Electric Field: Difference between revisions

From Physics Book
Jump to navigation Jump to search
No edit summary
 
(153 intermediate revisions by 11 users not shown)
Line 1: Line 1:
'''CLAIMED BY JAY SHAH PHYS 2212 3/13/2016''' '''EDITED BY YASMIN MARTINS 10/31/2016'''


'''EDIT CLAIMED BY QUINTIN MURPHY 4/8/2017'''  '''EDIT BY KEVIN RUDDY 4/9/2017'''
CLAIMED BY AMRITAA BASU - F2023
==The Main Idea==


This page discusses the general properties of electric fields.


==The Main Idea==
Here, the concept of an '''Electric Field''' produced by a point charge is explored qualitatively and quantitatively through models, examples, and a simulation. An '''Electric Field''' is a useful concept to describe how any charged particle or collection of charged particles (positive / negative) would affect surrounding charge.
 
The '''Electric Field''' of a point charge is spherically symmetric, (same at all points of equal radius from the source. Hence, it is useful to speak of the electric field at a certain radius (not at a certain <math>(x,y,z)</math> position), which is explained in [[electric Field#A Mathematical Model| the mathematical model]].
 
Keep in mind, the electric field is a vector quantity, meaning it has a magnitude and direction. The SI units are N/C.
 
[[File:electric-field.jpg|center]]
 
:: ^handwritten personal class notes w/ basic concepts
 
===A Mathematical Model===
The '''Electric Field''' vector <math>\bigl( \mathbf{E}_{s} \bigl)</math> of a point source charge <math>\bigl( Q_{s} \bigl)</math> gives the magnitude and direction of the Electrostatic Force vector <math>\bigl( \mathbf{F}_{s} \bigl)</math> exerted on a unit charge (<math>1</math> Coulomb) by <math>Q_{s}</math>, as a function of position <math>\bigl( \mathbf{r} = (x,y,z) \bigl)</math>. More generally however, the Electrostatic Force vector exerted on any point charge <math>\bigl( q \bigl)</math> by a point source charge <math>\bigl( Q_{s} \bigl)</math> is related to the source charge's '''Electric Field''' vector by:
 
::<math>\mathbf{F}_{s} ( \mathbf{r} ) = q \mathbf{E}_{s} ( \mathbf{r} )</math>
 
This definition requires an understanding of the Electrostatic Force (Coulomb's Law), and its mathematical description. If you are not familiar with this yet, read over the [[Electric Force]] page and come back.
 
Since the Electric Force is defined as:
 
::<math>\mathbf{F}( \mathbf{r} ) = \frac{1}{4\pi\epsilon_{o}}\frac{q_{1} q_{2}}{r^{2}} \hat{\mathbf{r}}</math>, where
:::<math>\epsilon_{o}</math> is the permittivity of free space with a value of <math>8.854 \times 10^{-12} \frac{\text{C}^2}{\text{N} \cdot \text{m}^2}</math>
:::<math>q_{1}</math> and <math>q_{2}</math> are two different point charges
:::<math>r</math> is the distance between the two point charges, which can also be written as <math>|\mathbf{r}|</math>, the magnitude of the vector connecting the two charges' positions
:::<math>\hat{\mathbf{r}}</math> is the unit vector pointing from charge one to charge two, or from charge two to charge one, depending on whether the force on charge two or charge one is sought for.
 
The '''Electric Field''' of a source charge <math>Q_{s}</math> is:
 
::<math>
\begin{align}
\mathbf{E}_{s} ( \mathbf{r}) & = \frac{\mathbf{F}_{s} ( \mathbf{r} )}{q} \\
& = \frac{1}{4\pi\epsilon_{o}}\frac{Q_{s}}{r^{2}}\hat{\mathbf{r}}
\end{align}
</math>
 
 
As evidently based from the mathematical formula of an electric field for a point charge (which can also be applied to a spherically uniformly charged body), the electric field has an '''inverse-square relationship''' with the radius regarding the observation location. Essentially, as distance (radius) increases from the point charge's source, it's electric field at that observation location weakens by a corresponding factor of <math>{r^{-2}}</math>
 
Radially, the magnitude of a point charge's '''Electric Field''' looks something like this:
 
 
[[File:MagnitudeofEField.jpg|center|700px|thumb|<math>2 \times 10^{-15} \ \text{C}</math> charge's '''Electric Field''' magnitude as a function of radius.]]
 
 
A point charge's '''Electric Field''' is also related to its Electric Potential. If you are unfamiliar with the idea of electric potential, then review these pages ([[Electric Field and Electric Potential]] and [[Electric Potential]]) and come back.
 
A charge's '''Electric Field''' and Electric Potential <math>V</math> are related by:
 
::<math>V_{ab} = -\int_{\mathbf{b}}^{\mathbf{a}} \mathbf{E} \cdot d\mathbf{L}</math>, where
:::<math>V_{ab}</math> is the potential difference between points <math>\mathbf{a}</math> and <math>\mathbf{b}</math>
:::<math>\mathbf{E}</math> is the '''Electric Field'''
:::<math>d\mathbf{L}</math> is an infinitesimal length along the path between <math>\mathbf{a}</math> and <math>\mathbf{b}</math>


The main idea of this page is to get an understanding of how electric fields behave.
This relation is less useful for us unless we use a straight line approximation, such that:


=== Electric Field===
::<math>
\begin{align}
V_{ab} & = -\mathbf{E} \cdot \Delta \mathbf{L} \\
& = - \bigl( E_{x}, E_{y}, E_{z} \bigl) \cdot \bigl( \Delta L_{x}, \Delta L_{y}, \Delta L_{z} \bigl) \\
& = - \bigl( E_{x}\Delta L_{x} + E_{y}\Delta L_{y} + E_{z}\Delta L_{z} \bigl) \\
\end{align}
</math>


Electric Field is a [[field]] created by an electric charge.  It is measured in units of newtons per coulomb (N/C), the proper units of which are (kg*(m/s^2)), and has a direction, making it a vector quantity. Electric fields can also be in the units of volts per meter (V/m). The electric field created by a charge exists at all points in space and exerts a force on other charged objects.  The field can be drawn as an arrow with tail at the observation location pointing in the direction of the field.  The Electric field obeys superposition, so the net Electric field at a point in space can be determined by summing all the individual fields present at that location.
This leads to:


The electric field of a positive particle points away from the particle, while the electric field of a negative particle points toward the particle, as seen right here:
::<math>\mathbf{E} (x,y,z) = - \biggl( \frac{\Delta V_{x}}{\Delta L_{x}}, \frac{\Delta V_{y}}{\Delta L_{y}}, \frac{\Delta V_{z}}{\Delta L_{z}} \biggl)</math>
[[File:Posandnegefield.png]]


By convention, the '''Electric Field''' due to a positive point charge always points away from itself, and the '''Electric Field''' of a negative point charge always points towards itself as shown below:
[[File:Posandnegefield.png|center]]


When two oppositely charged particles are placed next to each other, their electric field moves from the positive to the negative. Two similarly charged particles will have fields that are repelled by each other. This is shown below:
Opposite charges will attract each other, and like charges will repel each other, as shown below:
[[File:Multiplechargeefield.png|center]]


[[File:Multiplechargeefield.png]]
Lastly, the Principle of Superposition is directly applicable to finding the '''Electric Field''' due to multiple point source charges, using the a vector sum:


The two oppositely charged particles, when in very close proximity, will act together in the form of a [[dipole]].  
::<math>
\begin{align}
\mathbf{E}_{sum} (\mathbf{r}) & = \mathbf{E}_{1} + \mathbf{E}_{2} + \mathbf{E}_{3} + \cdots + \mathbf{E}_{N} \\
& = \sum_{1}^{N} \mathbf{E}_{n} \\
& = \sum_{1}^{N} \frac{1}{4 \pi \epsilon_{o}} \frac{Q_{s_{n}}}{r_{n}^{2}} \hat{\mathbf{r}}_n
\end{align}
</math>
::*When using this, be careful to take note that the '''Electric Field''' of a negative charge points in the opposite direction as a positive charge.


=== Mathematical Concept of a Field===
*'''Critical Formulas:'''
**<math>\mathbf{E} ( \mathbf{r}) = \frac{\mathbf{F} ( \mathbf{r} )}{q}</math>
**<math>\mathbf{E} ( \mathbf{r}) = \frac{1}{4\pi\epsilon_{o}}\frac{Q}{r^{2}}\hat{\mathbf{r}}</math>
**<math>\mathbf{E} (x,y,z) = - \biggl( \frac{\Delta V_{x}}{\Delta L_{x}}, \frac{\Delta V_{y}}{\Delta L_{y}}, \frac{\Delta V_{z}}{\Delta L_{z}} \biggl)</math>
**<math>\mathbf{E}_{sum} (\mathbf{r}) = \sum_{1}^{N} \frac{1}{4 \pi \epsilon_{o}} \frac{Q_{s_{n}}}{r_{n}^{2}} \hat{\mathbf{r}}_n</math>


In mathematics, a field is a value that exists at all points in space. The magnitude of an electric field is a scalar. The field itself is represented as a vector: <x,y,z>.  Other examples of fields are [[gravitational fields]] and [[magnetic fields]].
[[File:NormalEField.png|right|250px|thumb|Normal view of simulated electric field]]


You can calculate electric field in a few ways. You can calculate the electric field vector and magnitude by using the following equations:
The '''Electric Field''' of a dipole perpendicular to axis is:
::<math>
\begin{align}
\rho = qs\rho (hat)
\end{align}
</math>


<math>E = \frac{F}{q}</math>, where F is the force and q is the charge of the particle. This formula is very helpful to think about to understand the relation between force and electric field.
*p is the unit vector from the - to the + of the dipole


<math>E = \frac{kQ}{r^2}</math>, where k is Coulomb's constant, or 9x10^9, Q is the charge of the particle, and r is the distance between both particles.
*q is the magnitude of the charge of one side of the dipole


The magnitude of an electric field can be also be calculated by using the potential difference, Δϕ, between two plates and the distance, d, between them.
*s is the separation distance between the charges that make up the dipole
:<math>E = -\frac{\Delta\phi}{d}</math>


=== Electric Field and Force===
When observation location X is perpendicular to the center of the dipole (i.e. vector r runs through the middle of the dipole at s/2), then you can use a special formula to calculate the E-field of the dipole at that location.


