AP Physics 2 Flashcards: Electromagnetic Induction And Faradays Law

Study Electromagnetic Induction And Faradays Law in AP Physics 2 with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.

AP Physics 2

Electromagnetic Induction And Faradays Law

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Define the term 'induced current'.

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ANSWER

Current generated in a conductor due to a changing magnetic field. Results from Faraday's Law when flux changes through a conductor.

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Flashcard 1: Define the term 'induced current'.

Answer: Current generated in a conductor due to a changing magnetic field. Results from Faraday's Law when flux changes through a conductor.

Flashcard 2: Calculate magnetic flux for B=2TB = 2 \text{T} and A=3m2A = 3 \text{m}^2.

Answer: ΦB=6Wb\text{Φ}_B = 6 \text{Wb}. Use ΦB=BA\Phi_B = BA: 2×3=6Wb2 \times 3 = 6 \text{Wb}.

Flashcard 3: What is meant by 'induced emf'?

Answer: A voltage generated by changing magnetic fields. The electrical potential difference created by changing magnetic flux.

Flashcard 4: What is the symbol for magnetic flux?

Answer: ΦB\Phi_B. Greek letter phi with subscript B for magnetic field.

Flashcard 5: How does the number of turns in a coil affect emf?

Answer: More turns increase the induced emf. Each turn contributes to the total induced emf.

Flashcard 6: Explain the role of a solenoid in electromagnetic induction.

Answer: A solenoid can enhance the magnetic field and hence induce emf. Multiple turns multiply the induced emf effect.

Flashcard 7: What is Lenz's Law?

Answer: The direction of the induced current opposes the change in magnetic flux. Explains the negative sign in Faraday's Law equation.

Flashcard 8: Which factor affects the magnitude of induced emf?

Answer: Rate of change of magnetic flux. Faster flux changes produce larger induced emf magnitudes.

Flashcard 9: State the formula for Faraday's Law.

Answer: emf=dΦBdt\text{emf} = -\frac{d\Phi_B}{dt}. The negative sign represents Lenz's Law - opposition to flux change.

Flashcard 10: Which factor affects the magnitude of induced emf?

Answer: Rate of change of magnetic flux. Faster flux changes produce larger induced emf magnitudes.

Flashcard 11: What is the role of a galvanometer in induction experiments?

Answer: To measure the induced current. Detects and measures small currents in induction experiments.

Flashcard 12: Find induced emf for ΦB\text{Φ}_B change from 10 Wb to 5 Wb in 2 s.

Answer: emf=2.5V\text{emf} = -2.5 \text{V}. Use emf=ΔΦBΔt=5102=2.5V\text{emf} = -\frac{\Delta\Phi_B}{\Delta t} = -\frac{5-10}{2} = -2.5 \text{V}.

Flashcard 13: What is the role of a galvanometer in induction experiments?

Answer: To measure the induced current. Detects and measures small currents in induction experiments.

Flashcard 14: What does the term 'emf' stand for?

Answer: Electromotive force. The potential difference induced by changing magnetic flux.

Flashcard 15: How does a closed loop influence induced emf?

Answer: A closed loop allows an induced current to flow. Provides a complete path for induced current circulation.

Flashcard 16: Define the term 'flux linkage'.

Answer: Product of the magnetic flux and the number of turns in a coil. Total magnetic flux linking all turns of a coil.

Flashcard 17: What happens if magnetic field strength is constant?

Answer: No change in magnetic flux and no induced emf. Constant field means dΦBdt=0\frac{d\Phi_B}{dt} = 0, so no emf.

Flashcard 18: What is the effect of increasing magnetic field strength on flux?

Answer: Magnetic flux increases. More field lines pass through the same area.

Flashcard 19: What does Faraday's Law of Induction state?

Answer: The induced emf is equal to the negative rate of change of magnetic flux. This is the fundamental principle governing electromagnetic induction.

Flashcard 20: Explain the role of a solenoid in electromagnetic induction.

Answer: A solenoid can enhance the magnetic field and hence induce emf. Multiple turns multiply the induced emf effect.

Flashcard 21: Calculate magnetic flux for B=2TB = 2 \text{T} and A=3m2A = 3 \text{m}^2.

Answer: ΦB=6Wb\text{Φ}_B = 6 \text{Wb}. Use ΦB=BA\Phi_B = BA: 2×3=6Wb2 \times 3 = 6 \text{Wb}.

Flashcard 22: Define magnetic flux.

Answer: Magnetic flux is the product of the magnetic field and the area through which it passes. Quantifies how much magnetic field passes through a surface.

Flashcard 23: What is meant by 'induced emf'?

Answer: A voltage generated by changing magnetic fields. The electrical potential difference created by changing magnetic flux.

Flashcard 24: Find induced emf for ΦB\text{Φ}_B change from 10 Wb to 5 Wb in 2 s.

