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The design and commissioning of a fully elastic model of a uniform container ship

机译:统一集装箱船全弹性型号的设计与调试

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Experimental hydroelasticity has not followed the rapid evolution of its computational counterpart. Hydroelastic codes have changed significantly in the past few decades, moving to more detailed modelling of both the structure and the fluid domain. Physical models of ships are, even today, manufactured with a very simplified structural arrangement, usually consisting of a hollow rectangular cross section. Appropriate depiction of the internal structural details ensures that properties relevant to antisymmetric vibration are scaled accurately from the real ship to the model. Attempts to create continuous, ship-like structures had limited success, as manufacturing constraints did not allow for much internal structural detail to be included. In this investigation, the first continuous model of a ship with a detailed internal arrangement resembling a container ship is designed, produced using 3D printing and tested in waves. It is demonstrated that the global responses of the hull in regular head waves agree well with theory and past literature, confirming that such a model can represent the behaviour of a ship. Furthermore, it is found that the model is capable of capturing local responses of the structure, something that would be impossible with "traditional" hydroelastic ship models. Finally, the capability of the model to be used to investigate antisymmetric vibrations is confirmed. The methodology developed here opens a whole new world of possibilities for experiments with models that are tailored to the focus of the investigation at hand. Moreover, it offers a powerful tool for the validation of modern state-of-the-art hydroelastic codes. Ultimately, it creates the next step in the investigation of dynamic responses of ship structures, which contribute significantly to accumulating damage of the hull. Better understanding of these responses will allow designers to avoid over-engineering and use of big safety factors to account for uncertainties in their predictions.
机译:实验性水力弹素没有遵循其计算对应的快速演变。在过去的几十年中,水力弹性码发生了显着变化,移动到更详细的结构和流体域的建模。即使在今天,船舶的物理模型也以非常简化的结构布置制造,通常由中空矩形横截面组成。适当的内部结构细节描绘确保与反对称振动相关的性质从真实船上准确地缩放到模型。尝试创建连续的船舶结构的成功取得有限,因为制造限制不允许包括大量内部结构细节。在这次调查中,设计了一种具有类似集装箱船的详细内部布置的船舶的第一连续模型,采用3D打印生产并在波浪中进行测试。结果表明,船体在常规头部波浪中的全局反应与理论和过去的文献一致,确认这种模型可以代表船舶的行为。此外,发现该模型能够捕获结构的局部响应,“传统”液压加速船型是不可能的。最后,确认了用于研究防反对振动的模型的能力。此处开发的方法为实验的实验开辟了全新的可能性,这些可能性与手头调查的重点定制的模型。此外,它提供了一种强大的工具,用于验证现代最先进的液体码。最终,它创造了船舶结构动态反应调查的下一步,这有助于积累船体的损伤。更好地了解这些答复将使设计人员能够避免过度工程和使用大安全因素来解释其预测中的不确定性。

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  • 来源
    《Oceanographic Literature Review》 |2021年第6期|1378-1378|共1页
  • 作者单位

    Maritime Engineering Group University of Southampton Boldrewood Innovation Campus Burgess Rd Southampton SO17 6QF United Kingdom;

    Maritime Engineering Group University of Southampton Boldrewood Innovation Campus Burgess Rd Southampton SO17 6QF United Kingdom;

    Maritime Engineering Group University of Southampton Boldrewood Innovation Campus Burgess Rd Southampton SO17 6QF United Kingdom;

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