The force due to an external electric field on a charged particle is given by the equation <math> \vec{F} = q\vec{E}</math> where q is the charge of the observed particle and E is the electric field.  The field created by a charged particle exerts no force on itself. This is to say that the force on a given particle is defined as the charge on that particle multiplied the combined electric fields of the external environment. Since force is measured in Newtons (N) and charge in Coulombs (C), Electric field is measured in Newtons per Coulomb (N/C) as mentioned earlier. Furthermore, the magnitude of an electric field is not dependent on the sign of q (i.e. whether the charge is positive or negative.) The sign only helps determine the direction that the electric field points.
::<math>
\begin{align}
E_{dipole\perp} = \frac{1}{4 \pi \epsilon_{o}} \frac{q}{|r|^2 + (\frac{S}{2})^2} (\hat{\mathbf{r}}_{+} - \hat{\mathbf{r}}_{-})
\end{align}
</math>


To calculate the electric force on a particle, first you must calculate the electric fields affecting the particle. Applying superposition, you add all electric fields to find the net field. Once you have this, you multiply the electric field by the charge of the particle, and this gives you the force exerted on the particle. Like charges repel each other and opposite charges attract each other.
::<math>
\begin{align}
E_{dipole\perp} = \frac{1}{4 \pi \epsilon_{o}}
\frac{-p}{(|r|^2 + (\frac{S}{2})^2)^\frac{3}{2}}
\end{align}
</math>


[[File:oppositesattract.jpeg]]
Special Case:
When r >> s (when vector between observation location and dipole is much greater than the separation distance of the dipole)


=== Electric Field and Superposition===
In this case, s becomes negligible, and the equation becomes


The electric field contributed by a charged particle is unaffected by the electric field contributed by other charged particles. To that end, the principle of superposition, as mentioned earlier, states that the net electric field at a location is determined by the sum of all individual electric fields on charged particles. The principle of superposition is very useful to determine the force on a given charged particle. By being able to define electric field as a vector and simply adding up the various components of individual electric fields, the force on a particle is easily calculated using <math> \vec{F} = q\vec{E}</math>
::<math>
\begin{align}
E_{dipole\perp} = \frac{1}{4 \pi \epsilon_{o}}
\frac{qs}{r^3}
\end{align}
</math>


[[File:Superpositionpic.jpg]]
===A Computational Model===


The two must common methods of combining vectors in the principle of superposition are the tail to tail method (number 1 in the image below) and head to tail (number 2 in the image below).
    ###--Create Electric Field Lines of a Positive Charge at the Origin--###
    #==============================================================#
    #---Import statements for VPython---#
    from __future__ import division
    from visual import *
    #---Import function used to find combinations---#
    from itertools import combinations
    #==============================================================#
    #---Create scene---#
    scene.center = vector(0,0,0)  #-Position of source charge-#
    scene.height = 800  #-Set height of frame of scene-#
    scene.width = 800  #-Set width of frame of scene-#
    scene.range = 4  #-Set range of scene-#
    scene.userzoom = 1  #-Allow user to zoom in/out: CTRL & move in/out on trackpad-#
    scene.userspin = 1  #-Allow user to rotate camera angle: SHIFT & OPTION & move around on track pad-#
    #==============================================================#
    #---Specify point charge attributes---#
    sourceCharge = 3*10**(-11)  #-Coulombs of charge-#
    sourcePos = vector(0,0,0) #-Position of source charge-#
    ###--Modeling source point charge as a sphere with radius 0.1 meters--###
    sourceObj = sphere(pos = sourcePos, radius = 0.1, color = color.cyan)
    #==============================================================#
    #---Set range (0 to 3) and possible inputs for the coordinates (0.5 step)---#
    ###--Many of the same number included to allow for combinations such as (1,1,1).
        #The itertools.combinations function will only use each element of the...
        #list once, starting from the beginning.
        #Repeating each coordinate many times with intermixing, grants...
    [[File:CenteredAndDistantEField.png|right|250px|thumb|Distant view of simulated electric field]]
        #all combinations of points, with repeats however.
        #Later, a for loop will be used to eliminate repeats.
        #This can be optimized later if need be.---------------###
    posXYZ = [0, -0.5, 1, -1.5, 2, -2.5, 3,
              0, 0.5, -1, 1.5, -2, 2.5, -3,
              0, -0.5, 1, -1.5, 2, -2.5, 3,
              0, 0.5, -1, 1.5, -2, 2.5, -3,
              0, -0.5, 1, -1.5, 2, -2.5, 3,
              0, 0.5, -1, 1.5, -2, 2.5, -3,
              0, -0.5, 1, -1.5, 2, -2.5, 3,
              0, 0.5, -1, 1.5, -2, 2.5, -3,
              0, -0.5, 1, -1.5, 2, -2.5, 3,
              0, 0.5, -1, 1.5, -2, 2.5, -3,
              0, -0.5, 1, -1.5, 2, -2.5, 3,
              0, 0.5, -1, 1.5, -2, 2.5, -3]
    #==============================================================#
[[File:RotatedAndZoomedInEField.png|right|250px|thumb|Rotated and zoomed in view of simulated electric field]]
    #---Create combinations of points (x,y,z) for later use---#
        ###--prelimPoints will be a list of tuples of tuples--##
            #ie: [((,,),(,,),(,,),(,,)) , ((,,),(,,)) ,..., ((,,),(,,))]
    prelimPoints = [tuple(combinations(posXYZ, 3))]
    ###--Pull the points out of the grouping tuples and add them to a...
        #new list alphaPoints------------------------###
    alphaPoints = []
    for groupingTuple in prelimPoints:
        for XYZ in groupingTuple:
            if XYZ not in alphaPoints:  #-Check for repeat (x,y,z)-#
                alphaPoints.append(XYZ)
            ##--The negative of this tuple may not be in the combinations:
                #check to see-------------##
            first = -XYZ[0]
            second = -XYZ[1]
            third = -XYZ[2]
            negXYZ = (first, second, third)
            if negXYZ not in alphaPoints:
                alphaPoints.append(negXYZ)
            ##--Swap x and z coordinates for futher combination checking--##
            first = XYZ[2]
            second = XYZ[1]
            third = XYZ[0]
            reverseXYZ = (first, second, third)
            if reverseXYZ not in alphaPoints:
                alphaPoints.append(reverseXYZ)
            ##--The negative of the x and z coordinate swap may not be in...
                #the combinations: check to see---------##
            first = -XYZ[2]
            second = -XYZ[1]
            third = -XYZ[0]
            reverseXYZneg = (first, second, third)
            if reverseXYZneg not in alphaPoints:
                alphaPoints.append(reverseXYZneg)
            ##--Make x [3], y [0], and z [1] to check for more combinations--##
            first = XYZ[1]
            second = XYZ[2]
            third = XYZ[0]
            shiftedXYZ = (first, second, third)
            if shiftedXYZ not in alphaPoints:
                alphaPoints.append(shiftedXYZ)
            ##--The negative of the shifted XYZ may not be in the combinations:
                #check to see---------------##
            first = -XYZ[1]
            second = -XYZ[2]
            third = -XYZ[0]
            shiftedXYZneg = (first, second, third)
            if shiftedXYZneg not in alphaPoints:
                alphaPoints.append(shiftedXYZneg)
    ###--------This should be enough recombining---------###
    #================================================================#
[[File:SideAngleAndTopViewEField.png|right|250px|thumb|Rotated top view of simulated electric field]]
    #---Create a new list of tuples that contain the points, magnitude,...
        #and direction (betaPoints)-----------#
            #ie: [((x,y,z), mag((x,y,z)), norm((x,y,z))),...]
    betaPoints = []
    for XYZ in alphaPoints:
        Mag = mag(XYZ)
        Dir = norm(XYZ)
        betaPoints.append((XYZ, Mag, Dir))
    #================================================================#
    #---Sort the tuples based on their magnitudes from least to greatest...
      #using sorted().
            #key = lamda x: x[1] tells the sorted function to sort the tuples...
                #based on their second component...their magnitudes--------#
    charliePoints = sorted(betaPoints, key = lambda x: x[1])
    #================================================================#
    #---Calculate parts of electric field equation:
        #E = 1/(4*pi*epsilon0) * Q/(magnitude)**2
    epsilonO = 8.854*(10**(-12)) #-N*(m/C)**2-#
    k = 1/(4*pi*(epsilonO)) #-N*(m/C)**2-#
    chargeContri = k*sourceCharge #-N*(m**2/C)-#
    #================================================================#
    #---Loop through points and find mag of electric field:
        #add it to a new list with the existing tuple info-------#
    deltaPoints = []
    for XYZ in charliePoints:
        try:  ###-Avoid divide by 0 error in (x,y,z) = (0,0,0)-###
            magEfield = chargeContri*(1/(XYZ[1])**2)
        except:
            magEfield = 0
        tupEfield = (XYZ[0], XYZ[1], XYZ[2], magEfield)
        deltaPoints.append(tupEfield)
    #================================================================#
[[File:SIdeAngleAndSideViewEField.png|right|250px|thumb|Side angle of simulated electric field]]
    #---Loop through points and create an arrow at that point proportional in...
        #length to the magnitude of the electric field there.
        #Also, the arrow points in the direction of the electric field there.
        #Color coding is based on 0.25 meter increments:
            #stronger field = redder; weaker field = blue
    for XYZ in deltaPoints:
        if XYZ[1] <= 0.25:
            lengthP = XYZ[3]*0.5
            arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                          color = vector(1.000, 0.000, 0.000),
                          length = lengthP,
                          headwidth = lengthP*0.2,
                          headlength = lengthP*0.25)
        elif XYZ[1] <= 0.5:
            lengthP = XYZ[3]*0.7
            arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                          color = vector(1.000, 0.200, 0.000),
                          length = lengthP,
                          headwidth = lengthP*0.2,
                          headlength = lengthP*0.25)
        elif XYZ[1] <= 1:
            lengthP = XYZ[3]*0.9
            arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                          color = vector(1.000, 0.300, 0.000),
                          length = lengthP,
                          headwidth = lengthP*0.2,
                          headlength = lengthP*0.25)
        elif XYZ[1] <= 1.25:
            lengthP = XYZ[3]*1.1
            arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                          color = vector(1.000, 0.400, 0.000),
                          length = lengthP,
                          headwidth = lengthP*0.2,
                          headlength = lengthP*0.25)
        elif XYZ[1] <= 1.5:
            lengthP = XYZ[3]*1.3
            arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                          color = vector(1.000, 0.500, 0.000),
                          length = lengthP,
                          headwidth = lengthP*1,
                          headlength = lengthP*1)
        elif XYZ[1] <= 1.75:
            lengthP = XYZ[3]*1.5
            arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                          color = vector(1.000, 0.600, 0.000),
                          length = lengthP,
                          headwidth = lengthP*1,
                          headlength = lengthP*1)
        elif XYZ[1] <= 2:
            lengthP = XYZ[3]*1.7
            arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                          color = vector(1.000, 0.700, 0.000),
                          length = lengthP,
                          headwidth = lengthP*1,
                          headlength = lengthP*1)
        elif XYZ[1] <= 2.25:
            lengthP = XYZ[3]*1.9
            arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                          color = vector(1.000, 0.800, 0.000),
                          length = lengthP,
                          headwidth = lengthP*1,
                          headlength = lengthP*1)
        elif XYZ[1] <= 2.5:
            lengthP = XYZ[3]*2.1
            arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                          color = vector(1.000, 0.900, 0.000),
                          length = lengthP,
                          headwidth = lengthP*1,
                          headlength = lengthP*1)
        elif XYZ[1] <= 2.75:
            lengthP = XYZ[3]*2.3
            arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                          color = vector(1.000, 1.000, 0.000),
                          length = lengthP,
                          headwidth = lengthP*1,
                          headlength = lengthP*1)
        else:
            lengthP = XYZ[3]*2.5
            arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                          color = color.blue,
                          length = lengthP,
                          headwidth = lengthP*1,
                          headlength = lengthP*1)


