匀速弯矩载荷下船体梁动态极限强度分析方法

Analysis method of dynamic ultimate strength of hull girder under constant velocity bending moment load

  • 摘要:
    目的 为解决船体梁的动态极限强度快速计算问题,提出动态Smith方法。
    方法 首先,以传统的Smith方法为基础,在考虑船体梁在动态载荷下材料的应变率效应、惯性力,以及Smith法中加筋板单元在不同应变率下的应力−应变关系的基础上,建立计算船体梁在匀速弯矩载荷作用下的动态极限强度的动态Smith法;然后,以箱形梁和船体梁为研究对象,通过与有限元结果进行对比,验证动态Smith方法的准确性。
    结果 结果显示,由动态Smith法与有限元方法计算得到的船体梁的动态极限强度在端面旋转角速度小于1时误差小于10%。
    结论 动态Smith法是在传统Smith法的基础上的进一步拓展,相较于有限元计算,该方法能提高船体梁动态极限强度的计算效率。

     

    Abstract:
    Objectives The dynamic ultimate strength of hull girders is a crucial parameter for assessing ship safety. In the context of ships being exposed to dynamic loads such as those from waves and slamming during navigation, accurately calculating the dynamic ultimate strength of hull girders is of great significance for ship designers to predict structural performance and ensure ship safety. However, existing research on calculating the dynamic ultimate strength of hull girders is limited, and traditional methods often face challenges in terms of computational efficiency. Therefore, the main objective of this study is to address the problem of rapid calculation of the dynamic ultimate strength of hull girders and develop a more efficient calculation method.
    Methods The proposed approach is the dynamic Smith method, which is based on the traditional Smith method. Firstly, considering the strain rate effect of materials under dynamic load, the Cowper - Symonds model is introduced to modify the yield strength of materials. This modification is essential as the dynamic yield strength of materials increases with the increase of strain rate. Secondly, the stress - strain relationship of stiffened plate elements under different strain rates is taken into account. Xiong's empirical formula for the dynamic ultimate strength of stiffened plates is adopted to correct the stress - strain curve, ensuring more accurate calculation of member stress. Finally, the inertia force generated during the dynamic response of the hull girder structure is considered. By calculating the acceleration caused by the change of the neutral axis of the cross - section in the Smith method iteration process, the inertia force of each unit is obtained, and then the impact of inertia force on the dynamic ultimate strength is corrected.
    Results The results show that when the angular velocity of the end face rotation is less than 1, the error between the dynamic ultimate strength calculated by the dynamic Smith method and that by the finite element method is less than 10%. Specifically, for the box girder model and the hull girder model of an ISSC 2012 - based VLCC, the dynamic Smith method shows good agreement with the finite - element results in the low - and medium - angular - velocity range. However, when the angular velocity is greater than 1, the error between the two methods becomes larger.
    Conclusions In conclusion, the dynamic Smith method is a significant extension of the traditional Smith method. Compared with the finite element method, it can remarkably improve the calculation efficiency of the dynamic ultimate strength of hull girders, especially suitable for calculating the dynamic ultimate strength of hull girders when the end - face rotation angular velocity is less than 1. For the correction of the stress - strain relationship curve in the dynamic Smith method, when the strain rate is less than 0.4, the stress - strain curve is calculated based on strain rate hardening; when the strain rate is greater than or equal to 0.4, the empirical formula is used. This research provides a new means for ship safety assessment and has important guiding significance for ship design and structural strength analysis.

     

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