TY - JOUR
T1 - A meso-scale constitutive model for heart valve soft tissue incorporating fibril kinetics
AU - Shu, Peng
AU - Li, Daochun
AU - Lv, Rui
AU - Han, Jiakun
AU - Zhao, Shiwei
AU - Xiang, Jinwu
N1 - Publisher Copyright:
© 2025 Taylor & Francis Group, LLC.
PY - 2026
Y1 - 2026
N2 - Abstracts: Fiber-rich natural heart valve (HV) soft tissues have a multiscale structure as well as superior deformability. Accurately capturing the deformation of HV is essential for predicting response. However, previous models have fitted poorly to planar stress states and lacked a comprehensive understanding of fibril kinematics. We describe tissue mechanics based on the waviness and orientation distribution of the fibrils by considering collagen, elastin, and matrix components, and introduce all currently known fibril kinematics (straightening, rotation, and slip). The model is validated by fibril orientation distribution, and its extensibility is demonstrated on aortic, mitral, and tricuspid valves. The proposed meso-scale constitutive model fully captures the J-type stress curve of HV at the tissue level, and can quantitatively respond to the mechanical contributions of each tissue component, which has promising application potential for the mechanical study of soft tissues and may provide new insights into the superior mechanical properties of HV.
AB - Abstracts: Fiber-rich natural heart valve (HV) soft tissues have a multiscale structure as well as superior deformability. Accurately capturing the deformation of HV is essential for predicting response. However, previous models have fitted poorly to planar stress states and lacked a comprehensive understanding of fibril kinematics. We describe tissue mechanics based on the waviness and orientation distribution of the fibrils by considering collagen, elastin, and matrix components, and introduce all currently known fibril kinematics (straightening, rotation, and slip). The model is validated by fibril orientation distribution, and its extensibility is demonstrated on aortic, mitral, and tricuspid valves. The proposed meso-scale constitutive model fully captures the J-type stress curve of HV at the tissue level, and can quantitatively respond to the mechanical contributions of each tissue component, which has promising application potential for the mechanical study of soft tissues and may provide new insights into the superior mechanical properties of HV.
KW - Soft tissue mechanics
KW - constitutive model
KW - fibril kinetics
KW - meso-scale
KW - multi-component
UR - https://www.scopus.com/pages/publications/105008755690
U2 - 10.1080/15376494.2025.2497464
DO - 10.1080/15376494.2025.2497464
M3 - 文章
AN - SCOPUS:105008755690
SN - 1537-6494
VL - 33
JO - Mechanics of Advanced Materials and Structures
JF - Mechanics of Advanced Materials and Structures
IS - 1
M1 - 2497464
ER -