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001 on1089885261
003 OCoLC
005 20220711203508.0
006 m o d
007 cr cnu---unuuu
008 190311t20192019nju ob 001 0 eng
010 _a 2019011866
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019 _a1091235001
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020 _a9781119513841
_qelectronic book
020 _a1119513847
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020 _a9781119513865
_qelectronic book
020 _a1119513863
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020 _a9781119513889
_qelectronic book
020 _a111951388X
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020 _z9781119513858
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020 _z1119513855
029 1 _aAU@
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029 1 _aCHNEW
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035 _a(OCoLC)1089885261
_z(OCoLC)1091235001
_z(OCoLC)1091661926
_z(OCoLC)1100464656
037 _a9781119513865
_bWiley
050 4 _aTL255
_b.K635 2019
072 7 _aTEC
_x009000
_2bisacsh
082 0 4 _a629.2/4
_223
049 _aMAIN
100 1 _aKobelev, Vladimir,
_d1959-
_eauthor.
_98224
245 1 0 _aDesign and analysis of composite structures for automotive applications :
_bchassis and drivetrain /
_cVladimir Kobelev, Department of Natural Sciences, University of Siegen, Germany.
264 1 _aHoboken, NJ :
_bWiley,
_c2019.
264 4 _c©2019
300 _a1 online resource
336 _atext
_btxt
_2rdacontent
337 _acomputer
_bn
_2rdamedia
338 _aonline resource
_bnc
_2rdacarrier
490 1 _aAutomotive series
504 _aIncludes bibliographical references and index.
505 0 _aCover; Title Page; Copyright; Contents; Foreword; Series Preface; List of Symbols and Abbreviations; Introduction; About the Companion Website; Chapter 1 Elastic Anisotropic Behavior of Composite Materials; 1.1 Anisotropic Elasticity of Composite Materials; 1.1.1 Fourth Rank Tensor Notation of Hooke's Law; 1.1.2 Voigt's Matrix Notation of Hooke's Law; 1.1.3 Kelvin's Matrix Notation of Hooke's Law; 1.2 Unidirectional Fiber Bundle; 1.2.1 Components of a Unidirectional Fiber Bundle; 1.2.2 Elastic Properties of a Unidirectional Fiber Bundle
505 8 _a1.2.3 Effective Elastic Constants of Unidirectional Composites1.3 Rotational Transformations of Material Laws, Stress and Strain; 1.3.1 Rotation of Fourth Rank Elasticity Tensors; 1.3.2 Rotation of Elasticity Matrices in Voigt's Notation; 1.3.3 Rotation of Elasticity Matrices in Kelvin's Notation; 1.4 Elasticity Matrices for Laminated Plates; 1.4.1 Voigt's Matrix Notation for Anisotropic Plates; 1.4.2 Rotation of Matrices in Voigt's Notation; 1.4.3 Kelvin's Matrix Notation for Anisotropic Plates; 1.4.4 Rotation of Matrices in Kelvin's Notation; 1.5 Coupling Effects of Anisotropic Laminates
505 8 _a1.5.1 Orthotropic Laminate Without Coupling1.5.2 Anisotropic Laminate Without Coupling; 1.5.3 Anisotropic Laminate With Coupling; 1.5.4 Coupling Effects in Laminated Thin-Walled Sections; 1.6 Conclusions; References; Chapter 2 Phenomenological Failure Criteria of Composites; 2.1 Phenomenological Failure Criteria; 2.1.1 Criteria for Static Failure Behavior; 2.1.2 Stress Failure Criteria for Isotropic Homogenous Materials; 2.1.3 Phenomenological Failure Criteria for Composites; 2.1.4 Phenomenological Criteria Without Stress Coupling; 2.1.4.1 Criterion of Maximum Averaged Stresses
505 8 _a2.1.4.2 Criterion of Maximum Averaged Strains2.1.5 Phenomenological Criteria with Stress Coupling; 2.1.5.1 Mises-Hill Anisotropic Failure Criterion; 2.1.5.2 Pressure-Sensitive Mises-Hill Anisotropic Failure Criterion; 2.1.5.3 Tensor-Polynomial Failure Criterion; 2.1.5.4 Tsai-Wu Criterion; 2.1.5.5 Assessment of Coefficients in Tensor-Polynomial Criteria; 2.2 Differentiating Criteria; 2.2.1 Fiber and Intermediate Break Criteria; 2.2.2 Hashin Strength Criterion; 2.2.3 Delamination Criteria; 2.3 Physically Based Failure Criteria; 2.3.1 Puck Criterion; 2.3.2 Cuntze Criterion