[[File:vector superposition.jpg]]
* This link [https://phet.colorado.edu/en/simulation/charges-and-fields Charges and Fields] provides a PhET simulation of '''Electric Fields'''. Play with it!


=== Electric Field and Electric Potential===
* Or if you prefer something with more action, explore this [https://phet.colorado.edu/sims/electric-hockey/electric-hockey Hockey Game]  to gain a deeper visual understanding of electric fields and their effects on charges


Another way to define electric field is using the electric potential over a certain distance to determine field. In this case, Electric field is shown in units volts (V) per meter (m) (V/m).
Again, electric field is calculated with potential difference with the equation:
<math>E = -\frac{\Delta\phi}{d}</math>
==Examples==
==Examples==
===Simple===
*''Question'':
::In the following figure, the red circles represent positive point charges, and the blue circles represent negative point charges. If the yellow arrows are meant to represent the '''Electric Field''' due to each point charge, '''''which field(s) and charge(s) are correctly matched?''''' (Only take into account direction)
[[File:ElectricFieldSimpleExample.png|600px|center]]
*''Solution'':
::Since '''Electric Field''' lines always point away from a positive point charge, Option (C.) cannot be correct. Likewise, '''Electric Field''' lines always point towards a negative charge. Therefore, Option (A.) is also incorrect.
::Option (B.) shows a positive charge with an '''Electric Field''' pointing radially outwards. This is correct. Option (D.) shows a negative charge with an '''Electric Field''' pointing radially inwards. This is also correct.
:::'''Answer:''' Options (B.) & (D.)
[[File:Elecfield1.jpg|example|center]]
:: another simple example (from personal class notes)


Be sure to show all steps in your solution and include diagrams whenever possible
[[File:Elecfield2.jpg|example|center]]


===Simple===
Select all of the arrows that accurately show the electric field produced by the charge shown. (only direction not magnitude)
[[File:SimpleQ1.png]]
We know that the electric field from a single point charge will always point outwards if it is positive and always inwards if it is negative. This means that A and C are both correct.
===Middling===
===Middling===
What is the magnitude and direction of the electric field at the origin (assume Q = 1 coulomb)?
*''Question'':
[[File:MQ1.png]]  
:: Four point charges <math>\big(q_{1}, q_{2}, q_{3}, \text{and} \ q_{4} \big)</math>, are each located at a distance <math>d</math> along either the <math>x</math> or <math>y</math> axes, as shown in the figure below.
:*'''A.)''' '''''What is the net Electric Field at the origin?'''''
There is a positive charge on the right with an electric field pointing to the left at the origin. The negative charge on the left also has an electric field pointing to the left at the origin so we will add the two electric fields as they point along the negative x axis. <math>\frac{k}{1.5^2}+\frac{k*2}{2.25^2} = 0.75*10^{10} </math>
:*'''B.)''' '''''If <math>\ |q_{3}| = |q_{1}| \ \text{and} \ |q_{4}| = |q_{2}|</math> what does the Electric Field at the origin reduce to?'''''
[[File:ElectricFieldMiddlingExample.png|600px|center]]
 
*''Solution'':
:*'''A.)''' To find the net '''Electric Field''' at the origin, we must first find the '''Electric Field''' due to each charge at the origin.
::*Starting with <math>q_{1}</math>, its general '''Electric Field''' can be described as:
::::<math>\mathbf{E}_{1} = \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{1}|}{r_{1}^2} \hat{\mathbf{r}}_{1}</math>
::::<math>r_{1}</math> is measured relative to the location of <math>q_{1}</math>.
::::The origin is a distance <math>d</math> away from <math>q_{1}</math>, which is along the y-axis. Since it is a positive charge, its '''Electric Field''' at the origin will point "down" the y-axis (away from the charge):
::::<math>\mathbf{E}_{1} = \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{1}|}{d^2} (-\mathbf{j})</math> where <math>\mathbf{j}</math> is the unit vector in the y-direction.
 
::*For <math>q_{2}</math> we have:
::::<math>\mathbf{E}_{2} = \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{2}|}{r_{2}^2} \hat{\mathbf{r}}_{2}</math>
::::<math>r_{2}</math> is measured relative to the location of <math>q_{2}</math>.
::::The origin is a distance <math>d</math> away from <math>q_{2}</math>, which is along the x-axis. Since it is a positive charge, its '''Electric Field''' at the origin will point to the left (away from the charge):
::::<math>\mathbf{E}_{2} = \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{2}|}{d^2} (-\mathbf{i})</math> where <math>\mathbf{i}</math> is the unit vector in the x-direction.
 
::*For <math>q_{3}</math> we have:
::::<math>\mathbf{E}_{3} = \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{3}|}{r_{3}^2} \hat{\mathbf{r}}_{3}</math>
::::<math>r_{3}</math> is measured relative to the location of <math>q_{3}</math>.
::::The origin is a distance <math>d</math> away from <math>q_{3}</math>, which is along the y-axis. Since it is a negative charge, its '''Electric Field''' at the origin will point "down" the y-axis (towards the charge):
::::<math>\mathbf{E}_{3} = \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{3}|}{d^2} (-\mathbf{j})</math> where <math>\mathbf{j}</math> is the same unit vector in the y-direction from earlier.
 
::*For <math>q_{4}</math> the electric field is:
::::<math>\mathbf{E}_{4} = \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{4}|}{r_{4}^2} \hat{\mathbf{r}}_{4}</math>
::::<math>r_{4}</math> is measured relative to the location of <math>q_{4}</math>.
::::The origin is a distance <math>d</math> away from <math>q_{4}</math>, which is along the x-axis. Since it is a positive charge, its '''Electric Field''' at the origin will point to the right (away from the charge):
::::<math>\mathbf{E}_{4} = \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{4}|}{d^2} (\mathbf{i})</math> where <math>\mathbf{i}</math> is the same unit vector in the x-direction from earlier.
 
