# HW6 - \documentclass[12pt]cfw_article \textheight 9.0in...

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\documentclass[12pt]{article} \textheight 9.0in \textwidth 6.0in \topmargin -0.4in \headsep 0.4in \oddsidemargin 0.25in \evensidemargin 0.25in \def\pmbf#1{{\mbox{\boldmath${#1}$}}} \def\undertext#1{$\underline{\smash{\hbox{#1}}}$} \pagestyle{empty} \begin{document} %----------------------------------------------------% %%%%%%%%%%%%%%%%% CLASSICAL MECHANICS %%%%%%%%%%%%%%%% %----------------------------------------------------% \begin{center} {\bf ADVANCED DYNAMICS --- PHY--4241/5227}\\\vspace {2mm} {\bf HOMEWORK 6}\\% \vspace {3mm} (\today) \\ \vspace {1mm}{Due on Monday, February 17, 2003} \\ \end{center} \setcounter{equation}{0} \bigskip %%%%%%%%%%%%%%%%%%%%%%%%%% \centerline{\bf PROBLEM 16} \centerline{\small{(Problem 9.9 Griffiths)}} Write down the (real) electric and magnetic fields for a monochromatic plane wave of amplitude $E_{0}$, frequency $\omega$, and linear polarization $\hat{\bf n}$ that is: \begin{description} \item{a)} Traveling in the negative $x$ direction and polarized in the $z$ direction. \item{b)} Traveling in the direction from the origin

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## This note was uploaded on 11/10/2011 for the course PHY 4241 taught by Professor Berg during the Spring '11 term at University of Florida.

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HW6 - \documentclass[12pt]cfw_article \textheight 9.0in...

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