본문 바로가기

Theory of Ground Vehicles, Fifth Edition > 외국도서

본문 바로가기

회원메뉴

쇼핑몰 검색

회원로그인

회원가입

오늘 본 상품 1

  • Theory of Ground Vehicles, Fifth Edition
    Theory of 61,000
Theory of Ground Vehicles, Fifth Edition > 외국도서
메인으로

Theory of Ground Vehicles, Fifth Edition 요약정보 및 구매

저자 : JY Wong (Author)

상품 선택옵션 0 개, 추가옵션 0 개

위시리스트0
시중가격 65,000원
판매가격 61,000원
출판사 Wiley
발행일18 Aug 2022
ISBN 9781119719700
페이지Hardback 608 pages
크기 186 x 264 x 37 (mm)
언어 KOR
국가 United States
무게 1288g
원산지 United States
포인트 0점
배송비결제 주문시 결제

선택된 옵션

  • Theory of Ground Vehicles, Fifth Edition
    +0원
위시리스트
  • 상품 정보

    상품 상세설명


    THEORY OF GROUND VEHICLES A leading and authoritative text for advancing ground vehicle mobility Theory of Ground Vehicles, Fifth Edition presents updated and expanded coverage of the critical factors affecting the performance, handling, and ride essential to the development and design of road and off-road vehicles. Replacing internal combustion engines with zero-emission powerplants in ground vehicles to eliminate greenhouse gas emissions for curbing climate change has received worldwide attention by both the vehicle industry and governmental agencies. To enhance safety, traffic flow, and operating efficiency of road transport, automated driving systems have been under active development.

    With growing interest in the exploration of the Moon, Mars, and beyond, research in terramechanics for guiding the development of extraterrestrial rovers has been intensified. In this new edition, these and other topics of interest in the field of ground vehicle technology are explored, and technical data are updated. New features of this edition include: Expanded coverage of the fundamentals of electric drives, hybrid electric drives, and fuel cell technologyIntroduction to the classification and operating principles of the automated driving system and cooperative driving automationApplications of terramechanics to guiding the development of extraterrestrial roversElaboration on the approach to achieving the optimal operating efficiency of all-wheel drive off-road vehiclesIntroduction to updated ISO Standards for evaluating vehicle ride An updated and comprehensive text and reference for both the educational and professional communities, Theory of Ground Vehicles, Fifth Edition will prove invaluable to aspiring and practicing engineers seeking to solve real-world road and off-road vehicle mobility problems. 

