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Modern electric, hybrid electric, and fuel cell vehicles : fundamentals, theory, and design

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TLDR
This document discusses the design and control principles of the Hybrid Electric Drive Trains, and the designs of the Drive Train Engine/Generator Power Design and Energy Design of Energy Storage Appendices Index.
Abstract
Environmental Impact and History of Modern Transportation Air Pollution Global Warming Petroleum Resources Induced Costs Importance of Different Transportation Development Strategies to Future Oil Supply History of EVs History of HEVs History of Fuel Cell Vehicles Fundamentals of Vehicle Propulsion and Brake General Description of Vehicle Movement Vehicle Resistance Dynamic Equation Tire-Ground Adhesion and Maximum Tractive Effort Power Train Tractive Effort and Vehicle Speed Vehicle Power Plant and Transmission Characteristics Vehicle Performance Operating Fuel Economy Brake Performance Internal Combustion Engines 4S, Spark-Ignited IC Engines 4S, Compression-Ignition IC Engines 2S Engines Wankel Rotary Engines Stirling Engines Gas Turbine Engines Quasi-Isothermal Brayton Cycle Engines Electric Vehicles Configurations of EVs Performance of EVs Tractive Effort in Normal Driving Energy Consumption Hybrid Electric Vehicles Concept of Hybrid Electric Drive Trains Architectures of Hybrid Electric Drive Trains Electric Propulsion Systems DC Motor Drives Induction Motor Drives Permanent Magnetic BLDC Motor Drives SRM Drives Design Principle of Series (Electrical Coupling) Hybrid Electric Drive Train Operation Patterns Control Strategies Design Principles of a Series (Electrical Coupling) Hybrid Drive Train Design Example Parallel (Mechanically Coupled) Hybrid Electric Drive Train Design Drive Train Configuration and Design Objectives Control Strategies Parametric Design of a Drive Train Simulations Design and Control Methodology of Series-Parallel (Torque and Speed Coupling) Hybrid Drive Train Drive Train Configuration Drive Train Control Methodology Drive Train Parameters Design Simulation of an Example Vehicle Design and Control Principles of Plug-In Hybrid Electric Vehicles Statistics of Daily Driving Distance Energy Management Strategy Energy Storage Design Mild Hybrid Electric Drive Train Design Energy Consumed in Braking and Transmission Parallel Mild Hybrid Electric Drive Train Series-Parallel Mild Hybrid Electric Drive Train Peaking Power Sources and Energy Storages Electrochemical Batteries Ultracapacitors Ultra-High-Speed Flywheels Hybridization of Energy Storages Fundamentals of Regenerative Breaking Braking Energy Consumed in Urban Driving Braking Energy versus Vehicle Speed Braking Energy versus Braking Power Braking Power versus Vehicle Speed Braking Energy versus Vehicle Deceleration Rate Braking Energy on Front and Rear Axles Brake System of EV, HEV, and FCV Fuel Cells Operating Principles of Fuel Cells Electrode Potential and Current-Voltage Curve Fuel and Oxidant Consumption Fuel Cell System Characteristics Fuel Cell Technologies Fuel Supply Non-Hydrogen Fuel Cells Fuel Cell Hybrid Electric Drive Train Design Configuration Control Strategy Parametric Design Design Example Design of Series Hybrid Drive Train for Off-Road Vehicles Motion Resistance Tracked Series Hybrid Vehicle Drive Train Architecture Parametric Design of the Drive Train Engine/Generator Power Design Power and Energy Design of Energy Storage Appendices Index

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Journal ArticleDOI

Virtual laboratories on energy management systems: the Hybrid Electric Vehicle case

TL;DR: In this paper, the authors present a virtual laboratory on hybrid electrical vehicles specially designed to illustrate the power flow and the energy management algorithms involved in this type of device, and describe the models behind the interactive virtual laboratory, the different configurations which can be taken into account and the implementation technology.

An Introduction to Fuel Cell Electric Vehicles: State of Art

TL;DR: An overview of FCEVs, their design, performances and modelling are discussed in this article, and the topologies of FCAVs are discussed. But the main challenge is its proper range selection, fuel economy, controlling and optimization of vehicle parameters.
Proceedings ArticleDOI

Analysis the Effect of Braking Force Distribution Strategy on Energy Recovery Results Considering The Front or Rear Shaft Drives

TL;DR: By the comparative analysis of simulation, it can be acquired that the effect of braking energy recovery in FWD is better than RWD, and the brakingEnergy recovery maximally control strategy proposed is effective which is the nearest to the maximum potential of brakingenergy recovery.
Proceedings ArticleDOI

Hibrid drive dimensioning using MATLAB software package

TL;DR: In this article, the authors analyzed vehicle dynamics during operation (drive wheel load) and calculated parameters for the vehicle model from the vehicle force equations, and compared the hybrid and conventional drives and fuel consumption.
Journal ArticleDOI

Study of Optimized Determination Method of HEV Engine Based on the High Frequency Working Area of Engine

TL;DR: In this paper, a statistics method of the high frequency working area of engine (HFWA) was proposed based on the power required of engine, and the degree of engine working efficiency Dm in typical driving cycles was calculated on the assumption of weighting function and efficiency.