Accurate stress and strain calculations are important for plaque progression and vulnerability assessment. Models based on in vivo data often need to form geometries with zero-stress/strain conditions. The goal of this paper is to use IVUS-based near-idealized geometries and introduce a three-step model construction process to include residual stress, axial shrinkage, and circumferential shrinkage and investigate their impacts on stress and strain calculations. In Vivo intravascular ultrasound (IVUS) data of human coronary were acquired for model construction. In Vivo IVUS movie data were acquired and used to determine patient-specific material parameter values. A three-step modeling procedure was used to make our model: (a) wrap the zero-stress vessel sector to obtain the residual stress; (b) stretch the vessel axially to its length in vivo; and (c) pressurize the vessel to recover its in vivo geometry. Eight models were constructed for our investigation. Wrapping led to reduced lumen and cap stress and increased out boundary stress. The model with axial stretch, circumferential shrink, but no wrapping overestimated lumen and cap stress by 182% and 448%, respectively. The model with wrapping, circumferential shrink, but no axial stretch predicted average lumen stress and cap stress as 0.76 kPa and −15 kPa. The same model with 10% axial stretch had 42.53 kPa lumen stress and 29.0 kPa cap stress, respectively. Skipping circumferential shrinkage leads to overexpansion of the vessel and incorrect stress/strain calculations. Vessel stiffness increase (100%) leads to 75% lumen stress increase and 102% cap stress increase.
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January 2017
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Effects of Residual Stress, Axial Stretch, and Circumferential Shrinkage on Coronary Plaque Stress and Strain Calculations: A Modeling Study Using IVUS-Based Near-Idealized Geometries
Liang Wang,
Liang Wang
Mathematical Sciences Department,
Worcester Polytechnic Institute,
Worcester, MA 01609
Worcester Polytechnic Institute,
Worcester, MA 01609
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Jian Zhu,
Jian Zhu
Department of Cardiology,
Zhongda Hospital,
Southeast University,
Nanjing 210009, China
Zhongda Hospital,
Southeast University,
Nanjing 210009, China
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Habib Samady,
Habib Samady
Department of Medicine,
Emory University School of Medicine,
Atlanta, GA 30307
Emory University School of Medicine,
Atlanta, GA 30307
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David Monoly,
David Monoly
Department of Medicine,
Emory University School of Medicine,
Atlanta, GA 30307
Emory University School of Medicine,
Atlanta, GA 30307
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Jie Zheng,
Jie Zheng
Mallinckrodt Institute of Radiology,
Washington University,
St. Louis, MO 63110
Washington University,
St. Louis, MO 63110
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Xiaoya Guo,
Xiaoya Guo
Department of Mathematics,
Southeast University,
Nanjing 210096, China
Southeast University,
Nanjing 210096, China
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Akiko Maehara,
Akiko Maehara
The Cardiovascular Research Foundation,
Columbia University,
New York, NY 10022
Columbia University,
New York, NY 10022
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Chun Yang,
Chun Yang
Network Technology Research Institute,
China United Network Communications Co., Ltd.,
Beijing 100140, China
China United Network Communications Co., Ltd.,
Beijing 100140, China
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Genshan Ma,
Genshan Ma
Department of Cardiology,
Zhongda Hospital,
Southeast University,
Nanjing 210009, China
Zhongda Hospital,
Southeast University,
Nanjing 210009, China
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Gary S. Mintz,
Gary S. Mintz
The Cardiovascular Research Foundation,
Columbia University,
New York, NY 10022
Columbia University,
New York, NY 10022
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Dalin Tang
Dalin Tang
Mathematical Sciences Department,
Worcester Polytechnic Institute,
Worcester, MA 01609;
Worcester Polytechnic Institute,
Worcester, MA 01609;
Department of Mathematics,
Southeast University,
Nanjing 210096, China
Southeast University,
Nanjing 210096, China
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Liang Wang
Mathematical Sciences Department,
Worcester Polytechnic Institute,
Worcester, MA 01609
Worcester Polytechnic Institute,
Worcester, MA 01609
Jian Zhu
Department of Cardiology,
Zhongda Hospital,
Southeast University,
Nanjing 210009, China
Zhongda Hospital,
Southeast University,
Nanjing 210009, China
Habib Samady
Department of Medicine,
Emory University School of Medicine,
Atlanta, GA 30307
Emory University School of Medicine,
Atlanta, GA 30307
David Monoly
Department of Medicine,
Emory University School of Medicine,
Atlanta, GA 30307
Emory University School of Medicine,
Atlanta, GA 30307
Jie Zheng
Mallinckrodt Institute of Radiology,
Washington University,
St. Louis, MO 63110
Washington University,
St. Louis, MO 63110
Xiaoya Guo
Department of Mathematics,
Southeast University,
Nanjing 210096, China
Southeast University,
Nanjing 210096, China
Akiko Maehara
The Cardiovascular Research Foundation,
Columbia University,
New York, NY 10022
Columbia University,
New York, NY 10022
Chun Yang
Network Technology Research Institute,
China United Network Communications Co., Ltd.,
Beijing 100140, China
China United Network Communications Co., Ltd.,
Beijing 100140, China
Genshan Ma
Department of Cardiology,
Zhongda Hospital,
Southeast University,
Nanjing 210009, China
Zhongda Hospital,
Southeast University,
Nanjing 210009, China
Gary S. Mintz
The Cardiovascular Research Foundation,
Columbia University,
New York, NY 10022
Columbia University,
New York, NY 10022
Dalin Tang
Mathematical Sciences Department,
Worcester Polytechnic Institute,
Worcester, MA 01609;
Worcester Polytechnic Institute,
Worcester, MA 01609;
Department of Mathematics,
Southeast University,
Nanjing 210096, China
Southeast University,
Nanjing 210096, China
1L. Wang and J. Zhu contributed equally to this paper.
2Corresponding author.
Manuscript received May 6, 2016; final manuscript received September 22, 2016; published online November 4, 2016. Assoc. Editor: C. Alberto Figueroa.
J Biomech Eng. Jan 2017, 139(1): 014501 (11 pages)
Published Online: November 4, 2016
Article history
Received:
May 6, 2016
Revised:
September 22, 2016
Citation
Wang, L., Zhu, J., Samady, H., Monoly, D., Zheng, J., Guo, X., Maehara, A., Yang, C., Ma, G., Mintz, G. S., and Tang, D. (November 4, 2016). "Effects of Residual Stress, Axial Stretch, and Circumferential Shrinkage on Coronary Plaque Stress and Strain Calculations: A Modeling Study Using IVUS-Based Near-Idealized Geometries." ASME. J Biomech Eng. January 2017; 139(1): 014501. https://doi.org/10.1115/1.4034867
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