::Now that we have the four '''Electric Fields''' present at the origin, we can use the Principle of Superposition to find the '''net''' '''Electric Field''' at the origin:
 
:::<math>
\begin{align}
\mathbf{E}_{net} &= \mathbf{E}_{1} + \mathbf{E}_{2} + \mathbf{E}_{3} + \mathbf{E}_{4} \\
&= \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{1}|}{d^2} (-\mathbf{j}) + \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{2}|}{d^2} (-\mathbf{i}) + \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{3}|}{d^2} (-\mathbf{j}) + \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{4}|}{d^2} (\mathbf{i}) \\
&= \frac{1}{4 \pi \epsilon_{0} d^{2}} \Big[ -|q_{1}| \mathbf{j} -|q_{2}| \mathbf{i} -|q_{3}| \mathbf{j} + |q_{4}| \mathbf{i} \Big] \\
\mathbf{E}_{net} &= \frac{1}{4 \pi \epsilon_{0} d^{2}} \Big[ \big( |q_{4}| - |q_{2}| \big)\mathbf{i} - \big( |q_{1}| + |q_{3}| \big)\mathbf{j} \Big]
\end{align}
</math>
 
[[File:ElectricFieldMiddlingExampleAnswer.png|400px|right|thumb|Part '''(B)''' answer]]
 
:*'''B.)''' We will simply plug in the specified values into our answer from '''(A)''':
:::<math>
\begin{align}
\mathbf{E}_{net} &= \frac{1}{4 \pi \epsilon_{0} d^{2}} \Big[ \big( |q_{4}| - |q_{2}| \big)\mathbf{i} - \big( |q_{1}| + |q_{3}| \big)\mathbf{j} \Big] \\
&= \frac{1}{4 \pi \epsilon_{0} d^{2}} \Big[ \big( |q_{2}| - |q_{2}| \big)\mathbf{i} - \big( |q_{1}| + |q_{1}| \big)\mathbf{j} \Big] \\
&= \frac{1}{4 \pi \epsilon_{0} d^{2}} \Big[ 0 \mathbf{i} - 2|q_{1}| \mathbf{j} \Big] \\
&= \frac{1}{4 \pi \epsilon_{0} d^{2}} \Big[ - 2|q_{1}| \mathbf{j} \Big] \\
\mathbf{E}_{net} &= - \frac{1}{2 \pi \epsilon_{0} d^{2}} |q_{1}| \mathbf{j} \\
\end{align}
</math>
 
:::'''Answer:'''
:::*'''A.)''' <math>\mathbf{E}_{net} = \frac{1}{4 \pi \epsilon_{0} d^{2}} \Big[ \big( |q_{4}| - |q_{2}| \big)\mathbf{i} - \big( |q_{1}| + |q_{3}| \big)\mathbf{j} \Big]</math>
:::*'''B.)''' <math>\mathbf{E}_{net} = - \frac{1}{2 \pi \epsilon_{0} d^{2}} |q_{1}| \mathbf{j}</math>
 
::another mid-level example, focusing on two particles (from personal class notes)
 
[[File:Elecfield3.jpg|center|example]]
 
 
===Difficult===
*''Question'':
::A ring of evenly distributed charge of radius <math>a</math> is centered on the origin in the xy-plane. The ring has a total charge <math>Q</math>. '''''Show that the Electric Field due to this ring is 0 at the origin.'''''
[[File:ElectricFieldDifficultExample.png|600px|center]]
 
*''Solution'':
::The '''Electric Field''' due to a point charge is given by:
:::<math>\mathbf{E} = \frac{1}{4 \pi \epsilon_{0}} \frac{|Q|}{| \mathbf{r} - \mathbf{r}^{'} |^{2}} \frac{\mathbf{r} - \mathbf{r}^{'}}{| \mathbf{r} - \mathbf{r}^{'} |}</math>
:::This equation is equivalent to the formula presented in the [[Electric Field#A Mathematical Model | Mathematical Model]]. The reason it looks so different is due to a few assumptions in the mathematical model that we have stopped using:
:::# The source charge is located at the origin (our ring of charge is around the origin)
:::# The distance between the source charge and the observing location is simply expressed as a distance <math>r</math> (like in the [[Electric Field#Middling| Middling Example]]). Now, instead we will represent the distance as the magnitude of the difference in position between the source and observer <math>\big( | \mathbf{r} - \mathbf{r}^{'} | \big)</math>.
:::# Subsequently, our unit vector in the direction of the field <math>\big( \hat{\mathbf{r}} \big)</math> is not simply expressed as a typical unit vector (like in the middling example). It has now become the vector joining the source and observer divided by the magnitude of this same vector <math>\bigg( \frac{\mathbf{r} - \mathbf{r}^{'}}{| \mathbf{r} - \mathbf{r}^{'} |} \bigg) </math>.
 
::Another complication this problem presents is:
::::Where is the source charge?
:::To answer this, notice that the ring has an evenly distributed TOTAL charge <math>Q</math> and a radius <math>a</math>. Also, notice that the "source" position is constantly changing as you go around the ring. This issue makes it much more convenient to speak of the line charge DENSITY at a point along the ring instead of the TOTAL charge. This will allow us to treat the ring as many, many little source charges. The line charge density is simply the charge on the line divided by the length of that line (circumference), since the charge is evenly distributed about the ring:
 
::::<math>\rho_{L} = \frac{Q}{2 \pi a}</math>
 
:::This allows us to represent a differential amount of source charge as a product of the line charge density and a differential length:
 
::::<math>dQ = \rho_{L} dL</math>
 
:::The next question is: What is a differential length around the ring?
:::The differential length is a differential arc length <math>(s = r \theta)</math> around the circle dependent on the change in angle:
 
::::<math>dL = a d\theta</math>
 
:::Therefore:
::::<math>
\begin{align}
dQ &= \frac{Q}{2 \pi a} a d\theta \\
&= \frac{Q}{2 \pi} d\theta \\
\end{align}
</math>
 
:::Now we can sum each of these differential source charge's contribution to the '''Electric Field''' at the origin using an integral:
::::<math>\mathbf{E} = \int \frac{1}{4 \pi \epsilon_{0}} \frac{\frac{Q}{2 \pi} d\theta}{| \mathbf{r} - \mathbf{r}^{'} |^{2}} \frac{\mathbf{r} - \mathbf{r}^{'}}{| \mathbf{r} - \mathbf{r}^{'} |}</math>
 
:::The only things left to find are the generic source position (a vector that can describe the position of each differential source charge along the ring) and the observer location. The observer location is given to us; the origin:
::::<math>\mathbf{r} = 0\mathbf{i} +0\mathbf{j} + 0\mathbf{k}</math>
 
:::The source position is easiest to describe as a radius from the origin (polar coordinates):
::::<math>\mathbf{r}^{'} = a \hat{ \mathbf{a}}_{r}</math> where <math>\hat{\mathbf{a}}_{r}</math> is a unit vector in the radial direction
 
:::Therefore:
::::<math>
\begin{align}
\mathbf{r} - \mathbf{r}^{'} &= \big( 0\mathbf{i} +0\mathbf{j} + 0\mathbf{k} \big) - \big( a\hat{ \mathbf{a}}_{r} \big) \\
&= -a\hat{ \mathbf{a}}_{r} \\
 
|\mathbf{r} - \mathbf{r}^{'}| &= \sqrt{(-a)^{2}} \\
&= a \\
\end{align}
</math>
 
:::Plugging these into the '''Electric Field''' integral gives:
::::<math>
\begin{align}
\mathbf{E} &= \int \frac{1}{4 \pi \epsilon_{0}} \frac{\frac{Q}{2 \pi} d\theta}{a^2} \frac{-a \hat{ \mathbf{a}}_{r}}{a} \\
&= - \int \frac{1}{8 {\pi}^{2} \epsilon_{0}} \frac{Q}{a^2} \hat{ \mathbf{a}}_{r} d\theta \\
&= - \frac{Q}{a^{2} 8 {\pi}^{2} \epsilon_{0}} \int \hat{ \mathbf{a}}_{r} d\theta \\
\end{align}
</math>
 
::*<math>\theta</math> is the angle from the x-axis.
::*To integrate over the entire ring, we set the bounds of <math>\theta</math> as <math>[0, 2 \pi)</math>.  
::*Also, as of right now, the integral would not evaluate to 0. This is because <math>\hat{ \mathbf{a}}_{r}</math> has a hidden dependence on <math>\theta</math>:
::::<math>\hat{ \mathbf{a}}_{r} = \text{cos}( \theta) \mathbf{i} + \text{sin}( \theta) \mathbf{j}</math>
 
:::Plugging this information in gives:
::::<math>
\begin{alignat}{3}
\mathbf{E} &= - \frac{Q}{a^{2} 8 {\pi}^{2} \epsilon_{0}} \int_{0}^{2 \pi} \big( \text{cos}( \theta) \mathbf{i} + \text{sin}( \theta) \mathbf{j} \big) d\theta \\
\int_{0}^{2 \pi} \text{cos}( \theta) \mathbf{i} \ d\theta &= 0 \\
\int_{0}^{2 \pi} \text{sin}( \theta) \mathbf{j} \ d\theta &= 0 \\
\end{alignat}
</math>
 
:::Therefore:
::::<math>\mathbf{E} = 0</math> at the origin.


==Connectedness==
==Connectedness==
The real world applications of electric fields are endless. Here are some:
[[File:electricmotor.jpg|400px|right]]
*'''Electric Motors:'''<br>
:Electric motors convert Electrical Energy into Mechanical Energy through '''Electric Fields'''. Whenever electric motors are turned on, '''Electric Fields''' are generated. This is because in order to turn an electric motor, an '''Electric Field''' must first be generated, which then generates a Magnetic Field, thus making the motor spin. Electric motors are used in cars, elevators, fans, refrigerators, and many more applications.
*'''Computers:'''<br>
:Computers use circuits, electric fans, and transistors to work. All of these use '''Electric Fields''' to push charge through a circuit, spin fans, and allow logic to be implemented in electronics.
*'''Painting:'''<br>
:'''Electric Fields''' are also used in some paintings. The '''Electric Field''' generates charges on the surface of the material being painted on, and an opposite charge is generated on the paint. Paint that touches the material sticks, and excess paint falls off to go back into the system.
*'''Cancer Treatment:'''<br>
:Recently, weak '''Electric Fields''' have been used to kill cancer cells. This treatment works best for brain and breast cancers, and it has no effect on normal cells. In lab and animal tests, this treatment killed cancer cells of every type tested; however, this is still a developing treatment.
*'''Military and Defense:'''<br>
:'''Electric Fields''' are commonly used in various weapons platforms. Weapons used to rely primarily on explosives; however, electric weapons use stored electrical energy to attack targets. There are two general types: directed-energy weapons (DEWs) and electromagnetic (EM) weapons. DEWs include lasers, radio frequency weapons, and more. EM weapons include rail guns, coil guns, etc. For example, rail guns use EM force to launch high velocity projectiles at a target. They work by using very high electrical currents to induce magnetic fields that accelerate a projectile to extremely high speeds (up to Mach 6).


