Demystifying numerical models : step-by step modeling of engineering systems
3 Wind Power and Aerodynamics Systems3.1 Liquid Flow Systems; 3.2 Basic Knowledge and Terminology of Wind Turbine; 3.3 Blade Element Theory; 3.3.1 Axial Force and Momentum Change; 3.3.2 Rotating Angular Momentum; 3.3.3 Blade Element and Relative Velocity; 3.3.4 Aerodynamic Lift and Drag Forces; 3.3....
Ausführliche Beschreibung
Autor*in: |
Mo, John P. T. [verfasserIn] Cheung, Chi Pok [verfasserIn] Das, Raj [verfasserIn] |
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Format: |
E-Book |
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Sprache: |
Englisch |
Erschienen: |
Kidlington, Oxford Cambridge, MA: Butterworth-Heinemann ; 2019 |
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Schlagwörter: |
TECHNOLOGY & ENGINEERING ; Engineering (General) |
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Formangabe: |
Electronic books |
Anmerkung: |
Includes bibliographical references and index |
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Umfang: |
1 Online-Ressource (1 online resource) |
Links: | |
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ISBN: |
0-08-101756-1 |
Katalog-ID: |
1685485316 |
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245 | 1 | 0 | |a Demystifying numerical models |b step-by step modeling of engineering systems |c John P.T. Mo, Sherman C.P. Cheung, Raj Das |
264 | 1 | |a Kidlington, Oxford |a Cambridge, MA |b Butterworth-Heinemann |c [2019] | |
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520 | |a 3 Wind Power and Aerodynamics Systems3.1 Liquid Flow Systems; 3.2 Basic Knowledge and Terminology of Wind Turbine; 3.3 Blade Element Theory; 3.3.1 Axial Force and Momentum Change; 3.3.2 Rotating Angular Momentum; 3.3.3 Blade Element and Relative Velocity; 3.3.4 Aerodynamic Lift and Drag Forces; 3.3.5 Losses at the Tip and Overall Power Output; 3.4 Blade Design and Solving Procedures; 3.4.1 Overall Blade Design Procedure; 3.4.2 Iterative Procedure for Solving the BEM; 3.4.3 Power Output of a Twisted and Tapered Blad (NACA S809); References; 4 Steady-State Heat Conduction Systems | ||
520 | |a 4.1 Application of Heat Transfer Process4.2 The Three Modes of Heat Transfer; 4.2.1 Conduction; 4.2.2 Convection; 4.2.3 Radiation; 4.3 Steady-State Conduction Problems; 4.3.1 Governing Equations; 4.4 Boundary Conditions for Heat Conduction Problems; 4.4.1 Constant Temperature at Specific Surfaces; 4.4.2 Adiabatic Condition at Well-Insulated Surfaces; 4.4.3 Surfaces Subjected to Convection or Radiation Heat Transfer; 4.5 Finite Difference Approach; 4.5.1 First-Order Finite Difference Approximation; 4.5.2 Second-Order Finite Difference Approximation; 4.6 One-Dimensional Steady-State Conduction | ||
520 | |a 4.6.1 One-Dimensional Conduction With Internal Heat Source4.6.2 Formulation for the Boundary Conditions; 4.6.3 Heat Dissipation of a Hot Plate; Reference; 5 Two-Dimensional and Transient Heat Conduction; 5.1 Importance of Two-Dimensional and Transient Heat Conduction Problems; 5.2 Direct Versus Iterative Methods; 5.3 Two-Dimensional Steady State Heat Conduction; 5.3.1 Two-Dimensional Discretization; 5.3.2 Two-Dimensional Heat Conduction in a Square Steel Column; 5.4 Time-Dependent Heat Conduction Problem; 5.4.1 Implicit and Explicit Time Discretization | ||
520 | |a 5.4.2 Stability and Choice of Time Step for Explicit Method5.4.3 Transient Heat Conduction in a One-Dimensional Steel Bar; 6 Electrical Power Systems; 6.1 Electrical Systems; 6.2 Analysis of DC Motor Circuits; 6.3 Analysis of RLC Circuit; 6.4 Motor Driven Position Control System; 7 Industrial Systems; 7.1 Industrial Systems; 7.2 Transport Systems Modeling; 7.2.1 Transport on a Plane (Two-Dimensional Space); 7.2.2 Transport in Rectilinear Layout; 7.2.3 Transport in a Building; 7.3 Inventory Control; 7.3.1 Replenish Directly From a Stock Pile; 7.3.2 Varying Demand | ||
520 | |a Front Cover; Demystifying Numerical Models; Copyright Page; Contents; Preface; 1 Introduction to Engineering Systems; 1.1 Systems Engineering Principles; 1.1.1 Integrity; 1.1.2 Stability; 1.1.3 Compatibility; 1.1.4 Safety; 1.1.5 Sustainability; 1.2 Nature of Engineering Systems; 2 Basic Numerical Techniques; 2.1 Introduction; 2.2 Roots of Equations; 2.2.1 Direct Search Method; 2.2.2 Bisection Method; 2.2.3 Newton-Raphson Method; 2.3 Differential Equations; 2.3.1 Euler's Method; 2.3.2 Modified Euler's Method; 2.3.3 Runge-Kutta Method Second Order; 2.3.4 Runge-Kutta Method Fourth Order | ||
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0081017561 electronic book 0-08-101756-1 (DE-627)1685485316 (DE-599)KEP027278972 (EBP)027278972 (ELSEVIER)on1054374455 DE-627 eng DE-627 rda eng XA-GB TA330 TA168 TEC 035000 bisacsh TEC 009000 bisacsh TEC 009000 bisacsh TEC 035000 bisacsh Mo, John P. T. verfasserin aut Demystifying numerical models step-by step modeling of engineering systems John P.T. Mo, Sherman C.P. Cheung, Raj Das Kidlington, Oxford Cambridge, MA Butterworth-Heinemann [2019] 1 Online-Ressource (1 online resource) Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Includes bibliographical references and index 3 Wind Power and Aerodynamics Systems3.1 Liquid Flow Systems; 3.2 Basic Knowledge and Terminology of Wind Turbine; 3.3 Blade Element Theory; 3.3.1 Axial Force and Momentum Change; 3.3.2 Rotating Angular Momentum; 3.3.3 Blade Element and Relative Velocity; 3.3.4 Aerodynamic Lift and Drag Forces; 3.3.5 Losses at the Tip and Overall Power Output; 3.4 Blade Design and Solving Procedures; 3.4.1 Overall Blade Design Procedure; 3.4.2 Iterative Procedure for Solving the BEM; 3.4.3 Power Output of a Twisted and Tapered Blad (NACA S809); References; 4 Steady-State Heat Conduction Systems 4.1 Application of Heat Transfer Process4.2 The Three Modes of Heat Transfer; 4.2.1 Conduction; 4.2.2 Convection; 4.2.3 Radiation; 4.3 Steady-State Conduction Problems; 4.3.1 Governing Equations; 4.4 Boundary Conditions for Heat Conduction Problems; 