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		<title>Oborn at 17:05, 28 May 2009</title>
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		<updated>2009-05-28T17:05:50Z</updated>

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				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;← Older revision&lt;/td&gt;
				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;Revision as of 17:05, 28 May 2009&lt;/td&gt;
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		<author><name>Oborn</name></author>
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		<title>Oborn at 15:42, 28 May 2009</title>
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		<updated>2009-05-28T15:42:20Z</updated>

		<summary type="html">&lt;p&gt;&lt;/p&gt;
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		<title>Oborn: New page: GiulioStancariDesign ---- &lt;pre&gt; \documentclass[10pt,letterpaper,twocolumn]{article} \usepackage{amssymb,amsmath,graphicx,mathptmx,url} \usepackage[left=1in,top=1in,right=1in,bottom=1.2...</title>
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		<updated>2009-05-26T18:44:27Z</updated>

		<summary type="html">&lt;p&gt;New page: &lt;a href=&quot;/./index.php?title=GiulioStancariDesign&quot; class=&quot;mw-redirect&quot; title=&quot;GiulioStancariDesign&quot;&gt;GiulioStancariDesign&lt;/a&gt; ---- &amp;lt;pre&amp;gt; \documentclass[10pt,letterpaper,twocolumn]{article} \usepackage{amssymb,amsmath,graphicx,mathptmx,url} \usepackage[left=1in,top=1in,right=1in,bottom=1.2...&lt;/p&gt;
&lt;p&gt;&lt;b&gt;New page&lt;/b&gt;&lt;/p&gt;&lt;div&gt;[[GiulioStancariDesign]]&lt;br /&gt;
----&lt;br /&gt;
&amp;lt;pre&amp;gt;&lt;br /&gt;
\documentclass[10pt,letterpaper,twocolumn]{article}&lt;br /&gt;
\usepackage{amssymb,amsmath,graphicx,mathptmx,url}&lt;br /&gt;
\usepackage[left=1in,top=1in,right=1in,bottom=1.25in]{geometry}&lt;br /&gt;
\setlength{\parindent}{0ex}&lt;br /&gt;
\setlength{\parskip}{0.5\baselineskip}&lt;br /&gt;
&lt;br /&gt;
\newcommand{\q}[2]{\ensuremath{#1\ \mathrm{#2}}}&lt;br /&gt;
\newcommand{\emi}{\ensuremath{\varepsilon}}&lt;br /&gt;
\newcommand{\emix}{\ensuremath{\varepsilon_x}}&lt;br /&gt;
\newcommand{\emiy}{\ensuremath{\varepsilon_y}}&lt;br /&gt;
\newcommand{\dmax}{\ensuremath{\delta_\mathrm{max}}}&lt;br /&gt;
&lt;br /&gt;
\begin{document}&lt;br /&gt;
&lt;br /&gt;
\title{Design of a new beamline for electrons, positrons and photons&lt;br /&gt;
  at the HRRL lab}&lt;br /&gt;
\author{Giulio Stancari and Tony Forest\\&lt;br /&gt;
\textit{\small Idaho State University, Department of Physics,&lt;br /&gt;
  Pocatello, Idaho 83209 U.S.A.}}&lt;br /&gt;
\date{\fbox{DRAFT}: \today}&lt;br /&gt;
\maketitle&lt;br /&gt;
&lt;br /&gt;
\section{Motivation}&lt;br /&gt;
&lt;br /&gt;
The HRRL is an S-band electron linac providing pulsed&lt;br /&gt;
beams with energies between 3~MeV and 16~MeV. The maximum repetition&lt;br /&gt;
rate is 1.2~kHz, the maximum peak current is 80~mA, and the minimum pulse&lt;br /&gt;
length is 25~ns.&lt;br /&gt;
&lt;br /&gt;
The HRRL laboratory is located in the basement of the Physical Science&lt;br /&gt;
