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New model to determine forces at on-bottom slender pipelines
Authors:Francesco Aristodemo  Giuseppe Roberto Tomasicchio  Paolo Veltri
Affiliation:1. Dipartimento di Difesa del Suolo, Università della Calabria, via P. Bucci, cubo 42B, 87036 Arcavacata di Rende (CS), Italy;2. Dipartimento di Ingegneria per l''Innovazione, Università del Salento, via per Monteroni, corpo O, 73100 Lecce, Italy
Abstract:The present paper proposes a numerical model to determine horizontal and vertical components of the hydrodynamic forces on a slender submarine pipeline lying at the sea bed and exposed to non-linear waves plus a current. The new model is an extension of the Wake II type model, originally proposed for sinusoidal waves (Soedigdo et al., 1999) and for combined sinusoidal waves and currents (Sabag et al., 2000), to the case of periodic or random waves, even with a superimposed current. The Wake II type model takes into account the wake effects on the kinematic field and the time variation of drag and lift hydrodynamic coefficients. The proposed extension is based on an evolutional analysis carried out for each half period of the free stream horizontal velocity at the pipeline. An analytical expression of the wake velocity is developed starting from the Navier–Stokes and the boundary layer equations. The time variation of the drag and lift hydrodynamic coefficients is obtained using a Gaussian integration of the start-up function. A reduced scale laboratory investigation in a large wave flume has been conducted in order to calibrate the empirical parameters involved in the proposed model. Different wave and current conditions have been considered and measurements of free stream horizontal velocities and dynamic pressures on a bottom-mounted pipeline have been conducted. The comparison between experimental and numerical hydrodynamic forces shows the accuracy of the new model in evaluating the time variation of peaks and phase shifts of the horizontal and vertical wave and current induced forces.
Keywords:Submarine pipelines   Wake   Hydrodynamic forces   Flow
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