505 8 _a2.4 Rotational Transformation of Anisotropic Failure Criteria2.5 Conclusions; References; Chapter 3 Micromechanical Failure Criteria of Composites; 3.1 Pullout of Fibers from the Elastic-Plastic Matrix; 3.1.1 Axial Tension of Fiber and Matrix; 3.1.2 Shear Stresses in Matrix Cylinders; 3.1.3 Coupled Elongation of Fibers and Matrix; 3.1.4 Failures in Matrix and Fibers; 3.1.4.1 Equations for Mean Axial Displacements of Fibers and Matrix; 3.1.4.2 Solutions of Equations for Mean Axial Displacements of Fibers and Matrix; 3.1.5 Rupture of Matrix and Pullout of Fibers from Crack Edges in a Matrix
520 _aA design reference for engineers developing composite components for automotive chassis, suspension, and drivetrain applications This book provides a theoretical background for the development of elements of car suspensions. It begins with a description of the elastic-kinematics of the vehicle and closed form solutions for the vertical and lateral dynamics. It evaluates the vertical, lateral, and roll stiffness of the vehicle, and explains the necessity of the modelling of the vehicle stiffness. The composite materials for the suspension and powertrain design are discussed and their mechanical properties are provided. The book also looks at the basic principles for the design optimization using composite materials and mass reduction principles. Additionally, references and conclusions are presented in each chapter. Design and Analysis of Composite Structures for Automotive Applications: Chassis and Drivetrain offers complete coverage of chassis components made of composite materials and covers elastokinematics and component compliances of vehicles. It looks at parts made of composite materials such as stabilizer bars, wheels, half-axes, springs, and semi-trail axles. The book also provides information on leaf spring assembly for motor vehicles and motor vehicle springs comprising composite materials.-Covers the basic principles for the design optimization using composite materials and mass reduction principles -Evaluates the vertical, lateral, and roll stiffness of the vehicle, and explains the modelling of the vehicle stiffness -Discusses the composite materials for the suspension and powertrain design -Features closed form solutions of problems for car dynamics explained in details and illustrated pictorially Design and Analysis of Composite Structures for Automotive Applications: Chassis and Drivetrain is recommended primarily for engineers dealing with suspension design and development, and those who graduated from automotive or mechanical engineering courses in technical high school, or in other higher engineering schools.
588 _aDescription based on online resource; title from digital title page (viewed on August 06, 2019).
650 0 _aAutomobiles
_xChassis.
_98225
650 0 _aAutomobiles
_xPower trains.
_98226
650 0 _aAutomobiles
_xDesign and construction.
_98227
650 7 _aTECHNOLOGY & ENGINEERING
_xEngineering (General)
_2bisacsh
_94639
650 7 _aAutomobiles
_xChassis.
_2fast
_0(OCoLC)fst00823319
_98225
650 7 _aAutomobiles
_xDesign and construction.
_2fast
_0(OCoLC)fst00823374
_98227
650 7 _aAutomobiles
_xPower trains.
_2fast
_0(OCoLC)fst00823780
_98226
655 4 _aElectronic books.
_93294
776 0 8 _iPrint version:
_aKobelev, Vladimir, 1959-
_tDesign and analysis of composite structures for automotive applications.
_bFirst edition.
_dHoboken, NJ : Wiley, 2019
_w(DLC) 2019005286
830 0 _aAutomotive series (Wiley)
_97520
856 4 0 _uhttps://doi.org/10.1002/9781119513889
_zWiley Online Library
942 _cEBK
994 _a92
_bDG1
999 _c69045
_d69045