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It is believed that such a complete set of surface property data for these materials are new to the literature.
It thus becomes essential to have rapid, low-cost and reliable methods for obtaining mechanical property data for these materials, and assessing damage in them.
The evaluated data for these materials in the existing nuclear data libraries — ENDF/B-VII.1, JEFF-3.1, JENDL-4.0, CENDL-3.1, ROSFOND, IRDFF 1.0 — are reviewed, discrepancies are identified, and some integral properties are given.
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Data derived for these materials, including chemical, thermal and gas transport characterization, were compared to previous reports discussing poly[bis-phenoxyphosphazene] and its analog with tert-butyl substitution: poly[bis- 4-tert-butylphenoxy phosphazene].
In the most SiO2-rich samples GSP-2 and RGM-1 the relative loss of Na was systematically higher than the loss of K (Fig. 9). Figure 9 Plot of Na (open circle) and K (open square) concentrations in 7 USGS rock standards normalized to the data reported for these materials in [38].
Lastly, the results of these experiments were compared with similar fatigue data for this material from both axle-shafts and in-phase overload tests.
The type of information gained by each method could give valuable data for the material's quality.
Also given are values corrected for porosity using the expressions of Ledbetter et al. Literature data for these types of materials are sparse, but single-crystal values for BiFeO3 (BFO) have been calculated from first principles and partially validated experimentally.
Modeling success rests on the availability of constitutive data for frangible materials used in these bullets, such as tensile strength.
There is a distinct lack of established materials property data for all abradable materials, due to the difficulty of testing this very unique class of materials.
These applications impose specific requirements on cross-section data for structural materials, targets, actinides and biologically relevant materials.
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