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authorKarl Berry <karl@freefriends.org>2010-05-17 16:10:33 +0000
committerKarl Berry <karl@freefriends.org>2010-05-17 16:10:33 +0000
commit0fbe3bb2fe6072a4909daddb5cfb7304dce43981 (patch)
tree4a016a5a590831850d8aab9aebf0bf87cc6c3536 /Master/texmf-dist/doc/generic
parent7fe9b95e32b8a9ec7f8fb1465ef797c3fe282301 (diff)
new pstricks package pst-magneticfield (16may10)
git-svn-id: svn://tug.org/texlive/trunk@18313 c570f23f-e606-0410-a88d-b1316a301751
Diffstat (limited to 'Master/texmf-dist/doc/generic')
-rw-r--r--Master/texmf-dist/doc/generic/pst-magneticfield/Changes2
-rw-r--r--Master/texmf-dist/doc/generic/pst-magneticfield/README8
-rw-r--r--Master/texmf-dist/doc/generic/pst-magneticfield/pst-magneticfield-docEN.bib70
-rw-r--r--Master/texmf-dist/doc/generic/pst-magneticfield/pst-magneticfield-docEN.pdfbin0 -> 8014720 bytes
-rw-r--r--Master/texmf-dist/doc/generic/pst-magneticfield/pst-magneticfield-docEN.tex307
-rw-r--r--Master/texmf-dist/doc/generic/pst-magneticfield/pst-magneticfield-docFR.bib70
-rw-r--r--Master/texmf-dist/doc/generic/pst-magneticfield/pst-magneticfield-docFR.pdfbin0 -> 8017590 bytes
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diff --git a/Master/texmf-dist/doc/generic/pst-magneticfield/Changes b/Master/texmf-dist/doc/generic/pst-magneticfield/Changes
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--- /dev/null
+++ b/Master/texmf-dist/doc/generic/pst-magneticfield/Changes
@@ -0,0 +1,2 @@
+pst-magneticfield.tex --------
+1.10 2010-05-16 - first CTAN version
diff --git a/Master/texmf-dist/doc/generic/pst-magneticfield/README b/Master/texmf-dist/doc/generic/pst-magneticfield/README
new file mode 100644
index 00000000000..a7776adf323
--- /dev/null
+++ b/Master/texmf-dist/doc/generic/pst-magneticfield/README
@@ -0,0 +1,8 @@
+Save the files pst-magneticfield.sty|tex in a directory, which is part of your
+local TeX tree.
+Then do not forget to run texhash to update this tree.
+For more information see the documentation of your LATEX distribution
+on installing packages into your LATEX distribution or the
+TeX Frequently Asked Questions:
+(http://www.tex.ac.uk/cgi-bin/texfaq2html?label=instpackages).
+
diff --git a/Master/texmf-dist/doc/generic/pst-magneticfield/pst-magneticfield-docEN.bib b/Master/texmf-dist/doc/generic/pst-magneticfield/pst-magneticfield-docEN.bib
new file mode 100644
index 00000000000..d02a96688b8
--- /dev/null
+++ b/Master/texmf-dist/doc/generic/pst-magneticfield/pst-magneticfield-docEN.bib
@@ -0,0 +1,70 @@
+%% -*-bibtex-*-
+@STRING{tugboat = {TUGboat} }
+@STRING{dtk = {{D}ie {\TeX}nische {K}om{\"o}die} }
+
+@Book{companion,
+ author = {Michel Goosens and Frank Mittelbach and Sebastian Rahtz and Dennis Roegel and Herbert Vo\ss},
+ title = {The {\LaTeX} {G}raphics {C}ompanion},
+ publisher = {{Addison-Wesley Publishing Company}},
+ edition = {second},
+ year = {2007},
+ address = {Reading, Mass.}
+}
+
+@Article{girou:01:,
+ author = {Denis Girou},
+ title = {Pr\'esentation de {PST}ricks},
+ journal = {Cahier {GUT}enberg},
+ year = 1994,
+ volume = {16},
+ month = apr,
+ pages = {21-70}
+}
+
+@Article{girou:02:,
+ author = {{Timothy Van} Zandt and Denis Girou},
+ title = {Inside {PST}ricks},
+ journal = TUGboat,
+ year = 1994,
+ volume = {15},
+ month = sep,
+ pages = {239-246}
+}
+
+@Book{PostScript,
+ Author = {Kollock, Nikolai G.},
+ Title = {Post{S}cript richtig eingesetzt: vom {K}onzept zum
+ praktischen {E}insatz},
+ Publisher = {IWT},
+ Address = {Vaterstetten},
+ year = 1989,
+}
+
+@Manual{multido,
+ Title = {\texttt{multido.tex} - a loop macro, that supports fixed-point addition},
+ Author = {{Timothy Van} Zandt},
+ Organization = {},
+ Address = {\url{CTAN:/graphics/pstricks/generic/multido.tex}},
+ Note = {},
+ year = 1997
+}
+
+@Book{PSTricks2,
+ author = {Herbert Vo\ss{}},
+ title = {\texttt{PSTricks} -- {G}rafik f\"ur \TeX{} und \LaTeX},
