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首页> 外文期刊>INFORMS journal on computing >Dynamic Compressor Optimization in Natural Gas Pipeline Systems
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Dynamic Compressor Optimization in Natural Gas Pipeline Systems

机译:天然气管道系统中的动态压缩机优化

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摘要

The growing dependence of electric power systems on gas-fired generators to balance fluctuating and intermittent production by renewable energy sources has increased the variation and volume of flows withdrawn from natural gas transmission pipelines. Adapting pipeline operations to maintain efficiency and security under these dynamic conditions requires optimization methods that account for substantial intraday transients and can rapidly compute solutions in reaction to generator re-dispatch. Here, we present a computationally efficient method for minimizing gas compression costs under dynamic conditions where deliveries to customers are described by time-dependent mass flows. The optimization method uses a simplified representation of gas flow physics, provides a choice of discretization schemes in time and space, and exploits a two-stage approach to minimize energy costs and ensure smooth and physically meaningful solutions. The resulting large-scale NLPs are solved using an interior point method. The optimization scheme is validated by comparing the solutions with an integration of the dynamic equations using an adaptive timestepping differential equation solver, as well as a different, recently proposed optimal control scheme. The comparison shows that solutions to the discretized problem are feasible for the continuous problem and also practical from an operational standpoint. The results also indicate that our scheme produces at least an order of magnitude reduction in computation time relative to the state of the art and scales to large gas transmission networks with more than 6,000 kilometers of total pipeline.
机译:电力系统越来越依赖燃气发电机来平衡可再生能源的波动和间歇性生产,这增加了从天然气输送管道中抽出的流量的变化和流量。在这些动态条件下调整管道运营以维持效率和安全性需要采用优化方法,这些方法应考虑大量的日间瞬态变化,并可以根据发电机的重新调度迅速计算解决方案。在这里,我们提出了一种计算有效的方法,该方法可在动态条件下最大限度地减少气体压缩成本,在这种情况下,随时间变化的质量流量描述了向客户的交付。优化方法使用了简化的气流物理表示法,提供了时空离散方案的选择,并采用了两阶段方法来最大程度地降低能源成本并确保获得平滑且有意义的物理解决方案。使用内点法求解生成的大规模NLP。通过使用自适应时步微分方程求解器将解决方案与动态方程的积分进行比较,以验证优化方案,以及最近提出的不同最优控制方案。比较表明,离散问题的解决方案对于连续问题是可行的,并且从操作的角度来看也是可行的。结果还表明,相对于现有技术,我们的方案在计算时间上至少减少了一个数量级,并且可扩展到总管道超过6000公里的大型天然气传输网络。

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