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Electrical Discharge Machining of Alumina-Zirconia-TiC Composites with varying zirconia content

机译:氧化锆含量不同的氧化铝-氧化锆-钛陶瓷复合材料的放电加工

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Ceramic injection molding (CIM) or extrusion requires molds and dies with high hardness to reduce tool wear which occurs due to processing of highly abrasive ceramic compounds. Besides the wear resistance, high strength and toughness are necessary for mold materials to withstand the loads during application. Recent work of the authors has shown the high potential of electrical discharge machinable ceramic composites based on oxide ceramic matrices for high wear applications. The use of alumina zirconia composites (AZC) as matrix for electrically conductive ceramics enables the combination of high hardness of alumina and high strength and toughness of zirconia in order to customize the properties of the mold material. This study focuses on development of ED machinable AZCs with addition of 24 vol.-% titanium carbide as electrically conductive phase. The composition of the matrix was varied from pure alumina to pure zirconia in 5 steps. Disks for mechanical and electrical characterization and electric discharge machining experiments were manufactured by hot pressing. Results show that hardness, strength and toughness can be almost linearly correlated to composition from pure alumina matrix with a 4-point bending strength of 430 Mpa, a hardness of 2250 HV10 and a toughness of 3.7 MPaVm to pure zirconia matrix with 1020 Mpa bending strength, 1490 HV10 and a toughness of 5.9 MPaVm. Variation of matrix composition also leads to significantly different EDM characteristics. The material removal rate shows a maximum at 19 vol.-% zirconia and 58 vol.-% alumina while surface roughness of the machined composites decreases significantly with increasing zirconia amount. SEM analysis was made to identify removal mechanisms of each ceramic matrix phase. It was found that alumina tends to be removed by vaporization due to electrical discharges. Zirconia, which has a higher melting and vaporization point than alumina melts during the formation of the plasma channel. Zirconia cannot be removed in total from the surface but forms a smooth and compact amorphous layer of resolidified material on both sample and electrode.
机译:陶瓷注射成型(CIM)或挤出需要具有高硬度的模具,以减少由于加工高磨蚀性陶瓷化合物而产生的工具磨损。除耐磨性外,高强度和高韧性对于模具材料在应用过程中承受载荷也是必需的。作者的最新工作表明,基于氧化物陶瓷基体的可放电加工的陶瓷复合材料在高磨损应用中具有很高的潜力。氧化铝-氧化锆复合材料(AZC)作为导电陶瓷的基质的使用可将氧化铝的高硬度与氧化锆的高强度和韧性相结合,以定制模具材料的性能。这项研究的重点是通过添加24%(体积)的碳化钛作为导电相来开发ED可加工的AZC。基质的组成从纯氧化铝到纯氧化锆分5个步骤。通过热压制造用于机械和电气表征以及放电加工实验的盘。结果表明,硬度,强度和韧性几乎与纯氧化铝基质的成分线性相关,该纯氧化铝基质的四点弯曲强度为430 Mpa,硬度为2250 HV10,韧性为3.7 MPaVm,与纯氧化锆基质的弯曲强度为1020 Mpa ,1490 HV10和5.9 MPaVm的韧性。基质组成的变化还导致EDM特性显着不同。材料去除率在氧化锆含量为19%(体积)和氧化铝含量为58%(体积)时显示出最大值,而加工复合材料的表面粗糙度随氧化锆含量的增加而显着降低。进行SEM分析以鉴定每个陶瓷基质相的去除机理。已经发现,由于放电,氧化铝易于通过汽化除去。在等离子体通道的形成过程中,氧化锆的熔点和汽化点高于氧化铝,而氧化铝的熔点更高。氧化锆不能从表面完全去除,但会在样品和电极上形成光滑且致密的非晶态无定形的再固化材料层。

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