Fluid dynamics.: Part 1, Classical fluid dynamics /
This is the first book in a four-part series designed to give a comprehensive and coherent description of fluid dynamics, starting with chapters on classical theory suitable for an introductory undergraduate lecture course, and then progressing through more advanced material up to the level of moder...
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Hauptverfasser: | , |
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Format: | Elektronisch E-Book |
Sprache: | English |
Veröffentlicht: |
Oxford :
Oxford University Press,
2014.
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Online-Zugang: | Volltext |
Zusammenfassung: | This is the first book in a four-part series designed to give a comprehensive and coherent description of fluid dynamics, starting with chapters on classical theory suitable for an introductory undergraduate lecture course, and then progressing through more advanced material up to the level of modern research in the field. |
Beschreibung: | 1 online resource |
Bibliographie: | Includes bibliographical references and index. |
ISBN: | 9780191503962 0191503967 9780191761607 0191761605 |
Internformat
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520 | 8 | |a This is the first book in a four-part series designed to give a comprehensive and coherent description of fluid dynamics, starting with chapters on classical theory suitable for an introductory undergraduate lecture course, and then progressing through more advanced material up to the level of modern research in the field. | |
504 | |a Includes bibliographical references and index. | ||
505 | 0 | |a Cover -- Preface -- Contents -- Introduction -- 1 Fundamentals of Fluid Dynamics -- 1.1 The Continuum Hypothesis -- 1.2 Forces Acting on a Fluid -- 1.2.1 Surface forces -- 1.2.2 The concept of a fluid -- 1.3 Thermodynamic Relations -- 1.3.1 The First Law of Thermodynamics -- 1.3.2 Enthalpy and entropy -- Exercises 1 -- 1.4 Kinematics of the Flow Field -- 1.4.1 Eulerian approach -- 1.4.2 Streamlines and pathlines -- 1.4.3 Vorticity -- 1.4.4 Circulation -- Exercises 2 -- 1.4.5 Rate-of-strain tensor -- 1.5 Constitutive Equation -- Exercises 3 | |
505 | 8 | |a ""1.6 Equations of Motion""""1.6.1 Continuity equation in Eulerian variables""; ""1.6.2 Momentum equation""; ""1.6.3 The energy equation""; ""1.7 The Navier�Stokes Equations""; ""1.7.1 Incompressible fluid flows""; ""1.7.2 Compressible fluid flows""; ""1.7.3 Integral momentum equation""; ""1.7.4 Similarity rules in fluid dynamics""; ""Exercises 4""; ""1.8 Curvilinear Coordinates""; ""Exercises 5""; ""2 Solutions of the Navier�Stokes Equations""; ""2.1 Exact Solutions""; ""2.1.1 Couette flow""; ""2.1.2 Poiseuille flow""; ""2.1.3 Hagen�Poiseuille flow"" | |
505 | 8 | |a ""2.1.4 Flow between two coaxial cylinders""""2.1.5 Impulsively started flat plate""; ""2.1.6 Dissipation of the potential vortex""; ""2.1.7 K�arm�an flow""; ""Exercises 6""; ""2.2 Numerical Solutions""; ""2.2.1 Viscous flow past a circular cylinder""; ""2.2.2 Lid-driven cavity flow""; ""3 Inviscid Incompressible Flows""; ""3.1 Integrals of Motion""; ""3.1.1 Bernoulli integral""; ""3.1.2 Kelvin�s Circulation Theorem""; ""3.1.3 Cauchy�Lagrange integral""; ""Exercises 7""; ""3.2 Potential Flows""; ""3.2.1 Potential flow past a sphere""; ""3.2.2 Virtual mass"" | |
