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Metallographic Preparation of Space Shuttle Reaction Control System Thruster Electron Beam Welds for Electron Backscatter Diffraction

机译:航天飞机反应控制系统推力电子束反向散射电子束焊的金相制备

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摘要

A Space Shuttle Reaction Control System (RCS) thruster failed during a firing test at the NASA White Sands Test Facility (WSTF), Las Cruces, New Mexico. The firing test was being conducted to investigate a previous electrical malfunction. A number of cracks were found associated with the fuel closure plate/injector assembly (Fig 1). The firing test failure generated a flight constraint to the launch of STS-133. A team comprised of several NASA centers and other research institutes was assembled to investigate and determine the root cause of the failure. The JSC Materials Evaluation Laboratory was asked to compare and characterize the outboard circumferential electron beam (EB) weld between the fuel closure plate (Titanium 6Al-4V) and the injector (Niobium C-103 alloy) of four different RCS thrusters, including the failed RCS thruster. Several metallographic challenges in grinding/polishing, and particularly in etching were encountered because of the differences in hardness, ductility, and chemical resistance between the two alloys and the bimetallic weld. Segments from each thruster were sectioned from the outboard weld. The segments were hot-compression mounted using a conductive, carbon-filled epoxy. A grinding/polishing procedure for titanium alloys was used [1]. This procedure worked well on the titanium; but a thin, disturbed layer was visible on the niobium surface by means of polarized light. Once polished, each sample was micrographed using bright field, differential interference contrast optical microscopy, and scanning electron microscopy (SEM) using a backscatter electron (BSE) detector. No typical weld anomalies were observed in any of the cross sections. However, areas of large atomic contrast were clearly visible in the weld nugget, particularly along fusion line interfaces between the titanium and the niobium. This prompted the need to better understand the chemistry and microstructure of the weld (Fig 2). Energy Dispersive X-Ray Spectroscopy (EDS) was used to confirm the chemical composition of the variations in contrast in these areas. Niobium alloys generally require exposure to more aggressive chemical reagents than titanium alloys for etching because of niobium s chemical resistance; therefore, the titanium portion of the sample was etched first. A five second immersion in Kroll s reagent revealed a general microstructure on the titanium portion of the sample; however, the titanium heat affected zone closest to the weld, was over-etched due to higher concentrations of refined grains and an increase in eta-phase. The Kroll s etchant also revealed some microstructure in the weld nugget itself; the niobium portion of the sample remained unetched.
机译:航天飞机反应控制系统(RCS)推进器在新墨西哥州拉斯克鲁塞斯的NASA白沙试验设施(WSTF)的射击试验中失败。正在进行点火测试以调查先前的电气故障。发现与燃油关闭板/喷油器组件相关的许多裂纹(图1)。射击测试失败对STS-133的发射产生了飞行限制。由几个NASA中心和其他研究机构组成的团队组成了一个小组,以调查并确定故障的根本原因。要求JSC材料评估实验室对四种不同的RCS推进器的燃料闭合板(钛6Al-4V)和喷油器(铌C-103合金)之间的外侧圆周电子束(EB)焊缝进行比较和表征,包括失效的RCS推进器。由于两种合金和双金属焊缝在硬度,延展性和耐化学性方面的差异,因此在研磨/抛光,特别是蚀刻中遇到了几个金相学难题。从舷外焊缝上切下每个推进器的部分。使用导电的碳填充环氧树脂将这些段热压安装。使用了钛合金的研磨/抛光程序[1]。此程序在钛上效果很好;但是通过偏振光,铌表面上可见一个薄薄的扰动层。抛光后,使用明场,差分干涉对比光学显微镜和使用背向散射电子(BSE)检测器的扫描电子显微镜(SEM)对每个样品进行显微照相。在任何横截面中均未观察到典型的焊接异常。但是,在焊核中,特别是沿着钛和铌之间的熔合线界面,原子对比明显的区域清晰可见。这促使需要更好地了解焊缝的化学和微观结构(图2)。能量色散X射线光谱法(EDS)用于确认这些区域对比度变化的化学成分。由于铌的耐化学性,与钛合金相比,铌合金通常需要暴露于更具腐蚀性的化学试剂中。因此,首先要腐蚀样品的钛部分。在Kroll试剂中浸泡五秒钟后,样品的钛部分呈现出一般的微观结构。然而,由于较高的精炼晶粒浓度和η相增加,最接近焊缝的钛热影响区被过度蚀刻。 Kroll腐蚀剂还显示出焊核本身的一些微观结构。样品的铌部分仍未蚀刻。

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    Martinez, James;

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  • 年度 2011
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