Physics Flashcards: Investigate Current And Magnetic Fields

Study Investigate Current And Magnetic Fields in Physics with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.

Physics

Investigate Current And Magnetic Fields

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QUESTION
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Find the force on a 0.50 m0.50\ \text{m} wire carrying I=4.0 AI=4.0\ \text{A} in B=0.30 TB=0.30\ \text{T} at 9090^\circ.

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ANSWER

F=0.60 NF=0.60\ \text{N}. Using F=BILsin90°=0.30×4.0×0.50×1F=BIL\sin 90°=0.30×4.0×0.50×1.

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Flashcard 1: Find the force on a 0.50 m0.50\ \text{m} wire carrying I=4.0 AI=4.0\ \text{A} in B=0.30 TB=0.30\ \text{T} at 9090^\circ.

Answer: F=0.60 NF=0.60\ \text{N}. Using F=BILsin90°=0.30×4.0×0.50×1F=BIL\sin 90°=0.30×4.0×0.50×1.

Flashcard 2: What happens to the magnetic field around a wire if the current doubles?

Answer: The field magnitude doubles. Field is directly proportional to current: BIB \propto I.

Flashcard 3: What is the direction of the force between two parallel wires carrying currents in the same direction?

Answer: They attract each other. Same-direction currents create attractive magnetic forces.

Flashcard 4: What is the direction of the magnetic field inside a current-carrying solenoid?

Answer: Nearly uniform, along the solenoid axis. Field lines are parallel inside, negligible outside ideal solenoid.

Flashcard 5: Identify the direction of B\vec{B} at a point above a wire with current into the page.

Answer: B\vec{B} points right (clockwise around the wire). Right-hand rule: thumb in, fingers curl clockwise.

Flashcard 6: What is the direction rule for the force on a current in a magnetic field (motor effect)?

Answer: Fleming's left-hand rule. First finger: field, second: current, thumb: force direction.

Flashcard 7: What is the SI unit of magnetic field strength BB?

Answer: tesla (T). Named after Nikola Tesla; 1 T = 1 N/(A·m).

Flashcard 8: What is the definition of a magnetic field line direction at a point?

Answer: Direction of the force on a north pole (or compass north end) at that point. Field lines show path a free north pole would follow.

Flashcard 9: What is the SI unit of magnetic flux density BB?

Answer: tesla (T). Named after Nikola Tesla; 1 T = 1 Wb/m² = 1 N/(A·m).

Flashcard 10: What rule gives the magnetic field direction around a straight wire from the current direction?

Answer: Right-hand grip rule. Thumb along current, fingers curl around wire showing field lines.

Flashcard 11: What is the magnetic field direction at the center of a circular current loop?

Answer: Along the loop axis, given by the right-hand rule. Fingers follow current, thumb points through loop center.

Flashcard 12: Find the force on a charge q=2.0×106 Cq=2.0\times10^{-6}\ \text{C} moving at v=3.0×105 m/sv=3.0\times10^{5}\ \text{m/s} in B=0.20 TB=0.20\ \text{T} at 9090^\circ.

Answer: F=0.12 NF=0.12\ \text{N}. Using F=qvBsin90°=2.0×106×3.0×105×0.20×1F=qvB\sin 90°=2.0×10^{-6}×3.0×10^5×0.20×1.

Flashcard 13: State the formula for the magnetic field inside a long solenoid with nn turns per meter.

Answer: B=μ0nIB=\mu_0 n I. Uniform field inside; nn is turns per unit length.

Flashcard 14: What is the direction of magnetic force on a positive charge moving in a magnetic field?

Answer: Perpendicular to both v\vec{v} and B\vec{B}. Use right-hand rule: fingers v\vec{v} to B\vec{B}, thumb shows force.

Flashcard 15: What is the formula for BB at the center of a single circular loop of radius RR?

Answer: B=μ0I2RB=\frac{\mu_0 I}{2R}. Field at center inversely proportional to loop radius.

Flashcard 16: State the formula for the magnetic field at the center of a circular loop of radius RR.

Answer: B=μ0I2RB=\frac{\mu_0 I}{2R}. Field at loop center is half that of straight wire at same distance.

Flashcard 17: What is the formula for the force on a straight wire of length LL in a uniform field BB?

Answer: F=BILsinθF=BIL\sin\theta. θ\theta is angle between current and field directions.

Flashcard 18: What is the formula for the force on a moving charge qq with speed vv in a magnetic field BB?

Answer: F=qvBsinθF=qvB\sin\theta. Lorentz force law; θ\theta is angle between velocity and field.

Flashcard 19: Find the magnetic field at r=0.20 mr=0.20\ \text{m} from a long wire carrying I=10 AI=10\ \text{A}.

