Analysis of a novel low-cost solar concentrator using lunar flux mapping techniques and ray-tracing models

Concentrated solar power is a growing but expensive alternative energy resource. One of the most common issues faced when it comes to solar dish design is the complex trade-off between cost and optical quality. A novel solar dish reflector setup that makes use of low-cost, commercial television s...

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Main Author: Roosendaal, Casey
Other Authors: Le Roux, Willem G.
Language:en
Published: University of Pretoria 2021
Subjects:
Online Access:http://hdl.handle.net/2263/78060
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spelling ndltd-netd.ac.za-oai-union.ndltd.org-up-oai-repository.up.ac.za-2263-780602021-11-19T05:15:48Z Analysis of a novel low-cost solar concentrator using lunar flux mapping techniques and ray-tracing models Roosendaal, Casey Le Roux, Willem G. kcroosnedaal@gmail.com Meyer, Josua P. UCTD Vacuum membrane Flux mapping Multifaceted Solar dish SolTrace Solar Energy Concentrated solar power is a growing but expensive alternative energy resource. One of the most common issues faced when it comes to solar dish design is the complex trade-off between cost and optical quality. A novel solar dish reflector setup that makes use of low-cost, commercial television satellite dishes to support aluminised plastic membranes in a multifaceted vacuum-membrane concentrator was investigated in this work. The design aims to reduce costs while maintaining high optical accuracy with the added benefit of optical adjustability. The flux distribution of the novel solar dish reflector setup had to be determined to make recommendations on the feasibility of the design. This research presents a method to determine the expected solar flux distribution from lunar tests using a Canon EOS 700D camera. Experimental tests and different pollution treatment methods were conducted using lunar flux mapping techniques. A numerical model of the experimental setup, based on photogrammetry results of the membrane surface, was also developed in SolTrace to ascertain the sources of error and allow for further design improvements. Preliminary testing proved that JPEG image formats yielded insufficient accuracy in capturing the incident flux when compared to RAW images. Based on the flux ratio maps, the intercept factor for a large multifaceted dish setup was calculated as 88.6% for an aperture size of 0.25 m × 0.25 m, with a maximum solar flux of 1 395 kW/m2 for a 1 000 W/m2 test case. Dissertation (MSc (Mechanical Engineering))--University of Pretoria, 2020. National Research Foundation (NRF) Mechanical and Aeronautical Engineering MSc (Mechanical Engineering) Unrestricted 2021-01-20T07:32:04Z 2021-01-20T07:32:04Z 2021 2020 Dissertation http://hdl.handle.net/2263/78060 * A2021 en © 2019 University of Pretoria. All rights reserved. The copyright in this work vests in the University of Pretoria. No part of this work may be reproduced or transmitted in any form or by any means, without the prior written permission of the University of Pretoria. University of Pretoria
collection NDLTD
language en
sources NDLTD
topic UCTD
Vacuum membrane
Flux mapping
Multifaceted
Solar dish
SolTrace
Solar Energy
spellingShingle UCTD
Vacuum membrane
Flux mapping
Multifaceted
Solar dish
SolTrace
Solar Energy
Roosendaal, Casey
Analysis of a novel low-cost solar concentrator using lunar flux mapping techniques and ray-tracing models
description Concentrated solar power is a growing but expensive alternative energy resource. One of the most common issues faced when it comes to solar dish design is the complex trade-off between cost and optical quality. A novel solar dish reflector setup that makes use of low-cost, commercial television satellite dishes to support aluminised plastic membranes in a multifaceted vacuum-membrane concentrator was investigated in this work. The design aims to reduce costs while maintaining high optical accuracy with the added benefit of optical adjustability. The flux distribution of the novel solar dish reflector setup had to be determined to make recommendations on the feasibility of the design. This research presents a method to determine the expected solar flux distribution from lunar tests using a Canon EOS 700D camera. Experimental tests and different pollution treatment methods were conducted using lunar flux mapping techniques. A numerical model of the experimental setup, based on photogrammetry results of the membrane surface, was also developed in SolTrace to ascertain the sources of error and allow for further design improvements. Preliminary testing proved that JPEG image formats yielded insufficient accuracy in capturing the incident flux when compared to RAW images. Based on the flux ratio maps, the intercept factor for a large multifaceted dish setup was calculated as 88.6% for an aperture size of 0.25 m × 0.25 m, with a maximum solar flux of 1 395 kW/m2 for a 1 000 W/m2 test case. === Dissertation (MSc (Mechanical Engineering))--University of Pretoria, 2020. === National Research Foundation (NRF) === Mechanical and Aeronautical Engineering === MSc (Mechanical Engineering) === Unrestricted
author2 Le Roux, Willem G.
author_facet Le Roux, Willem G.
Roosendaal, Casey
author Roosendaal, Casey
author_sort Roosendaal, Casey
title Analysis of a novel low-cost solar concentrator using lunar flux mapping techniques and ray-tracing models
title_short Analysis of a novel low-cost solar concentrator using lunar flux mapping techniques and ray-tracing models
title_full Analysis of a novel low-cost solar concentrator using lunar flux mapping techniques and ray-tracing models
title_fullStr Analysis of a novel low-cost solar concentrator using lunar flux mapping techniques and ray-tracing models
title_full_unstemmed Analysis of a novel low-cost solar concentrator using lunar flux mapping techniques and ray-tracing models
title_sort analysis of a novel low-cost solar concentrator using lunar flux mapping techniques and ray-tracing models
publisher University of Pretoria
publishDate 2021
url http://hdl.handle.net/2263/78060
work_keys_str_mv AT roosendaalcasey analysisofanovellowcostsolarconcentratorusinglunarfluxmappingtechniquesandraytracingmodels
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