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The considered distributions of material properties include variations of parameters (local stiffness and strength) both from filament to filament and over the length of each filament.
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Such changes may lead to controlled modification of material properties, including their biocompatibility.
Different designs are discussed on the basis of material properties, including optical and thermal characteristics.
The hydrogels were designed to exhibit similar material properties, including modulus, swelling and hydrolytic degradation kinetics.
In a study we compare different meso material properties including bounds and effective material constants.
Degradations in the mechanical and material properties including stiffness, strength, and deformation at fracture, are characterized and presented herein.
Material properties including thermal elongation, Young's modulus, yield strength, ultimate strength and ultimate strain were obtained.
All material properties, including the length scale parameter, are assumed to be functions of the thickness coordinate.
The elastic material properties (including the Young's modulus and Poisson's ratio of each constituent material) and the foundation stiffness parameters are modeled as independent random variables.
Sensors printed onto paper are considered in further experiments as their response to noradrenaline is the highest and advantageous material properties, including sustainability and flexibility of the material.
This paper presents an estimation of the local durability based on the highly stressed volume approach by simply determinable static material properties including also sinter-hardened conditions.
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CEO of Professional Science Editing for Scientists @ prosciediting.com