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Basic Mathematical Investigations in Electromagnetic Wave Theory. Final Report. January 1, 1964 - December 31, 1968...... Basic Mathematical Investigations in Electromagnetic Wave Theory. Final Report. January 1, 1964 - December 31, 1968... (Paperback)
Joseph B. Keller
R342 R324 Discovery Miles 3 240 Save R18 (5%) Ships in 12 - 17 working days

Unlike some other reproductions of classic texts (1) We have not used OCR(Optical Character Recognition), as this leads to bad quality books with introduced typos. (2) In books where there are images such as portraits, maps, sketches etc We have endeavoured to keep the quality of these images, so they represent accurately the original artefact. Although occasionally there may be certain imperfections with these old texts, we feel they deserve to be made available for future generations to enjoy.

Surveys in Applied Mathematics (Hardcover, 1995 ed.): Joseph B. Keller, David W. McLaughlin, George C. Papanicolaou Surveys in Applied Mathematics (Hardcover, 1995 ed.)
Joseph B. Keller, David W. McLaughlin, George C. Papanicolaou
R3,268 Discovery Miles 32 680 Ships in 12 - 17 working days

Partial differential equations play a central role in many branches of science and engineering. Therefore it is important to solve problems involving them. One aspect of solving a partial differential equation problem is to show that it is well-posed, i. e. , that it has one and only one solution, and that the solution depends continuously on the data of the problem. Another aspect is to obtain detailed quantitative information about the solution. The traditional method for doing this was to find a representation of the solution as a series or integral of known special functions, and then to evaluate the series or integral by numerical or by asymptotic methods. The shortcoming of this method is that there are relatively few problems for which such representations can be found. Consequently, the traditional method has been replaced by methods for direct solution of problems either numerically or asymptotically. This article is devoted to a particular method, called the "ray method," for the asymptotic solution of problems for linear partial differential equations governing wave propagation. These equations involve a parameter, such as the wavelength. . \, which is small compared to all other lengths in the problem. The ray method is used to construct an asymptotic expansion of the solution which is valid near . . \ = 0, or equivalently for k = 21r I A near infinity.

Surveys in Applied Mathematics (Paperback, Softcover reprint of the original 1st ed. 1995): Joseph B. Keller, David W.... Surveys in Applied Mathematics (Paperback, Softcover reprint of the original 1st ed. 1995)
Joseph B. Keller, David W. McLaughlin, George C. Papanicolaou
R2,850 Discovery Miles 28 500 Out of stock

Partial differential equations play a central role in many branches of science and engineering. Therefore it is important to solve problems involving them. One aspect of solving a partial differential equation problem is to show that it is well-posed, i. e. , that it has one and only one solution, and that the solution depends continuously on the data of the problem. Another aspect is to obtain detailed quantitative information about the solution. The traditional method for doing this was to find a representation of the solution as a series or integral of known special functions, and then to evaluate the series or integral by numerical or by asymptotic methods. The shortcoming of this method is that there are relatively few problems for which such representations can be found. Consequently, the traditional method has been replaced by methods for direct solution of problems either numerically or asymptotically. This article is devoted to a particular method, called the "ray method," for the asymptotic solution of problems for linear partial differential equations governing wave propagation. These equations involve a parameter, such as the wavelength. . \, which is small compared to all other lengths in the problem. The ray method is used to construct an asymptotic expansion of the solution which is valid near . . \ = 0, or equivalently for k = 21r I A near infinity.

