EN
Effect of position of heat flux profile on the absorber surface of parabolic trough solar collector for direct steam generation
Abstract
The overall performance of parabolic trough solar collector (PTSC) based power plants could be improved by introducing the Direct steam generation (DSG) in the receiver of the solar collector. However, the thermal-hydraulic instability induced in the DSG process is a severe issue for the commercial application of the technology. The concentrated solar flux falling on the dry portion of the absorber before or after solar noon generates a high circumferential thermal gradient in the stratified flow region. In this work, numerical analysis of thermo-hydrodynamics of DSG has been performed to study the effect of position of solar flux profile using CFD solver ANSYS Fluent 2020R1. The TPF in the solar collectors is modeled through two-fluid modeling approach. The inlet mass flow rate and operating pressure for PTSC are considered as 0.6 kg/s, and 100 bar, respectively. The solar beam radiations are considered as 750 W/m2 and 1000 W/m2. The obtained results revealed that temperature distribution at the absorber outer surface varies in the range of 585 K to 643 K. The maximum circumferential temperature difference is observed as 55.5 K. The volume fraction of vapor at the absorber outlet are found as 0.31 and 0.37 respectively for DNI 750 W/m2 and 1000 W/m2. The corresponding pressure losses are 316 Pa and 350 Pa, respectively. The obtained results could be employed to characterize the thermal behavior of the DSG solar collectors. The model is useful to configure the solar field operation for optimum performance.
Keywords
Supporting Institution
Science and Engineering Research Board (SERB), Department of Science and Technology (DST), Government of India, New Delhi
Project Number
ECR/2017/000164
References
- [1] Samadianfard, A, Jarhan, S, Nahand, HS. Application of support vector regression integrated with firefly optimization algorithm for predicting global solar radiation. Journal of Energy Systems 2018; 2(4):180-189. DOI: 10.30521/jes.458328.
- [2] Li, J, Guo, H, Meng, Q, Wu, Y, Ye, F, Ma, C. Thermodynamic Analysis and Comparison of Two Small-Scale Solar Electrical Power Generation Systems. Sustainability 2020; 12:10268. Doi:10.3390/su122410268.
- [3] Idrissou, AFM, Matos, FFS, Alexandria, AR. Numerical investigation of the optical efficiency of a parabolic trough collector at different concentration ratios. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 2020; 43(21): 2755-2773. DOI: https://doi.Org/10.1080/15567036.2020.1849457.
- [4] Kumar, KR, Chaitanya, KVVV, Natarajan, SK. Solar thermal energy technologies and its applications for process heating and power generation – A review. Journal of Cleaner Production 2021; 282: 125296. DOI: https://doi.org/10.1016/j.jclepro.2020.125296.
- [5] Sandá, A, Moya, SL, Valenzuela, L. Modelling and simulation tools for direct steam generation in parabolic-trough solar collectors: a review. Renewable and Sustainable Energy Reviews 2019; 113:109226. DOI: doi:10.1016/j.rser.2019.06.033.
- [6] Pal, RK, Kumar, KR. Thermo-hydrodynamic modeling of direct steam generation in parabolic trough solar collector. In: ICAER 2019 7th International Conference on Advances in Energy Research; 10-12 December 2019: Springer, Singapore: pp. 131-140.
- [7] Iodice, P, Langella, G, Amoresano, A. Exergetic Analysis of a New Direct Steam Generation Solar Plant Using Screw Expanders. Energies 2020; 13:720. DOI: 10.3390/en13030720.
- [8] Lugo-Leyte, R, Salazar-Pereyra, M, Torres-Aldaco, A, Lugo-Méndez, HD, Valdés-Palacios, A. Thermal Modeling of a Concentrator Pipe Composed with Direct Steam Generation. Applied Solar Energy 2012; 48(3): 212-217. DOI: 10.3103/S0003701X12030103.
Details
Primary Language
English
Subjects
Mechanical Engineering
Journal Section
Research Article
Publication Date
March 31, 2022
Submission Date
June 15, 2021
Acceptance Date
November 19, 2021
Published in Issue
Year 2022 Volume: 6 Number: 1
APA
Pal, R. K., & Kumar, K. R. (2022). Effect of position of heat flux profile on the absorber surface of parabolic trough solar collector for direct steam generation. Journal of Energy Systems, 6(1), 46-61. https://doi.org/10.30521/jes.952658
AMA
1.Pal RK, Kumar KR. Effect of position of heat flux profile on the absorber surface of parabolic trough solar collector for direct steam generation. Journal of Energy Systems. 2022;6(1):46-61. doi:10.30521/jes.952658
Chicago
Pal, Ram Kumar, and K Ravi Kumar. 2022. “Effect of Position of Heat Flux Profile on the Absorber Surface of Parabolic Trough Solar Collector for Direct Steam Generation”. Journal of Energy Systems 6 (1): 46-61. https://doi.org/10.30521/jes.952658.
EndNote
Pal RK, Kumar KR (March 1, 2022) Effect of position of heat flux profile on the absorber surface of parabolic trough solar collector for direct steam generation. Journal of Energy Systems 6 1 46–61.
IEEE
[1]R. K. Pal and K. R. Kumar, “Effect of position of heat flux profile on the absorber surface of parabolic trough solar collector for direct steam generation”, Journal of Energy Systems, vol. 6, no. 1, pp. 46–61, Mar. 2022, doi: 10.30521/jes.952658.
ISNAD
Pal, Ram Kumar - Kumar, K Ravi. “Effect of Position of Heat Flux Profile on the Absorber Surface of Parabolic Trough Solar Collector for Direct Steam Generation”. Journal of Energy Systems 6/1 (March 1, 2022): 46-61. https://doi.org/10.30521/jes.952658.
JAMA
1.Pal RK, Kumar KR. Effect of position of heat flux profile on the absorber surface of parabolic trough solar collector for direct steam generation. Journal of Energy Systems. 2022;6:46–61.
MLA
Pal, Ram Kumar, and K Ravi Kumar. “Effect of Position of Heat Flux Profile on the Absorber Surface of Parabolic Trough Solar Collector for Direct Steam Generation”. Journal of Energy Systems, vol. 6, no. 1, Mar. 2022, pp. 46-61, doi:10.30521/jes.952658.
Vancouver
1.Ram Kumar Pal, K Ravi Kumar. Effect of position of heat flux profile on the absorber surface of parabolic trough solar collector for direct steam generation. Journal of Energy Systems. 2022 Mar. 1;6(1):46-61. doi:10.30521/jes.952658
Cited By
Feasibility analysis of solar photovoltaics for the feeding of cooling pump of a natural gas power plant
Proceedings of the Institution of Mechanical Engineers, Part A: Journal of Power and Energy
https://doi.org/10.1177/09576509221099387Coupled Thermo-Structural analysis of absorber tube for direct steam generation in parabolic trough solar collector
Solar Energy
https://doi.org/10.1016/j.solener.2023.112148Thermo-hydraulic analysis of direct steam generation in a 500 m long row of parabolic trough solar collector using Eulerian two-fluid modeling approach
Applied Thermal Engineering
https://doi.org/10.1016/j.applthermaleng.2024.122496