==History==
==History==
'''Electric Fields''' are created by Electric charges. The original discovery of the Electric charge is not explicitly known, but in 1675 the esteemed chemist Robert Boyle, known for Boyle's Law, discovered the attraction and repulsion of certain particles in a vacuum. Almost 100 years later in the 18th century, the American Benjamin Franklin first coined the phrases 'positive' and 'negative' (later developed into proton and electron) for these particles with attractive and repulsive properties. Finally, in the 19th century Michael Faraday utilized his Electrolysis process to discover the discrete nature of Electric charge.


Electric fields are created by electric charges. The original discovery of the electric charge is not explicitly known, but in 1675 the esteemed chemist [[Robert Boyle]], known for [[Boyle's Law]], discovered the attraction and repulsion of certain particles in a vacuum. Almost 100 years later in the 18th century the American [[Benjamin Franklin]] first coined the phrases positive and negative (later developed into proton and electron) for these particles with attractive and repulsive properties. Finally, in the 19th century [[Michael Faraday]] utilized his electrolysis process to discover the discrete nature of electric charge.  
==See also==
 
The ability to understand '''Electric Fields''' helps set the basis for the introduction to [[Electric Force]] (as we discussed <math> \mathbf{F}  = q\mathbf{E}</math> ). The introduction of Electric Force will attach the specific charge of the particles with the '''Electric Field''' that they produce, resulting in the Electric Force. Electric Force will lay the ground work for understanding the force that particles have in different systems and environments, and eventually lead to the introduction of [[Magnetic Force]].
== See also ==
The understanding of '''Electric Fields''' is a doorway into many various fields, only some of which will be covered in Physics 2212. The fundamental understanding of '''Electric Fields''' will prove to be very important further along when Magnetic Fields are introduced, as they share many qualities. The understanding of Electric and Magnetic Fields will be used throughout the semester to learn about various Electromagnetic concepts, and ultimately to understanding and apply Maxwell's Equations.  
Please see related topics:


The understanding of electric fields is a doorway into all the various fields only some of which will be covered in physics 2212. The fundamental understanding of electric fields will prove to be very important further along when magnetic fields are introduced as they share many qualities. Some quality material can be found at:
===Further reading===
*[[Electric Potential]]<br>
[[Electric Force]] (as we discussed <math> \vec{F}  = q\vec{E}</math> )
*[[Electric Force]]<br>
*[[Lorentz Force]]<br>
*[[Electric Polarization]]<br>
*[[Charged Ring]]<br>


===External links===
===External links===
*[https://www.youtube.com/watch?v=EPIhhbwbCNc&list=PLX2gX-ftPVXUcMGbk1A7UbNtgadPsK5BD&index=9 A Youtube Playlist That Does A Great Job Going Step By Step And Reviewing Topics]


[https://www.youtube.com/watch?v=EPIhhbwbCNc&list=PLX2gX-ftPVXUcMGbk1A7UbNtgadPsK5BD&index=9 A youtube playlist that does a great job going step by step and reviewing topics]
*[http://www.physicsclassroom.com/class/estatics/Lesson-4/Electric-Field-Lines Further Review On Electric Field Lines.]  


[http://www.physicsclassroom.com/class/estatics/Lesson-4/Electric-Field-Lines Further review on electric field lines.]  
*[https://phet.colorado.edu/en/simulation/charges-and-fields Get A Better Understanding Of Fields Through Hands On Manipulation In PhET. This Can Be Very Helpful For Getting An Intuitive Understanding Of Fields.]


[https://phet.colorado.edu/en/simulation/charges-and-fields Get a better understanding of fields through hands on manipulation. This can be very helpful to getting an intuitive understanding of fields.]
*[https://en.wikipedia.org/wiki/Electric_field Wikipedia Electric Field]
==References==


This section contains the the references you used while writing this page
*[https://www.khanacademy.org/science/physics/electric-charge-electric-force-and-voltage/electric-field/v/electrostatics-part-2 Electric Field]


[[Category:Which Category did you place this in?]]
==References==
*[https://openstax.org/details/books/university-physics-volume-2 OpenStax Volume on Electricity and Magnetism]<br>
*Hayt & Buck 9th Edition Engineering Electromagnetics<br>
*Matter and Interactions<br>

Latest revision as of 21:57, 23 April 2023

CLAIMED BY AMRITAA BASU - F2023

The Main Idea

Here, the concept of an Electric Field produced by a point charge is explored qualitatively and quantitatively through models, examples, and a simulation. An Electric Field is a useful concept to describe how any charged particle or collection of charged particles (positive / negative) would affect surrounding charge.

The Electric Field of a point charge is spherically symmetric, (same at all points of equal radius from the source. Hence, it is useful to speak of the electric field at a certain radius (not at a certain [math]\displaystyle{ (x,y,z) }[/math] position), which is explained in the mathematical model.

Keep in mind, the electric field is a vector quantity, meaning it has a magnitude and direction. The SI units are N/C.

^handwritten personal class notes w/ basic concepts

A Mathematical Model

The Electric Field vector [math]\displaystyle{ \bigl( \mathbf{E}_{s} \bigl) }[/math] of a point source charge [math]\displaystyle{ \bigl( Q_{s} \bigl) }[/math] gives the magnitude and direction of the Electrostatic Force vector [math]\displaystyle{ \bigl( \mathbf{F}_{s} \bigl) }[/math] exerted on a unit charge ([math]\displaystyle{ 1 }[/math] Coulomb) by [math]\displaystyle{ Q_{s} }[/math], as a function of position [math]\displaystyle{ \bigl( \mathbf{r} = (x,y,z) \bigl) }[/math]. More generally however, the Electrostatic Force vector exerted on any point charge [math]\displaystyle{ \bigl( q \bigl) }[/math] by a point source charge [math]\displaystyle{ \bigl( Q_{s} \bigl) }[/math] is related to the source charge's Electric Field vector by:

[math]\displaystyle{ \mathbf{F}_{s} ( \mathbf{r} ) = q \mathbf{E}_{s} ( \mathbf{r} ) }[/math]

This definition requires an understanding of the Electrostatic Force (Coulomb's Law), and its mathematical description. If you are not familiar with this yet, read over the Electric Force page and come back.

Since the Electric Force is defined as:

[math]\displaystyle{ \mathbf{F}( \mathbf{r} ) = \frac{1}{4\pi\epsilon_{o}}\frac{q_{1} q_{2}}{r^{2}} \hat{\mathbf{r}} }[/math], where
[math]\displaystyle{ \epsilon_{o} }[/math] is the permittivity of free space with a value of [math]\displaystyle{ 8.854 \times 10^{-12} \frac{\text{C}^2}{\text{N} \cdot \text{m}^2} }[/math]
[math]\displaystyle{ q_{1} }[/math] and [math]\displaystyle{ q_{2} }[/math] are two different point charges
[math]\displaystyle{ r }[/math] is the distance between the two point charges, which can also be written as [math]\displaystyle{ |\mathbf{r}| }[/math], the magnitude of the vector connecting the two charges' positions
[math]\displaystyle{ \hat{\mathbf{r}} }[/math] is the unit vector pointing from charge one to charge two, or from charge two to charge one, depending on whether the force on charge two or charge one is sought for.

The Electric Field of a source charge [math]\displaystyle{ Q_{s} }[/math] is:

[math]\displaystyle{ \begin{align} \mathbf{E}_{s} ( \mathbf{r}) & = \frac{\mathbf{F}_{s} ( \mathbf{r} )}{q} \\ & = \frac{1}{4\pi\epsilon_{o}}\frac{Q_{s}}{r^{2}}\hat{\mathbf{r}} \end{align} }[/math]


As evidently based from the mathematical formula of an electric field for a point charge (which can also be applied to a spherically uniformly charged body), the electric field has an inverse-square relationship with the radius regarding the observation location. Essentially, as distance (radius) increases from the point charge's source, it's electric field at that observation location weakens by a corresponding factor of [math]\displaystyle{ {r^{-2}} }[/math]

Radially, the magnitude of a point charge's Electric Field looks something like this:


[math]\displaystyle{ 2 \times 10^{-15} \ \text{C} }[/math] charge's Electric Field magnitude as a function of radius.


A point charge's Electric Field is also related to its Electric Potential. If you are unfamiliar with the idea of electric potential, then review these pages (Electric Field and Electric Potential and Electric Potential) and come back.

A charge's Electric Field and Electric Potential [math]\displaystyle{ V }[/math] are related by:

[math]\displaystyle{ V_{ab} = -\int_{\mathbf{b}}^{\mathbf{a}} \mathbf{E} \cdot d\mathbf{L} }[/math], where
[math]\displaystyle{ V_{ab} }[/math] is the potential difference between points [math]\displaystyle{ \mathbf{a} }[/math] and [math]\displaystyle{ \mathbf{b} }[/math]
[math]\displaystyle{ \mathbf{E} }[/math] is the Electric Field
[math]\displaystyle{ d\mathbf{L} }[/math] is an infinitesimal length along the path between [math]\displaystyle{ \mathbf{a} }[/math] and [math]\displaystyle{ \mathbf{b} }[/math]

This relation is less useful for us unless we use a straight line approximation, such that:

[math]\displaystyle{ \begin{align} V_{ab} & = -\mathbf{E} \cdot \Delta \mathbf{L} \\ & = - \bigl( E_{x}, E_{y}, E_{z} \bigl) \cdot \bigl( \Delta L_{x}, \Delta L_{y}, \Delta L_{z} \bigl) \\ & = - \bigl( E_{x}\Delta L_{x} + E_{y}\Delta L_{y} + E_{z}\Delta L_{z} \bigl) \\ \end{align} }[/math]

This leads to:

[math]\displaystyle{ \mathbf{E} (x,y,z) = - \biggl( \frac{\Delta V_{x}}{\Delta L_{x}}, \frac{\Delta V_{y}}{\Delta L_{y}}, \frac{\Delta V_{z}}{\Delta L_{z}} \biggl) }[/math]

By convention, the Electric Field due to a positive point charge always points away from itself, and the Electric Field of a negative point charge always points towards itself as shown below:

Opposite charges will attract each other, and like charges will repel each other, as shown below:

