System Dynamics: Modeling and Simulation of Mechatronic Systems, 4/e (Hardcover)
暫譯: 系統動力學:機電系統的建模與模擬,第4版(精裝本)

Dean C. Karnopp, Donald L. Margolis, Ronald C. Rosenberg

  • 出版商: Wiley
  • 出版日期: 2005-12-01
  • 售價: $4,940
  • 貴賓價: 9.5$4,693
  • 語言: 英文
  • 頁數: 576
  • 裝訂: Hardcover
  • ISBN: 0471709654
  • ISBN-13: 9780471709657
  • 已過版

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商品描述

Description

A revision of the bestselling system dynamics book using the bond graph approach

System Dynamics is a cornerstone resource for engineers faced with the evermore-complex job of designing mechatronic systems involving any number of electrical, mechanical, hydraulic, pneumatic, thermal, and magnetic subsystems. This updated Fourth Edition offers the latest coverage on one of the most important design tools today-bond graph modeling-the powerful, unified graphic modeling language.

The only comprehensive guide to modeling, designing, simulating, and analyzing dynamic systems comprising a variety of technologies and energy domains, System Dynamics, Fourth Edition continues the previous edition's step-by-step approach to creating dynamic models. The first six chapters have been improved to make the material much more understandable for those unfamiliar with physical system modeling. The presentation starts with the basic elements and leads to sophisticated mathematical models suitable for automated computer simulation. The new edition incorporates the authors' vast experience in teaching the topics to undergraduate and graduate students over many years and features expanded coverage of topics including:

* New expositions of modeling methods for electrical, mechanical, and hydraulic systems
* New sections on mechanical systems in plane and three-dimensional motion
* New sections on hydraulic and acoustic systems

This Fourth Edition continues to stress all the essentials-from basic hand formulation of simple bond graph models to the automatic simulation of complex mechatronic systems. It offers updated examples of multi-energy domain systems as well as:

* Discussions of state-of-the-art simulation software for use with bond graph models
* Presentations of a multiport modeling philosophy based on power and energy interactions
* Methods for understanding system characteristics and predicting system behaviors
* The use of graphical depictions of dynamic systems that can be translated automatically into complex mathematical models for computer simulation

 

Table of Contents

Preface.

1 Introduction.

1.1 Models of Systems.

1.2 Systems, Subsystems, and Components.

1.3 State-Determined Systems.

1.4 Uses of Dynamic Models.

1.5 Linear and Nonlinear Systems.

1.6 Automated Simulation.

References.

Problems.

2 Multiport Systems and Bond Graphs.

2.1 Engineering Multiports.

2.2 Ports, Bonds, and Power.

2.3 Bond Graphs.

2.4 Inputs, Outputs, and Signals.

Problems.

3 Basic Component Models.

3.1 Basic 1-Port Elements.

3.2 Basic 2-Port Elements.

3.3 The 3-Port Junction Elements.

3.4 Causality Considerations for the Basic Multiports.

3.4.1 Causality for Basic 1-Ports.

3.4.2 Causality for Basic 2-Ports and 3-Ports.

3.5 Causality and Block Diagrams.

3.6 Pseudo–Bond Graphs and Thermal Systems.

Reference.

Problems.

4 System Models.

4.1 Electrical Systems.

4.1.1 Electrical Circuits.

4.1.2 Electrical Networks.

4.2 Mechanical Systems.

4.2.1 Mechanics of Translation.

4.2.2 Fixed-Axis Rotation.

4.2.3 Plane Motion.

4.3 Hydraulic and Acoustic Circuits.

4.3.1 Fluid Resistance.

4.3.2 Fluid Capacitance.

4.3.3 Fluid Inertia.

4.3.4 Fluid Circuit Construction.

4.3.5 An Acoustic Circuit Example.

4.4 Transducers and Multi-Energy-Domain Models.

4.4.1 Transformer Transducers.

4.4.2 Gyrator Transducers.

4.4.3 Multi-Energy-Domain Models.

References.

Problems.

5 State-Space Equations and Automated Simulation.

5.1 Standard Form for System Equations.

5.2 Augmenting the Bond Graph.

5.3 Basic Formulation and Reduction.

5.4 Extended Formulation Methods—Algebraic Loops.

5.4.1 Extended Formulation Methods—Derivative Causality.

5.5 Output Variable Formulation.

5.6 Automated and Nonlinear Simulation.

5.6.1 Nonlinear Simulation.

5.6.2 Automated Simulation.

Reference.