+ edition = {fifth},
+ publisher = {DANTE -- Lehmanns},
+ year = {2008},
+ address = {Heidelberg/Hamburg}
+}
+
+@Book{abramowitz,
+ author = {M. Abramowitz and I. A. Stegun },
+ year = 1964,
+ title = {Handbook of {M}athematical {F}unctions with {F}ormulas, {G}raphs, and
+ {M}athematical {T}ables},
+ publisher = {National Bureau of Standards Applied Mathematics Series,
+ U.S. Government Printing Office},
+ address = {Washington, D.C., USA},
+ Note = { Corrections appeared in later printings up to the 10th Printing},
+}
diff --git a/Master/texmf-dist/doc/generic/pst-magneticfield/pst-magneticfield-docEN.pdf b/Master/texmf-dist/doc/generic/pst-magneticfield/pst-magneticfield-docEN.pdf
new file mode 100644
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+++ b/Master/texmf-dist/doc/generic/pst-magneticfield/pst-magneticfield-docEN.pdf
Binary files differ
diff --git a/Master/texmf-dist/doc/generic/pst-magneticfield/pst-magneticfield-docEN.tex b/Master/texmf-dist/doc/generic/pst-magneticfield/pst-magneticfield-docEN.tex
new file mode 100644
index 00000000000..56d872d40af
--- /dev/null
+++ b/Master/texmf-dist/doc/generic/pst-magneticfield/pst-magneticfield-docEN.tex
@@ -0,0 +1,307 @@
+%% $Id: pst-magneticfield-docEN.tex 322 2010-05-16 08:07:26Z herbert $
+\documentclass[11pt,english,BCOR10mm,DIV12,bibliography=totoc,parskip=false,smallheadings
+ headexclude,footexclude,oneside]{pst-doc}
+\usepackage[latin1]{inputenc}
+\usepackage{pst-magneticfield}
+\let\pstMFfv\fileversion
+\lstset{pos=t,language=PSTricks,
+ morekeywords={psmagneticfield,psmagneticfieldThreeD},basicstyle=\footnotesize\ttfamily}
+\newcommand\Cadre[1]{\psframebox[fillstyle=solid,fillcolor=black,linestyle=none,framesep=0]{#1}}
+\def\bgImage{%
+\psset{unit=0.5cm}
+\begin{pspicture}(-7,-6)(7,6)
+\psmagneticfieldThreeD[N=2,R=2,L=2,linecolor=blue](-7,-8)(7,8)
+\ThreeDput{\rput(0,-7){\textbf{Bobines de HELMHOLTZ}}}
+\end{pspicture}
+}
+%
+\begin{document}
+
+\title{\texttt{pst-magneticfield}}
+\subtitle{Magnetic field lines of a solenoid; v.\pstMFfv}
+\author{Juergen Gilg\\ Manuel Luque\\Herbert Vo\ss}
+%\docauthor{Juergen Gilg\\Manuel Luque\\Herbert Vo\ss}
+\date{\today}
+\maketitle
+
+
+\clearpage%
+\begin{abstract}
+The package \LPack{pst-magneticfield} aims to trace the shape of field lines
+af a solenoid. The physical parameters are the radius of the solenoid, the number of
+turns and the length, the default values are given below:
+
+\begin{enumerate}
+ \item the number of turns: \LKeyset{N=6} ;
+ \item the radius : \LKeyset{R=2} ;
+ \item the length : \LKeyset{L=4}.
+\end{enumerate}
+
+The line was calculated with the Runge-Kutta 2 algorithm, which, after several tries,
+seems to be the best compromise between speed and accuracy of calculations of the path.
+The calculation of elliptic integrals for the evaluation of magnetic field
+was achieved by polynomial approximations from the "Handbook of Mathematical
+Functions With Formulas, Graph, And Mathematical Tables" by Milton Abramowitz and
+Irene.A. Stegun (\url{http://www.math.sfu.ca/~cbm/aands/}).~\cite{abramowitz}
+\end{abstract}
+
+\clearpage
+\tableofcontents
+
+
+\clearpage
+
+\section{Introduction}
+
+The route options, with the default values are as follows:
+\begin{enumerate}
+ \item The maximum number of points on each line of the entire coil: \LKeyset{pointsB=500};
+ \item the maximum number of points on lines around turns selected: \LKeyset{pointsS=1000};
+ \item the number of lines of the entire coil: \LKeyset{nL=8};
+ \item not the route for the lines of the entire coil: \LKeyset{PasB=0.02};
+ \item not the route for the lines around turns selected: \LKeyset{PasS=0.00275};
+ \item the choice of individual coils to improve the rendering of
+ layout: \LKeyset{numSpires=\{\}}, we place following the sign "=" the numbers of turns \textsf{1 2 3 etc.}
+ starting from the top of the spire. By default, all the turns are targeted.
