Post on 13-May-2020
E.1
Static Electric Fields
Coulomb’s Law
Gauss’s Law
Electric Potential
Electrical Properties of Materials– Conductors– Dielectrics
Capacitance
24ˆ
Rq
πεRΕ =
vρ=⋅∇ D
V−∇=E
EJ σ=ED ε=
E.2
Introduction
Example: Electric field due to a chargeFrom the field distribution, we can guess that the divergence ofthe electric field is non-zero and the curl of the electric field is zero.
vρ=⋅∇ D
0=×∇ E
E.3
Coulomb’s Law
Coulomb’s law1. An isolated charge q induces an electric field E at every
point in space and is given by
ε is the electrical permittivity of the medium
mVR
q /4
ˆ2πε
RΕ =
E.4
Coulomb’s Law
2. In the presence of an electric field E at a give point in space, the force acting on a test charge q’ is
For a material with electrical permittivity ε, we have
Nq ΕF '=
EED orεεε ==
mFo /10854.8 12−×=ε
E.5
Electric Field due to Charges
The expression for the electric field due to a single charge canbe extended to find the field due to multiple point charges as well as continuous charge distributions.
The electric field at position vector R caused by charges q1, q2,…, qN located at points with position vectors R1, R2,…, RN is given by
Note: is the unit vector from qi to the observation point.
Demonstrations: D4.1, D4.2, M4.1 Q1-2, M4.2 Q1, M4.3 Q1-2
mVqN
i i
i
i
i /)(4
11
2∑= −
−
−=
RRRR
RRΕ
πε
ii RRRR −− )(
E.6
Electric Field due to Charges
Electric field due to a volume charge distribution
∫∫ ==⇒
==
vv
v
v
Rdvd
mVRdv
Rdqd
2/
22
''ˆ
41
/'4'ˆ
'4'ˆ
ρπε
περ
πε
'RΕΕ
'RRΕ
E.7
Electric Field due to Charges
The electric field due to charges on a surface is
The electric field due to charges on a line is
∫=' 2'
'ˆ4
1S
s
Rdsρ
πε'RΕ
∫=' 2'
'ˆ4
1l
l
Rdlρ
πε'RΕ
E.8
Gauss’s Law
Gauss’s Law states that the outward flux of D through a surface is proportional to the enclosed charged Q.
∫ =⋅
=⋅∇
S
v
QdSD
D ρ Differential form
Integral form
E.9
Example: point charge
Construct a spherical surface with centre at q and radius R. Electric field is the same everywhere on the surface. Applying integral form of Gauss’s law gives
RDE
sRsD
ˆ4
/
4
ˆ
2
2
Rq
qDR
dsD
dDd
R
s R
s Rs
πεε
π
==∴
==
=
⋅=⋅
∫∫∫
E.10
Example: infinite long line of charge
Since the line of charge is infinite in extent and is along the z-axis, D must be in the radial r-direction and must not depend on or z.
rDE
rrsD
ˆ2
/
2
ˆˆ0
2
0
r
hrhD
dzrdDd
l
lr
h
z rs
περε
ρπ
φπ
φ
==∴
==
⋅=⋅ ∫ ∫∫ = =
E.11
Example: Spherical charge distribution
Find the electric field due to a spherical charge distribution of radius a with uniform volume charge density ρv in free space.
Gaussian surface of radius r a
Case (i): For a Gaussian surface of radius r less than the radius a of the charge distribution, the total charge enclosed by the Gaussian surface is:
vrQ ρπ 3
34
=
Applying Gauss’s Law to the Gaussian surface,
rDE
srsD
ˆ3
/
4
ˆ2
o
vo
r
s Rs
rQDr
dDd
ερε
π
==∴
==
⋅=⋅ ∫∫
E.12
Example: Spherical charge distribution
Case (ii): For a Gaussian surface of radius r greater than a :
vaQ ρπ 3
34
=
Applying Gauss’s law,
rDE
srsD
ˆ3
/
4
ˆ
2
3
2
ra
QDr
dDd
o
vo
r
s Rs
ερε
π
==∴
==
⋅=⋅ ∫∫
Demonstrations: D4.9, D4.10, M4.6 Q2-3
E.13
Electric Potential
∫ =
=×∇
Cd 0
0
lE.
