Principles of Physics: A Calculus-Based Text
Principles of Physics: A Calculus-Based Text
5th Edition
ISBN: 9781133104261
Author: Raymond A. Serway, John W. Jewett
Publisher: Cengage Learning
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Chapter 15, Problem 69P

(a)

To determine

The speed at which the water leaves the faucet.

(a)

Expert Solution
Check Mark

Answer to Problem 69P

The speed at which the water leaves the faucet is 2.65 m/s .

Explanation of Solution

Write the equation for the volume flow rate.

  Q=ΔVΔt        (I)

Here, Q is the volume flow rate, ΔV is the volume of liquid flowed in time interval Δt .

Write the equation for the volume flow rate in terms of the speed of the water.

  Q=Av

Here, A is the area through which the liquid moves and v is the speed of the liquid.

Rewrite the above equation for v .

  v=QA        (II)

Write the equation for A .

  A=πd24

Here, d is the diameter of the faucet tap.

Put the above equation in equation (II).

  v=Qπd24=4Qπd2        (III)

Conclusion:

Substitute 25 L for ΔV and 30.0 s for Δt in equation (I) to find Q .

  Q=25.0 L1000 cm31.0 L30.0 s=833 cm3/s

Substitute 833 cm3/s for Q and 2.00 cm for d in equation (III) to find v .

  v=4(833 cm3/s)π(2.00 cm)2=265 cm/s1 m100 cm=2.65 m/s

Therefore, the speed at which the water leaves the faucet is 2.65 m/s.

(b)

To determine

The gauge pressure in the 6 cm main pipe.

(b)

Expert Solution
Check Mark

Answer to Problem 69P

The gauge pressure in the 6 cm main pipe is 2.31×104 Pa.

Explanation of Solution

Take point 1 to be in the entrance pipe and point 2 to be at the faucet pipe.

Write the continuity equation of fluids.

  A1v1=A2v2

Here, A1 is the area of the entrance pipe, v1 is the speed of the water at point 1, A2 is the area of the faucet pipe and v2 is the speed of the water at point 2.

Rewrite the above equation for v1.

  v1=A2v2A1        (IV)

Write the equation for A2 .

  A2=πd224

Here, d2 is the diameter of the faucet tap.

Write the equation for A1 .

  A1=πd124

Here, d1 is the diameter of the entrance pipe.

Put the above two equations in equation (IV).

  v1=(πd224)v2(πd124)=(d2d1)2v2        (V)

Write the Bernoulli’s equation.

  P1+12ρv12+ρgy1=P2+12ρv22+ρgy2

Here, P1 is the pressure at the point 1, ρ is the density of the fluid, g is the acceleration due to gravity, y1 is the height of the point 1 above the reference position, P2 is the pressure at the point 2 and y2 is the height of the point 2 above the reference position.

Rearrange the above equation.

  P1P2=(12ρv2212ρv12)+(ρgy2ρgy1)=12ρ(v22v12)+ρg(y2y1)        (VI)

Write the equation for gauge pressure.

  Pgauge=P1P2

Here, Pgauge is the gauge pressure.

Put the above equation in equation (VI).

  Pgauge=12ρ(v22v12)+ρg(y2y1)        (VII)

Conclusion:

The density of water is 1000 kg/m3 , value of g is 9.80 m/s2 and the value of v2 is found to be 2.65 m/s in part (a).

Substitute 2.00 cm for d2 , 6.00 cm for d1 and 2.65 m/s for v2 in equation (V) to find v1 .

  v1=(2.00 cm6.00 cm)2(2.65 m/s)=0.295 m/s

Substitute 1000 kg/m3 for ρ , 2.65 m/s for v2 , 0.295 m/s for v1 , 9.80 m/s2 for g and 2.00 m for y2y1 in equation (VII) to find Pgauge .

  Pgauge=12(1000 kg/m3)[(2.65 m/s)2(0.295 m/s)2]+(1000 kg/m3)(9.80 m/s2)(2.00 m)=2.31×104 Pa

Therefore, the gauge pressure in the 6 cm main pipe is 2.31×104 Pa.

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Chapter 15 Solutions

Principles of Physics: A Calculus-Based Text

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