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MOTION CHARACTERISTIC ANALYSIS OF A FLOATING STRUCTURE IN THE SOUTH CHINA SEA BASED ON PROTOTYPE MONITORING

机译:基于原型监测的南海漂浮结构运动特征分析

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Background: Due to the complexity of ocean environmental loading models, together with the nonlinearity and empirical parameters involved in hydrodynamic numerical modeling and model testing, many uncertainties and challenges still exist in the design and operation of platforms built to float at sea. On-site prototype measurements carried out on actual floating structures provide a valid strategy for obtaining accurate environmental loading parameters and floater motion responses. Problem definition: A prototype monitoring system has been built as part of a joint industrial project in the South China Sea. A complete set of long-term ocean environment loading parameters and structural dynamic motion responses has been gathered for the period from 2012 to the present. Several advanced techniques, such as the independent remote monitoring technique (IRMT), the integrated continuous measurement technique and the standalone underwater measurement technique were established to enhance the reliability of data collection even during extreme typhoon conditions when there was no power. Solution approach and findings: this paper analyzes the dynamic motion characteristics of the platform structure based on the monitoring data. The relationship between the measured wave spectrum and the JONSWAP spectrum is discussed. The spectral shape parameters of the JONSWAP spectrum for the South China Sea, as derived from the monitoring data, are discussed. The dynamic motions of the platform structure are analyzed based on artificial neural networks (ANN) using data from a typical monitored typhoon. The numerical modeling used in this research is constructed to perform the identification analysis of the platform parameters using radius basic function (RBF) and hydrodynamic results produced by ANSYS-AQWA. This research selects five main geometric parameters related to the platform design. Mass, moments of inertia of three rotation degrees, and the position of the center of gravity (COG) are selected as the optimization objectives. The mean values of surge and pitch and standard deviations of roll and pitch are treated as the input parameters. Modeling verifications show that the present ANN-based method performs well in obtaining the optimal platform parameters. The maximum error between the simulated and monitored results in terms of the measurement of the roll, pitch, surge and sway motions fall within 5%. The model of the monitored platform could be further updated; it could be made capable of performing the performance assessments of the dynamic characteristics in extreme and/or harsh environmental conditions.
机译:背景:由于海洋环境负荷模型的复杂性,以及流体动力学数值建模和模型测试所涉及的非线性和经验参数,在海上漂浮平台的设计和运行中仍然存在许多不确定性和挑战。在实际的漂浮结构上进行的现场原型测量为获得准确的环境载荷参数和漂浮物运动响应提供了有效的策略。问题定义:作为南中国海一项联合工业项目的一部分,已经建立了一个原型监视系统。从2012年到现在,已经收集了一套完整的长期海洋环境负荷参数和结构动力运动响应。建立了一些先进的技术,例如独立的远程监控技术(IRMT),集成的连续测量技术和独立的水下测量技术,即使在没有电源的极端台风条件下,也可以提高数据收集的可靠性。解决方法和发现:本文基于监测数据分析了平台结构的动态运动特性。讨论了被测波谱与JONSWAP谱之间的关系。讨论了从监测数据中得出的南海JONSWAP光谱的光谱形状参数。基于人工神经网络(ANN),使用来自典型监测台风的数据对平台结构的动态运动进行了分析。本研究中使用的数值模型被构造为使用半径基本函数(RBF)和ANSYS-AQWA产生的流体动力结果对平台参数进行识别分析。本研究选择了与平台设计相关的五个主要几何参数。选择质量,三个旋转度的惯性矩以及重心(COG)的位置作为优化目标。喘振和俯仰的平均值以及侧倾和俯仰的标准偏差被视为输入参数。建模验证表明,当前基于ANN的方法在获得最佳平台参数方面表现良好。根据横摇,俯仰,喘振和摇摆运动的测量值,模拟结果与监视结果之间的最大误差在5%以内。被监视平台的模型可以进一步更新;它可以在极端和/或恶劣的环境条件下进行动态特性的性能评估。

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