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ON THE HOISTING AND LOWERING OF SUCTION PIPES A DYNAMIC MOTION ANALYSIS

机译:吸油管的吊装和放下动态运动分析

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With the introduction of jumbo trailing suction hopper dredgers and the development of deep sea dredging equipment came suction pipe constructions and gantries of ever increasing dimensions. The implementation of submerged dredge pumps and the application of longer and greater number of pipe sections of large diameter resulted in suction pipe constructions which distinguish themselves from traditional constructions by their bigger mass and deviating mass distribution. Given the fact that these characteristics have changed significantly and are features that determine the dynamic motion behaviour of a suction pipe construction, one enters a new field concerning the dynamic behaviour of these constructions. This paper describes a mathematical model, developed at IHC Holland's R&D institute MTI Holland in cooperation with Delft University of Technology. With this mathematical model one can perform calculations in the frequency domain to determine the eigenvalues and eigenvectors of an arbitrary suction pipe construction during the hoisting or lowering operation above the water line. These eigenvalues and eigenvectors determine the dynamic motion behaviour of the suction pipe construction. By implementing the motions of the vessel into the model it was furthermore made possible to determine the motion behaviour of suction pipe constructions while working in offshore conditions. The probability of the draghead and gimbal joint colliding with the hopper dredger's hull in a certain seastate can be calculated as well as the occurring collision speeds. This knowledge can be used to evaluate performance and operating limits of dredging equipment working in offshore conditions. With the mathematical model a tool is developed to analyse the dynamic behaviour of existing suction pipe constructions or suction pipes which are still in an early stage of the design phase.
机译:随着巨型尾随式吸料斗式挖泥船的推出以及深海挖泥设备的发展,吸油管的结构和龙门架的尺寸都在不断增加。浸入式挖泥泵的实施以及更长和更多数量的大直径管段的应用导致了吸水管结构与传统结构的不同之处在于其较大的质量和偏离的质量分布。考虑到这些特性已经发生了显着变化,并且这些特性决定了吸管结构的动态运动特性,因此,人们进入了一个有关这些结构的动态特性的新领域。本文介绍了由IHC荷兰研发机构MTI Holland与代尔夫特理工大学合作开发的数学模型。利用该数学模型,可以在频域上进行计算,以确定在水线以上的提升或下降操作期间任意吸管构造的特征值和特征向量。这些特征值和特征向量确定了吸管结构的动态运动行为。通过在模型中实现船舶的运动,还可以确定在近海条件下工作时吸入管结构的运动行为。可以计算出牵引头和万向节在特定海况下与漏斗式挖泥船船体碰撞的概率以及发生的碰撞速度。这些知识可用于评估在海上作业的挖泥设备的性能和操作极限。利用数学模型,开发了一种工具来分析仍处于设计阶段初期的现有吸管结构或吸管的动态行为。

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