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Introduction to Electrodynamics (5th Edition) by David J. Griffiths – Solution Manual | Complete Worked Solutions for All Chapters

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Master electrodynamics with this comprehensive solution manual for Introduction to Electrodynamics (5th Edition) by David J. Griffiths. This document provides detailed worked solutions that reinforce understanding of electric fields, electrostatics, boundary conditions, magnetostatics, electromagnetic induction, and Maxwell’s equations. Ideal for homework support, problem-solving practice, and mastering core concepts in electromagnetism.

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Institution
Introduction To Electrodynamics
Course
Introduction to Electrodynamics

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Solutions manual introduction to
electrodynamics 5th edition by David J.
Griffiths

,
, Errata
Instructor’s Solutions Manual
Introduction to Electrodynamics, 5th ed
Author: David Griffiths



• Page 4, Prob. 1.15 (b): last expression should read y + 2z + 3x.
• Page 4, Prob.1.16: at the beginning, insert the following figure




• Page 8, Prob. 1.26: last line should read
From Prob. 1.18: ∇ × va = −6xz x̂ + 2z ŷ + 3z2 ẑ ⇒
∇ · (∇ × va) = ∂ (−6xz)
∂x + ∂y(2z)
∂ + ∂z(3z2)
∂ = −6z + 6z = 0. X
• Page 8, Prob. 1.27, in the determinant for ∇× (∇f ), 3rd row, 2nd column:
change y3 to y2.

• Page 8, Prob. 1.29, line 2: the number in the box should be -12 (insert
minus sign).

• Page 9, Prob. 1.31, line 2: change 2x3 to 2z3; first line of part (c): insert
comma between dx and dz.

• Page 12, Probl 1.39, line 5: remove comma after cos θ.
• Page 13, Prob. 1.42(c), last line: insert ẑ after ).

• Page 14, Prob. 1.46(b): change r· to a.
• Page 14, Prob. 1.48, second line of J : change the upper limit on the r
integral from ∞ to R. Fix the last line to read:
R
= 4π −e−r 0
+ 4πe−R = 4π −e−R + e−0 + 4πe−R = 4π. X

• Page 15, Prob. 1.49(a), line 3: in the box, change x2 to x3.



1

, • Page 15, Prob. 1.49(b), last integration “constant” should be l(x, z), not
l(x, y).

• Page 17, Prob. 1.53, first expression in (4): insert θ, so da = r sin θ dr dφ θˆ.
• Page 17, Prob. 1.55: Solution should read as follows:
Problem 1.55
R
(1) x = z = 0; dx = dz = 0; y : 0 → 1. v · dl = (yz2) dy = 0; v · dl = 0.
(2) x = 0; z = 2 − 2y; dz = −2 dy; y : 1 → 0.
v · dl = (yz2) dy + (3y + z) dz = y(2 − 2y)2 dy − (3y + 2 − 2y)2 dy;

Z Z0 0
y4 4y3 y2 14
v · dl = 2 (2y3 − 4y2 + y − 2) dy = 2 − + − 2y = .
2 3 2 1 3
1


(3) x = y = 0; dx = dy = 0; z : 2 → 0. v · dl = (3y + z) dz = z dz.

Z Z0 0
z2
v · dl = z dz = = −2.
2 2
2

H
Total: v · dl = 0 + 14
3
−2= 3
.
H R
Meanwhile, Stokes’ thereom says v · dl = ( ∇× v) ·da. Here da =
dy dz x̂ , so all we need is
(∇×v)x = ∂y∂ (3y + z) − ∂ (yz2) = 3 − 2yz. Therefore
∂z
R RR R 1 nR 2−2y o
(∇×v) · da = (3 − 2yz) dy dz = 0 0 (3 − 2yz) dz dy
R1 R1
= 0
3(2 − 2y) − 2y 12 (2 − 2y)2 dy = 0 (−4y3 + 8y2 − 10y + 6) dy
1
= −y 4 + 83 y3 — 5y2 + 6y 0
= —1 + 8
3 − 5 + 6 = 83 . X

• Page 18, Prob. 1.56: change (3) and (4) to read as follows:
(3) φ = π ; r sin θ = y = 1, so r = 1 , dr = −1 cos θ dθ, θ : π →θ ≡
2 sin θ sin2 θ 2 0
tan−1( 12 ).

cos2 θ cos θ cos θ sin θ
v · dl = r cos2 θ (dr) — (r cos θ sin θ)(r dθ ) = — 2 dθ − sin2 θ dθ
sin θ sin θ
cos3 θ cos θ cos θ cos2 θ + sin2 θ cos θ
= — + dθ = − dθ = − dθ.
sin3 θ sin θ sin θ sin2 θ sin3 θ
Therefore
Z Zθ0 1 θ0 1
cos θ 1 5 1
v · dl = − dθ = = − = − = 2.
sin3 θ 2 sin2 θ π/2 2 · (1/5) 2 · (1) 2 2
π/2


2

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