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Full Scale Wave and Whipping Induced Hull Girder Loads

机译:满量程波浪和鞭打引起的船体大梁载荷

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One year full scale measurements available from Victoriaborg, a general cargo/container vessel with hull flare and bow flare, were analyzed to determine the effect of whipping on fatigue. The measurements utilized comprise the global strains in the midship region. From the global strains and ship's geometric properties the hull girder bending moments were determined using a simple beam model. The wave and whipping induced hull girder bending moments and stress records were analyzed in detail. In order to distinguish the wave frequency loads and the whipping loads, Fast Fourier Techniques were applied in order to obtain a high frequency part (whipping response), a low frequency part (wave frequency response) and the original response. Various sailing speeds up to 20 knots with a step of 4 knots were also considered. Information on the contribution of whipping to the wave induced vertical hull girder bending moment was obtained. The horizontal hull girder bending moment with respect to the vertical hull girder bending moments was also determined. This paper addresses the full scale monitoring campaign. Furthermore it describes the calculation methods of the measured data applied to obtain the fatigue damage originating from whipping and the wave frequency loads. Assuming the low amplitude cycles contribute to fatigue, due to whipping the fatigue damage induced by the vertical hull girder bending moment increases with about 30%.
机译:对维多利亚堡号(具有船体耀斑和船首耀斑的普通货船/集装箱船)进行的一年满量程测量进行了分析,以确定搅打对疲劳的影响。所使用的测量包括船中区域的整体应变。根据整体应变和船舶的几何特性,使用简单的梁模型确定船体梁的弯矩。详细分析了波浪和鞭打引起的船体大梁的弯矩和应力记录。为了区分波浪频率载荷和搅动载荷,应用了快速傅立叶技术以获取高频部分(搅动响应),低频部分(波浪频率响应)和原始响应。还考虑了各种航行速度,最高可达20节,以4节为步长。获得有关搅动对波浪引起的垂直船体梁弯矩的贡献的信息。还确定了水平船体梁弯矩相对于垂直船体梁弯矩。本文介绍了全面监控活动。此外,它描述了为获得源自鞭打和波频率载荷的疲劳损伤而使用的测量数据的计算方法。假设低振幅循环会导致疲劳,由于搅打,垂直船体梁的弯矩引起的疲劳损伤会增加约30%。

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