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dc.contributor.editorBasaran, Cemal
dc.date.accessioned2021-05-01T15:06:17Z
dc.date.available2021-05-01T15:06:17Z
dc.date.issued2021
dc.identifierONIX_20210501_9783039438075_33
dc.identifier.urihttps://directory.doabooks.org/handle/20.500.12854/68290
dc.description.abstractTraditionally fatigue, fracture, damage mechanics are predictions are based on empirical curve fitting models based on experimental data. However, when entropy is used as the metric for degradation of the material, the modeling process becomes physics based rather than empirical modeling. Because, entropy generation in a material can be calculated from the fundamental equation of thematerial. This collection of manuscripts is about using entropy for "Fatigue, Fracture, Failure Prediction and Structural Health Monitoring". The theoretical paper in the collection provides the mathematical and physics framework behind the unified mechanics theory, which unifies universal laws of motion of Newton and laws of thermodynamics at ab-initio level. Unified Mechanics introduces an additional axis called, Thermodynamic State Index axis which is linearly independent from Newtonian space x, y, z and time. As a result, derivative of displacement with respect to entropy is not zero, in unified mechanics theory, as in Newtonian mechanics. Any material is treated as a thermodynamic system and fundamental equation of the material is derived. Fundamental equation defines entropy generation rate in the system. Experimental papers in the collection prove validity of using entropy as a stable metric for Fatigue, Fracture, Failure Prediction and Structural Health Monitoring.
dc.languageEnglish
dc.subject.classificationthema EDItEUR::T Technology, Engineering, Agriculture, Industrial processes::TB Technology: general issues::TBX History of engineering and technologyen_US
dc.subject.otherfatigue
dc.subject.othersystem failure
dc.subject.otherdegradation analysis
dc.subject.otherentropy generation
dc.subject.otherstress strain
dc.subject.otherplastic strain
dc.subject.otherthermodynamics
dc.subject.otherhealth monitoring
dc.subject.othercopula entropy
dc.subject.othermeasure
dc.subject.otherdependence
dc.subject.othermultiple degradation processes
dc.subject.otherphysics of failure
dc.subject.otherprognosis and health management
dc.subject.otherentropy as damage
dc.subject.otheracoustic emission
dc.subject.otherinformation entropy
dc.subject.otherthermodynamic entropy
dc.subject.otherJeffreys divergence
dc.subject.otherMaxEnt distributions
dc.subject.otherfatigue damage
dc.subject.otherlow-cycle fatigue
dc.subject.othersatellite
dc.subject.otherdynamic health evaluation
dc.subject.otherfuzzy reasoning
dc.subject.otherentropy increase rate
dc.subject.othercreep strain
dc.subject.otherdamage mechanics
dc.subject.othermetallic material
dc.subject.othermechanothermodynamics
dc.subject.othertribo-fatigue entropy
dc.subject.otherwear-fatigue damage
dc.subject.otherstress-strain state
dc.subject.otherlimiting state
dc.subject.otherdamage state
dc.subject.otherdangerous volume
dc.subject.otherinteraction
dc.subject.otherirreversible damage
dc.subject.otherdegradation-entropy generation theorem
dc.subject.otherdual-phase steel
dc.subject.otherfatigue crack growth rate
dc.subject.otherspectrum loading
dc.subject.otherentropy
dc.subject.otherunified mechanics
dc.subject.otherTi-6Al-4V
dc.subject.othermedium entropy alloy
dc.subject.otherdeformation twinning
dc.subject.otherdislocation slip
dc.subject.othersurface nano-crystallization
dc.subject.othershot peening
dc.subject.othern/a
dc.titleEntropy Based Fatigue, Fracture, Failure Prediction and Structural Health Monitoring
dc.typebook
oapen.identifier.doi10.3390/books978-3-03943-808-2
oapen.relation.isPublishedBy46cabcaa-dd94-4bfe-87b4-55023c1b36d0
oapen.relation.isbn9783039438075
oapen.relation.isbn9783039438082
oapen.pages238
oapen.place.publicationBasel, Switzerland


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