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The Journal of Heart Valve Disease|June 1, 1996
Fatigue and fracture of pyrolytic carbon: a damage- tolerant approach to structural integrity and life prediction in "ceramic" heart valve prosthesesR O RitchieJournal of Biomechanical Engineering|May 1, 1986
Fatigue life estimation procedures for the endurance of a cardiac valve prosthesis: stress/life and damage-tolerant analysesR O Ritchie, P LubockJournal of Biomedical Materials Research|September 17, 1999
Fatigue-crack propagation in Nitinol, a shape-memory and superelastic endovascular stent materialA L McKelvey, R O RitchieJournal of Biomedical Materials Research. Part A|October 3, 2006
Kitagawa-Takahashi diagrams define the limiting conditions for cyclic fatigue failure in human dentinJ J Kruzic, R O RitchieJournal of the Mechanical Behavior of Biomedical Materials|July 25, 2009
Fatigue of mineralized tissues: cortical bone and dentinJ J Kruzic, R O RitchieJournal of Biomedical Materials Research. Part B, Applied Biomaterials|May 5, 2007
A fracture-mechanics-based approach to fracture control in biomedical devices manufactured from superelastic Nitinol tubeS W Robertson, R O RitchieAdvanced Materials (Deerfield Beach, Fla.)|June 20, 2012
Mo-Si-B alloys for ultrahigh-temperature structural applicationsJ A Lemberg, R O RitchieBone|February 20, 2013
Proposed pathogenesis for atypical femoral fractures: lessons from materials researchB Ettinger, D B Burr, R O RitchieJournal of Biomedical Materials Research|January 1, 1992
On the fractography of overload, stress corrosion, and cyclic fatigue failures in pyrolytic-carbon materials used in prosthetic heart-valve devicesR O Ritchie, R H Dauskardt, F J PennisiJournal of Biomedical Materials Research. Part A|December 26, 2006
Fatigue-crack growth properties of thin-walled superelastic austenitic Nitinol tube for endovascular stentsJ M Stankiewicz, S W Robertson, R O RitchiePageof 7