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Chapter 21: Electric Fields

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1 Chapter 21: Electric Fields
Honors Physics Bloom High School

2 21.1 Creating and Measuring Electric Fields
Electric Field- comparison to a gravitational field Exists around any charged object (objects with mass) Similar- acts at a distance Dissimilar- can be positive OR negative Test Charge- used to determine the strength of a field and/or the direction of the field Test charge is always positive Field Strength- equal to the force on the (+) test charge divided by the strength of the test charge E=F/q (N/C)

3 Relative Field Strength
Value (N/C) Near a charged, hard-rubber rod 1x103 In a TV picture tube 1x105 Needed to create a spark in air 3x106 At an electron’s orbit in H 5x1011

4 Practice Problem 1: Solving for Field Strength
1. Known/Unknown q=5.0x10-6C, F=2.0x10-4N, E=? 2. Formula E=F/q 3. Solve E=(2.0x10-4N)/(5.0x10-6C) 4.0x101N/C or 40N/C

5 Practice Problem 4: Gravity vs. Electricity
1. Known/Unknown Fg=2.1x10-3N, E=6.5x104N/C (down), q=? 2. Formulae E=F/q (q=F/E) 3. Solve q=(2.1x10-3N)/(6.5x104N/C)=3.2x10-8C Should the charge be (+) or (-)?

6 Example Problem 2 1. Known/Unknown 2. Formulae 3. Solve
d=0.3m, q=-4.0x10-6C, E=? 2. Formulae E=F/q1, F=kq1q2/d2 Solve both for q1 and set equal to each other Solve new equation for E E=kq2/d2 3. Solve E=(9.0x109Nm2/C2)(-4.0x10-6C)/(0.3m)2=4.0x105N/C

7 Picturing the Electric Field
Electric field is a vector quantity Magnitude and direction matter Arrows extend from positive charges and toward negative charges Lines closer together represent a stronger field Physics Physlets I.23.2, I.23.3, P.23.2

8 Section 21.1 Quiz An electric charge, q, produces an electric field. A test charge, q, is used to measure the strength of the field generated by q. Why must q be relatively small? Define each variable in the formula E=F/q. Describe how electric field lines are drawn around a freestanding positive charge and a freestanding negative charge. A charge of +1.5x108C experiences a force of 0.025N to the left in an electric field. What are the magnitude and direction of the field? A charge of +3.4x106C is in an electric field with a strength of 5.1x105N/C. What is the force it experiences?

9 21.2 Applications of Electric Fields
Just as g=F/m describes the field strength per mass of gravity, E=F/q describes the field strength per charge Changing the distance of either is work! (W=Fd) Performing work on an object gives it DPE Electric potential energy- DV=W/q (V=J/C) See Figure 21-5 (page 569) Physics Physlets I.25.2 Equipotential- when DV is zero Moving a (+) charge around a (-) charge, keeping d constant

10 Grounding Charges will move until the electric PE is zero
No DV between the conductors Grounding- makes the electric PE between an object and the Earth 0V Can prevent sparks resulting form a neutral object making contact with a charged object

11 DV in a Uniform Field By moving a charge between parallel plates, only the distance change in the field matters Because W=Fd and DV=Fd/q DV=Ed The potential difference is equal to the field strength multiplied by the distance the charge is moved

12 Practice Problem 16 1. Known/Unknown 2. Formula 3. Solve
E=6000N/C, d=0.05m, DV=? 2. Formula DV=Ed 3. Solve DV=(6000N/C)(0.05m)=300V

13 Milikan’s Oil Drop Experiment

14 Oil Drop Rationale If a known electric field is applied to the plates (F=E/q) and the mass is found of each droplet (F=mg), the charge can be found for a single droplet! mg=Eq  q=mg/E The charges were found to always be multiples of 1.60x10-19C, which we now know is the charge of a e-

15 How many electrons? 1. Known/Unknown 2. Formulae 3. Solve
Fg=2.4x10-14N, DV=450V, d=1.2cm, q=?, ne-=? 2. Formulae Fe=Fq (qDV/d=Fg, solve for q) q=Fg/DV 3. Solve q=(2.4x10-14N)/(450V)=6.4x10-19C q/1.60x10-19C=4e-

16 Sharing Charges All systems desire equilibrium
Charges we distribute themselves evenly across any available surface When 2 spheres touch, they act as a single object Charge to area ratio is what counts Charge density the greatest near points

17 The Van de Graff Generator
Van de Graff Generator- high voltages are built up on a surface Charges are distributed evenly on surface Very large charge is possible (MV range!) Ours builds to 750,000V MythBusters: Van de Graff Generator

18 Storing Charges: The Capacitor
Capacitor- stores electrical charge Used in all circuitry Storage based on voltage, size of plates and gap between plates Capacitance (C)- ratio of charge stored to electric potential difference C=q/DV Measured in Farads (F=C/V) Typically to 10-6 F Physics Physlets I.26.1

19 Practice Problem 31 1. Known/Unknown 2. Formula 3. Solve
C1=3.3mF, C2=6.8mF, DV=24V, q1=?, q2=? 2. Formula C=q/DV  q=DVC 3. Solve q1=(24V)(3.3x10-6F)=7.92x10-5C q2=(24V)(6.8x10-6F)=1.63x10-4C

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