+ \item The number of field lines around the turns selected: \LKeyset{nS=1}.
+ \item We may decide not to represent the solenoid with the option \LKeyset{drawSelf=false}
+ is useful for 3D representation.
+ \item the route options of the turns (color, thickness, arrows) are:
+ \begin{enumerate}
+ \item The color and thickness of the coils: \Lkeyset{styleSpire=styleSpire};
+ \item the current direction signs: \Lkeyset{styleCourant=sensCourant}.
+ \end{enumerate}
+\begin{verbatim}
+\newpsstyle{styleSpire}{linecap=1,linecolor=red,linewidth=2\pslinewidth}
+\newpsstyle{sensCourant}{linecolor=red,linewidth=2\pslinewidth,arrowinset=0.1}
+\end{verbatim}
+
+ \item The color and thickness of the field lines can be adjusted with the parameters
+ usual \LPack{pstricks}: \Lkeyword{linecolor} and \Lkeyword{linewidth}
+\end{enumerate}
+
+A command \Lcs{psmagneticfieldThreeD} allows 3D visualization of the solenoid and
+field lines.
+
+\clearpage
+\section{Influence of physical parameters on the map magnetic field}
+\subsection{The length of the solenoid}
+
+\begin{LTXexample}[pos=t]
+\psset{unit=0.5cm}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{006633}},N=3,R=2,nS=1]
+\psframe*[linecolor={[HTML]{99FF66}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{L=4}},N=3,R=2,nS=1]}
+\end{pspicture*}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{006633}},L=8,N=3,R=2,nS=1,PasB=0.0025,pointsB=5500]
+\psframe*[linecolor={[HTML]{99FF66}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{L=8}},N=3,R=2,nS=1]}
+\end{pspicture*}
+\end{LTXexample}
+
+\textbf{Note:} To refine the layout of the second solenoid, we had to increase the
+points and lower the pitch of the route: \Cadre{\textcolor{white}{pointsB=5500,PasB=0.0025}}, which
+lengthens the calculations.
+
+
+
+\clearpage
+
+\subsection{The number of turns}
+\begin{LTXexample}[pos=t]
+\psset{unit=0.5}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{006633}},N=1,R=2,nS=0]
+\psframe*[linecolor={[HTML]{99FF66}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{N=1}},R=2,nS=0]}
+\end{pspicture*}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{006633}},N=2,R=2,L=2,PasS=0.003,nS=2]
+\psframe*[linecolor={[HTML]{99FF66}}](-7,7)(7,8)
+\rput(0,7.5){\Cadre{\textcolor{white}{Bobines de Helmholtz}}}
+\psframe*[linecolor={[HTML]{99FF66}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{N=2}},R=2,L=2,PasS=0.003,nS=2]}
+\end{pspicture*}
+\end{LTXexample}
+
+\begin{LTXexample}[pos=t]
+\psset{unit=0.5}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{006633}},N=4,R=2,numSpires=2 3]
+\psframe*[linecolor={[HTML]{99FF66}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{N=4}},R=2,L=4]}
+\end{pspicture*}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{006633}},N=5,R=2,L=5,PasS=0.004,nS=2 3 4]
+\psframe*[linecolor={[HTML]{99FF66}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{N=5}},R=2,L=5]}
+\end{pspicture*}
+\end{LTXexample}
+
+
+\clearpage
+\section{The three route options}
+\subsection{The number of field lines}
+
+Due to the symmetry of the problem the number of field lines given
+\Lkeyword{nL} option is half the number actually represented with an added line
+confused with the axis of revolution. We must also add the lines around the turns \Lkeyword{nS},
+these turns can be selected individually \Lkeyword{numSpires}.
+
+
+
+\begin{LTXexample}[pos=t]
+\psset{unit=0.5}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{000099}},N=1,R=2]
+\psframe*[linecolor={[HTML]{3399FF}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{nL=8}},N=1,R=2]}
+\end{pspicture*}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{000099}},N=1,R=2,nL=12]
+\psframe*[linecolor={[HTML]{3399FF}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{nL=12}},N=1,R=2]}
+\end{pspicture*}
+\end{LTXexample}
+
+\clearpage
+\subsection{The number of points for the path}
+ The plot of field lines is achieved by a numerical method (RK2) and
+follows the step of the route and the number of selected points affect the accuracy of the route,
+as in the two examples below:
+
+
+\begin{LTXexample}[pos=t]
+\psset{unit=0.5}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{660066}},N=2,R=2,L=2,PasB=0.1,nS=0,nL=7,pointsB=100]
+\psframe*[linecolor={[HTML]{996666}}](-7,7)(7,8)
+\rput(0,7.5){\Cadre{\textcolor{white}{Bobines de Helmholtz}}}
+\psframe*[linecolor={[HTML]{996666}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{PasB=0.1,nL=4,pointsB=100}}]}
+\end{pspicture*}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{660066}},N=2,R=2,L=2,PasB=0.4,nS=0,nL=7,pointsB=100]
+\psframe*[linecolor={[HTML]{996666}}](-7,7)(7,8)
+\rput(0,7.5){\Cadre{\textcolor{white}{Bobines de Helmholtz}}}
+\psframe*[linecolor={[HTML]{996666}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{PasS=0.4,pointsB=100}}]}
+\end{pspicture*}
+\end{LTXexample}
+
+
+If the defaults do not suit it must be found by testing the
+values that give a correct path.
