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The results were very satisfactory for characterizing and predicting the fracture strength of hardened specimens as a function of the composition.
Figure 7 shows the density of photoreceptors for all specimens as a function of the retinal eccentricity.
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A FEA based methodology is shown to identify the optimal specimen geometry as a function of the material's ductility and strain hardening.
The tensile strength for all the conditions of the specimens is represented as a function of the immersion time in Fig. 3e.
Moreover, rate of change in the strain of the concrete specimens as a function of applied stress representing stress strain curves is presented in Fig. 10.
Fig. 6 Experimental P-δ curves of the DCB specimens as a function of temperature.
We evaluated the microfracture density of 10 specimens as a function of crack surface area per unit volume (Table 2).
Figure 3 Thermal conductivity of 50 nm thick freestanding silicon nitride specimens as a function of mechanical strain.
Open image in new window Fig. 4 Mass loss of immersed specimens as a function of immersion time.
Open image in new window Fig. 3 Typical stress-strain curves for the a non-immersed specimen, b specimen immersed in 0.2 % APF solution, and specimens aged for c 24 h and d 240 h at room temperature in air after immersion Open image in new window Fig. 4 Tensile strength for specimens immersed in 0.2 % APF solution and cathodically hydrogen-charged specimens as a function of aging time.
The main purpose of this study was to analyze the volumetric and surface characteristics of hot mix asphalt (HMA) specimens as a function of compaction process.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com