Building. This lab consists of a shielded accelerator cell and an&lt;br /&gt;
experimental area. Currently, a $\sim$4-m beamline with a 90-degree bend&lt;br /&gt;
delivers electron and photon beams to the experimental area.&lt;br /&gt;
&lt;br /&gt;
This project has two main goals:&lt;br /&gt;
(a)~to improve the quality of electron and photon beams in the HRRL lab;&lt;br /&gt;
(b)~to build a positron source for the IAC which could serve as a&lt;br /&gt;
prototype for the CEBAF machine at Jefferson Lab~\cite{JPOS09}.&lt;br /&gt;
&lt;br /&gt;
\begin{figure*}&lt;br /&gt;
\resizebox{\textwidth}{!}{\includegraphics{HPBv1_layout}}&lt;br /&gt;
\caption{Floor plan of the proposed beamline: HRRL power supplies&lt;br /&gt;
  (PS); linac with stand (HRRL); collection quadrupole or doublet&lt;br /&gt;
  (Q0); positron production target (PT); 45-degree dipoles (D1 and&lt;br /&gt;
  D2); quadrupole triplets (QT1, QT2, and QT3); correction steerers&lt;br /&gt;
  (S1, S2, and S3); current monitor (CM); beam-position monitors&lt;br /&gt;
  (BPM); profile monitors (PM); Faraday cups (FC); secondary target (ST).}&lt;br /&gt;
\label{fig:HPBv1_layout}&lt;br /&gt;
\end{figure*}&lt;br /&gt;
&lt;br /&gt;
For this project, we envision moving the HRRL machine and building a&lt;br /&gt;
6-m beamline with two 45-degree bends (Fig.~\ref{fig:HPBv1_layout}).&lt;br /&gt;
Specifically, we want to achieve the following:&lt;br /&gt;
\begin{itemize}&lt;br /&gt;
\item measure the properties of the $e^-$ beam;&lt;br /&gt;
\item provide a test stand for positron production targets;&lt;br /&gt;
\item provide space for testing positron collection systems;&lt;br /&gt;
\item measure the properties of the outcoming $e^+$ beam;&lt;br /&gt;
\item retain the capability to deliver photon beams produced in a&lt;br /&gt;
  secondary target downstream of the second bend.&lt;br /&gt;
\end{itemize}&lt;br /&gt;
&lt;br /&gt;
The electron beam properties include intensity, position, profile, and&lt;br /&gt;
momentum distribution. The intensity will be measured with a current&lt;br /&gt;
transformer at the exit port of the HRRL cross-calibrated with a Faraday cup&lt;br /&gt;
downstream of the 0-degree port of the first bend. The beam profile&lt;br /&gt;
can be inferred from the image on a fluorescent screen placed upstream&lt;br /&gt;
of the production target. For the momentum distribution, we need to&lt;br /&gt;
provide slits in a dispersive region after the first bend and a&lt;br /&gt;
Faraday cup downstream of the 0-degree port of the second bend.&lt;br /&gt;
&lt;br /&gt;
For positron production, we would like to study tungsten foils of&lt;br /&gt;
various thicknesses, approximately between 0.1~mm and 1~mm. Enough&lt;br /&gt;
space ($\sim$50~cm) should also be provided to test high-power&lt;br /&gt;
targets: rotating radiation-cooled metal disks and, possibly in the&lt;br /&gt;
future, liquid metal targets.&lt;br /&gt;
&lt;br /&gt;
Positrons are produced with a wide spread in momentum and&lt;br /&gt;
divergence. The efficiency of the collection system is critical to&lt;br /&gt;