+
+
+
+\clearpage
+
+\section{The parameter \nxLkeyword{numSpires}}
+\begin{LTXexample}[pos=t,wide]
+\psset{unit=0.5}
+\begin{pspicture*}[showgrid](-8,-10)(8,10)
+\psset{linecolor=blue}
+\psmagneticfield[R=2,L=12,N=8,pointsS=500,nL=14,nS=1,numSpires=1 3 6 8,PasB=0.075]
+\psframe*[linecolor={[HTML]{99FF66}}](-8,-10)(8,-9)
+\rput(0,-9.5){[\Cadre{\textcolor{white}{numSpires=1 3 6 8}},R=2,L=14]}
+\multido{\i=0+1}{8}{\rput[l](!6 6 12 7 div \i\space mul sub){\the\multidocount}}
+\end{pspicture*}\quad
+\begin{pspicture*}[showgrid](0,-10)(16,10)
+\psset{linecolor=blue}
+\psmagneticfield[R=2,L=12,N=8,pointsS=500,nL=14,numSpires=,nS=1,PasB=0.075]
+\psframe*[linecolor={[HTML]{99FF66}}](0,-10)(16,-9)
+\rput(8,-9.5){[\Cadre{\textcolor{white}{numSpires=all}},R=2,L=14]}
+\multido{\i=0+1}{8}{\rput[l](!6 6 12 7 div \i\space mul sub){\the\multidocount}}
+\end{pspicture*}
+\end{LTXexample}
+
+\clearpage
+\section{The parameter \nxLkeyword{AntiHelmholtz}}
+\begin{LTXexample}[pos=t]
+\psset{unit=0.75,AntiHelmholtz,
+ R=2,pointsB=500,pointsS=2000,PasB=0.02,PasS=0.00275,nS=10,
+ nL=2,drawSelf=true,styleSpire=styleSpire,styleCourant=sensCourant}
+\newpsstyle{grille}{subgriddiv=0,gridcolor=blue!50,griddots=10}
+\newpsstyle{cadre}{linecolor=yellow!50}
+\begin{pspicture*}[showgrid](-7,-6)(7,6)
+\psframe*[linecolor={[HTML]{996666}}](-7,7)(7,8)
+\psmagneticfield[linecolor={[HTML]{660066}}]
+\end{pspicture*}
+\end{LTXexample}
+
+
+
+\clearpage
+\section{3D views}
+3D views are possible with the macros
+
+\begin{BDef}
+\Lcs{psmagneticfield}\OptArgs\coord1\coord2\\
+\Lcs{psmagneticfieldThreeD}\OptArgs\coord1\coord2
+\end{BDef}
+
+in which options are settings \Lcs{psmagneticfield} and \verb+(x1,y1)(x2,y2)+
+coordinates of bottom left corner and upper right framework
+is encapsulated as the field map for \Lcs{psframe}. We can use the option
+\Lkeyword{viewpoint} of \LPack{pst-3d} package to change the view.
+ The options framework are by default, the following:
+\begin{verbatim}
+\newpsstyle{grille}{subgriddiv=0,gridcolor=lightgray,griddots=10}
+\newpsstyle{cadre}{linecolor=green!20}
+\end{verbatim}
+
+ So it is that they must change if we want change, as in
+Example below.
