000777268 000__ 05166cam\a2200601Ii\4500 000777268 001__ 777268 000777268 005__ 20230306142706.0 000777268 006__ m\\\\\o\\d\\\\\\\\ 000777268 007__ cr\nn\nnnunnun 000777268 008__ 160922t20162017sz\\\\\\o\\\\\100\0\eng\d 000777268 020__ $$a9783319421957$$q(electronic book) 000777268 020__ $$a3319421956$$q(electronic book) 000777268 020__ $$z9783319421940 000777268 035__ $$aSP(OCoLC)ocn958936705 000777268 035__ $$aSP(OCoLC)958936705 000777268 040__ $$aN$T$$beng$$erda$$epn$$cN$T$$dEBLCP$$dGW5XE$$dN$T$$dIDEBK$$dOCLCO$$dOCLCF$$dOCLCO$$dUAB$$dIOG 000777268 049__ $$aISEA 000777268 050_4 $$aTA409 000777268 050_4 $$aTA1-2040 000777268 08204 $$a620.1/126$$223 000777268 08204 $$a620 000777268 1112_ $$aAnnual Conference on Experimental and Applied Mechanics$$n(16th :$$d2016 :$$cOrlando, Fla.) 000777268 24510 $$aFracture, fatigue, failure and damage evolution.$$nVolume 8 :$$bproceedings of the 2016 Annual Conference on Experimental and Applied Mechanics /$$cAlan T. Zehnder [and 8 more], editors. 000777268 264_1 $$aSwitzerland :$$bSpringer,$$c[2016]. 000777268 264_4 $$c©2017 000777268 300__ $$a1 online resource. 000777268 336__ $$atext$$btxt$$2rdacontent 000777268 337__ $$acomputer$$bc$$2rdamedia 000777268 338__ $$aonline resource$$bcr$$2rdacarrier 000777268 4901_ $$aConference proceedings of the Society for Experimental Mechanics Series 000777268 500__ $$aInternational conference proceedings. 000777268 5050_ $$aPreface; Contents; Chapter 1: Fatigue Damage Precursor Identification Using Nondestructive Evaluation Coupled with Electron Microscopy; 1.1 Introduction; 1.2 Experimental Procedure; 1.2.1 Mechanical and Nondestructive Evaluation Setup; 1.2.2 Specimen Preparation; 1.3 Results and Discussion; 1.3.1 Monotonic In Situ SEM Testing; 1.3.2 Fatigue In Situ SEM Testing; 1.4 Conclusion; References; Chapter 2: Experimental Fracture Analysis of Tropical Species Using the Grid Method; 2.1 Introduction; 2.2 Materials and Method; 2.2.1 Wood Specimen; 2.2.2 Devices of the Experiments; 2.3 Results 000777268 5058_ $$a2.3.1 Force-Displacement Curves2.3.2 Crack Length-Images Curves; 2.4 Fracture Analysis; 2.5 Conclusion; References; Chapter 3: Investigating the Effective Fracture Toughness of Heterogeneous Materials; 3.1 Introduction; 3.2 Experimental Configuration; 3.3 Grid Method; 3.4 Energy Release Rate; 3.5 Results; 3.5.1 Homogeneous Case; 3.5.2 Heterogeneous Case; 3.6 Conclusions; References; Chapter 4: Improved Hybrid Specimen for Vibration Bending Fatigue; 4.1 Introduction; 4.2 Vibration-Based Bending Fatigue Theory; 4.3 Insert Specimen Redesign; 4.4 Experimental Procedure; 4.5 Experimental Results 000777268 5058_ $$a4.6 ConclusionReferences; Chapter 5: Experimental Study of Residual Plastic Strain and Damages Development in Carbon Fiber Composite; 5.1 Introduction; 5.2 Material Preparation; 5.3 Experimental Set-Up; 5.4 Results and Discussion; 5.4.1 Damage Evolution and Modulus Degradation; 5.4.2 Crack Initiation and Gradual Development; 5.4.3 Damage Sequences and Evolution; 5.5 Conclusion; References; Chapter 6: Experimental Investigation of Strength of Curved Beam by Thin Ply Non-Crimp Fabric Laminates; 6.1 Introduction; 6.2 Material; 6.3 Experimental Method; 6.4 Results; 6.5 Conclusions; References 000777268 5058_ $$aChapter 7: Role of Laminate Thickness on Sequential Dynamic Delamination of Curved [90/0] CFRP Composite Laminates7.1 Introduction; 7.2 Experimental Method; 7.3 Results; 7.4 Conclusions; References; Chapter 8: Application of eMMC Model to Fracture of Metal Sheets; 8.1 Introduction; 8.2 All Strain Based Anisotropic Ductile Fracture Modeling; 8.3 Simulation Results; 8.4 Conclusions; References; Chapter 9: Hydrolytic Degradation and Its Effect on Mechanical Properties of HFPE-II-52 Polyimide: Preliminary Results; 9.1 Introduction; 9.2 Experimental Method; 9.2.1 Sample Preparation 000777268 5058_ $$a9.2.2 Degradation Method9.2.3 Compression Tests; 9.3 Preliminary Results; 9.3.1 Weight and Visible Changes; 9.3.2 Compression Test Results; 9.4 Conclusion and Future Work; References; Chapter 10: Mixed-Mode and Mode-II Fatigue Crack Growth in Woven Composites; 10.1 Introduction; 10.2 Material Preparation; 10.3 Mode-I Testing; 10.4 Mode-II Testing; 10.5 Mixed-Mode Testing; 10.6 Mixed-Mode Fatigue Crack Growth; 10.7 Conclusions; References; Chapter 11: Characterization of Fatigue Induced Damage Evolution in CFRPs Using DIC; 11.1 Introduction; 11.2 Fatigue Testing of CFRP 000777268 506__ $$aAccess limited to authorized users. 000777268 588__ $$aOnline resource; title from PDF title page (SpringerLink, viewed September 29, 2016). 000777268 650_0 $$aFracture mechanics$$vCongresses. 000777268 650_0 $$aMaterials$$xFatigue$$vCongresses. 000777268 7001_ $$aZehnder, Alan T.,$$eeditor. 000777268 7001_ $$aCarroll, Jay,$$eeditor. 000777268 7001_ $$aHazeli, Kavan,$$eeditor. 000777268 7001_ $$aSwain, Lesia,$$eeditor. 000777268 7001_ $$aPataky, Garrett,$$eeditor. 000777268 7001_ $$aCavalli, Matthew,$$eeditor. 000777268 7001_ $$aBeese, Alison M.$$eeditor. 000777268 7001_ $$aXia, Shuman,$$eeditor. 000777268 830_0 $$aConference proceedings of the Society for Experimental Mechanics series. 000777268 852__ $$bebk 000777268 85640 $$3SpringerLink$$uhttps://univsouthin.idm.oclc.org/login?url=http://link.springer.com/10.1007/978-3-319-42195-7$$zOnline Access$$91397441.1 000777268 909CO $$ooai:library.usi.edu:777268$$pGLOBAL_SET 000777268 980__ $$aEBOOK 000777268 980__ $$aBIB 000777268 982__ $$aEbook 000777268 983__ $$aOnline 000777268 994__ $$a92$$bISE