journal article Apr 01, 2024

Design and development of a novel and cost effective modified Compound parabolic trough collector

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References
42
[1]
Maka "Solar energy technology and its roles in sustainable development" Clean Energy (2022) 10.1093/ce/zkac023
[2]
Jadhav "Performance analysis of a novel and cost effective CPC system" Energy Convers Manag (2013) 10.1016/j.enconman.2012.09.030
[3]
“2.5 CPC Collectors - Concentration of Diffuse Radiation | EME 812: Utility Solar Power and Concentration.” Accessed: Dec. 26, 2023. [Online]. Available: https://www.e-education.psu.edu/eme812/node/558.
[4]
“Solar Heat for Industrial Processes.” [Online]. Available: https://www.irena.org/publications/2015/Jan/Solar-Heat-for-Industrial-Processes.
[5]
Integration of Solar Process Heat in Industries: A Review

Nahin Tasmin, Shahjadi Hisan Farjana, Md Rashed Hossain et al.

Clean Technologies 2022 10.3390/cleantechnol4010008
[7]
dpicampaigns, “Take Action for the Sustainable Development Goals,” United Nations Sustainable Development. Accessed: Oct. 31, 2023. [Online]. Available: https://www.un.org/sustainabledevelopment/sustainable-development-goals/.
[8]
Kessentini "Numerical and experimental study of an integrated solar collector with CPC reflectors" Renew Energy (2013) 10.1016/j.renene.2013.02.015
[9]
Carvalho "Truncation of CPC solar collectors and its effect on energy collection" Sol Energy (1985) 10.1016/0038-092x(85)90127-6
[10]
Devanarayanan "Integrated collector storage solar water heater with compound parabolic concentrator – development and progress" Renew Sustain Energy Rev (2014) 10.1016/j.rser.2014.07.076
[11]
D. Y. Goswami, Advances in Solar Energy: Volume 17. [Online]. Available: https://doi.org/10.4324/9781315793221. 10.4324/9781315793221
[12]
Sharma "Solar industrial process heating: a review" Renew Sustain Energy Rev (2017) 10.1016/j.rser.2017.04.079
[13]
Elsheikh "Water distillation tower: experimental investigation, economic assessment, and performance prediction using optimized machine-learning model" J. Clean. Prod (2023) 10.1016/j.jclepro.2023.135896
[14]
Elsheikh "Augmentation and evaluation of solar still performance: a comprehensive review" Desalination (2024) 10.1016/j.desal.2023.117239
[15]
Abd Elaziz "Machine learning-aided modeling for predicting freshwater production of a membrane desalination system: a long-short-term memory coupled with election-based optimizer" Alex Eng J (2024) 10.1016/j.aej.2023.12.012
[16]
Banoqitah "Enhancement and prediction of a stepped solar still productivity integrated with paraffin wax enriched with nano-additives" Case Stud Therm Eng (2023) 10.1016/j.csite.2023.103215
[17]
Ghandourah "Performance prediction of aluminum and polycarbonate solar stills with air cavity using an optimized neural network model by golden jackal optimizer" Case Stud Therm Eng (2023) 10.1016/j.csite.2023.103055
[18]
Elsheikh "Low-cost bilayered structure for improving the performance of solar stills: performance/cost analysis and water yield prediction using machine learning" Sustain Energy Technol Assess (2022)
[19]
Elsheikh "Applications of heat exchanger in solar desalination: current issues and future challenges" Water (2022) 10.3390/w14060852
[20]
Winston "Principles of solar concentrators of a novel design" Sol Energy (1974) 10.1016/0038-092x(74)90004-8
[21]
Winston "Principles of cylindrical concentrators for solar energy" Sol Energy (1975) 10.1016/0038-092x(75)90007-9
[22]
Rabl "Optical and thermal properties of compound parabolic concentrators" Sol Energy (1976) 10.1016/0038-092x(76)90069-4
[23]
Rabl "Practical design considerations for CPC solar collectors" Sol Energy (1979) 10.1016/0038-092x(79)90192-0
[24]