+\begin{LTXexample}[pos=t]
+\psset{unit=0.7cm}
+\newpsstyle{grille}{subgriddiv=0,gridcolor=blue!50,griddots=10}
+\newpsstyle{cadre}{linecolor=yellow!50}
+\begin{pspicture}(-7,-6)(7,6)
+\psmagneticfieldThreeD[N=8,R=2,L=8,pointsB=1200,linecolor=blue,pointsS=2000](-7,-8)(7,8)
+\end{pspicture}
+\end{LTXexample}
+
+\begin{LTXexample}[pos=t]
+\psset{unit=0.7cm}
+\begin{pspicture}(-7,-6)(7,6)
+\psmagneticfieldThreeD[N=2,R=2,L=2,linecolor=blue](-7,-8)(7,8)
+\ThreeDput{\rput(0,-7){\textbf{Bobines de HELMHOLTZ}}}
+\end{pspicture}
+\end{LTXexample}
+
+\begin{LTXexample}[pos=t]
+\psset{unit=0.75cm,AntiHelmholtz,
+ R=2,pointsB=500,pointsS=2000,PasB=0.02,PasS=0.00275,nS=10,
+ nL=2,drawSelf,styleSpire=styleSpire,styleCourant=sensCourant}
+\newpsstyle{grille}{subgriddiv=0,gridcolor=blue!50,griddots=10}
+\newpsstyle{cadre}{linecolor=yellow!50}
+\begin{pspicture}(-7,-6)(7,6)
+\psmagneticfieldThreeD[linecolor={[HTML]{660066}}](-7,-6)(7,6)
+\end{pspicture}
+\end{LTXexample}
+
+
+
+
+\clearpage
+\section{List of all optional arguments for \texttt{pst-magneticfield}}
+
+\xkvview{family=pst-magneticfield,columns={key,type,default}}
+
+\nocite{*}
+\bgroup
+\raggedright
+\bibliographystyle{plain}
+\bibliography{\jobname}
+\egroup
+
+
+\printindex
+
+
+
+
+\end{document}
diff --git a/Master/texmf-dist/doc/generic/pst-magneticfield/pst-magneticfield-docFR.bib b/Master/texmf-dist/doc/generic/pst-magneticfield/pst-magneticfield-docFR.bib
new file mode 100644
index 00000000000..d02a96688b8
--- /dev/null
+++ b/Master/texmf-dist/doc/generic/pst-magneticfield/pst-magneticfield-docFR.bib
@@ -0,0 +1,70 @@
+%% -*-bibtex-*-
+@STRING{tugboat = {TUGboat} }
+@STRING{dtk = {{D}ie {\TeX}nische {K}om{\"o}die} }
+
+@Book{companion,
+ author = {Michel Goosens and Frank Mittelbach and Sebastian Rahtz and Dennis Roegel and Herbert Vo\ss},
+ title = {The {\LaTeX} {G}raphics {C}ompanion},
+ publisher = {{Addison-Wesley Publishing Company}},
+ edition = {second},
+ year = {2007},
+ address = {Reading, Mass.}
+}
+
+@Article{girou:01:,
+ author = {Denis Girou},
+ title = {Pr\'esentation de {PST}ricks},
+ journal = {Cahier {GUT}enberg},
+ year = 1994,
+ volume = {16},
+ month = apr,
+ pages = {21-70}
+}
+
+@Article{girou:02:,
+ author = {{Timothy Van} Zandt and Denis Girou},
+ title = {Inside {PST}ricks},
+ journal = TUGboat,
+ year = 1994,
+ volume = {15},
+ month = sep,
+ pages = {239-246}
+}
+
+@Book{PostScript,
+ Author = {Kollock, Nikolai G.},
+ Title = {Post{S}cript richtig eingesetzt: vom {K}onzept zum
+ praktischen {E}insatz},
+ Publisher = {IWT},
+ Address = {Vaterstetten},
+ year = 1989,
+}
+
+@Manual{multido,
+ Title = {\texttt{multido.tex} - a loop macro, that supports fixed-point addition},
+ Author = {{Timothy Van} Zandt},
+ Organization = {},
+ Address = {\url{CTAN:/graphics/pstricks/generic/multido.tex}},
+ Note = {},
+ year = 1997
+}
+
+@Book{PSTricks2,
+ author = {Herbert Vo\ss{}},
+ title = {\texttt{PSTricks} -- {G}rafik f\"ur \TeX{} und \LaTeX},
+ edition = {fifth},
+ publisher = {DANTE -- Lehmanns},
+ year = {2008},
+ address = {Heidelberg/Hamburg}
+}
+
+@Book{abramowitz,
+ author = {M. Abramowitz and I. A. Stegun },
+ year = 1964,
+ title = {Handbook of {M}athematical {F}unctions with {F}ormulas, {G}raphs, and
+ {M}athematical {T}ables},
+ publisher = {National Bureau of Standards Applied Mathematics Series,
+ U.S. Government Printing Office},
+ address = {Washington, D.C., USA},
+ Note = { Corrections appeared in later printings up to the 10th Printing},
+}
diff --git a/Master/texmf-dist/doc/generic/pst-magneticfield/pst-magneticfield-docFR.pdf b/Master/texmf-dist/doc/generic/pst-magneticfield/pst-magneticfield-docFR.pdf
new file mode 100644
index 00000000000..e97e584cf38
--- /dev/null
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+%% $Id: pst-magneticfield-docFR.tex 322 2010-05-16 08:07:26Z herbert $
+\documentclass[11pt,english,french,BCOR10mm,DIV12,bibliography=totoc,parskip=false,smallheadings
+ headexclude,footexclude,oneside]{pst-doc}
+\usepackage[latin1]{inputenc}
+\usepackage{pst-magneticfield}
+\let\pstMFfv\fileversion
+\lstset{pos=t,language=PSTricks,
+ morekeywords={psmagneticfield,psmagneticfieldThreeD},basicstyle=\footnotesize\ttfamily}
+\newcommand\Cadre[1]{\psframebox[fillstyle=solid,fillcolor=black,linestyle=none,framesep=0]{#1}}
+\def\bgImage{%
+\psset{unit=0.5cm}
+\begin{pspicture}(-7,-6)(7,6)
+\psmagneticfieldThreeD[N=2,R=2,L=2,linecolor=blue](-7,-8)(7,8)
+\ThreeDput{\rput(0,-7){\textbf{Bobines de HELMHOLTZ}}}
+\end{pspicture}
+}
+%
+\begin{document}
+
+\title{\texttt{pst-magneticfield}}
+\subtitle{Magnetic field lines of a solenoid; v.\pstMFfv}
+\author{Juergen Gilg\\ Manuel Luque\\Herbert Vo\ss}
+%\docauthor{Juergen Gilg\\Manuel Luque\\Herbert Vo\ss}
+\date{\today}
+\maketitle
+
+
+\clearpage%
+\begin{abstract}
+Le package \LPack{pst-magneticfield} a pour objet de tracer l'allure des lignes de
+champ d'un solénoïde. Les paramètres physiques du solénoïde sont le rayon, le nombre
+de spires et la longueur, les valeurs par défaut sont données ci-dessous :
+\begin{enumerate}
+ \item le nombre de spires : \LKeyset{N=6} ;
+ \item le rayon : \LKeyset{R=2} ;
+ \item la longueur : \LKeyset{L=4}.
