Real-Time Simulation and Motion-Planning for Riser-Based Drilling and Equipment Positioning

A. Bizzi, E. Fortaleza, Marcio Yamamoto
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Abstract

A new analytical approach is applied to the riser's equations of motion, aimed at the real-time processing of solutions under hard boundary conditions. Based on this, a mathematical framework is devised, with the objective of supplying practical assistance for challenging riser positioning cases, leading to both live visualizations of the riser displacement during its maneuvering and on-the-fly planning of its desired top-end movement. The new analytical solution is based on a non-causal analysis using the two-sided Laplace Transform. By transforming a set of approximate PDEs that closely resemble those of the complete riser model, we're able to devise improper transfer functions between any two arbitrary points across the riser. Then, an inverse transformation applied to these transfer functions yields convolutions that may be quickly processed. Nonlinear boundary conditions are dealt with via a proposed iterative method. Quickly computable simulations for the horizontal displacement along the riser's length are presented, allowing for live, simultaneous estimation of the structure's motion at various cross-sections. Likewise, stress/tension estimates at these points are presented in real time. Furthermore, various top-end trajectories and motion strategies are derived for scenarios previously unsolved in the literature, involving non-static initial conditions, disturbances and time-variable tensions acting on the bottom-end of the riser. This is done to demonstrate the theory's applicability in dire weather conditions. Finally, the proposed solution is validated and compared to previous results in modeling and trajectory planning of risers. The speed of the presented approach is attested and properly analyzed.
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立管钻井与设备定位的实时仿真与运动规划
针对硬边界条件下立管运动方程的实时处理,提出了一种新的解析方法。在此基础上,设计了一个数学框架,目的是为具有挑战性的隔水管定位情况提供实际帮助,从而实现隔水管在操纵过程中的位移实时可视化,并实时规划其所需的高端运动。新的解析解是基于使用双面拉普拉斯变换的非因果分析。通过转换一组近似于立管模型的偏微分方程,我们能够在立管上任意两个点之间设计不正确的传递函数。然后,应用于这些传递函数的逆变换产生可以快速处理的卷积。通过提出的迭代法处理非线性边界条件。提出了沿立管长度的水平位移的快速计算模拟,允许实时,同时估计结构在不同横截面上的运动。同样,这些点的应力/张力估计是实时呈现的。此外,针对以前文献中未解决的情况,推导了各种高端轨迹和运动策略,包括非静态初始条件、干扰和作用于立管底端的时变张力。这样做是为了证明该理论在恶劣天气条件下的适用性。最后,对该方法进行了验证,并与已有的立管建模和轨迹规划结果进行了比较。证明了所提出方法的速度,并对其进行了适当的分析。
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