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The Jnr-temp curves can be considered as master curves for local conditions and material.
Master curves for the dynamic moduli were derived by time temperature superposition along the frequency axis.
However, it has not been possible to build master curves for the complex Young modulus E* for the copolymers.
Master curves for the essential works (we), plastic works (βwp), and approximate critical crack tip opening displacements were compared.
By scaling the Zipf plot of l, we obtain two master curves for a sample of cities, which are not a function of city size.
Using the time-temperature superposition principle (TTSP), creep compliance master curves for both materials are obtained at a reference temperature of 0 °C.
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In addition, a master curve for the fatigue life of the copper thin film is derived.
A master curve for the storage modulus of NiCoCrAlY coating was successfully constructed using appropriate shift-factors.
Here the elastic plastic deformation work was considered in order to determine a temperature-dependent master curve for fatigue behavior.
Individual curves significantly diverge from the master curve for high conversions, indicating that different regimes are encountered during photocuring of commercial stereolithography cationic resin.
Accordingly, it follows time temperature superposition, expressed as a master curve for the normalized conductivity as a function of the non-dimensional frequency.
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