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Utilization of molten nitrate salt nanomaterials for heat capacity enhancement in solar power applications.

机译:利用熔融硝酸盐纳米材料增强太阳能应用中的热容量。

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摘要

Concentrated solar power (CSP) system use general thermodynamic cycle to produce electricity and thus the system efficiency is mainly determined by the working temperature of heat transfer fluid (HTF). Organic-based HTFs (e.g., mineral oil, ethylene glycol, etc.) were firstly used for this application. However, this has limited the working temperature of CSP around 300 °C since these organic material starts to decompose below 400 °C. Typical liquid salts are thermally stable to high temperatures (500~600 °C). Using these salts as HTF can significantly increase the working temperature and as a result the system efficiency can also be highly enhanced. For example increasing working temperature from 300 °C to 500 °C can simply increase Carnot efficiency from 48 % to 61 %. Moreover, these salts are eco-friendly and using them as HTF can reduce the potential environmental cost caused by the conventional HTF. These salts also have very low vapor pressure that can reduce the potential mechanical stress on the pipe / storage system caused by using the conventional HTF.;Recently a binary liquid salt (NaNO3-KNO3; also termed as "solar salt") has been introduced and adapted in the most recent CSP plants. This solar salt is also used as thermal energy storage (TES) medium. Extra thermal energy collected in the daytime is stored in solar salt and kept in a TES for later use. When electricity demand peaks (e.g., evening time) solar salt in TES provide thermal energy to continue electricity production. One of the major challenges to use solar salt as HTF / TES is its high freezing point at 220 °C. This has the potential risk of crystallization in a pipe / storage system in a harsh condition (e.g., rainy season) and can result in high maintenance & operation costs for extra freezing protection system (e.g., insulation, auxiliary heater, etc.).;Adding Ca(NO3)2 to solar salt can dramatically decrease the freezing point (down to 120 °C). However, this ternary salt mixture has relatively low thermo-physical properties. Doping this material with oxidized nanoparticles can improve these properties. Nanofluids are liquids doped with nanoparticles. They have been proposed for large enhanced thermo-physical properties. In this report, the low thermo-physical properties were highly enhanced by doping with nanoparticles (19 % increase by 1 % nanoparticle concentration by weight). The result of this study will be useful to develop advance HTF / TES material for CSP plants. This will also applicable for other high temperature HTF applications such as geothermal energy, nuclear energy, and other energy generation technologies using thermodynamic cycle.
机译:集中式太阳能(CSP)系统使用一般的热力循环来发电,因此系统效率主要取决于传热流体(HTF)的工作温度。首先将有机基HTF(例如矿物油,乙二醇等)用于此应用。但是,由于这些有机材料在低于400°C时开始分解,因此将CSP的工作温度限制在300°C左右。典型的液态盐对高温(500〜600°C)具有热稳定性。使用这些盐作为HTF可以显着提高工作温度,结果系统效率也可以大大提高。例如,将工作温度从300°C增加到500°C可以简单地将卡诺效率从48%增加到61%。而且,这些盐是生态友好的,并且将它们用作HTF可以减少常规HTF造成的潜在环境成本。这些盐还具有非常低的蒸气压,可以降低使用常规HTF所引起的管道/存储系统的潜在机械应力。;最近引入了二元液态盐(NaNO3-KNO3;也称为“太阳能盐”)并适用于最新的CSP工厂。该太阳能盐也可用作热能存储(TES)介质。白天收集的多余热能存储在太阳能盐中,并保存在TES中以备后用。当电力需求达到峰值(例如晚上时间)时,TES中的太阳盐会提供热能以继续发电。使用太阳能盐作为HTF / TES的主要挑战之一是其在220°C的高凝固点。在恶劣条件下(例如,雨季),这可能会在管道/存储系统中产生结晶的风险,并可能导致额外的防冻系统(例如,保温层,辅助加热器等)的维护和运营成本较高。向太阳盐中添加Ca(NO3)2可以大大降低凝固点(降至120°C)。但是,这种三元盐混合物具有相对较低的热物理性质。用氧化的纳米颗粒掺杂这种材料可以改善这些性能。纳米流体是掺杂有纳米颗粒的液体。已经提出它们具有大的增强的热物理性质。在该报告中,通过掺杂纳米颗粒,低热物理性能得到了极大的增强(纳米颗粒浓度增加1%,重量增加19%)。这项研究的结果将有助于为CSP工厂开发先进的HTF / TES材料。这也将适用于其他高温HTF应用,例如地热能,核能和其他使用热力学循环的能源产生技术。

著录项

  • 作者

    Devaradjane, Ramaprasath.;

  • 作者单位

    The University of Texas at Arlington.;

  • 授予单位 The University of Texas at Arlington.;
  • 学科 Engineering Mechanical.
  • 学位 M.S.
  • 年度 2013
  • 页码 55 p.
  • 总页数 55
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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