Webassign Printed Access Card For Serway/jewett's Physics For Scientists And Engineers, 10th, Single-term
Webassign Printed Access Card For Serway/jewett's Physics For Scientists And Engineers, 10th, Single-term
10th Edition
ISBN: 9781337699266
Author: Raymond A. Serway, John W. Jewett
Publisher: Cengage Learning
bartleby

Concept explainers

Question
Book Icon
Chapter 1, Problem 13P
To determine

The radius of a solid aluminum sphere that balance a solid iron sphere on an equal arm balance.

Expert Solution & Answer
Check Mark

Answer to Problem 13P

The radius of a solid aluminum sphere is 2.86cm that balance a solid iron sphere on an equal arm balance.

Explanation of Solution

The mass of one cubic meter aluminum is 2.70×103kg and the mass of one cubic meter iron is 7.86×103kg. The radius of the solid iron sphere is 2.0cm.

Write the formula to calculate the density of aluminum sphere

    ρalu=m1V1

Here, ρalu is the density of the aluminum sphere, m1 is the mass of one cubic meter aluminum sphere and V1 is the volume of the aluminum sphere.

Substitute 2.70×103kg for m1 and 1.0m3 for V1 to find ρalu.

    ρalu=2.70×103kg1.0m3=2.70×103kg/m3

Write the formula to calculate the density of iron sphere

    ρiron=m2V2

Here, ρiron is the density of the iron sphere, m2 is the mass of one cubic meter iron sphere and V2 is the volume of the iron sphere.

Substitute 7.86×103kg for m1 and 1.0m3 for V1 to find ρiron.

    ρiron=7.86×103kg1.0m3=7.86×103kg/m3

Write the formula to calculate the mass of an aluminum sphere

    malu=ρaluValu

Here, malu is the mass of the aluminum sphere, Valu is the volume of the aluminum sphere.

Write the formula to calculate the volume of an aluminum sphere

    Valu=43πralu3

Here, ralu is the radius of the aluminum sphere.

Substitute 43πralu3 for Valu.

    malu=ρalu43πralu3=43πralu3ρalu                                                    (I)

Write the formula to calculate the mass of a solid iron sphere of radius 2.0cm

    miron=ρironViron

Here, miron is the mass of the aluminum sphere, Viron is the volume of the aluminum sphere.

Write the formula to calculate the volume of iron sphere

    Viron=43πriron3

Here, riron is the radius of the iron sphere.

Substitute 43πriron3 for Viron.

    miron=ρiron43πriron3=43πriron3ρiron                                                    (II)

Since both sphere must balance to each other on an equal arm balance. So, they both have equal mass.

Equating equation (I) and equation (II),

    malu=miron43πralu3ρalu=43πriron3ρironralu3ρalu=riron3ρironralu=ρironρalu3riron

Conclusion:

Substituting 2.0cm for riron, 7.86×103kg/m3 for ρiron and 2.70×103kg/m3 for ρalu in the above equation to find ralu.

    ralu=(7.86×103kg/m32.70×103kg/m33)(2.0cm)=1.427×2.0cm=2.86cm

Therefore, the radius of a solid aluminum sphere is 2.86cm that balance a solid iron sphere on an equal arm balance.

Want to see more full solutions like this?

Subscribe now to access step-by-step solutions to millions of textbook problems written by subject matter experts!
Students have asked these similar questions
A block of mass m = 2.50 kg is pushed d = 2.30 m along a frictionless horizontal table by a constant applied force of magnitude F = 10.0 N directed at an angle 25.0° below the horizontal as shown in the figure below. m (a) Determine the work done by the applied force. ] (b) Determine the work done by the normal force exerted by the table. ] (c) Determine the work done by the force of gravity. ] (d) Determine the work done by the net force on the block. ]
A man pushing a crate of mass m = 92.0 kg at a speed of v = 0.845 m/s encounters a rough horizontal surface of length = 0.65 m as in the figure below. If the coefficient of kinetic friction between the crate and rough surface is 0.357 and he exerts a constant horizontal force of 294 N on the crate. e (a) Find the magnitude and direction of the net force on the crate while it is on the rough surface. magnitude direction ---Select--- N (b) Find the net work done on the crate while it is on the rough surface. ] (c) Find the speed of the crate when it reaches the end of the rough surface. m/s
Two blocks, A and B (with mass 45 kg and 120 kg, respectively), are connected by a string, as shown in the figure below. The pulley is frictionless and of negligible mass. The coefficient of kinetic friction between block A and the incline is μk = 0.26. Determine the change in the kinetic energy of block A as it moves from to, a distance of 15 m up the incline (and block B drops downward a distance of 15 m) if the system starts from rest. × J 37° B

Chapter 1 Solutions

Webassign Printed Access Card For Serway/jewett's Physics For Scientists And Engineers, 10th, Single-term

Knowledge Booster
Background pattern image
Physics
Learn more about
Need a deep-dive on the concept behind this application? Look no further. Learn more about this topic, physics and related others by exploring similar questions and additional content below.
Similar questions
SEE MORE QUESTIONS
Recommended textbooks for you
Text book image
Principles of Physics: A Calculus-Based Text
Physics
ISBN:9781133104261
Author:Raymond A. Serway, John W. Jewett
Publisher:Cengage Learning
Text book image
Physics for Scientists and Engineers: Foundations...
Physics
ISBN:9781133939146
Author:Katz, Debora M.
Publisher:Cengage Learning
Text book image
Physics for Scientists and Engineers
Physics
ISBN:9781337553278
Author:Raymond A. Serway, John W. Jewett
Publisher:Cengage Learning
Text book image
Physics for Scientists and Engineers with Modern ...
Physics
ISBN:9781337553292
Author:Raymond A. Serway, John W. Jewett
Publisher:Cengage Learning
Text book image
Physics for Scientists and Engineers, Technology ...
Physics
ISBN:9781305116399
Author:Raymond A. Serway, John W. Jewett
Publisher:Cengage Learning
Text book image
Glencoe Physics: Principles and Problems, Student...
Physics
ISBN:9780078807213
Author:Paul W. Zitzewitz
Publisher:Glencoe/McGraw-Hill