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Linear and non-linear roll damping of a FPSO via system identification of a third order equation with sway-roll coupled damping effects

机译:FPSO的线性和非线性侧倾阻尼,通过具有摇摆-侧倾耦合阻尼效应的三阶方程的系统辨识

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This work focuses on roll decay experiments performed on hulls normally used as FPSOs. Considering the practical case of beam seas, Newton's second law and the Newton-Euler theorem lead to coupled sway, heave and roll equations for an arbitrary pole. Assuming symmetry, the heave equation is uncoupled, leaving the sway and roll equations coupled. The research shows that, even if inertia is decoupled, damping coupling is unavoidable and cannot be neglected. Nevertheless, a third order equation dealing only with roll can be constructed. The latter is used to develop a robust approach that uses system identification techniques to obtain damping properties from the decay tests. In this approach, non-linear damping is assessed using a cycle-by-cycle linear approach that uses system identification to match all the information obtained from the decay test. Both held-over and pre-oscillation tests are discussed, and new concept is presented: the coupled damping number (CDN), which relates the product of the main diagonal damping terms with coupling damping coefficients. The CDN is proven to be null for potential flows, and turns out to be very small even when viscous effects are present such as in decay tests, at least for typical FPSO hulls.
机译:这项工作的重点是在通常用作FPSO的船体上进行的滚动衰减实验。考虑到束海的实际情况,牛顿第二定律和牛顿-欧拉定理导致任意极点的摇摆,升沉和横滚方程耦合。假设对称,升沉方程解耦,而摇摆和侧倾方程则耦合。研究表明,即使惯性解耦,阻尼耦合也是不可避免的,并且不能忽略。然而,可以构造仅涉及侧倾的三阶方程。后者用于开发一种鲁棒的方法,该方法使用系统识别技术从衰减测试中获得阻尼特性。在这种方法中,非线性阻尼是使用逐周期线性方法评估的,该方法使用系统标识来匹配从衰减测试获得的所有信息。讨论了保持测试和预振荡测试,并提出了新的概念:耦合阻尼数(CDN),它把主要对角阻尼项的乘积与耦合阻尼系数联系起来。事实证明,CDN对于潜在的流量为零,并且即使在衰减测试(例如,至少对于典型的FPSO船体)存在粘性效应的情况下,其CDN也很小。

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