Compressible Fluid Flow and Systems of Conservation Laws in Several Space Variables - Info and Reading Options
By Andrew Majda


"Compressible Fluid Flow and Systems of Conservation Laws in Several Space Variables" was published by Springer-Verlag in 1984 - New York, the book is classified in Science genre, it has 159 pages and the language of the book is English.
“Compressible Fluid Flow and Systems of Conservation Laws in Several Space Variables” Metadata:
- Title: ➤ Compressible Fluid Flow and Systems of Conservation Laws in Several Space Variables
- Author: Andrew Majda
- Language: English
- Number of Pages: 159
- Is Family Friendly: Yes - No Mature Content
- Publisher: Springer-Verlag
- Publish Date: 1984
- Publish Location: New York
- Genres: Science
“Compressible Fluid Flow and Systems of Conservation Laws in Several Space Variables” Subjects and Themes:
- Subjects: ➤ Compressibility - Conservation laws (Mathematics) - Fluid dynamics - Variables (Mathematics) - Conservation laws (physics) - Physics
Edition Specifications:
- Pagination: viii, 159 p. ;
Edition Identifiers:
- Google Books ID: 3ItbIwkt0eMC
- The Open Library ID: OL2848417M - OL5360254W
- Online Computer Library Center (OCLC) ID: 10823580
- Library of Congress Control Number (LCCN): 84010601
- ISBN-13: 9780387960371
- ISBN-10: 0387960376
- All ISBNs: 0387960376 - 9780387960371
AI-generated Review of “Compressible Fluid Flow and Systems of Conservation Laws in Several Space Variables”:
Snippets and Summary:
Conservation laws arise from the modeling of physical processes through the following three steps: 1) The appropriate physical balance laws are derived for m-phy- t cal quantities, ul""'~ with u = (ul' ... ,u ) and u(x,t) defined m for x = ...
"Compressible Fluid Flow and Systems of Conservation Laws in Several Space Variables" Description:
Google Books:
Conservation laws arise from the modeling of physical processes through the following three steps: 1) The appropriate physical balance laws are derived for m-phy- t cal quantities, ul""'~ with u = (ul' ... ,u ) and u(x,t) defined m for x = (xl""'~) E RN (N = 1,2, or 3), t > 0 and with the values m u(x,t) lying in an open subset, G, of R , the state space. The state space G arises because physical quantities such as the density or total energy should always be positive; thus the values of u are often con strained to an open set G. 2) The flux functions appearing in these balance laws are idealized through prescribed nonlinear functions, F.(u), mapping G into J j = 1, ..• ,N while source terms are defined by S(u,x,t) with S a given smooth function of these arguments with values in Rm. In parti- lar, the detailed microscopic effects of diffusion and dissipation are ignored. 3) A generalized version of the principle of virtual work is applied (see Antman [1]). The formal result of applying the three steps (1)-(3) is that the m physical quantities u define a weak solution of an m x m system of conservation laws, o I + N(Wt'u + r W ·F.(u) + W·S(u,x,t))dxdt (1.1) R xR j=l Xj J for all W E C~(RN x R+), W(x,t) E Rm.
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