achieve reasonable intensities. A collection system based on&lt;br /&gt;
quadrupole triplets has been proposed and needs to be&lt;br /&gt;
tested. Alternatively, we should provide enough space ($\sim$50~cm)&lt;br /&gt;
for a DC solenoid or adiabatic matching device.&lt;br /&gt;
&lt;br /&gt;
The intensity, position, profile, and momentum distribution of the&lt;br /&gt;
positron beam can be measured with a microchannel plate placed&lt;br /&gt;
downstream of the 0-degree port of the second bend. The same slits in&lt;br /&gt;
the high-dispersion region can be used for both electrons and&lt;br /&gt;
positrons. An emittance filter should also be installed to estimate&lt;br /&gt;
the phase-space distribution of the positron beam. The background level from&lt;br /&gt;
scattered photons needs to be measured to ensure the positron beam is&lt;br /&gt;
detectable.&lt;br /&gt;
&lt;br /&gt;
\section{Design of beamline optics}&lt;br /&gt;
&lt;br /&gt;
The beamline optics is subject to several constraints. First of all,&lt;br /&gt;
the geometry of the HRRL cell, including the position of the beam&lt;br /&gt;
hole, limits the total length of the beamline to about 6~m.&lt;br /&gt;
&lt;br /&gt;
The design is based on the following optical elements, which are&lt;br /&gt;
available at the IAC:&lt;br /&gt;
\begin{itemize}&lt;br /&gt;
\item orange `kiwi' dipoles: pole gap 1~in; 45$^\circ$ bend; radius of&lt;br /&gt;
  curvature $\rho = \q{290}{mm}$;&lt;br /&gt;
\item Tesla Type 1 Quadrupoles: pole gap 1~in; physical length 100~mm; maximum&lt;br /&gt;
  gradient \q{19}{T/m};&lt;br /&gt;
\item Tesla Type 2 Quadrupoles: pole gap 2~in; physical length 150~mm; maximum&lt;br /&gt;
  gradient \q{9}{T/m}.&lt;br /&gt;
\end{itemize}&lt;br /&gt;
&lt;br /&gt;
Some dispersion is needed in the beamline for two reasons: to measure&lt;br /&gt;
the momentum distribution of electrons and positrons; and to have the&lt;br /&gt;
capability to mimick a given longitudinal admittance with slits (for&lt;br /&gt;
the CEBAF machine, $\dmax = (\Delta p / p)_\mathrm{max} = \pm 2\%$).&lt;br /&gt;
We also require a dispersion-free region ($D=0$, $D'=0$) downstream of&lt;br /&gt;
the last steerer and in the secondary target. This is useful for&lt;br /&gt;
reducing correlations between energy and position in electron,&lt;br /&gt;
positron, and photon beams sent to the experiments. These dispersion&lt;br /&gt;
requirements can be met by a double-bend achromat, which, in this&lt;br /&gt;
case, includes two 45-degree bends.&lt;br /&gt;
&lt;br /&gt;
For the electron beam, we assume a typical 10-MeV linac emittance of&lt;br /&gt;
\q{1}{\mu m} and a focus with a $3\sigma$ beam size of 3~mm at the&lt;br /&gt;
positron production target. This implies amplitude functions equal to&lt;br /&gt;
$\beta = (\q{3}{mm})^2/(\q{1}{\mu m}) = \q{9}{m}$ at the target in&lt;br /&gt;
both planes. Of course, these assumptions need to be tested&lt;br /&gt;
experimentally. We also require a focus of same size at the secondary&lt;br /&gt;
target.&lt;br /&gt;
&lt;br /&gt;
The properties of the positron source were simulated with a GEANT4&lt;br /&gt;