Lastly, the Principle of Superposition is directly applicable to finding the Electric Field due to multiple point source charges, using the a vector sum:

[math]\displaystyle{ \begin{align} \mathbf{E}_{sum} (\mathbf{r}) & = \mathbf{E}_{1} + \mathbf{E}_{2} + \mathbf{E}_{3} + \cdots + \mathbf{E}_{N} \\ & = \sum_{1}^{N} \mathbf{E}_{n} \\ & = \sum_{1}^{N} \frac{1}{4 \pi \epsilon_{o}} \frac{Q_{s_{n}}}{r_{n}^{2}} \hat{\mathbf{r}}_n \end{align} }[/math]
  • When using this, be careful to take note that the Electric Field of a negative charge points in the opposite direction as a positive charge.
  • Critical Formulas:
    • [math]\displaystyle{ \mathbf{E} ( \mathbf{r}) = \frac{\mathbf{F} ( \mathbf{r} )}{q} }[/math]
    • [math]\displaystyle{ \mathbf{E} ( \mathbf{r}) = \frac{1}{4\pi\epsilon_{o}}\frac{Q}{r^{2}}\hat{\mathbf{r}} }[/math]
    • [math]\displaystyle{ \mathbf{E} (x,y,z) = - \biggl( \frac{\Delta V_{x}}{\Delta L_{x}}, \frac{\Delta V_{y}}{\Delta L_{y}}, \frac{\Delta V_{z}}{\Delta L_{z}} \biggl) }[/math]
    • [math]\displaystyle{ \mathbf{E}_{sum} (\mathbf{r}) = \sum_{1}^{N} \frac{1}{4 \pi \epsilon_{o}} \frac{Q_{s_{n}}}{r_{n}^{2}} \hat{\mathbf{r}}_n }[/math]
Normal view of simulated electric field

The Electric Field of a dipole perpendicular to axis is:

[math]\displaystyle{ \begin{align} \rho = qs\rho (hat) \end{align} }[/math]
  • p is the unit vector from the - to the + of the dipole
  • q is the magnitude of the charge of one side of the dipole
  • s is the separation distance between the charges that make up the dipole

When observation location X is perpendicular to the center of the dipole (i.e. vector r runs through the middle of the dipole at s/2), then you can use a special formula to calculate the E-field of the dipole at that location.

[math]\displaystyle{ \begin{align} E_{dipole\perp} = \frac{1}{4 \pi \epsilon_{o}} \frac{q}{|r|^2 + (\frac{S}{2})^2} (\hat{\mathbf{r}}_{+} - \hat{\mathbf{r}}_{-}) \end{align} }[/math]
[math]\displaystyle{ \begin{align} E_{dipole\perp} = \frac{1}{4 \pi \epsilon_{o}} \frac{-p}{(|r|^2 + (\frac{S}{2})^2)^\frac{3}{2}} \end{align} }[/math]

Special Case: When r >> s (when vector between observation location and dipole is much greater than the separation distance of the dipole)

In this case, s becomes negligible, and the equation becomes

[math]\displaystyle{ \begin{align} E_{dipole\perp} = \frac{1}{4 \pi \epsilon_{o}} \frac{qs}{r^3} \end{align} }[/math]

A Computational Model

   ###--Create Electric Field Lines of a Positive Charge at the Origin--###
   #==============================================================#
   #---Import statements for VPython---#
   from __future__ import division
   from visual import *
   #---Import function used to find combinations---#
   from itertools import combinations
   #==============================================================#
   #---Create scene---#
   scene.center = vector(0,0,0)  #-Position of source charge-#
   scene.height = 800  #-Set height of frame of scene-#
   scene.width = 800  #-Set width of frame of scene-#
   scene.range = 4  #-Set range of scene-#
   scene.userzoom = 1  #-Allow user to zoom in/out: CTRL & move in/out on trackpad-#
   scene.userspin = 1  #-Allow user to rotate camera angle: SHIFT & OPTION & move around on track pad-#
   #==============================================================#
   #---Specify point charge attributes---#
   sourceCharge = 3*10**(-11)  #-Coulombs of charge-#
   sourcePos = vector(0,0,0) #-Position of source charge-#
   ###--Modeling source point charge as a sphere with radius 0.1 meters--###
   sourceObj = sphere(pos = sourcePos, radius = 0.1, color = color.cyan)
   #==============================================================#
   #---Set range (0 to 3) and possible inputs for the coordinates (0.5 step)---#
   ###--Many of the same number included to allow for combinations such as (1,1,1).
       #The itertools.combinations function will only use each element of the...
       #list once, starting from the beginning.
       #Repeating each coordinate many times with intermixing, grants...
Distant view of simulated electric field
       #all combinations of points, with repeats however.
       #Later, a for loop will be used to eliminate repeats.
       #This can be optimized later if need be.---------------###
   posXYZ = [0, -0.5, 1, -1.5, 2, -2.5, 3,
             0, 0.5, -1, 1.5, -2, 2.5, -3,
             0, -0.5, 1, -1.5, 2, -2.5, 3,
             0, 0.5, -1, 1.5, -2, 2.5, -3,
             0, -0.5, 1, -1.5, 2, -2.5, 3,
             0, 0.5, -1, 1.5, -2, 2.5, -3,
             0, -0.5, 1, -1.5, 2, -2.5, 3,
             0, 0.5, -1, 1.5, -2, 2.5, -3,
             0, -0.5, 1, -1.5, 2, -2.5, 3,
             0, 0.5, -1, 1.5, -2, 2.5, -3,
             0, -0.5, 1, -1.5, 2, -2.5, 3,
             0, 0.5, -1, 1.5, -2, 2.5, -3]
   #==============================================================#
Rotated and zoomed in view of simulated electric field
   #---Create combinations of points (x,y,z) for later use---#
       ###--prelimPoints will be a list of tuples of tuples--##
           #ie: [((,,),(,,),(,,),(,,)) , ((,,),(,,)) ,..., ((,,),(,,))]
   prelimPoints = [tuple(combinations(posXYZ, 3))]
   ###--Pull the points out of the grouping tuples and add them to a...
       #new list alphaPoints------------------------###
   alphaPoints = []
   for groupingTuple in prelimPoints:
       for XYZ in groupingTuple:
           if XYZ not in alphaPoints:  #-Check for repeat (x,y,z)-#
               alphaPoints.append(XYZ)
           ##--The negative of this tuple may not be in the combinations:
               #check to see-------------##
           first = -XYZ[0]
           second = -XYZ[1]
           third = -XYZ[2]
           negXYZ = (first, second, third)
           if negXYZ not in alphaPoints:
               alphaPoints.append(negXYZ)
           ##--Swap x and z coordinates for futher combination checking--##
           first = XYZ[2]
           second = XYZ[1]
           third = XYZ[0]
           reverseXYZ = (first, second, third)
           if reverseXYZ not in alphaPoints:
               alphaPoints.append(reverseXYZ)
           ##--The negative of the x and z coordinate swap may not be in...
               #the combinations: check to see---------##
           first = -XYZ[2]
           second = -XYZ[1]
           third = -XYZ[0]
           reverseXYZneg = (first, second, third)
           if reverseXYZneg not in alphaPoints:
               alphaPoints.append(reverseXYZneg)
           ##--Make x [3], y [0], and z [1] to check for more combinations--##
           first = XYZ[1]
           second = XYZ[2]
           third = XYZ[0]
           shiftedXYZ = (first, second, third)
           if shiftedXYZ not in alphaPoints:
               alphaPoints.append(shiftedXYZ)
           ##--The negative of the shifted XYZ may not be in the combinations:
               #check to see---------------##
           first = -XYZ[1]
           second = -XYZ[2]
           third = -XYZ[0]
           shiftedXYZneg = (first, second, third)
           if shiftedXYZneg not in alphaPoints:
               alphaPoints.append(shiftedXYZneg)
   ###--------This should be enough recombining---------###
   #================================================================#
Rotated top view of simulated electric field
   #---Create a new list of tuples that contain the points, magnitude,...
       #and direction (betaPoints)-----------#
           #ie: [((x,y,z), mag((x,y,z)), norm((x,y,z))),...]
   betaPoints = []
   for XYZ in alphaPoints:
       Mag = mag(XYZ)
       Dir = norm(XYZ)
       betaPoints.append((XYZ, Mag, Dir))
   #================================================================#
   #---Sort the tuples based on their magnitudes from least to greatest...
      #using sorted().
           #key = lamda x: x[1] tells the sorted function to sort the tuples...
               #based on their second component...their magnitudes--------#
   charliePoints = sorted(betaPoints, key = lambda x: x[1])
   #================================================================#
   #---Calculate parts of electric field equation:
       #E = 1/(4*pi*epsilon0) * Q/(magnitude)**2
   epsilonO = 8.854*(10**(-12)) #-N*(m/C)**2-#
   k = 1/(4*pi*(epsilonO)) #-N*(m/C)**2-#
   chargeContri = k*sourceCharge #-N*(m**2/C)-#
   #================================================================#
   #---Loop through points and find mag of electric field:
       #add it to a new list with the existing tuple info-------#
   deltaPoints = []
   for XYZ in charliePoints:
       try:  ###-Avoid divide by 0 error in (x,y,z) = (0,0,0)-###
           magEfield = chargeContri*(1/(XYZ[1])**2)
       except:
           magEfield = 0
       tupEfield = (XYZ[0], XYZ[1], XYZ[2], magEfield)
       deltaPoints.append(tupEfield)
   #================================================================#
Side angle of simulated electric field
   #---Loop through points and create an arrow at that point proportional in...
       #length to the magnitude of the electric field there.
       #Also, the arrow points in the direction of the electric field there.
       #Color coding is based on 0.25 meter increments:
           #stronger field = redder; weaker field = blue
   for XYZ in deltaPoints:
       if XYZ[1] <= 0.25:
           lengthP = XYZ[3]*0.5
           arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                         color = vector(1.000, 0.000, 0.000),
                         length = lengthP,
                         headwidth = lengthP*0.2,
                         headlength = lengthP*0.25)
       elif XYZ[1] <= 0.5:
           lengthP = XYZ[3]*0.7
           arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                         color = vector(1.000, 0.200, 0.000),
                         length = lengthP,
                         headwidth = lengthP*0.2,
                         headlength = lengthP*0.25)
       elif XYZ[1] <= 1:
           lengthP = XYZ[3]*0.9
           arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                         color = vector(1.000, 0.300, 0.000),
                         length = lengthP,
                         headwidth = lengthP*0.2,
                         headlength = lengthP*0.25)
       elif XYZ[1] <= 1.25:
           lengthP = XYZ[3]*1.1
           arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                         color = vector(1.000, 0.400, 0.000),
                         length = lengthP,
                         headwidth = lengthP*0.2,
                         headlength = lengthP*0.25)
       elif XYZ[1] <= 1.5:
           lengthP = XYZ[3]*1.3
           arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                         color = vector(1.000, 0.500, 0.000),
                         length = lengthP,
                         headwidth = lengthP*1,
                         headlength = lengthP*1)
       elif XYZ[1] <= 1.75:
           lengthP = XYZ[3]*1.5
           arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                         color = vector(1.000, 0.600, 0.000),
                         length = lengthP,
                         headwidth = lengthP*1,
                         headlength = lengthP*1)
       elif XYZ[1] <= 2:
           lengthP = XYZ[3]*1.7
           arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                         color = vector(1.000, 0.700, 0.000),
                         length = lengthP,
                         headwidth = lengthP*1,
                         headlength = lengthP*1)
       elif XYZ[1] <= 2.25:
           lengthP = XYZ[3]*1.9
           arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                         color = vector(1.000, 0.800, 0.000),
                         length = lengthP,
                         headwidth = lengthP*1,
                         headlength = lengthP*1)
       elif XYZ[1] <= 2.5:
           lengthP = XYZ[3]*2.1
           arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                         color = vector(1.000, 0.900, 0.000),
                         length = lengthP,
                         headwidth = lengthP*1,
                         headlength = lengthP*1)
       elif XYZ[1] <= 2.75:
           lengthP = XYZ[3]*2.3
           arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                         color = vector(1.000, 1.000, 0.000),
                         length = lengthP,
                         headwidth = lengthP*1,
                         headlength = lengthP*1)
       else:
           lengthP = XYZ[3]*2.5
           arroW = arrow(pos=vector(XYZ[0]), axis=XYZ[2],
                         color = color.blue,
                         length = lengthP,
                         headwidth = lengthP*1,
                         headlength = lengthP*1)
  • Or if you prefer something with more action, explore this Hockey Game to gain a deeper visual understanding of electric fields and their effects on charges

