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Silicon Carbide Ceramic Particulate Reinforced AA2024 Alloy Composite-Part I: Evaluation of Mechanical and Sliding Tribology Performance

机译:碳化硅陶瓷颗粒增强AA2024合金复合材料第一部分:对机械和滑动摩擦学性能的评估

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In this research work, a master batch (comprising of AA2024 alloy, Silicon Nitride (Si3N4) and Graphite particulates) was reinforced by Silicon-Carbide (SiC) ceramic particulates (0-6 wt.-%; at steps of 2%; i.e. four composites samples viz. ASC-0; ASC-2; ASC-4; ASC-6) with the aim of enhancing mechanical and sliding tribology performance. The semi-automatic stir-casting fabrication process was followed as per standard industrial practice in-order-to fabricate the sample plates of the said alloy composites as per design. Thereafter, the sample specimens were prepared via wire EDM cutting followed by polishing over emery paper; as per ASTM standard dimensions and various physical (density and void content), mechanical (tensile strength, flexural strength, impact strength, hardness etc.), sliding tribology performance (steady state sliding wear; ASTM G-99; Pin-on-Disc tribo-meter), thermal (thermal conductivity, Thermo-Gravimetric Analysis (TGA)); thermo-mechanical (Dynamic Mechanical Analysis (DMA)), fracture-analysis, X-ray diffraction (XRD) etc. characterisation were performed and discussed. In Part-1: Physical, mechanical and sliding tribology performances were discussed. The Taguchi design of experiment technique was employed for designing of experimental runs having input controlling parameters like sliding velocity (0.654-2.616 m/s), sliding distance (784.8-3139.2 m), normal load (5-50 N), reinforcement content (0-6 wt.-%) and environment temperature (20-50 degrees C). The worn surface morphology studies were performed to understand prevalent wear mechanism using Field Emission Scanning Electron Microscope (FESEM) along with Energy-dispersive X-ray spectroscopy (EDS) that reveals elemental composition and its dispersion on the surface. In Part-2: evaluation of characterizations like thermal, thermo-mechanical, fracture-analysis, X-ray diffraction (XRD) etc. were discussed in correlation with mechanical and sliding wear performance. In Part-3: the entire performance data are analysed using hybrid AHP-TOPSIS technique (an MCDM technique; computationally simple and easy to understand) in-order-to rank the composites formulations.
机译:在该研究中,通过碳化硅(SiC)陶瓷颗粒(0-6重量%;千分比颗粒,增强了母料(包含AA2024合金,氮化硅(Si 3 N)和石墨颗粒;按步骤2%;即四个复合材料样本viz。ASC-0; ASC-2; ASC-4; ASC-6),目的是提高机械和滑动摩擦学性能。按照标准工业实践,按顺序遵循半自动搅拌制造工艺 - 根据设计制造所述合金复合材料的样品板。此后,通过电线EDM切割制备样品样品,然后抛光砂纸;根据ASTM标准尺寸和各种物理(密度和空隙含量),机械(抗拉强度,弯曲强度,冲击强度,硬度等),滑动摩擦学性能(稳态滑动磨损; ASTM G-99;引脚盘摩擦仪),热导电,热重量分析(TGA));热机械(动态机械分析(DMA)),断裂分析,X射线衍射(XRD)等进行并讨论。在第1部分:讨论了物理,机械和滑动摩擦学表演。实验技术的TAGUCHI设计用于设计具有输入控制参数的实验运行,如滑动速度(0.654-2.616 m / s),滑动距离(784.8-3139.2 m),正常负载(5-50n),加固含量( 0-6重量%)和环境温度(20-50℃)。进行磨损的表面形态学研究以了解使用场发射扫描电子显微镜(FESEM)以及能量分散X射线光谱(EDS)的普遍存在磨损机理,所述能量分散X射线光谱(EDS)揭示了元素组成及其在表面上的分散体。在第2部分:在与机械和滑动磨损性能相关的情况下讨论了热,热机械,断裂分析,X射线衍射(XRD)等表征的评估。在第3部分中:使用混合AHP-TOPSIS技术(MCDM技术;计算简单且易于理解)分析整个性能数据 - 以排序复合材料配方。

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