首页> 外文会议>ASME international mechanical engineering congress and exposition >MATERIAL COMPATIBILITY STUDY FOR THERMAL ENERGY STORAGE CONTAINMENT STRUCTURE WITH PHASE CHANGE MATERIAL
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MATERIAL COMPATIBILITY STUDY FOR THERMAL ENERGY STORAGE CONTAINMENT STRUCTURE WITH PHASE CHANGE MATERIAL

机译:具有相变材料的热能存储容纳结构的材料兼容性研究

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A desirable feature of concentrated solar power system is to provide electricity in a dispatchable manner during cloud transients and non-daylight hours. A Dish-Stirling concentrating solar power prototype demonstration system was built to incorporate a thermal energy storage (TES) module containing a phase-change material between the solar thermal receiver and the Stirling engine. This paper presents the results of a material compatibility study conducted to determine the suitability of two different metal alloys for use in the construction of the TES module. Key requirements of the materials include strength and corrosion resistance at elevated temperatures, commercial availability, and manufacturability using common fabrication methods. The TES module contains a NaCI/NaF eutectic salt, at temperatures ranging from local ambient to 700°C, where the salt is slightly superheated above its melt temperature. Sample containers made from SS316L and Inconel 625 were fabricated and thoroughly cleaned for compatibility studies based on an extensive literature review. Both the containers and the salt constituents were subjected to a bake-out cycle to drive off moisture, and permit out-gassing of contaminants. The containers were filled with salt in a controlled-atmosphere glove box. Filled containers were crimped and sealed by electron-beam welding. The finished samples were placed in a furnace, heated, and held at 750°C. One of each sample container material was removed from the furnace at both 100 and 2500 hours. The containers were cut open to analyze and evaluate the material surface and cross-section. After 100 hours, both SS316L and Inconel 625 exhibited a very small amount of corrosion. The stainless steel suffered a shallow inter-granular grain boundary attack, on the order of 1-2 mm in depth. The Inconel 625 surface formed an oxide complex, which is resistant to dissolution into the molten salt. After 2500 hours, the surface morphology for both materials was largely unchanged, with the corrosion process having switched from an initial localized pattern, to a more uniform pattern. The corrosion depth measured at 2500 hours remained near 1-2 mm, suggesting that the corrosion rate decelerated. Both materials showed promise for compatibility with the chosen salt.
机译:浓缩太阳能电力系统的理想特征是在云瞬变和非日光小时期间以可调度的方式提供电力。建立了一个盘斯特林浓缩太阳能原型演示示范系统,以包括含有太阳能热接收机和斯特林发动机之间的相变材料的热能存储(TES)模块。本文介绍了一种进行的材料兼容性研究的结果,以确定两种不同金属合金用于结构模块的结构的适用性。材料的主要要求包括使用普通制造方法在升高的温度,商业可用性和可制造性下的强度和耐腐蚀性。 TES模块含有NaCl / Naf共晶盐,在局部环境温度范围至700℃的温度下,其中盐在其熔体温度方面略微过热。基于广泛的文献综述,制造了由SS316L和Inconel 625制造的样品容器,并彻底清洁兼容性研究。容器和盐成分都经受烘焙循环以驱除水分,并允许污染物的渗出。容器在受控大气手套箱中填充盐。通过电子束焊接压接并密封填充容器。将完成的样品置于炉中,加热,并在750℃下保持。将每个样品容器材料中的一种从炉中除去100和2500小时。切断容器,以分析和评价材料表面和横截面。 100小时后,SS316L和Inconel 625都表现出非常少量的腐蚀。不锈钢遭受浅颗粒状晶界攻击,深度为1-2毫米。 Inconel 625表面形成氧化物复合物,其耐溶解到熔盐中。 2500小时后,两种材料的表面形态大大不变,腐蚀过程从初始局部图案切换到更均匀的图案。 2500小时测量的腐蚀深度保持在1-2毫米附近,表明腐蚀速度减速。两种材料都显示出与所选盐的相容性。

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