首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part M: Journal of Engineering for the Maritime Environment >The use of computational fluid dynamics to aid cost-effective hydrodynamic design of autonomous underwater vehicles
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The use of computational fluid dynamics to aid cost-effective hydrodynamic design of autonomous underwater vehicles

机译:使用计算流体动力学来辅助自主水下航行器的经济高效的流体动力学设计

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The missions being proposed for autonomous underwater vehicles (AUVs), by both marine scientists and industry, are becoming increasingly complex and challenging. In order to meet these demands the next generation of AUVs will need to be faster, to operate for longer durations, and to be more manoeuvrable than existing vehicles. It is therefore vital that the hydrodynamic forces and moments acting on a self-propelled manoeuvring AUV can be predicted accurately at the initial design stage. In order to achieve this, the use of a computational-fluid-dynamics-based analysis is suggested. The approaches developed are predominantly steady state and suitable for running on a workstation personal computer using a commercial software licence. It is estimated that the proposed simulations would take a competent user less than 1 month for a new concept design. The total cost of these simulations is significantly lower than the cost of building a model and having it commercially tested to capture the same level of detail for the resistance, propulsion, and manoeuvring performance. Based on the validation studies presented, it is estimated that on a 2×106 element structured mesh a competent user should be able to predict hydrodynamic forces to within at least 10 per cent and moments to within 20 per cent of in-service performance.
机译:海洋科学家和工业界对自动水下航行器(AUV)提出的任务正变得越来越复杂和具有挑战性。为了满足这些需求,下一代AUV需要比现有车辆更快,运转更长的时间并且具有更大的机动性。因此,至关重要的是,可以在初始设计阶段准确地预测作用于自动机动AUV上的流体动力和力矩。为了实现这一点,建议使用基于计算流体动力学的分析。开发的方法主要是稳定状态,适合使用商业软件许可证在工作站个人计算机上运行。据估计,拟议的模拟将使合格的用户花费不到1个月的时间进行新概念设计。这些模拟的总成本大大低于建立模型并进行商业测试以捕获相同水平的阻力,推进和操纵性能的成本。根据提出的验证研究,估计在2×10 6 单元结构的网格上,合格的用户应能够预测流体动力至少在10%之内,力矩在20%之内。服务绩效的百分比。

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