4.4.1 Constant Temperature at Specific Surfaces; 4.4.2 Adiabatic Condition at Well-Insulated Surfaces; 4.4.3 Surfaces Subjected to Convection or Radiation Heat Transfer; 4.5 Finite Difference Approach; 4.5.1 First-Order Finite Difference Approximation; 4.5.2 Second-Order Finite Difference Approximation; 4.6 One-Dimensional Steady-State Conduction 4.6.1 One-Dimensional Conduction With Internal Heat Source4.6.2 Formulation for the Boundary Conditions; 4.6.3 Heat Dissipation of a Hot Plate; Reference; 5 Two-Dimensional and Transient Heat Conduction; 5.1 Importance of Two-Dimensional and Transient Heat Conduction Problems; 5.2 Direct Versus Iterative Methods; 5.3 Two-Dimensional Steady State Heat Conduction; 5.3.1 Two-Dimensional Discretization; 5.3.2 Two-Dimensional Heat Conduction in a Square Steel Column; 5.4 Time-Dependent Heat Conduction Problem; 5.4.1 Implicit and Explicit Time Discretization 5.4.2 Stability and Choice of Time Step for Explicit Method5.4.3 Transient Heat Conduction in a One-Dimensional Steel Bar; 6 Electrical Power Systems; 6.1 Electrical Systems; 6.2 Analysis of DC Motor Circuits; 6.3 Analysis of RLC Circuit; 6.4 Motor Driven Position Control System; 7 Industrial Systems; 7.1 Industrial Systems; 7.2 Transport Systems Modeling; 7.2.1 Transport on a Plane (Two-Dimensional Space); 7.2.2 Transport in Rectilinear Layout; 7.2.3 Transport in a Building; 7.3 Inventory Control; 7.3.1 Replenish Directly From a Stock Pile; 7.3.2 Varying Demand Front Cover; Demystifying Numerical Models; Copyright Page; Contents; Preface; 1 Introduction to Engineering Systems; 1.1 Systems Engineering Principles; 1.1.1 Integrity; 1.1.2 Stability; 1.1.3 Compatibility; 1.1.4 Safety; 1.1.5 Sustainability; 1.2 Nature of Engineering Systems; 2 Basic Numerical Techniques; 2.1 Introduction; 2.2 Roots of Equations; 2.2.1 Direct Search Method; 2.2.2 Bisection Method; 2.2.3 Newton-Raphson Method; 2.3 Differential Equations; 2.3.1 Euler's Method; 2.3.2 Modified Euler's Method; 2.3.3 Runge-Kutta Method Second Order; 2.3.4 Runge-Kutta Method Fourth Order Engineering mathematics Systems engineering TECHNOLOGY & ENGINEERING ; Engineering (General) TECHNOLOGY & ENGINEERING ; Reference Systems engineering Engineering mathematics Ingénierie des systèmes (CaQQLa)201-0050710 Systems engineering (OCoLC)fst01141455 Mathématiques de l'ingénieur (CaQQLa)201-0021991 Electronic books Cheung, Chi Pok verfasserin aut Das, Raj verfasserin aut 0081009755 Erscheint auch als Druck-Ausgabe Mo, John P.T Demystifying numerical models Saint Louis : Elsevier Science & Technology, 2018 0081009755 9780081009758 https://www.sciencedirect.com/science/book/9780081009758 X:ELSEVIER Verlag lizenzpflichtig Volltext (DE-627)1039900313 GBV-33-Freedom 2022 GBV-33-EBS-MRI BSZ-33-EBS-HSAA GBV-33-EBS-ZHB GBV-33-Freedom 2021 ZDB-33-EBS ZDB-33-EGE 2018 ZDB-33-ESD GBV-33-EBS-HST BSZ-33-EBS-C1UB GBV_ILN_23 ISIL_DE-830 SYSFLAG_1 GBV_KXP GBV_ILN_105 ISIL_DE-841 GBV_ILN_132 ISIL_DE-959 GBV_ILN_185 ISIL_DE-Sra5 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2020 ISIL_DE-Ch1 GBV_ILN_2111 ISIL_DE-944 BO 045F 620.001/1 045F 620.001/51 045F 620.00420285 23 01 0830 1847614310 ACQ Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots i z 06-02-19 105 01 0841 4074466147 OLR-ELV-TEST Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. Testzugang ZHB Lübeck z 26-02-22 132 01 0959 4500001719 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. Zeitlich begrenzte Lizenzierung k 13-03-24 185 01 3519 4514748722 OLR-EBS Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. 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Zugriff von außerhalb nur für HCU-Angehörige möglich https://www.sciencedirect.com/science/book/9780081009758 2020 01 DE-Ch1 https://www.sciencedirect.com/science/book/9780081009758 2111 02 DE-944 https://www.sciencedirect.com/science/book/9780081009758 132 01 0959 00 EBooks Elsevier Engineering 23 01 0830 2018-01865, 2018-01866, 2018-01867, 2018-01868, 2018-01869 23 01 0830 ACQ 23 01 0830 olr-else 23 01 0830 olr-else2 105 01 0841 OLR-ELV-TEST 132 01 0959 EBS Elsevier 185 01 3519 OLR-EBS 370 01 4370 EBS Elsevier |
spelling |
0081017561 electronic book 0-08-101756-1 (DE-627)1685485316 (DE-599)KEP027278972 (EBP)027278972 (ELSEVIER)on1054374455 DE-627 eng DE-627 rda eng XA-GB TA330 TA168 TEC 035000 bisacsh TEC 009000 bisacsh TEC 009000 bisacsh TEC 035000 bisacsh Mo, John P. T. verfasserin aut Demystifying numerical models step-by step modeling of engineering systems John P.T. Mo, Sherman C.P. Cheung, Raj Das Kidlington, Oxford Cambridge, MA Butterworth-Heinemann [2019] 1 Online-Ressource (1 online resource) Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Includes bibliographical references and index 3 Wind Power and Aerodynamics Systems3.1 Liquid Flow Systems; 3.2 Basic Knowledge and Terminology of Wind Turbine; 3.3 Blade Element Theory; 3.3.1 Axial Force and Momentum Change; 3.3.2 Rotating Angular Momentum; 3.3.3 Blade Element and Relative Velocity; 3.3.4 Aerodynamic Lift and Drag Forces; 3.3.5 Losses at the Tip and Overall Power Output; 3.4 Blade Design and Solving Procedures; 3.4.1 Overall Blade Design Procedure; 3.4.2 Iterative Procedure for Solving the BEM; 3.4.3 Power Output of a Twisted and Tapered Blad (NACA S809); References; 4 Steady-State Heat Conduction Systems 4.1 Application of Heat Transfer Process4.2 The Three Modes of Heat Transfer; 4.2.1 Conduction; 4.2.2 Convection; 4.2.3 Radiation; 4.3 Steady-State Conduction Problems; 4.3.1 Governing Equations; 4.4 Boundary Conditions for Heat Conduction Problems; 4.4.1 Constant Temperature at Specific Surfaces; 4.4.2 Adiabatic Condition at Well-Insulated Surfaces; 4.4.3 Surfaces Subjected to Convection or Radiation Heat Transfer; 4.5 Finite Difference Approach; 4.5.1 First-Order Finite Difference Approximation; 4.5.2 Second-Order Finite Difference Approximation; 4.6 One-Dimensional Steady-State Conduction 4.6.1 One-Dimensional Conduction With Internal Heat Source4.6.2 Formulation for