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A kelly criterion based optimal scheduling of a microgrid on a steam-assisted gravity drainage (SAGD) facility

机译:基于蒸汽辅助引力排水(SAGD)设施的微电网的凯利标准

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摘要

Steam Assisted Gravity Drainage (SAGD) is one of the major thermal recovery techniques to extract the Canadian bitumen. In the process, there is substantial amount of heat left behind in the reservoir at the end of SAGD operations, which can be converted to electricity and distributed profitably utilizing a microgrid. Concurrently, based on Canada's green energy initiative, we present the integration and optimal power management of a microgrid on a SAGD facility, comprising of an Organic Rankine Cycle based turbine (ORC), a Gas Turbine (GT), a Battery Storage System (BSS), the central grid and the SAGD facility as the load. We introduce a Kelly Criterion (KC) based microgrid scheduling technique, which is based on maximizing information gain and is independent of supply-demand relationships. Based on the formulation, it was hypothesized that the KC based algorithm is superior compared to standard optimization techniques in a highly volatile electricity market. The electricity market volatility is captured via a wavelet network based forecasting technique. The case study presented highlights the advantages of the KC approach and its efficacy in a highly volatile energy market. The results show the superiority of the KC based scheduling algorithm in highly volatile energy markets, with forecast data irregularities.
机译:蒸汽辅助重力排水(SAGD)是提取加拿大沥青的主要热恢复技术之一。在该过程中,在SAGD操作结束时储存器中留下了大量的热量,可以将电力转换为电力并利用微电网的利润分布。同时,基于加拿大的绿色能源倡议,我们在SAGD设施上介绍了微电网的集成和最优电力管理,包括基于有机朗肯循环的涡轮机(ORC),燃气轮机(GT),电池存储系统(BSS ),中央网格和作为负载的SAGD设施。我们介绍了基于凯利标准(KC)的微电网调度技术,其基于最大化信息增益,并且与供需关系无关。基于制剂,假设基于KC基于KC的算法与高挥发性电力市场中的标准优化技术相比优越。通过基于小波网络的预测技术捕获电力市场波动。案例研究介绍了KC方法的优势及其在高挥发性能源市场中的功效。结果表明,基于KC的调度算法在高度挥发能量市场中的优势,预测数据不规则。

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