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We compared the catalytic activity of the two enzymes as a function of temperature and ionic strength, using an MBP NusG fusion protein as a model substrate.
Namely, we model local material strength using an autocorrelated random field attempting to capture a statistical part of the complex size effect, scatter inclusive.
The approach taken is to first determine the heat source location and strength using an inverse heat transfer calculation based on the surface temperature measurements.
The termolecular mechanism was applied to interpret the experimental data after correcting for non-idealities from the ionic strength using an ionic correction factor.
After 48 h, the load is removed and the samples are tested for shear strength using an Instron 3369 equipped with a 2530 low-profile 50-KN load cell.
The barrier solvent composition was optimized and the chemical composition of fractionated polymer chains was investigated as a function of barrier solvent strength using an online Fourier-transform infrared (FTIR) detector.
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ROM was assessed using a goniometer and grip strength using a dynamometer.
We further test for instrument strength using a joint F-test for the operator and spouse equations.
This study evaluates the temperature dependence of interfacial normal strength using a cruciform specimen method.
This research work identifies joint strength using a mainly experimental procedure.
The stage design strength ratio, DS t), is simply related to the relative strength using a two-stage design analysis approach.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com