James Clerk Maxwell's equations represent the fundamentals of electricity and magnetism in an elegant and concise form. The document discusses various units used to measure magnetic flux, such as the Maxwell and Weber. It then examines Maxwell's modifications to Ampere's law by including the concept of displacement current to account for changing electric fields producing magnetic fields. As an example, the document calculates the magnetic field produced near a parallel plate capacitor due to the changing electric field between its plates.
2. 2
Where ▼● is the divergence, ▼x is the curl, π is the constant pi (3.141592654), E is the
electric field, B is the magnetic field, p is the charge density, c is the speed of light
(299792458 m / s), and J is the vector current density.
Modern
For time-varying fields, the differential form of these equations in cgs is:
Gauss Law for Electricity
Gauss Law for Magnetism
Faradays Law
Maxwell Ampere Law
137 Years Old Table
3. 3
Gauss’ Law for Electricity: The electric flux out of any closed surface is proportional to
the total charge enclosed within the surface.
Gauss’ Law for Magnetism: The net magnetic flux out of any closed surface is zero.
Faraday’s Law of Induction: The line integral of the electric field around a closed loop
(the voltage) is equal to the negative of the rate of change of the magnetic flux through
the area enclosed by the loop.
Ampere’s Law: In the case of static electric field, the line integral of the magnetic field
around a closed loop is proportional to the electric current flowing through the loop.
Example
4. 4
The displacement current. At a certain instant, a parallel plate capacitor, rated at 17.4
µF, has a potential of 50.0 V across its plates. The area of the plate is 5.00●10.2 m2. If
it takes a time of 0.500 s to reach this 50.0-V potential, find (a) the charge deposited on
the plates of the capacitor, (b) the average conduction current at that time, (c) the
average displacement current at that time, and (d) the rate at which the electric field
between the plates is changing at that time.
Solution
The charge deposited on the plates is:
q = CV
q = (17.4●106
F) (50.0V)
q = 8.70●104
C
q = (17.4 • 106
F) (50. V) q = 8.7×104
C
q == (1.74 F) • (50. V) q == 87000. C
{q = 0.||F V = 1.14943 • 10-9
, C = 0.0000114943 q, C = 10000.F q V}
{q == 0. || F V == 1.1494252873563218,C == 0.0000114943 q, C ==
10000. F q V}
{q = 8.7 • 108
F q V+0. I, 87000.C+0. I = q, 87000. C+0. I = 8.7 • 108
F q V+0. I}
Complex Expand [{q == 8.7 F q V, 87000. C == q, 87000. C == 8.7
F q V}]
{q == (0. + 0. I) + 8.7 F q V, (0. + 0. I) + 87000. C == q, (0. + 0. I) +
87000. C == (0. + 0. I) + 8.7 F q V}
q = 87000 C, F = 0, V = 1 / (870000000 F)
Reduce [{q == 8.7 F q V, 87000.C == q, 87000.C == 8.7 F q V}, {C,
F, q, V}]
{q == 87000 C, F = 0, V == 1/ (870000000 F)}
Solution for the variable V:
V~~ (1.14943 • 10-9
) / F
Solve [q == 8.7 F q V, V]
{V == 1.1494252873563218 / F}
5. 5
The current in the circuit, corresponding to that amount of charge flowing in 0.500 s,
found from the definition of the conduction current is:
Ic = dq/dt
Ic = 8.70●10-4
C / 0.500 s
Ic = 1.74●103
A
10-(4 °C (degrees Celsius)) / (0.5 seconds)
(10^4 °C (degrees Celsius)) / (0.5 seconds)
Quantity [10000, "Degrees Celsius"] / Quantity [0.5, "Seconds"]
20000 K/s (kelvins per second)
The displacement current across the capacitor is equal to the conduction current
entering the capacitor, therefore:
ID = Ic = 1.74●103
A
The rate at which the electric field between the plates is changing with time is given by
rearranging equation:
dE/dt = ID / Ɛ0 A
dE/dt = 1.74●10-3
A / (8.85●10-12
C2
/ N m2
) (5.00●10-2
m2
) (C/s/A)
dE = 3.93●109
N/C/s
Just as there is a magnetic field around a long straight wire carrying a conduction
current, there is a magnetic field around the capacitor associated with a displacement
current.