Answer: emf=2.5V\text{emf} = -2.5 \text{V}. Use emf=ΔΦBΔt=5102=2.5V\text{emf} = -\frac{\Delta\Phi_B}{\Delta t} = -\frac{5-10}{2} = -2.5 \text{V}.

Flashcard 25: What does the negative sign in Faraday's Law signify?

Answer: Opposition to change in magnetic flux (Lenz's Law). Represents Lenz's Law - induced effects oppose the change.

Flashcard 26: Identify the unit of electromotive force (emf).

Answer: Volt (V). Same unit as voltage since emf represents induced potential difference.

Flashcard 27: What happens to emf if the magnetic field is uniform?

Answer: No change in flux, no induced emf. Uniform field means no spatial flux variation.

Flashcard 28: What does the negative sign in Faraday's Law signify?

Answer: Opposition to change in magnetic flux (Lenz's Law). Represents Lenz's Law - induced effects oppose the change.

Flashcard 29: What factor does not affect the magnitude of induced emf?

Answer: Resistance of the coil. Resistance affects current, not the induced emf magnitude.

Flashcard 30: State the relationship between magnetic flux and area.

Answer: Magnetic flux is directly proportional to the area. Larger area allows more field lines to pass through.

Flashcard 31: What unit is used to measure magnetic flux?

Answer: Weber (Wb). Named after Wilhelm Weber, equivalent to Tm2\text{T}\cdot\text{m}^2.

Flashcard 32: How does moving a magnet in a coil induce emf?

Answer: It changes the magnetic flux through the coil. Motion changes the magnetic flux through the coil.

Flashcard 33: What happens to emf if the magnetic field is uniform?

Answer: No change in flux, no induced emf. Uniform field means no spatial flux variation.

Flashcard 34: What is the result of a constant magnetic flux through a coil?

Answer: No induced emf. No flux change means dΦBdt=0\frac{d\Phi_B}{dt} = 0, so emf = 0.

Flashcard 35: What is the result of a constant magnetic flux through a coil?

Answer: No induced emf. No flux change means dΦBdt=0\frac{d\Phi_B}{dt} = 0, so emf = 0.

Flashcard 36: Calculate induced emf for dΦBdt=3Wb/s\frac{d\text{Φ}_B}{dt} = -3 \text{Wb/s}.

Answer: emf=3V\text{emf} = 3 \text{V}. Apply Faraday's Law: emf=(3)=3V\text{emf} = -(-3) = 3 \text{V}.

Flashcard 37: What is the impact of increasing coil area on emf?

Answer: Increases magnetic flux and induces greater emf. Larger area captures more magnetic flux for induction.

Flashcard 38: How does Lenz's Law relate to the conservation of energy?

Answer: Induced emf opposes the change to conserve energy. Opposition prevents creation of energy from nothing.

Flashcard 39: Calculate magnetic flux for B=1TB = 1 \text{T}, A=4m2A = 4 \text{m}^2.

Answer: ΦB=4Wb\text{Φ}_B = 4 \text{Wb}. Use ΦB=BA\Phi_B = BA: 1×4=4Wb1 \times 4 = 4 \text{Wb}.

Flashcard 40: How does the number of turns in a coil affect emf?

Answer: More turns increase the induced emf. Each turn contributes to the total induced emf.

Flashcard 41: What is the relationship between emf and coil orientation?

Answer: Emf is maximized when the coil is perpendicular to the magnetic field. Maximum flux change occurs when perpendicular to field lines.

Flashcard 42: Identify one application of electromagnetic induction.

Answer: Electric generators. Converts mechanical energy to electrical energy using induction.

Flashcard 43: What is the impact of increasing coil area on emf?

Answer: Increases magnetic flux and induces greater emf. Larger area captures more magnetic flux for induction.

Flashcard 44: Define the term 'induced current'.

Answer: Current generated in a conductor due to a changing magnetic field. Results from Faraday's Law when flux changes through a conductor.

Flashcard 45: Which physical quantity does a change in magnetic flux induce?

Answer: Electromotive force (emf). A changing flux creates a potential difference across the conductor.

Flashcard 46: State the relationship between magnetic flux and area.

Answer: Magnetic flux is directly proportional to the area. Larger area allows more field lines to pass through.

Flashcard 47: State the formula for Faraday's Law.

Answer: emf=dΦBdt\text{emf} = -\frac{d\text{Φ}_B}{dt}. The negative sign represents Lenz's Law - opposition to flux change.

Flashcard 48: What unit is used to measure magnetic flux?

Answer: Weber (Wb). Named after Wilhelm Weber, equivalent to Tm2\text{T}\cdot\text{m}^2.

Flashcard 49: What factor does not affect the magnitude of induced emf?

Answer: Resistance of the coil. Resistance affects current, not the induced emf magnitude.

