Microstructural and wear properties of iron slag reinforced aluminum alloy (LM30) based composite prepared through a stir casting method

Harvir Singh, Aayush Gupta
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Abstract

Aluminum alloys are widely used in various industries due to their as low density, high strength-to-weight ratio, and good corrosion resistance. However, their wear resistance is often inadequate for certain applications. Utilization of industrial waste materials, such as iron slag, as reinforcement in aluminum alloy matrix composites offers a sustainable approach to material development and waste management. The utilization of industrial waste materials for aluminum alloy matrix composite fabrication offers a waste utilization to material development. The loading of this reinforcement varied from 0 to 15 wt.% and different particle size range (220-140, 140-70, and 70-0 µm). A microscopic analysis indicated that the iron slag particles are spread uniformly inside the metallic matrix. There is also a reduction in the size of primary silicon, as well as morphological changes (acicular to globular shape). The wear behavior was calculated using a pin-on-disk wear set up in accordance with ASTM G99 standard. The composites were employed to dry sliding wear test under various operating conditions such as applied pressure (0.2–1.4 MPa), and sliding distance (0–3000 m). The 15F composite outperformed all other composite samples in terms of wear rate under all working conditions. When compared to the base alloy, it demonstrated a remarkable 67% drop in steady state wear rate. The enhancements in wear performance for the 15F composite were attributed to the effects of Fe slag reinforcement. The inclusion of iron slag particles induced strong interfacial bonding between matrix and reinforcement particles improving the durability of the mechanical mixed layer developed during relative motion. Importantly, the wear rate parameters of the 15F composite were similar to those of the brake drum material used in commercial applications. This emphasizes the composite suitability for usage in a variety of automobile components.
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搅拌铸造法制备的铁渣强化铝合金(LM30)基复合材料的微观结构和磨损性能
铝合金密度低、强度重量比高、耐腐蚀性好,因此被广泛应用于各行各业。然而,它们的耐磨性往往不足以满足某些应用的需要。利用铁渣等工业废料作为铝合金基复合材料的增强材料,为材料开发和废物管理提供了一种可持续的方法。利用工业废料制造铝合金基复合材料为材料开发提供了一种废物利用方法。这种增强材料的负载量从 0 到 15 wt.%不等,粒度范围也不同(220-140、140-70 和 70-0 µm)。显微分析表明,铁渣颗粒均匀地分布在金属基体中。原生硅的尺寸也有所减小,形态也发生了变化(从针状变为球状)。根据 ASTM G99 标准,使用针盘磨损装置计算了磨损行为。在不同的操作条件下,如施加压力(0.2-1.4 兆帕)和滑动距离(0-3000 米),对复合材料进行了干滑动磨损测试。在所有工作条件下,15F 复合材料的磨损率均优于所有其他复合材料样品。与基合金相比,它的稳态磨损率显著下降了 67%。15F 复合材料磨损性能的提高归因于铁渣强化的效果。铁渣颗粒的加入使基体和增强颗粒之间形成了牢固的界面结合,提高了相对运动过程中形成的机械混合层的耐久性。重要的是,15F 复合材料的磨损率参数与商业应用中的制动鼓材料相似。这说明这种复合材料适用于各种汽车部件。
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来源期刊
CiteScore
3.80
自引率
10.00%
发文量
625
审稿时长
4.3 months
期刊介绍: The Journal of Mechanical Engineering Science advances the understanding of both the fundamentals of engineering science and its application to the solution of challenges and problems in engineering.
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