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Sphinx: a massively multiplexed fiber positioner for MSE
by
Waller, Lew
, Smedley, Scott
, Brown, Rebecca
, Sheinis, Andrew
, Baker, Gabriella
, Gillingham, Peter
, Gilbert, James
, Saunders, Will
, Venkatesan, Sudharshan
in
Impact analysis
/ Metrology
/ Prototype tests
2018
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Do you wish to request the book?
Sphinx: a massively multiplexed fiber positioner for MSE
by
Waller, Lew
, Smedley, Scott
, Brown, Rebecca
, Sheinis, Andrew
, Baker, Gabriella
, Gillingham, Peter
, Gilbert, James
, Saunders, Will
, Venkatesan, Sudharshan
in
Impact analysis
/ Metrology
/ Prototype tests
2018
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Paper
Sphinx: a massively multiplexed fiber positioner for MSE
2018
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Overview
In this paper we present the Australian Astronomical Observatory's concept design for Sphinx - a fiber positioned with 4332 spines on a 7.77mm pitch for CFHT's Mauna Kea Spectroscopic Explorer (MSE) Telescope. Based on the Echidna technology used with FMOS (on Subaru) and 4MOST (on VISTA), the next evolution of the tilting spine design delivers improved performance and superior allocation efficiency. Several prototypes have been constructed that demonstrate the suitability of the new design for MSE. Results of prototype testing are presented, along with an analysis of the impact of tilting spines on the overall survey efficiency. The Sphinx fiber positioned utilizes a novel metrology system for spine position feedback. The metrology design and the careful considerations required to achieve reliable, high accuracy measurements of all fibres in a realistic telescope environment are also presented.
Publisher
Cornell University Library, arXiv.org
Subject
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