共查询到17条相似文献,搜索用时 312 毫秒
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升降系统是自升式风电安装平台的核心设备,文章基于600 t自升式风电安装平台,对液压插销式升降系统的系统组成、工作原理和主要性能参数进行介绍,并对其安装工艺进行分析.研究成果可为风电安装平台液压插销式升降系统的安装提供一定参考. 相似文献
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以起重能力为1200T的自升式风电安装船为研究对象,为解决传统固桩楔块固桩操作不便、费时费力等问题,设计了一套结构简单,操作方便的液压桩腿固定装置,详述了该装置的设计原理及结构组成。利用Ansys有限元分析软件,研究了液压桩腿固定装置在托航工况下的力学性能。并对该装置进行了实验验证,证明了设计方案的可行性和合理性,为相关领域的应用提供借鉴。 相似文献
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近年来,随着国内海上风电行业的蓬勃发展,市场对自升式风电安装船的需求日益迫切。桩腿是影响自升式风电安装船作业安全性的关键环节,桩腿设计也是自升式风电安装船的关键技术难点之一;而海上风电场的选址逐渐向离岸更远、水深更大的方向发展,客观上也对桩腿适应更恶劣海况条件的能力提出了更高要求。本文结合近年来多型自升式风电安装船桩腿设计经验,分析研究了桩腿总强度计算和优化的过程,及其与海况环境、作业条件、可变载荷等参数之间的相关性,为自升式风电安装船的桩腿设计提供了有效方法。 相似文献
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桩腿是抱桩式安装船的制造关键点和难点,以500 t自升式风电安装维护平台桩腿液压提升系统为研究对象,开展桩腿液压提升系统安装工艺的相关研究。对平台桩腿液压提升装置中的升降油缸和导向装置制订了详细安装工艺并在总组场地完成了桩腿液压提升装置和桩腿的安装。实船应用表明:该工艺大大缩短了整个风电安装船的建造周期,为后续同类型平台的建造提供了工程经验。 相似文献
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自升式风电安装船是海洋风电安装工程中的重要装备,摩擦绞车升降装置与桩腿、船体构成了自升安装船独立的升降系统。在升降装置的作用下,绞车提供牵引力完成放桩、升船等动作。海上作业过程中环境载荷的不确定性会使作业过程绞车升降系统受附加工作载荷,从而导致工作绞车容易发生故障,给作业系统的安全、稳定运行带来巨大的隐患。本课题从海洋38#风电安装船的外部作用环境和实船绞车轴瓦的失效情况出发,基于支撑桩腿、船体与海洋环境间的相互作用机理,分别分析了绞车轴瓦应力对冲击和振动的响应关系,并采用柔性体有限元仿真和刚体动力学仿真分析的方法,分析了绞车作业过程中的附加工作载荷。同时根据分析结果绘制了响应关系坐标图,进一步研究了工作过程中绞车附加载荷与绞车滚筒支撑轴瓦失效的机理关系。 相似文献
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自升自航式风车安装船为海洋工程专业特种船舶,在风机运输,安装中有很高的实际利用价值。采用直接计算法,对航行工况下自升自航式风电安装船的总强度进行评估。建立了船体和桩腿的有限元建模,基于三维势流理论对波浪垂直弯矩进行长期预报,得到风车安装船在典型装载工况下的设计波参数,将船舶在设计波中的重力、静水压力、水动压力、惯性力等施加到模型上进行直接强度分析,对航行工况下船体和桩腿的强度进行了校核。本文的计算方法及结果可为自升自航式风车安装船的整体强度评估、船体结构优化提供有效依据,并且对同类工程船的设计开发具有指导意义。 相似文献
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海上风电安装船的发展趋势研究 总被引:4,自引:4,他引:0
随着海上风力发电产业的迅速发展,风电安装船需求越来越大,并且风电安装船是高附加值工程船,因此这一市场的吸引力将越来越受到造船界重视,竞争将越来越激烈,但海上风电场施工成本高、海上作业时间长及工期长等问题的存在延缓了海力发电产业的发展。因此,本文将着重对海上风电结构物施工、安装过程的单一海工设备发展进行浅析,为探索深水化、大型化、专业化、集成化的海上风电安装船来完成深海域基础施工及风机安装问题提供设计参考。 相似文献
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This paper presents a preliminary technical feasibility study on a new methodology proposed for installing a monopile-based bottom supported offshore wind turbine structure. The concept is developed to address the problem of “waiting for a suitable weather window” which is commonly faced by the existing installation methods that uses a typical jack-up platform. In the methodology, a floating vessel along with a floatable subsea structure fitted with a hull on the top, hereafter named SSIP (subsea structure for installing a pile), is proposed first to install a monopile. Then the same structure is used to carry an FIUS (fully integrated upper structure) of an offshore wind turbine, which is characterized by a telescopic tower, and install it over the monopile by using an FOP (float-over-pulling) arrangement. Here, the installation methodologies are first briefly described along with the critical load cases associated with them. These load cases are then numerically studied for a significant wave height (HS) of 2.5 m, and the results are summarized. For installing a fully integrated offshore wind turbine upper structure on a monopile foundation by the FOP method, two installation schemes are presented, and their dynamic characteristics are compared. It is shown that the proposed methodologies have potential to provide installation solutions which can be environmentally more robust compared to the existing method for installing an offshore wind turbine. 相似文献
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The application of floating wind turbines is limited by the high cost that increases with the water depth. Offshore installation and maintenance continue to consume a high percentage of the project budget. To improve the installation efficiency of the floating offshore wind turbine, a novel concept is proposed by the SFI MOVE project. Several wind turbine superstructure components are preassembled onshore and carried to the installation site by a catamaran construction vessel. Each assembly can then be installed using only one lift, and the concept is less sensitive to weather conditions. In this paper, a control algorithm of the proposed hydraulic active heave compensator system is developed using singular perturbation theory to cancel the relative motion between the spar top and gripped preassembly bottom. Closed-loop stability is proven, and the simulation results show that the installation efficiency is improved with an increase in the acceptable weather conditions. 相似文献