Macroscopic Modelling of Turbulent Flows - Proceedings of a Workshop held at INRIA, Sophia-Antipolis, France, December 10-14,... Macroscopic Modelling of Turbulent Flows - Proceedings of a Workshop held at INRIA, Sophia-Antipolis, France, December 10-14, 1984 (Paperback, 1985 ed.)
Uriel Frisch, Joseph B. Keller, George C. Papanicolaou, Olivier Pironneau
R1,536 Discovery Miles 15 360 Out of stock
On Systems of Linear Ordinary Differential Equations (Paperback): Herbert Bishop Keller, Joseph B. Keller On Systems of Linear Ordinary Differential Equations (Paperback)
Herbert Bishop Keller, Joseph B. Keller
R367 Discovery Miles 3 670 Out of stock
Derivation of the Bohr-Sommerfeld Quantum Conditions From an Asymptotic Solution of the Schroedinger Equation (Paperback):... Derivation of the Bohr-Sommerfeld Quantum Conditions From an Asymptotic Solution of the Schroedinger Equation (Paperback)
Joseph B. Keller
R364 Discovery Miles 3 640 Out of stock
Spherical, Cylindrical and One-dimensional Flows of Compressible Fluids (Paperback): Joseph B. Keller Spherical, Cylindrical and One-dimensional Flows of Compressible Fluids (Paperback)
Joseph B. Keller
R371 Discovery Miles 3 710 Out of stock
Thin Unsteady Heavy Jets (Hardcover): Joseph B. Keller, Mortimer Weitz Thin Unsteady Heavy Jets (Hardcover)
Joseph B. Keller, Mortimer Weitz
R732 Discovery Miles 7 320 Out of stock
Diffraction by a Semi-infinite Screen With a Rounded End (Hardcover): Demetrios G. Magiros, Demetrios G Magrios, Joseph B.... Diffraction by a Semi-infinite Screen With a Rounded End (Hardcover)
Demetrios G. Magiros, Demetrios G Magrios, Joseph B. Keller
R729 Discovery Miles 7 290 Out of stock
Diffraction by a Spheroid (Hardcover): Bertram Levy, Joseph B. Keller Diffraction by a Spheroid (Hardcover)
Bertram Levy, Joseph B. Keller
R732 Discovery Miles 7 320 Out of stock
Diffraction by a Smooth Object (Hardcover): Bertram Levy, Bertram R Levy Keller, Joseph B. Keller Diffraction by a Smooth Object (Hardcover)
Bertram Levy, Bertram R Levy Keller, Joseph B. Keller
R810 Discovery Miles 8 100 Out of stock
Determination of Reflected and Transmitted Fields by Geometrical Optics (Hardcover): Joseph B. Keller, Herbert Keller Determination of Reflected and Transmitted Fields by Geometrical Optics (Hardcover)
Joseph B. Keller, Herbert Keller
R729 Discovery Miles 7 290 Out of stock
Multiple Diffraction by an Aperture in a Hard Screen (Hardcover): Samuel N Karp, Joseph B. Keller Multiple Diffraction by an Aperture in a Hard Screen (Hardcover)
Samuel N Karp, Joseph B. Keller
R729 Discovery Miles 7 290 Out of stock
Asymptotic Evaluation of the Field at a Caustic (Hardcover): Irvin W Kay, Joseph B. Keller Asymptotic Evaluation of the Field at a Caustic (Hardcover)
Irvin W Kay, Joseph B. Keller
R729 Discovery Miles 7 290 Out of stock
Decay Exponents and Diffraction Coefficients for Surface Waves on Surfaces of Non-Constant Curvature (Hardcover): Joseph B.... Decay Exponents and Diffraction Coefficients for Surface Waves on Surfaces of Non-Constant Curvature (Hardcover)
Joseph B. Keller, Bertram Levy
R734 Discovery Miles 7 340 Out of stock
The Shift of the Shadow Boundary and the Scattering Cross Section of an Opaque Object (Hardcover): Joseph B. Keller, S Rubinow The Shift of the Shadow Boundary and the Scattering Cross Section of an Opaque Object (Hardcover)
Joseph B. Keller, S Rubinow
R729 Discovery Miles 7 290 Out of stock
Excitation and Propagation of Surface Waves (Hardcover): Joseph B. Keller, Frank C Karal Excitation and Propagation of Surface Waves (Hardcover)
Joseph B. Keller, Frank C Karal
R729 Discovery Miles 7 290 Out of stock
Spherical, Cylindrical and One-dimensional Flows of Compressible Fluids (Hardcover): Joseph B. Keller Spherical, Cylindrical and One-dimensional Flows of Compressible Fluids (Hardcover)
Joseph B. Keller
R731 Discovery Miles 7 310 Out of stock
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