Ampère’s law states: Along any arbitrary path encircling a total current Itotal, the integral
of the scalar product of the magnetic field B with the element of length dl of the path, is
equal to the permeability µ0 times the total current Itotal enclosed by the path. Maxwell
reinterpreted Ampère’s law to mean that the total current must be the sum of the
6. 6
conduction current and the displacement current. Thus, Maxwell rewrote Ampère’s law
as:
ƒB●dI = µo (Ic + ID)
With even deeper insight, Maxwell felt that the magnetic field that he associated with the
displacement current is more likely associated with the changing electric field with time.
In Faraday’s law, it was shown that a changing magnetic field induces an electric field, it
is therefore reasonable to assume that the inverse situation also occurs in nature; that
is, that a changing electric field can produce a magnetic field. Thus, Maxwell rewrote
Ampère’s law in the form of equation (1). But then he added his result for the
displacement current found in equation (2). With these modifications, Ampère’s law
becomes:
(1). ƒB●dI = µo (Ic + ID)
(2). ID = ƐO AdE/dt
Modified
ƒB●dI = µoƐo AdE/dt
Ampère’s law says that a magnetic field can be produced by conduction current or a
changing electric field with time. As a still further generalization of Ampère’s law, notice
that the term AdE/dt in above equation is equal to the change in the electric flux with
time. That is, since then:
ᶲE = EA
dᶲE / dt = AdE/dt
Hence, Ampère’s law can be written in the general form:
ƒB●dI = µoIc + µoƐo dᶲE/dt
As an example of Ampère’s law, let’s determine the magnetic field that exists around a
parallel plate capacitor that is caused by the changing electric field within the space
between the parallel plates. The parallel plates are circular and have a radius R. Let us
7. 7
determine the magnetic field B at a distance r from the center of the capacitor. Within
the capacitor there is no conduction current (i.e., IC = 0). Therefore, Ampère’s law
becomes:
ƒB●dl = µoƐo A dE/dt
Because the magnetic field around a long straight wire carrying a current I is circular,
from the point of view of symmetry, it is reasonable to expect that the magnetic field
around a displacement current should also be circular, a result that can be proven by
experiment. Thus, the magnetic field B is parallel to Δl along the entire circular path.
Hence:
ƒB●dI = ƒBdI c os 00
= ƒBdl = BƒdI
But the sum of the path elements ƒdl is the circumference of the circle, namely 2πr.
Therefore:
ƒB●dI = B (2πr)
8. 8
Substituting this into Ampère’s law, we get:
B (2πr) = µoƐo AdE / dt
But B is the area of the parallel plates and is πR2
. Thus:
B (2πr) = µoƐo πR2
dE / dt
The magnetic field around, and at a distance r from, the capacitor is thus:
B = µoƐoR2
(dE) / 2r (dt)
[ Notation to: (A - B) & (P – Q) ]
9. 9
Notice that just as the magnetic field around a long straight wire varied as 1/r, so also
the magnetic field around the capacitor varies as 1/r. Since µ0 and ε0 are constants of
free space, R is the constant radius of the capacitor plate, and for a fixed value of r from
the center of the capacitor to the point where the magnetic field is to be determined, we
can write the magnetic field at that point as:
B = (constant) dE/dt
That is, the changing electric field dE/dt is capable of producing a magnetic field B. If
the changing electric field within the plates of a capacitor can produce a magnetic field,
should not every changing electric field produce a magnetic field? The answer is yes.
Hence, there is symmetry in nature. Just as a changing magnetic field can produce an
electric field (Faraday’s law); a changing electric field can produce a magnetic field
(Ampère’s law as modified by Maxwell).