the Boundary Conditions; 4.6.3 Heat Dissipation of a Hot Plate; Reference; 5 Two-Dimensional and Transient Heat Conduction; 5.1 Importance of Two-Dimensional and Transient Heat Conduction Problems; 5.2 Direct Versus Iterative Methods; 5.3 Two-Dimensional Steady State Heat Conduction; 5.3.1 Two-Dimensional Discretization; 5.3.2 Two-Dimensional Heat Conduction in a Square Steel Column; 5.4 Time-Dependent Heat Conduction Problem; 5.4.1 Implicit and Explicit Time Discretization 5.4.2 Stability and Choice of Time Step for Explicit Method5.4.3 Transient Heat Conduction in a One-Dimensional Steel Bar; 6 Electrical Power Systems; 6.1 Electrical Systems; 6.2 Analysis of DC Motor Circuits; 6.3 Analysis of RLC Circuit; 6.4 Motor Driven Position Control System; 7 Industrial Systems; 7.1 Industrial Systems; 7.2 Transport Systems Modeling; 7.2.1 Transport on a Plane (Two-Dimensional Space); 7.2.2 Transport in Rectilinear Layout; 7.2.3 Transport in a Building; 7.3 Inventory Control; 7.3.1 Replenish Directly From a Stock Pile; 7.3.2 Varying Demand Front Cover; Demystifying Numerical Models; Copyright Page; Contents; Preface; 1 Introduction to Engineering Systems; 1.1 Systems Engineering Principles; 1.1.1 Integrity; 1.1.2 Stability; 1.1.3 Compatibility; 1.1.4 Safety; 1.1.5 Sustainability; 1.2 Nature of Engineering Systems; 2 Basic Numerical Techniques; 2.1 Introduction; 2.2 Roots of Equations; 2.2.1 Direct Search Method; 2.2.2 Bisection Method; 2.2.3 Newton-Raphson Method; 2.3 Differential Equations; 2.3.1 Euler's Method; 2.3.2 Modified Euler's Method; 2.3.3 Runge-Kutta Method Second Order; 2.3.4 Runge-Kutta Method Fourth Order Engineering mathematics Systems engineering TECHNOLOGY & ENGINEERING ; Engineering (General) TECHNOLOGY & ENGINEERING ; Reference Systems engineering Engineering mathematics Ingénierie des systèmes (CaQQLa)201-0050710 Systems engineering (OCoLC)fst01141455 Mathématiques de l'ingénieur (CaQQLa)201-0021991 Electronic books Cheung, Chi Pok verfasserin aut Das, Raj verfasserin aut 0081009755 Erscheint auch als Druck-Ausgabe Mo, John P.T Demystifying numerical models Saint Louis : Elsevier Science & Technology, 2018 0081009755 9780081009758 https://www.sciencedirect.com/science/book/9780081009758 X:ELSEVIER Verlag lizenzpflichtig Volltext (DE-627)1039900313 GBV-33-Freedom 2022 GBV-33-EBS-MRI BSZ-33-EBS-HSAA GBV-33-EBS-ZHB GBV-33-Freedom 2021 ZDB-33-EBS ZDB-33-EGE 2018 ZDB-33-ESD GBV-33-EBS-HST BSZ-33-EBS-C1UB GBV_ILN_23 ISIL_DE-830 SYSFLAG_1 GBV_KXP GBV_ILN_105 ISIL_DE-841 GBV_ILN_132 ISIL_DE-959 GBV_ILN_185 ISIL_DE-Sra5 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2020 ISIL_DE-Ch1 GBV_ILN_2111 ISIL_DE-944 BO 045F 620.001/1 045F 620.001/51 045F 620.00420285 23 01 0830 1847614310 ACQ Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots i z 06-02-19 105 01 0841 4074466147 OLR-ELV-TEST Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. Testzugang ZHB Lübeck z 26-02-22 132 01 0959 4500001719 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. Zeitlich begrenzte Lizenzierung k 13-03-24 185 01 3519 4514748722 OLR-EBS Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. z 23-04-24 370 01 4370 4540279440 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. i z 20-06-24 2020 01 DE-Ch1 4520353661 00 --%%-- --%%-- n n Campuslizenz l01 03-05-24 2111 02 DE-944 4046038233 00 --%%-- E-Book Elsevier --%%-- n Elektronischer Volltext - Campuslizenz l01 27-01-22 23 01 0830 Elsevier EBook https://www.sciencedirect.com/science/book/9780081009758 105 01 0841 https://www.sciencedirect.com/science/book/9780081009758 132 01 0959 Zugriff nur für Angehörige der Hochschule Osnabrück im Hochschulnetz https://www.sciencedirect.com/science/book/9780081009758 185 01 3519 https://www.sciencedirect.com/science/book/9780081009758 370 01 4370 E-Book: Zugriff im HCU-Netz. Zugriff von außerhalb nur für HCU-Angehörige möglich https://www.sciencedirect.com/science/book/9780081009758 2020 01 DE-Ch1 https://www.sciencedirect.com/science/book/9780081009758 2111 02 DE-944 https://www.sciencedirect.com/science/book/9780081009758 132 01 0959 00 EBooks Elsevier Engineering 23 01 0830 2018-01865, 2018-01866, 2018-01867, 2018-01868, 2018-01869 23 01 0830 ACQ 23 01 0830 olr-else 23 01 0830 olr-else2 105 01 0841 OLR-ELV-TEST 132 01 0959 EBS Elsevier 185 01 3519 OLR-EBS 370 01 4370 EBS Elsevier |
allfields_unstemmed |
0081017561 electronic book 0-08-101756-1 (DE-627)1685485316 (DE-599)KEP027278972 (EBP)027278972 (ELSEVIER)on1054374455 DE-627 eng DE-627 rda eng XA-GB TA330 TA168 TEC 035000 bisacsh TEC 009000 bisacsh TEC 009000 bisacsh TEC 035000 bisacsh Mo, John P. T. verfasserin aut Demystifying numerical models step-by step modeling of engineering systems John P.T. Mo, Sherman C.P. Cheung, Raj Das Kidlington, Oxford Cambridge, MA Butterworth-Heinemann [2019] 1 Online-Ressource (1 online resource) Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Includes bibliographical references and index 3 Wind Power and Aerodynamics Systems3.1 Liquid Flow Systems; 3.2 Basic Knowledge and Terminology of Wind Turbine; 3.3 Blade Element Theory; 3.3.1 Axial Force and Momentum Change; 3.3.2 Rotating Angular Momentum; 3.3.3 Blade Element and Relative Velocity; 3.3.4 Aerodynamic Lift and Drag Forces; 3.3.5 Losses at the Tip and Overall Power Output; 3.4 Blade Design and Solving Procedures; 3.4.1 Overall Blade Design Procedure; 3.4.2 Iterative Procedure for Solving the BEM; 3.4.3 Power Output of a Twisted and Tapered Blad (NACA S809); References; 4 Steady-State Heat Conduction Systems 4.1 Application of Heat Transfer Process4.2 The Three Modes of Heat Transfer; 4.2.1 Conduction; 4.2.2 Convection; 4.2.3 Radiation; 4.3 Steady-State Conduction Problems; 4.3.1 Governing Equations; 4.4 Boundary Conditions for Heat Conduction Problems; 4.4.1 Constant Temperature at Specific Surfaces; 4.4.2 Adiabatic Condition at Well-Insulated Surfaces; 4.4.3 Surfaces Subjected to Convection or Radiation Heat Transfer; 4.5 Finite Difference Approach; 4.5.1 