The absorber tube of the parabolic trough receives the concentrated sun-rays only on the portion facing the reflector. It leads to nonuniformity in the temperature of absorber tube. Thus, the material of tube expands differentially and the tube experiences compression and tension in its different parts. It leads to bending of the tube and the glass cover can be broken. The bending can be reduced by (i) reducing the circumferential nonuniformity in absorber's temperature (using material of high thermal conductivity) and (ii) reducing the nonuniformity in solar flux distribution (using appropriate rim angle of trough). In most of the available studies, Monte Carlo Ray Tracing software has been used to calculate the distribution of solar flux and few studies have used analytical approach. In the present work, an explicit analytical expression is derived for finding the distribution of solar flux accounting for the sun-shape and optical errors. Using it, the design calculations can be carried out in significantly lesser time and lesser computational effort. The explicit expression is also useful in validating the results computed by softwares. The methodology has been verified with the already reported results. The effects of optical errors, rim angle, and aperture width of trough on the solar flux distribution and total flux availability for absorber tube have also been studied. From the calculations, it is found that for Schott 2008 PTR70 receiver (absorber tube with 70 mm outer diameter), 126 deg, 135 deg, and 139 deg, respectively, are the appropriate rim angles corresponding to minimum circumferential nonuniformity in solar flux distribution for 3 m, 6 m, and 9 m aperture width of trough. However, 72 deg, 100 deg, and 112 deg, respectively, are the appropriate rim angles corresponding to the maximum solar flux at absorber tube for 3 m, 6 m, and 9 m aperture width of trough. Considering both the circumferential nonuniformity and the total solar flux availability, 100 deg, 120 deg, and 130 deg, respectively, are the best rim angles.
Skip Nav Destination
Article navigation
February 2016
Research-Article
Explicit Analytical Expression for Solar Flux Distribution on an Undeflected Absorber Tube of Parabolic Trough Concentrator Considering Sun-Shape and Optical Errors
Sourav Khanna,
Sourav Khanna
Department of Energy Science and Engineering,
Indian Institute of Technology Bombay,
Powai, Mumbai 400076, India
e-mail: sourav.khanna1@gmail.com
Indian Institute of Technology Bombay,
Powai, Mumbai 400076, India
e-mail: sourav.khanna1@gmail.com
Search for other works by this author on:
Vashi Sharma
Vashi Sharma
Centre for Energy and Environment,
Malaviya National Institute of Technology,
J.L.N. Marg,
Jaipur 302017, India
Malaviya National Institute of Technology,
J.L.N. Marg,
Jaipur 302017, India
Search for other works by this author on:
Sourav Khanna
Department of Energy Science and Engineering,
Indian Institute of Technology Bombay,
Powai, Mumbai 400076, India
e-mail: sourav.khanna1@gmail.com
Indian Institute of Technology Bombay,
Powai, Mumbai 400076, India
e-mail: sourav.khanna1@gmail.com
Vashi Sharma
Centre for Energy and Environment,
Malaviya National Institute of Technology,
J.L.N. Marg,
Jaipur 302017, India
Malaviya National Institute of Technology,
J.L.N. Marg,
Jaipur 302017, India
1Corresponding author.
Contributed by the Solar Energy Division of ASME for publication in the JOURNAL OF SOLAR ENERGY ENGINEERING: INCLUDING WIND ENERGY AND BUILDING ENERGY CONSERVATION. Manuscript received July 13, 2015; final manuscript received November 22, 2015; published online December 22, 2015. Assoc. Editor: Dr. Akiba Segal.
J. Sol. Energy Eng. Feb 2016, 138(1): 011010 (10 pages)
Published Online: December 22, 2015
Article history
Received:
July 13, 2015
Revised:
November 22, 2015
Citation
Khanna, S., and Sharma, V. (December 22, 2015). "Explicit Analytical Expression for Solar Flux Distribution on an Undeflected Absorber Tube of Parabolic Trough Concentrator Considering Sun-Shape and Optical Errors." ASME. J. Sol. Energy Eng. February 2016; 138(1): 011010. https://doi.org/10.1115/1.4032122
Download citation file:
Get Email Alerts
Performance of Modified Conical Solar Still Integrated With Continuous Volume Flowrate
J. Sol. Energy Eng (February 2024)
Nonimaging Behavior of Circular Trough Concentrators With Tubular Receivers
J. Sol. Energy Eng (February 2024)
In Memoriam: Professor Essam E. Khalil —A Tribute to An Outstanding Educator and Researcher
J. Sol. Energy Eng (August 2023)
Related Articles
Parametric Trough Solar Collector With Commercial Evacuated Receiver: Performance Comparison at Plant Level
J. Sol. Energy Eng (August,2017)
Optical Analysis of a Two Stage XX Simultaneous Multiple Surface Concentrator for Parametric Trough Primary and Flat Absorber With Application in Direct Steam Generation Solar Thermal Plants
J. Sol. Energy Eng (April,2016)
Numerical Study and Optimization of Parabolic Trough Solar Collector Receiver Tube
J. Sol. Energy Eng (October,2015)
Effects of Receiver Misalignment on the Intercept Factor of Parabolic Trough Collectors
J. Sol. Energy Eng (April,2022)
Related Proceedings Papers
Related Chapters
Modeling and Thermal Performance Investigation of Parabolic trough Receiver
Inaugural US-EU-China Thermophysics Conference-Renewable Energy 2009 (UECTC 2009 Proceedings)
Experimental Investigation and Analysis on a Parabolic trough Solar Collector Using Triangle Cavity Receiver
Inaugural US-EU-China Thermophysics Conference-Renewable Energy 2009 (UECTC 2009 Proceedings)
A Study of the Influence of Facial Landmark Mislocalization on Automatic Age Estimation System
International Conference on Software Technology and Engineering, 3rd (ICSTE 2011)