Chapter 20: Problem 27
Briefly explain the manner in which information is stored magnetically.
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Chapter 20: Problem 27
Briefly explain the manner in which information is stored magnetically.
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The following data are for a plain carbon steel alloy: \begin{tabular}{cccc} \hline \(\boldsymbol{H}(\boldsymbol{A} / \mathrm{m})\) & \(\boldsymbol{B}(\) tesla \()\) & \(\boldsymbol{H} \mathbf{( A / m )}\) & \(\boldsymbol{B}\) (tesla) \\ \hline 0 & 0 & 80 & \(0.90\) \\ \hline 15 & \(0.007\) & 100 & \(1.14\) \\ \hline 30 & \(0.033\) & 150 & \(1.34\) \\ \hline 50 & \(0.10\) & 200 & \(1.41\) \\ \hline 60 & \(0.30\) & 300 & \(1.48\) \\ \hline 70 & \(0.63\) & & \\ \hline \end{tabular} (a) Construct a graph of \(B\) versus \(H\). (b) What are the values of the initial permeability and initial relative permeability? (c) What is the value of the maximum permeability? (d) At about what \(H\) field does this maximum permeability occur? (e) To what magnetic susceptibility does this maximum permeability correspond?
An iron bar magnet having a coercivity of \(7000 \mathrm{~A} / \mathrm{m}\) is to be demagnetized. If the bar is inserted within a cylindrical wire coil \(0.25 \mathrm{~m}\) long and having 150 turns, what electric current is required to generate the necessary magnetic field?
(a) Explain the two sources of magnetic moments for electrons. (b) Do all electrons have a net magnetic moment? Why or why not? (c) Do all atoms have a net magnetic moment? Why or why not?
The magnetic flux density within a bar of some material is \(0.630\) tesla at an \(H\) field of \(5 \times 10^{5} \mathrm{~A} / \mathrm{m}\). Compute the following for this material: (a) the magnetic permeability and (b) the magnetic susceptibility. (c) What type(s) of magnetism would you suggest is (are) being displayed by this material? Why?
Cite the primary limitation of the new superconducting materials that have relatively high critical temperatures.
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