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AP Physics 1 · Unit 8

Electric Charge and Force: every key term you need (+ practice quiz)

35 flashcard terms for AP Physics 1 Unit 8, written to match the course framework. Read them here, drill them as flashcards, or take the 30-question quiz. Free, no account needed.

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Electric Charge
Fundamental property (positive/negative); measured in coulombs (C); conserved and quantized (multiples of e).
Coulomb's Law
F = kq₁q₂/r²; electric force between charges proportional to charges, inversely proportional to distance squared.
Electric Field
E = F/q; force per unit charge; vector pointing from positive to negative; measured in N/C.
Potential Difference
V = W/q; energy per unit charge; measured in volts (V); same as voltage.
Capacitor
Device storing charge; C = Q/V; capacitance measured in farads (F); parallel plates: C = ε₀A/d.
Current
I = Q/t; rate of charge flow; measured in amperes (A); conventional current flows from + to -.
Resistance
R = V/I; opposition to current flow; measured in ohms (Ω); R = ρL/A (resistivity × length / area).
Ohm's Law
V = IR; voltage equals current times resistance; linear relationship for ohmic conductors.
Power
P = IV = I²R = V²/R; electrical power dissipated as heat (watts).
EMF
Electromotive force; energy per unit charge; source voltage (often ε or E); includes internal resistance.
Series Circuit
Components in single loop; current same everywhere; voltages add; total R = R₁ + R₂ + ...
Parallel Circuit
Components on separate branches; voltage same everywhere; currents add; 1/R_total = 1/R₁ + 1/R₂ + ...
Kirchhoff's Laws
Junction rule: current in = current out; loop rule: sum of voltages in loop = 0.
Magnetic Field
B field; created by moving charges; measured in tesla (T); detected using compass or magnetic force.
Magnetic Force
F = qvB sin θ; force on moving charge in magnetic field; perpendicular to both v and B.
Lorentz Force
F = q(E + v × B); total electromagnetic force on charge.
Ampere's Law
Current creates circular magnetic field; B increases with current, decreases with distance.
Faraday's Law
Changing magnetic flux induces EMF; ε = -N(ΔΦ/Δt); basis for electric generators.
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Lenz's Law
Induced current opposes change causing it; determines direction of induced current/field.
Transformer
Device changing AC voltage; V₁/V₂ = N₁/N₂; uses mutual induction (changing field in primary coil).
Charge Conservation and Quantization
Net charge of an isolated system is constant, and charge comes in multiples of e = 1.6 × 10⁻¹⁹ C. Rubbing transfers electrons; it never creates charge.
Charging by Induction
A charged rod near a grounded conductor drives like charges to ground; removing the ground first, then the rod, leaves the conductor with charge opposite to the rod's. No contact needed.
Coulomb's Law Scaling
F ∝ q₁q₂/r². Doubling both charges quadruples the force; doubling the separation cuts it to one-fourth. Both charges feel equal-magnitude forces (third law), regardless of size.
Superposition of Electric Forces
The net force on a charge is the vector sum of forces from every other charge. Along a line, find where the pulls cancel; in 2D, resolve into components.
Resistivity and Geometry
R = ρL/A. Doubling the length doubles resistance; doubling the diameter quarters it (area ∝ d²). Stretching a wire to twice its length quadruples R since A halves too.
Ohmic vs Non-Ohmic
An ohmic resistor has a straight-line I-V graph through the origin. A light-bulb filament's resistance rises with temperature, so its I-V curve bends over.
Real Battery with Internal Resistance
Terminal voltage V = ε − Ir. Larger current draw means larger internal drop; a shorted battery delivers ε/r. The battery's power dissipates partly inside itself.
Brightness Reasoning
Bulb brightness tracks power P = I²R = V²/R. In series, equal current means the higher-R bulb is brighter; in parallel, equal voltage means the lower-R bulb is brighter.
Adding a Parallel Branch
Adding a resistor in parallel lowers total resistance, increases battery current, and (with internal resistance) slightly reduces terminal voltage. Existing parallel bulbs stay nearly the same brightness.
Adding a Series Resistor
Adding resistance in series raises total resistance and reduces the current everywhere, dimming every bulb in the loop.
Kirchhoff Junction Rule Logic
Current into a junction equals current out because charge does not accumulate in steady state. It is a statement of charge conservation, not energy conservation.
Kirchhoff Loop Rule Logic
The sum of potential changes around any closed loop is zero because potential is single-valued; this is energy conservation per unit charge.
Ammeter and Voltmeter Placement
An ammeter goes in series and has near-zero resistance; a voltmeter goes in parallel and has very high resistance. Swapping them shorts the circuit or reads nothing useful.
Energy Delivered by a Circuit
Energy = Pt = VIt. A kilowatt-hour is 3.6 × 10⁶ J. Compare bulbs by energy per second, not by voltage rating alone.
Equivalent Resistance Bounds
Series equivalent is larger than any single resistor; parallel equivalent is smaller than the smallest. Use this to sanity-check any network calculation.
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