    상품 정보 고시

  • 사용후기

    PREFACE TO THE FIFTH EDITION

    PREFACE TO THE FOURTH EDITION

    PREFACE TO THE THIRD EDITION

    PREFACE TO THE SECOND EDITION

    PREFACE TO THE FIRST EDITION

    CONVERSION FACTORS

    LIST OF SYMBOLS

    ACRONYMS

    INTRODUCTION

    1 MECHANICS OF PNEUMATIC TIRES

    1.1 Tire Forces and Moments

    1.2 Rolling Resistance of Tires

    1.3 Tractive (Braking) Effort and Longitudinal Slip (Skid)

    1.3.1 Tractive Effort and Longitudinal Slip

    1.3.2 Braking Effort and Longitudinal Skid

    1.4 Cornering Properties of Tires

    1.4.1 Slip Angle and Cornering Force

    1.4.2 Slip Angle and Aligning Torque

    1.4.3 Camber and Camber Thrust

    1.4.4 Characterization of Cornering Behavior of Tires

    1.4.5 The Magic Formula

    1.5 Performance of Tires on Wet Surfaces

    1.6 Ride Properties of Tires

    1.7 Tire/Road Noise

    References

    Problems

    2 MECHANICS OF VEHICLE-TERRAIN INTERACTION-TERRAMECHANICS

    2.1 Applications of the Theory of Elasticity to Predicting Stress Distributions in the Terrain under Vehicular Loads

    2.2 Applications of the Theory of Plastic Equilibrium to the Mechanics of Vehicle-Terrain Interaction

    2.3 Empirically Based Models for Predicting Off-Road Vehicle Mobility

    2.3.1 NATO Reference Mobility Model (NRMM)

    2.3.2 Empirical Models for Predicting Single Wheel Performance

    2.3.3 Empirical Models Based on the Mean Maximum Pressure

    2.3.4 Limitations and Prospects for Empirically Based Models

    2.4 Measurement and Characterization of Terrain Response

    2.4.1 Characterization of Pressure-Sinkage Relationships

    2.4.2 Characterization of the Response to Repetitive Normal Loading

    2.4.3 Characterization of Shear Stress-Shear Displacement Relationships

    2.4.4 Characterization of the Response to Repetitive Shear Loading

    2.4.5 Bekker-Wong Terrain Parameters

    2.5 A Simplified Physics-Based Model for the Performance of Tracked Vehicles

    2.5.1 Motion Resistance of a Track

    2.5.2 Tractive Effort and Slip of a Track

    2.6 An Advanced Physics-Based Model for the Performance of Vehicles with Flexible Tracks

    2.6.1 Approach to the Prediction of Normal Pressure Distribution under a Track

    2.6.2 Approach to the Prediction of Shear Stress Distribution under a Track

    2.6.3 Prediction of Motion Resistance and Drawbar Pull as Functions of Track Slip

    2.6.4 Experimental Substantiation

    2.6.5 Applications to Parametric Analysis and Design Optimization

    2.7 An Advanced Physics-Based Model for the Performance of Vehicles with Long-Pitch Link Tracks

    2.7.1 Basic Approach

    2.7.2 Experimental Substantiation

    2.7.3 Applications to Parametric Analysis and Design Optimization

    2.8 Physics-Based Models for the Cross-Country Performance of Wheels (Tires)

    2.8.1 Motion Resistance of a Rigid Wheel

    2.8.2 Motion Resistance of a Pneumatic Tire

    2.8.3 Tractive Effort and Slip of a Wheel (Tire)

    2.9 A Physics-Based Model for the Performance of Off-Road Wheeled Vehicles

    2.9.1 Basic Approach

    2.9.2 Experimental Substantiation

    2.9.3 Applications to Parametric Analysis

    2.10 Slip Sinkage

    2.10.1 Physical Nature of Slip Sinkage

    2.10.2 Simplified Methods for Predicting Slip Sinkage

    2.11 Applications of Terramechanics to the Study of Mobility of Extraterrestrial Rovers and Their Running Gears

    2.11.1 Predicting the Performance of Rigid Rover Wheels on Extraterrestrial

    Surfaces Based on Test Results Obtained on Earth

    2.11.2 Performances of Lunar Roving Vehicle Flexible Wheels Predicted

    Using the Model NWVPM and Correlations with Test Data

    2.12 Finite Element and Discrete Element Methods for the Study of Vehicle-Terrain Interaction

    2.12.1 The Finite Element Method

    2.12.2 The Discrete (Distinct) Element Method

    References

    Problems

    3 PERFORMANCE CHARACTERISTICS OF ROAD VEHICLES

    3.1 Equation of Motion and Maximum Tractive Effort

    3.2 Aerodynamic Forces and Moments

    3.3 Internal Combustion Engines

    3.3.1 Performance Characteristics of Internal Combustion Engines

    3.3.2 Emissions of Internal Combustion Engines

    3.4 Electric Drives

    3.4.1 Elements of an Electric Drive

    3.4.2 Characteristics of Battery Electric Vehicles

    3.5 Hybrid Electric Drives

    3.5.1 Types of Hybrid Electric Drive

    3.5.2 Characteristics of Energy Consumption and Emissions of Hybrid Electric Vehicles

    3.6 Fuel Cells

    3.6.1 Polymer Electrolyte Membrane Fuel Cells

    3.6.2 Characteristics of Fuel Cell Vehicles

    3.7 Transmissions for Vehicles with Internal Combustion Engines

    3.7.1 Manual Gear Transmissions

    3.7.2 Automatic Transmissions

    3.7.3 Continuous Variable Transmissions

    3.7.4 Hydrostatic Transmissions

    3.8 Prediction of Vehicle Performance

