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Development of a fatigue tester and material model for flexible heart valve applications

The leaflet material in heart valve prostheses is required to be both flexible and durable to eliminate the need for chronic anticoagulation medication and accommodate younger patients with longer life expectancies. This investigation aims to provide two of the necessary tools to design and test sui...

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Main Author: Van Breda, Braden
Other Authors: Mouton, Hennie
Format: Thesis
Language:English
Published: Department of Mechanical Engineering 2020
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access_status_str Open Access
author Van Breda, Braden
author2 Mouton, Hennie
author_browse Mouton, Hennie
Van Breda, Braden
author_facet Mouton, Hennie
Van Breda, Braden
author_sort Van Breda, Braden
collection Thesis
description The leaflet material in heart valve prostheses is required to be both flexible and durable to eliminate the need for chronic anticoagulation medication and accommodate younger patients with longer life expectancies. This investigation aims to provide two of the necessary tools to design and test suitably flexible and durable materials for heart valve replacement. These tools address the question of how to model the stress-strain behaviour of polymer networks and thermoplastic polyurethanes in particular, as well as how to practically evaluate the durability of the proposed material. A model for polyurethane stress-strain behaviour is proposed, whereby the number of monomers between crosslinks is suggested to evolve with macroscopic strain. Following the polymer chain entanglement theory, the increase in the number of monomers between crosslinks is further extended to be a function of strain rate, incorporating the viscous effect observed in polyurethanes. A multistation, micro-tensile specimen fatigue tester was developed to evaluate material durability. The proposed equilibrium polyurethane model accurately predicts the experimental data across the full material strain range. The proposed model extension sufficiently captures the rate dependence of polyurethane, however, fails to account for the raised specimen temperatures at high strain rates. The developed fatigue tester is verified to successfully feature selectable variables including test frequency (1 - 20 Hz), amplitude (1 - 6 mm), waveform (Triangular, Sinusoidal, Square and Custom) and environmental temperature control (23 - 50 oC). Less than 10% error in measured force is observed when compared to a commercial tensile tester. The proposed model successfully provides a platform to aid the design of flexible materials suitable for heart valve leaflets. The developed fatigue tester enables the assessment of material durability across a range of test conditions, successfully providing a tool for leaflet material durability analysis and verification.
format Thesis
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institution University of Cape Town (South Africa)
language eng
last_indexed 2026-06-10T12:32:54.720Z
license_str Not specified — see source repository
provenance_str_mv Harvested via OAI-PMH from UCTD — University of Cape Town Open Access Repository
publishDate 2020
publishDateRange 2020
publishDateSort 2020
publisher Department of Mechanical Engineering
publisherStr Department of Mechanical Engineering
record_format dspace
source_str UCTD — University of Cape Town Open Access Repository
spelling oai:open.uct.ac.za:11427/31321 Development of a fatigue tester and material model for flexible heart valve applications Van Breda, Braden Mouton, Hennie Bezuidenhout, Deon Engineering The leaflet material in heart valve prostheses is required to be both flexible and durable to eliminate the need for chronic anticoagulation medication and accommodate younger patients with longer life expectancies. This investigation aims to provide two of the necessary tools to design and test suitably flexible and durable materials for heart valve replacement. These tools address the question of how to model the stress-strain behaviour of polymer networks and thermoplastic polyurethanes in particular, as well as how to practically evaluate the durability of the proposed material. A model for polyurethane stress-strain behaviour is proposed, whereby the number of monomers between crosslinks is suggested to evolve with macroscopic strain. Following the polymer chain entanglement theory, the increase in the number of monomers between crosslinks is further extended to be a function of strain rate, incorporating the viscous effect observed in polyurethanes. A multistation, micro-tensile specimen fatigue tester was developed to evaluate material durability. The proposed equilibrium polyurethane model accurately predicts the experimental data across the full material strain range. The proposed model extension sufficiently captures the rate dependence of polyurethane, however, fails to account for the raised specimen temperatures at high strain rates. The developed fatigue tester is verified to successfully feature selectable variables including test frequency (1 - 20 Hz), amplitude (1 - 6 mm), waveform (Triangular, Sinusoidal, Square and Custom) and environmental temperature control (23 - 50 oC). Less than 10% error in measured force is observed when compared to a commercial tensile tester. The proposed model successfully provides a platform to aid the design of flexible materials suitable for heart valve leaflets. The developed fatigue tester enables the assessment of material durability across a range of test conditions, successfully providing a tool for leaflet material durability analysis and verification. 2020-02-25T11:40:31Z 2020-02-25T11:40:31Z 2019 2020-02-25T08:21:51Z Master Thesis Masters MSc http://hdl.handle.net/11427/31321 eng application/pdf Department of Mechanical Engineering Faculty of Engineering and the Built Environment
spellingShingle Engineering
Van Breda, Braden
Development of a fatigue tester and material model for flexible heart valve applications
thesis_degree_str Master's
title Development of a fatigue tester and material model for flexible heart valve applications
title_full Development of a fatigue tester and material model for flexible heart valve applications
title_fullStr Development of a fatigue tester and material model for flexible heart valve applications
title_full_unstemmed Development of a fatigue tester and material model for flexible heart valve applications
title_short Development of a fatigue tester and material model for flexible heart valve applications
title_sort development of a fatigue tester and material model for flexible heart valve applications
topic Engineering
url http://hdl.handle.net/11427/31321
work_keys_str_mv AT vanbredabraden developmentofafatiguetesterandmaterialmodelforflexibleheartvalveapplications