三角龙对撞击力的反应:数值研究

IF 0.7 Q4 ENGINEERING, OCEAN Ocean Systems Engineering-An International Journal Pub Date : 2019-12-01 DOI:10.12989/OSE.2019.9.4.349
S. Chandrasekaran, R. Nagavinothini
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引用次数: 4

摘要

三角龙是适用于超深水应用的新一代海上顺应性平台之一。除了环境荷载外,海上结构物还容易受到意外荷载的影响。由于船舶与海上平台碰撞风险的增加,有必要准确预测冲击载荷下的结构响应。本文对三角龙浮力腿的冲击响应进行了数值研究,该浮力腿通常设计为带有桁条和环形框架的正交加肋圆柱壳。利用ANSYS显式分析求解器对具有矩形压头的浮力腿在不同冲击载荷情况下进行了冲击分析。结果表明,壳体变形随着冲击载荷的增加而增加,环形加劲肋阻碍了壳体损伤的纵向扩展。然后利用ANSYS AQWA进行水动力响应分析,得到三角龙的响应。从结果中可以观察到,单个浮力腿上的冲击载荷导致甲板在涌浪和纵摇自由度上的周期性振动。由于结构的冲击响应受到几何和材料特性的高度影响,因此还通过改变应变速率进行了数值研究,并讨论了压头的位置和结果。
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Response of triceratops to impact forces: numerical investigations
Triceratops is one of the new generations of offshore compliant platforms suitable for ultra-deepwater applications. Apart from environmental loads, the offshore structures are also susceptible to accidental loads. Due to the increase in the risk of collision between ships and offshore platforms, the accurate prediction of structural response under impact loads becomes necessary. This paper presents the numerical investigations of the impact response of the buoyant leg of triceratops usually designed as an orthogonally stiffened cylindrical shell with stringers and ring frames. The impact analysis of buoyant leg with a rectangularly shaped indenter is carried out using ANSYS explicit analysis solver under different impact load cases. The results show that the shell deformation increases with the increase in impact load, and the ring stiffeners hinder the shell damage from spreading in the longitudinal direction. The response of triceratops is then obtained through hydrodynamic response analysis carried out using ANSYS AQWA. From the results, it is observed that the impact load on single buoyant leg causes periodic vibration in the deck in the surge and pitch degrees of freedom. Since the impact response of the structure is highly affected by the geometric and material properties, numerical studies are also carried out by varying the strain rate, and the location of the indenter and the results are discussed.
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来源期刊
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期刊介绍: The OCEAN SYSTEMS ENGINEERING focuses on the new research and development efforts to advance the understanding of sciences and technologies in ocean systems engineering. The main subject of the journal is the multi-disciplinary engineering of ocean systems. Areas covered by the journal include; * Undersea technologies: AUVs, submersible robot, manned/unmanned submersibles, remotely operated underwater vehicle, sensors, instrumentation, measurement, and ocean observing systems; * Ocean systems technologies: ocean structures and structural systems, design and production, ocean process and plant, fatigue, fracture, reliability and risk analysis, dynamics of ocean structure system, probabilistic dynamics analysis, fluid-structure interaction, ship motion and mooring system, and port engineering; * Ocean hydrodynamics and ocean renewable energy, wave mechanics, buoyancy and stability, sloshing, slamming, and seakeeping; * Multi-physics based engineering analysis, design and testing: underwater explosions and their effects on ocean vehicle systems, equipments, and surface ships, survivability and vulnerability, shock, impact and vibration; * Modeling and simulations; * Underwater acoustics technologies.
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