Problems.

6 Analysis of Linear Systems.

6.1 Introduction.

6.2 Solution Techniques for Ordinary Differential Equations.

6.3 Free Response and Eigenvalues.

6.3.1 A First-Order Example.

6.3.2 Second-Order Systems.

6.3.3 Example: The Undamped Oscillator.

6.3.4 Example: The Damped Oscillator.

6.3.5 The General Case.

6.4 Forced Response and Frequency Response Functions.

6.4.1 Normalization of Response Curves.

6.4.2 The General Case.

6.5 Transfer Functions.

6.5.1 Block Diagrams.

6.6 Total Response.

6.7 Alternative State Variables.

References.

Problems.

7 Multiport Fields and Junction Structures.

7.1 Energy-Storing Fields.

7.1.1 C-Fields.

7.1.2 Causal Considerations for C-Fields.

7.1.3 I-Fields.

7.1.4 Mixed Energy-Storing Fields.

7.2 Resistive Fields.

7.3 Modulated 2-Port Elements.

7.4 Junction Structures.

7.5 Multiport Transformers.

References.

Problems.

8 Transducers, Amplifiers, and Instruments.

8.1 Power Transducers.

8.2 Energy-Storing Transducers.

8.3 Amplifiers and Instruments.

8.4 Bond Graphs and Block Diagrams for Controlled Systems.

References.

Problems.

9 Mechanical Systems with Nonlinear Geometry.

9.1 Multidimensional Dynamics.

9.2 Kinematic Nonlinearities in Mechanical Dynamics.

9.2.1 The Basic Modeling Procedure.

9.2.2 Multibody Systems.

9.2.3 Lagrangian or Hamiltonian IC-Field Representations.

9.3 Application to Vehicle Dynamics.

References.

Problems.

10 Distributed-Parameter Systems.

10.1 Simple Lumping Techniques for Distributed Systems.

10.2 Lumped Models of Continua through Separation of Variables.

10.3 General Considerations of Finite-Mode Bond Graphs.

10.4 Assembling Overall System Models.

10.5 Summary.

References.

Problems.

11 Magnetic Circuits and Devices.

11.1 Magnetic Effort and Flow Variables.

11.2 Magnetic Energy Storage and Loss.

11.3 Magnetic Circuit Elements.

11.4 Magnetomechanical Elements.

11.5 Device Models.

References.

Problems.

12 Thermofluid Systems.

12.1 Basic Thermodynamics in Bond Graph Form.

12.2 Heat Transfer in True Bond Graphs and Pseudo–Bond Graphs.

12.2.1 A Simple Example.

12.2.2 An Electrothermal Resistor.

12.3 Fluid Dynamic Systems.

12.3.1 One-Dimensional Incompressible Flow.

12.3.2 Representation of Compressibility Effects.

12.3.3 Inertial and Compressibility Effects in One-Dimensional Flow.

12.4 Pseudo–Bond Graphs for Compressible Gas Dynamics.

12.4.1 The Thermodynamic Accumulator.

12.4.2 The Isentropic Nozzle.

12.4.3 Constructing Models with the Thermodynamic Accumulator and Isentropic Nozzle.

12.4.4 Summary.

References.

Problems.

13 Nonlinear System Simulation.

13.1 Explicit First-Order Differential Equations.

13.2 Differential Algebraic Equations Caused by Algebraic Loops.

13.3 Implicit Equations Caused by Derivative Causality.

13.4 Automated Simulation of Dynamic Systems.

13.4.1 Sorting of Equations.

13.4.2 Implicit and Differential Algebraic Equation Solvers.

13.4.3 Icon-Based Automated Simulation.

13.5 Example Nonlinear Simulation.

13.5.1 Some Simulation Results.

13.6 Conclusions.

References.

Problems.

Appendix.

Index.

商品描述(中文翻譯)

**描述**

這本暢銷的系統動力學書籍使用了鍵圖法進行修訂。系統動力學是工程師面對設計涉及各種電氣、機械、液壓、氣壓、熱能和磁性子系統的機電系統時的重要資源。這本更新的第四版提供了當今最重要的設計工具之一——鍵圖建模的最新內容,這是一種強大且統一的圖形建模語言。

這是唯一一本全面指導建模、設計、模擬和分析由各種技術和能量領域組成的動態系統的指南。第四版延續了前一版逐步創建動態模型的方法。前六章已經改進,使不熟悉物理系統建模的讀者更容易理解。內容從基本元素開始,逐步引導至適合自動計算機模擬的複雜數學模型。新版本融入了作者多年來在本科生和研究生中教授這些主題的豐富經驗,並擴展了以下主題的內容:

