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Numerical Simulation and Experimental Study of Powder Flow Distribution in High Power Direct Diode Laser Cladding Process

机译:大功率直接二极管激光熔覆过程中粉末流动分布的数值模拟与实验研究

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摘要

High power direct diode laser (HPDDL) offers a rectangular laser beam with top-flat intensity distribution making it an ideal tool for wide-clad deposition. In the HPDDL-based cladding process, the powder is commonly fed laterally through a wide nozzle into the molten pool by means of a carrier gas. In order to successfully utilize this cladding technique, the powder feeding behavior needs to be carefully controlled. In this study, based on an investigation of commercial powder feeding nozzles, a 3D computational fluid dynamics (CFD) based gas-powder flow model was developed. The effects of the nozzle exit geometry, powder properties (particle size, density and shape), and powder feeding parameters (powder feeding rate and carrier-gas flow rate) on the characteristics of the powder flow were studied. A high-speed CCD camera was used to capture the powder flow characteristics such as the particle velocity and particle distribution. Deposition experiments are also performed to verify the predicted powder catchment efficiency and to check the clad geometry.
机译:高功率直接二极管激光器(HPDDL)提供具有顶部平坦强度分布的矩形激光束,使其成为宽包层沉积的理想工具。在基于HPDDL的熔覆过程中,通常将粉末通过载气通过宽喷嘴横向输送到熔池中。为了成功利用这种熔覆技术,需要仔细控制送粉行为。在这项研究中,基于对商用粉末进料喷嘴的研究,开发了一种基于3D计算流体动力学(CFD)的气粉流动模型。研究了喷嘴出口的几何形状,粉末特性(粒度,密度和形状)以及粉末进料参数(粉末进料速率和载气流量)对粉末流动特性的影响。使用高速CCD相机捕获粉末流动特性,例如颗粒速度和颗粒分布。还进行沉积实验,以验证预测的粉尘收集效率并检查包层的几何形状。

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