College Physics
College Physics
11th Edition
ISBN: 9781305952300
Author: Raymond A. Serway, Chris Vuille
Publisher: Cengage Learning
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Chapter 9, Problem 18P

(a)

To determine

The volume of the lead.

(a)

Expert Solution
Check Mark

Answer to Problem 18P

The volume of the volume is 1.77×103m3 .

Explanation of Solution

Given info: Mass of the lead is 20.0kg and density of the lead is 11.3×103kg/m3 .

The formula for the volume of the lead is,

Vlead=Mleadρlead

  • Mlead is mass of lead.
  • ρlead is density of lead.

Substitute 20.0kg for Mlead and 11.3×103kg/m3 for ρlead to find Vlead .

Vlead=20.0kg11.3×103kg/m3=1.77×103m3

Thus, the volume of the volume is 1.77×103m3 .

Conclusion:

Therefore, the volume of the volume is 1.77×103m3 .

(b)

To determine

The buoyancy force on the lead.

(b)

Expert Solution
Check Mark

Answer to Problem 18P

The buoyancy force on the lead is 17.3N .

Explanation of Solution

The buoyancy force on the lead is B=mwg=ρwVleadg that is the force equal to the weight of the water displaced by the lead.

Given info: The density of water is 1.00×103kg/m3 , volume of the lead is 1.77×103m3 , and acceleration due to gravity is 9.80m/s2 .

The formula for the buoyancy force on the lead is,

B=ρwVleadg

  • ρw is density of water.
  • Vlead is volume of the lead.
  • g is gravitational acceleration.

Substitute 1.00×103kg/m3 for ρw , 1.77×103m3 is Vlead , and 9.80m/s2 for g to find B .

B=(1.00×103kg/m3)(1.77×103m3)(9.80m/s2)=17.3N

Thus, the buoyancy force on the lead is 17.3N .

Conclusion:

Therefore, the buoyancy force on the lead is 17.3N .

(c)

To determine

The weight of the lead.

(c)

Expert Solution
Check Mark

Answer to Problem 18P

The weight of the lead is 196N .

Explanation of Solution

Given info: The mass of the lead is 20.0kg and acceleration due to gravity is 9.80m/s2 .

The formula for the weight of the lead is,

Wlead=Mleadg

  • Mlead is mass of the lead.
  • g is gravitational acceleration.

Substitute 20.0kg for Mlead and 9.80m/s2 for g to find Wlead .

Wlead=(20.0kg)(9.80m/s2)=196N

Thus, the weight of the lead is 196N .

Conclusion:

Therefore, the weight of the lead is 196N .

(d)

To determine

The normal force acting on the lead.

(d)

Expert Solution
Check Mark

Answer to Problem 18P

The normal force acting on the lead is 179N .

Explanation of Solution

The force acting on the lead is Fy=0=n+BWlead=0 and the normal force on the lead is n=WleadB .

Given info: The weight of the lead is 196N and buoyancy force on the lead is 17.3N .

The formula for the normal force on the lead is,

n=WleadB

  • Wlead is weight of lead.
  • B is buoyancy force.

Substitute 196N for Wlead and 17.3N for B to find n .

n=196N17.3N=179N

Thus, the normal force acting on the lead is 179N .

Conclusion:

Therefore, the normal force acting on the lead is 179N .

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Chapter 9 Solutions

College Physics

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