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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >A parametric simulation model for HVOF coating thickness control
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A parametric simulation model for HVOF coating thickness control

机译:HVOF涂层厚度控制的参数化仿真模型

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摘要

High-velocity oxygen-fuel (HVOF) thermal spraying is a coating process involving multidisciplinary aspects, e.g., fuel-oxidant combustion, flame-particle jet, particle deposition, mass and heat transfer, and even robotic kinematics. Like most coating processes, in HVOF processes, coating thickness is a significant property determining the coating performance; hence, this property should be accurately controlled during the process. In view of green, smart, and digital manufacturing, the coating thickness prediction model is demanded to produce high-quality coatings efficiently. This paper presents an approach to parametrically simulate the coating thickness in HVOF processes via an integrated numerical model. Firstly, an axisymmetric computational fluid dynamics (CFD) model is constructed to compute the behaviors of the fuel-oxidant combustion, flame-particle jet, and particle deposition distribution. Secondly, based on the particle distribution in a 2D axisymmetric model, a 3D single coating thickness profile model is developed by constructing a circular pattern using the axis of the nozzle. Further, this profile is smoothened by a Gaussian model, and its mathematical expression is obtained. Finally, a numerical model couples spray paths with the mathematical expression to model the coating thickness distribution on a substrate surface under industrial scenarios. At the end of this paper, to verify the proposed model's effectiveness, four sets of operating parameters with a single straight path were experimentally implemented. The width and height of the bead-like shape coating were in good agreement with the simulated results. The normalized root-mean-square errors of the cross-sectional profile heights were around 10.
机译:高速氧燃料 (HVOF) 热喷涂是一种涉及多学科方面的涂层工艺,例如燃料氧化剂燃烧、火焰颗粒射流、颗粒沉积、传质和传热,甚至机器人运动学。与大多数涂层工艺一样,在HVOF工艺中,涂层厚度是决定涂层性能的重要特性;因此,在此过程中应准确控制该特性。鉴于绿色、智能、数字化制造,需要涂层厚度预测模型来高效生产高质量的涂层。本文提出了一种通过集成数值模型对HVOF工艺中的涂层厚度进行参数化模拟的方法。首先,构建轴对称计算流体力学(CFD)模型,计算燃料-氧化剂燃烧、火焰-粒子射流和粒子沉积分布等行为;其次,基于二维轴对称模型中的颗粒分布,利用喷嘴轴线构建圆形图案,建立了三维单涂层厚度剖面模型;进一步,通过高斯模型对该剖面进行平滑处理,并得到其数学表达式。最后,将喷涂路径与数学表达式耦合,对工业场景下基材表面的涂层厚度分布进行建模。最后,为了验证所提模型的有效性,通过实验实现了四组单直线路径的运行参数。珠状涂层的宽度和高度与模拟结果吻合较好。剖面剖面高度的归一化均方根误差约为10%。

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