Chapter 9: Problem 37
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Chapter 9: Problem 37
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Two identical spheres are dropped into two different columns: one column contains a liquid of viscosity \(0.5 \mathrm{Pa} \cdot \mathrm{s},\) while the other contains a liquid of the same density but unknown viscosity. The sedimentation velocity in the second tube is \(20 \%\) higher than the sedimentation velocity in the first tube. What is the viscosity of the second liquid?
A piece of metal is released under water. The volume of the metal is \(50.0 \mathrm{cm}^{3}\) and its specific gravity is 5.0 What is its initial acceleration?
An aluminum sphere (specific gravity \(=2.7\) ) falling through water reaches a terminal speed of \(5.0 \mathrm{cm} / \mathrm{s}\) What is the terminal speed of an air bubble of the same radius rising through water? Assume viscous drag in both cases and ignore the possibility of changes in size or shape of the air bubble; the temperature is \(20^{\circ} \mathrm{C}\)
Estimate the average blood pressure in a person's foot, if the foot is \(1.37 \mathrm{m}\) below the aorta, where the average blood pressure is 104 mm Hg. For the purposes of this estimate, assume the blood isn't flowing.
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