College Physics
College Physics
11th Edition
ISBN: 9781305952300
Author: Raymond A. Serway, Chris Vuille
Publisher: Cengage Learning
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Question
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Chapter 9, Problem 41P

(a)

To determine

The time taken by the water to travel from the nozzle to the ground.

(a)

Expert Solution
Check Mark

Answer to Problem 41P

The time taken by the water to travel from the nozzle to the ground is 0.533s .

Explanation of Solution

Formula to calculate the time taken by the water to reach the ground is,

t=2(Δy)ay

  • t is taken time,
  • (Δy) is the distance
  • ay is the acceleration along upward direction.

Substitute (1.5m) for (Δy) , (9.8m/s2) for ay to find t

t=2(1.5m)(9.8m/s2)=0.533s

Thus, the time taken by the water to travel from the nozzle to the ground is 0.533s .

Conclusion:

Therefore, time taken by the water to travel from the nozzle to the ground is 0.533s .

(b)

To determine

The speed that must have the stream while leaving the nozzle.

(b)

Expert Solution
Check Mark

Answer to Problem 41P

The speed that must have the stream while leaving the nozzle is 14.5m/s .

Explanation of Solution

Formula to calculate the speed of the stream is,

vnozzle=(Δx)t

  • t is taken time,
  • (Δx) is the horizontal range
  • vnozzle is the speed of the stream at the nozzle

Substitute (8m) for (Δx) , 0.533s for t to find vnozzle

vnozzle=(8m)(0.533s)=14.5m/s

Thus, the speed that must have the stream while leaving the nozzle is 14.5m/s .

Conclusion:

Therefore, the speed that must have the stream while leaving the nozzle is 14.5m/s .

(c)

To determine

The speed at which the plunger must be moved by using continuity equation.

(c)

Expert Solution
Check Mark

Answer to Problem 41P

The speed at which the plunger must be moved by using continuity equation is 0.145m/s .

Explanation of Solution

Formula to calculate the speed of the plunger from continuity equation is,

v=(πrs2πrl2)vnozzle

  • v is the speed of the plunger.,
  • rsandrl are the radius of the smaller and the larger tube.
  • vnozzle is the speed of the stream at the nozzle

From unit conversion,

1cm=10mm

Substitute (1mm) for rs , 1cm for rl , 14.5m/s for vnozzle to find v

v=(π(1mm)2)(π(1cm)(1×10mm1cm))(14.5m/s)=0.145m/s

Thus, the speed at which the plunger must be moved by using continuity equation is 0.145m/s .

Conclusion:

Therefore, the speed at which the plunger must be moved by using continuity equation is 0.145m/s .

(d)

To determine

The pressure of the nozzle.

(d)

Expert Solution
Check Mark

Answer to Problem 41P

The pressure of the nozzle is 1.013×105Pa .

Explanation of Solution

The pressure at the nozzle is the atmospheric pressure.

So, the pressure at the nozzle is

Pnozzle=Patm=1.013×105Pa

Thus, the pressure of the nozzle is 1.013×105Pa .

Conclusion:

Therefore, the pressure of the nozzle is 1.013×105Pa .

(e)

To determine

The pressure needed in the larger cylinder by using Bernoulli’s equation.

(e)

Expert Solution
Check Mark

Answer to Problem 41P

The pressure needed in the larger cylinder is 2.06×105Pa .

Explanation of Solution

Formula to calculate the pressure needed in the larger cylinder is,

P=Patm+ρwater2(vnozzle2v2)

  • P is the pressure in the larger cylinder
  • Patm is the atmospheric pressure
  • ρwater is the density of water

Substitute, 1.013×105Pa for Patm , 1×103kg/m3 for ρwater , 14.5m/s for vnozzle , 0.145m/s for v to find P ,

P=(1.013×105Pa)+(1×103kg/m3)2((14.5m/s)2(0.145)2)=2.06×105Pa

Thus, the pressure needed in the larger cylinder is 2.06×105Pa .

Conclusion:

Therefore, the pressure needed in the larger cylinder is 2.06×105Pa .

(f)

To determine

The force that must be exerted on the trigger to achieve the desired range.

(f)

Expert Solution
Check Mark

Answer to Problem 41P

The force that must be exerted on the trigger to achieve the desired range is 33N .

Explanation of Solution

Formula to calculate the pressure needed in the larger cylinder is,

F=(ΔP)(πrl2)=(PPatm)(πrl2)

  • P is the pressure in the larger cylinder
  • Patm is the atmospheric pressure
  • rl is the radius of the larger tube.

From unit conversion is,

1cm=1×102m

Substitute, 1.013×105Pa for Patm , 2.06×105Pa for P , 1cm for rl to find F ,

F=[(2.06×105Pa)(1.013×105Pa)](π{(1cm)(1×102m1cm)}2)=33N

Thus, the force that must be exerted on the trigger to achieve the desired range is 33N .

Conclusion:

Therefore, the force that must be exerted on the trigger to achieve the desired range is 33N .

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Chapter 9 Solutions

College Physics

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