利用响应面方法优化含有(SiC + TiB2)纳米粒子的 AA7050 多通道 FSP 的输入和输出响应

Bharat Singh Chittoriya, A. Jayant, Rakesh Kumar
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摘要

在这项工作中,基于中心复合设计和冶金表征,采用响应面方法学分析了添加(SiC + TiB2)纳米粒子的 AA7050 多程摩擦搅拌加工(MPFSP)的输出和输入响应的多响应优化,并讨论了 MPFSP 的最佳参数。在使用 50% TiB2 和 100% SiC 纳米粒子的 1100 rpm 高工具转速(TRS)下,由于 SiC 和 TiB2 在基体中均匀分散,成为位错运动的实际障碍,阻碍了塑性变形,并促进了机械性能的提高,因此观察到了最高的接合效率(137.80%)。MPFS 和纳米颗粒打破了基体金属的粗大晶粒结构,在搅拌区形成了细小均匀的晶粒结构。增加增强粒子的浓度和 FSP 次数(1 至 4 次)可抑制晶界迁移,并显著降低高角度晶界和晶粒尺寸。输入参数 TRS、TiB2 纳米粒子和 SiC 纳米粒子的优化值分别为 1068 rpm、56% 和 97%,而输出响应抗拉强度、应变率和硬度值的优化值分别为 569.16 MPa、20.79 和 148.32 HV。三个模型的 p 值均低于 0.05,表明所构建模型的置信度超过 95%,适合用于设计探索。MPFSP/(SiC + TiB2) 的硬度值范围介于 130 HV 和 190 HV 之间。在 0% TiB2 和 50% SiC 增强颗粒、TRS 为 1100 rpm 的情况下,观察到的最小硬度值为 131.03 HV,而在 1000 rpm 的情况下,观察到的显微硬度最高(187.02 HV)。
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Multi-response optimization of input and output responses of multipass FSP of AA7050 with (SiC + TiB2) nanoparticles by response surface methodology
In this work, multi-response optimization of output and input responses of multipass friction stir processing (MPFSP) of AA7050 with (SiC + TiB2) nanoparticles by response surface methodology based on the center composite design and metallurgical characterization were analyzed, and the optimum parameters of the MPFSP were discussed. At high tool rotational speed (TRS) of 1100 rpm with 50% TiB2 and 100% SiC nanoparticles, maximum joint efficiency (137.80%) was observed due to uniformly dispersed SiC and TiB2 within the matrix, serving as practical obstacles to dislocation motion, hindering plastic deformation, and facilitating enhanced mechanical properties. MPFS and nanoparticles broke the coarse grain structure of the base metal and produced a fine and homogenous grain structure in the stir zone. Increasing the concentration of reinforcement particles and FSP passes (1 to 4) inhibited grain boundary migration and significantly reduced the high-angle grain boundary and grain size. The optimized value of input parameters TRS, TiB2 nanoparticles, and SiC nanoparticles was observed as 1068 rpm, 56%, and 97%, while the optimized value of output response tensile strength, % strain, and hardness value was found as 569.16 MPa, 20.79, and 148.32 HV respectively. The p-value for all three models remained below 0.05, indicating a confidence level exceeding 95% in the constructed models, rendering them suitable for design exploration. The hardness value range of MPFSP/(SiC + TiB2) lies between 130 HV and 190 HV. The minimum hardness value of 131.03 HV was observed at 0% TiB2 and 50% SiC reinforcement particles with TRS of 1100 rpm, while the highest microhardness (187.02 HV) was perceived at 1000 rpm.
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