Journal article
Processes, vol. 14, 2026
APA
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González-Mora, E., & Durán-García, M. D. (2026). Techno-Economic and Exergetic Assessment of a Small-Scale Parabolic Trough Collector System for Industrial Process Heat: A Case Study in the Tequila Industry. Processes, 14. https://doi.org/10.3390/pr14142234
Chicago/Turabian
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González-Mora, Eduardo, and Ma. Dolores Durán-García. “Techno-Economic and Exergetic Assessment of a Small-Scale Parabolic Trough Collector System for Industrial Process Heat: A Case Study in the Tequila Industry.” Processes 14 (2026).
MLA
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González-Mora, Eduardo, and Ma. Dolores Durán-García. “Techno-Economic and Exergetic Assessment of a Small-Scale Parabolic Trough Collector System for Industrial Process Heat: A Case Study in the Tequila Industry.” Processes, vol. 14, 2026, doi:10.3390/pr14142234.
BibTeX Click to copy
@article{gonz2026a,
title = {Techno-Economic and Exergetic Assessment of a Small-Scale Parabolic Trough Collector System for Industrial Process Heat: A Case Study in the Tequila Industry},
year = {2026},
journal = {Processes},
volume = {14},
doi = {10.3390/pr14142234},
author = {González-Mora, Eduardo and Durán-García, Ma. Dolores}
}
The industrial sector accounts for 34% of global energy consumption, of which heat accounts for 74%, predominantly derived from fossil fuels. Solar Heat for Industrial Processes (SHIP) offers a viable decarbonisation route for low-to-medium temperature applications (80–250 °C)—a range that includes processes such as tequila production. Yet integrated techno-exergo-economic assessments for small-scale, modular systems in agro-industrial contexts remain scarce. This study presents a technical, thermodynamic, and economic evaluation of a 2.5 MWth parabolic trough collector system with thermocline thermal energy storage, integrated into a tequila production facility in Jalisco, México. A parametric analysis across seven solar multiple configurations identifies 𝑆𝑀=1.258 as the economic optimum, yielding an annual solar fraction of 35%, a CO2 reduction of 33.5%, a levelised cost of heat of 75.19 USD/MWhth (16.3% below the fuel-oil baseline), and a payback period of 13.39 years under full accelerated depreciation. The system’s exergy efficiency (23–28%) is nearly four times that of the stand-alone boiler (6.31%); the analysis further quantifies diminishing returns beyond 𝑆𝑀≈1.4 and demonstrates that México’s accelerated depreciation provision substantially broadens the economically feasible design space. These findings provide a replicable techno-exergo-economic framework for SHIP integration in gas-constrained, high-irradiation industrial regions, supporting decarbonisation efforts in emerging economies.