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Numerical modelling of in-flight particle dynamics of non-spherical powder

机译:非球形粉末飞行中粒子动力学的数值模拟

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摘要

High velocity oxygen fuel (HVOF) is an important thermal spraying technology in depositing high quality coatings. Its ability to produce high particle velocities and relatively low particle temperatures is its most salient feature. Several computational fluid dynamic (CFD) models have been developed to study the in-flight particle behavior during thermal spraying. These models are limited to spherical particles, which are only appropriate for modelling gas atomised powders. On the other hand, hardmetal powders such as WC-Co are created using high energy ball milling and are not normally spherical. To examine the effect of particle morphology on particle dynamics, mathematical models are developed in the present paper to predict the in-flight particle behavior in a liquid fuelled HVOF thermal spray gun. The particle transport equations are coupled with the three-dimensional, chemically reacting, turbulent gas flow, and solved in a Lagrangian manner. The melting and solidification within the particles as a result of heat exchange with the surrounding gas flow are solved numerically. The results demonstrate that non-spherical particles gain more momentum and less heat during the HVOF process than spherical particles. Non-spherical particles are also predicted to stay closer to the center of the gas jet than spherical particles.
机译:高速氧气燃料(HVOF)是沉积高质量涂层的重要热喷涂技术。其产生高粒子速度和相对低粒子温度的能力是其最显着的特征。已经开发了几种计算流体动力学(CFD)模型来研究热喷涂过程中的飞行中粒子行为。这些模型仅限于球形颗粒,仅适用于模拟气体雾化粉末。另一方面,硬质合金粉末如WC-Co是使用高能球磨制成的,通常不是球形的。为了检查粒子形态对粒子动力学的影响,本文开发了数学模型来预测液体燃料HVOF热喷枪的飞行中粒子行为。粒子传输方程与三维化学反应湍流耦合,并以拉格朗日方式求解。通过数值解决了与周围气流进行热交换而导致的颗粒内部的熔化和固化。结果表明,非球形颗粒在HVOF过程中比球形颗粒获得更多的动量和更少的热量。还预计非球形颗粒比球形颗粒更靠近气体喷射中心。

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