First-Order Finite Difference Approximation; 4.5.2 Second-Order Finite Difference Approximation; 4.6 One-Dimensional Steady-State Conduction 4.6.1 One-Dimensional Conduction With Internal Heat Source4.6.2 Formulation for the Boundary Conditions; 4.6.3 Heat Dissipation of a Hot Plate; Reference; 5 Two-Dimensional and Transient Heat Conduction; 5.1 Importance of Two-Dimensional and Transient Heat Conduction Problems; 5.2 Direct Versus Iterative Methods; 5.3 Two-Dimensional Steady State Heat Conduction; 5.3.1 Two-Dimensional Discretization; 5.3.2 Two-Dimensional Heat Conduction in a Square Steel Column; 5.4 Time-Dependent Heat Conduction Problem; 5.4.1 Implicit and Explicit Time Discretization 5.4.2 Stability and Choice of Time Step for Explicit Method5.4.3 Transient Heat Conduction in a One-Dimensional Steel Bar; 6 Electrical Power Systems; 6.1 Electrical Systems; 6.2 Analysis of DC Motor Circuits; 6.3 Analysis of RLC Circuit; 6.4 Motor Driven Position Control System; 7 Industrial Systems; 7.1 Industrial Systems; 7.2 Transport Systems Modeling; 7.2.1 Transport on a Plane (Two-Dimensional Space); 7.2.2 Transport in Rectilinear Layout; 7.2.3 Transport in a Building; 7.3 Inventory Control; 7.3.1 Replenish Directly From a Stock Pile; 7.3.2 Varying Demand Front Cover; Demystifying Numerical Models; Copyright Page; Contents; Preface; 1 Introduction to Engineering Systems; 1.1 Systems Engineering Principles; 1.1.1 Integrity; 1.1.2 Stability; 1.1.3 Compatibility; 1.1.4 Safety; 1.1.5 Sustainability; 1.2 Nature of Engineering Systems; 2 Basic Numerical Techniques; 2.1 Introduction; 2.2 Roots of Equations; 2.2.1 Direct Search Method; 2.2.2 Bisection Method; 2.2.3 Newton-Raphson Method; 2.3 Differential Equations; 2.3.1 Euler's Method; 2.3.2 Modified Euler's Method; 2.3.3 Runge-Kutta Method Second Order; 2.3.4 Runge-Kutta Method Fourth Order Engineering mathematics Systems engineering TECHNOLOGY & ENGINEERING ; Engineering (General) TECHNOLOGY & ENGINEERING ; Reference Systems engineering Engineering mathematics Ingénierie des systèmes (CaQQLa)201-0050710 Systems engineering (OCoLC)fst01141455 Mathématiques de l'ingénieur (CaQQLa)201-0021991 Electronic books Cheung, Chi Pok verfasserin aut Das, Raj verfasserin aut 0081009755 Erscheint auch als Druck-Ausgabe Mo, John P.T Demystifying numerical models Saint Louis : Elsevier Science & Technology, 2018 0081009755 9780081009758 https://www.sciencedirect.com/science/book/9780081009758 X:ELSEVIER Verlag lizenzpflichtig Volltext (DE-627)1039900313 GBV-33-Freedom 2022 GBV-33-EBS-MRI BSZ-33-EBS-HSAA GBV-33-EBS-ZHB GBV-33-Freedom 2021 ZDB-33-EBS ZDB-33-EGE 2018 ZDB-33-ESD GBV-33-EBS-HST BSZ-33-EBS-C1UB GBV_ILN_23 ISIL_DE-830 SYSFLAG_1 GBV_KXP GBV_ILN_105 ISIL_DE-841 GBV_ILN_132 ISIL_DE-959 GBV_ILN_185 ISIL_DE-Sra5 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2020 ISIL_DE-Ch1 GBV_ILN_2111 ISIL_DE-944 BO 045F 620.001/1 045F 620.001/51 045F 620.00420285 23 01 0830 1847614310 ACQ Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots i z 06-02-19 105 01 0841 4074466147 OLR-ELV-TEST Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. Testzugang ZHB Lübeck z 26-02-22 132 01 0959 4500001719 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. Zeitlich begrenzte Lizenzierung k 13-03-24 185 01 3519 4514748722 OLR-EBS Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. z 23-04-24 370 01 4370 4540279440 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. i z 20-06-24 2020 01 DE-Ch1 4520353661 00 --%%-- --%%-- n n Campuslizenz l01 03-05-24 2111 02 DE-944 4046038233 00 --%%-- E-Book Elsevier --%%-- n Elektronischer Volltext - Campuslizenz l01 27-01-22 23 01 0830 Elsevier EBook https://www.sciencedirect.com/science/book/9780081009758 105 01 0841 https://www.sciencedirect.com/science/book/9780081009758 132 01 0959 Zugriff nur für Angehörige der Hochschule Osnabrück im Hochschulnetz https://www.sciencedirect.com/science/book/9780081009758 185 01 3519 https://www.sciencedirect.com/science/book/9780081009758 370 01 4370 E-Book: Zugriff im HCU-Netz. Zugriff von außerhalb nur für HCU-Angehörige möglich https://www.sciencedirect.com/science/book/9780081009758 2020 01 DE-Ch1 https://www.sciencedirect.com/science/book/9780081009758 2111 02 DE-944 https://www.sciencedirect.com/science/book/9780081009758 132 01 0959 00 EBooks Elsevier Engineering 23 01 0830 2018-01865, 2018-01866, 2018-01867, 2018-01868, 2018-01869 23 01 0830 ACQ 23 01 0830 olr-else 23 01 0830 olr-else2 105 01 0841 OLR-ELV-TEST 132 01 0959 EBS Elsevier 185 01 3519 OLR-EBS 370 01 4370 EBS Elsevier |
allfieldsGer |
0081017561 electronic book 0-08-101756-1 (DE-627)1685485316 (DE-599)KEP027278972 (EBP)027278972 (ELSEVIER)on1054374455 DE-627 eng DE-627 rda eng XA-GB TA330 TA168 TEC 035000 bisacsh TEC 009000 bisacsh TEC 009000 bisacsh TEC 035000 bisacsh Mo, John P. T. verfasserin aut Demystifying numerical models step-by step modeling of engineering systems John P.T. Mo, Sherman C.P. Cheung, Raj Das Kidlington, Oxford Cambridge, MA Butterworth-Heinemann [2019] 1 Online-Ressource (1 online resource) Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Includes bibliographical references and index 3 Wind Power and Aerodynamics Systems3.1 Liquid Flow Systems; 3.2 Basic Knowledge and Terminology of Wind Turbine; 3.3 Blade Element Theory; 3.3.1 Axial Force and Momentum Change; 3.3.2 Rotating Angular Momentum; 3.3.3 Blade Element and Relative Velocity; 3.3.4 Aerodynamic Lift and Drag Forces; 3.3.5 Losses at the Tip and Overall Power Output; 3.4 Blade Design and Solving Procedures; 3.4.1 Overall Blade Design Procedure; 3.4.2 Iterative Procedure for Solving the BEM; 3.4.3 Power Output of a Twisted and Tapered Blad (NACA S809); References; 4 Steady-State Heat Conduction Systems 4.1 Application of Heat Transfer Process4.2 The Three Modes of Heat Transfer; 4.2.1 Conduction; 4.2.2 Convection; 4.2.3 Radiation; 4.3 Steady-State Conduction Problems; 4.3.1 Governing Equations; 4.4 Boundary Conditions for Heat Conduction Problems; 