Monte Carlo assuming a 10-MeV electron beam on a 0.5-mm tungsten&lt;br /&gt;
target~\cite{GEANT4}. The momentum distribution of positrons peaks at&lt;br /&gt;
1.7~MeV and it is relatively flat within $\pm \q{0.2}{MeV}$. We choose&lt;br /&gt;
1.7~MeV as the design momentum for the beamline.&lt;br /&gt;
&lt;br /&gt;
The spatial distribution of the outcoming positron beam is only&lt;br /&gt;
slightly wider than that of electrons. For this design, we assume a&lt;br /&gt;
focus (i.e., no correlation between positions and momenta) with&lt;br /&gt;
$3\sigma$ beam size of 4~mm.&lt;br /&gt;
&lt;br /&gt;
For calculating transverse admittances, we assume the beamline&lt;br /&gt;
elements, including the vacuum pipe, have a half aperture of 12~mm.&lt;br /&gt;
We need a beamline admittance (which will be filled by the positrons)&lt;br /&gt;
larger than the CEBAF admittance \q{1}{\mu m}. We choose to aim at an&lt;br /&gt;
admittance $A = \q{10}{\mu m}$, which can then be restricted with&lt;br /&gt;
slits to mimick the CEBAF admittance.&lt;br /&gt;
&lt;br /&gt;
In practice, to take both transverse and longitudinal constraints into&lt;br /&gt;
account, we require the maximum beam size in both planes to be smaller&lt;br /&gt;
than the half aperture~$a$ of the beamline:&lt;br /&gt;
\[ \sqrt{\beta A + \left(D \dmax \right)^2} &amp;lt; a. \]&lt;br /&gt;
&lt;br /&gt;
The positions of the correction steerers S2 and S3 are chosen so that the phase advance between the two is approximately 90$^\circ$.&lt;br /&gt;
&lt;br /&gt;
%Constraints on collection triplet?&lt;br /&gt;
&lt;br /&gt;
The beamline optics was designed using the MAD program.&lt;br /&gt;
&lt;br /&gt;
%\subsection{Electron beamline}&lt;br /&gt;
&lt;br /&gt;
%Partial beamlines for diagnostics?&lt;br /&gt;
&lt;br /&gt;
%\subsection{Positron beamline}&lt;br /&gt;
&lt;br /&gt;
\begin{figure*}&lt;br /&gt;
\resizebox{\textwidth}{!}{\includegraphics[angle=-90]{HPBv2_CoSn}}&lt;br /&gt;
\caption{Amplitude functions (left axis) and horizontal dispersion (right axis) in m.}&lt;br /&gt;
\label{fig:HPB_CoSn}&lt;br /&gt;
\end{figure*}&lt;br /&gt;
&lt;br /&gt;
\begin{figure*}&lt;br /&gt;
\resizebox{0.95\textwidth}{!}{\includegraphics[angle=-90]{HPBv2_phase}}&lt;br /&gt;
\caption{Phase advances in $\mathrm{rad}/(2\pi)$.}&lt;br /&gt;
\label{fig:HPB_phase}&lt;br /&gt;
\end{figure*}&lt;br /&gt;
&lt;br /&gt;
\begin{figure*}&lt;br /&gt;
\resizebox{0.95\textwidth}{!}{\includegraphics[angle=-90]{HPBv2_prof}}&lt;br /&gt;
\caption{Beam profiles for $\emix = \emiy = \q{10}{\mu m}$. Horizontal profiles are shown for both design momentum (black, solid) and for a momentum spread $\Delta p / p = 2\%$ (green, dotted).}&lt;br /&gt;
\label{fig:HPB_prof}&lt;br /&gt;
\end{figure*}&lt;br /&gt;
&lt;br /&gt;
\begin{table}&lt;br /&gt;
\begin{center}&lt;br /&gt;
\begin{tabular}{ccc}&lt;br /&gt;
Triplet &amp;amp; Element &amp;amp; Strength (T/m) \\&lt;br /&gt;
\hline&lt;br /&gt;
QT1 &amp;amp; Q1 &amp;amp; $+0.214$ \\&lt;br /&gt;
    &amp;amp; Q2 &amp;amp; $-0.059$ \\&lt;br /&gt;
    &amp;amp; Q3 &amp;amp; $-0.102$ \\&lt;br /&gt;
\hline&lt;br /&gt;
