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Experimental and numerical investigation of the frequency-domain characteristics of impact load for AUV during water entry

机译:AUV入水冲击载荷频域特性的实验与数值研究

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Autonomous underwater vehicles (AUVs) are subjected to a very large impact load during the water-entry process, which may damage the structure of the vehicle and affect its motion trajectory. In this paper, five kinds of models with different nose shapes are tested under different water-entry velocities and angles, and the impact acceleration signals are obtained by a sensor. First, the accuracy of the experimental data is verified by comparison with the velocity obtained by the high-speed camera. Then, the ensemble empirical mode decomposition (EEMD) method combined with modal analysis is used to analyse the acceleration signal composition. Subsequently, a numerical simulation model based on the arbitrary Lagrangian Eulerian (ALE) method to describe the water-entering process of the vehicle is established, and the accuracy and capability of the numerical algorithm is verified by comparison with the experimental data. Finally, the frequency-domain characteristics of the impact load are analysed through the shock response spectrum (SRS) method. The result shows that the maximum acceleration shock spectrum of the impact load is related to the peak pulse width of the impact load and independent of the peak value. The smaller the pulse width is, the larger the inflection point frequency and magnification of the shock response spectrum are. The inflection point frequency of the shock response spectrum usually corresponds to the second-order bending natural frequency of the vehicle. The conclusions in this paper will be useful for the design and analysis of the water-entry impact structure of AUVs.
机译:自主水下航行器(AUV)在入水过程中会承受很大的冲击载荷,这可能会损坏车辆的结构并影响其运动轨迹。在不同的入水速度和角度下,对五种不同鼻形的模型进行了测试,并通过传感器获得了冲击加速度信号。首先,通过与高速相机获得的速度进行比较来验证实验数据的准确性。然后,采用集成经验模态分解(EEMD)方法与模态分析相结合的方法来分析加速度信号的组成。随后,建立了基于任意拉格朗日欧拉(ALE)方法的数值模拟模型来描述车辆的进水过程,并与实验数据进行比较,验证了该算法的准确性和能力。最后,通过冲击响应谱(SRS)方法分析了冲击载荷的频域特性。结果表明,冲击载荷的最大加速度冲击谱与冲击载荷的峰值脉冲宽度有关,而与峰值无关。脉冲宽度越小,拐点频率和冲击响应谱的放大率越大。冲击响应谱的拐点频率通常对应于车辆的二阶弯曲固有频率。本文的结论对于AUV的水进入碰撞结构的设计和分析将是有用的。

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