Physics For Scientists And Engineers, Volume 2, Technology Update
Physics For Scientists And Engineers, Volume 2, Technology Update
9th Edition
ISBN: 9781305116412
Author: SERWAY, Raymond A.; Jewett, John W.
Publisher: Cengage Learning
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Chapter 14, Problem 14.44P

A village maintains a large tank with ail open top, containing water for emergencies. The water can drain from the tank through a hose of diameter 6.60 cm. The hose ends with a nozzle of diameter 2.20 cm. A rubber stopper is inserted into the nozzle. The water level in the lank is kept 7.50 m above the nozzle. (a) Calculate the friction force exerted on the stopper by the nozzle. (b) The stopper is removed. What mass of water flows from the nozzle in 2.00 h? (c) Calculate the gauge pressure of the flowing water in the hose just behind the nozzle.

(a)

Expert Solution
Check Mark
To determine

The friction force which is exerted on the stopper by the nozzle.

Answer to Problem 14.44P

The friction force which is exerted on the stopper by the nozzle is 27.96N .

Explanation of Solution

Given info: The diameter of a hose is 6.60cm , the diameter of the nozzle is 2.20cm , the water level in the tank above the nozzle is 7.50m and the time when water flows from the nozzle is 2.00h .

Write the equation for Bernoulli’s equation.

P1+12ρv12+ρgy1=P2+12ρv22+ρgy2

Here,

P1 is the pressure at the free surface of the water.

ρ is the density of the water.

g is the acceleration due to gravity.

v1 is the velocity of water at the free surface of water.

y1 is the distance between the water level and the nozzle.

P2 is the pressure at the nozzle.

v2 is the velocity at the nozzle.

y2 is the distance at the nozzle.

The velocity at the free surface v1 and the velocity v2 is zero. The distance inside the nozzle y2 is zero.

Substitute 0 for v1 , 0 for v2 and 0 for y2 in above equation.

P1+12ρ(0)2+ρgy1=P2+12ρ(0)2+ρg(0)P2P1=ρgy1

Write the equation for forces in equilibrium.

Fx=0P2AP1Afk=0fk=(P2P1)A

Here,

fk is the friction force.

A is the area of the nozzle.

Substitute ρgy1 for (P2P1) in above equation to find fk .

fk=(ρgy1)A

Write the formula for area of nozzle.

A=π4dN2

Here,

dN is the diameter of nozzle.

Substitute π4dN2 for A in above equation to find fk .

fk=(ρgy1)(π4dN2)

The density of water is 1000kg/m3 .

Substitute 1000kg/m3 for ρ , 9.81m/s2 for g , 7.50m for y1 and 2.20cm for dN in above equation to find fk .

fk=π4{2.20cm(1m100cm)}2(1000kg/m3)(9.81m/s2)(7.50m)=27.96N

Conclusion:

Therefore, the friction force which is exerted on the stopper by the nozzle is 27.96N .

(b)

Expert Solution
Check Mark
To determine

The mass of water flows from the nozzle.

Answer to Problem 14.44P

The mass of water flows from the nozzle is 3.32×104kg .

Explanation of Solution

Given info: The diameter of a hose is 6.60cm , the diameter of the nozzle is 2.20cm , the water level in the tank above the nozzle is 7.50m and the time when water flows from the nozzle is 2.00h .

Write the equation of mass flow rate.

m=ρ(π4dN2)v2t (1)

Here,

m is the mass of water which flows from the nozzle.

t is the time.

Write the equation of velocity at the nozzle from Bernoulli’s equation at the point of hose and nozzle.

v2=2gy1

Substitute 9.81m/s2 for g and 7.50m for y1 in above equation to find v2 .

v2=2(9.81m/s2)(7.50m)=12.1m/s

Thus, the velocity at the nozzle is 12.1m/s .

Substitute 1000kg/m3 for ρ , 2.20cm for dN , 12.1m/s for v2 and 2.00h for t in equation (1) to find m .

m=[(1000kg/m3)[π4{2.20cm(1m100cm)}2](12.1m/s){2.00h(3600s1h)}]m=3.32×104kg

Conclusion:

Therefore, the mass of water flows from the nozzle is 3.32×104kg .

(c)

Expert Solution
Check Mark
To determine

The gauge pressure of the flowing water in the hose just behind the nozzle.

Answer to Problem 14.44P

The gauge pressure of the flowing water in the hose just behind the nozzle is 7.2×104Pa .

Explanation of Solution

Given info: The diameter of a hose is 6.60cm , the diameter of the nozzle is 2.20cm , the water level in the tank above the nozzle is 7.50m and the time when water flows from the nozzle is 2.00h .

Write the equation for Bernoulli’s equation in the hose and the point of nozzle.

P1+12ρv12+ρgy1=P2+12ρv22+ρgy2

The level is same at the hose and the nozzle.

Substitute 0 for y1 and 0 for y2 in above equation.

P1+12ρv12+ρg(0)=P2+12ρv22+ρg(0)P1P2=12ρ(v22v12) (2)

Write the equation of continuity equation.

