1. Electricity and magnetism Chapter Two: Electric Fields
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3. Chapter Two: Electric Fields
The physics of the preceding chapter tells us how to find the electric force on a particle 1 of charge q1 when the particle is placed near a particle 2 of charge q2. A nagging question remains: How does particle 1 “know” of the presence of particle 2? That is, since the particles do not touch, how can particle 2 push on particle 1, how can there be such an action at a distance?
We can answer those questions by saying that particle 2 sets up an electric field in the space surrounding itself. If we place particle 1 at any given point in that space, the particle “knows” of the presence of particle 2 because it is affected by the
electric field that particle 2 has already set up at that point. Thus, particle 2 pushes on particle 1 not by touching it but by means of the electric field produced by particle 2.

4. 1) the Electric Field :
The electric field is a vector field; it consists of a distribution
of vectors, one for each point in the region around a charged
object, such as a charged rod. In principle, we can define the
electric field at some point near the charged object, such as
point P in Fig. a, as follows: We first place a positive charge
q0, called a test charge, at the point. We then measure the
electrostatic force that acts on the test charge. Finally,
we define the electric field at point P due to the charged
object as
…..(1)
Thus, the magnitude of the electric field at point P is E=F/q0, and the direction of
is that of the force that acts on the positive test charge. As shown in Fig. b,
we represent the electric field at P with a vector whose tail is at P. To define the electric field within some region, we must similarly define it at all points in the region.
The SI unit for the electric field is the Newton per coulomb (N/C)

5. 2) the Electric Field Lines:
Faraday, who introduced the idea of electric fields, thought of the space around a charged body as filled with lines of force. Although we no longer attach much reality to these lines, now usually called electric field lines, they still provide a nice way to visualize patterns in electric fields.
The relation between the field lines and electric field vectors is this:
At any point, the direction of a straight field line or the direction of the tangent to a curved field line gives the direction of at that point,
the field lines are drawn so that the number of lines per unit area is proportional to the magnitude of Thus, E is large where field lines are close together and small where they are far apart.
Electric field lines extend away from positive charge (where they originate) and toward negative charge (where they terminate).

6. 2) the Electric Field Lines:
Figure a shows a sphere of uniform negative charge.
If we place a positive test charge anywhere near the
sphere, an electrostatic force pointing toward the
center of the sphere will act on the test charge as
shown. In other words, the electric field vectors at all
points near the sphere are directed radially toward the
sphere. This pattern of vectors is neatly displayed by
the field lines in Fig. b, which point in the same
directions as the force and field vectors. Moreover, the
spreading of the field lines with distance from the
sphere tells us that the magnitude of the electric field
decreases with distance from the sphere.
From Fig., we conclude the following rule:
Electric field lines extend away from positive charge (where they originate) and
toward negative charge (where they terminate).

7. 2) the Electric Field Lines:
Figure a shows part of an infinitely large, nonconducting sheet (or plane) with a uniform distribution of positive charge on one side. If we were to place a positive test charge at any point near the sheet of Fig. a, the net electrostatic force acting on the test charge would be perpendicular to the sheet, because forces acting in all other directions would cancel one another as a result of the symmetry. Moreover, the net force on the test charge would point away from the sheet as shown. Thus, the electric field vector at any point in the space on either side of the sheet is also perpendicular to the sheet and directed away from it (Figs. b and c). Because the charge is uniformly distributed along the sheet, all the field vectors have the same magnitude. Such an electric field, with the same magnitude and direction at every point, is a uniform electric field.

8. 2) the Electric Field Lines:
Figure a, shows the field lines for two equal positive charges. Figure b, shows the pattern for two charges that are equal in magnitude but of opposite sign, a configuration that we call an electric dipole. Although we do not often use
field lines quantitatively, they are very useful to visualize what is going on.
a b

9. 2) the Electric Field Lines:
Sample Problem 1
A proton is placed in a uniform electric filed. What must be the magnitude and direction of the electric field? if the electrostatic force acting on the proton is just to balance its weight.

