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Microstructural Characterisation of Copper- Stainless Steel brazed joint with Copper based filler metal

机译:铜基钎料铜不锈钢钎焊接头的显微组织表征

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Copper to stainless steel brazed components are used in the thrust chamber of cryogenic propulsion system of Indian Space Programme. Temperature and time play a major role in the optimization of brazing cycle. An effort has been made to study the influence of the above parameters and correlate with the microstructure and shear strength achieved. In the present work, brazing was performed using Cu based filler metal. Temperature selected was within the range of 1010-1045 ℃ for two different time durations (20 minutes and 30 minutes) under high vacuum (10~(-5) Torr). Extensive scanning electron microscopy with energy dispersive spectrometry was carried out to understand the kinetics of elemental diffusion and phase formation at and near the brazed joint. Microhardness was evaluated across the joints to facilitate further understanding of the joint chemistry. The optimized shear strength of the joints was as high as 155 MPa for the joint brazed at 1030 ℃ for 30 minutes against the required strength of 150 MPa. The joint could retain strength at cryo temperature and meet the minimum expected value of 320 MPa. At the same time, it exhibited good mechanical properties at elevated temperatures. This paper brings out details of the investigation carried out.
机译:印度航天计划的低温推进系统的推力室使用铜制不锈钢钎焊组件。温度和时间在优化钎焊循环中起着重要作用。已努力研究上述参数的影响,并将其与所获得的微观结构和剪切强度相关联。在本工作中,使用铜基钎料进行钎焊。在高真空(10〜(-5)Torr)下,在两个不同的持续时间(20分钟和30分钟)内,温度选择在1010-1045℃范围内。进行了带有能量色散光谱的广泛扫描电子显微镜,以了解钎焊接头及其附近的元素扩散和相形成的动力学。评估了整个关节的显微硬度,以促进对关节化学的进一步了解。在1030℃钎焊30分钟的接头,接头的最佳剪切强度高达155 MPa,而所需的强度为150 MPa。该接头可以在低温下保持强度,并满足320 MPa的最小期望值。同时,它在高温下表现出良好的机械性能。本文提出了进行调查的细节。

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