Research Article

COMPARISON STUDY OF AIR AND THERMAL OIL APPLICATION IN A SOLAR CAVITY RECEIVER

Volume: 5 Number: 6 October 8, 2019
  • Alibakhsh Kasaeian *
EN

COMPARISON STUDY OF AIR AND THERMAL OIL APPLICATION IN A SOLAR CAVITY RECEIVER

Abstract

Nowadays, solar dish collector with a cavity receiver is accounted as an efficient and compact system for converting solar radiation energy into thermal energy. All of the incoming solar irradiation to the dish aperture area, is concentrated at the dish focal point where the solar receiver is located. In the current study, the thermal performance of the dish collector with a rectangular cavity receiver was evaluated. Air and thermal oil were examined as the solar working fluids. The performance of the solar dish collector was evaluated at different values of the mass flow rate ranging from 0.002 to 0.06 kg/s as well as different solar irradiation ranging from 600 to 1200 W/m2. The results revealed that the collector efficiency improved with increasing the mass flow rate and solar irradiation. The thermal performance of the solar dish collector improved with application of the thermal oil as the solar working fluid compared to the air in the investigated solar system. The results indicated the higher cavity surface temperature could be achieved by using air as the solar working fluid compared to the thermal oil.

Keywords

References

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  3. [3] Harris, J. A., & Lenz, T. G. (1985). Thermal performance of solar concentrator/cavity receiver systems. Solar energy, 34(2), 135-142.
  4. [4] Taumoefolau, T., Paitoonsurikarn, S., Hughes, G., & Lovegrove, K. (2004). Experimental investigation of natural convection heat loss from a model solar concentrator cavity receiver. Journal of Solar Energy Engineering, 126(2), 801-807.
  5. [5] Steinfeld, A., Schubnell, M. (1993). Optimum aperture size and operating temperature of a solar cavity-receiver. Solar Energy, 50(1), 19-25.
  6. [6] Bammert, K., Hegazy, A., Lange, H. (1990). Determination of the distribution of incident solar radiation in cavity receivers with approximately real parabolic dish collectors.
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Details

Primary Language

English

Subjects

Engineering

Journal Section

Research Article

Authors

Alibakhsh Kasaeian * This is me
Iran

Publication Date

October 8, 2019

Submission Date

February 9, 2018

Acceptance Date

April 6, 2018

Published in Issue

Year 2019 Volume: 5 Number: 6

APA
Kasaeian, A. (2019). COMPARISON STUDY OF AIR AND THERMAL OIL APPLICATION IN A SOLAR CAVITY RECEIVER. Journal of Thermal Engineering, 5(6), 221-229. https://doi.org/10.18186/thermal.654628
AMA
1.Kasaeian A. COMPARISON STUDY OF AIR AND THERMAL OIL APPLICATION IN A SOLAR CAVITY RECEIVER. Journal of Thermal Engineering. 2019;5(6):221-229. doi:10.18186/thermal.654628
Chicago
Kasaeian, Alibakhsh. 2019. “COMPARISON STUDY OF AIR AND THERMAL OIL APPLICATION IN A SOLAR CAVITY RECEIVER”. Journal of Thermal Engineering 5 (6): 221-29. https://doi.org/10.18186/thermal.654628.
EndNote
Kasaeian A (October 1, 2019) COMPARISON STUDY OF AIR AND THERMAL OIL APPLICATION IN A SOLAR CAVITY RECEIVER. Journal of Thermal Engineering 5 6 221–229.
IEEE
[1]A. Kasaeian, “COMPARISON STUDY OF AIR AND THERMAL OIL APPLICATION IN A SOLAR CAVITY RECEIVER”, Journal of Thermal Engineering, vol. 5, no. 6, pp. 221–229, Oct. 2019, doi: 10.18186/thermal.654628.
ISNAD
Kasaeian, Alibakhsh. “COMPARISON STUDY OF AIR AND THERMAL OIL APPLICATION IN A SOLAR CAVITY RECEIVER”. Journal of Thermal Engineering 5/6 (October 1, 2019): 221-229. https://doi.org/10.18186/thermal.654628.
JAMA
1.Kasaeian A. COMPARISON STUDY OF AIR AND THERMAL OIL APPLICATION IN A SOLAR CAVITY RECEIVER. Journal of Thermal Engineering. 2019;5:221–229.
MLA
Kasaeian, Alibakhsh. “COMPARISON STUDY OF AIR AND THERMAL OIL APPLICATION IN A SOLAR CAVITY RECEIVER”. Journal of Thermal Engineering, vol. 5, no. 6, Oct. 2019, pp. 221-9, doi:10.18186/thermal.654628.
Vancouver
1.Alibakhsh Kasaeian. COMPARISON STUDY OF AIR AND THERMAL OIL APPLICATION IN A SOLAR CAVITY RECEIVER. Journal of Thermal Engineering. 2019 Oct. 1;5(6):221-9. doi:10.18186/thermal.654628

Cited By

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