TY - JOUR
T1 - On the fracture and fatigue of soft tissues
AU - Chen, Xi
AU - Zhang, Wenjie
AU - Zheng, Simin
AU - Liu, Fengkai
AU - Fu, Yuntao
AU - Lei, Lupei
AU - Jiang, Honglin
AU - Tang, Jingda
AU - Wang, Tiejun
N1 - Publisher Copyright:
© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/9
Y1 - 2026/9
N2 - Soft biological tissues, such as skin, cartilage, and heart valves, are vital for fundamental physiological functions in living bodies. Through long-time evolution, soft tissues have acquired unparalleled fracture and fatigue properties. Understanding the toughening and fatigue-resistant mechanisms of soft tissues are critical for clinical applications and the development of bioinspired materials. In the past decades, significant progress has been achieved, but remains scattered in literatures. Thus, a comprehensive review is needed for further investigation. This review aims to summarize: (i) the structures and functions of soft tissues; (ii) the deformation and constitutive models of soft tissues; (iii) the toughening mechanism and numerical fracture modeling under monotonic loading; (iv) the fatigue damage mechanism and fatigue crack growth under cyclic loading; and (v) the deterioration of mechanical properties due to pathological processes such as calcification. This review may provide systematic knowledge for understanding the fracture and fatigue of soft tissues, and summarize the natural design principles. It is hoped to inspire further interdisciplinary research to design bioinspired soft materials with high toughness and durability, and facilitate their applications in biomedicine.
AB - Soft biological tissues, such as skin, cartilage, and heart valves, are vital for fundamental physiological functions in living bodies. Through long-time evolution, soft tissues have acquired unparalleled fracture and fatigue properties. Understanding the toughening and fatigue-resistant mechanisms of soft tissues are critical for clinical applications and the development of bioinspired materials. In the past decades, significant progress has been achieved, but remains scattered in literatures. Thus, a comprehensive review is needed for further investigation. This review aims to summarize: (i) the structures and functions of soft tissues; (ii) the deformation and constitutive models of soft tissues; (iii) the toughening mechanism and numerical fracture modeling under monotonic loading; (iv) the fatigue damage mechanism and fatigue crack growth under cyclic loading; and (v) the deterioration of mechanical properties due to pathological processes such as calcification. This review may provide systematic knowledge for understanding the fracture and fatigue of soft tissues, and summarize the natural design principles. It is hoped to inspire further interdisciplinary research to design bioinspired soft materials with high toughness and durability, and facilitate their applications in biomedicine.
KW - Fatigue
KW - Racture
KW - Soft tissues
UR - https://www.scopus.com/pages/publications/105046832233
U2 - 10.1016/j.eml.2026.102510
DO - 10.1016/j.eml.2026.102510
M3 - 文献综述
AN - SCOPUS:105046832233
SN - 2352-4316
VL - 87
JO - Extreme Mechanics Letters
JF - Extreme Mechanics Letters
M1 - 102510
ER -