4.4.1 Constant Temperature at Specific Surfaces; 4.4.2 Adiabatic Condition at Well-Insulated Surfaces; 4.4.3 Surfaces Subjected to Convection or Radiation Heat Transfer; 4.5 Finite Difference Approach; 4.5.1 First-Order Finite Difference Approximation; 4.5.2 Second-Order Finite Difference Approximation; 4.6 One-Dimensional Steady-State Conduction 4.6.1 One-Dimensional Conduction With Internal Heat Source4.6.2 Formulation for the Boundary Conditions; 4.6.3 Heat Dissipation of a Hot Plate; Reference; 5 Two-Dimensional and Transient Heat Conduction; 5.1 Importance of Two-Dimensional and Transient Heat Conduction Problems; 5.2 Direct Versus Iterative Methods; 5.3 Two-Dimensional Steady State Heat Conduction; 5.3.1 Two-Dimensional Discretization; 5.3.2 Two-Dimensional Heat Conduction in a Square Steel Column; 5.4 Time-Dependent Heat Conduction Problem; 5.4.1 Implicit and Explicit Time Discretization 5.4.2 Stability and Choice of Time Step for Explicit Method5.4.3 Transient Heat Conduction in a One-Dimensional Steel Bar; 6 Electrical Power Systems; 6.1 Electrical Systems; 6.2 Analysis of DC Motor Circuits; 6.3 Analysis of RLC Circuit; 6.4 Motor Driven Position Control System; 7 Industrial Systems; 7.1 Industrial Systems; 7.2 Transport Systems Modeling; 7.2.1 Transport on a Plane (Two-Dimensional Space); 7.2.2 Transport in Rectilinear Layout; 7.2.3 Transport in a Building; 7.3 Inventory Control; 7.3.1 Replenish Directly From a Stock Pile; 7.3.2 Varying Demand Front Cover; Demystifying Numerical Models; Copyright Page; Contents; Preface; 1 Introduction to Engineering Systems; 1.1 Systems Engineering Principles; 1.1.1 Integrity; 1.1.2 Stability; 1.1.3 Compatibility; 1.1.4 Safety; 1.1.5 Sustainability; 1.2 Nature of Engineering Systems; 2 Basic Numerical Techniques; 2.1 Introduction; 2.2 Roots of Equations; 2.2.1 Direct Search Method; 2.2.2 Bisection Method; 2.2.3 Newton-Raphson Method; 2.3 Differential Equations; 2.3.1 Euler's Method; 2.3.2 Modified Euler's Method; 2.3.3 Runge-Kutta Method Second Order; 2.3.4 Runge-Kutta Method Fourth Order Engineering mathematics Systems engineering TECHNOLOGY & ENGINEERING ; Engineering (General) TECHNOLOGY & ENGINEERING ; Reference Systems engineering Engineering mathematics Ingénierie des systèmes (CaQQLa)201-0050710 Systems engineering (OCoLC)fst01141455 Mathématiques de l'ingénieur (CaQQLa)201-0021991 Electronic books Cheung, Chi Pok verfasserin aut Das, Raj verfasserin aut 0081009755 Erscheint auch als Druck-Ausgabe Mo, John P.T Demystifying numerical models Saint Louis : Elsevier Science & Technology, 2018 0081009755 9780081009758 https://www.sciencedirect.com/science/book/9780081009758 X:ELSEVIER Verlag lizenzpflichtig Volltext (DE-627)1039900313 GBV-33-Freedom 2022 GBV-33-EBS-MRI BSZ-33-EBS-HSAA GBV-33-EBS-ZHB GBV-33-Freedom 2021 ZDB-33-EBS ZDB-33-EGE 2018 ZDB-33-ESD GBV-33-EBS-HST BSZ-33-EBS-C1UB GBV_ILN_23 ISIL_DE-830 SYSFLAG_1 GBV_KXP GBV_ILN_105 ISIL_DE-841 GBV_ILN_132 ISIL_DE-959 GBV_ILN_185 ISIL_DE-Sra5 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2020 ISIL_DE-Ch1 GBV_ILN_2111 ISIL_DE-944 BO 045F 620.001/1 045F 620.001/51 045F 620.00420285 23 01 0830 1847614310 ACQ Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots i z 06-02-19 105 01 0841 4074466147 OLR-ELV-TEST Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. Testzugang ZHB Lübeck z 26-02-22 132 01 0959 4500001719 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. Zeitlich begrenzte Lizenzierung k 13-03-24 185 01 3519 4514748722 OLR-EBS Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. z 23-04-24 370 01 4370 4540279440 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. i z 20-06-24 2020 01 DE-Ch1 4520353661 00 --%%-- --%%-- n n Campuslizenz l01 03-05-24 2111 02 DE-944 4046038233 00 --%%-- E-Book Elsevier --%%-- n Elektronischer Volltext - Campuslizenz l01 27-01-22 23 01 0830 Elsevier EBook https://www.sciencedirect.com/science/book/9780081009758 105 01 0841 https://www.sciencedirect.com/science/book/9780081009758 132 01 0959 Zugriff nur für Angehörige der Hochschule Osnabrück im Hochschulnetz https://www.sciencedirect.com/science/book/9780081009758 185 01 3519 https://www.sciencedirect.com/science/book/9780081009758 370 01 4370 E-Book: Zugriff im HCU-Netz. Zugriff von außerhalb nur für HCU-Angehörige möglich https://www.sciencedirect.com/science/book/9780081009758 2020 01 DE-Ch1 https://www.sciencedirect.com/science/book/9780081009758 2111 02 DE-944 https://www.sciencedirect.com/science/book/9780081009758 132 01 0959 00 EBooks Elsevier Engineering 23 01 0830 2018-01865, 2018-01866, 2018-01867, 2018-01868, 2018-01869 23 01 0830 ACQ 23 01 0830 olr-else 23 01 0830 olr-else2 105 01 0841 OLR-ELV-TEST 132 01 0959 EBS Elsevier 185 01 3519 OLR-EBS 370 01 4370 EBS Elsevier |
allfieldsSound |
0081017561 electronic book 0-08-101756-1 (DE-627)1685485316 (DE-599)KEP027278972 (EBP)027278972 (ELSEVIER)on1054374455 DE-627 eng DE-627 rda eng XA-GB TA330 TA168 TEC 035000 bisacsh TEC 009000 bisacsh TEC 009000 bisacsh TEC 035000 bisacsh Mo, John P. T. verfasserin aut Demystifying numerical models step-by step modeling of engineering systems John P.T. Mo, Sherman C.P. Cheung, Raj Das Kidlington, Oxford Cambridge, MA Butterworth-Heinemann [2019] 1 Online-Ressource (1 online resource) Text txt rdacontent Computermedien c rdamedia Online-Ressource cr rdacarrier Includes bibliographical references and index 3 Wind Power and Aerodynamics Systems3.1 Liquid Flow Systems; 3.2 Basic Knowledge and Terminology of Wind Turbine; 3.3 Blade Element Theory; 3.3.1 Axial Force and Momentum Change; 3.3.2 Rotating Angular Momentum; 3.3.3 Blade Element and Relative Velocity; 3.3.4 Aerodynamic Lift and Drag Forces; 3.3.5 Losses at the Tip and Overall Power Output; 3.4 Blade Design and Solving Procedures; 3.4.1 Overall Blade Design Procedure; 3.4.2 Iterative Procedure for Solving the BEM; 3.4.3 Power Output of a Twisted and Tapered Blad (NACA S809); References; 4 Steady-State Heat Conduction Systems 4.1 Application