首页> 外文会议>ASME international mechanical engineering congress and exposition >CFD STUDY OF PARTICLE AND COMPRESSIBLE FLOW INTERACTION FOR A TWIN WIRE ARC SPRAYING SYSTEM
【24h】

CFD STUDY OF PARTICLE AND COMPRESSIBLE FLOW INTERACTION FOR A TWIN WIRE ARC SPRAYING SYSTEM

机译:双线电弧喷涂系统颗粒与可压缩流动相互作用的CFD研究

获取原文

摘要

Plasma spraying is used in various industries for additive manufacturing applications to apply materials onto a workpiece. Such applications could be for the purpose of repair, protection against corrosion, wear-resistance, or enhancing surface properties. One plasma spraying method is the twin wire arc spraying (TWAS) process that utilizes two electrically conductive wires, across which an electric arc is generated at their meeting point. The molten droplets that are created are propelled by an atomizing gas towards a substrate on which the coating is deposited. The TWAS process offers low workpiece heating and high deposition rates at a lower cost compared to other plasma spraying techniques. As the spray angle for this technique is relatively large (15 degree half angle), particles are lost in the process, lowering the yield of deposited material. The motivation of this project was to constrict the particle flow and reduce the loss of particles that are ejected by the spraying torch. Torch nozzles were designed to help the particle trajectory match the axial flow direction of the atomizing gas flow. Simulations using ANSYS FLUENT Computational Fluid Dynamics (CFD) software was utilized to model both the atomizing gas flow and particle flow for a TWAS system. Various nozzle configurations with arc jet angles between 30-75 degrees showed only small effects on gas flow velocity and shape, with no significant variations in particle flow. These results indicate that nozzle configurations are only one factor in determining particle trajectory, and that phase changes and heat transfer need to be considered as well.
机译:等离子喷涂在各种行业中用于增材制造应用,以将材料施加到工件上。此类应用可能是出于维修,防腐蚀,抗磨损或增强表面性能的目的。一种等离子喷涂方法是双丝电弧喷涂(TWAS)工艺,该工艺利用两根导电线,在两根导电线的交汇点处会产生电弧。产生的熔融液滴被雾化气体推向沉积有涂层的基材。与其他等离子喷涂技术相比,TWAS工艺以较低的成本提供了较低的工件加热和较高的沉积速率。由于此技术的喷雾角度相对较大(半角为15度),因此在此过程中会损失颗粒,从而降低了沉积材料的产量。该项目的目的是限制颗粒流动并减少由喷枪喷射出的颗粒的损失。设计了割炬喷嘴,以帮助粒子轨迹与雾化气流的轴向流动方向匹配。利用ANSYS FLUENT计算流体动力学(CFD)软件进行的仿真可对TWAS系统的雾化气流和颗粒流进行建模。电弧喷嘴角度在30-75度之间的各种喷嘴配置仅对气体流速和形状产生很小的影响,而粒子流没有显着变化。这些结果表明,喷嘴配置只是确定粒子轨迹的一个因素,并且还需要考虑相变和传热。

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