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Over this shear range, targeted wrinkled microbubbles were deformed by shear flow, unlike wrinkle-free microbubbles.
An electronic noise limited measurement resolution of ⩽0.11%, is predicted for measurement over a shear range of 1.0→1000s−1, at a measurement bandwidth of 50Hz.
Three different devices were investigated here (paddle mixer, oscillating grid and Couette) to examine the effect of different laboratory devices on the particle size spectra over a wide range of shear range values (G=4 102 s−1) at four different initial volume concentrations (φ0=2×10−5, 4×10−5, 8×10−5 and 10×10−5).
The measurements of dynamic viscosity curves were performed in a step procedure in the CR mode at the shear range from 1 to 1,000 s −1 in the logarithmic scale.
Together these additives create a viscoelastic solution with a non-monotonic viscosity shear rate response, i.e., the fluid can behave as shear thinner and shear thickener depending on the shear range.
Relatively, the DEChN dispersion possessed a higher viscosity between the shear range because of the longer fiber length and thinner diameter, and the TOChN dispersion possessed a lower viscosity, which was consistent with the transparency difference of the two nano-fiber types.
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Mean values for rolling shear ranged from 1.0 N/mm2 to 2.0 N/mm2.0
We performed measurements of dynamic viscosity in a shear rate range of 0.01 to 2,000 s−1 and a temperature range of -15°C to 20°C.
However, the shear rate range of interested was 100 800 s−1 and therefore only data in this range were used in determining the rheological parameters of fluids.
In the higher shear rate range the smaller channels exhibited a lower viscosity while in the lower shear rate range all solutions exhibited a significant increase in viscosity.
The shear rate range extended 0≤˙γ≤750 (s−1).
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