505 | 8 | |a 3.3 Two-Dimensional Flows3.3.1 Stream function -- Exercises 8 -- 3.4 Complex Potential -- 3.4.1 Boundary-value problem for the complex potential -- 3.4.2 Flow past a circular cylinder -- 3.4.3 Force on a cylinder -- Exercises 9 -- 3.5 The Method of Conformal Mapping -- 3.5.1 Mapping with a linear function -- 3.5.2 Conformal mapping -- 3.5.3 Mapping with the power function -- 3.5.4 Linear fractional transformation -- 3.5.5 Application to fluid dynamics -- 3.5.6 Circular cylinder with an angle of attack -- Exercises 10 -- 3.5.7 Joukovskii transformation | |
505 | 8 | |a ""3.6 Flat Plate at an Incidence""""3.7 Joukovskii Aerofoils""; ""Exercises 11""; ""3.8 Free Streamline Theory""; ""3.8.1 Kirchhoff model""; ""3.8.2 Two-dimensional inviscid jets""; ""Exercises 12""; ""4 Elements of Gasdynamics""; ""4.1 General Properties of Compressible Flows""; ""4.1.1 Euler equations for gas flows""; ""4.1.2 Piston theory""; ""4.2 Integrals of Motion""; ""4.2.1 Bernoulli�s integral""; ""4.2.2 Entropy conservation law""; ""4.2.3 Kelvin�s Circulation Theorem""; ""4.2.4 Crocco�s formula""; ""4.2.5 D�Alembert�s paradox""; ""Exercises 13"" | |
650 | 0 | |a Fluid dynamics. |0 http://id.loc.gov/authorities/subjects/sh85049376 | |
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author | Ruban, A. I. (Anatoliĭ Ivanovich), 1943- Gajjar, J. S. B. |
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author_facet | Ruban, A. I. (Anatoliĭ Ivanovich), 1943- Gajjar, J. S. B. |
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contents | Cover -- Preface -- Contents -- Introduction -- 1 Fundamentals of Fluid Dynamics -- 1.1 The Continuum Hypothesis -- 1.2 Forces Acting on a Fluid -- 1.2.1 Surface forces -- 1.2.2 The concept of a fluid -- 1.3 Thermodynamic Relations -- 1.3.1 The First Law of Thermodynamics -- 1.3.2 Enthalpy and entropy -- Exercises 1 -- 1.4 Kinematics of the Flow Field -- 1.4.1 Eulerian approach -- 1.4.2 Streamlines and pathlines -- 1.4.3 Vorticity -- 1.4.4 Circulation -- Exercises 2 -- 1.4.5 Rate-of-strain tensor -- 1.5 Constitutive Equation -- Exercises 3 ""1.6 Equations of Motion""""1.6.1 Continuity equation in Eulerian variables""; ""1.6.2 Momentum equation""; ""1.6.3 The energy equation""; ""1.7 The Navier�Stokes Equations""; ""1.7.1 Incompressible fluid flows""; ""1.7.2 Compressible fluid flows""; ""1.7.3 Integral momentum equation""; ""1.7.4 Similarity rules in fluid dynamics""; ""Exercises 4""; ""1.8 Curvilinear Coordinates""; ""Exercises 5""; ""2 Solutions of the Navier�Stokes Equations""; ""2.1 Exact Solutions""; ""2.1.1 Couette flow""; ""2.1.2 Poiseuille flow""; ""2.1.3 Hagen�Poiseuille flow"" ""2.1.4 Flow between two coaxial cylinders""""2.1.5 Impulsively started flat plate""; ""2.1.6 Dissipation of the potential vortex""; ""2.1.7 K�arm�an flow""; ""Exercises 6""; ""2.2 Numerical Solutions""; ""2.2.1 Viscous flow past a circular cylinder""; ""2.2.2 Lid-driven cavity flow""; ""3 Inviscid Incompressible Flows""; ""3.1 Integrals of Motion""; ""3.1.1 Bernoulli integral""; ""3.1.2 Kelvin�s Circulation Theorem""; ""3.1.3 Cauchy�Lagrange integral""; ""Exercises 7""; ""3.2 Potential Flows""; ""3.2.1 Potential flow past a sphere""; ""3.2.2 Virtual mass"" 3.3 Two-Dimensional Flows3.3.1 Stream function -- Exercises 