1. Objective
The goal of this experiment is to examine the relationship between current and the magnetic
force through the wire. We will also verify that the force between two wires is proportional to the
product of t
...
1. Objective
The goal of this experiment is to examine the relationship between current and the magnetic
force through the wire. We will also verify that the force between two wires is proportional to the
product of the currents, and estimate the proportionality constant involved.
2. Description
A single horizontal U shaped rod or wire is pivoted so that it can move freely up and down.
Below the wire is a long 10 turn rectangular coil whose long sides are in horizontal plain and run
parallel to the single wire. One long side of the coil is a lot closer to the single wire than the other
long side of the coil. The single wire and coil are connected in series and a current flows through
them so that the current is flowing in the opposite directions for the single wire rod and the
nearby long side of the coil. The net force between wire and coil is a repulsion. In section 6, with
zero current, the vertical position of the single wire is adjusted to a certain value. A weight is
then added to a pan on the single wire and a DC (constant) current established so that the
position of the single wire returns to its initial value. This procedure is repeated for a number of
weights. This determines the force on the single wire as a function of the current.
The apparatus that was used includes the current balance apparatus, laser on tripod, paper and
tape, Fluke multimeter, leads, 9 V DC from wall strip, 5 Ω 9.2 A rheostat, two 6 inch flat 1 mm
thick rulers, weights (50 mg, 100 mg, 200 mg). The long rectangular coil is fixed in position. The
single wire is held by two rods that are attached to a pivot arm that pivots on two knife edges.
This allows the single wire to freely move in a vertical plane toward and away from the coil. This
single wire assembly has a balance adjustment weight that allows the equilibrium vertical
position of the single wire to be adjusted. In the center of the single wire there is a pan where you
will be placing the fractional masses. There is a mirror attached to the pivot arm. A laser beam is
directed onto the mirror and then reflected back to a piece of paper taped to the front of the laser.
This allows you to return the single wire to a given position with great accuracy. The “period
adjustment weight” changes the oscillation period of the single wire. Moving this weight down
makes the period of oscillation longer, and lengthens the times necessary for the wire to stop
oscillating. It also serves to make the equilibrium position of the wire stable, since it is located
below the pivot points. The lower this weight is, the more stable the mechanical equilibrium of
the wire. There is a “centering rod” that has two knobs at the ends and two off-set points. When
the centering rod is rotated, the two points fit into two tapered holes in the bottom of the pivot
arm, and one can lift the pivot arm a bit. When the pivot arm is lowered back down, the knife
edges should be centered on their supports. This should be done gently so the knife edges don’t
become damaged.
In this experiment, two small plastic rulers will be provided that are quite close to 1.0 mm
thick. They are used as spacers to set the distance d between the single wire and coil. A metal
plate attached to the pivot arm is positioned in the gap of a small permanent magnet. As the pivot
arm swings back and forth, this arrangement provides eddy current damping.
A rheostat is a variable resistor. It consists of resistance wire wound on a cylindrical form so
that the resistance wire form
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