+\end{enumerate}
+Le tracé a été modélisé avec la méthode de Runge-Kutta 2 qui, après plusieurs essais,
+semble être le meilleur compromis entre rapidité des calculs et précision du tracé.
+Le calcul des intégrales elliptiques nécessaires à l'évaluation du champ magnétique
+a été réalisé par des approximations polynômiales tirées du ``\textit{Handbook of
+Mathematical Functions With Formulas, Graph, And Mathematical Tables}'' de
+Milton Abramowitz et Irene.A. Stegun \url{http://www.math.sfu.ca/~cbm/aands/}.
+\end{abstract}
+
+\clearpage
+\tableofcontents
+
+
+\clearpage
+
+\section{Introduction}
+Les options de tracé, avec les valeurs par défaut, sont les suivantes :
+\begin{enumerate}
+ \item Le nombre de points maximum sur chaque ligne de l'ensemble de la bobine : \LKeyset{pointsB=500} ;
+ \item le nombre de points maximum sur des lignes autour de spires choisies : \LKeyset{pointsS=1000} ;
+ \item le nombre de lignes de l'ensemble de la bobine : \LKeyset{nL=8} ;
+ \item le pas du tracé pour les lignes de l'ensemble de la bobine : \LKeyset{PasB=0.02} ;
+ \item le pas du tracé pour les lignes autour de spires choisies : \LKeyset{PasS=0.00275} ;
+ \item la possibilité de choisir individuellement des spires pour améliorer le rendu
+ du tracé : \LKeyset{numSpires=\{\}} , on place à la suite du signe ``='' les numéros
+ des spires \textsf{1 2 3 etc.} en partant de la spire du haut. Par défaut,
+ toutes les spires sont ciblées.
+ \item Le nombre de lignes de champ autour des spires choisies : \LKeyset{nS=1}.
+ \item On peut décider de ne pas représenter le solénoïde avec l'option \LKeyset{drawSelf=false},
+ c'est utile pour la représentation en 3D.
+ \item les options de tracé des spires (couleur, épaisseur, flèches) sont :
+ \begin{enumerate}
+ \item La couleur et l'épaisseur du trait des spires : \Lkeyset{styleSpire=styleSpire} ;
+ \item le fléchage du sens du courant : \Lkeyset{styleCourant=sensCourant}.
+ \end{enumerate}
+
+\begin{verbatim}
+\newpsstyle{styleSpire}{linecap=1,linecolor=red,linewidth=2\pslinewidth}
+\newpsstyle{sensCourant}{linecolor=red,linewidth=2\pslinewidth,arrowinset=0.1}
+\end{verbatim}
+
+ \item La couleur et l'épaisseur des lignes de champ se règlent avec les paramètres usuels
+ de \LPack{pstricks} : \Lkeyword{linecolor} et \Lkeyword{linewidth}.
+\end{enumerate}
+Une commande \Lcs{psmagneticfieldThreeD} permet la visualisation en 3D du solénoïde et
+des lignes de champ.
+
+\clearpage
+\section{Influence des paramètres physiques sur la carte du champ magnétique}
+\subsection{La longueur du solénoïde}
+
+\begin{LTXexample}[pos=t]
+\psset{unit=0.5cm}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{006633}},N=3,R=2,nS=1]
+\psframe*[linecolor={[HTML]{99FF66}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{L=4}},N=3,R=2,nS=1]}
+\end{pspicture*}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{006633}},L=8,N=3,R=2,nS=1,PasB=0.0025,pointsB=5500]
+\psframe*[linecolor={[HTML]{99FF66}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{L=8}},N=3,R=2,nS=1]}
+\end{pspicture*}
+\end{LTXexample}
+
+\textbf{Remarque :} pour affiner le tracé du deuxième solénoïde, on a du augmenter
+le nombre de points et diminuer le pas du tracé : \Cadre{\textcolor{white}{pointsB=5500,PasB=0.0025}},
+ce qui rallonge la durée des calculs.
