Details

Title

Design and evaluation of solar parabolic trough collector system integrated with conventional oil boiler

Journal title

Archives of Electrical Engineering

Yearbook

2021

Volume

vol. 70

Issue

No 3

Affiliation

Taha, Mustefa Jibril : Control Engineering, Dire Dawa University, Ethiopia ; Kibret, Fiseha Bogale : Sustainable Energy Engineering, Kombolcha Institue of Technology (KIoT), Wollo University, P.O.Box 208, Kombolcha, Ethiopia ; Ramayya, Venkata : Sustainable Energy Engineering, Jimma Institue of Technology (JiT), Jimma University, Ethiopia ; Zeru, Balewgize Amare : Thermal Engineering, Jimma Institue of Technology (JiT), Jimma University, Ethiopia

Authors

Keywords

conventional oil boiler ; energy ; solar parabolic trough

Divisions of PAS

Nauki Techniczne

Coverage

657-673

Publisher

Polish Academy of Sciences

Bibliography

[1] Sharew Anteneh, Solar Energy Assessment in Ethiopia: Modelling and Measurement, Addis Ababa, Ethiopia, vol. 12, iss. 4, pp. 135–145 (2007).
[2] Mekuannint Mesfin, Modelling, Simulation and Performance Evaluation of Parabolic Trough Solar Collector Power Generation System, Addis Ababa University, vol. 12, iss. 4, pp. 65–75 (2009).
[3] Robert A., Parabolic Trough Solar Technology, Encyclopedia of Sustainability Science and Technology, Meyers (ed.) (2012), DOI: 10.1007/978-1-4419-0851-3.
[4] Derese T. Nega, Getachew S. Tibba et al., Software Development for Design, Simulation and Sizing of Parabolic Trough Solar Thermal Power Plant (EthioSolA), Proceedings of the IEEE (2015).
[5] Yahusa I., Rufai Y.A., Tanimu L., Design Construction and Testing of Parabolic Solar Oven, vol. 12, iss. 4 (2016), DOI: 10.4172/2168-9873.1000212.
[6] Alhassan Salami Tijani, Ashraf M.S., Bin Roslan, Simulation Analysis of Thermal Losses of Parabolic trough Solar Collector in Malaysia Using Computational Fluid Dynamics, Procedia Technology 15, pp. 842–849 (2014).
[7] Caiyan Qin, Joong Bae Kim et al., Comparative Analysis of Direct-Absorption Parabolic-Trough Solar Collectors Considering Concentric Nanofluid Segmentation, vol. 44, iss. 5, pp. 4015–4025 (2020), DOI: 10.1002/Er.5165.
[8] Zhiyong Wu, Shidong Li et al., Three-dimensional numerical study of heat transfer characteristics of parabolic trough receiver, Applied Energy, vol. 113, pp. 902–911 (2014).
[9] Hachicha A.A., Rodríguez I., Capdevila R., Oliva A., Heat transfer analysis and numerical simulation of a parabolic trough solar collector, Applied Energy, vol. 111, pp. 581–592 (2013).
[10] Bellos E., Tzivanidis C., Antonopoulos K.A., A Detailed Working Fluid Investigation for Solar Parabolic Trough Collectors, Applied Thermal Engineering, vol. 114, pp. 374–386 (2017).
[11] Badreddine El Ghazzani, Diego Martinez Plaza et al., Thermal Plant Based on Parabolic Trough Collectors for Industrial Process Heat Generation in Morocco, Renewable Energy, vol. 113, pp. 1261–1275 (2017).
[12] Dagim Kebede, Design and analysis of solar thermal system for hot water supply to Minilk hospital new building, Addis Ababa University, vol. 8, iss. 1, pp. 5–14 (2016).
[13] Environmental and Energy Study Institute (EESI), Solar Thermal Energy for Industrial Uses (2011).
[14] El Jai M-C., Chalqi F-Z., A Modified Model for Parabolic Trough Solar Receiver, American Journal of Engineering Research (AJER), e-ISSN: 2320-0847 p ISSN: 2320-0936, vol. 2, iss. 5, pp. 200–211 (2019).
[15] Mutlak F.A.A., Baha T. Chiad, Naseer K. Kasim, Design and Fabrication of Parabolic Trough Solar Collector for Thermal Energy Applications, Republic of Iraq Ministry of Higher Education and Scientific Research University of Baghdad College of Science, vol. 2, iss. 1, pp. 165–175 (2011).
[16] https://www.nationsonline.org/oneworld/map/google_map_ethiopia.htm, accessed 20/11/2018.
[17] Michael Geyer, Eckhard Lüpfert et al., EUROTROUGH Parabolic Trough Collector Developed for Cost Efficient Solar Power Generation, https://www.researchgate.net/publication/282858870 (2015).
[18] Michael Geyer, Eckhard Lupfert et al., EUROTROUGH Parabolic Trough Collector Developed for Cost Efficient Solar Power Generation, 11th SolarPACES International Symposium on Concentrated Solar Power and Chemical Energy Technologies (2002).
[19] Lourdes A. Barcia, Rogelio Peon Menendez et al., Dynamic Modelling of the Solar Field in Parabolic Trough Solar Power Plants, Energies Published; eISSN 1996-1073, vol. 8, no. 12, pp. 13361–13377 (2015).
[20] Holman J.P., Heat Transfer Tenth Edition, Department of Mechanical Engineering Southern Methodist University (eBook) (2010).
[21] Christos Tzivanidis, Evangelos Bellos, The use of parabolic trough collectors for solar cooling – A case study for Athens climate, Case Studies in Thermal Engineering, vol. 8, pp. 403–413 (2016).
[22] Allouhi A., Benzakour Amine M., Kousksou T., Jamil A., Lahrech K., Yearly performance of lowenthalpy parabolic trough collectors in MENA region according to different sun-tracking strategies, Applied Thermal Engineering, vol. 128, pp. 1404–1419 (2018).
[23] Addisu Bekele, Large Scale Application of Solar Water Heating System in Ethiopia, Addis Ababa University (2007).
[24] Yidnekachew Messele, Thermal Analysis, Design and Experimental Investigation of Parabolic Trough Solar Collector, Addis Ababa University (2012).
[25] Duffie J.A., Beckman W.A., Solar Engineering of Thermal Processes, 4th Edition, ISBN: 978-0-470- 87366-3 (2013).
[26] Abhishek Saxena, Ghanshyam Srivastava, Potential and Economics of Solar Water Heating, MIT International Journal of Mechanical Engineering, vol. 2, no. 2, pp. 97–104 (2012).
[27] Dejen Assefa, Techno-Economic Assessment of Parabolic Trough Steam Generation for Hospital, Addis Ababa University, vol. 9, iss. 2, pp. 35–39 (2011).

Date

2021.08.18

Type

Article

Identifier

DOI: 10.24425/aee.2021.137580
×