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首页> 外文期刊>Computers & Chemical Engineering >Real time model identification using multi-fidelity models in managed pressure drilling
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Real time model identification using multi-fidelity models in managed pressure drilling

机译:在管理压力钻井中使用多保真度模型进行实时模型识别

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摘要

Highly accurate model predictions contribute to the performance and stability of model predictive control. However, high fidelity models are difficult to implement in real time control due to the large and often nonconvex optimization problem that must be completed within the feedback cycle time. To address this issue, a switched control scheme that uses high fidelity model predictions in real time control is presented. It uses real time simulated data to identify a linear empirical control model. The real time model identification procedure does not interrupt the process, and is suitable for nonlinear processes where offline model identification is difficult. Controller stability is discussed, and the control scheme is demonstrated in a managed pressure drilling simulation. The switched controller provides improved performance over both a high fidelity model based controller and a nonadaptive empirical model.
机译:高度准确的模型预测有助于模型预测控制的性能和稳定性。但是,由于必须在反馈循环时间内完成较大且通常不凸的优化问题,因此难以在实时控制中实现高保真度模型。为了解决这个问题,提出了一种在实时控制中使用高保真模型预测的切换控制方案。它使用实时仿真数据来识别线性经验控制模型。实时模型识别过程不会中断该过程,并且适用于难以进行离线模型识别的非线性过程。讨论了控制器的稳定性,并在受控压力钻井模拟中演示了控制方案。与基于高保真模型的控制器和非自适应经验模型相比,开关控制器可提供更高的性能。

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