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A laboratory experimental study of mixing the solar pond gradient zone

机译:混合太阳池梯度带的室内实验研究

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摘要

The efficiency and the lifetime of a solar pond depends mainly on the behavior of the gradient Non-Convective Zone (NCZ), embedded between an Upper Convective Zone (UCZ) and a Lower Convective Zone (LCZ). The NCZ is often the siege of instabilities. These instabilities can destroy the linearity and transform it to a well mixed layer leading the pond to loose its main role of storing. Series of laboratory studies have been carried out to assess the stability of a linearly salt-stratified system (simulating the NCZ of a solar pond) heated from below. An assortment of flow visualization by Shadowgraph and Particle Image Velocimetry (P.I.V) techniques was employed to provide a phenomenological description of flow convection. This experimental characterization reveals three specific stages. The first stage corresponds to the onset of a non periodic oscillation in space and time of the bottom flow. In a second stage a well mixed layer is born and an oscillatory movement appears at the free surface whereas the last stage is relative to the transition from linear stratification to non-linear one (two superimposed layers separated by a well thin interface), before the homogenization of the whole system is accomplished. Most theoretical and experimental studies in the literature, considered a gradient layer heated from below at constant heat flux, whereas in this work the free surface system is heated from below at constant temperature. In addition, we will focus on the onset and development of the first mixed layer for small values of stability parameter A (values that can be encountered in a real solar pond. In the vicinity of our laboratory a 3 m-deep solar pond of 1500 m2 area is available). To our knowledge, no investigations has been performed, on the birth and self-organization of the first layer for small values of A.
机译:太阳池的效率和寿命主要取决于嵌入在上对流区(UCZ)和下对流区(LCZ)之间的梯度非对流区(NCZ)的行为。 NCZ通常是对不稳定的围攻。这些不稳定性会破坏线性,并将其转换为充分混合的层,导致池塘失去其主要的存储作用。已经进行了一系列实验室研究,以评估从下面加热的线性盐分层系统(模拟太阳池的NCZ)的稳定性。通过阴影图和粒子图像测速(P.I.V)技术对各种流动进行可视化,以提供流动对流的现象学描述。该实验表征揭示了三个具体阶段。第一级对应于底部流动的空间和时间的非周期性振荡的开始。在第二阶段中,混合层诞生并在自由表面出现振荡运动,而最后一个阶段是相对于从线性分层到非线性分层的过渡(两个重叠的层由一个很好的薄界面隔开)。完成整个系统的均质化。文献中的大多数理论和实验研究都认为梯度层是在恒定热通量下从下方加热的,而在这项工作中,自由表面系统是在恒定温度下从下方加热的。此外,我们将专注于第一混合层的产生和发展,以获取较小的稳定性参数A(在实际的太阳能池中可能遇到的值。在我们实验室附近的3 m深的太阳能池为1500)平方米可用)。据我们所知,尚未对第一层的诞生和自组织的小数值A进行过任何调查。

著录项

  • 来源
    《Solar Energy》 |2011年第2期|p.404-417|共14页
  • 作者单位

    Ecole National d'Ingenieurs de Tunis, Unite de Recherche Mecanique-Energetique, 1002 El Belvedere, BP 37, Tunisia;

    Ecole National d'Ingenieurs de Tunis, Unite de Recherche Mecanique-Energetique, 1002 El Belvedere, BP 37, Tunisia;

    Energy CARE Group, Department of Mechanical and Manufacturing Engineering, RMIT University, P.O. Box 71, Bundoora 3083, Melbourne, Australia;

  • 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

    Solar pond; Gradient zone (NCZ); Double-diffusion; P.I.V b; Shadowgraph;

    机译:太阳池;渐变区域(NCZ);双重扩散P.I.V b;阴影图;

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