+
+
+
+\clearpage
+
+\subsection{Le nombre de spires}
+\begin{LTXexample}[pos=t]
+\psset{unit=0.5}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{006633}},N=1,R=2,nS=0]
+\psframe*[linecolor={[HTML]{99FF66}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{N=1}},R=2,nS=0]}
+\end{pspicture*}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{006633}},N=2,R=2,L=2,PasS=0.003,nS=2]
+\psframe*[linecolor={[HTML]{99FF66}}](-7,7)(7,8)
+\rput(0,7.5){\Cadre{\textcolor{white}{Bobines de Helmholtz}}}
+\psframe*[linecolor={[HTML]{99FF66}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{N=2}},R=2,L=2,PasS=0.003,nS=2]}
+\end{pspicture*}
+\end{LTXexample}
+
+\begin{LTXexample}[pos=t]
+\psset{unit=0.5}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{006633}},N=4,R=2,numSpires=2 3]
+\psframe*[linecolor={[HTML]{99FF66}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{N=4}},R=2,L=4]}
+\end{pspicture*}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{006633}},N=5,R=2,L=5,PasS=0.004,nS=2 3 4]
+\psframe*[linecolor={[HTML]{99FF66}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{N=5}},R=2,L=5]}
+\end{pspicture*}
+\end{LTXexample}
+
+
+\clearpage
+\section{Les options de tracé}
+\subsection{Le nombre de lignes de champ}
+En raison de la symétrie du phénomène le nombre de lignes de champ donné en option
+\Lkeyword{nL} est la moitié du nombre réellement représenté auquel il faut ajouter
+la ligne confondue avec l'axe de révolution. Il faut aussi rajouter les lignes
+autour des spires \Lkeyword{nS}, ces spires pouvant être choisies individuellement
+avec \Lkeyword{numSpires}.
+
+
+
+\begin{LTXexample}[pos=t]
+\psset{unit=0.5}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{000099}},N=1,R=2]
+\psframe*[linecolor={[HTML]{3399FF}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{nL=8}},N=1,R=2]}
+\end{pspicture*}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{000099}},N=1,R=2,nL=12]
+\psframe*[linecolor={[HTML]{3399FF}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{nL=12}},N=1,R=2]}
+\end{pspicture*}
+\end{LTXexample}
+
+\clearpage
+\subsection{Le nombre de points et le pas du tracé}
+Le tracé des lignes de champ est réalisé par une méthode numérique (RK2) et il s'ensuit
+le pas du tracé et le nombre de points choisis influent sur la précision du tracé,
+comme dans les deux exemples ci-dessous :
+
+\begin{LTXexample}[pos=t]
+\psset{unit=0.5}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{660066}},N=2,R=2,L=2,PasB=0.1,nS=0,nL=7,pointsB=100]
+\psframe*[linecolor={[HTML]{996666}}](-7,7)(7,8)
+\rput(0,7.5){\Cadre{\textcolor{white}{Bobines de Helmholtz}}}
+\psframe*[linecolor={[HTML]{996666}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{PasB=0.1,nL=4,pointsB=100}}]}
+\end{pspicture*}
+\begin{pspicture*}[showgrid](-7,-8)(7,8)
+\psmagneticfield[linecolor={[HTML]{660066}},N=2,R=2,L=2,PasB=0.4,nS=0,nL=7,pointsB=100]
+\psframe*[linecolor={[HTML]{996666}}](-7,7)(7,8)
+\rput(0,7.5){\Cadre{\textcolor{white}{Bobines de Helmholtz}}}
+\psframe*[linecolor={[HTML]{996666}}](-7,-8)(7,-7)
+\rput(0,-7.5){[\Cadre{\textcolor{white}{PasS=0.4,pointsB=100}}]}
+\end{pspicture*}
+\end{LTXexample}
+
+Si les valeurs par défaut ne conviennent pas il faut donc trouver par des
+essais les valeurs qui donnent un tracé correct.
