Optimized Wiper Design using Computational Fluid Dynamics

Akshay Shirsikar, Punam Khatik, Kuldeep Singh, Lachhi Ram
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Abstract

This paper presents the robust use of Computational Fluid Dynamics (CFD) techniques as complement to wind tunnel testing for the performance assessment of rain water and wiper wash behavior on windscreen surfaces. The objective of this paper is to predict windscreen wiper design performance and its effectiveness with the help of CFD. Clear visibility to the occupants is the key for stress free and safer driving experience, therefore it is important to study the windscreen wiper system performance under different work load conditions. A multi-phase CFD code is used to simulate rain drops and its impingent on the vehicle is modeled with the help of thin liquid film. The wiper blade motion is defined with inputs from multi body dynamics (MBD) considering the driver and passenger side wiper blade speed and extent. Time-dependent results for the wiper blade location, water fluid film spread, and its height on the windscreen, A-pillar, leaf-screen rain gutters were obtained. The CFD results then equated with the physical test data. The calculated water film pattern found to be associated with the observed patterns of the waterways on the test vehicle. Multiple design studies were performed on the CFD model which are also reliable with similar test configurations. From the results, it is concluded that numerical simulation of water behavior on vehicle surfaces is possible, and CFD method is effective tool to assist engineers in envisaging, analyzing, and designing water management systems. A Computational Fluid Dynamics code had been introduced in order to simulate the cleaning performance of the automobile wash. Multi-phase thin film with rigid body motion models were used for this purpose. The objectives of the project were to quantify the water flow, enhance visualization, and develop a CAE methodology which will assist in the product development process.
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利用计算流体动力学优化雨刷设计
本文介绍了计算流体动力学(CFD)技术的强大应用,作为风洞试验的补充,用于评估雨水和雨刷对挡风玻璃表面的冲刷行为。本文的目的是利用CFD对雨刷器的设计性能及其有效性进行预测。乘员清晰的视野是获得无压力、更安全驾驶体验的关键,因此研究不同工况下雨刷系统的性能具有重要意义。采用多相CFD程序对雨滴进行了数值模拟,并利用液体薄膜对雨滴对飞行器的冲击进行了模拟。考虑到驾驶员和乘客侧雨刮器的速度和范围,用多体动力学(MBD)的输入定义雨刮器的运动。获得了雨刮器叶片位置、水液膜分布及其在挡风玻璃、a柱、叶屏雨水槽上的高度随时间变化的结果。然后将CFD结果与物理测试数据等同起来。计算出的水膜模式与试验车辆上观察到的水道模式相关联。在CFD模型上进行了多次设计研究,该模型在相似的试验配置下也是可靠的。结果表明,数值模拟车辆表面的水行为是可能的,CFD方法是辅助工程师设想、分析和设计水管理系统的有效工具。为了模拟洗车场的清洗性能,引入了计算流体力学程序。多相薄膜与刚体运动模型用于此目的。该项目的目标是量化水流,增强可视化,并开发一种CAE方法,这将有助于产品开发过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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