Mechanical Properties Testing

Mechanical properties testing is the measurement of how a material responds to applied forces, revealing its strength, stiffness, ductility, hardness, and resistance to fracture. In a typical test, a controlled load or deformation is applied through tension, compression, bending, or indentation while instruments record the resulting displacement and force; these data generate stress-strain relationships and related mechanical parameters. In chemistry and materials research, testing helps connect molecular structure, composition, processing, and environmental conditions with macroscopic performance. The results guide the development and quality control of polymers, composites, ceramics, metals, coatings, and other materials used in research, manufacturing, and engineering.

Mechanical Properties Testing - Related Videos

Research

JoVE Journal - Bioengineering

Mechanical Testing of Mouse Carotid Arteries: from Newborn to Adult

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Cited by 31 •

2012

Passive mechanical testing of mouse carotid arteries is described, with special consideration for adapting to different specimen ages. The procedures include determining the in vivo length of the artery, mounting it in a pressure myograph, recording data, measuring the unloaded dimensions and analyzing the resulting data.

In Vivo Evaluation of the Mechanical and Viscoelastic Properties of the Rat Tongue

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2017

We describe a surgical procedure in an anesthetized rat model for determining the muscle tone and viscoelastic properties of the tongue. The procedure involves specific stimulation of the hypoglossal nerves and application of passive Lissajous force/deformation curves to the muscle.

A Millimeter Scale Flexural Testing System for Measuring the Mechanical Properties of Marine Sponge Spicules

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Cited by 4 •

2017

We present a protocol for performing three-point bending tests on sub-millimeter scale fibers using a custom-built mechanical testing device. The device can measure forces ranging from 20 µN up to 10 N and can therefore accommodate a variety of fiber sizes.

Characterizing Multiscale Mechanical Properties of Brain Tissue Using Atomic Force Microscopy, Impact Indentation, and Rheometry

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Cited by 36 •

2016

We present a set of techniques to characterize the viscoelastic mechanical properties of brain at the micro-, meso-, and macro-scales.

Quantifying the Mechanical Properties of the Endothelial Glycocalyx with Atomic Force Microscopy

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Cited by 34 •

2013

The mechanical characteristics of endothelial glycocalyx were measured by indentation using micron sized spheres on AFM cantilevers. Endothelial cells were cultured in a custom chamber under physiological flow conditions to induce glycocalyx expression. Data were analyzed using a thin film model to determine the glycocalyx thickness and modulus.

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