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Additive Manufacturing of Ceramic Products Based on Millimeter-Wave Heating

机译:基于毫米波加热的陶瓷产品添加剂制造

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Additive manufacturing of ceramic articles making use of concentrated energy flows attracts the research interest worldwide. While the application of laser beams faces serious problems associated with high temperature of sintering and low thermal conductivity of ceramics, layer-by-layer sintering by focused millimeter-wave radiation appears to be a promising method of additive manufacturing. This paper describes the studies of fast millimeter-wave sintering of yttria-stabilized zirconia and hydroxyapatite ceramics. Coefficients of the millimeter-wave absorption have been determined in broad frequency and temperature ranges. Rapid sintering of compacted ceramics samples was accomplished using volumetric microwave heating in a work chamber of a 24 GHz / 5 kW gyrotron system. In addition, using a 263 GHz / 1 kW cwgyrotron millimeter-wave source and a purposely designed electrodynamic focusing structure, radiation intensities of up to 20 kVV7cm2could be achieved, which was sufficient for fast localized heating of ceramic layers to the solidification temperature. The results of a study of the microstructure and mechanical properties of the sintered ceramics are presented.
机译:使用浓缩能量流动的陶瓷制品的添加剂制造吸引了全世界研究兴趣。虽然激光束的应用面向与烧结高温相关的严重问题,但陶瓷的低导热率,通过聚焦毫米波辐射的层逐层烧结似乎是一种有希望的添加剂制造方法。本文介绍了氧化钇稳定的氧化锆和羟基磷灰石陶瓷快速毫米波烧结的研究。毫米波吸收的系数已经以宽的频率和温度范围确定。使用24GHz / 5 kW陀螺仪系统的工作室中的体积微波加热完成压实陶瓷样品的快速烧结。另外,使用263GHz / 1 kW CWGGYROTRON毫米波源和无意设计的电动聚焦结构,实现高达20kVV7CM2可通配的辐射强度,这足以使陶瓷层的快速局部加热到凝固温度。介绍了烧结陶瓷的微观结构和机械性能研究的结果。

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