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New second-stage concentrators (XX SMS) for parabolic primaries; Comparison with conventional parabolic trough concentrators

机译:新的抛物线型第二级浓缩器(XX SMS);与常规抛物线槽浓缩器的比较

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摘要

Parabolic Trough concentrators are the predominant Concentrated Solar Power (CSP) technology today. However this technology is facing substantial challenge from the need to reduce costs and/or increase performance. This paper address this challenge by exploring the room left from the fact this type of optic falls short from the theoretical limits of concentration, proposing a new solution enabling the design of larger troughs with higher concentration or larger acceptance angles, through the use of second stage concentration of a novel type. This new optic is designed with the Simultaneous Multiple Surface (SMS) method for two reflective (X) surfaces (XX SMS) Winston et al. (2005) - of which the primary is approximately parabolic - using a different assignation of the edge rays in order to significantly reduce the Fresnel losses around the glass cover of the evacuated tubes commonly used in CSP applications. To analyze the merits of this new optic, two different comparisons are made. The first one with the SMS Helmet concentrator through the calculation of CAP (Concentration-Acceptance Product) and the second one with a commercial Parabolic Trough concentrator, using an estimate of the total amount of collected energy (kW h) for one particular location, Faro (Portugal). The paper ends with a discussion of the results obtained, their impact and possible applications in the future.
机译:抛物槽式聚光器是当今主要的聚光太阳能(CSP)技术。然而,由于需要降低成本和/或提高性能,该技术面临着巨大的挑战。本文通过探索这种类型的光学元件无法达到理论浓度极限的事实为余下的空间解决了这一挑战,提出了一种新的解决方案,通过使用第二阶段,可以设计出具有更高浓度或更大接收角的更大的槽集中新类型。这种新的光学器件是通过同时多表面(SMS)方法设计的,用于两个反射(X)表面(XX SMS)Winston等人。 (2005年)-主要是近似抛物线-使用边缘射线的不同分配,以显着减少常用于CSP应用中的真空管玻璃盖周围的菲涅耳损耗。为了分析这种新型光学器件的优点,进行了两种不同的比较。第一个使用SMS头盔集中器通过计算CAP(浓度接受乘积),第二个使用商用抛物槽式集中器,使用一个特定位置法鲁的收集能量总量(kW h)的估算值(葡萄牙)。本文最后讨论了所获得的结果,其影响以及将来的可能应用。

著录项

  • 来源
    《Solar Energy》 |2013年第6期|98-105|共8页
  • 作者单位

    University of Evora, BES Renewable Energies Chair, Casa Cordovil, Rua da Mesquita n° 7, 7000-651 Evora, Portugal;

    Light Prescriptions Innovators, UPM, Madrid, Spain;

    University of Evora, BES Renewable Energies Chair (Holder), Evora, Portugal;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Parabolic trough; SMS method; Non-imaging optics; Concentrated Solar Power;

    机译:抛物线槽短信方式;非成像光学;集中式太阳能;

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