Simulating heat generation in the monoblock laser using finite element analysis

Under photonic pumping Nd:YAG (Neodymium Yttrium Aluminum Garnet) generates a significant amount of heat as a result of quantum deficit and non-radiative absorption sites, this excess heat results in thermal deformation and a shift in the index of refraction of Nd:YAG causing a net change in Optical...

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Main Author: Anderson, Aaron Paul
Language:en
Published: 2011
Online Access:http://etd.lib.montana.edu/etd/2011/anderson/AndersonA0811.pdf
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spelling ndltd-MONTSTATE-http---etd.lib.montana.edu-etd-2011-anderson-AndersonA0811.pdf2011-10-14T14:02:41Z Simulating heat generation in the monoblock laser using finite element analysis Anderson, Aaron Paul Under photonic pumping Nd:YAG (Neodymium Yttrium Aluminum Garnet) generates a significant amount of heat as a result of quantum deficit and non-radiative absorption sites, this excess heat results in thermal deformation and a shift in the index of refraction of Nd:YAG causing a net change in Optical Path Length (OPL). Finite Element Analysis (FEA) techniques provide a powerful approach for digital design and analysis of complex thermo-mechanical systems; unfortunately, finite element software packages do not use light as a traditional loading mechanism nor track optical properties. This research has sought to establish a methodology to interface thermal loading as a result of photonic conversion with traditional FEA practices and track the resulting optical effects. The ABAQUS software package interfaced with a python driven input procedure has been used to develop a representation of photonic loading in the FEA environment. This modeling method has been calibrated utilizing interferometry imaging of a pulsed Nd:YAG system tracking the resultant OPL and comparing these results to FEA predictions. FEA predictions were developed that matched experimental measurements within 0.5 waves at the 1064nm laser line for Nd:YAG. 2011-08-15 Thesis Montana State University en http://etd.lib.montana.edu/etd/2011/anderson/AndersonA0811.pdf
collection NDLTD
language en
sources NDLTD
description Under photonic pumping Nd:YAG (Neodymium Yttrium Aluminum Garnet) generates a significant amount of heat as a result of quantum deficit and non-radiative absorption sites, this excess heat results in thermal deformation and a shift in the index of refraction of Nd:YAG causing a net change in Optical Path Length (OPL). Finite Element Analysis (FEA) techniques provide a powerful approach for digital design and analysis of complex thermo-mechanical systems; unfortunately, finite element software packages do not use light as a traditional loading mechanism nor track optical properties. This research has sought to establish a methodology to interface thermal loading as a result of photonic conversion with traditional FEA practices and track the resulting optical effects. The ABAQUS software package interfaced with a python driven input procedure has been used to develop a representation of photonic loading in the FEA environment. This modeling method has been calibrated utilizing interferometry imaging of a pulsed Nd:YAG system tracking the resultant OPL and comparing these results to FEA predictions. FEA predictions were developed that matched experimental measurements within 0.5 waves at the 1064nm laser line for Nd:YAG.
author Anderson, Aaron Paul
spellingShingle Anderson, Aaron Paul
Simulating heat generation in the monoblock laser using finite element analysis
author_facet Anderson, Aaron Paul
author_sort Anderson, Aaron Paul
title Simulating heat generation in the monoblock laser using finite element analysis
title_short Simulating heat generation in the monoblock laser using finite element analysis
title_full Simulating heat generation in the monoblock laser using finite element analysis
title_fullStr Simulating heat generation in the monoblock laser using finite element analysis
title_full_unstemmed Simulating heat generation in the monoblock laser using finite element analysis
title_sort simulating heat generation in the monoblock laser using finite element analysis
publishDate 2011
url http://etd.lib.montana.edu/etd/2011/anderson/AndersonA0811.pdf
work_keys_str_mv AT andersonaaronpaul simulatingheatgenerationinthemonoblocklaserusingfiniteelementanalysis
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