AP Physics C · Unit 1
Calculus in Physics: every key term you need
20 flashcard terms for AP Physics C Unit 1, written to match the course framework. Study them here, then drill them as interactive flashcards — free, no account needed.
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Physics C Unit 1 Advanced mechanics and electricity/magnetism using calculus; rigorous mathematical treatment.
Calculus in Physics Derivatives: rate of change; integrals: accumulation; essential for precise physical descriptions.
Force and Acceleration F = ma; F_net = m(dv/dt); applies to any force; foundation of mechanics; vector equation.
Work and Kinetic Energy W = ∫F·ds; ΔKE = W (work-energy theorem); power P = dW/dt = F·v; energy transfer rate.
Potential Energy Conservative forces have PE; U = -∫F·ds; total mechanical energy E = KE + PE conserved if only conservative forces.
Center of Mass x_cm = Σm_i x_i/Σm_i; system motion described by CM; internal forces don't affect CM motion.
Rotational Kinematics Angular velocity ω = dθ/dt; angular acceleration α = dω/dt; θ = θ₀ + ω₀t + (1/2)αt² (rotational equations).
Torque τ = r×F; produces angular acceleration; τ = Iα; net torque = moment of inertia × angular acceleration.
Moment of Inertia I = Σm_i r_i²; rotational analog of mass; depends on axis and mass distribution; greater distance = greater I.
Angular Momentum L = Iω; conserved if net torque = 0; L = r×p for point particle; fundamental conserved quantity.
Oscillations x = A cos(ωt+φ); SHM for springs and pendulums; ω = √(k/m) (spring), √(g/L) (pendulum); energy oscillates KE↔PE.
Waves Travel through medium; v = fλ; energy propagation; superposition: waves add; interference, diffraction.
Electric Fields (Calculus) E = -dV/dr; Gauss's law: ∮E·dA = Q_enc/ε₀; differential form: ∇·E = ρ/ε₀.
Magnetic Fields (Calculus) Biot-Savart law: dB = (μ₀I/4π) dl×r/r³; Ampere's law: ∮B·dl = μ₀I_enc; differential form: ∇×B = μ₀J.
Electromagnetic Waves Maxwell equations predict waves; c = 1/√(μ₀ε₀); E and B perpendicular; intensity ∝ E₀²; radiates from accelerating charges.
Circuits (Advanced) RC circuits: τ = RC time constant; RL circuits: τ = L/R; LC circuits: oscillate at ω = 1/√(LC); energy exchanges.
Relativity Preview Speed of light constant; relativity of simultaneity; time dilation; mass-energy equivalence E = mc².
Quantum Concepts Planck constant h; photon energy E = hf; wave-particle duality; uncertainty principle Δx·Δp ≥ ℏ/2.
Problem Solving (Advanced) Complex multi-part problems; combine concepts; derive relationships; communicate solutions clearly.
Approximations and Limits Know when to use approximations; small angle: sin θ ≈ θ; first-order expansions; understand validity.
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