On numerical modeling of fatigue crack growth in polymers using plastically dissipated energy

dc.contributor.authorDing, Guoliang
dc.date.accessioned2017-11-17T18:24:48Z
dc.date.available2017-11-17T18:24:48Z
dc.date.issued2017
dc.date.updated2017-09-06T13:24:48Z
dc.description.abstractEngineering structures are often subjected to repeated, cyclic loading rather than a simple static load. It is well established that cyclic loading results in progressive degradation and can lead to catastrophic failures of structures. In this case, the structure fails at load levels that are well below the load levels required to fail the structure under static loading, and is commonly referred to as fatigue failures. ☐ Predicting fatigue crack growth and fatigue life is an important part of preventing fatigue failure. Up to now, experimental characterization has been the only realistic method to predict fatigue life, but is usually expensive, time-consuming and not always reliable. This dissertation attempts to propose a method to minimize the time required for experimental characterization by investigating numerical modeling techniques of fatigue crack growth. In particular, this work explores the concept of using plastically dissipated energy as a criterion for fatigue crack growth. ☐ At the continuum scale, fatigue crack growth is due to cyclic material degradation in a process zone ahead of the crack tip. For ductile materials, the degradation is associated with plastic deformation, and the plastically dissipated energy is directly linked to the net accumulation of the plastic strain during loadings. The premise of the proposed method is that once the accumulated plastically dissipated energy has reached a critical value, the crack will propagate incrementally. Here, the hypothesis and numerical scheme are adopted to study Paris-regime crack growth rate for a variety of polymers. ☐ The proposed method is further applied to polymer electrolyte fuel cell membranes. In particular, the in-situ crack propagation in the membrane under relative humidity (RH) cycles is investigated. The model simulates a relative humidity (RH) protocol developed for testing the mechanical durability of the polymer electrolyte membrane. A range of well-established experimental observations are studied, and the plastically dissipated energy criterion captures all of these observations qualitatively. ☐ These analyses show that the plastically dissipated energy criterion can be used to estimate fatigue crack growth for a range of materials in a variety of engineering structures, and can therefore potentially reduce the cost to improve the reliability of engineering structures.en_US
dc.description.advisorSantare, Michael H.
dc.description.advisorKarlsson, Anette M.
dc.description.degreePh.D.
dc.description.departmentUniversity of Delaware, Department of Mechanical Engineering
dc.identifier.doihttps://doi.org/10.58088/yb95-2n83
dc.identifier.unique1012120665
dc.identifier.urihttp://udspace.udel.edu/handle/19716/21737
dc.language.rfc3066en
dc.publisherUniversity of Delawareen_US
dc.relation.urihttps://search.proquest.com/docview/1958939798?accountid=10457
dc.subjectApplied sciencesen_US
dc.subjectFatigueen_US
dc.subjectNumerical simulationen_US
dc.subjectParis’ lawen_US
dc.subjectPlastically dissipated energyen_US
dc.subjectPolymeren_US
dc.subjectPolymer electrolyte membrane (pem)en_US
dc.titleOn numerical modeling of fatigue crack growth in polymers using plastically dissipated energyen_US
dc.typeThesisen_US

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