Electric Fields CH 22  I. The Electric Field

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CH

 

22

 

Electric Fields

January   5,   2016  

I.

The Electric Field

A.

The Electric Field is a _____________________________________.

B.

The electric field, E, consists of a distribution of vectors, one for each point in the region around a charged object, such as a charged rod.

C.

We can define the electric field at some point near the charged object, such as point P in Fig.

22 ‐ 1a, as follows:

 

 

 

 

1.

A positive test electrostatic force, F.

charge q

0

, placed at the point will experience an

2.

The electric field at point P due to the charged object is defined as the electric field, E, at that point:

3.

The SI unit for the electric field is the Newton per Coulomb (N/C).

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II.

Electric Field Lines

A.

Electric field lines _______________________________________ from positive charge (where they originate) and ___________________________on negative charge (where they terminate).

B.

That is positive charges

________________________________________________________________________ and negative charges _________________________________________________________.

1.

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.

2.

The field lines are drawn so that the number of lines per unit area, measured in a plane that is perpendicular to the lines, is proportional to the magnitude of E.

3.

Thus, E is large where field lines are close together and small where they are far apart.

 

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C.

Examples

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III.

The Electric Field due to a Point Charge

January   5,   2016  

A.

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 q

0 at that point.

B.

The direction of E 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:

 

 

C.

Superposition Applies: The net, or resultant, electric field due to more than one point charge can be found by the superposition principle.

If we place a positive test charge q

0 near n point charges q

1

, q

2

, .

.

.

, q n

, then, the net force, F o

, from the n point charges acting on the test charge is

 

1.

 

The net electric field at the position of the test charge is

 

 

 

D.

Sample problem:

1.

What is the magnitude of a point charge whose Electric Field 50cm away has the magnitude of 2.0

N/C?

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IV.

The Electric Field due to an Electric Dipole

A.

The figure below shows two charged particles of magnitude q but of opposite signs, separated by a distance d.

As noted in the figure below we call this configuration an Electric Dipole.

 

 

 

 

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B.

From symmetry, the electric field E at point P—and also the fields

E

+ and E

‐ due to the separate charges that make up the dipole—must lie along the dipole axis, which we have taken to be a z axis.

From the superposition principle for electric fields, the magnitude E of the electric field at P is

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

 

C.

The product qd , which involves the two intrinsic properties q and d of the dipole, is the magnitude p of a vector quantity known as the electric dipole moment of the dipole.

 

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D.

Sample Problem:

1.

Figure below shows an electric dipole.

What are the (a) magnitude and

(b) direction (relative to the positive direction of the x ‐ axis) of the dipole’s

Electric Field at point P, located at a distance r >> d?

 

 

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V.

The Electric Field due to a Continuous Charge

January   5,   2016  

A.

When we deal with continuous charge distributions, it is most convenient to express the charge on an object as a charge density rather than as a total charge.

B.

For a line of charge, for example, we would report the linear charge density (or charge per unit length)  , whose SI unit is the coulomb per meter.

C.

Table 22 ‐ 2 shows the other charge densities we shall be using.

 

 

VI.

The Electric Field due to a Line Charge

A.

How to approach a line charge problem:

1.

Since the only equation we have (as of now) to find the electric field is the one for a point charge, and a line of charges is obviously not a point charge…we cannot simply use that equation, and instead have to derive an applicable equation.

 

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2.

We can cut the rod into tiny little slivers and make the slivers small enough that we can count the slivers as if they were point charges, then our equation will work.

However, then by superposition principle, we just add up all the E ‐ field vectors using vector math to determine the net electric field.

Since the slivers have to be as small as taking the limit of the thickness going to zero, then there would be an infinite number of slivers to add.

That would take more than all day.

Luckily, Newton developed an easy way to add an extremely large amount of items together quickly called an integral.

3.

The step by step procedure for approaching these types of problems, I like to call the “7 step procedure”.

Here are the steps: a) Step 1: Write the equation for differential charge dq.

b) Step 2: Write the equation for differential electric field dE.

Then add trig statement if necessary to address components of vector that are applicable.

Use symmetry to your advantage whenever possible.

c) step 1.

Step 3: Replace dq in the dE equation with its equivalent from d) Step 4: Replace little r if necessary (is r a constant or is r a dependent variable?) e) Step 5: Setup the integral (remember your limits of intergration!) f) Step 6: Do the calculus!

g) Step 7: Replace lambda with what lambda is equal to in order to make the equation in terms of Q and L.

4.

If you follow these 7 steps for continuous line charge problems, you are less likely to become lost or make errors.

5.

Now let’s use this process to solve a sample problem:

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Part   B)  

6.

In figure below, a nonconducting rod of length L = 8.15

cm has a charge ‐ q = ‐ 4.23

fC uniformly distributed along its length.

(a) What is the linear charge density of the rod?

What are the (b) magnitude and (c) direction

(relative to the positive direction of the x axis) of the electric field produced at point P , at distance a = 12.0

cm from the rod?

 

Part   a)  

  q

L by   definition     

 

 

 

STEP   1)   dq   =              

 

 

 

 

 

 

 

STEP   2)   dE   =                                   STEP3)   dE   =              

 

STEP   4)   dE   =                                    STEP5)   E   =              

 

STEP6)Do   the   calc       let   U=               

 

 

 

 

 

STEP7)   since   dq=  

Part   C)   Direction   is   _______________,   see   drawing.

 

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B.

Now, let’s discuss a thin ring of radius R with a uniform positive linear charge density  around its circumference.

We may imagine the ring to be made of plastic or some other insulator, so that the charges can regarded as fixed in place.

What is the Electric Field at point

P, a distance z from the plane of the ring along its central axis?

