class of mathematical tools called nonlinear partial differential equations (PDEs), and the UK is falling behind in understanding them. These equations govern almost every physical process—from subatomic particles to planetary motion—yet most cannot be solved with a simple formula. Researchers must instead prove that solutions exist, determine their properties, and develop reliable numerical methods to approximate them. The UK currently lags behind international competitors in this fundamental area of mathematics, which weakens the entire scientific and engineering enterprise that depends on these models. This project establishes a dedicated research centre at Oxford to sharpen the UK’s focus on nonlinear PDE analysis. The centre will coordinate nationwide activities and build stronger links with industry through Oxford’s existing mathematical modelling group. If successful, it will strengthen the mathematical foundations underpinning simulations used in aerospace, climate modelling, drug design, and financial risk assessment—fields where replacing physical experiments with reliable computation saves time and money. This is fundamental science: no immediate product will emerge, but deeper understanding of these equations has historically enabled breakthroughs from weather forecasting to medical imaging.

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Partial differential equations (PDEs) are equations that relate the partial derivatives, usually with respect to space and time coordinates, of unknown quantities. They are ubiquitous in almost all applications of mathematics, where they provide a natural mathematical description of phenomena in the physical, natural and social sciences, often arising from fundamental conservation laws such as for mass, momentum and energy. Significant application areas include geophysics, the bio-sciences, engineering, materials science, physics and chemistry, economics and finance. Length-scales of natural phenomena modelled by PDEs range from sub-atomic to astronomical, and time-scales may range from nanoseconds to millennia. The behaviour of every material object can be modelled either by PDEs, usually at various different length- or time-scales, or by other equations for which similar techniques of analysis and computation apply. A striking example of such an object is Planet Earth itself.Linear PDEs are ones for which linear combinations of solutions are also solutions. For example, the linear wave equation models electromagnetic waves, which can be decomposed into sums of elementary waves of different frequencies, each of these elementary waves also being solutions. However, most of the PDEs that accurately model nature are nonlinear and, in general, there is no way of writing their solutions explicitly. Indeed, whether the equations have solutions, what their properties are, and how they may be computed numerically are difficult questions that can be approached only by methods of mathematical analysis. These involve, among other things, precisely specifying what is meant by a solution and the classes of functions in which solutions are sought, and establishing ways in which approximate solutions can be constructed which can be rigorously shown to converge to actual solutions. The analysis of nonlinear PDEs is thus a crucial ingredient in the understanding of the world about us.As recognized by the recent International Review of Mathematics, the analysis of nonlinear PDEs is an area of mathematics in which the UK, despite some notable experts, lags significantly behind our scientific competitors, both in quantity and overall quality. This has a serious detrimental effect on mathematics as a whole, on the scientific and other disciplines which depend on an understanding of PDEs, and on the knowledge-based economy, which in particular makes increasing use of simulations of PDEs instead of more costly or impractical alternatives such as laboratory testing.The proposal responds to the national need in this crucial research area through the formation of a forward-looking world-class research centre in Oxford, in order to provide a sharper focus for fundamental research in the field in the UK and raise the potential of its successful and durable impact within and outside mathematics. The centre will involve the whole UK research community having interests in nonlinear PDEs, for example through the formation of a national steering committee that will organize nationwide activities such as conferences and workshops.Oxford is an ideal location for such a research centre on account of an existing nucleus of high quality researchers in the field, and very strong research groups both in related areas of mathematics and across the range of disciplines that depend on the understanding of nonlinear PDEs. In addition, two-way knowledge transfer with industry will be achieved using the expertise and facilities of the internationally renowned mathematical modelling group based in OCIAM which, through successful Study Groups with Industry, has a track-record of forging strong links to numerous branches of science, industry, engineering and commerce. The university is committed to the formation of the centre and will provide a significant financial contribution, in particular upgrading one of the EPSRC-funded lectureships to a Chair

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Researchers

John Ball (Principal Investigator)Nick Woodhouse (Co-Investigator)

Related Research

Grants with similar aims, by meaning.

Centre for Analysis and Nonlinear Partial Differential Equations
EPSRC Centre for Doctoral Training in Partial Differential Equations: Analysis and Applications
Computational Linear Algebra for Partial Differential Equations: An LMS Durham Research Symposium
Analysis: from theory to applications
Generalised and Low-Regularity Solutions of Nonlinear Partial Differential Equations

Original classification

Research Grant

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