Question

In: Physics

As shown in the figure, a conducting rod with a linear mass density of 0.0395 kg/m...

As shown in the figure, a conducting rod with a linear mass density of 0.0395 kg/m is suspended by two flexible wires of negligible mass in a uniform magnetic field directed into the page. A power supply is used to send a current through the rod such that the tension in the support wires is zero.

(a) If the magnitude of the magnetic field is 3.70 T, determine the current in the conducting rod.

(b) Determine the direction of the current in the conducting rod.

to the left or to the right   

Image for As shown in the figure, a conducting rod with a linear mass density of 0.0395 kg/m is suspended by two flexibl


Solutions

Expert Solution

The magnetic force on a current carrying conductor in a magnetic field is given as follows:

$$ \begin{aligned} \vec{F} &=I(\vec{L} \times \vec{B}) \\ &=(B I L \sin \theta) \hat{n} \end{aligned} $$

Here, direction of \(\vec{L}\) is along the direction of current and direction of \(\hat{n}\) is direction of force vector.

(a)

Since, direction of magnetic field is perpendicular to the direction of current. The value of \(\theta\) is \(90^{\circ}\).

The magnitude of magnetic force on the wire is equal to the gravitational force on the wire.

Therefore,

\(B I L \sin \theta=m g\)

Rearrange for \(\underline{\underline{L}}\)

\(I=\frac{m g}{B L \sin \theta}\)

\(=\left(\frac{g}{B \sin \theta}\right)\left(\frac{m}{L}\right)\)

$$ =\left(\frac{9.8 \mathrm{~m} / \mathrm{s}^{2}}{(3.70 \mathrm{~T})\left(\sin 90^{\circ}\right)}\right)(0.0395 \mathrm{~kg} / \mathrm{m}) $$

\(=0.105 \mathrm{~A}\)

Therefore, current in the wire is \(0.105 \mathrm{~A}\)

(b)

The direction of the force must be upward, and it will be the direction of cross product of length vector and direction of magnetic field.

Since, the direction of magnetic field is into the page. The direction of current must be towards right.


Related Solutions

As shown in the figure below, a box of mass m = 68.0 kg (initially at...
As shown in the figure below, a box of mass m = 68.0 kg (initially at rest) is pushed a distance d = 91.0 m across a rough warehouse floor by an applied force of FA = 226 N directed at an angle of 30.0° below the horizontal. The coefficient of kinetic friction between the floor and the box is 0.100. Determine the following. (For parts (a) through (d), give your answer to the nearest multiple of 10.) (d) work...
two subway cars as shown in Figure 1 have mass m = 2000 kg and are...
two subway cars as shown in Figure 1 have mass m = 2000 kg and are connected by a coupler that can be modeled as a spring of stiffness k = 280,000 N/m. Use Newton’s method to derive the equations of motion, calculate the natural frequencies and determine the associated mode shapes. also, find the time response x1(t) and x2(t) of the subway initial conditions: x(0)= [ 0, 0.2] with zero initial velocity vector.  
Two balls connected by a rod, as shown in the figure below (Ignore rod’s mass).
Two balls connected by a rod, as shown in the figure below (Ignore rod’s mass). Mass of ball X is 8kg and the mass of ball Y is 5 kg  What is the moment of inertia of the system about AB?   
As shown in the figure (Figure 1) , a superball with mass m equal to 50...
As shown in the figure (Figure 1) , a superball with mass m equal to 50 grams is dropped from a height of hi=1.5m . It collides with a table, then bounces up to a height of  hf=1.0m . The duration of the collision (the time during which the superball is in contact with the table) is tc=15ms . In this problem, take the positive y direction to be upward, and use g=9.8m/s2 for the magnitude of the acceleration due to...
Q 3. The total mass of a variable density rod is given by m= where m...
Q 3. The total mass of a variable density rod is given by m= where m = mass, ρx= density, Ac(x) = cross-sectional area, x = distance along the rod, and L = the total length of the rod. The following data have been measured for a 20m length rod. Determine the mass in grams to the best possible accuracy. x,m 0 2 4 6 8 10 12 14 16 18 20 ρ, g/cm2 4.00 3.98 3.95 3.89 3.80 3.74...
A 3 kg collar slides with frictionless along a vertical rod is shown in below Figure....
A 3 kg collar slides with frictionless along a vertical rod is shown in below Figure. The spring is under-formed when the collar A is at the same elevation as point O. The collar is released from rest at y1 = 0.4 m. Determine the velocities of the collar as it first passes a) y2 = 0.0 m, and b) y3 = − 0.4m
A rod of length 22.00 cm has linear density (mass per length) given by λ =...
A rod of length 22.00 cm has linear density (mass per length) given by λ = 50.0 + 16.0x where x is the distance from one end, and λ is measured in grams/meter. (a) What is its mass? _______________g (b) How far from the x = 0 end is its center of mass? ________________m
In the figure (Figure 1) a conducting rod of length L = 37.0 cm moves in...
In the figure (Figure 1) a conducting rod of length L = 37.0 cm moves in a magnetic field B⃗ of magnitude 0.500 T directed into the plane of the figure. The rod moves with speed v = 6.00 m/s in the direction shown. Part A What is the potential difference between the ends of the rod? Part C When the charges in the rod are in equilibrium, what is the magnitude of the electric field within the rod? Part...
Given is the rod of length L with the linear charge of density ?=?/? . The...
Given is the rod of length L with the linear charge of density ?=?/? . The rod lies on the x axis with its midpoint at the origin. Find the electric field vector on y axis resulting from such continuous system of charge at distance y from the origin. Use this result to obtain the expression for electric field at distance y from the infinitely long wire.
The figure is a section of a conducting rod of radius R1 = 1.20 mm and...
The figure is a section of a conducting rod of radius R1 = 1.20 mm and length L = 13.80 m inside a thin-walled coaxial conducting cylindrical shell of radius R2 = 10.1R1 and the (same) length L. The net charge on the rod is Q1 = +3.41 × 10-12 C; that on the shell is Q2 = -2.33Q1. What are the (a) magnitude E and (b) direction (radially inward or outward) of the electric field at radial distance r...
ADVERTISEMENT
ADVERTISEMENT
ADVERTISEMENT