8 -- 3.4 Complex Potential -- 3.4.1 Boundary-value problem for the complex potential -- 3.4.2 Flow past a circular cylinder -- 3.4.3 Force on a cylinder -- Exercises 9 -- 3.5 The Method of Conformal Mapping -- 3.5.1 Mapping with a linear function -- 3.5.2 Conformal mapping -- 3.5.3 Mapping with the power function -- 3.5.4 Linear fractional transformation -- 3.5.5 Application to fluid dynamics -- 3.5.6 Circular cylinder with an angle of attack -- Exercises 10 -- 3.5.7 Joukovskii transformation ""3.6 Flat Plate at an Incidence""""3.7 Joukovskii Aerofoils""; ""Exercises 11""; ""3.8 Free Streamline Theory""; ""3.8.1 Kirchhoff model""; ""3.8.2 Two-dimensional inviscid jets""; ""Exercises 12""; ""4 Elements of Gasdynamics""; ""4.1 General Properties of Compressible Flows""; ""4.1.1 Euler equations for gas flows""; ""4.1.2 Piston theory""; ""4.2 Integrals of Motion""; ""4.2.1 Bernoulli�s integral""; ""4.2.2 Entropy conservation law""; ""4.2.3 Kelvin�s Circulation Theorem""; ""4.2.4 Crocco�s formula""; ""4.2.5 D�Alembert�s paradox""; ""Exercises 13"" |
ctrlnum | (OCoLC)881289732 |
dewey-full | 532 |
dewey-hundreds | 500 - Natural sciences and mathematics |
dewey-ones | 532 - Fluid mechanics |
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dewey-tens | 530 - Physics |
discipline | Physik |
format | Electronic eBook |
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publisher | Oxford University Press, |
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spelling | Ruban, A. I. (Anatoliĭ Ivanovich), 1943- author. https://id.oclc.org/worldcat/entity/E39PCjHPFHJMgPGXygDgFmGM8C http://id.loc.gov/authorities/names/n2007030174 Fluid dynamics. Part 1, Classical fluid dynamics / by Anatoly I. Ruban, Jitesh S.B. Gajjar. Classical fluid dynamics Oxford : Oxford University Press, 2014. 1 online resource text txt rdacontent computer c rdamedia online resource cr rdacarrier Print version record. This is the first book in a four-part series designed to give a comprehensive and coherent description of fluid dynamics, starting with chapters on classical theory suitable for an introductory undergraduate lecture course, and then progressing through more advanced material up to the level of modern research in the field. Includes bibliographical references and index. Cover -- Preface -- Contents -- Introduction -- 1 Fundamentals of Fluid Dynamics -- 1.1 The Continuum Hypothesis -- 1.2 Forces Acting on a Fluid -- 1.2.1 Surface forces -- 1.2.2 The concept of a fluid -- 1.3 Thermodynamic Relations -- 1.3.1 The First Law of Thermodynamics -- 1.3.2 Enthalpy and entropy -- Exercises 1 -- 1.4 Kinematics of the Flow Field -- 1.4.1 Eulerian approach -- 1.4.2 Streamlines and pathlines -- 1.4.3 Vorticity -- 1.4.4 Circulation -- Exercises 2 -- 1.4.5 Rate-of-strain tensor -- 1.5 Constitutive Equation -- Exercises 3 ""1.6 Equations of Motion""""1.6.1 Continuity equation in Eulerian variables""; ""1.6.2 Momentum equation""; ""1.6.3 The energy equation""; ""1.7 The Navierâ€?Stokes Equations""; ""1.7.1 Incompressible fluid flows""; ""1.7.2 Compressible fluid flows""; ""1.7.3 Integral momentum equation""; ""1.7.4 Similarity rules in fluid dynamics""; ""Exercises 4""; ""1.8 Curvilinear Coordinates""; ""Exercises 5""; ""2 Solutions of the Navierâ€?Stokes Equations""; ""2.1 Exact Solutions""; ""2.1.1 