Physics For Scientists And Engineers With Modern Physics, 9th Edition, The Ohio State University
Physics For Scientists And Engineers With Modern Physics, 9th Edition, The Ohio State University
9th Edition
ISBN: 9781305372337
Author: Raymond A. Serway | John W. Jewett
Publisher: Cengage Learning
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Chapter 14, Problem 71AP
To determine

The equilibrium readings of both upper and lower scales.

Expert Solution & Answer
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Answer to Problem 71AP

The lower scale reading is 31.7N_ and upper scale reading is 17.3N_.

Explanation of Solution

The weight of the iron block is balanced by the sum of tension on spring and the buoyant force exerted on iron block by the oil when viewed from the upper part of the scale.

    T+B=Fg,iron                                                                                                       (I)

Here, T is the tension force on the spring scale, B is the buoyant force on iron block, and Fg,iron is the force of gravity on the iron block.

Write the expression for density of iron block.

    ρiron=mironViron                                                                                                     (II)

Here, ρiron is the density of iron block, miron is the mass of iron block, and Viron is the volume of block.

Rearrange equation (II) to find Viron.

    Viron=mironρiron                                                                                                        (III)

By Archimedes law, volume of iron block dipped in oil is equal to the volume of oil displaced from the jar.

    Vdisplaced oil=mironρiron                                                                                           (IV)

Here, Vdisplaced oil is the volume of the displaced oil.

Write the expression for the buoyant force exerted by the oil on the iron block.

    B=ρoilVirong                                                                                                     (V)

Here, ρoil is the density of oil, Viron is the volume of iron block, and g is the acceleration due to gravity.

Rearrange equation (I) to find T.

    T=Fg,ironB                                                                                              (VI)

Use expression (V) in (VI) to find T.

    T=Fg,ironρoilVirong                                                                                 (VII)

Write the expression for force of gravity on iron block.

    Fg,iron=mirong                                                                                               (VIII)

Here, miron is the mass of the iron block.

Use expression (VIII) in (VII).

    T=mirongρoilVirong                                                                                      (IX)

Use expression (III) in (IX) to find T.

    T=mirongρoil(mironρiron)g=(1ρoilρiron)mirong                                                                           (X)

Now observe the system from the bottom side of scale. Let n be the upward normal force acting on the system.

Write the sum of all the vertical forces acting on the system.

    Fy=T+nFg,beakerFg,oilFg,iron                                                         (XI)

Here, Fy is the sum of vertical forces acting on the system, Fg,beaker is the force of gravity on beaker.

At equilibrium the sum of all vertical forces is equal to zero.

    T+nFg,beakerFg,oilFg,iron=0                                                                 (XII)

Write the expression for Fg,beaker.

    Fg,beaker=mbeakerg                                                                                      (XIII)

Here, mbeaker is the mass of the beaker.

Write the expression for Fg,oil.

    Fg,oil=moilg                                                                                               (XIV)

Here, moil is the mass of the oil.

Use expressions (XIV), (XIII), and (VIII) in expression (XII) and solve for n.

    T+nmbeakergmoilgmirong=0n=(mbeaker+moil+miron)gT                       (XV)

Conclusion:

Substitute 916kg/m3 for ρoil, 7860kg/m3 for ρiron, 2.00kg for miron, and 9.80m/s2 for g in equation (X) to find T.

    T=(1916kg/m37860kg/m3)(2.00kg)(9.80m/s2)=17.3N

Substitute 1.00kg for mbeaker, 2.00kg for moil, 2.00kg for miron, 9.80m/s2 for g, and 17.3N for T in equation (XV) to find n.

    n=(1.00kg+2.00kg+2.00kg)(9.80m/s2)17.3N=31.7N

Therefore, the lower scale reading is 31.7N_ and upper scale reading is 17.3N_.

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Chapter 14 Solutions

Physics For Scientists And Engineers With Modern Physics, 9th Edition, The Ohio State University

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