DEVELOPMENT OF THE RAMBERG-OSGOOD MECHANICAL STRESS-STRAIN CURVE USING THE ARTIFICIAL NEURAL NETWORK METHOD TO EVALUATE MECHANICAL BEHAVIOUR OF 316L STAINLESS STEEL IN THE LIQUID LEAD

IF 0.3 Q4 MULTIDISCIPLINARY SCIENCES
Livia Stoica, V. Radu, Alexandru Nitu
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引用次数: 0

Abstract

Romania, through RATEN ICN, is involved in the construction of the ALFRED demonstrator (Advanced Lead Fast Reactor European Demonstrator), in which the core of the reactor uses cooling in the liquid lead environment. This constitutes one of the arguments for the development of studies on innovative materials of generation IV, having the stated objective of the problem of the contact between the liquid lead and the structural materials specific to this type of reactor. The purpose of this paper is to highlight the changes in the thermomechanical behaviour induced by the contact between the 316L austenitic steel and the liquid lead, as well as its modelling through the equation of the Ramberg-Osgood-type mechanical stress-strain curve. The tensile tests in air and liquid lead were carried out at strain rates of the specimens in the range 10-3 s-1 ~ 10-5 s-1 and in a range of temperatures 350oC - 400 oC. To highlight the changes induced by the contact with the liquid lead on the thermomechanical behaviour of the 316L steel, the artificial neural network method, called the "Multilayer Feedforward Neural Network", was used in the processing of the experimental database. The obtained Ramberg-Osgood-type mechanical stress-strain curve is applied for both the air and the liquid lead environment at a temperature of 375oC and includes the following parameters as input: temperature, strain rate, yield stress, and maximum stress at necking. The two equations obtained for the air environment and the liquid lead environment at a temperature of 375oC were verified to the experimental data and a very good prediction agreement was obtained.
RAMBERG-OSGOOD力学应力-应变曲线的建立用人工神经网络方法评价316L不锈钢在铅液中的力学行为
罗马尼亚通过RATEN ICN参与了ALFRED演示器(先进铅快堆欧洲演示器)的建设,其中反应堆堆芯在液态铅环境中使用冷却。这构成了发展第四代创新材料研究的论点之一,其既定目标是解决液体铅和这种类型反应器特有的结构材料之间的接触问题。本文的目的是强调316L奥氏体钢与液态铅接触引起的热机械行为的变化,以及通过Ramberg-Osgood型机械应力-应变曲线方程进行建模。在空气和液态铅中进行的拉伸试验,试样的应变速率范围为10-3s-1~10-5 s-1,温度范围为350℃-400℃。为了强调与液态铅接触对316L钢热机械性能的影响,在实验数据库的处理中使用了被称为“多层前馈神经网络”的人工神经网络方法。所获得的Ramberg-Osgood型机械应力-应变曲线适用于375℃温度下的空气和液态铅环境,并包括以下参数作为输入:温度、应变速率、屈服应力和颈缩时的最大应力。在375℃的温度下,空气环境和液体铅环境的两个方程与实验数据进行了验证,并获得了非常好的预测一致性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Science and Arts
Journal of Science and Arts MULTIDISCIPLINARY SCIENCES-
自引率
25.00%
发文量
57
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