Couette flow""; ""2.1.2 Poiseuille flow""; ""2.1.3 Hagenâ€?Poiseuille flow"" ""2.1.4 Flow between two coaxial cylinders""""2.1.5 Impulsively started flat plate""; ""2.1.6 Dissipation of the potential vortex""; ""2.1.7 KÂ?armÂ?an flow""; ""Exercises 6""; ""2.2 Numerical Solutions""; ""2.2.1 Viscous flow past a circular cylinder""; ""2.2.2 Lid-driven cavity flow""; ""3 Inviscid Incompressible Flows""; ""3.1 Integrals of Motion""; ""3.1.1 Bernoulli integral""; ""3.1.2 Kelvinâ€?s Circulation Theorem""; ""3.1.3 Cauchyâ€?Lagrange integral""; ""Exercises 7""; ""3.2 Potential Flows""; ""3.2.1 Potential flow past a sphere""; ""3.2.2 Virtual mass"" 3.3 Two-Dimensional Flows3.3.1 Stream function -- Exercises 8 -- 3.4 Complex Potential -- 3.4.1 Boundary-value problem for the complex potential -- 3.4.2 Flow past a circular cylinder -- 3.4.3 Force on a cylinder -- Exercises 9 -- 3.5 The Method of Conformal Mapping -- 3.5.1 Mapping with a linear function -- 3.5.2 Conformal mapping -- 3.5.3 Mapping with the power function -- 3.5.4 Linear fractional transformation -- 3.5.5 Application to fluid dynamics -- 3.5.6 Circular cylinder with an angle of attack -- Exercises 10 -- 3.5.7 Joukovskii transformation ""3.6 Flat Plate at an Incidence""""3.7 Joukovskii Aerofoils""; ""Exercises 11""; ""3.8 Free Streamline Theory""; ""3.8.1 Kirchhoff model""; ""3.8.2 Two-dimensional inviscid jets""; ""Exercises 12""; ""4 Elements of Gasdynamics""; ""4.1 General Properties of Compressible Flows""; ""4.1.1 Euler equations for gas flows""; ""4.1.2 Piston theory""; ""4.2 Integrals of Motion""; ""4.2.1 Bernoulliâ€?s integral""; ""4.2.2 Entropy conservation law""; ""4.2.3 Kelvinâ€?s Circulation Theorem""; ""4.2.4 Croccoâ€?s formula""; ""4.2.5 Dâ€?Alembertâ€?s paradox""; ""Exercises 13"" Fluid dynamics. http://id.loc.gov/authorities/subjects/sh85049376 Hydrodynamics https://id.nlm.nih.gov/mesh/D057446 Dynamique des fluides. TECHNOLOGY & ENGINEERING Hydraulics. bisacsh Fluid dynamics fast Gajjar, J. S. B., author. http://id.loc.gov/authorities/names/nr98044934 Print version: Ruban, A.I. (Anatoliĭ Ivanovich), 1943- Fluid dynamics. Part 1, Classical fluid dynamics 9780199681730 (OCoLC)872702194 FWS01 ZDB-4-EBA FWS_PDA_EBA https://search.ebscohost.com/login.aspx?direct=true&scope=site&db=nlebk&AN=783459 Volltext |
spellingShingle | Ruban, A. I. (Anatoliĭ Ivanovich), 1943- Gajjar, J. S. B. Fluid dynamics. Cover -- Preface -- Contents -- Introduction -- 1 Fundamentals of Fluid Dynamics -- 1.1 The Continuum Hypothesis -- 1.2 Forces Acting on a Fluid -- 1.2.1 Surface forces -- 1.2.2 The concept of a fluid -- 1.3 Thermodynamic Relations -- 1.3.1 The First Law of Thermodynamics -- 1.3.2 Enthalpy and entropy -- Exercises 1 -- 1.4 Kinematics of the Flow Field -- 1.4.1 Eulerian approach -- 1.4.2 Streamlines and pathlines -- 1.4.3 Vorticity -- 1.4.4 Circulation -- Exercises 2 -- 1.4.5 Rate-of-strain tensor -- 1.5 Constitutive Equation -- Exercises 3 ""1.6 Equations of Motion""""1.6.1 Continuity equation in Eulerian variables""; ""1.6.2 Momentum equation""; ""1.6.3 The energy equation""; ""1.7 The Navierâ€?Stokes Equations""; ""1.7.1 Incompressible fluid flows""; ""1.7.2 Compressible fluid flows""; ""1.7.3 Integral momentum equation""; ""1.7.4 Similarity rules in fluid dynamics""; ""Exercises 4""; ""1.8 Curvilinear