(π4dH2)v1=(π4dN2)v2v1=v2(dNdH)2

Here,

dH is the diameter of the hose.

Substitute 12.1m/s for v2 , 2.20cm for dN and 6.60cm for dH in above equation.

v1=(12.1m/s)((2.20cm)(6.60cm))2=1.35m/s

Thus, the value of velocity v1 is 1.35m/s .

Substitute 1000kg/m3 for ρ , 1.35m/s for v1 and 12.1m/s for v2 in equation (2) to find m .

P1P2=12(1000kg/m3){(12.1m/s)2(1.35m/s)2}=7.2×104Pa

Conclusion:

Therefore, the gauge pressure of the flowing water in the hose just behind the nozzle is 7.2×104Pa .

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Chapter 14 Solutions

Physics For Scientists And Engineers, Volume 2, Technology Update

Ch. 14 - A solid iron sphere and a solid lead sphere of the...Ch. 14 - Prob. 14.7OQCh. 14 - One of the predicted problems due to global...Ch. 14 - A boat develops a leak and, after its passengers...Ch. 14 - A small piece of steel is tied to a block of wood....Ch. 14 - A piece of unpainted porous wood barely floats in...Ch. 14 - A person in a boat floating in a small pond throws...Ch. 14 - Rank the buoyant forces exerted on the following...Ch. 14 - A water supply maintains a constant rate of flow...Ch. 14 - A glass of water contains floating ice cubes. When...Ch. 14 - An ideal fluid flows through a horizontal pipe...Ch. 14 - When an object is immersed in a liquid at rest,...Ch. 14 - Two thin-walled drinking glasses having equal base...Ch. 14 - Because atmospheric pressure is about 105 N/m2 and...Ch. 14 - A fish rests on the bottom of a bucket of water...Ch. 14 - You are a passenger on a spacecraft. 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The...Ch. 14 - The human brain and spinal cord are immersed in...Ch. 14 - Blaise Pascal duplicated Torricellis barometer...Ch. 14 - Prob. 14.22PCh. 14 - A backyard swimming pool with a circular base of...Ch. 14 - A tank with a flat bottom of area A and vertical...Ch. 14 - A table-tennis ball has a diameter of 3.80 cm and...Ch. 14 - Prob. 14.26PCh. 14 - A 10.0-kg block of metal measuring 12.0 cm by 10.0...Ch. 14 - A light balloon is filled with 400 m3 of helium at...Ch. 14 - A cube of wood having an edge dimension of 20.0 cm...Ch. 14 - The United States possesses the ten largest...Ch. 14 - A plastic sphere floats in water with 50.0% of its...Ch. 14 - A spherical vessel used for deep-sea exploration...Ch. 14 - A wooden block of volume 5.24 104 m3 floats in...Ch. 14 - The weight of a rectangular block of low-density...Ch. 14 - A large weather balloon whose mass is 226 kg is...Ch. 14 - A hydrometer is an instrument used to determine...Ch. 14 - Refer to Problem 16 and Figure P14.16. A...Ch. 14 - On October 21, 2001, Ian Ashpole of the United...Ch. 14 - How many cubic meters of helium are required to...Ch. 14 - Water flowing through a garden hose of diameter...Ch. 14 - A large storage tank, open at the top and filled...Ch. 14 - Prob. 14.42PCh. 14 - Prob. 14.43PCh. 14 - A village maintains a large tank with ail open...Ch. 14 - A legendary Dutch boy saved Holland by plugging a...Ch. 14 - Water falls over a dam of height h with a mass...Ch. 14 - Water is pumped up from the Colorado River to...Ch. 14 - In ideal flow, a liquid of density 850 kg/m3 moves...Ch. 14 - The Venturi tube discussed in Example 14.8 and...Ch. 14 - Review. Old Faithful Geyser in Yellowstone...Ch. 14 - An airplane is cruising al altitude 10 km. The...Ch. 14 - An airplane has a mass of 1.60 104 kg, and each...Ch. 14 - Prob. 14.53PCh. 14 - The Bernoulli effect can have important...Ch. 14 - Prob. 14.55PCh. 14 - Decades ago, it was thought that huge herbivorous...Ch. 14 - (a) Calculate the absolute pressure at an ocean...Ch. 14 - Prob. 14.58APCh. 14 - A spherical aluminum ball of mass 1.26 kg contains...Ch. 14 - Prob. 14.60APCh. 14 - Review. Figure P14.61 shows a valve separating a...Ch. 14 - The true weight of an object can be measured in a...Ch. 14 - Water is forced out of a fire extinguisher by air...Ch. 14 - Review. Assume a certain liquid, with density 1...Ch. 14 - Prob. 14.65APCh. 14 - Prob. 14.66APCh. 14 - Prob. 14.67APCh. 14 - A common parameter that can be used to predict...Ch. 14 - Evangelista Torricelli was the first person to...Ch. 14 - Review. 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