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The toughness was characterized by the fracture energy (Gc) determined on compact tension specimens at room temperature.
It was found that both adhesive and cohesive failure happened for dry specimens at room temperature.
Finally, some fatigue crack growth rates (FCG) were determined under loading modes I or III, for thin specimens, at room temperature.
Strain-controlled constant amplitude pulsating fatigue experiments were conducted on heat-treated AM NiTi specimens at room temperature (∼24 °C) to investigate their cyclic deformation and fatigue behavior.
Laboratory testing of SE(B) and SE(T) specimens at room temperature provides necessary and sufficient information to calibrate the parameters of the GT yielding law.
Tensile properties were measured on dumb-bell specimens at room temperature using a ZWICK Z010 tensile test machine (Zwick Inc., Ulm, Germany).
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Sampling of additional ingroup genera for this study was precluded by unavailability of specimens adequately preserved for molecular analysis; DNA from pinned museum specimens or specimens stored at room temperature for prolonged periods was found to be excessively degraded.
Electrical conductivity of order 3×10−4 Scm−1 (1) and 1.6×10−4 Scm−1 (2) is measured on thin film specimen at room temperature.
First, a high temperature prestrain reduces the initial values of β, on subsequent deformation at room temperature, compared to that of a virgin specimen at room temperature.
Very few data are available in the literature, but useful information could be obtained in "residual" conditions, i.e. by testing the specimen at room temperature after a suitable thermal cycle.
The samples' shrinkage was calculated at specific temperatures from the variation of the samples' area, using (1), which assumes isotropic shrinkage [ 32]: (1) Shrinkage = A 0 − A T A 0 × 100, where A0 = the initial area of the specimen at room temperature, and A T = the area of the specimen at temperature T = 900°C.
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