Coordinates""; ""Exercises 5""; ""2 Solutions of the Navierâ€?Stokes Equations""; ""2.1 Exact Solutions""; ""2.1.1 Couette flow""; ""2.1.2 Poiseuille flow""; ""2.1.3 Hagenâ€?Poiseuille flow"" ""2.1.4 Flow between two coaxial cylinders""""2.1.5 Impulsively started flat plate""; ""2.1.6 Dissipation of the potential vortex""; ""2.1.7 KÂ?armÂ?an flow""; ""Exercises 6""; ""2.2 Numerical Solutions""; ""2.2.1 Viscous flow past a circular cylinder""; ""2.2.2 Lid-driven cavity flow""; ""3 Inviscid Incompressible Flows""; ""3.1 Integrals of Motion""; ""3.1.1 Bernoulli integral""; ""3.1.2 Kelvinâ€?s Circulation Theorem""; ""3.1.3 Cauchyâ€?Lagrange integral""; ""Exercises 7""; ""3.2 Potential Flows""; ""3.2.1 Potential flow past a sphere""; ""3.2.2 Virtual mass"" 3.3 Two-Dimensional Flows3.3.1 Stream function -- Exercises 8 -- 3.4 Complex Potential -- 3.4.1 Boundary-value problem for the complex potential -- 3.4.2 Flow past a circular cylinder -- 3.4.3 Force on a cylinder -- Exercises 9 -- 3.5 The Method of Conformal Mapping -- 3.5.1 Mapping with a linear function -- 3.5.2 Conformal mapping -- 3.5.3 Mapping with the power function -- 3.5.4 Linear fractional transformation -- 3.5.5 Application to fluid dynamics -- 3.5.6 Circular cylinder with an angle of attack -- Exercises 10 -- 3.5.7 Joukovskii transformation ""3.6 Flat Plate at an Incidence""""3.7 Joukovskii Aerofoils""; ""Exercises 11""; ""3.8 Free Streamline Theory""; ""3.8.1 Kirchhoff model""; ""3.8.2 Two-dimensional inviscid jets""; ""Exercises 12""; ""4 Elements of Gasdynamics""; ""4.1 General Properties of Compressible Flows""; ""4.1.1 Euler equations for gas flows""; ""4.1.2 Piston theory""; ""4.2 Integrals of Motion""; ""4.2.1 Bernoulliâ€?s integral""; ""4.2.2 Entropy conservation law""; ""4.2.3 Kelvinâ€?s Circulation Theorem""; ""4.2.4 Croccoâ€?s formula""; ""4.2.5 Dâ€?Alembertâ€?s paradox""; ""Exercises 13"" Fluid dynamics. http://id.loc.gov/authorities/subjects/sh85049376 Hydrodynamics https://id.nlm.nih.gov/mesh/D057446 Dynamique des fluides. TECHNOLOGY & ENGINEERING Hydraulics. bisacsh Fluid dynamics fast |
subject_GND | http://id.loc.gov/authorities/subjects/sh85049376 https://id.nlm.nih.gov/mesh/D057446 |
title | Fluid dynamics. |
title_alt | Classical fluid dynamics |
title_auth | Fluid dynamics. |
title_exact_search | Fluid dynamics. |
title_full | Fluid dynamics. Part 1, Classical fluid dynamics / by Anatoly I. Ruban, Jitesh S.B. Gajjar. |
title_fullStr | Fluid dynamics. Part 1, Classical fluid dynamics / by Anatoly I. Ruban, Jitesh S.B. Gajjar. |
title_full_unstemmed | Fluid dynamics. Part 1, Classical fluid dynamics / by Anatoly I. Ruban, Jitesh S.B. Gajjar. |
title_short | Fluid dynamics. |
title_sort | fluid dynamics classical fluid dynamics |
topic | Fluid dynamics. http://id.loc.gov/authorities/subjects/sh85049376 Hydrodynamics https://id.nlm.nih.gov/mesh/D057446 Dynamique des fluides. TECHNOLOGY & ENGINEERING Hydraulics. bisacsh Fluid dynamics fast |
topic_facet | Fluid dynamics. Hydrodynamics Dynamique des fluides. TECHNOLOGY & ENGINEERING Hydraulics. Fluid dynamics |
url | https://search.ebscohost.com/login.aspx?direct=true&scope=site&db=nlebk&AN=783459 |
work_keys_str_mv | AT rubanai fluiddynamicspart1 AT gajjarjsb fluiddynamicspart1 AT rubanai classicalfluiddynamics AT gajjarjsb classicalfluiddynamics |