Examples

Simple

  • Question:
In the following figure, the red circles represent positive point charges, and the blue circles represent negative point charges. If the yellow arrows are meant to represent the Electric Field due to each point charge, which field(s) and charge(s) are correctly matched? (Only take into account direction)
  • Solution:
Since Electric Field lines always point away from a positive point charge, Option (C.) cannot be correct. Likewise, Electric Field lines always point towards a negative charge. Therefore, Option (A.) is also incorrect.
Option (B.) shows a positive charge with an Electric Field pointing radially outwards. This is correct. Option (D.) shows a negative charge with an Electric Field pointing radially inwards. This is also correct.
Answer: Options (B.) & (D.)
example
example
another simple example (from personal class notes)
example
example

Middling

  • Question:
Four point charges [math]\displaystyle{ \big(q_{1}, q_{2}, q_{3}, \text{and} \ q_{4} \big) }[/math], are each located at a distance [math]\displaystyle{ d }[/math] along either the [math]\displaystyle{ x }[/math] or [math]\displaystyle{ y }[/math] axes, as shown in the figure below.
  • A.) What is the net Electric Field at the origin?
  • B.) If [math]\displaystyle{ \ |q_{3}| = |q_{1}| \ \text{and} \ |q_{4}| = |q_{2}| }[/math] what does the Electric Field at the origin reduce to?
  • Solution:
  • A.) To find the net Electric Field at the origin, we must first find the Electric Field due to each charge at the origin.
  • Starting with [math]\displaystyle{ q_{1} }[/math], its general Electric Field can be described as:
[math]\displaystyle{ \mathbf{E}_{1} = \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{1}|}{r_{1}^2} \hat{\mathbf{r}}_{1} }[/math]
[math]\displaystyle{ r_{1} }[/math] is measured relative to the location of [math]\displaystyle{ q_{1} }[/math].
The origin is a distance [math]\displaystyle{ d }[/math] away from [math]\displaystyle{ q_{1} }[/math], which is along the y-axis. Since it is a positive charge, its Electric Field at the origin will point "down" the y-axis (away from the charge):
[math]\displaystyle{ \mathbf{E}_{1} = \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{1}|}{d^2} (-\mathbf{j}) }[/math] where [math]\displaystyle{ \mathbf{j} }[/math] is the unit vector in the y-direction.
  • For [math]\displaystyle{ q_{2} }[/math] we have:
[math]\displaystyle{ \mathbf{E}_{2} = \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{2}|}{r_{2}^2} \hat{\mathbf{r}}_{2} }[/math]
[math]\displaystyle{ r_{2} }[/math] is measured relative to the location of [math]\displaystyle{ q_{2} }[/math].
The origin is a distance [math]\displaystyle{ d }[/math] away from [math]\displaystyle{ q_{2} }[/math], which is along the x-axis. Since it is a positive charge, its Electric Field at the origin will point to the left (away from the charge):
[math]\displaystyle{ \mathbf{E}_{2} = \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{2}|}{d^2} (-\mathbf{i}) }[/math] where [math]\displaystyle{ \mathbf{i} }[/math] is the unit vector in the x-direction.
  • For [math]\displaystyle{ q_{3} }[/math] we have:
[math]\displaystyle{ \mathbf{E}_{3} = \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{3}|}{r_{3}^2} \hat{\mathbf{r}}_{3} }[/math]
[math]\displaystyle{ r_{3} }[/math] is measured relative to the location of [math]\displaystyle{ q_{3} }[/math].
The origin is a distance [math]\displaystyle{ d }[/math] away from [math]\displaystyle{ q_{3} }[/math], which is along the y-axis. Since it is a negative charge, its Electric Field at the origin will point "down" the y-axis (towards the charge):
[math]\displaystyle{ \mathbf{E}_{3} = \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{3}|}{d^2} (-\mathbf{j}) }[/math] where [math]\displaystyle{ \mathbf{j} }[/math] is the same unit vector in the y-direction from earlier.
  • For [math]\displaystyle{ q_{4} }[/math] the electric field is:
[math]\displaystyle{ \mathbf{E}_{4} = \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{4}|}{r_{4}^2} \hat{\mathbf{r}}_{4} }[/math]
[math]\displaystyle{ r_{4} }[/math] is measured relative to the location of [math]\displaystyle{ q_{4} }[/math].
The origin is a distance [math]\displaystyle{ d }[/math] away from [math]\displaystyle{ q_{4} }[/math], which is along the x-axis. Since it is a positive charge, its Electric Field at the origin will point to the right (away from the charge):
[math]\displaystyle{ \mathbf{E}_{4} = \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{4}|}{d^2} (\mathbf{i}) }[/math] where [math]\displaystyle{ \mathbf{i} }[/math] is the same unit vector in the x-direction from earlier.
Now that we have the four Electric Fields present at the origin, we can use the Principle of Superposition to find the net Electric Field at the origin:
[math]\displaystyle{ \begin{align} \mathbf{E}_{net} &= \mathbf{E}_{1} + \mathbf{E}_{2} + \mathbf{E}_{3} + \mathbf{E}_{4} \\ &= \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{1}|}{d^2} (-\mathbf{j}) + \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{2}|}{d^2} (-\mathbf{i}) + \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{3}|}{d^2} (-\mathbf{j}) + \frac{1}{4 \pi \epsilon_{0}} \frac{|q_{4}|}{d^2} (\mathbf{i}) \\ &= \frac{1}{4 \pi \epsilon_{0} d^{2}} \Big[ -|q_{1}| \mathbf{j} -|q_{2}| \mathbf{i} -|q_{3}| \mathbf{j} + |q_{4}| \mathbf{i} \Big] \\ \mathbf{E}_{net} &= \frac{1}{4 \pi \epsilon_{0} d^{2}} \Big[ \big( |q_{4}| - |q_{2}| \big)\mathbf{i} - \big( |q_{1}| + |q_{3}| \big)\mathbf{j} \Big] \end{align} }[/math]
Part (B) answer
  • B.) We will simply plug in the specified values into our answer from (A):
[math]\displaystyle{ \begin{align} \mathbf{E}_{net} &= \frac{1}{4 \pi \epsilon_{0} d^{2}} \Big[ \big( |q_{4}| - |q_{2}| \big)\mathbf{i} - \big( |q_{1}| + |q_{3}| \big)\mathbf{j} \Big] \\ &= \frac{1}{4 \pi \epsilon_{0} d^{2}} \Big[ \big( |q_{2}| - |q_{2}| \big)\mathbf{i} - \big( |q_{1}| + |q_{1}| \big)\mathbf{j} \Big] \\ &= \frac{1}{4 \pi \epsilon_{0} d^{2}} \Big[ 0 \mathbf{i} - 2|q_{1}| \mathbf{j} \Big] \\ &= \frac{1}{4 \pi \epsilon_{0} d^{2}} \Big[ - 2|q_{1}| \mathbf{j} \Big] \\ \mathbf{E}_{net} &= - \frac{1}{2 \pi \epsilon_{0} d^{2}} |q_{1}| \mathbf{j} \\ \end{align} }[/math]
Answer:
  • A.) [math]\displaystyle{ \mathbf{E}_{net} = \frac{1}{4 \pi \epsilon_{0} d^{2}} \Big[ \big( |q_{4}| - |q_{2}| \big)\mathbf{i} - \big( |q_{1}| + |q_{3}| \big)\mathbf{j} \Big] }[/math]
  • B.) [math]\displaystyle{ \mathbf{E}_{net} = - \frac{1}{2 \pi \epsilon_{0} d^{2}} |q_{1}| \mathbf{j} }[/math]
another mid-level example, focusing on two particles (from personal class notes)
example
example