of Heat Transfer Process4.2 The Three Modes of Heat Transfer; 4.2.1 Conduction; 4.2.2 Convection; 4.2.3 Radiation; 4.3 Steady-State Conduction Problems; 4.3.1 Governing Equations; 4.4 Boundary Conditions for Heat Conduction Problems; 4.4.1 Constant Temperature at Specific Surfaces; 4.4.2 Adiabatic Condition at Well-Insulated Surfaces; 4.4.3 Surfaces Subjected to Convection or Radiation Heat Transfer; 4.5 Finite Difference Approach; 4.5.1 First-Order Finite Difference Approximation; 4.5.2 Second-Order Finite Difference Approximation; 4.6 One-Dimensional Steady-State Conduction 4.6.1 One-Dimensional Conduction With Internal Heat Source4.6.2 Formulation for the Boundary Conditions; 4.6.3 Heat Dissipation of a Hot Plate; Reference; 5 Two-Dimensional and Transient Heat Conduction; 5.1 Importance of Two-Dimensional and Transient Heat Conduction Problems; 5.2 Direct Versus Iterative Methods; 5.3 Two-Dimensional Steady State Heat Conduction; 5.3.1 Two-Dimensional Discretization; 5.3.2 Two-Dimensional Heat Conduction in a Square Steel Column; 5.4 Time-Dependent Heat Conduction Problem; 5.4.1 Implicit and Explicit Time Discretization 5.4.2 Stability and Choice of Time Step for Explicit Method5.4.3 Transient Heat Conduction in a One-Dimensional Steel Bar; 6 Electrical Power Systems; 6.1 Electrical Systems; 6.2 Analysis of DC Motor Circuits; 6.3 Analysis of RLC Circuit; 6.4 Motor Driven Position Control System; 7 Industrial Systems; 7.1 Industrial Systems; 7.2 Transport Systems Modeling; 7.2.1 Transport on a Plane (Two-Dimensional Space); 7.2.2 Transport in Rectilinear Layout; 7.2.3 Transport in a Building; 7.3 Inventory Control; 7.3.1 Replenish Directly From a Stock Pile; 7.3.2 Varying Demand Front Cover; Demystifying Numerical Models; Copyright Page; Contents; Preface; 1 Introduction to Engineering Systems; 1.1 Systems Engineering Principles; 1.1.1 Integrity; 1.1.2 Stability; 1.1.3 Compatibility; 1.1.4 Safety; 1.1.5 Sustainability; 1.2 Nature of Engineering Systems; 2 Basic Numerical Techniques; 2.1 Introduction; 2.2 Roots of Equations; 2.2.1 Direct Search Method; 2.2.2 Bisection Method; 2.2.3 Newton-Raphson Method; 2.3 Differential Equations; 2.3.1 Euler's Method; 2.3.2 Modified Euler's Method; 2.3.3 Runge-Kutta Method Second Order; 2.3.4 Runge-Kutta Method Fourth Order Engineering mathematics Systems engineering TECHNOLOGY & ENGINEERING ; Engineering (General) TECHNOLOGY & ENGINEERING ; Reference Systems engineering Engineering mathematics Ingénierie des systèmes (CaQQLa)201-0050710 Systems engineering (OCoLC)fst01141455 Mathématiques de l'ingénieur (CaQQLa)201-0021991 Electronic books Cheung, Chi Pok verfasserin aut Das, Raj verfasserin aut 0081009755 Erscheint auch als Druck-Ausgabe Mo, John P.T Demystifying numerical models Saint Louis : Elsevier Science & Technology, 2018 0081009755 9780081009758 https://www.sciencedirect.com/science/book/9780081009758 X:ELSEVIER Verlag lizenzpflichtig Volltext (DE-627)1039900313 GBV-33-Freedom 2022 GBV-33-EBS-MRI BSZ-33-EBS-HSAA GBV-33-EBS-ZHB GBV-33-Freedom 2021 ZDB-33-EBS ZDB-33-EGE 2018 ZDB-33-ESD GBV-33-EBS-HST BSZ-33-EBS-C1UB GBV_ILN_23 ISIL_DE-830 SYSFLAG_1 GBV_KXP GBV_ILN_105 ISIL_DE-841 GBV_ILN_132 ISIL_DE-959 GBV_ILN_185 ISIL_DE-Sra5 GBV_ILN_370 ISIL_DE-1373 GBV_ILN_2020 ISIL_DE-Ch1 GBV_ILN_2111 ISIL_DE-944 BO 045F 620.001/1 045F 620.001/51 045F 620.00420285 23 01 0830 1847614310 ACQ Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots i z 06-02-19 105 01 0841 4074466147 OLR-ELV-TEST Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Die Weitergabe an Dritte sowie systematisches Downloaden sind untersagt. Testzugang ZHB Lübeck z 26-02-22 132 01 0959 4500001719 EBS Elsevier Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. Keine Weitergabe an Dritte. Kein systematisches Downloaden durch Robots. Zeitlich begrenzte Lizenzierung k 13-03-24 185 01 3519 4514748722 OLR-EBS Vervielfältigungen (z.B. Kopien, Downloads) sind nur von einzelnen Kapiteln oder Seiten und nur zum eigenen wissenschaftlichen Gebrauch erlaubt. 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3 Wind Power and Aerodynamics Systems3.1 Liquid Flow Systems; 3.2 Basic Knowledge and Terminology of Wind Turbine; 3.3 Blade Element Theory; 3.3.1 Axial Force and Momentum Change; 3.3.2 Rotating Angular Momentum; 3.3.3 Blade Element and Relative Velocity; 3.3.4 Aerodynamic Lift and Drag Forces; 3.3.5 Losses at the Tip and Overall Power Output; 3.4 Blade Design and Solving Procedures; 3.4.1 Overall Blade Design Procedure; 3.4.2 Iterative Procedure for Solving the BEM; 3.4.3 Power Output of a Twisted and Tapered Blad (NACA S809); References; 4 Steady-State Heat Conduction Systems 4.1 Application of Heat Transfer Process4.2 The Three Modes of Heat Transfer; 4.2.1 Conduction; 4.2.2 Convection; 4.2.3 Radiation; 4.3 Steady-State Conduction Problems; 4.3.1 Governing Equations; 4.4 Boundary Conditions for Heat Conduction Problems; 4.4.1 Constant Temperature at Specific Surfaces; 4.4.2 Adiabatic Condition at Well-Insulated Surfaces; 4.4.3 Surfaces Subjected to Convection or Radiation Heat Transfer; 4.5 Finite Difference Approach; 4.5.1 First-Order Finite Difference Approximation; 4.5.2 Second-Order Finite Difference Approximation; 4.6 One-Dimensional Steady-State Conduction 4.6.1 One-Dimensional Conduction With Internal Heat Source4.6.2 Formulation for the Boundary Conditions; 4.6.3 Heat Dissipation of a Hot Plate; Reference; 5 Two-Dimensional and Transient Heat Conduction; 5.1 Importance of Two-Dimensional and Transient Heat Conduction Problems; 5.2 Direct Versus Iterative Methods; 5.3 Two-Dimensional Steady State Heat Conduction; 5.3.1 Two-Dimensional Discretization; 5.3.2 Two-Dimensional Heat Conduction in a Square Steel Column; 5.4 Time-Dependent Heat Conduction Problem; 5.4.1 Implicit and Explicit Time Discretization 5.4.2 Stability and Choice of Time Step for Explicit Method5.4.3 Transient Heat Conduction in a One-Dimensional Steel Bar; 6 Electrical Power Systems; 6.1 Electrical Systems; 