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An energy conservative method to predict the erosive aggressiveness of collapsing cavitating structures and cavitating flows from numerical simulations

机译:一种能量保守方法,以预测折叠空化结构的腐蚀性侵蚀性和数值模拟的空化流量

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A new technique is proposed in this study to assess the erosive aggressiveness of cavitating flows from numerical flow simulations. The technique is based on the cavitation intensity approach by Leclercq et al. (2017), predicting the instantaneous surface impact power of collapsing cavities from the potential energy hypothesis (see Hammitt, 1963; Vogel and Lauterborn, 1988). The cavitation intensity approach by Leclercq et al. (2017) is further developed and the amount of accumulated surface energy caused by the near wall collapse of idealized cavity types is verified against analytical predictions. Furthermore, two different impact power functions are introduced to compute a weighted time average of the impact power distribution caused by the cavity collapses in cavitating flows. The extreme events are emphasized to an extent specified by a single model parameter. Thus, the impact power functions provide a physical measure of the cavitating flow aggressiveness. This approach is applied to four idealized cavities, as well as to the cavitating flow around a NACA0015 hydrofoil. Areas subjected to aggressive cavity collapse events are identified and the results are compared against experimental paint test results by Van Rijsbergen et al. (2012) and the numerical erosion risk assessment by Li et al. (2014). The model is implemented as a run-time post-processing tool in the open source CFD environment OpenFOAM (2018), employing the inviscid Euler equations and mass transfer source terms to model the cavitating flow. (C) 2018 Elsevier Ltd. All rights reserved.
机译:在本研究中提出了一种新技术,以评估从数值流量模拟中测量空化流的侵蚀性。该技术基于Leclercq等人的空化强度方法。 (2017),预测塌陷腔从潜在能量假设的瞬时表面冲击力(参见MAMMITT,1963; Vogel和Lauterborn,1988)。 Leclercq等人的空化强度接近。 (2017)进一步开发,验证了通过解析预测验证了由理想化腔类型的接近壁塌陷引起的累积表面能量。此外,引入了两种不同的冲击功率功能以计算由空腔流动中的腔塌陷引起的冲击功率分布的加权时间平均值。在单个模型参数指定的范围内强调了极端事件。因此,冲击功率功能提供了空化流动侵略性的物理测量。该方法应用于四个理想化的空腔,以及围绕NaCA0015水翼的空化流动。鉴定了对侵蚀性腔塌陷事件进行的区域,并将结果与​​Van Rijsbergen等人进行了实验涂料测试结果。 (2012)和Li等人的数值侵蚀风险评估。 (2014)。该模型在开源CFD环境OpenFoam(2018)中实现为运行时间后处理工具,采用INCISCID Euler方程和质量传输源术语来模拟空化流程。 (c)2018年elestvier有限公司保留所有权利。

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