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The mechanical (tensile) data showed fairly good strength retention of the yarns exposed in the wake direction, while ram exposure resulted in a 25% strength decrease.
Mechanical tensile data were calculated from the stress-strain curves on an average of four specimens.
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These in turn deteriorate mechanical tensile properties.
Fiber diameter, percent doping, and copolymer composition influence the nonwetting nature of the meshes and alter their mechanical (tensile) properties.
It is found that the mechanical properties are the key parameter to simulate the characteristics as close as the experimental results after using three different sets of mechanical property data including the actual tensile test results of the present material for a spacer grid of a dual cooled fuel.
Mechanical testing data revealed a significant reduction in tensile strength in banded structures for a similar level of ductility.
Tensile test is conducted to obtain in-plane mechanical properties (tensile strength, failure strain, tensile modulus and Poisson's ratio).
Mechanical data were obtained using tensile testing to expand structure-property morphology relationships.
Mechanical data obtained showed that tensile strength and stiffness is a product of the fibre/matrix synergy, whereas the compressive strength and stiffness are contributed by the reinforcing matrix.
The mechanical data concerning modulus, tensile strength, and elongation at break of the vulcanizates are also provided in Tables 3 and 4. The crosslink densities are determined only for carbon black loaded compound by the Flory Rehner equation [12].
Mechanical data indicated improvement in the tensile strength and modulus with organoclay loading.
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