LEADER 05921nam 22008413u 450 001 9910139586503321 005 20230105233914.0 010 $a1-5231-2346-X 010 $a1-283-26815-9 010 $a9786613268150 010 $a1-118-09316-X 010 $a1-118-09318-6 010 $a1-118-09430-1 035 $a(CKB)2550000000051854 035 $a(EBL)697563 035 $a(OCoLC)759207687 035 $a(SSID)ssj0000535784 035 $a(PQKBManifestationID)11335080 035 $a(PQKBTitleCode)TC0000535784 035 $a(PQKBWorkID)10545954 035 $a(PQKB)11775883 035 $a(MiAaPQ)EBC697563 035 $a(EXLCZ)992550000000051854 100 $a20130701d2011|||| u|| | 101 0 $aeng 135 $aur|n|---||||| 181 $ctxt 182 $cc 183 $acr 200 10$aDesign for Thermal Stresses$b[electronic resource] 210 $aHoboken $cWiley$d2011 215 $a1 online resource (530 p.) 300 $aDescription based upon print version of record. 311 $a0-470-62769-7 327 $aDesign for Thermalstresses; Contents; Preface; Nomenclature; 1 Introduction; 1.1 Definition of Thermal Stress; 1.2 Thermal-Mechanical Design; 1.3 Factor of Safety in Design; 1.4 Thermal Expansion Coefficient; 1.5 Young's Modulus; 1.6 Poisson's Ratio; 1.7 Other Elastic Moduli; 1.8 Thermal Diffusivity; 1.9 Thermal Shock Parameters; 1.10 Historical Note; Problems; References; 2 Thermal Stresses in Bars; 2.1 Stress and Strain; 2.2 Bar between Two Supports; 2.3 Bars in Parallel; 2.4 Bars with Partial Removal of Constraints; 2.5 Nonuniform Temperature Distribution; 2.6 Historical Note; Problems 327 $aReferences3 Thermal Bending; 3.1 Limits on the Analysis; 3.2 Stress Relationships; 3.3 Displacement Relations; 3.4 General Thermal Bending Relations; 3.5 Shear Stresses; 3.6 Beam Bending Examples; 3.7 Thermal Bowing of Pipes; 3.8 Historical Note; Problems; References; 4 Thermal Stresses in Trusses and Frames; 4.1 Elastic Energy Method; 4.2 Unit-Load Method; 4.3 Trusses with External Constraints; 4.4 Trusses with Internal Constraints; 4.5 The Finite Element Method; 4.6 Elastic Energy in Bending; 4.7 Pipe Thermal Expansion Loops; 4.8 Pipe Bends; 4.9 Elastic Energy in Torsion 327 $a4.10 Historical NoteProblems; References; 5.1 Introduction; 5.2 Strain Relationships; 5.3 Stress Relationships; 5.4 Stress-Strain Relations; 5.5 Temperature Field Equation; 5.6 Reduction of the Governing Equations; 5.7 Historical Note; Problems; References; 6 Plane Stress; 6.1 Introduction; 6.2 Stress Resultants; 6.3 Circular Plate with a Hot Spot; 6.4 Two-Dimensional Problems; 6.5 Plate with a Circular Hole; 6.6 Historical Note; Problems; References; 7 Bending Thermal Stresses in Plates; 7.1 Introduction; 7.2 Governing Relations for Bending of Rectangular Plates 327 $a7.3 Boundary Conditions for Plate Bending7.4 Bending of Simply-Supported Rectangular Plates; 7.5 Rectangular Plates with Two-Dimensional Temperature Distributions; 7.6 Axisymmetric Bending of Circular Plates; 7.7 Axisymmetric Thermal Bending Examples; 7.8 Circular Plates with a Two-Dimensional Temperature Distribution; 7.9 Historical Note; Problems; References; 8 Thermal Stresses in Shells; 8.1 Introduction; 8.2 Cylindrical Shells with Axisymmetric Loading; 8.3 Cooldown of Ring-Stiffened Cylindrical Vessels; 8.4 Cylindrical Vessels with Axial Temperature Variation; 8.5 Short Cylinders 327 $a8.6 Axisymmetric Loading of Spherical Shells8.7 Approximate Analysis of Spherical Shells under Axisymmetric Loading; 8.8 Historical Note; Problems; References; 9 Thick-Walled Cylinders and Spheres; 9.1 Introduction; 9.2 Governing Equations for Plane Strain; 9.3 Hollow Cylinder with Steady-State Heat Transfer; 9.4 Solid Cylinder; 9.5 Thick-Walled Spherical Vessels; 9.6 Solid Spheres; 9.7 Historical Note; Problems; References; 10 Thermoelastic Stability; 10.1 Introduction; 10.2 Thermal Buckling of Columns; 10.3 General Formulation for Beam Columns; 10.4 Postbuckling Behavior of Columns 327 $a10.5 Lateral Thermal Buckling of Beams 330 $aThe tools engineers need for effective thermal stress design Thermal stress concerns arise in many engineering situations, from aerospace structures to nuclear fuel rods to concrete highway slabs on a hot summer day. Having the tools to understand and alleviate these potential stresses is key for engineers in effectively executing a wide range of modern design tasks. Design for Thermal Stresses provides an accessible and balanced resource geared towards real-world applications. Presenting both the analysis and synthesis needed for accurate design, the book emphasizes key principles, 606 $aScience -- Dynamics 606 $aScience -- Mechanics 606 $aScience -- Thermodynamics 606 $aSCIENCE / Mechanics / Dynamics / Thermodynamics 606 $aThermal stresses 606 $aThermal stresses 606 $aThermal stresses 606 $aCivil & Environmental Engineering$2HILCC 606 $aEngineering & Applied Sciences$2HILCC 606 $aCivil Engineering$2HILCC 615 4$aScience -- Dynamics. 615 4$aScience -- Mechanics. 615 4$aScience -- Thermodynamics. 615 4$aSCIENCE / Mechanics / Dynamics / Thermodynamics. 615 4$aThermal stresses. 615 4$aThermal stresses. 615 0$aThermal stresses 615 7$aCivil & Environmental Engineering 615 7$aEngineering & Applied Sciences 615 7$aCivil Engineering 676 $a620.11296 676 $a621.402 686 $aSCI065000$2bisacsh 700 $aBarron$b Randall F$0594954 701 $aBarron$b Brian R$0900049 801 0$bAU-PeEL 801 1$bAU-PeEL 801 2$bAU-PeEL 906 $aBOOK 912 $a9910139586503321 996 $aDesign for Thermal Stresses$92010916 997 $aUNINA