概念TLB型海上浮式风力机耦合数值分析

Iman Ramzanpoor, M. Nuernberg, L. Tao
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引用次数: 0

摘要

全球能源市场持续脱碳的主要驱动力是可再生能源。此外,实现这一目标的领先技术解决方案是海上风力涡轮机。随着装机容量的迅速增加和近岸浅水的枯竭,项目将需要在离海岸更远的地方开发,通常是在更深的水域,这将带来更大的技术挑战,并限制了降低成本的努力。目前的浮式平台解决方案,如桅杆式和半潜式,依赖于大量的压载物和复杂的结构设计,以及主动稳定系统来保证浮式海上风力涡轮机平台(FOWT)的稳定性。本研究的主要重点是提出一种替代浮式平台解决方案的设计概念和系泊安排,该解决方案强调系泊系统以实现FOWT的稳定性。张力腿浮标(TLB)旨在支持未来的10MW海上风力发电机。本文介绍了风、浪、流联合作用下浮子-系泊系统水弹耦合分析的数值方法。提出了一种TLB概念设计,并对其平台运动和系泊绳张力特性进行了三小时的时域仿真分析,该仿真代表了北海北部水深110米的操作和生存条件。通过比较三种不同数值模拟情况下的运动和张力响应,评价波浪漂移力和其他非线性激励力在概念设计阶段的重要性。初步的TLB系统设计表明,在百年一遇的风暴条件下,fot运行和生存的运动响应令人满意。结果表明,考虑二阶效应对于清楚地了解系统的全部行为以及运行和生存条件下的详细响应特征至关重要。当考虑二阶效应时,极端载荷显著降低。这可能是避免过度设计系统的一个关键方面,从而实现显著的成本节约。
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Coupled Numerical Analysis of a Concept TLB Type Floating Offshore Wind Turbine
The main drivers for the continued decarbonisation of the global energy market are renewable energy sources. Moreover, the leading technological solutions to achieve this are offshore wind turbines. As installed capacity has been increasing rapidly and shallow water near shore sites are exhausted, projects will need to be developed further from shore and often in deeper waters, which will pose greater technical challenges and constrain efforts to reduce costs. Current floating platform solutions such as the spar and semi-submersible rely on large amounts of ballast and complex structural designs with active stabilisation systems for stability of the floating offshore wind turbine platform (FOWT). The primary focus of this study is to present a design concept and mooring arrangement for an alternative floating platform solution that places emphasis on the mooring system to achieve stability for a FOWT. The tension leg buoy (TLB) is designed to support future 10MW offshore wind turbine generators. This paper presents the numerical methodology used for a coupled hydro-elastic analysis of the floater and mooring system under combined wind, wave and current effects. A concept TLB design is presented and its platform motion and mooring line tension characteristics are analysed for a three-hour time domain simulation representing operating and survival conditions in the northern North Sea with water depths of 110 metres. The importance of wave drift forces and the other non-linear excitation forces in the concept design stage are evaluated by comparing the motion and tension responses of three different numerical simulation cases with increasing numerical complexity. The preliminary TLB system design demonstrated satisfactory motion response for the operation of a FOWT and survival in a 100-year storm condition. The results show that accounting for second-order effect is vital in terms of having a clear understanding of the full behaviour of the system and the detailed response characteristics in operational and survival conditions. Extreme loads are significantly reduced when accounting for the second-order effects. This can be a key aspect to not overdesign the system and consequently achieve significant cost savings.
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