核部件异种金属合金52焊缝热老化及显微组织研究

M. Yescas, P. Joly, F. Roch
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引用次数: 1

摘要

核电站铁素体低合金钢重截面构件与奥氏体不锈钢管道段之间存在异种金属焊缝。在最新的FRAMATOME压水堆(PWR) EPR™设计中,这些DMW涉及窄间隙技术,没有黄油,每层只有一个镍基合金焊缝填充金属(alloy 52)。为了评估这种相对较新的窄间隙DMW设计的热老化性能,几年前启动了一项重要的内部研发计划。几个代表性的模型在初始条件和热老化条件下进行了彻底的表征,在350°C下老化长达50,000小时。表征集中在铁素体低合金钢(LAS)和镍基合金之间的熔合线上,因为该区域存在特定的显微组织,特别是在热影响区(HAZ)的碳耗尽区域,该区域通常被认为是焊接接头的薄弱区域。在不同的热时效条件下,对不同的试样进行了金相、硬度、纳米硬度、化学分析、原子探针层析成像和断裂韧性测试。结果表明,低合金钢与DMWs的合金52焊缝金属界面处的失碳热影响区在延脆域的断裂韧性表现优异,即使在使用温度下达到相当于60年的热时效。尽管热影响区存在缺碳区、硬度、化学成分(尤其是碳梯度)的变化以及晶界处磷偏析引起的热时效效应,但仍发现了这一点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermal Aging Assessment and Microstructural Investigations of Alloy 52 Dissimilar Metal Welds for Nuclear Components
Dissimilar Metal Welds (DMW) are commonly found between the ferritic low alloy steel heavy section components and the austenitic stainless steel piping sections in nuclear power plants. In the EPR™ design which is the latest FRAMATOME Pressurized water reactor (PWR) these DMW involve a narrow gap technology with no buttering, and only one bead per layer of a nickel base alloy weld filler metal (Alloy 52). In order to assess the thermal aging performance of this relatively new narrow gap DMW design, a significant internal R&D program was launched some years ago. Several representative mock-ups were thoroughly characterized in the initial condition as well as in the thermal aged condition, up to 50,000 hours aging at 350°C. The characterisations were focused on the fusion line between the ferritic low alloy steel (LAS) and the nickel base alloy since a particular microstructure is present in this area, especially in the carbon depleted area of the Heat Affected Zone (HAZ) which is often regarded as the weak zone of the weld joint. Metallography, hardness, nanohardness, chemical analyses, and Atom Probe Tomography, as well as fracture toughness tests were carried out on different specimens in different thermal aging conditions. The results show that the fracture toughness behaviour in the ductile-brittle domain of the low alloy steel carbon depleted HAZ at the interface with the alloy 52 weld metal of the DMWs is excellent, even for a thermal ageing equivalent to 60 years at service temperature. This was found in spite of the carbon depleted zone of the HAZ, the variations of hardness, chemical composition, particularly the carbon gradients, and the thermal aging effect induced by phosphorous segregation at grain boundaries.
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