首页> 外文会议>ASME international mechanical engineering congress and exposition >ASSESSMENT OF INDUCED DELAMINATION DURING END-MILLING OF NATURAL FIBER REINFORCED COMPOSITES: A STATISTICAL ANALYSIS
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ASSESSMENT OF INDUCED DELAMINATION DURING END-MILLING OF NATURAL FIBER REINFORCED COMPOSITES: A STATISTICAL ANALYSIS

机译:天然纤维增强复合材料最终铣削过程中诱发脱层的评估:统计分析

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The use of natural fiber reinforced composites has emerged as an advantageous option in many industrial applications. Generally, composites are manufactured in net or near-net shape, but under specific design specifications, secondary manufacturing processes such as drilling, milling and turning become a requirement. In this context, current paper presents an experimental study that investigates the machinability of newly developed natural fiber composites under conventional end-milling. Two types of bio-composites; date palm fronds reinforced polypropylene (DPF/PP) and pine needles reinforced polypropylene composite (PN/PP) were developed and physically tested in order to optimize their mechanical strength. Then, machinability of such class of bio-composites is statistically analyzed using Design of Experiment method. Statistical modeling including response surface plots are utilized to analyze the combined effect of input processing parameters (feed rate, axial depth, spindle speed) on the induced delamination during end-milling. It is shown that feed rate is the most dominant factors in DPF/PP milling, and axial depth of cut is the most significant factor on PN/PP milling. Results are also compared with those of milled neat polypropylene, which confirm that delamination of machined bio-composites can be improved over the neat polypropylene matrix. This qualifies the developed bio-composites to be used in industrial applications in which machining is required.
机译:在许多工业应用中,天然纤维增强复合材料的使用已成为一种有利的选择。通常,复合材料以网状或近网状形状制造,但是在特定的设计规范下,诸如钻孔,铣削和车削之类的二级制造工艺成为必要条件。在这种情况下,当前论文提出了一项实验研究,该研究研究了新开发的天然纤维复合材料在常规立铣刀下的可加工性。两种类型的生物复合材料;枣棕叶增强聚丙烯(DPF / PP)和松针增强聚丙烯复合材料(PN / PP)经过物理测试,以优化其机械强度。然后,使用“实验设计”方法对此类生物复合材料的可加工性进行统计分析。统计模型(包括响应面图)用于分析端铣削过程中输入加工参数(进给速度,轴向深度,主轴转速)对引起的分层的综合影响。结果表明,进给速度是DPF / PP铣削中最主要的因素,而轴向切削深度是PN / PP铣削中最重要的因素。还将结果与碾磨的纯聚丙烯的结果进行了比较,这证实了与纯聚丙烯基质相比,可改善机加工生物复合材料的分层。这证明了开发的生物复合材料可用于需要机加工的工业应用中。

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