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Chapter 9, Problem 46P

(a)

To determine

The mass of the original object.

(a)

Expert Solution
Check Mark

Answer to Problem 46P

The mass of the original object is 3.65MeVc2 .

Explanation of Solution

Given info: The first mass of first fragment is 1.00MeVc2 , the momentum of the first fragment is 1.75MeVc in positive x direction, the first mass of second fragment is 1.50MeVc2 and the momentum of the second fragment is 2.00MeVc in positive y direction.

The formula to calculate energy of the first fragment is,

E12=p12c2+(m1c2)2

Here,

m1 is the mass of the first fragment.

p1 is the linear momentum of the first fragment.

c is the speed of light.

Substitute 1.75MeVc for p1 and 1.00MeVc2 for m1 in above equation to find E1 .

E12=(1.75MeVc)2c2+((1.00MeVc2)c2)2=(1.75MeV)2+(1.00MeV)2E1=(1.75MeV)2+(1.00MeV)22.02MeV

Thus, the total energy of the first fragment is 2.02MeV .

The formula to calculate energy of the second fragment is,

E22=p22c2+(m2c2)2

Here,

m2 is the mass of the second fragment.

p2 is the linear momentum of the second fragment.

Substitute 2.00MeVc for p2 and 1.50MeVc2 for m2 in above equation to find E2 .

E12=(2.00MeVc)2c2+((1.50MeVc2)c2)2=(2.00MeV)2+(1.50MeV)2E2=(2.00MeV)2+(1.50MeV)2=2.50MeV

Thus, the total energy of the second fragment is 2.50MeV .

The total energy of the original object is,

E=E1+E2=2.02MeV+2.50MeV=4.52MeV

Thus, the total energy of the original object is 4.52MeV .

The total linear momentum of the original object is,

p2=p12+p22=(1.75MeVc)2+(2.00MeVc)2=1c2((1.75MeV)2+(2.00MeV)2)

The equation for the energy of the object is,

E2=p2c2+(mc2)2

Here,

m is the mass of the original object.

Substitute 4.52MeV for E and 1c2((1.75MeV)2+(2.00MeV)2) for p2 in above equation to find m .

(4.52MeV)2=1c2((1.75MeV)2+(2.00MeV)2)c2+(mc2)2=(1.75MeV)2+(2.00MeV)2+(mc2)2m=13.36MeVc4=3.65MeVc2

Conclusion:

Therefore, the mass of the original object is 3.65MeVc2 .

(b)

To determine

The speed of the original object.

(b)

Expert Solution
Check Mark

Answer to Problem 46P

The speed of the original object is 0.589c .

Explanation of Solution

Given info: The first mass of first fragment is 1.00MeVc2 , the momentum of the first fragment is 1.75MeVc in positive x direction, the first mass of second fragment is 1.50MeVc2 and the momentum of the second fragment is 2.00MeVc in positive y direction.

The equation for the total energy of the object is,

E=mc21u2c2

Here,

u is the speed of the original object.

Substitute 4.52MeV for E and 3.65MeVc2 for m in above equation to find u .

(4.52MeV)=(3.65MeVc2)c21u2c21u2c2=(3.65MeV(4.52MeV))21u2c2=0.652u2c2=10.652

Further, solve for u .

u2c2=10.652u=0.348c2=0.589c

Conclusion:

Therefore, the speed of the original object is 0.589c .

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Chapter 9 Solutions

Bundle: Principles of Physics: A Calculus-Based Text, 5th + WebAssign Printed Access Card for Serway/Jewett's Principles of Physics: A Calculus-Based Text, 5th Edition, Multi-Term

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