QT2 &amp;amp; Q4 &amp;amp; $+0.181$ \\&lt;br /&gt;
    &amp;amp; Q5 &amp;amp; $-0.204$ \\&lt;br /&gt;
    &amp;amp; Q6 &amp;amp; $+0.195$ \\&lt;br /&gt;
\hline&lt;br /&gt;
QT3 &amp;amp; Q7 &amp;amp; $-0.030$ \\&lt;br /&gt;
    &amp;amp; Q8 &amp;amp; $-0.073$ \\&lt;br /&gt;
    &amp;amp; Q9 &amp;amp; $+0.078$ \\&lt;br /&gt;
\end{tabular}&lt;br /&gt;
\end{center}&lt;br /&gt;
\caption{Quadrupole settings for positrons at \q{1.7}{MeV/c}.}&lt;br /&gt;
\label{tab:settings}&lt;br /&gt;
\end{table}&lt;br /&gt;
&lt;br /&gt;
Optics for the positron beamline is shown in Figs.~\ref{fig:HPB_CoSn} and~\ref{fig:HPB_phase}. The horizontal and vertical amplitude functions are plotted together with the horizontal dispersion function. Beam profiles are shown in Fig.~\ref{fig:HPB_prof}. The settings for the 3 triplets (9 quadrupoles total) can be found in Table~\ref{tab:settings}.&lt;br /&gt;
&lt;br /&gt;
%Doublets sufficient?&lt;br /&gt;
&lt;br /&gt;
%Partial beamlines for diagnostics?&lt;br /&gt;
&lt;br /&gt;
\section{Diagnostics}&lt;br /&gt;
&lt;br /&gt;
\begin{table*}&lt;br /&gt;
\begin{center}&lt;br /&gt;
\begin{tabular}{llll}&lt;br /&gt;
Component &amp;amp; Model &amp;amp; Features &amp;amp; Approx. unit price \\&lt;br /&gt;
\hline&lt;br /&gt;
Fast current transformer &amp;amp; Bergoz FCT-028 &amp;amp; inner diam. 28-mm &amp;amp; \$2,000 \\&lt;br /&gt;
Faraday cup &amp;amp; Radiabeam FARC-02-300 &amp;amp; &amp;amp; \$1,295 \\&lt;br /&gt;
Emittance slits &amp;amp; Radiabeam EMTS-\#\#-\#\#\# &amp;amp; custom &amp;amp; \\&lt;br /&gt;
Integrated transverse diagnostics &amp;amp; Radiabeam IBIS-02-VAC-OPT &amp;amp; YAG:Ce &amp;amp; \\&lt;br /&gt;
Beam position monitors &amp;amp; Bergoz &amp;amp; S-band &amp;amp; \$10,000 (w/readout) \\&lt;br /&gt;
X-Y Steerers &amp;amp; Radiabeam STM-02-340-110 &amp;amp; length 30~mm &amp;amp; \$1,250 \\&lt;br /&gt;
Microchannel plates &amp;amp; Hamamatsu &amp;amp; &amp;amp; \$3,000 (w/ pow. supply) \\&lt;br /&gt;
\end{tabular}&lt;br /&gt;
\end{center}&lt;br /&gt;
\caption{Diagnostic components.}&lt;br /&gt;
\label{tab:diag}&lt;br /&gt;
\end{table*}&lt;br /&gt;
&lt;br /&gt;
Some diagnostic components will need to be acquired.&lt;br /&gt;
A possible set of choices is shown in Table~\ref{tab:diag}.&lt;br /&gt;
&lt;br /&gt;
\begin{thebibliography}{9}&lt;br /&gt;
\bibitem{JPOS09} International Workshop on Positrons at Jefferson Lab&lt;br /&gt;
  (JPOS09), Newport News, Virginia, 25--27 March 2009,&lt;br /&gt;
  \url{&amp;lt;http://conferences.jlab.org/JPOS09&amp;gt;}.&lt;br /&gt;
&lt;br /&gt;
\bibitem{GEANT4} S.~Golge et al., Simulation of a CW Positron Source&lt;br /&gt;
  for CEBAF, Proceedings of PAC07, p.~3133,&lt;br /&gt;
  \url{&amp;lt;http://www.jacow.org&amp;gt;}; J.~Dumas, Design of a High Intensity&lt;br /&gt;
  Positron Source, Internship Report, LPSC Grenoble, June 2007;&lt;br /&gt;
  M.~Stancari, private communication.&lt;br /&gt;
\end{thebibliography}&lt;br /&gt;
&lt;br /&gt;
\end{document}&lt;br /&gt;
&amp;lt;/pre&amp;gt;&lt;/div&gt;</summary>
		<author><name>Oborn</name></author>
	</entry>
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