Simulating nonlinear circuits with Python power electronics : an open-source simulator, based on Python"! /: an open-source simulator, based on Python"!. ([2018])
- Record Type:
- Book
- Title:
- Simulating nonlinear circuits with Python power electronics : an open-source simulator, based on Python"! /: an open-source simulator, based on Python"!. ([2018])
- Main Title:
- Simulating nonlinear circuits with Python power electronics : an open-source simulator, based on Python"!
- Further Information:
- Note: Shivkumar V. Iyer.
- Authors:
- Iyer, Shivkumar V
- Contents:
- Intro; Acknowledgements; Contents; 1 Introduction; 1.1 Concept Behind Simulation; 1.2 The Reason for Simulation; 1.3 Simulation in Power Electronics and the Challenges; 1.4 Python Power Electronics; 1.5 Outline of the Book; 1.6 About the Book; 2 Introduction to Python; 2.1 Introduction; 2.2 Overview of Python; 2.3 Getting Started; 2.4 Integers, Floats, and Strings; 2.5 Lists and Tuples; 2.6 Dictionaries; 2.7 Examples of Python Code in the Simulatorâ#x80;#x94;Lists and Matrices; 2.8 Examples of Python Code in the Simulatorâ#x80;#x94;Strings; 2.9 Examples of Python Code in the Simulatorâ#x80;#x94;Dictionaries. 2.10 Conclusions3 User Interface; 3.1 Introduction; 3.2 Circuit Representation; 3.3 Processing of Components; 3.4 Data Structures of Components; 3.4.1 Resistor; 3.4.2 Inductor; 3.4.3 VoltageSource; 3.4.4 Capacitor; 3.4.5 Ammeter; 3.4.6 Voltmeter; 3.4.7 VariableResistor; 3.4.8 VariableInductor; 3.4.9 ControlledVoltageSource; 3.4.10 Diode; 3.4.11 Switch; 3.5 Logical Flow of the Simulation; 3.5.1 Launch Simulator; 3.5.2 Simulation Parameters; 3.5.3 Create Component Objects; 3.5.4 Circuit Parameters File; 3.5.5 Update Component Parameters; 3.6 Iterative Procedure During the Simulation. 3.6.1 Simulation Time Instant3.6.2 Update Branch Data; 3.6.3 Generate Input Voltage; 3.6.4 Run Control Code; 3.6.5 Perform Circuit Analysis; 3.6.6 Update Component Objects; 3.6.7 Write Output Data; 3.7 Conclusions; 4 Interface for User Control Functions; 4.1 Introduction; 4.2 Inclusion ofIntro; Acknowledgements; Contents; 1 Introduction; 1.1 Concept Behind Simulation; 1.2 The Reason for Simulation; 1.3 Simulation in Power Electronics and the Challenges; 1.4 Python Power Electronics; 1.5 Outline of the Book; 1.6 About the Book; 2 Introduction to Python; 2.1 Introduction; 2.2 Overview of Python; 2.3 Getting Started; 2.4 Integers, Floats, and Strings; 2.5 Lists and Tuples; 2.6 Dictionaries; 2.7 Examples of Python Code in the Simulatorâ#x80;#x94;Lists and Matrices; 2.8 Examples of Python Code in the Simulatorâ#x80;#x94;Strings; 2.9 Examples of Python Code in the Simulatorâ#x80;#x94;Dictionaries. 2.10 Conclusions3 User Interface; 3.1 Introduction; 3.2 Circuit Representation; 3.3 Processing of Components; 3.4 Data Structures of Components; 3.4.1 Resistor; 3.4.2 Inductor; 3.4.3 VoltageSource; 3.4.4 Capacitor; 3.4.5 Ammeter; 3.4.6 Voltmeter; 3.4.7 VariableResistor; 3.4.8 VariableInductor; 3.4.9 ControlledVoltageSource; 3.4.10 Diode; 3.4.11 Switch; 3.5 Logical Flow of the Simulation; 3.5.1 Launch Simulator; 3.5.2 Simulation Parameters; 3.5.3 Create Component Objects; 3.5.4 Circuit Parameters File; 3.5.5 Update Component Parameters; 3.6 Iterative Procedure During the Simulation. 3.6.1 Simulation Time Instant3.6.2 Update Branch Data; 3.6.3 Generate Input Voltage; 3.6.4 Run Control Code; 3.6.5 Perform Circuit Analysis; 3.6.6 Update Component Objects; 3.6.7 Write Output Data; 3.7 Conclusions; 4 Interface for User Control Functions; 4.1 Introduction; 4.2 Inclusion of Control in the Simulator; 4.3 Special Variables in Control Code; 4.4 Time Scheduling Control Code; 4.5 Interfacing Control Code; 4.6 Conclusions; 5 Case Studyâ#x80;#x94;Shunt VAR Compensator; 5.1 Introduction; 5.2 Description of the Circuit; 5.3 Parameters of the Simulation and the Circuit. 5.4 First Stage in Control Developmentâ#x80;#x94;Grid Synchronization5.5 Second Stage in Control Developmentâ#x80;#x94;Current Reference Generation and Closed-Loop Current Control; 5.6 Final Stage of Control Developmentâ#x80;#x94;The Entire Circuit with the VSC; 5.7 Conclusions; 6 Nodes, Branches, and Loops; 6.1 Introduction; 6.2 Jump Labels; 6.3 Nodes and Branches; 6.4 Short Branches and Nodes; 6.5 Connectivity Map for Nodal Analysis; 6.6 Loops; 6.7 Loop Map; 6.8 Conclusions; 7 Circuit Analysisâ#x80;#x94;Loop Analysis; 7.1 Introduction; 7.2 Matrices for Loop Analysis; 7.3 Solving the Matrix Equation. 7.4 Mapping Branch Currents and Loop Currents7.5 Effects of Time Constants on Loop Analysis; 7.6 Effect of Stiff Loops; 7.7 Loop Manipulations; 7.8 Limitation of Loop Analysis; 7.9 Conclusions; 8 Circuit Analysisâ#x80;#x94;Nodal Analysis; 8.1 Introduction; 8.2 Concept of Nodal Analysis; 8.3 Limitation of Loop Analysis in Nonlinear Circuits; 8.4 Applying Nodal Analysis in Nonlinear Circuits; 8.5 Continuing with Loop Analysis; 8.6 Event-Driven Circuit Updates; 8.7 Process Flow in the Simulator; 8.8 Conclusions; 9 Conclusions; 9.1 Advantages of the Simulator. … (more)
- Publisher Details:
- Cham, Switzerland : Springer
- Publication Date:
- 2018
- Copyright Date:
- 2018
- Extent:
- 1 online resource
- Subjects:
- 621.395
Engineering
Electronic digital computers -- Circuits
Python (Computer program language)
TECHNOLOGY & ENGINEERING -- Mechanical
Electronic digital computers -- Circuits
Python (Computer program language)
Computers -- Software Development & Engineering -- General
Technology & Engineering -- Electronics -- General
Technology & Engineering -- Machinery
Software Engineering
Electronics engineering
Power networks, systems, stations & plants
Systems engineering
Software engineering
Electronics
Production of electric energy or
Technology & Engineering -- Electronics -- Circuits -- General
Circuits & components
Electronic books
Electronic book - Languages:
- English
- ISBNs:
- 9783319739847
3319739840 - Related ISBNs:
- 9783319739830
3319739832 - Notes:
- Note: Includes bibliographical references.
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