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THE QUANTIFICATION OF SOLITON CURRENT PROFILES FOR OFFSHORE ENGINEERING

机译:隔离工程孤子电流曲线的量化

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In widely used metocean terminology, solitons are large amplitude, often highly nonlinear, internal waves. They are responsible for complex vertical profiles of rapidly varying ocean currents. These current profiles need to be reliably quantified for a wide range of offshore engineering applications, often with very limited suitable data. Some recent advances in this field of applied research were described at OMAE2017 by Jeans et al (2017) [1]. Vertical displacements, derived from temperature measurements, were the primary input for soliton quantification. Associated current speeds were estimated from relevant theory and validated using available measured current data. This represents a notable development, because soliton current profiles are traditionally quantified via direct measurements of velocity. However, reliable current measurements can be a challenge, so the new approach is considered more reliable in some circumstances. Jeans et al (2017) [1] applied one simple and elegant theory for relating vertical displacement to velocity. This theory performed well, considering its limitations. This paper further evaluates different theoretical options, using a new dataset with much larger amplitude solitons. Theories with higher order nonlinearity are required for estimation of soliton current profiles in such challenging conditions.
机译:在广泛使用的元术语中,孤子幅度大,往往高度非线性,内部波。它们负责迅速变化的洋流复杂的垂直曲线。这些电流配置文件需要可靠地量化广泛的海上工程应用,通常具有非常有限的合适数据。该应用研究领域的一些最新进展在Omae2017通过Jeans等(2017)描述了[1]。衍生自温度测量的垂直位移是孤子量化的主要输入。相关的电流速度从相关理论估计并使用可用测量的当前数据进行验证。这代表了一个值得注意的发展,因为孤子电流轮廓传统上通过直接测量速度来量化。然而,可靠的电流测量可能是一个挑战,因此在某些情况下,新方法被认为更可靠。 Jeans等人(2017)[1]应用一个简单而优雅的理论,以与速度相关的垂直位移。考虑到其限制,这一理论表现良好。本文进一步评估了使用具有更大振幅孤子的新数据集。需要高阶非线性的理论需要在这种具有挑战性的条件下估计孤子电流谱。

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