A hexagonal loop of side L = 7.1 cm carries a current of I = 1.6 A (see figure below). Determine the magnetic field at the center of the loop. Assume the positive z axis points out of the page. (Express your answer in vector form.) B = T
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A hexagonal loop of side
carries a current of
(see figure below). Determine the magnetic field at the center of the loop. Assume the positive z axis points out of the page. (Express your answer in vector form.)
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- A long, straight wire with linear mass density of 45 g/mg/m is suspended by threads, as shown in the figure (Figure 1). There is a uniform magnetic field pointing vertically downward. A 13 A current in the wire experiences a horizontal magnetic force that deflects it to an equilibrium angle of 10 degrees. What is the strength of the magnetic field B ?wire P r2 ri R A hollow pipe and a current carrying wire outside of it. Drawing not to scale. The figure above shows a long hollow pipe centred at the origin, with outside radius R carrying a uniform current Io into the page. An infinitely long, straight wire runs parallel to the pipe at a distance R+rı+r2 from its center. 8. Let ri 2R, r2 R. Calculate the magnitude and direction of the current in the wire that would cause the H field at P to have the same magnitude, but opposite direction, as the resultant field at the centre of the pipe. Verify explicitly your solution by showing that, with your Iw, Ĥ(r2) = –Ħ(0).A long pair of insulated wires serves to conduct 23.0 A of dc current to and from an instrument. If the wires are of negligible diameter but are 2.8 mm apart, what is the magnetic field 10.0 cm from their midpoint, in their plane (Figure 1)? Express your answer using two significant figures. Compare to the magnetic field of the Earth of 5.0×10−5T. Express your answer using two significant figures.
- A single circular loop of radius 0.23 m carries a current of 2.6 A in a magnetic field of 0.95 T. Find the angle the plane of the loop must make with the field if the torque is to be half its maximum value. Express your answer using two significant figures.A wire with electric current flowing to the left in the − direction is placed within a magnetic field directed towards the top in the + direction. What is the direction of the magnetic force acting on the wire? Can you explain to me why the answer is E: Into the page (-z)?Consider the current-carrying wire shown in the figure. The current creates a magnetic field at the point P, which is the center of the arc segment of the wire. If e = 25.0°, the radius of the arc is 0.700 m, and the current is 2.00 A, what are the magnitude (in nT) and direction of the field produced at P? G magnitude 1.047 Apply the Biot-Savart law. What will be the contributions of the segments of wire along the straight-line sections? Hint: what is ds x f for each segment? nT direction toward the top of the screen X Use the right-hand rule to determine the direction.
- Chapter 28, Problem 060 Your answer is partially correct. Try again. The figure shows a current loop ABCDEFA carrying a current i -4.58 A. The sides of the loop are parallel to the coordinate axes shown, with AB 21.4 cm, BC 25.4 cm, and FA = 8.46 cm. In unit-vector notation, what is the magnetic dipole moment of this loop? (Hint: Imagine equal and opposite currents i in the, line segment AD then treat the two rectangular loops ABCDA and ADEFA.) .0 k ) Units Number (Four long straight wires are at the corners of a square. The currents are not all in same direction, but all have the same magnitude, ?. Which arrow best describes the direction of the net magnetic field due to all wires at point P? (Select one arrow.)A solid cylindrical conductor is supported by insulating disks on the axis of a conducting tube with outer radius R, = 6.95 Cm and inner radius R, = 4,75 Cm (Figure 1) The central conductor and the conducting tube carry equal currents of I = 4.05 A in opposite directions. The currents are distributed uniformly over the cross sections of each conductor. What is the value of the magnetic field at a distance T = 5.33 cm from the axis of the conducting tube?
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