F The specific weight of a fluid is the product of the fluid's density and the acceleration due to gravity. Stronger surface tension leads to higher capillary rise. Absolute pressures are frequently negative. If the pressure of fluid drops below the vapor pressure of that fluid at that temperature, the fluid will cavitate. F T F F Density can be measured in lbf/ft' in the English system of units. For a hydrostatic incompressible fluid, pressure is independent of depth. A fluid with a high bulk modulus of elasticity is more difficult to compress than one with a low bulk modulus of elasticity. Viscosity is caused, in part, by the surface tension within a fluid. A fluid can resist an applied shear stress by deforming. Pressure increases faster with depth in less dense fluids than in more dense fluids. T F F F F

Elements Of Electromagnetics
7th Edition
ISBN:9780190698614
Author:Sadiku, Matthew N. O.
Publisher:Sadiku, Matthew N. O.
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T
F
The specific weight of a fluid is the product of the fluid's density and the acceleration
due to gravity.
Stronger surface tension leads to higher capillary rise.
Absolute pressures are frequently negative.
If the pressure of fluid drops below the vapor pressure of that fluid at that
temperature, the fluid will cavitate.
F
F
T
F
F
Density can be measured in lb;/ft° in the English system of units.
For a hydrostatic incompressible fluid, pressure is independent of depth.
A fluid with a high bulk modulus of elasticity is more difficult to compress than one
with a low bulk modulus of elasticity.
Viscosity is caused, in part, by the surface tension within a fluid.
A fluid can resist an applied shear stress by deforming.
Pressure increases faster with depth in less dense fluids than in more dense fluids.
T
F
F
F
F
F
Transcribed Image Text:T F The specific weight of a fluid is the product of the fluid's density and the acceleration due to gravity. Stronger surface tension leads to higher capillary rise. Absolute pressures are frequently negative. If the pressure of fluid drops below the vapor pressure of that fluid at that temperature, the fluid will cavitate. F F T F F Density can be measured in lb;/ft° in the English system of units. For a hydrostatic incompressible fluid, pressure is independent of depth. A fluid with a high bulk modulus of elasticity is more difficult to compress than one with a low bulk modulus of elasticity. Viscosity is caused, in part, by the surface tension within a fluid. A fluid can resist an applied shear stress by deforming. Pressure increases faster with depth in less dense fluids than in more dense fluids. T F F F F F
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