C.

Drawing to help conceptualize

 

 

 

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11

 

 

Note:  

Cos  

 

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D.

We can mentally divide the ring into differential elements of charge that are so small that they are like point charges, and then we can apply the definition to each of them.

E.

Next, we can add the electric fields set up at P by all the differential elements.

The vector sum of the fields gives us the field set up at P by the ring.

F.

Let ds be the (arc) length of any differential element of the ring.

Since  is the charge per unit (arc) length, the element has a charge of magnitude STEP 1) dq =

G.

This differential charge sets up a differential electric field dE at point P, a distance r from the element .

STEP   2&3)   dE=                  

 

STEP   4)   dE   =           

   

 

H.

All the dE vectors have components parallel and perpendicular to the central axis; the perpendicular components are identical in magnitude but point in different directions.

I.

The parallel components are

 

 

 

J.

Finally, for the entire ring,

STEP   5)   E= 

( ( ))

 

 

 

STEP   6)   E

P

=  

 

STEP   7) q  

*

Circumference     

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12

Ep  qZ

4



0

[

Z 2  R 2

]

3

2

 

 

 

  [ SHIVOK   SP212 ] January   5,   2016  

K.

Sample problem:

1.

In the figure below, a thin glass rod forms a semicircle of radius r=5.00

cm.

Charge is uniformly distributed along the rod, with +q=4.50

pC in the upper half and –q = ‐ 4.50pC

in the lower half.

What are the (a) magnitude and

(b) direction (relative to the positive direction of the x ‐ axis) of the Electric

Field at point P, the center of the semicircle?

 

 

 

Step   1)    dq   =   

 

 

Step   2)    Ep   =   2   E vertical

     dE vertical

  =   

Step   3)   dE vertical

  =  

Step   4   is   not   necessary   because   every   sliver   is   r   away   from   point   papa.

 

 

Step   5)   E vertical

  =  

 

Step   6)   E vertical

  =  

Step   7)    E vertical

  =  

Finally   that   means   that   E p

  =   

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VII.

The Electric Field due to a Charged Disk

January   5,   2016  

A.

The figure below shows a circular plastic disk of radius R that has a positive surface charge density

 on its upper surface (see table 22 ‐

2).

What is the Electric Field at point P, a distance of z from the disk along its central axis?

 

 

B.

We need to find the electric field at point P, a distance z from the disk along its central axis.

C.

Divide the disk into concentric flat rings and then to calculate the electric field at point P by adding up (that is, by integrating) the contributions of all the rings.

The figure shows one such ring, with radius r and radial width dr.

If  is the charge per unit area, the charge on the ring is STEP 1) dq =

 

STEP   2)   dE   =              

 

Note:  

Cos  

 

D.

Thus

STEPs   3&4)   dE   =              

 

 

 

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E.

We can now find E by integrating dE over the surface of the disk — that is, by integrating with respect to the variable r from r =0 to r =R.

STEP   5)   E   =              

 

STEP   6)   E   =              

 

 

 

  

2

0

[1

Z

( Z 2  R 2

)

1

2

]  

 

If we let

R →∞ , while keeping z finite, the second term in the parentheses in the above equation approaches zero, and this equation reduces to

 

F.

Sample problem:

1.

A disk of radius 2.5cm

has a surface charge density of 5.3

m C/m 2 on its upper face.

What is the magnitude of the Electric Field produced by the disk at a point on its central axis at distance z=12cm from the disk?

 

 

 

 

 

 

 

 

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VIII.

A Point Charge in an Electric Field

January   5,   2016  

A.

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.

 

 

 

B.

When a charged particle, of charge q, is in an electric field, E, set up by other stationary or slowly moving charges, an electrostatic force, F, acts on the charged particle as given by the above equation.

 

C.

Millikan experiment: Measuring the Elementary Charge

 

 

D.

Sample problem

1.

In Millikan’s experiment, an oil drop of radius 1.64

m m and density

0.851

g/cm 3 is suspended in chamber C (figure on page 14) when a downward

Electric Field of 1.92x10

5 N/C is applied.

Find the charge on the drop, in terms of e .

 

 

 

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  [ SHIVOK   SP212 ] January   5,   2016  

 

IX.

A Dipole in an Electric Field

A.

When an electric dipole is placed in a region where there is an external electric field, E , electrostatic forces act on the charged ends of the dipole.

If the electric field is uniform, those forces act in opposite directions and with the same magnitude F =qE.

B.

Although the net force on the dipole from the field is zero, and the center of mass of the dipole does not move, the forces on the charged ends do produce a net torque  on the dipole about its center of mass.

C.

The center of mass lies on the line connecting the charged ends, at some distance x from one end and a distance d ‐ x from the other end .

 

D.

The net torque is:

 

 

 

  

  

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E.

Potential Energy

1.

Potential energy can be associated with the orientation of an electric dipole in an electric field.

2.

The dipole has its least potential energy when it is in its equilibrium orientation, which is when its moment p is lined up with the field E.

3.

The expression for the potential energy of an electric dipole in an external electric field is simplest if we choose the potential energy to be zero when the angle  (Fig.22

‐ 19) is 90°.

4.

The potential energy U of the dipole at any other value of  can be found by calculating the work W done by the field on the dipole when the dipole is rotated to that value of  from 90°.

 

 

 

 

F.

Sample Problem

1.

An electric dipole consists of charges +2 e and ‐ 2 e separated by 0.78nm.

It is in an Electric Field of strength 3.4x10

6 N/C.

Calculate the magnitude of the torque on the dipole when the dipole moment is (a) parallel to, (b) perpendicular to, and (c) antiparallel to the Electric Field.

 

 

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