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Mask-Less Pocket Milling of Composites by Abrasive Waterjets: An Experimental Investigation

机译:磨料水刀对复合材料进行无面罩铣削的实验研究

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摘要

Milling pockets in advanced engineering composite materials (AECMs) by conventional methods is difficult due to machinability issues, such as heterogeneous constituents, softening of heat sensitive resin matrix, delamination, fiber pull-out, carcinogenic gases, and dust. On the other hand, waterjet (WJ) machining, among the unconventional approaches, is well known for machining a wide range of AECMs due to its unique features, exertion of low cutting force, low heat generation, no dangerous fume development and low airborne dust. However, from the preliminary studies, it was found that the conventional pocket milling tool path strategies existing in standard computer aided design (CAD) packages cannot be employed directly in milling AECMs with the WJs due to various reasons, such as less strength of composite materials in the transverse direction to the fiber orientation, and aggressive nature of high energy WJs. To address these issues, a novel jet path strategy for mask-less milling of pockets was proposed. This approach takes into account the nature of the highly aggressive fluidjets, the physical structure of the AECMs, and the limitations of the existing hardware controllers, which are not specifically designed for jet machining, while manoeuvring the jet over the surface to avoid undesired excessive erosion arid contributes to the elimination of sacrificial masks. The proposed strategy is demonstrated by pocket milling of difficult to machine AECMs (glass and carbon fiber) by the WJ and abrasive waterjets (AWJ) along with geometric analysis on the pockets. The influence of various process parameters, such as water pressure, jet traverse rate, standoff distance (SOD), number of passes, on the milled surfaces was studied. Furthermore, the damage at various regions of the pocket was analyzed by scanning electron microscopy, to find out the causes of surface damages and re-cast of resin layer to address the damage was suggested. The effect of consideration of composite material's physical structure while milling was successfully demonstrated by generating pockets with minimum damage to the reinforcing fibers and delamination. A selection procedure between AWJs and WJs was proposed depending on the scaling of the targeted milling depth and precision required. Finally, modifications to the machine tool hardware controllers are suggested for efficient milling of AECMs.
机译:由于可加工性问题,例如异质成分,热敏树脂基体的软化,分层,纤维拉出,致癌气体和粉尘,通过常规方法很难在高级工程复合材料(AECM)中铣削凹槽。另一方面,在非常规方法中,水刀(WJ)加工因其独特的功能,低切削力,低热量产生,无危险的烟尘产生和低的浮尘而闻名,可加工多种AECM。 。但是,从初步研究中发现,由于各种原因(例如复合材料的强度较低),无法将标准计算机辅助设计(CAD)软件包中存在的常规腔铣刀路径策略直接用于带有WJ的AECM铣削中。纤维取向的横向方向,以及高能WJ的侵蚀性。为了解决这些问题,提出了一种用于无掩模铣削腔的新颖的喷射路径策略。这种方法考虑到了高侵略性流体射流的特性,AECM的物理结构以及现有的硬件控制器的局限性,这些硬件控制器并非专门为进行射流加工而设计,同时还要对表面上的射流进行操纵以避免不必要的过度腐蚀干旱有助于消除牺牲面具。 WJ和磨料水射流(AWJ)对难于加工的AECM(玻璃和碳纤维)进行袋式铣削以及对袋腔进行几何分析,证明了所提出的策略。研究了水压,射流横移速率,支座距离(SOD),通过次数等各种工艺参数对铣削表面的影响。此外,通过扫描电子显微镜分析了袋的各个区域的损伤,以找出表面损伤的原因,并提出了重铸树脂层以解决损伤的建议。铣削时考虑到复合材料的物理结构的效果已通过产生对增强纤维的损伤和分层最小化的凹坑得以成功证明。根据目标铣削深度的比例和所需的精度,提出了在AWJ和WJ之间的选择程序。最后,建议对机床硬件控制器进行修改,以实现AECM的高效铣削。

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