    3.8.1 Acceleration Time and Distance

    3.8.2 Gradeability

    3.9 Operating Fuel Economy of Vehicles with Internal Combustion Engines

    3.10 Internal Combustion Engine and Transmission Matching

    3.11 Braking Performance

    3.11.1 Braking Characteristics of a Two-Axle Vehicle

    3.11.2 Braking Efficiency and Stopping Distance

    3.11.3 Braking Characteristics of a Tractor-Semitrailer

    3.11.4 Antilock Brake Systems

    3.11.5 Traction Control Systems

    References

    Problems

    4 PERFORMANCE CHARACTERISTICS OF OFF-ROAD VEHICLES

    4.1 Drawbar Performance

    4.1.1 Drawbar Pull and Drawbar Power

    4.1.2 Drawbar (Tractive) Efficiency

    4.1.3 All-Wheel Drive

    4.1.4 Coefficient of Traction

    4.1.5 Weight-to-Power Ratio for Off-Road Vehicles

    4.2 Fuel Economy of Cross-Country Operations

    4.3 Transport Productivity and Transport Efficiency

    4.4 Mobility Map and Mobility Profile

    4.5 Selection of Vehicle Configurations for Off-Road Operations

    References

    Problems

    5 HANDLING CHARACTERISTICS OF ROAD VEHICLES

    5.1 Steering Geometry

    5.2 Steady-State Handling Characteristics of a Two-Axle Vehicle / 367

    5.2.1 Neutral Steer

    5.2.2 Understeer

    5.2.3 Oversteer

    5.3 Steady-State Response to Steering Input

    5.3.1 Yaw Velocity Response

    5.3.2 Lateral Acceleration Response

    5.3.3 Curvature Response

    5.4 Testing of Handling Characteristics

    5.4.1 Constant Radius Test

    5.4.2 Constant Speed Test

    5.4.3 Constant Steer Angle Test

    5.5 Transient Response Characteristics

    5.6 Directional Stability

    5.6.1 Criteria for Directional Stability

    5.6.2 Vehicle Stability Control

    5.7 Driving Automation

    5.7.1 Classification of Levels of Driving Automation

    5.7.2 Automated Driving Systems and Cooperative Driving Automation

    5.8 Steady-State Handling Characteristics of a Tractor-Semitrailer

    5.9 Simulation Models for the Directional Behavior of Articulated Road Vehicles

    References

    Problems

    6 STEERING OF TRACKED VEHICLES

    6.1 Simplified Analysis of the Kinetics of Skid-Steering

    6.2 Kinematics of Skid-Steering

    6.3 Skid-Steering at High Speeds

    6.4 A General Theory for Skid-Steering on Firm Ground

    6.4.1 Shear Displacement on the Track-Ground Interface

    6.4.2 Kinetics in a Steady-State Turning Maneuver

    6.4.3 Experimental Substantiation

    6.4.4 Coefficient of Lateral Resistance

    6.5 Power Consumption of Skid-Steering

    6.6 Skid Steering Systems for Tracked Vehicles

    6.6.1 Clutch/Brake Steering System

    6.6.2 Controlled Differential Steering System

    6.6.3 Planetary Gear Steering System

    6.7 Articulated Steering

    References

    Problems

    7 VEHICLE RIDE CHARACTERISTICS

    7.1 Human Response to Vibration

    7.1.1 International Standard ISO 2631/1-1985

    7.1.2 International Standard ISO 2631-1:1997/Amd.1:2010

    7.1.3 Absorbed Power

    7.2 Vehicle Ride Models

    7.2.1 Two-Degrees-of-Freedom Vehicle Model for Vertical Vibrations of Sprung and Unsprung Mass

    7.2.2 Numerical Methods for Determining the Response of a Quarter-Car Model to Irregular Surface Profile Excitation

    7.2.3 Two-Degrees-of-Freedom Vehicle Model for Pitch and Bounce

    7.3 Introduction to Random Vibration

    7.3.1 Surface Elevation Profile as a Random Function

    7.3.2 Frequency Response Function

    7.3.3 Evaluation of Vehicle Vibration in Relation to Ride Comfort Criteria

    7.4 Active and Semiactive Suspensions

    7.4.1 Active Suspensions

    7.4.2 Semi-Active Suspensions

    References

    Problems

    8 INTRODUCTION TO AIR-CUSHION VEHICLES

    8.1 Air-Cushion Systems and Their Performances

    8.1.1 Plenum Chambers

    8.1.2 Peripheral Jets

    8.2 Resistances of Air-Cushion Vehicles

    8.3 Suspension Characteristics of Air-Cushion Systems

    8.3.1 Heave (or Bounce) Stiffness

    8.3.2 Roll Stiffness

    8.4 Directional Control of Air-Cushion Vehicles

    References

    Problems

    INDEX

  • 상품문의

    등록된 상품문의

    상품문의가 없습니다.

  • 반품/교환 방법

    "마이페이지 > 주문조회 > 반품/교환신청", 1:1상담>반품/교환 또는 고객센터(031-948-8090)

    반품/교환 가능 기간

    변심, 구매착오의 경우 수령 후 10일 이내

    전자책 관련(eBook 등)은 반품이 불가합니다.

    파본 등 상품결함 시 '문제점 발견 후 30일' 이내

    반품/교환 비용

    제주도 및 도서산간 지역 발송은 추가비용 발생되며, 비용은 고객부담(제주도 추가비용 4,000원)

    변심 혹은 구매착오의 경우에만 반송료 고객 부담(왕복 배송비 고객 부담)

    * 해외 직배송도서 취소수수료 : 수입제반비용(국내 까지의 운송비, 관세사비, 보세창고료, 내륙 운송비, 통관비 등)에 따른 비용

    반품/교환 불가 사유

    해외 직배송도서는 반품이 불가합니다.

    사용, 파본, 포장개봉에 의해 상품결함 등 상품가치가 현저히 감소한 상품

    전자책 관련(eBook 등)은 반품이 불가합니다.

    소비자 피해보상

    환불지연에 따른 배상

    - 상품의 불량에 의한 반품, 교환, A/S, 환불, 품질보증 및 피해보상 등에 관한 사항은 소비자분쟁해결기준 (공정거래위원회 고시)에 준하여 처리됨

    - 대금 환불 및 환불 지연에 따른 배상금 지급 조건, 절차 등은 전자상거래 등에서의 소비자 보호에 관한 법률에 따라 처리함

선택된 옵션

  • Theory of Ground Vehicles, Fifth Edition
    +0원

관련도서