SIZING A PARABOLIC TROUGH COLLECTOR FOR A MICRO SOLAR ORGANIC RANKINE CYCLE

Authors

  • Choi Yun Chai Department of Mechanical Engineering, Faculty of Engineering and Science, Curtin University Sarawak, CDT 250, 98009 Miri Sarawak, Malaysia
  • Hyung-chul Jung Department of Mechanical Engineering, Faculty of Engineering and Science, Curtin University Sarawak, CDT 250, 98009 Miri Sarawak, Malaysia

DOI:

https://doi.org/10.11113/jt.v81.12304

Keywords:

Parabolic trough solar collector, solar organic Rankine cycle, heat collector element, modeling, working fluid

Abstract

There are many remote villages in Malaysia that are not connected to an electric grid, and are dependent on expensive diesel generator sets (gensets) in   their daily activities. Malaysia, a tropical country, has the potential to promote solar power generation in these isolated areas. The organic Rankine cycle (ORC) using solar thermal energy as the heat source could be an attractive approach to off-grid power generation. In this study, a 1 kWe solar ORC with a parabolic trough collector (PTC) is proposed. The ORC utilizes R245fa as the working fluid and Therminol VP1 as the heat transfer medium between the PTC and ORC. Thermodynamic analysis of the ORC is performed, predicting the performance of the ORC and the operating conditions of the PTC. Based on the design requirements of the PTC from the power cycle analysis, process of sizing the PTC is conducted via a numerical model. Seven sets of heat collector elements (HCE) are examined. The effects of absorber tube material, selective coating on the outer surface of the absorber tube, and the absorber tube diameter on the PTC performance are presented. Simulation results show that HCE with 6 mm of SS316L absorber tube, enclosed with 11 mm of Pyrex borosilicate glass tube, has the highest collector efficiency of 62.25%. The receiver length required is 8.05 m and the aperture width of the collector is 3.54 m. Further study is recommended to select a thermal storage system for night-time operation of the ORC.

Author Biography

  • Hyung-chul Jung, Department of Mechanical Engineering, Faculty of Engineering and Science, Curtin University Sarawak, CDT 250, 98009 Miri Sarawak, Malaysia
    Hyung-chul Jung is a lecturer at Curtin University Sarawak Malaysia (jung.hc@curtin.edu.my). He holds a B.ME from Chonbuk National University, South Korea and a Ph.D. in mechanical engineering from the University of Canterbury, New Zealand. His background includes modeling & design of energy systems, and maintenance engineering of paper-making machine and jet fighters. Jung is a chartered engineer and a member of MIMechE.

References

Ecotricity. The End of Fossil Fuels. https://www.ecotricity.co.uk/our-green-energy/energy-independence/the-end-of-fossil-fuels (accessed December 6, 2017).

Mills, D. 2004. Advances in Solar Thermal Electricity Technology. Solar Energy. 76(1-3): 19-31.

DOI: https://doi.org/10.1016/S0038-092X(03)00102-6.

He, Y. L., Mei, D. H., Yang, W. W. and Liu, H. L. 2012. Simulation of the Parabolic Trough Solar Energy Generation System with Organic Rankine Cycle. Applied Energy. 97: 630-641.

DOI: https://doi.org/10.1016/j.apenergy.2012.02.047.

Desai, N. B. and S. Bandyopadhyay, S. 2016. Thermo-economic Analysis and Selection of Working Fluid for Solar Organic Rankine Cycle. Applied Thermal Engineering. 95: 471-481.

DOI: https://doi.org/10.1016/j.applthermaleng.2015.11.018.

Usman, M., Imran, M., Yang, Y., Lee, D. H. and Park, B. S. 2017. Thermo-economic Comparison of Air-cooled and Cooling Tower Based Organic Rankine Cycle (ORC) with R245fa and R1233zde as Candidate Working Fluids for Different Geographical Climate Conditions. Energy. 123: 353-366.

DOI: https://doi.org/10.1016/j.energy.2017.01.134.

Quoilin, S., Orosz, M., Hemond, H. and Lemort, V. 2011. Performance and Design Optimization of a Low-cost Solar Organic Rankine Cycle for Remote Power Generation. Solar Energy. 85(5): 955-966.

DOI: https://doi.org/10.1016/j.solener.2011.02.010.

Sait, H. H., Martinex-Val, J., Abbas, R. and Munoz-Anton, J. 2015. Fresnel-based Modular Solar Fields for Performance/Cost Optimization in Solar Thermal Power Plants: A Comparison with Parabolic Trough Collectors. Applied Energy. 141: 175-189.

