COLLEGE PHYSICS,V.2
COLLEGE PHYSICS,V.2
11th Edition
ISBN: 9781305965522
Author: SERWAY
Publisher: CENGAGE L
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Textbook Question
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Chapter 16, Problem 19P

A proton is located at the origin, and a second proton is located on the x-axis at x = 6.00 fm (1 fm = 10-15 m). (a) Calculate the electric potential energy associated with this configuration. (b) An alpha particle (charge = 2e, mass = 6.64 × 10−27 kg) is now placed at (x, y) = (3.00, 3.00) fm. Calculate the electric potential energy associated with this configuration. (c) Starting with the three-particle system, find the change in electric potential energy if the alpha particle is allowed to escape to infinity while the two protons remain fixed in place. (Throughout, neglect any radiation effects.) (d) Use conservation of energy to calculate the speed of the alpha particle at infinity. (e) If the two protons are released from rest and the alpha panicle remains fixed, calculate the speed of the protons at infinity.

(a)

Expert Solution
Check Mark
To determine
The electric potential energy.

Answer to Problem 19P

The electric potential energy is 3.84×1014J .

Explanation of Solution

Given info: Proton is located at x = 6.00 fm.

Explanation:

Formula to calculate the electric potential energy is,

PE1=kee2x

  • ke is the coulomb constant.
  • e is the elementary charge.

Substitute 6.00 fm for x, 1.6×1019C for e and 8.99×109 Nm2/C2 for ke

PE1=(8.99×109 Nm2/C2)(1.6×1019C)26.00fm=(8.99×109 Nm2/C2)(1.6×1019C)26.00×1015m=3.84×1014J

Conclusion:

The electric potential energy is 3.84×1014J .

(b)

Expert Solution
Check Mark
To determine
The new electric potential energy.

Answer to Problem 19P

The new electric potential energy is 2.55×1013J .

Explanation of Solution

Given info: Proton is located at x = 6.00 fm.

Explanation:

Formula to calculate the new electric potential energy is,

PE2=PE1+2[ke(e)(2e)r]

  • ke is the coulomb constant.
  • e is the elementary charge.
  • r is the distance of the alpha particle from the origin.

The distance of the alpha particle from the origin is,

r=(3.00fm)2+(3.00fm)2=4.243fm

Substitute 3.84×1014J for PE1 , 4.243 fm for r, 1.6×1019C for e and 8.99×109 Nm2/C2 for ke

PE2=(3.84×1014J)+2[(8.99×109 Nm2/C2)(1.6×1019C)24.243fm]=2.55×1013J

Conclusion:

The new electric potential energy is 2.55×1013J .

(c)

Expert Solution
Check Mark
To determine
The change in electric potential energy.

Answer to Problem 19P

The change in electric potential energy is 2.17×1013J .

Explanation of Solution

Given info: Proton is located at x = 6.00 fm.

Explanation:

Formula to calculate the change in electric potential energy is,

ΔPE=PE1PE2

Substitute 3.84×1014J for PE1 and 2.55×1013J for PE2

ΔPE=(3.84×1014J)(2.55×1013J)=2.17×1013J

Conclusion:

The change in electric potential energy is 2.17×1013J .

(d)

Expert Solution
Check Mark
To determine
The speed of alpha particle.

Answer to Problem 19P

The speed of alpha particle is 8.08×106m/s .

Explanation of Solution

Given info: Proton is located at x = 6.00 fm.

From Conservation of energy, the kinetic energy is given by,

KE=ΔPE

Formula to calculate the kinetic energy is,

KE=12mαv2

  • mα is the mass of alpha particle.
  • v is the speed of alpha particle.

From the above equations,

v=ΔPE2mα

Substitute 2.17×1013J for ΔPE and 6.64×1027kg for mα

v=(2.17×1013J)6.64×1027kg=8.08×106m/s

Conclusion:

The speed of alpha particle is 8.08×106m/s .

(e)

Expert Solution
Check Mark
To determine
The speed of protons at infinity.

Answer to Problem 19P

The speed of proton at infinity is 1.24×107m/s .

Explanation of Solution

Given info: Proton is located at x = 6.00 fm.

Explanation:

The kinetic energy is equally split among the two protons.

KE=PE22

Formula to calculate the kinetic energy is,

KE=12mpv2

  • mp is the mass of proton.
  • v is the speed of proton.

From the above equations,

v=PEmp

Substitute 2.55×1013J for PE2 and 1.67×1027kg for mp

v=2.55×1013J1.67×1027kg=1.24×107m/s

Conclusion:

The speed of proton at infinity is 1.24×107m/s .

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Chapter 16 Solutions

COLLEGE PHYSICS,V.2

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