* 電氣、機械和液壓系統建模方法的新闡述
* 平面和三維運動中的機械系統新章節
* 液壓和聲學系統的新章節

這本第四版繼續強調所有基本要素——從簡單鍵圖模型的基本手動公式到複雜機電系統的自動模擬。它提供了多能量域系統的更新範例,以及:

* 使用鍵圖模型的最先進模擬軟體的討論
* 基於功率和能量互動的多端口建模理念的介紹
* 理解系統特性和預測系統行為的方法
* 可以自動轉換為計算機模擬的複雜數學模型的動態系統圖形表示

**目錄**

**前言**

**1 介紹**
1.1 系統模型
1.2 系統、子系統和組件
1.3 狀態決定系統
1.4 動態模型的用途
1.5 線性和非線性系統
1.6 自動模擬
參考文獻
問題

**2 多端口系統和鍵圖**
2.1 工程多端口
2.2 端口、鍵和功率
2.3 鍵圖
2.4 輸入、輸出和信號
問題

**3 基本元件模型**
3.1 基本1端口元件
3.2 基本2端口元件
3.3 3端口接頭元件
3.4 基本多端口的因果考量
3.4.1 基本1端口的因果性
3.4.2 基本2端口和3端口的因果性
3.5 因果性和方塊圖
3.6 假鍵圖和熱系統
參考文獻
問題

**4 系統模型**
4.1 電氣系統
4.1.1 電路
4.1.2 電網
4.2 機械系統
4.2.1 平移力學
4.2.2 固定軸旋轉
4.2.3 平面運動
4.3 液壓和聲學電路
4.3.1 流體阻力
4.3.2 流體電容
4.3.3 流體慣性
4.3.4 流體電路建構
4.3.5 一個聲學電路範例
4.4 轉換器和多能量域模型
4.4.1 變壓器轉換器
4.4.2 旋轉器轉換器
4.4.3 多能量域模型
參考文獻
問題

**5 狀態空間方程和自動模擬**
5.1 系統方程的標準形式
5.2 增強鍵圖
5.3 基本公式和簡化
5.4 擴展公式方法——代數迴路
5.4.1 擴展公式方法——導數因果性
5.5 輸出變數公式
5.6 自動和非線性模擬
5.6.1 非線性模擬
5.6.2 自動模擬
參考文獻
問題

**6 線性系統分析**
6.1 介紹
6.2 常微分方程的解法
6.3 自由響應和特徵值
6.3.1 一階範例
6.3.2 二階系統
6.3.3 範例:無阻尼振盪器
6.3.4 範例:阻尼振盪器
6.3.5 一般情況
6.4 強迫響應和頻率響應函數
6.4.1 響應曲線的標準化
6.4.2 一般情況
6.5 傳遞函數
6.5.1 方塊圖
6.6 總響應
6.7 替代狀態變數
參考文獻
問題

**7 多端口場和接頭結構**
7.1 儲能場
7.1.1 C-場
7.1.2 C-場的因果考量
7.1.3 I-場
7.1.4 混合儲能場
7.2 阻抗場
7.3 調製的2端口元件
7.4 接頭結構
7.5 多端口變壓器
參考文獻
問題

**8 轉換器、放大器和儀器**
8.1 功率轉換器
8.2 儲能轉換器
8.3 放大器和儀器
8.4 控制系統的鍵圖和方塊圖
參考文獻
問題

**9 具有非線性幾何的機械系統**
9.1 多維動力學
9.2 機械動力學中的運動非線性
9.2.1 基本建模程序
9.2.2 多體系統
9.2.3 拉格朗日或哈密頓IC-場表示
9.3 應用於車輛動力學
參考文獻
問題

**10 分佈參數系統**
10.1 分佈系統的簡單集中技術
10.2 通過變數分離的連續體集中模型
10.3 有限模式鍵圖的一般考量
10.4 組裝整體系統模型
10.5 總結
參考文獻
問題

**11 磁路和設備**
11.1 磁努力和流量變數
11.2 磁能儲存和損失
11.3 磁路元件
11.4 磁機械元件
11.5 設備模型
參考文獻
問題

**12 熱流體系統**
12.1 鍵圖形式的基本熱力學
12.2 真鍵圖和假鍵圖中的熱傳導
12.2.1 一個簡單的範例
12.2.2 一個電熱電阻
12.3 F