6.2 Analysis of DC Motor Circuits; 6.3 Analysis of RLC Circuit; 6.4 Motor Driven Position Control System; 7 Industrial Systems; 7.1 Industrial Systems; 7.2 Transport Systems Modeling; 7.2.1 Transport on a Plane (Two-Dimensional Space); 7.2.2 Transport in Rectilinear Layout; 7.2.3 Transport in a Building; 7.3 Inventory Control; 7.3.1 Replenish Directly From a Stock Pile; 7.3.2 Varying Demand Front Cover; Demystifying Numerical Models; Copyright Page; Contents; Preface; 1 Introduction to Engineering Systems; 1.1 Systems Engineering Principles; 1.1.1 Integrity; 1.1.2 Stability; 1.1.3 Compatibility; 1.1.4 Safety; 1.1.5 Sustainability; 1.2 Nature of Engineering Systems; 2 Basic Numerical Techniques; 2.1 Introduction; 2.2 Roots of Equations; 2.2.1 Direct Search Method; 2.2.2 Bisection Method; 2.2.3 Newton-Raphson Method; 2.3 Differential Equations; 2.3.1 Euler's Method; 2.3.2 Modified Euler's Method; 2.3.3 Runge-Kutta Method Second Order; 2.3.4 Runge-Kutta Method Fourth Order Includes bibliographical references and index |
abstractGer |
3 Wind Power and Aerodynamics Systems3.1 Liquid Flow Systems; 3.2 Basic Knowledge and Terminology of Wind Turbine; 3.3 Blade Element Theory; 3.3.1 Axial Force and Momentum Change; 3.3.2 Rotating Angular Momentum; 3.3.3 Blade Element and Relative Velocity; 3.3.4 Aerodynamic Lift and Drag Forces; 3.3.5 Losses at the Tip and Overall Power Output; 3.4 Blade Design and Solving Procedures; 3.4.1 Overall Blade Design Procedure; 3.4.2 Iterative Procedure for Solving the BEM; 3.4.3 Power Output of a Twisted and Tapered Blad (NACA S809); References; 4 Steady-State Heat Conduction Systems 4.1 Application of Heat Transfer Process4.2 The Three Modes of Heat Transfer; 4.2.1 Conduction; 4.2.2 Convection; 4.2.3 Radiation; 4.3 Steady-State Conduction Problems; 4.3.1 Governing Equations; 4.4 Boundary Conditions for Heat Conduction Problems; 4.4.1 Constant Temperature at Specific Surfaces; 4.4.2 Adiabatic Condition at Well-Insulated Surfaces; 4.4.3 Surfaces Subjected to Convection or Radiation Heat Transfer; 4.5 Finite Difference Approach; 4.5.1 First-Order Finite Difference Approximation; 4.5.2 Second-Order Finite Difference Approximation; 4.6 One-Dimensional Steady-State Conduction 4.6.1 One-Dimensional Conduction With Internal Heat Source4.6.2 Formulation for the Boundary Conditions; 4.6.3 Heat Dissipation of a Hot Plate; Reference; 5 Two-Dimensional and Transient Heat Conduction; 5.1 Importance of Two-Dimensional and Transient Heat Conduction Problems; 5.2 Direct Versus Iterative Methods; 5.3 Two-Dimensional Steady State Heat Conduction; 5.3.1 Two-Dimensional Discretization; 5.3.2 Two-Dimensional Heat Conduction in a Square Steel Column; 5.4 Time-Dependent Heat Conduction Problem; 5.4.1 Implicit and Explicit Time Discretization 5.4.2 Stability and Choice of Time Step for Explicit Method5.4.3 Transient Heat Conduction in a One-Dimensional Steel Bar; 6 Electrical Power Systems; 6.1 Electrical Systems; 6.2 Analysis of DC Motor Circuits; 6.3 Analysis of RLC Circuit; 6.4 Motor Driven Position Control System; 7 Industrial Systems; 7.1 Industrial Systems; 7.2 Transport Systems Modeling; 7.2.1 Transport on a Plane (Two-Dimensional Space); 7.2.2 Transport in Rectilinear Layout; 7.2.3 Transport in a Building; 7.3 Inventory Control; 7.3.1 Replenish Directly From a Stock Pile; 7.3.2 Varying Demand Front Cover; Demystifying Numerical Models; Copyright Page; Contents; Preface; 1 Introduction to Engineering Systems; 1.1 Systems Engineering Principles; 1.1.1 Integrity; 1.1.2 Stability; 1.1.3 Compatibility; 1.1.4 Safety; 1.1.5 Sustainability; 1.2 Nature of Engineering Systems; 2 Basic Numerical Techniques; 2.1 Introduction; 2.2 Roots of Equations; 2.2.1 Direct Search Method; 2.2.2 Bisection Method; 2.2.3 Newton-Raphson Method; 2.3 Differential Equations; 2.3.1 Euler's Method; 2.3.2 Modified Euler's Method; 2.3.3 Runge-Kutta Method Second Order; 2.3.4 Runge-Kutta Method Fourth Order Includes bibliographical references and index |
abstract_unstemmed |
3 Wind Power and Aerodynamics Systems3.1 Liquid Flow Systems; 3.2 Basic Knowledge and Terminology of Wind Turbine; 3.3 Blade Element Theory; 3.3.1 Axial Force and Momentum Change; 3.3.2 Rotating Angular Momentum; 3.3.3 Blade Element and Relative Velocity; 3.3.4 Aerodynamic Lift and Drag Forces; 3.3.5 Losses at the Tip and Overall Power Output; 3.4 Blade Design and Solving Procedures; 3.4.1 Overall Blade Design Procedure; 3.4.2 Iterative Procedure for Solving the BEM; 3.4.3 Power Output of a Twisted and Tapered Blad (NACA S809); References; 4 Steady-State Heat Conduction Systems 4.1 Application of Heat Transfer Process4.2 The Three Modes of Heat Transfer; 4.2.1 Conduction; 4.2.2 Convection; 4.2.3 Radiation; 4.3 Steady-State Conduction Problems; 4.3.1 Governing Equations; 4.4 Boundary Conditions for Heat Conduction Problems; 4.4.1 Constant Temperature at Specific Surfaces; 4.4.2 Adiabatic Condition at Well-Insulated Surfaces; 4.4.3 Surfaces Subjected to Convection or Radiation Heat Transfer; 4.5 Finite Difference Approach; 4.5.1 First-Order Finite Difference Approximation; 4.5.2 Second-Order Finite Difference Approximation; 4.6 One-Dimensional Steady-State Conduction 4.6.1 One-Dimensional Conduction With Internal Heat Source4.6.2 Formulation for the Boundary Conditions; 4.6.3 Heat Dissipation of a Hot Plate; Reference; 5 Two-Dimensional and Transient Heat Conduction; 5.1 Importance of Two-Dimensional and Transient Heat Conduction Problems; 5.2 Direct Versus Iterative Methods; 5.3 Two-Dimensional Steady State Heat Conduction; 5.3.1 Two-Dimensional Discretization; 5.3.2 Two-Dimensional Heat Conduction in a Square Steel Column; 5.4 Time-Dependent Heat Conduction Problem; 5.4.1 Implicit and Explicit Time Discretization 5.4.2 Stability and Choice of Time Step for Explicit Method5.4.3 Transient Heat Conduction in a One-Dimensional Steel Bar; 6 Electrical Power Systems; 6.1 Electrical Systems; 6.2 Analysis of DC Motor Circuits; 6.3 Analysis of RLC Circuit; 