10. 3) the Electric Field Due to a Point Charge :
To find the electric field due to a point charge q (or charged particle) at any point
a distance r from the point charge, we put a positive test charge q0 at that point.
From Coulomb’s law, the electrostatic force acting on q0 is
…(2)
The direction of is directly away from the point charge if q is positive, and directly toward the point charge if q is negative. The electric field vector is
…(3)
The direction of is the same as that of the force on the
positive test charge: directly away from the point charge
if q is positive, and toward it if q is negative.
The net electric field vector is
+ …… En …(4)

11. 3) the Electric Field Due to a Point Charge :
Sample Problem 2
In ionized helium atom (a helium atom in which one of the two electrons has been removed), the electron and the nucleus are separated by a distance of 26.5 pm . What is the electric field due to the nucleus at location of the electron?
Sample Problem 3
Figure a shows charge q1of 1.5 μC, and charge q2 of 2.3 μC, the first charge is at the origin of an x axis and the second is at a position L where L = 13cm. At What point P along the x axis is the electric field zero? x
q1 p q2 L

12. 3) the Electric Field Due to a Point Charge :
Sample Problem 4
Figure a shows three particles with charges q1=+2Q, q2= -2Q, and q3= -4Q, each a distance d from the origin.
What net electric field is produced at the origin?
Figure of Answer Sample Problem 4

13. 4) the Electric Field Due to an Electric Dipole:
Figure a shows two charged particles of magnitude q but of opposite sign,
separated by a distance d. we call this configuration an electric dipole.
find the electric field due to the dipole at a point P, a distance z from the midpoint of the dipole and on the axis through the particles?
After a little algebra, we can rewrite

14. 4) the Electric Field Due to an Electric Dipole:
then
at distances z >> d. At such large distances, we have
d/2z << 1. Thus, in our approximation, we can
neglect the d/2z term in the denominator
p of a vector quantity known as the electric dipole
Moment of the dipole. (The unit of is C. m)
Which p= q d
….(5)

15. 5) the Electric Field Due to a Line of Charge:
We now consider charge distributions that consist of a great
many closely spaced point charges (perhaps billions) that
are spread along a line, over a surface, or within a volume.
Such distributions are said to be continuous rather than
discrete. The table shows different charge densities we shall
be using. We begin with line of charge. Figure shows a thin
ring of radius R with a uniform positive linear charge density
λ around its circumference.
What is the electric field at point P, a distance z from the plane of the ring along its central axis?
First charge
ds be the arc length of any differential element of the ring
By using law, but for element
And from fig.

16. 5) the Electric Field Due to a Line of Charge:
Figure shows that d is at angle θ to the central and has components perpendicular to and parallel to that axis. So if cos θ is
than
This for element of however the total is
(length of ring is 2πR)
The q = λ (2πR)
….(6)
for a point on the central axis that is so far away that
z >> R.

17. 6) the Electric Field Due to a Charged Disk
We now with surface of charge. Figure shows circular
plastic disk of radius R with a uniform positive surface
charge density σ (see Table).
What is the electric field at point P, a distance z from the
disk along its central axis?
Our plan is to divide the disk into concentric flat rings
First charge
dA differential area of the ring, dr differential radius of the ring
By using law, but for element of ring
This for element of however the total is

18. 6) the Electric Field Due to a Charged Disk
……(7)
If we let R → ∞ while keeping z finite

19. 6) the Electric Field Due to a Charged Disk
Sample Problem 5
A uniform charged disk of radius 40 cm carries charge with a density of
8.2 x10-3 C/m2 . Calculate the electric field on the axis of the disk at 9 cm From the center of the disk?
7) A Point Charge in an the Electric Field
…(8)
The electrostatic force acting on a charged particle located in an external electric field has the direction of if the charge q of the particle is positive and has the opposite direction if q is negative.

20. 8) A Dipole in an Electric Field
we now consider a dipole in a uniform external electric field, as shown in Fig. a. The dipole moment makes an angle θ with field . Electrostatic forces act on the charged ends of the dipole in opposite directions and the same magnitude F = qE. Thus, because the field is uniform, the net force on the dipole from the field is zero and the center of mass of the dipole does not move. However, the forces on the charged ends do produce a net torque on the dipole about its center of mass. The center of mass lies on the line connecting the charged ends, at some distance x from one end and thus a distance (d-x) from the other
end. we can write the magnitude of the net torque as as
→ (9)
Potential Energy of it
…. (10)
When a dipole rotates from an initial orientation θi to
another orientation θf, the work W done on the dipole by
E is

21. 8) A Dipole in an Electric Field
Sample Problem 6
A neutral water molecule (H2O) in its vapor state has an electric dipole moment of magnitude 6.2 x C.m. and the molecule is placed in an electric field of
1.5 x 10-4 N/C,
a) How far apart are the molecule’s centers of positive and negative charge?
b) what maximum torque can the field exert on it?
(Such a field can easily be set up in the laboratory.)
(c) How much work must an external agent do to rotate this molecule by 180° in this field, starting from its fully aligned position, for which θ =0?