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Identification of passive constitutive arterial tissue parameters from pressure myography based on inverse hyperelasticity

Okyar, Ali Fethi; Büyükkaya, Ömer Faruk; Karadağ, Cevat Volkan; Tuna, Bilge Güvenç


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        "name": "Okyar, Ali Fethi", 
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        "affiliation": "Yeditepe \u00dcniversitesi", 
        "name": "B\u00fcy\u00fckkaya, \u00d6mer Faruk", 
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        "affiliation": "Yeditepe \u00dcniversitesi", 
        "name": "Karada\u011f, Cevat Volkan", 
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        "name": "Tuna, Bilge G\u00fcven\u00e7", 
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    "description": "<p>Changes in the mechanical properties of arteries due to growth, remodeling, or aging are related with cardiovascular diseases. These changes can quantitatively be assessed if a suitable set of biomaterial constitutive parameters could be fitted onto the in vitro response from pressure myography. In Simon et al (1970), a pressure-diameter dataset reflecting the internal pressurization stage was provided. However, this data did not include the excised state. We developed an analytical continuum-based computational procedure to pull the current state back to the excised (reference) state. Using this procedure the data was fitted to a simple exponential model, and a 56% decrease in the shear modulus and a 19% decrease in the exponential constant were observed. Similar observations were made for the hyperelastic fibre-reinforced continuum model by Holzapfel et al (2000). In conclusion, the parameter identification process may be hindered as a result of an incomplete or partial dataset. Inverse deformation mapping may be used to<br>\nproduce the missing data.</p>", 
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      "soft-tissue biomechanics", 
      "parameter identification", 
      "inverse deformation", 
      "vasculatory system", 
      "hyperelasticity", 
      "finite element analysis"
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      "Teknik Bilimler > Makina M\u00fchendisli\u011fi > Mekanik > Biyomekanik"
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          "affiliation": "yeditepe \u00fcniversitesi", 
          "name": "ali fethi okyar", 
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    "title": "Identification of passive constitutive arterial tissue parameters from pressure myography based on inverse hyperelasticity", 
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