Enhancement of Tensile Strength of Coconut Shell Ash Reinforced Al-Si Alloys: A Novel Approach to Optimise Composition and Process Parameters Simultaneously

Processes Pub Date : 2024-07-19 DOI:10.3390/pr12071521
M. Poornesh, S. Bhat, Pavana Kumara Bellairu, Olivia McDermott
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Abstract

The research presents a novel approach to develop high-strength functionally graded composite materials (FGCMs) by using recycled coconut shell ash (CSA) particles as reinforcement for a hypereutectic Al-Si alloy matrix. Using a centrifugal casting technique, test specimens are prepared for the study under ASTM standards. The optimal combination of materials to maximise the materials’ overall tensile strength is obtained through the mixture methodology approach. The results show that CSA particles in the matrix material increase the tensile strength of the produced material. Process parameters, melting temperature and rotating speed were found to play a pivotal role in determining the tensile strength. A better tensile strength of the material is obtained when Al-Si = 90.5 wt%, CSA = 9.5 wt%, rotating speed = 800 RPM, and melting temperature = 800 °C; the proposed regression model developed has substantial predictability for tensile strength. This work presents a methodology for enhancing the tensile strength of FGCMs by optimising both the material composition and processing parameters. The achieved tensile strength of 197.4 MPa, at 800 RPM and 800 °C, for a concentration of 7.5 wt% CSA particles, makes these FGCMs suitable for use in multiple engineering sectors.
提高椰壳灰强化铝硅合金的拉伸强度:同时优化成分和工艺参数的新方法
该研究提出了一种新方法,即利用回收椰壳灰(CSA)颗粒作为次共晶铝硅合金基体的增强材料,来开发高强度功能分级复合材料(FGCM)。研究采用离心铸造技术,根据 ASTM 标准制备试样。通过混合物方法获得了材料的最佳组合,以最大限度地提高材料的整体抗拉强度。结果表明,基体材料中的 CSA 颗粒提高了生产材料的抗拉强度。研究发现,工艺参数、熔化温度和旋转速度在决定拉伸强度方面起着关键作用。当 Al-Si = 90.5 wt%、CSA = 9.5 wt%、旋转速度 = 800 RPM 和熔化温度 = 800 °C 时,材料的抗拉强度较好;所提出的回归模型对抗拉强度具有很强的预测能力。本研究提出了一种通过优化材料成分和加工参数来提高 FGCM 拉伸强度的方法。在 800 RPM 和 800 °C、CSA 颗粒浓度为 7.5 wt% 的条件下,拉伸强度达到 197.4 MPa,使这些 FGCM 适用于多个工程领域。
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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