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Ductility prediction of Ti aluminide intermetallics through euro-fuzzy set approach

机译:欧式模糊集方法预测铝化钛金属间化合物的延性

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Several studies have been conducted to improve the room temperature ductility of titanium aluminide intermetallics through alloy design and microstructure modifications. Ductility of two phase (alpha_2 + gamma) binary Ti aluminide intermetallics centered on Ti-48Al (at%) was reported as maximum (~1.5%) in desirable heat treatment condition and so more studies were attempted near to this composition. In the present work also, ductility has been studied for the alloy variants of this composition through fuzzy modeling. Neuro-fuzzy models were developed through Adaptive Neural Fuzzy Inference System (ANFIS) using subtractive cluster techniques. The input parameters were fuzzified with Gaussian membership functions to develop the fuzzy rules. The output of each rule was obtained by the evaluation of the membership values. Finally the overall fuzzy model response was obtained as the weighted average of the individual rule response. Ductility database were prepared and three parameters viz. alloy type, grain size and heat treatment cycle were selected for modeling. Additional, ductility data were generated from literature based experimental data for training and validation of models on the basis of linearity and considering the primary effect of these three parameters. Adequacy of developed models was evaluated with the generated data sets. Different evaluation measures were considered and the resulting graphs from the developed model were analyzed. The results of the fuzzy models were found to be very close to the literature based generated data and it also showed the possibility of improving ductility upto 7% for multicomponent alloy with grain size of 10-50|jjn following a multistep heat treatment cycle.
机译:已经进行了一些研究,以通过合金设计和微观结构改进来提高铝化钛金属间化合物的室温延展性。据报道,在理想的热处理条件下,以Ti-48Al(at%)为中心的两相(alpha_2 +γ)二元Ti铝化物金属间化合物的延展性最大(〜1.5%),因此尝试在该成分附近进行更多研究。在当前的工作中,也已经通过模糊建模研究了该成分合金变体的延展性。使用减法聚类技术通过自适应神经模糊推理系统(ANFIS)开发了神经模糊模型。使用高斯隶属函数对输入参数进行模糊处理以开发模糊规则。每个规则的输出是通过评估成员资格值获得的。最终,获得了总体模糊模型响应作为单个规则响应的加权平均值。准备了延展性数据库和三个参数。选择合金类型,晶粒尺寸和热处理周期进行建模。另外,延展性数据是从基于文献的实验数据中生成的,用于基于线性并考虑这三个参数的主要影响的模型的训练和验证。使用生成的数据集评估已开发模型的充分性。考虑了不同的评估方法,并分析了来自开发模型的结果图。发现模糊模型的结果与基于文献的生成数据非常接近,并且还表明,经过多步热处理循环后,晶粒度为10-50μm的多组分合金的延展性可提高7%。

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