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Diego C. Alarcón-Padilla

Publications -  24
Citations -  875

Diego C. Alarcón-Padilla is an academic researcher. The author has contributed to research in topics: Desalination & Multiple-effect distillation. The author has an hindex of 12, co-authored 18 publications receiving 768 citations.

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Computing the solar vector

TL;DR: A new algorithm, developed at the Plataforma Solar de Almeria, which combines these two characteristics of accuracy and simplicity, is presented and allows of the true solar vector to be determined with an accuracy of 0.5 minutes of arc for the period 1999–2015.
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Assessment of different configurations for combined parabolic-trough (PT) solar power and desalination plants in arid regions

TL;DR: In this paper, a thermodynamic evaluation of different configurations for coupling parabolic-trough (PT) solar power plants and desalination facilities in a dry location representing the Middle East and North Africa (MENA) region is presented.
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Solar field control for desalination plants

TL;DR: In this paper, a feedback linearization control strategy for a solar collector field supplying process heat to a multi-effect seawater distillation plant is presented, where the main purpose of the controller presented in this paper is to manipulate the water flow rate to maintain an outlet-inlet temperature gradient in the collectors, thereby ensuring continuous process heating, or in other words, continuous production of fresh water in spite of disturbances.
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Evaluation of cooling technologies of concentrated solar power plants and their combination with desalination in the mediterranean area

TL;DR: In this paper, different alternatives for the effective integration of desalination technologies in the cooling of concentrating solar power (CSP) plants in the Mediterranean area are discussed and evaluated.
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Design recommendations for a multi-effect distillation plant connected to a double-effect absorption heat pump: A solar desalination case study

TL;DR: In this article, the design of a solar thermal desalination system based on a multi-effect distillation (MED) plant connected to a double-effect absorption heat pump (DEAHP) is presented.