Flashcard 50: Find the induced emf if dΦBdt=5Wb/s\frac{d\text{Φ}_B}{dt} = 5 \text{Wb/s}.

Answer: emf=5V\text{emf} = -5 \text{V}. Apply Faraday's Law: emf=dΦBdt=5V\text{emf} = -\frac{d\Phi_B}{dt} = -5 \text{V}.

Flashcard 51: What happens if magnetic field strength is constant?

Answer: No change in magnetic flux and no induced emf. Constant field means dΦBdt=0\frac{d\Phi_B}{dt} = 0, so no emf.

Flashcard 52: Define the term 'flux linkage'.

Answer: Product of the magnetic flux and the number of turns in a coil. Total magnetic flux linking all turns of a coil.

Flashcard 53: What does Faraday's Law of Induction state?

Answer: The induced emf is equal to the negative rate of change of magnetic flux. This is the fundamental principle governing electromagnetic induction.

Flashcard 54: Identify the unit of electromotive force (emf).

Answer: Volt (V). Same unit as voltage since emf represents induced potential difference.

Flashcard 55: Explain mutual induction.

Answer: Inducing emf in one coil due to change in current in another. Current change in one coil induces emf in nearby coil.

Flashcard 56: What is the main principle behind transformers?

Answer: Electromagnetic induction. Uses changing magnetic flux to transfer energy between coils.

Flashcard 57: Define magnetic flux.

Answer: Magnetic flux is the product of the magnetic field and the area through which it passes. Quantifies how much magnetic field passes through a surface.

Flashcard 58: What is the effect of increasing magnetic field strength on flux?

Answer: Magnetic flux increases. More field lines pass through the same area.

Flashcard 59: What is the relationship between emf and coil orientation?

Answer: Emf is maximized when the coil is perpendicular to the magnetic field. Maximum flux change occurs when perpendicular to field lines.

Flashcard 60: How does moving a magnet in a coil induce emf?

Answer: It changes the magnetic flux through the coil. Motion changes the magnetic flux through the coil.

Flashcard 61: Identify the unit for magnetic field strength.

Answer: Tesla (T). Measures magnetic field intensity or flux density.

Flashcard 62: Explain mutual induction.

Answer: Inducing emf in one coil due to change in current in another. Current change in one coil induces emf in nearby coil.

Flashcard 63: Calculate magnetic flux for B=1TB = 1 \text{T}, A=4m2A = 4 \text{m}^2.

Answer: ΦB=4Wb\text{Φ}_B = 4 \text{Wb}. Use ΦB=BA\Phi_B = BA: 1×4=4Wb1 \times 4 = 4 \text{Wb}.

Flashcard 64: State one way to increase induced emf.

Answer: Increase the rate of change of magnetic flux. Faster flux changes produce larger emf by Faraday's Law.

Flashcard 65: Identify one application of electromagnetic induction.

Answer: Electric generators. Converts mechanical energy to electrical energy using induction.

Flashcard 66: What does the term 'emf' stand for?

Answer: Electromotive force. The potential difference induced by changing magnetic flux.

Flashcard 67: State one way to increase induced emf.

Answer: Increase the rate of change of magnetic flux. Faster flux changes produce larger emf by Faraday's Law.

Flashcard 68: Which physical quantity does a change in magnetic flux induce?

Answer: Electromotive force (emf). A changing flux creates a potential difference across the conductor.

Flashcard 69: How does Lenz's Law relate to the conservation of energy?

Answer: Induced emf opposes the change to conserve energy. Opposition prevents creation of energy from nothing.

Flashcard 70: How does a closed loop influence induced emf?

Answer: A closed loop allows an induced current to flow. Provides a complete path for induced current circulation.

Flashcard 71: What is the main principle behind transformers?

Answer: Electromagnetic induction. Uses changing magnetic flux to transfer energy between coils.

Flashcard 72: What is Lenz's Law?

Answer: The direction of the induced current opposes the change in magnetic flux. Explains the negative sign in Faraday's Law equation.

Flashcard 73: Identify the unit for magnetic field strength.

Answer: Tesla (T). Measures magnetic field intensity or flux density.

Flashcard 74: Find the induced emf if dΦBdt=5Wb/s\frac{d\text{Φ}_B}{dt} = 5 \text{Wb/s}.

Answer: emf=5V\text{emf} = -5 \text{V}. Apply Faraday's Law: emf=dΦBdt=5V\text{emf} = -\frac{d\Phi_B}{dt} = -5 \text{V}.

Flashcard 75: Calculate induced emf for dΦBdt=3Wb/s\frac{d\text{Φ}_B}{dt} = -3 \text{Wb/s}.

Answer: emf=3V\text{emf} = 3 \text{V}. Apply Faraday's Law: emf=(3)=3V\text{emf} = -(-3) = 3 \text{V}.