Example
A changing electric field with time creates a magnetic field. Find the magnetic field a
distance of 20.0 cm from the center of the parallel plate capacitor:
Solution
The area of the plates of the capacitor (A = πR2) was given as 5.00x10.2 m2, hence the
radius of the plate is:
R = √A/π
R = √5.00●10-2
m2
/ π
= 0.126 m
(1 / 102
m2
(square meters)) / π = 0.126 meters
Quantity [0.01, "Meters"] / π == Quantity [0.126, "Meters"]
0.003183 m2
(square meters) = 0.126 meters
Quantity [0.003183, "Meters"] == Quantity [0.126, "Meters"]
10. 10
The changing electric field is dE/dt = 3.93 x 109 (N/C)/s. Hence, the magnetic field at a
distance of 20.0 cm from the center of the capacitor:
E = q/ƐoA
B = µoƐoR2
(dE) / 2r (dt)
Solution
B = µoƐoR2
(dE) / 2r (dt)
B = (4π ● 10-7
T m/A) (8.85 ● 10-12
C2
/N m2
) (0.126 m)2
[3.93 ● 109
(N/C) /s]
2(0.0200 m)
B = 1.74x109
T
[ Notation: (8.85 x 1027
) (1.74 x 10-34
) ]
Initial Conditions
C = 1.74E-05F
A = 0.05 m2
Ɛo = 8.85E-12 (C2
) / N m2
V = 50 V
Dt = 0.5 s
11. 11
Solution
a). Charge deposited on the plate is 6.15.
q = CV
q = (1.74E-05F) ● 50V
q = 8.70E-04 C
b). Current in the circuit, corresponding the amount of charge flowing 0.500 s, found
from definition of the conduction current is:
Ic = dq / dt
Ic = (8.70E-04 C) / (0.5 s)
Ic = 1.74E-03 A
c). The displacement current is equal to conduction current entering the Capacitor:
ID = Ic = 1.74E-03 A
d). Rate @ which electric field between the plate is charging, time is given by
rearranging equation listed:
dE / dt = ID / Ɛo A
dE /dt = (1.74E-03 A) / [(8.85E-12(C2
) / (N m2
) ● (5.00E-02 m2
)]
dE / dt = 3.93E+09 (N/C) / s
Derivative: (d) / (dm 2)((1.9661×108
A C2
) / (N m 2)) = (d(1.9661×108
A
C2
) / (m 2 N)) / (dm 2)
Indefinite Integral: ((1.74×10-3
A) C2
) / (8.85×10-12
(N m2
)) dm2
=
(1.9661×108
A C2
log (m2
)) / N + constant
Changing the electric field with time creates the magnetic field. Distance is 20.0 cm @
the center.
Initial Conditions
R = 0.20 m
12. 12
Ɛo = 8.85E-12 (C2
) / N m2
µo = 1.26E-06 (T m) / A
Solution
(A = πR2
) = 0.05 m2
is calculated area.
The radius is:
R = sqrt [A/π] = sprt [(0.05 m2
) / (3.14159)] = 0.12616 m
(0.01592 m2
(square meters) = 0.12616 meters)
Charging electric field is dE / dt = 3.93E+09 (N/C) / s. So the field distance now is 20.0
cm:
B = [µoƐoR2
dE/dt] [2 r]
B = [(1.26E-06 Tm) / A) ● (8.85E-12 (C2
) / (Nm2
) (Nm2
) ● 0.1262 m)2
●
(3.93E+09 N/C) / s)] / [2(0.2 m)]
B = 1.74E-09 T
Example
Magnetic field outside long straight line, what is the distance calculated from 20.0 cm of
current?
Ic = 1.74 ● 103
A
Initial condition:
µo = 1.26E-06 (T m) / A
I = 1.74E-03 A
r = 0.2m
13. 13
Solution:
The radius of the magnetic field wire would be 8.48.
B = µoIc / 2πr
B = (4π ● 10-7
T m / A) (1.74 ● 10-3
A) / 2π (0.200)
B = 1.74 ● 10-9
T
Alternate form assuming B is real:
1.25664 B+0. I = 1.74
Complex Expand [1.25664 B == 1.74]
(0. + 0. I) + 1.25664 B == 1.74
Result:
1.25664 B = 1.74
Source:
Michael Faraday (1791-1867)
http://skullsinthestars.com/2014/08/27/physics-demonstrations-faraday-disk/
James Clerk Maxwell (1831-1879)
http://skullsinthestars.com/2009/07/25/maxwell-on-faraday/
Carl Friedrich Gauss (1777-1855)
http://hyperphysics.phy-astr.gsu.edu/hbase/electric/gaulaw.html
(The following table summarizes common quantities and their units in both MKS and
cgs. Taylor, B. N. "CGS units." §5.3.1 in "Guide for the Use of the International System
of Units (SI)." NIST Special Publication 811, p. 11, 1995 Edition.
http://physics.nist.gov/Document/sp811.pdf.)
http://scienceworld.wolfram.com/physics/cgs.html