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Mathematical Analysis and Numerical Methods for Science and Technology - Volume 4 Integral Equations and Numerical Methods... Mathematical Analysis and Numerical Methods for Science and Technology - Volume 4 Integral Equations and Numerical Methods (Paperback, 1st ed. 1990. 2nd printing 1999)
Robert Dautray; Contributions by M Artola; Translated by J.C. Amson; Jacques-Louis Lions; Contributions by P. Benilan, …
R2,659 Discovery Miles 26 590 Out of stock

The advent of high-speed computers has made it possible for the first time to calculate values from models accurately and rapidly. Researchers and engineers thus have a crucial means of using numerical results to modify and adapt arguments and experiments along the way. Every facet of technical and industrial activity has been affected by these developments. The objective of the present work is to compile the mathematical knowledge required by researchers in mechanics, physics, engineering, chemistry and other branches of application of mathematics for the theoretical and numerical resolution of physical models on computers. Since the publication in 1924 of the "Methoden der mathematischen Physik" by Courant and Hilbert, there has been no other comprehensive and up-to-date publication presenting the mathematical tools needed in applications of mathematics in directly implementable form.

Mathematical Analysis and Numerical Methods for Science and Technology - Volume 3 Spectral Theory and Applications (Paperback,... Mathematical Analysis and Numerical Methods for Science and Technology - Volume 3 Spectral Theory and Applications (Paperback, 1st ed. 1990. 2nd printing 1999)
Robert Dautray; Contributions by M Artola; Translated by J.C. Amson; Contributions by M. Cessenat; Jacques-Louis Lions
R2,162 Discovery Miles 21 620 Out of stock

The advent of high-speed computers has made it possible for the first time to calculate values from models accurately and rapidly. Researchers and engineers thus have a crucial means of using numerical results to modify and adapt arguments and experiments along the way. Every facet of technical and industrial activity has been affected by these developments. The objective of the present work is to compile the mathematical knowledge required by researchers in mechanics, physics, engineering, chemistry and other branches of application of mathematics for the theoretical and numerical resolution of physical models on computers. Since the publication in 1924 of the "Methoden der mathematischen Physik" by Courant and Hilbert, there has been no other comprehensive and up-to-date publication presenting the mathematical tools needed in applications of mathematics in directly implementable form.

Mathematical Analysis and Numerical Methods for Science and Technology - Volume 2 Functional and Variational Methods... Mathematical Analysis and Numerical Methods for Science and Technology - Volume 2 Functional and Variational Methods (Paperback, 1st. ed. 1988. 2nd printing 1999)
I. N. Sneddon; Robert Dautray; Contributions by M Artola, M. Authier; Jacques-Louis Lions; Contributions by …
R2,667 Discovery Miles 26 670 Out of stock

These 6 volumes - the result of a 10 year collaboration between the authors, two of France's leading scientists and both distinguished international figures - compile the mathematical knowledge required by researchers in mechanics, physics, engineering, chemistry and other branches of application of mathematics for the theoretical and numerical resolution of physical models on computers. Since the publication in 1924 of the "Methoden der mathematischen Physik" by Courant and Hilbert, there has been no other comprehensive and up-to-date publication presenting the mathematical tools needed in applications of mathematics in directly implementable form. The advent of large computers has in the meantime revolutionised methods of computation and made this gap in the literature intolerable: the objective of the present work is to fill just this gap. Many phenomena in physical mathematics may be modeled by a system of partial differential equations in distributed systems: a model here means a set of equations, which together with given boundary data and, if the phenomenon is evolving in time, initial data, defines the system. The advent of high-speed computers has made it possible for the first time to calculate values from models accurately and rapidly. Researchers and engineers thus have a crucial means of using numerical results to modify and adapt arguments and experiments along the way. Every facet of technical and industrial activity has been affected by these developments. Modeling by distributed systems now also supports work in many areas of physics (plasmas, new materials, astrophysics, geophysics), chemistry and mechanics and is finding increasing use in the life sciences.

Mathematical Analysis and Numerical Methods for Science and Technology, v. 5 - Evolution Problems, I (Hardcover): Robert... Mathematical Analysis and Numerical Methods for Science and Technology, v. 5 - Evolution Problems, I (Hardcover)
Robert Dautray, J.L. Lions; Volume editing by Ian Naismith Sneddon; Translated by A. Craig
R3,189 Discovery Miles 31 890 Out of stock

These 6 volumes - the result of a 10 year collaboration between the authors, two of France's leading scientists and both distinguished international figures - compile the mathematical knowledge required by researchers in mechanics, physics, engineering, chemistry and other branches of application of mathematics for the theoretical and numerical resolution of physical models on computers. Since the publication in 1924 of the "Methoden der mathematischen Physik" by Courant and Hilbert there has been no other comprehensive and up-to-date publication presenting the mathematical tools needed in applications of mathematics in directly implementable form. The advent of large computers has in the meantime revolutionised methods of computation and made this gap in the literature intolerable: the objective of the present work is to fill just this gap. Many phenomena in physical mathematics may be modeled by a system of partial differential equations in distributed systems: a model here means a set of equations, which together with given boundary data and, if the phenomenon is evolving in time, initial data, defines the system. The advent of high-speed computers has made it possible for the first time to calculate values from models accurately and rapidly. Researchers and engineers thus have a crucial means of using numerical results to modify and adapt arguments and experiments along the way. Every facet of technical and industrial activity has been affected by these developments. Modeling by distributed systems now also supports work in many areas of physics (plasmas, new materials, astrophysics, geophysics), chemistry and mechanics and is finding increasing use in the life sciences.

Mathematical Analysis and Numerical Methods for Science and Technology, Vol 6 - Evolution Problems II: the Navier-Stokes and... Mathematical Analysis and Numerical Methods for Science and Technology, Vol 6 - Evolution Problems II: the Navier-Stokes and Transport Equations and Numerical Methods (Hardcover)
Robert Dautray, J.L. Lions; Translated by A. Craig; Edited by Ian Naismith Sneddon
R3,111 Discovery Miles 31 110 Out of stock

These six volumes - the result of a ten year collaboration between the authors, two of France's leading scientists and both distinguished international figures - compile the mathematical knowledge required by researchers in mechanics, physics, engineering, chemistry and other branches of application of mathematics for the theoretical and numerical resolution of physical models on computers. Since the publication in 1924 of the "Methoden der mathematischen " "Physik" by Courant and Hilbert, there has been no other comprehensive and up-to-date publication presenting the mathematical tools needed in applications of mathematics in directly implementable form. The advent of large computers has in the meantime revolutionised methods of computation and made this gap in the literature intolerable: the objective of the present work is to fill just this gap. Many phenomena in physical mathematics may be modeled by a system of partial differential equations in distributed systems: a model here means a set of equations, which together with given boundary data and, if the phenomenon is evolving in time, initial data, defines the system. The advent of high-speed computers has made it possible for the first time to caluclate values from models accurately and rapidly. Researchers and engineers thus have a crucial means of using numerical results to modify and adapt arguments and experiments along the way. Every fact of technical and industrial activity has been affected by these developments. Modeling by distributed systems now also supports work in many areas of physics (plasmas, new materials, astrophysics, geophysics), chemistry and mechanics and is finding increasing use in the life sciences. "Volumes 5 and 6" cover problems of Transport and Evolution.

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