Physics
Fluid Mechanics and Hydraulics
376 Questions
Fluid mechanics and hydraulics questions address the principles of fluid flow, pipe resistance, and open channel dynamics. The topics include Bernoulli equation, Navier-Stokes equation, and hydrograph calculations. These concepts are crucial for civil and mechanical engineering competitive examinations.
Fluid flow equationsOpen channel flowPipe frictionHydraulic jumpHydrograph analysis
Fluid Mechanics and Hydraulics Questions
Which of the following is NOT a consequence of high flow resistance?
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Increased pressure drop
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Reduced flow rate
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Increased energy consumption
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Improved flow efficiency
D
Correct answer
Explanation
High flow resistance leads to increased pressure drop, reduced flow rate, and increased energy consumption. It does not improve flow efficiency.
In a pipe flow, the pressure drop due to flow resistance is:
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Proportional to the square of the flow velocity
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Proportional to the flow velocity
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Proportional to the square root of the flow velocity
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Independent of the flow velocity
A
Correct answer
Explanation
The pressure drop due to flow resistance in a pipe is proportional to the square of the flow velocity, as expressed by the Darcy-Weisbach equation.
Which of the following is NOT a method to reduce flow resistance in a pipe?
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Using a larger pipe diameter
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Using a smoother pipe surface
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Increasing the fluid viscosity
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Using a shorter pipe length
C
Correct answer
Explanation
Increasing the fluid viscosity increases flow resistance. Using a larger pipe diameter, using a smoother pipe surface, and using a shorter pipe length are all methods to reduce flow resistance.
The phenomenon of sudden pressure drop and flow separation due to high flow resistance is known as:
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Cavitation
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Turbulence
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Laminar flow
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Stagnation point
A
Correct answer
Explanation
Cavitation is the phenomenon of sudden pressure drop and flow separation due to high flow resistance, often leading to the formation of vapor bubbles in a liquid.
The friction factor in turbulent flow is primarily affected by:
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Reynolds number
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Pipe roughness
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Fluid viscosity
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All of the above
D
Correct answer
Explanation
The friction factor in turbulent flow is primarily affected by the Reynolds number, pipe roughness, and fluid viscosity.
Which of the following is NOT a dimensionless number used to characterize flow resistance?
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Reynolds number
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Friction factor
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Nusselt number
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Prandtl number
C
Correct answer
Explanation
The Nusselt number is a dimensionless number used to characterize heat transfer, not flow resistance. The Reynolds number and friction factor are dimensionless numbers used to characterize flow resistance.
The pressure drop due to flow resistance in a pipe is:
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Independent of the pipe length
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Proportional to the pipe length
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Proportional to the square of the pipe length
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Proportional to the cube of the pipe length
B
Correct answer
Explanation
The pressure drop due to flow resistance in a pipe is proportional to the pipe length, as expressed by the Darcy-Weisbach equation.
The phenomenon of sudden pressure drop and flow separation due to high flow resistance in an external flow is known as:
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Cavitation
-
Turbulence
-
Laminar flow
-
Flow separation
D
Correct answer
Explanation
Flow separation is the phenomenon of sudden pressure drop and flow separation due to high flow resistance in an external flow, often leading to the formation of a wake region.
Which mathematical concept was used to calculate the flow rate of water in irrigation canals?
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Bernoulli's equation
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Navier-Stokes equations
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Darcy-Weisbach equation
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Manning's equation
D
Correct answer
Explanation
Manning's equation, developed by the Irish engineer Robert Manning in the 19th century, was used to calculate the flow rate of water in irrigation canals.
Which of the following factors influences the velocity of river flow?
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Channel slope
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River width
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Water depth
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All of the above
D
Correct answer
Explanation
The velocity of river flow is influenced by a combination of factors, including channel slope, river width, and water depth.
Which of the following is NOT a common sediment transport model?
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Einstein's bed load transport equation
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Meyer-Peter and Müller bed load transport equation
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Engelund and Hansen suspended load transport equation
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Darcy-Weisbach equation
D
Correct answer
Explanation
The Darcy-Weisbach equation is not a sediment transport model, but rather an equation used to calculate head loss in pipes and channels.
Which property of a fluid is responsible for its resistance to flow?
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Density
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Viscosity
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Surface tension
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Compressibility
B
Correct answer
Explanation
Viscosity is the property of a fluid that resists the relative motion of its adjacent layers. It is responsible for the internal friction within a fluid, which opposes the flow of the fluid.
What is the term used to describe the flow of a fluid in which the fluid particles move in parallel layers, with no mixing or swirling?
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Laminar flow
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Turbulent flow
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Viscous flow
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Inviscid flow
A
Correct answer
Explanation
Laminar flow is characterized by smooth, orderly, and predictable flow patterns. The fluid particles move in parallel layers, with no mixing or swirling. This type of flow occurs at low velocities and high viscosities.
What is the term used to describe the flow of a fluid in which the fluid particles move in random and irregular patterns, with mixing and swirling?
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Laminar flow
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Turbulent flow
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Viscous flow
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Inviscid flow
B
Correct answer
Explanation
Turbulent flow is characterized by chaotic and unpredictable flow patterns. The fluid particles move in random and irregular directions, creating mixing and swirling. This type of flow occurs at high velocities and low viscosities.
What is the term used to describe the flow of a fluid in which the fluid particles move in a helical or spiral pattern?
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Laminar flow
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Turbulent flow
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Viscous flow
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Helical flow
D
Correct answer
Explanation
Helical flow is a type of fluid flow in which the fluid particles move in a helical or spiral pattern. This type of flow is often observed in fluids with high viscosity or in the presence of strong shear forces.