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Thomas J Impelluso

Publications and source records attributed to Thomas J Impelluso.

3 recordsLinked to original sources

Continuum remodeling revisited : deformation rate driven functional adaptation using a hypoelastic constitutive law.

Recent research effort in bone remodeling has been directed toward describing interstitial fluid flow in the lacuno-canalicular system and its potential as a cellular stimulus. Regardless of the precise contents of the mechanotransduction "black box", it seems clear that the fluid flow on which the remodeling is predicated cannot occur under static loading conditions. In an attempt to help continuum remodeling simulations catch up with cellular and subcellular research, this paper presents a simple, strain rate driven remodeling algorithm for density allocation and principal material direction rotations. An explicit finite element code was written and deployed on a supercomputer which discretizes the remodeling process and uses an objective hypoelastic constitutive law to simulate trabecular realignment. Results indicate that a target strain rate for this dynamic approach is |D ( I )| = 1.7% per second which seems reasonable when compared to observed strain rates. Simulations indicate that a morpho-mechanically realistic three-dimensional bone can be synthesized by applying a few dynamic loads at the envelope of common daily physiological rates, even with no static loading component.

Adaptation, Physiological↗

A proposed computational biomechanics cyber-infrastructure for multi-phase and multi-scale problems: delivering biomechanics to the surgeon.

This paper presents a new direction for practitioners of computational biomechanics. It provides a description of three prototype software platforms, which demonstrate how the cyber-infrastructure can be used to integrate the algorithms of computational biomechanics to solve multi-phase and multi-scale problems. Then, a development platform is presented. This platform can also deliver integrated biomechanics into the surgical ward for surgical planning. This platform performs these tasks without the need for advanced network software tools: an appendix provides all the simple and fundamental open source and CI technologies that are required. The overarching goal of this paper is to make the potential of the emerging cyber-infrastructure comprehensible and accessible to practitioners of computational biomechanics.

Biomechanical Phenomena↗

A density distribution algorithm for bone incorporating local orthotropy, modal analysis and theories of cellular solids.

An algorithm for bone remodeling is presented which allows for both a redistribution of density and a continuous change of principal material directions for the orthotropic material properties of bone. It employs a modal analysis to add density for growth and a local effective strain based analysis to redistribute density. General re-distribution functions are presented. The model utilizes theories of cellular solids to relate density and strength. The code predicts the same general density distributions and local orthotropy as observed in reality.

Algorithms↗