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Performance model for parabolic trough solar thermal power plants with thermal storage: Comparison to operating plant data

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In this article, a simulation model that reproduces the performance of parabolic trough solar thermal power plants with a thermal storage system is presented to facilitate the prediction of the electricity output of these plants during the various stages of their planning, design, construction and operation.
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This article is published in Solar Energy.The article was published on 2011-10-01 and is currently open access. It has received 265 citations till now. The article focuses on the topics: Peaking power plant & Parabolic trough.

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Thermal energy storage technologies and systems for concentrating solar power plants

TL;DR: In this article, a review of thermal energy storage system design methodologies and the factors to be considered at different hierarchical levels for concentrating solar power (CSP) plants is presented.
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Concentrated solar power plants: Review and design methodology

TL;DR: In this paper, the authors present a methodology to predict hourly beam (direct) irradiation from available monthly averages, based upon combined previous literature findings and available meteorological data, and illustrate predictions for different selected STC locations.
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Application of phase change materials for thermal energy storage in concentrated solar thermal power plants: A review to recent developments

TL;DR: In this article, the authors review the recent technologies of thermal energy storage (TES) using phase change materials (PCM) for various applications, particularly concentrated solar thermal power (CSP) generation systems.
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A comprehensive review of state-of-the-art concentrating solar power (CSP) technologies: current status and research trends

TL;DR: It is found that direct steam generation (DSG) is a promising innovation which is reviewed in this study and provides a most up-to-date overview of the CSP technologies implemented across the globe.
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Thermal energy storage systems for concentrated solar power plants

TL;DR: In this paper, a review of thermal energy storage systems installed in concentrated solar power (CSP) plants is presented, including the state-of-the-art on CSP plants all over the world and the trend of development, different technologies of TES systems for high temperature applications (200-1000°C) with a focus on thermochemical heat storage, and storage concepts for their integration.
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Methods for probabilistic modeling of concentrating solar power plants

TL;DR: The tools necessary to conduct probabilistic modeling of concentrating solar technologies are presented and a cumulative distribution function that can be analyzed to quantify the probability of achieving a particular metric and to rank the importance of the uncertain input parameters is analyzed.
Journal ArticleDOI

A new analytic expression for the equation of time

L.O. Lamm
- 01 Jan 1981 - 

Modeling Photovoltaic and Concentrating Solar Power Trough Performance, Cost, and Financing with the Solar Advisor Model: Preprint

TL;DR: The Solar Advisor Model (SAM) as discussed by the authors was developed to support the federal R&D community and the solar industry by staff at the National Renewable Energy Laboratory (NREL) and Sandia National Laboratory.

Sensitivity of Concentrating Solar Power Trough Performance, Cost and Financing with Solar Advisor Model

TL;DR: A comprehensive solar technology analysis model, the Solar Advisor Model (SAM) as discussed by the authors, was developed to support the federal R&D community and the solar industry, which is able to model the costs, finances, and performance of concentrating solar power and photovoltaics (PV).
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Q1. What have the authors contributed in "Performance model for parabolic trough solar thermal power plants with thermal storage. comparison to operating plant data" ?

This paper describes a simulation model that reproduces the performance of parabolic trough solar thermal power plants with a thermal storage system. The aim of this model is to facilitate the prediction of the electricity output of these plants during the various stages of their planning, design, construction and operation. Model results for a 50 MWe power plant are presented and compared to real data from an equivalent power plant currently operated by the ACS Industrial Group in Spain. 

The authors have presented a detailed model which simulates the performance of a parabolic trough solar thermal power plant with thermal storage. The authors point out the need to consider the actual plant ’ s operation philosophy in order to match the decisions taken by the simulation algorithm to the real ones during operation. It would be desirable to carry out a more extended comparison of the simulation results to the actual plant data considering periods within all seasons of the year. The authors estimate that the gross electrical power generated could vary around 2 − 3 % if they consider the ranges of ambient temperature and relative humidity corresponding to the results shown in section 3. 3. The HTF temperature out of the Power Block heat-exchanger trains and into the Solar Field is also affected by ambient conditions, so that they can expect to better reproduce the actual plant data making use of a more detailed Power Block model.