+
+
+\clearpage
+
+\section{Le paramètre: numSpires}
+\begin{LTXexample}[pos=t,wide]
+\psset{unit=0.5}
+\begin{pspicture*}[showgrid](-8,-10)(8,10)
+\psset{linecolor=blue}
+\psmagneticfield[R=2,L=12,N=8,pointsS=500,nL=14,nS=1,numSpires=1 3 6 8,PasB=0.075]
+\psframe*[linecolor={[HTML]{99FF66}}](-8,-10)(8,-9)
+\rput(0,-9.5){[\Cadre{\textcolor{white}{numSpires=1 3 6 8}},R=2,L=14]}
+\multido{\i=0+1}{8}{\rput[l](!6 6 12 7 div \i\space mul sub){\the\multidocount}}
+\end{pspicture*}\quad
+\begin{pspicture*}[showgrid](0,-10)(16,10)
+\psset{linecolor=blue}
+\psmagneticfield[R=2,L=12,N=8,pointsS=500,nL=14,numSpires=,nS=1,PasB=0.075]
+\psframe*[linecolor={[HTML]{99FF66}}](0,-10)(16,-9)
+\rput(8,-9.5){[\Cadre{\textcolor{white}{numSpires=all}},R=2,L=14]}
+\multido{\i=0+1}{8}{\rput[l](!6 6 12 7 div \i\space mul sub){\the\multidocount}}
+\end{pspicture*}
+\end{LTXexample}
+
+
+\clearpage
+\section{The parameter \nxLkeyword{AntiHelmholtz}}
+\begin{LTXexample}[pos=t]
+\psset{unit=0.75,AntiHelmholtz,
+ R=2,pointsB=500,pointsS=2000,PasB=0.02,PasS=0.00275,nS=10,
+ nL=2,drawSelf=true,styleSpire=styleSpire,styleCourant=sensCourant}
+\newpsstyle{grille}{subgriddiv=0,gridcolor=blue!50,griddots=10}
+\newpsstyle{cadre}{linecolor=yellow!50}
+\begin{pspicture*}[showgrid](-7,-6)(7,6)
+\psframe*[linecolor={[HTML]{996666}}](-7,7)(7,8)
+\psmagneticfield[linecolor={[HTML]{660066}}]
+\end{pspicture*}
+\end{LTXexample}
+
+
+\clearpage
+\section{La vue en 3D}
+La vue en 3D utilise la commande
+
+\begin{BDef}
+\Lcs{psmagneticfield}\OptArgs\coord1\coord2\\
+\Lcs{psmagneticfieldThreeD}\OptArgs\coord1\coord2
+\end{BDef}
+
+dans laquelle les options sont les paramètres de
+\Lcs{psmagneticfield} et \verb+(x1,y1)(x2,y2)+ les coordonnées des coins
+inférieur gauche et supérieur droit du cadre dans lequel est encapsulée
+la carte du champ comme pour \Lcs{psframe}. On pourra utiliser l'option \Lkeyword{viewpoint} du
+package \LPack{pst-3d} pour modifier le point de vue.
+
+Les options du cadre sont, par défaut, les suivantes :
+\begin{verbatim}
+\newpsstyle{grille}{subgriddiv=0,gridcolor=lightgray,griddots=10}
+\newpsstyle{cadre}{linecolor=green!20}
+\end{verbatim}
+
+Ce sont donc celles-ci qu'il faudra modifier si on souhaite en changer, comme dans l'exemple ci-dessous.
+\begin{LTXexample}[pos=t]
+\psset{unit=0.7}
+\newpsstyle{grille}{subgriddiv=0,gridcolor=blue!50,griddots=10}
+\newpsstyle{cadre}{linecolor=yellow!50}
+\begin{pspicture}(-7,-6)(7,6)
+\psmagneticfieldThreeD[N=8,R=2,L=8,pointsB=1200,linecolor=blue,pointsS=2000](-7,-8)(7,8)
+\end{pspicture}
+\end{LTXexample}
+
+\begin{LTXexample}[pos=t]
+\psset{unit=0.7}
+\begin{pspicture}(-7,-6)(7,6)
+\psmagneticfieldThreeD[N=2,R=2,L=2,linecolor=blue](-7,-8)(7,8)
+\ThreeDput{\rput(0,-7){\textbf{Bobines de HELMHOLTZ}}}
+\end{pspicture}
+\end{LTXexample}
+
+\begin{LTXexample}[pos=t]
+\psset{unit=0.75cm,AntiHelmholtz,
+ R=2,pointsB=500,pointsS=2000,PasB=0.02,PasS=0.00275,nS=10,
+ nL=2,drawSelf,styleSpire=styleSpire,styleCourant=sensCourant}
+\newpsstyle{grille}{subgriddiv=0,gridcolor=blue!50,griddots=10}
+\newpsstyle{cadre}{linecolor=yellow!50}
+\begin{pspicture}(-7,-6)(7,6)
+\psmagneticfieldThreeD[linecolor={[HTML]{660066}}](-7,-6)(7,6)
+\end{pspicture}
+\end{LTXexample}
+
+
+\clearpage
+\section{List of all optional arguments for \texttt{pst-magneticfield}}
+
+\xkvview{family=pst-magneticfield,columns={key,type,default}}
+
+\nocite{*}
+\bgroup
+\raggedright
+\bibliographystyle{plain}
+\bibliography{\jobname}
+\egroup
+
+
+\printindex
+
+
+
+
+\end{document}