E
According to vector identity, for any scalar V
0)( ≡∇×∇ V
The electrostatic field is irrotational or conservative, i.e.
So we can define a scalar electric potential V
∫∞ ⋅−=⇒
−∇=P
dV
V
lE
EThe integral is independent of the path taken
E.14
Electric Potential
Electric potential due to point charges:
Electric potential due to volume distribution
Electric potential due to surface distribution
Electric potential due to line distribution
∑= −
=N
i i
iqV14
1RRπε
∫='
''4
1v
v dvR
V ρπε
∫='
''4
1S
s dsR
V ρπε
∫='
''4
1l
l dlR
V ρπε
Demonstrations: M4.1 Q.3 M4.2 Q.2, M4.6 Q.1
E.15
Electrical Properties of Materials
The electromagnetic constitutive parameters of a material medium are – Electrical permittivity ε– Electrical permeability µ– Conductivity σ
Throughout this subject, we assume the materials are– Homogenous
• Constitutive parameters do not vary from point to point– Isotropic
• Constitutive parameters are independent of direction
E.16
Conductors
A conductor has a large number of loosely attached electrons in the outermost shells of the atoms.
Upon applying an external electric field, the electrons migrate from one atom to the next along a direction opposite that of theexternal field.
Their movement gives rise to a conduction current
– Point form of Ohm’s law
EJ σ=
E.17
Conductors
Conductivity of some common materials
Perfect dielectric: σ=0 and then J = 0 regardless of E
Perfect conductor:σ=∞ and then E = 0 regardless of J
E.18
Dielectrics
Dielectrics are insulating materials, and contain bound charges which cannot move freely to generate currents.
Bound charges can move short distances under an electric field to form electric dipoles.
E.19
Dielectrics
A dielectric medium polarized by an external electric field
E.20
Dielectrics
The polarization (or bound) charges can also contribute to the electric field E as the free charges.
It can be shown that D is related to E and P according to the following equation:
PED += oεIn most materials, P is in the same direction and proportional to E so that
EE εεε == ro
where εo is the permittivity of vacuum, εr is the relative permittivity (or dielectric constant) of the material, ε is the permittivity of the material, and χ is the susceptibility of the material.
EED χεε oo +=
E.21
Dielectric Strength
If the applied electric field exceeds the dielectric strength of the material, it will free the electronics completely from the molecules in the form of a conduction current. – Spark may occur– Dielectric breakdown
E.22
Capacitance
Capacitance between two conductors is defined as:
)(FVQC =
where Q is the charge on the conductor and V is the potential difference between the conductors.
E.23
Example 4-11: Parallel-Plate Capacitor
Because of the applied voltage difference, charge +Qaccumulates uniformly on the top plate and –Q accumulates uniformly on the lower plate.In the dielectric medium between the plates, the charges induces a uniform electric field (fringing field is ignored).
E.24
Example 4-11: Parallel-Plate Capacitor
Applying Gauss’s law, the electric field can be determined:
AQzzEz
s
εερ
/ˆ/ˆ
ˆ
−=−=−=E
( )
dA
dAQQ
EdQ
d
QVQC
d
εε
=
==
⋅−=
=
∫
/
0lE
E.25
Example: 4-12: Coaxial Line
Construct a Gaussian cylindrical surface of unit length and radius r. The E-field at radius r is:
rlQ
QrlDd rs
πεε
π
2ˆ/
2
rDE
sD
−==⇒
−==⋅∫
E.26
Example: 4-12: Coaxial Line
( )abl
Q
drrl
Q
dV
b
a
b
a
/ln2
ˆ2
ˆ
πε
πε
=
⋅
−−=
⋅−=
∫
∫rr
lE
( )abl
VQC
/ln2πε
=
=∴
E.27
Exercise