6.4 Motor Driven Position Control System; 7 Industrial Systems; 7.1 Industrial Systems; 7.2 Transport Systems Modeling; 7.2.1 Transport on a Plane (Two-Dimensional Space); 7.2.2 Transport in Rectilinear Layout; 7.2.3 Transport in a Building; 7.3 Inventory Control; 7.3.1 Replenish Directly From a Stock Pile; 7.3.2 Varying Demand Front Cover; Demystifying Numerical Models; Copyright Page; Contents; Preface; 1 Introduction to Engineering Systems; 1.1 Systems Engineering Principles; 1.1.1 Integrity; 1.1.2 Stability; 1.1.3 Compatibility; 1.1.4 Safety; 1.1.5 Sustainability; 1.2 Nature of Engineering Systems; 2 Basic Numerical Techniques; 2.1 Introduction; 2.2 Roots of Equations; 2.2.1 Direct Search Method; 2.2.2 Bisection Method; 2.2.3 Newton-Raphson Method; 2.3 Differential Equations; 2.3.1 Euler's Method; 2.3.2 Modified Euler's Method; 2.3.3 Runge-Kutta Method Second Order; 2.3.4 Runge-Kutta Method Fourth Order Includes bibliographical references and index |
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Cheung, Raj Das</subfield></datafield><datafield tag="264" ind1=" " ind2="1"><subfield code="a">Kidlington, Oxford</subfield><subfield code="a">Cambridge, MA</subfield><subfield code="b">Butterworth-Heinemann</subfield><subfield code="c">[2019]</subfield></datafield><datafield tag="300" ind1=" " ind2=" "><subfield code="a">1 Online-Ressource (1 online resource)</subfield></datafield><datafield tag="336" ind1=" " ind2=" "><subfield code="a">Text</subfield><subfield code="b">txt</subfield><subfield code="2">rdacontent</subfield></datafield><datafield tag="337" ind1=" " ind2=" "><subfield code="a">Computermedien</subfield><subfield code="b">c</subfield><subfield code="2">rdamedia</subfield></datafield><datafield tag="338" ind1=" " ind2=" "><subfield code="a">Online-Ressource</subfield><subfield code="b">cr</subfield><subfield code="2">rdacarrier</subfield></datafield><datafield tag="500" ind1=" " ind2=" "><subfield code="a">Includes bibliographical references and index</subfield></datafield><datafield tag="520" ind1=" " ind2=" "><subfield code="a">3 Wind Power and Aerodynamics Systems3.1 Liquid Flow Systems; 3.2 Basic Knowledge and Terminology of Wind Turbine; 3.3 Blade Element Theory; 3.3.1 Axial Force and Momentum Change; 3.3.2 Rotating Angular Momentum; 3.3.3 Blade Element and Relative Velocity; 3.3.4 Aerodynamic Lift and Drag Forces; 3.3.5 Losses at the Tip and Overall Power Output; 3.4 Blade Design and Solving Procedures; 3.4.1 Overall Blade Design Procedure; 3.4.2 Iterative Procedure for Solving the BEM; 3.4.3 Power Output of a Twisted and Tapered Blad (NACA S809); References; 4 Steady-State Heat Conduction Systems</subfield></datafield><datafield tag="520" ind1=" " ind2=" "><subfield code="a">4.1 Application of Heat Transfer Process4.2 The Three Modes of Heat Transfer; 4.2.1 Conduction; 4.2.2 Convection; 4.2.3 Radiation; 4.3 Steady-State Conduction Problems; 4.3.1 Governing Equations; 4.4 Boundary Conditions for Heat Conduction Problems; 4.4.1 Constant Temperature at Specific Surfaces; 4.4.2 Adiabatic Condition at Well-Insulated Surfaces; 4.4.3 Surfaces Subjected to Convection or Radiation Heat Transfer; 4.5 Finite Difference Approach; 4.5.1 First-Order Finite Difference Approximation; 4.5.2 Second-Order Finite Difference Approximation; 4.6 One-Dimensional Steady-State Conduction</subfield></datafield><datafield tag="520" ind1=" " ind2=" "><subfield code="a">4.6.1 One-Dimensional Conduction With Internal Heat Source4.6.2 Formulation for the Boundary Conditions; 4.6.3 Heat Dissipation of a Hot Plate; Reference; 5 Two-Dimensional and Transient Heat Conduction; 5.1 Importance of Two-Dimensional and Transient Heat Conduction Problems; 5.2 Direct Versus Iterative Methods; 5.3 Two-Dimensional Steady State Heat Conduction; 5.3.1 Two-Dimensional Discretization; 5.3.2 Two-Dimensional Heat Conduction in a Square Steel Column; 5.4 Time-Dependent Heat Conduction Problem; 5.4.1 Implicit and Explicit Time Discretization</subfield></datafield><datafield tag="520" ind1=" " ind2=" "><subfield code="a">5.4.2 Stability and Choice of Time Step for Explicit Method5.4.3 Transient Heat Conduction in a One-Dimensional Steel Bar; 6 Electrical Power Systems; 6.1 Electrical Systems; 6.2 Analysis of DC Motor Circuits; 6.3 Analysis of RLC Circuit; 6.4 Motor Driven Position Control System; 7 Industrial Systems; 7.1 Industrial Systems; 7.2 Transport Systems Modeling; 7.2.1 Transport on a Plane (Two-Dimensional Space); 7.2.2 Transport in Rectilinear Layout; 7.2.3 Transport in a Building; 7.3 Inventory Control; 7.3.1 Replenish Directly From a Stock Pile; 7.3.2 Varying Demand</subfield></datafield><datafield tag="520" ind1=" " ind2=" "><subfield code="a">Front Cover; Demystifying Numerical Models; Copyright Page; Contents; Preface; 1 Introduction to Engineering Systems; 1.1 Systems Engineering Principles; 1.1.1 Integrity; 1.1.2 Stability; 1.1.3 Compatibility; 1.1.4 Safety; 1.1.5 Sustainability; 1.2 Nature of Engineering Systems; 2 Basic Numerical Techniques; 2.1 Introduction; 2.2 Roots of Equations; 2.2.1 Direct Search Method; 2.2.2 Bisection Method; 2.2.3 Newton-Raphson Method; 2.3 Differential Equations; 2.3.1 Euler's Method; 2.3.2 Modified Euler's Method; 2.3.3 Runge-Kutta Method Second Order; 2.3.4 Runge-Kutta Method Fourth Order</subfield></datafield><datafield tag="650" ind1=" " ind2="0"><subfield code="a">Engineering mathematics</subfield></datafield><datafield tag="650" ind1=" " ind2="0"><subfield code="a">Systems engineering</subfield></datafield><datafield tag="650" ind1=" " ind2="4"><subfield code="a">TECHNOLOGY & ENGINEERING ; Engineering (General)</subfield></datafield><datafield tag="650" ind1=" " ind2="4"><subfield code="a">TECHNOLOGY & ENGINEERING ; Reference</subfield></datafield><datafield tag="650" ind1=" " ind2="4"><subfield code="a">Systems engineering</subfield></datafield><datafield tag="650" ind1=" " ind2="4"><subfield code="a">Engineering 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