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Characterization of Dust on Solar Devices in Southern Nevada

机译:内华达州南部太阳能设备上的灰尘特征

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摘要

Dust can impact the efficiency of solar energy collection devices, and in some arid environments, dust can reduce solar energy efficiency up to 30%. Reducing the impact of dust is therefore critical in the expansion of solar technology throughout regions where solar energy is utilized. Characterization of suspended and settled particulate matter can assist in developing strategies for dust mitigation. With the characterization of suspended and settled particulate in remote, rural, and urban environments, more informed decisions can be made regarding the selection of coating material on solar panels as well as developing cleaning and maintenance procedures. Particulate matter that deposits on a solar surface can potentially interact with solar radiation, precipitation, or even directly with the surface material itself. These interactions could lead to the formation of coatings that reduce/block radiation and/or degrade the integrity of the surface. When you extrapolate these possibilities to a larger scale preliminary characterization of dust will play a vital role when planning the construction of a solar energy facility.;A variety of sampling techniques were employed to obtain particulate matter for characterization. These included direct collection of particulates from solar surfaces: via vacuum and wipe sample collection on panels, tacky dot adhesive slides and plain slides that were exposed at different intervals, desert vugs that are natural particulate collectors, as well as high volume air sampling for collection of suspended particulates. High volume air sampling was performed using glass fiber filters and 2 micron stainless steel screens. Direct collection of settled particulates was performed by sampling from solar surfaces, vugs, and by collection on exposed glass surfaces. Collection onto glass surfaces was achieved by setting up a plain microscope slide, tacky dot slides, and panes of glass. The sampling methodology allowed for the collection of samples for analyses using various analytical methods that included Raman microspectroscopy, pyrolysis gas chromatography mass spectrometry, ion chromatography and inductively coupled plasma mass spectrometry. These various methods allow for identification of organic and inorganic components as well the mineral distribution of suspended and settled particulate material.
机译:灰尘会影响太阳能收集设备的效率,在某些干旱环境中,灰尘会使太阳能效率降低多达30%。因此,减少粉尘的影响对于在整个太阳能利用地区扩展太阳能技术至关重要。悬浮和沉降的颗粒物的特性可以帮助制定减尘策略。通过对偏远,农村和城市环境中悬浮和沉降的微粒进行表征,可以在选择太阳能电池板上的涂料以及制定清洁和维护程序方面做出更明智的决定。沉积在太阳表面的颗粒物可能会与太阳辐射,降水,甚至直接与表面材料本身发生相互作用。这些相互作用可能导致形成涂层,从而减少/阻挡辐射和/或降低表面的完整性。当您将这些可能性扩大到更大的规模时,灰尘的初步表征将在规划太阳能设施的建设中发挥至关重要的作用。;采用了多种采样技术来获得用于表征的颗粒物。这些措施包括直接从太阳能表面收集颗粒:通过在面板上进行真空和擦拭样品收集,以不同间隔暴露的粘性点状胶粘剂载玻片和普通载玻片,天然颗粒收集器的沙漠洞穴以及用于收集的大量空气采样悬浮颗粒。使用玻璃纤维过滤器和2微米不锈钢滤网进行大量空气采样。通过从太阳表面,孔洞中取样并在暴露的玻璃表面上进行收集,可以直接收集沉降的颗粒。通过设置普通的显微镜载玻片,发粘的点状载玻片和玻璃板,可以将其收集到玻璃表面上。采样方法允许使用各种分析方法收集样品进行分析,包括拉曼光谱,热解气相色谱质谱,离子色谱和电感耦合等离子体质谱。这些各种方法可以识别有机和无机成分以及悬浮和沉降的颗粒物质的矿物分布。

著录项

  • 作者

    Sylva, Jason R.;

  • 作者单位

    University of Nevada, Las Vegas.;

  • 授予单位 University of Nevada, Las Vegas.;
  • 学科 Analytical chemistry.;Environmental science.;Alternative Energy.;Energy.
  • 学位 M.S.
  • 年度 2017
  • 页码 252 p.
  • 总页数 252
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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