A macroscopic approach for stress-driven anisotropic growth in bioengineered soft tissues

19Citations
Citations of this article
19Readers
Mendeley users who have this article in their library.

This article is free to access.

Abstract

The simulation of growth processes within soft biological tissues is of utmost importance for many applications in the medical sector. Within this contribution, we propose a new macroscopic approach for modelling stress-driven volumetric growth occurring in soft tissues. Instead of using the standard approach of a-priori defining the structure of the growth tensor, we postulate the existence of a general growth potential. Such a potential describes all eligible homeostatic stress states that can ultimately be reached as a result of the growth process. Making use of well-established methods from visco-plasticity, the evolution of the growth-related right Cauchy–Green tensor is subsequently defined as a time-dependent associative evolution law with respect to the introduced potential. This approach naturally leads to a formulation that is able to cover both, isotropic and anisotropic growth-related changes in geometry. It furthermore allows the model to flexibly adapt to changing boundary and loading conditions. Besides the theoretical development, we also describe the algorithmic implementation and furthermore compare the newly derived model with a standard formulation of isotropic growth.

References Powered by Scopus

Gmsh: A 3-D finite element mesh generator with built-in pre- and post-processing facilities

6327Citations
N/AReaders
Get full text

A three-dimensional constitutive model for the large stretch behavior of rubber elastic materials

2832Citations
N/AReaders
Get full text

Elastic-plastic deformation at finite strains

2159Citations
N/AReaders
Get full text

Cited by Powered by Scopus

Theory and implementation of inelastic Constitutive Artificial Neural Networks

32Citations
N/AReaders
Get full text

Inelastic material formulations based on a co-rotated intermediate configuration—Application to bioengineered tissues

23Citations
N/AReaders
Get full text

A multiphysics modeling approach for in-stent restenosis: Theoretical aspects and finite element implementation

17Citations
N/AReaders
Get full text

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Cite

CITATION STYLE

APA

Lamm, L., Holthusen, H., Brepols, T., Jockenhövel, S., & Reese, S. (2022). A macroscopic approach for stress-driven anisotropic growth in bioengineered soft tissues. Biomechanics and Modeling in Mechanobiology, 21(2), 627–645. https://doi.org/10.1007/s10237-021-01554-1

Readers' Seniority

Tooltip

PhD / Post grad / Masters / Doc 6

50%

Researcher 5

42%

Professor / Associate Prof. 1

8%

Readers' Discipline

Tooltip

Engineering 10

91%

Agricultural and Biological Sciences 1

9%

Save time finding and organizing research with Mendeley

Sign up for free