Answer: B=1.0×105 TB=1.0\times10^{-5}\ \text{T}. Using B=μ0I2πr=4π×107×102π×0.20B=\frac{\mu_0 I}{2\pi r}=\frac{4\pi×10^{-7}×10}{2\pi×0.20}.

Flashcard 20: State the formula for magnetic field magnitude at distance rr from a long straight wire.

Answer: B=μ0I2πrB=\frac{\mu_0 I}{2\pi r}. Field decreases with distance rr from wire carrying current II.

Flashcard 21: What is the direction of the magnetic field inside a solenoid relative to its coils?

Answer: Along the solenoid axis, from its south end to its north end inside. Field lines run straight through the solenoid's interior.

Flashcard 22: Identify the condition for maximum force on a current-carrying wire in a magnetic field.

Answer: When θ=90\theta=90^\circ (wire perpendicular to BB). sin90°=1\sin 90° = 1 gives maximum force magnitude.

Flashcard 23: Find FF when B=0.50 TB=0.50\ \text{T}, I=2.0 AI=2.0\ \text{A}, L=0.30 mL=0.30\ \text{m}, θ=90\theta=90^\circ.

Answer: F=0.30 NF=0.30\ \text{N}. F=0.50×2.0×0.30×sin(90°)=0.30F = 0.50 \times 2.0 \times 0.30 \times \sin(90°) = 0.30 N.

Flashcard 24: What is the direction of the force between two parallel wires carrying currents in opposite directions?

Answer: They repel each other. Opposite currents create repulsive magnetic forces.

Flashcard 25: Identify how BB inside a long solenoid changes if the turn density nn doubles (same II).

Answer: BB doubles. BB is directly proportional to turn density nn.

Flashcard 26: Identify the force on a wire if it is parallel to B\vec{B} (so θ=0\theta=0^\circ).

Answer: F=0 NF=0\ \text{N}. sin(0°)=0\sin(0°) = 0, so no force when wire parallel to field.

Flashcard 27: What happens to BB around a long straight wire if the distance rr from the wire doubles?

Answer: It halves, since B1rB\propto\frac{1}{r}. Field follows inverse relationship with radial distance.

Flashcard 28: What is the direction of the magnetic field around a straight current-carrying wire?

Answer: Concentric circles around the wire. Thumb points along current, fingers curl in field direction.

Flashcard 29: Identify how BB changes if the distance from a long straight wire doubles (same II).

Answer: BB halves. BB is inversely proportional to distance rr.

Flashcard 30: Identify the direction of B\vec{B} at a point to the right of a wire with current out of the page.

Answer: B\vec{B} points upward (counterclockwise around the wire). Right-hand rule: thumb out, fingers curl counterclockwise.

Flashcard 31: What is the formula for magnetic field magnitude at distance rr from a long straight wire?

Answer: B=μ0I2πrB=\frac{\mu_0 I}{2\pi r}. Field decreases with distance from wire, proportional to current.

Flashcard 32: What is the relationship between field-line spacing and magnetic field strength?

Answer: Closer field lines indicate a stronger BB. Field line density represents field magnitude visually.

Flashcard 33: Identify how BB changes if the current in a long straight wire doubles (same rr).

Answer: BB doubles. BB is directly proportional to current II.

Flashcard 34: What is the direction of the force on a current in a magnetic field (motor effect rule)?

Answer: Fleming left-hand rule: index B\vec{B}, middle II, thumb F\vec{F}. Three fingers perpendicular: force, field, and current directions.

Flashcard 35: What is the value of the permeability of free space μ0\mu_0?

Answer: μ0=4π×107 T\cdotpm/A\mu_0=4\pi\times10^{-7}\ \text{T·m/A}. Fundamental constant relating magnetic field to current in vacuum.

Flashcard 36: What is the direction rule for the magnetic field around a straight current-carrying wire?

Answer: Right-hand grip rule: thumb II, curled fingers give B\vec{B} direction. Fingers curl in the direction of circular field lines around wire.

Flashcard 37: State the formula for the magnetic force on a straight wire of length LL in field BB.

Answer: F=BILsinθF=BIL\sin\theta. θ\theta is angle between wire and field; max force at 90°90°.

Flashcard 38: What is the value of the permeability of free space μ0\mu_0 (in SI units)?

Answer: μ0=4π×107 T\cdotpm/A\mu_0=4\pi\times10^{-7}\ \text{T·m/A}. Fundamental constant relating magnetic fields to currents.

Flashcard 39: What is the formula for the field inside a long solenoid with nn turns per meter?

Answer: B=μ0nIB=\mu_0 n I. Field strength depends on turn density and current, not length.