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Fractal Flow Design: How to Design Bespoke Turbulence and Why (Hardcover, 1st ed. 2016): Yasuhiko Sakai, Christos Vassilicos Fractal Flow Design: How to Design Bespoke Turbulence and Why (Hardcover, 1st ed. 2016)
Yasuhiko Sakai, Christos Vassilicos
R3,593 Discovery Miles 35 930 Ships in 10 - 15 working days

This book focuses on turbulent flows generated and/or influenced by multiscale/fractal structures. It consists of six chapters which demonstrate, each one in its own way, how such structures and objects can be used to design bespoke turbulence for particular applications and also how they can be used for fundamental studies of turbulent flows.

Fractal Flow Design: How to Design Bespoke Turbulence and Why (Paperback, Softcover reprint of the original 1st ed. 2016):... Fractal Flow Design: How to Design Bespoke Turbulence and Why (Paperback, Softcover reprint of the original 1st ed. 2016)
Yasuhiko Sakai, Christos Vassilicos
R3,361 Discovery Miles 33 610 Ships in 10 - 15 working days

This book focuses on turbulent flows generated and/or influenced by multiscale/fractal structures. It consists of six chapters which demonstrate, each one in its own way, how such structures and objects can be used to design bespoke turbulence for particular applications and also how they can be used for fundamental studies of turbulent flows.

Prediction of Turbulent Flows (Hardcover): Geoff Hewitt, Christos Vassilicos Prediction of Turbulent Flows (Hardcover)
Geoff Hewitt, Christos Vassilicos
R3,673 Discovery Miles 36 730 Ships in 12 - 17 working days

The prediction of turbulent flows is of paramount importance in the development of complex engineering systems involving flow, heat and mass transfer, and chemical reactions. Arising from a programme held at the Isaac Newton Institute in Cambridge, this volume reviews the current situation regarding the prediction of such flows through the use of modern computational fluid dynamics techniques, and attempts to address the inherent problem of modelling turbulence. In particular, the current physical understanding of such flows is summarised and the resulting implications for simulation discussed. The volume continues by surveying current approximation methods whilst discussing their applicability to industrial problems. This major work concludes by providing a specific set of guidelines for selecting the most appropriate model for a given problem. Unique in its breadth and critical approach, this book will be of immense value to experienced practitioners and researchers, continuing Cambridge's strong tradition in fluid dynamics.

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