DOI: https://doi.org/10.1016/j.apenergy.2014.11.074.

Wang, J., Yan, Z., Zhao, P. and Dai, Y. 2014. Off-design Performance Analysis of a Solar-powered Organic Rankine Cycle. Energy Conversion and Management. 80: 150-157.

DOI: https://doi.org/10.1016/j.enconman.2014.01.032.

Orosz, M., Mueller, A., Quoilin, S. and Hemond, H. 2009. Small Scale Solar ORC system for Distributed Power. Proceedings of SolarPACES, 2009.

Pikra, G., Salim, A., Prawara, B., Purwanto, A. J. and Admono, T. 2013. Development of Small Scale Concentrated Solar Power Plant Using Organic Rankine Cycle for Isolated Region in Indonesia. Energy Procedia. 32: 122-128.

DOI: https://doi.org/10.1016/j.egypro.2013.05.016.

Taccani, R., Obi, J. B., Lucia, M. D., Micheli, D. and Toniato, G. 2016. Development and Experimental Characterization of a Small Scale Solar Powered Organic Rankine Cycle (ORC). Energy Procedia. 101: 504-511.

Orosz, M., Quoilin, S. and Hemond, H. 2010. SORCE: A Design Tool for Solar Organic Rankine Cycle Systems in Distributed Generation Applications. http://hdl.handle.net/2268/73580.

Cakici, D. M., Erdogan, A. and Colpan, C. O. 2017. Thermodynamic Performance Assessment of an Integrated Geothermal Powered Supercritical Regenerative Organic Rankine Cycle and Parabolic Trough Solar Collectors. Energy. 120: 306-319.

DOI: https://doi.org/10.1016/j.energy.2016.11.083.

Borunda, M., Jaramillo, O. A., Dorantes, R. and Reyes, A. 2016. Organic Rankine Cycle Coupling with a Parabolic Trough Solar Power Plant for Cogeneration and Industrial Processes. Renewable Energy. 86: 651-663. DOI:https://doi.org/10.1016/j.renene.2015.08.041.

Forristall, R. 2003. Heat Transfer Analysis and Modeling of a Parabolic Trough Solar Receiver Implemented in Engineering Equation Solver. National Renewable Energy Laboratory. Technical Report.

Ghasemi, S. E. and Ranjbar, A. A. 2016. Thermal Performance Analysis of Solar Parabolic Trough Collector Using Nanofluid as Working Fluid: A CFD Modelling Study. Journal of Molecular Liquids. 222: 159-166. DOI: https://doi.org/10.1016/j.molliq.2016.06.091

Sarawak Energy. Alternative Energy for Sarawak-Lighting up off-grid communities. http://www.sarawakenergy.com.my/index.php/news-events-top/latest-news-events/latest-announcements/1826-alternative-energy-for-sarawak-lighting-up-off-grid-communities (accessed December 6, 2017).

Mansor, M. 2014. A Study on Wind and Solar Energy Potentials in Malaysia. International Journal of Renewable Energy Research. 4(4): 1042-1048.

Klein, S. A. 2017. Engineering Equation Solver (V10.093). F-Chart Software.

Price, H. 2001. Concentrated Solar Power Use in Africa. NREL/TP. Golden, CO: National Renewable Energy Laboratory.

Swagelok, Stainless Steel Seamless Tubing and Tube Support Systems. n.d.

https://www.swagelok.com/downloads/webcatalogs/EN/MS-01-181.PDF (accessed December 6, 2017).

Sci-Tech Glassblowing, Inc. Properties of Corning 7740 Pyrec Glass.n.d.

http://www.sci-techglassblowing.com/products/listing.asp?idCategory=2 (accessed December 6, 2017).

Vahidinia, F. and Miri, M. 2015. Numerical Study of the Effect of the Reynolds Numbers on Thermal and Hydrodynamic Parameters of Turbulent Flow Mixed Convection Heat Transfer in an Inclined Tube. Journal of Mechanical Engineering. 61(11): 669-679.

DOI: http://dx.doi.org/10.5545/sv-jme.2015.2818.

Downloads

Published

2019-01-22

Issue

Section

Science and Engineering

How to Cite

SIZING A PARABOLIC TROUGH COLLECTOR FOR A MICRO SOLAR ORGANIC RANKINE CYCLE. (2019). Jurnal Teknologi (Sciences & Engineering), 81(2). https://doi.org/10.11113/jt.v81.12304