McIntire "Truncation of nonimaging cusp concentrators" Sol Energy (1979) 10.1016/0038-092x(79)90130-0
[25]
McIntire "New reflector design which avoids losses through gaps between tubular absorbers and reflectors" Sol Energy (1980) 10.1016/0038-092x(80)90326-6
[26]
Wang "Optical analysis of solar collector with new V-shaped CPC" Sol Energy (2016) 10.1016/j.solener.2016.06.019
[27]
Khonkar "Optimization of the tubular absorber using a compound parabolic concentrator" Renew Energy (1995) 10.1016/0960-1481(94)00061-a
[28]
Oommen "Development and performance analysis of compound parabolic solar concentrators with reduced gap losses ± oversized re¯ector" Energy Convers Manag (2001) 10.1016/s0196-8904(00)00113-8
[29]
Oommen "Development and performance analysis of compound parabolic solar concentrators with reduced gap losses—‘V’ groove reflector" Renew Energy (2002) 10.1016/s0960-1481(01)00185-9
[30]
Baig MN, Durrani AK, Tariq A, CPC-Trough—COmpound Parabolic Collector for Cost Efficient Low Temperature Applications in Proceedings of ISES World Congress 2007 Vol. I – Vol. V D. Y. Goswami and Y. Zhao, editors Berlin, Heidelberg: Springer Berlin Heidelberg 2008 pp. 603–7. 10.1007/978-3-540-75997-3_111. 10.1007/978-3-540-75997-3_111
[31]
Buttinger "Development of a new flat stationary evacuated CPC-collector for process heat applications" Sol Energy (2010) 10.1016/j.solener.2010.03.022
[32]
Lara "Design, optimization and comparative study of a solar CPC with a fully illuminated tubular receiver and a fin inverted V-shaped receiver" Appl Therm Eng (2021) 10.1016/j.applthermaleng.2020.116141
[33]
Wang "High temperature collecting performance of a new all-glass evacuated tubular solar air heater with U-shaped tube heat exchanger" Energy Convers Manag (2014) 10.1016/j.enconman.2013.08.019
[34]
Zhu "Thermal performance of a new CPC solar air collector with flat micro-heat pipe arrays" Appl Therm Eng (2016) 10.1016/j.applthermaleng.2016.01.033
[35]
Korres "Investigation of a nanofluid-based compound parabolic trough solar collector under laminar flow conditions" Appl Therm Eng (2019) 10.1016/j.applthermaleng.2018.12.077
[36]
Elsheikh "Applications of nanofluids in solar energy: a review of recent advances" Renew Sustain Energy Rev (2018) 10.1016/j.rser.2017.10.108
[37]
Korres "A novel asymmetric compound parabolic collector under experimental and numerical investigation" Renew Energy (2022) 10.1016/j.renene.2022.08.030
[38]
Korres "Integration of a linear cavity receiver in an asymmetric compound parabolic collector" Energies (2022) 10.3390/en15228635
[39]
Xu "Photo-thermal design and analysis of a novel CPC coupled solar air evacuated tube collector" Appl Therm Eng (2023) 10.1016/j.applthermaleng.2023.120541
[40]
Bellos "Investigation of a compound parabolic collector with a flat glazing" Sustainability (2023) 10.3390/su15054347
[41]
Gharat "Harvest of the sun: a cost effective solar thermal technology to simultaneously provide affordable energy and generate mass employment in developing sun-belt regions" J Adv Manuf Process (2023) 10.1002/amp2.10157
[42]
Panda "Cost effective non-evacuated receiver for line-concentrating solar collectors characterized by experimentally validated computational fluid dynamics model" Can J Chem Eng (2022) 10.1002/cjce.24499
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Published
Apr 01, 2024
Vol/Issue
306
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118285
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Durgesh Kumar, Punit V. Gharat, Vishwanath H. Dalvi, et al. (2024). Design and development of a novel and cost effective modified Compound parabolic trough collector. Energy Conversion and Management, 306, 118285. https://doi.org/10.1016/j.enconman.2024.118285
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