Engineering Mechanics

Engineering mechanics is the branch of science that examines how forces affect the motion, equilibrium, and deformation of physical bodies, providing a foundation for safe and efficient engineering design. It applies Newton’s laws, force and moment balances, free-body diagrams, and material principles to analyze structures and machines under static or dynamic loading conditions. In engineering, these methods help predict stresses, reactions, displacement, stability, and failure before construction or operation. Engineering mechanics supports the design of bridges, vehicles, buildings, robotic systems, and mechanical components, while also linking theoretical models with experimental testing and computational simulation.

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Research

JoVE Journal - Bioengineering

Design of a Biaxial Mechanical Loading Bioreactor for Tissue Engineering

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Cited by 24 •

2013

We designed a novel mechanical loading bioreactor that can apply uniaxial or biaxial mechanical strain to a cartilage biocomposite prior to transplantation into an articular cartilage defect.

Construction of Defined Human Engineered Cardiac Tissues to Study Mechanisms of Cardiac Cell Therapy

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Cited by 16 •

2016

This manuscript describes the creation of defined engineered cardiac tissues using surface marker expression and cell sorting. The defined tissues can then be used in a multi-tissue bioreactor to investigate mechanisms of cardiac cell therapy in order to provide a functional, yet controlled, model system of the human heart.

Magnetic Resonance Elastography Methodology for the Evaluation of Tissue Engineered Construct Growth

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Cited by 16 •

2012

The procedure demonstrates the methodology of magnetic resonance elastography for monitoring the engineered outcome of adipose and osteogenic tissue engineered constructs through noninvasive local assessment of the mechanical properties using microscopic magnetic resonance elastography (μMRE).

Three-dimensional Tissue Engineered Aligned Astrocyte Networks to Recapitulate Developmental Mechanisms and Facilitate Nervous System Regeneration

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Cited by 19 •

2018

We showcase the development of self-assembled, three-dimensional bundles of longitudinally aligned astrocytic somata and processes within a novel biomaterial encasement. These engineered "living scaffolds", exhibiting micron-scale diameter yet extending centimeters in length, may serve as test-beds to study neurodevelopmental mechanisms or facilitate neuroregeneration by directing neuronal migration and/or axonal pathfinding.

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