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首页> 外文期刊>Computational Mechanics: Solids, Fluids, Fracture Transport Phenomena and Variational Methods >Space-time computational analysis of tire aerodynamics with actual geometry, road contact, tire deformation, road roughness and fluid film
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Space-time computational analysis of tire aerodynamics with actual geometry, road contact, tire deformation, road roughness and fluid film

机译:具有实际几何形状、路面接触、轮胎变形、路面粗糙度和液膜的轮胎空气动力学的时空计算分析

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The space-time (ST) computational method "ST-SI-TC-IGA" has recently enabled computational analysis of tire aerodynamics with actual tire geometry, road contact and tire deformation. The core component of the ST-SI-TC-IGA is the ST Variational Multiscale (ST-VMS) method, and the other key components are the ST Slip Interface (ST-SI) and ST Topology Change (ST-TC) methods and the ST Isogeometric Analysis (ST-IGA). These ST methods played their parts in overcoming the computational challenges, including (i) the complexity of an actual tire geometry with longitudinal and transverse grooves, (ii) the spin of the tire, (iii) maintaining accurate representation of the boundary layers near the tire while being able to deal with the flow-domain topology change created by the road contact, and (iv) the turbulent nature of the flow. The combination of the ST-VMS, ST-SI and the ST-IGA has also recently enabled solution of fluid film problems with a computational cost comparable to that of the Reynolds-equation model for the comparable solution quality. This was accomplished with the computational flexibility to go beyond the limitations of the Reynolds-equation model. Here we include and address the computational challenges associated with the road roughness and the fluid film between the tire and the road. The new methods we add to accomplish that include a remedy for the trapped fluid, a method for reducing the number of control points as a space occupied by the fluid shrinks down to a narrow gap, and a method for representing the road roughness. We present computations for a 2D test problem with a straight channel, a simple 2D model of the tire, and a 3D model with actual tire geometry and road roughness. The computations show the effectiveness of our integrated set of ST methods targeting tire aerodynamics.
机译:时空(ST)计算方法“ST-SI-TC-IGA”最近实现了对轮胎空气动力学的计算分析,包括实际的轮胎几何形状、道路接触和轮胎变形。ST-SI-TC-IGA 的核心组件是 ST 变分多尺度 (ST-VMS) 方法,其他关键组件是 ST 滑移界面 (ST-SI) 和 ST 拓扑变化 (ST-TC) 方法以及 ST 等几何分析 (ST-IGA)。这些ST方法在克服计算挑战方面发挥了作用,包括(i)具有纵向和横向凹槽的实际轮胎几何形状的复杂性,(ii)轮胎的旋转,(iii)保持轮胎附近边界层的准确表示,同时能够处理由道路接触产生的流域拓扑变化, (iv)水流的湍流性质。ST-VMS、ST-SI 和 ST-IGA 的组合最近还实现了液膜问题的解决,其计算成本与雷诺方程模型相当,具有可比的求解质量。这是通过超越雷诺方程模型限制的计算灵活性实现的。在这里,我们包括并解决了与道路粗糙度以及轮胎和道路之间的流体膜相关的计算挑战。我们添加的新方法包括对滞留流体的补救措施,一种在流体占据的空间缩小到狭窄间隙时减少控制点数量的方法,以及表示道路粗糙度的方法。我们提出了具有直线通道的 2D 测试问题的计算、轮胎的简单 2D 模型以及具有实际轮胎几何形状和道路粗糙度的 3D 模型。这些计算表明,我们针对轮胎空气动力学的集成ST方法集的有效性。

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