首页> 外文期刊>Rapid prototyping journal >Microstructure and mechanical property of TiB reinforced Ti matrix composites fabricated by ultrasonic vibration-assisted laser engineered net shaping
【24h】

Microstructure and mechanical property of TiB reinforced Ti matrix composites fabricated by ultrasonic vibration-assisted laser engineered net shaping

机译:超声波振动辅助激光工程网塑造制造的Tib加固Ti基质复合材料的微观结构和力学性能

获取原文
获取原文并翻译 | 示例
           

摘要

Purpose The purpose of this paper is to identify if the implementation of ultrasonic vibration in laser engineered net shaping (LENS) process can help to reduce internal weaknesses such as porosity, coarse primary TiB whisker and heterogeneous distribution of TiB reinforcement in the LENS-fabricated TiB reinforced Ti matrix composites (TiB-TMC) parts. Design/methodology/approach An experimental investigation is performed to achieve the results for comparative studies under different fabrication conditions through quantitative data analysis. An approach of microstructural characterization and mechanical testing is conducted to obtain the output attributes. In addition, the theoretical analysis of the physics of ultrasonic vibration in the melting materials is presented to explain the influences of ultrasonic vibration on the microstructural evolution occurred in the part fabrication. Findings Because of the nonlinear effects of acoustic streaming and cavitation induced by ultrasonic vibration, porosity is significantly reduced and a relatively small variation of pore sizes is achieved. Ultrasonic vibration also causes the formation of smaller TiB whiskers that distribute along grain boundaries with a homogeneous dispersion. Additionally, a quasi-continuous network (QCN) microstructure is considerably finer than that produced by LENS process without ultrasonic vibration. The refinements of both reinforcing TiB whiskers and QCN microstructural grains further improve the microhardness of TiB-TMC parts. Originality/value The novel ultrasonic vibration-assisted (UV-A) LENS process of TiB-TMC is conducted in this work for the first time to improve the process performance and part quality.
机译:目的本文的目的是识别激光工程网整形(镜片)过程中超声波振动的实施可以有助于降低镜片制造的TIB中的孔隙率,粗初级TIB晶须等内部弱点,以及镜片制造的TIB中的TIB加固的异构分布增强Ti矩阵复合材料(TIB-TMC)零件。设计/方法/方法通过定量数据分析来进行实验研究以实现不同制造条件下的比较研究的结果。进行了微观结构表征和机械测试的方法以获得输出属性。此外,提出了熔融材料中超声振动物理学的理论分析,以解释超声波振动对部件制造中的微观结构演化的影响。发现由于超声波振动引起的声学流和空化的非线性效应,孔隙率显着降低,实现了孔隙尺寸的相对较小的变化。超声波振动还导致形成沿均匀分散的晶界分布的较小底盖晶片。另外,准连续网络(QCN)微结构比没有超声振动的透镜工艺产生的那么细。增强TIB晶须和QCN微观结构晶粒的改进进一步改善了TIB-TMC部件的显微硬度。原创性/值首次进行TIB-TMC的新型超声波振动辅助(UV-A)镜头过程,以提高过程性能和部件质量。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号