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020 _a9789811689611
024 7 _a10.1007/978-981-16-8961-1
_2doi
040 _aTR-AnTOB
_beng
_cTR-AnTOB
_erda
041 _aeng
050 4 _aTA409
072 7 _aTGMD
_2bicssc
072 7 _aSCI096000
_2bisacsh
072 7 _aTGMD
_2thema
090 _aTA409EBK
100 1 _aWu, Xue-Ren.
_eauthor.
_4aut
_4http://id.loc.gov/vocabulary/relators/aut
245 1 0 _aWeight Function Methods in Fracture Mechanics
_h[electronic resource] :
_bTheory and Applications /
_cby Xue-Ren Wu, Wu Xu.
250 _a1st ed. 2022.
264 1 _aSingapore :
_bSpringer Nature Singapore :
_bImprint: Springer,
_c2022.
300 _a1 online resource
336 _atext
_btxt
_2rdacontent
337 _acomputer
_bc
_2rdamedia
338 _aonline resource
_bcr
_2rdacarrier
347 _atext file
_bPDF
_2rda
505 0 _aPart I Theoretical Background of Fracture Mechanics Weight Function Methods -- Standardized Analytical Weight Function Method Based on Crack Opening Displacements -- Analysis and Discussions of Weight Function Methods Based on Multiple Reference Load Cases -- Accuracy Verifications of Various Weight Functions and Method Assessments -- Part II Weight Functions and Stress Intensity factors for Various Crack Geometries -- Center Crack(s) in Single Connected Domain -- Edge Crack(s) in Single Connected Domain -- Edge Crack(s) in Multiple Connected Domain -- Weight Function Method and Applications to Orthotropic Composite Material -- Weight Function Method and Fracture Analysis for Plates with Multiple Cracks -- Analytical Weight Functions and Mixed Mode Stress Intensity Factors for Mode II Cracks -- Weigh Functions for Three-dimensional Crack Problems -- Part III Various Engineering Applications of Weight Function Methods -- Weigh Function Analysis of Crack Problems with Thermal/Residual Stresses -- Computation of Crack Opening Displacements/Areas with Weigh Function Methods -- Analysis of Bridging, Cohesive Model and Crack Opening Stress with Weigh Function Methods -- Weigh Functions and Stress Intensity Factors for Complex Crack Geometry -- Application of Weigh Function Methods to Multiple Site Damage Analysis -- Determination of Un-cracked Stresses Using Inverse Weight Function Method -- Appendix.
520 _aThis book provides a systematic and standardized approach based on the authors’ over 30 years of research experience with weight function methods, as well as the relevant literature. Fracture mechanics has become an indispensable tool for the design and safe operation of damage-tolerant structures in many important technical areas. The stress intensity factor—the characterizing parameter of the crack tip field—is the foundation of fracture mechanics analysis. The weight function method is a powerful technique for determining stress intensity factors and crack opening displacements for complex load conditions, with remarkable computational efficiency and high accuracy. The book presents the theoretical background of the weight function methods, together with a wealth of analytical weight functions and stress intensity factors for two- and three-dimensional crack geometries; many of these have been incorporated into national, international standards and industrial codes of practice. The accuracy of the results is rigorously verified, and various sample applications are provided. Accordingly, the book offers an ideal reference source for graduate students, researchers, and engineers whose work involves fracture and fatigue of materials and structures, who need not only stress intensity factors themselves but also efficient and reliable tools for obtaining them.
650 0 _aMechanics, Applied.
650 0 _aSolids.
650 0 _aAerospace engineering.
650 0 _aAstronautics.
650 0 _aMechanical engineering.
650 1 4 _aSolid Mechanics.
650 2 4 _aAerospace Technology and Astronautics.
650 2 4 _aMechanical Engineering.
653 0 _aFracture mechanics
653 0 _aStrains and stresses
700 1 _aXu, Wu.
_eauthor.
_4aut
_4http://id.loc.gov/vocabulary/relators/aut
710 2 _aSpringerLink (Online service)
856 4 0 _uhttps://doi.org/10.1007/978-981-16-8961-1
_3Springer eBooks
_zOnline access link to the resource
942 _2lcc
_cEBK