Difficult

  • Question:
A ring of evenly distributed charge of radius [math]\displaystyle{ a }[/math] is centered on the origin in the xy-plane. The ring has a total charge [math]\displaystyle{ Q }[/math]. Show that the Electric Field due to this ring is 0 at the origin.
  • Solution:
The Electric Field due to a point charge is given by:
[math]\displaystyle{ \mathbf{E} = \frac{1}{4 \pi \epsilon_{0}} \frac{|Q|}{| \mathbf{r} - \mathbf{r}^{'} |^{2}} \frac{\mathbf{r} - \mathbf{r}^{'}}{| \mathbf{r} - \mathbf{r}^{'} |} }[/math]
This equation is equivalent to the formula presented in the Mathematical Model. The reason it looks so different is due to a few assumptions in the mathematical model that we have stopped using:
  1. The source charge is located at the origin (our ring of charge is around the origin)
  2. The distance between the source charge and the observing location is simply expressed as a distance [math]\displaystyle{ r }[/math] (like in the Middling Example). Now, instead we will represent the distance as the magnitude of the difference in position between the source and observer [math]\displaystyle{ \big( | \mathbf{r} - \mathbf{r}^{'} | \big) }[/math].
  3. Subsequently, our unit vector in the direction of the field [math]\displaystyle{ \big( \hat{\mathbf{r}} \big) }[/math] is not simply expressed as a typical unit vector (like in the middling example). It has now become the vector joining the source and observer divided by the magnitude of this same vector [math]\displaystyle{ \bigg( \frac{\mathbf{r} - \mathbf{r}^{'}}{| \mathbf{r} - \mathbf{r}^{'} |} \bigg) }[/math].
Another complication this problem presents is:
Where is the source charge?
To answer this, notice that the ring has an evenly distributed TOTAL charge [math]\displaystyle{ Q }[/math] and a radius [math]\displaystyle{ a }[/math]. Also, notice that the "source" position is constantly changing as you go around the ring. This issue makes it much more convenient to speak of the line charge DENSITY at a point along the ring instead of the TOTAL charge. This will allow us to treat the ring as many, many little source charges. The line charge density is simply the charge on the line divided by the length of that line (circumference), since the charge is evenly distributed about the ring:
[math]\displaystyle{ \rho_{L} = \frac{Q}{2 \pi a} }[/math]
This allows us to represent a differential amount of source charge as a product of the line charge density and a differential length:
[math]\displaystyle{ dQ = \rho_{L} dL }[/math]
The next question is: What is a differential length around the ring?
The differential length is a differential arc length [math]\displaystyle{ (s = r \theta) }[/math] around the circle dependent on the change in angle:
[math]\displaystyle{ dL = a d\theta }[/math]
Therefore:
[math]\displaystyle{ \begin{align} dQ &= \frac{Q}{2 \pi a} a d\theta \\ &= \frac{Q}{2 \pi} d\theta \\ \end{align} }[/math]
Now we can sum each of these differential source charge's contribution to the Electric Field at the origin using an integral:
[math]\displaystyle{ \mathbf{E} = \int \frac{1}{4 \pi \epsilon_{0}} \frac{\frac{Q}{2 \pi} d\theta}{| \mathbf{r} - \mathbf{r}^{'} |^{2}} \frac{\mathbf{r} - \mathbf{r}^{'}}{| \mathbf{r} - \mathbf{r}^{'} |} }[/math]
The only things left to find are the generic source position (a vector that can describe the position of each differential source charge along the ring) and the observer location. The observer location is given to us; the origin:
[math]\displaystyle{ \mathbf{r} = 0\mathbf{i} +0\mathbf{j} + 0\mathbf{k} }[/math]
The source position is easiest to describe as a radius from the origin (polar coordinates):
[math]\displaystyle{ \mathbf{r}^{'} = a \hat{ \mathbf{a}}_{r} }[/math] where [math]\displaystyle{ \hat{\mathbf{a}}_{r} }[/math] is a unit vector in the radial direction
Therefore:
[math]\displaystyle{ \begin{align} \mathbf{r} - \mathbf{r}^{'} &= \big( 0\mathbf{i} +0\mathbf{j} + 0\mathbf{k} \big) - \big( a\hat{ \mathbf{a}}_{r} \big) \\ &= -a\hat{ \mathbf{a}}_{r} \\ |\mathbf{r} - \mathbf{r}^{'}| &= \sqrt{(-a)^{2}} \\ &= a \\ \end{align} }[/math]
Plugging these into the Electric Field integral gives:
[math]\displaystyle{ \begin{align} \mathbf{E} &= \int \frac{1}{4 \pi \epsilon_{0}} \frac{\frac{Q}{2 \pi} d\theta}{a^2} \frac{-a \hat{ \mathbf{a}}_{r}}{a} \\ &= - \int \frac{1}{8 {\pi}^{2} \epsilon_{0}} \frac{Q}{a^2} \hat{ \mathbf{a}}_{r} d\theta \\ &= - \frac{Q}{a^{2} 8 {\pi}^{2} \epsilon_{0}} \int \hat{ \mathbf{a}}_{r} d\theta \\ \end{align} }[/math]
  • [math]\displaystyle{ \theta }[/math] is the angle from the x-axis.
  • To integrate over the entire ring, we set the bounds of [math]\displaystyle{ \theta }[/math] as [math]\displaystyle{ [0, 2 \pi) }[/math].
  • Also, as of right now, the integral would not evaluate to 0. This is because [math]\displaystyle{ \hat{ \mathbf{a}}_{r} }[/math] has a hidden dependence on [math]\displaystyle{ \theta }[/math]:
[math]\displaystyle{ \hat{ \mathbf{a}}_{r} = \text{cos}( \theta) \mathbf{i} + \text{sin}( \theta) \mathbf{j} }[/math]
Plugging this information in gives:
[math]\displaystyle{ \begin{alignat}{3} \mathbf{E} &= - \frac{Q}{a^{2} 8 {\pi}^{2} \epsilon_{0}} \int_{0}^{2 \pi} \big( \text{cos}( \theta) \mathbf{i} + \text{sin}( \theta) \mathbf{j} \big) d\theta \\ \int_{0}^{2 \pi} \text{cos}( \theta) \mathbf{i} \ d\theta &= 0 \\ \int_{0}^{2 \pi} \text{sin}( \theta) \mathbf{j} \ d\theta &= 0 \\ \end{alignat} }[/math]
Therefore:
[math]\displaystyle{ \mathbf{E} = 0 }[/math] at the origin.

Connectedness

The real world applications of electric fields are endless. Here are some:

  • Electric Motors:
Electric motors convert Electrical Energy into Mechanical Energy through Electric Fields. Whenever electric motors are turned on, Electric Fields are generated. This is because in order to turn an electric motor, an Electric Field must first be generated, which then generates a Magnetic Field, thus making the motor spin. Electric motors are used in cars, elevators, fans, refrigerators, and many more applications.
  • Computers:
Computers use circuits, electric fans, and transistors to work. All of these use Electric Fields to push charge through a circuit, spin fans, and allow logic to be implemented in electronics.
  • Painting:
Electric Fields are also used in some paintings. The Electric Field generates charges on the surface of the material being painted on, and an opposite charge is generated on the paint. Paint that touches the material sticks, and excess paint falls off to go back into the system.
  • Cancer Treatment:
Recently, weak Electric Fields have been used to kill cancer cells. This treatment works best for brain and breast cancers, and it has no effect on normal cells. In lab and animal tests, this treatment killed cancer cells of every type tested; however, this is still a developing treatment.
  • Military and Defense:
Electric Fields are commonly used in various weapons platforms. Weapons used to rely primarily on explosives; however, electric weapons use stored electrical energy to attack targets. There are two general types: directed-energy weapons (DEWs) and electromagnetic (EM) weapons. DEWs include lasers, radio frequency weapons, and more. EM weapons include rail guns, coil guns, etc. For example, rail guns use EM force to launch high velocity projectiles at a target. They work by using very high electrical currents to induce magnetic fields that accelerate a projectile to extremely high speeds (up to Mach 6).

History

Electric Fields are created by Electric charges. The original discovery of the Electric charge is not explicitly known, but in 1675 the esteemed chemist Robert Boyle, known for Boyle's Law, discovered the attraction and repulsion of certain particles in a vacuum. Almost 100 years later in the 18th century, the American Benjamin Franklin first coined the phrases 'positive' and 'negative' (later developed into proton and electron) for these particles with attractive and repulsive properties. Finally, in the 19th century Michael Faraday utilized his Electrolysis process to discover the discrete nature of Electric charge.

See also

The ability to understand Electric Fields helps set the basis for the introduction to Electric Force (as we discussed [math]\displaystyle{ \mathbf{F} = q\mathbf{E} }[/math] ). The introduction of Electric Force will attach the specific charge of the particles with the Electric Field that they produce, resulting in the Electric Force. Electric Force will lay the ground work for understanding the force that particles have in different systems and environments, and eventually lead to the introduction of Magnetic Force. The understanding of Electric Fields is a doorway into many various fields, only some of which will be covered in Physics 2212. The fundamental understanding of Electric Fields will prove to be very important further along when Magnetic Fields are introduced, as they share many qualities. The understanding of Electric and Magnetic Fields will be used throughout the semester to learn about various Electromagnetic concepts, and ultimately to understanding and apply Maxwell's Equations. Please see related topics:

Further reading

External links

References