What this quiz covers
This quiz focuses on Lenzs Law, giving you a quick way to practice the rules, question types, and explanations that matter most for Physics 2.
A horizontal conducting ring of radius R lies in the xy-plane. A bar magnet is oriented with its north pole pointing downward along the −z-axis and is positioned above the ring, moving downward toward it at constant velocity. An observer views the ring from above (from the +z direction).
As the north pole of the magnet approaches the ring from above, what is the direction of the induced current as seen by the observer above, and what happens to that direction immediately after the magnet passes through the plane of the ring and continues downward?
Physics 2 Quiz
Practice Lenzs Law in Physics 2 with focused quiz questions that help you check what you know, review explanations, and build confidence with test-style prompts.
This quiz focuses on Lenzs Law, giving you a quick way to practice the rules, question types, and explanations that matter most for Physics 2.
Try each quiz question before looking at the correct answer. Use the explanations to review missed ideas, then come back to similar questions until the pattern feels familiar.
A horizontal conducting ring of radius R lies in the xy-plane. A bar magnet is oriented with its north pole pointing downward along the −z-axis and is positioned above the ring, moving downward toward it at constant velocity. An observer views the ring from above (from the +z direction).
As the north pole of the magnet approaches the ring from above, what is the direction of the induced current as seen by the observer above, and what happens to that direction immediately after the magnet passes through the plane of the ring and continues downward?
A rectangular conducting loop of width w and height h is partially inserted into a region of uniform magnetic field B directed out of the page. The left side of the loop is outside the field; the right side is inside the field region. The loop is being pulled to the left (further out of the field) at constant velocity v.
As the loop is pulled to the left, which of the following correctly describes the direction of the induced current in the loop and the direction of the magnetic force on the right side of the loop (the side still inside the field)?
Two concentric, coplanar circular loops share the same center. The inner loop (radius r) carries a current I(t)=I0e−αt flowing counterclockwise (as viewed from above). The outer loop (radius R>r) is a complete conducting loop with resistance R. Assume r≪R so that the field of the inner loop is approximately uniform over the area of the inner loop and negligible outside it.
In which direction does current flow in the outer loop, and what is the physical reason for this direction?
A conducting rod of length L slides along two parallel horizontal conducting rails separated by distance L. The rails run in the x-direction and are separated along the y-axis; the bottom rail is at y=0 and the top rail is at y=L. The rails are connected at x=0 by a resistor R. The entire apparatus lies in the horizontal plane. A non-uniform magnetic field points vertically upward (+z) with magnitude B(x)=B0x, where B0 is a positive constant. The rod (oriented along y) moves to the right (+x direction) at constant velocity v.
What is the direction of the induced current through the resistor, and which physical effect is primarily responsible for this direction?
Two coils, P (primary) and S (secondary), are wound on the same iron core (transformer geometry). Coil P has NP turns and coil S has NS turns, with NS>NP. A switch in series with coil P and a DC battery is closed at time t=0, causing the current in P to rise from zero toward its steady-state value Iss=V/rP, where rP is the resistance of the primary coil.
Immediately after the switch is closed, which of the following correctly describes the behavior of the secondary coil according to Lenz's law, and what happens to the secondary current as the primary current approaches its steady-state value?
A long, straight wire carrying a time-varying current I(t)=I0sin(ωt) lies along the x-axis. A rectangular conducting loop of width a and height b lies in the xy-plane. The near side of the loop (parallel to the wire) is at distance d from the wire, and the far side is at distance d+a. At time t=0, the current in the wire is zero and increasing in the +x direction.
At time t=π/(2ω), the current in the straight wire is at its maximum value I0 and momentarily not changing. Which of the following correctly describes the induced current in the rectangular loop at this instant?
A circular conducting loop is oriented in the vertical plane (the plane of the page). A permanent bar magnet is fixed with its north pole pointing directly at the center of the loop from the right side, and its south pole on the far right. The magnet is stationary. A student then rotates the loop at constant angular velocity ω about its vertical diameter, so that after a 90° rotation the loop's plane is perpendicular to the page.
During the rotation, at the instant when the loop has turned 45° from its initial position, which of the following best describes the induced current in the loop?
A solenoid of n turns per unit length and cross-sectional area A carries a current I(t) that is increasing with time. A small, single-turn square loop of side ℓ (with ℓ2<A) is placed coaxially inside the solenoid. A separate single-turn circular loop of radius ρ (with πρ2>A) is placed coaxially outside the solenoid, concentric with it.
As I(t) increases, which of the following correctly describes the induced current directions in the two external loops, as viewed from the end of the solenoid from which the magnetic field points toward the observer?
A student holds a flat circular conducting loop horizontally and drops it from rest through a region of space. For 0<z<z1, there is no magnetic field. For z1<z<z2, there is a uniform magnetic field directed horizontally (perpendicular to the vertical axis). For z>z2, there is again no field. The loop falls with its plane horizontal throughout the motion.
Which of the following correctly describes the induced current in the loop as it passes through the region z1<z<z2 where the horizontal magnetic field exists?