Self-healing of Interlaminar Damage in Fiber-reinforced Polymer Composites via In Situ Thermal Remending.

dc.contributor.advisorJason Patrick, Chair
dc.contributor.advisorMark Pankow, Member
dc.contributor.advisorKara Peters, Member
dc.contributor.advisorKalyana Babu Nakshatrala, External
dc.contributor.advisorDaniel Therriault, External
dc.contributor.advisorGiorgio Proestos, Member
dc.contributor.authorSnyder, Alexander Douglas
dc.date.accepted2023-09-19
dc.date.accessioned2024-09-19T12:30:28Z
dc.date.available2024-09-19T12:30:28Z
dc.date.defense2023-09-06
dc.date.embargo2024-09-19
dc.date.issued2023-09-06
dc.date.released2024-09-19
dc.date.reviewed2023-09-12
dc.date.submitted2023-09-09
dc.degree.disciplineMechanical Engineering
dc.degree.leveldissertation
dc.degree.nameDoctor of Philosophy
dc.identifier.otherdeg35253
dc.identifier.urihttps://www.lib.ncsu.edu/resolver/1840.20/44269
dc.titleSelf-healing of Interlaminar Damage in Fiber-reinforced Polymer Composites via In Situ Thermal Remending.

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