同址银行需求侧管理电力池方案设计

E. Ezugwu, D. Dike, S. O. Okozi, M. Olubiwe, Chiedozie Francis Paulinus-Nwammuo
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引用次数: 2

摘要

在这项工作中,为尼日利亚奥韦里市共址银行的需求侧管理设计了一个电力池方案。本文解决了由于中小规模工业负荷(如共址银行)的动态特性而导致的瞬时负荷需求与适当的发电机容量匹配问题。它还旨在提供解决办法,以解决与每个公司使用分散的单个发电机有关的健康和环境问题。建立了一个类似于典型电力系统的发电机组和负荷在池结构中相互连接的环形网络模型。选择池中的一台发电机作为空闲母线,将其他发电机和负载母线按功率池布置,以便于牛顿-拉夫森法进行潮流分析。通过这种建模和适当调度的应用,建立了一个只部署精确发电容量的合作池模型。该模型通过在同步环网中并联3台200kVA发电机组来模拟,以服务于整个五家银行。负荷流分析结果表明,母线1、2、3、4、5的单位电压值分别为1.000、0.997、1.000、0.998、1.000,母线1 ~ 5的单位电压失配角(度)分别为0.000、0.003、0.024、0.060、0.086。从所进行的成本效益分析中,计算出了1.965的效益成本比(BCR),表明该项目对合作银行是非常有利的。利用数学排列组合模型对三台发电机的运行进行调度,结果表明,机组操作员的总工时减少了40%。此外,应用温室气体排放成本模型,发现互联网络的碳足迹即温室成本降低了40%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design of Power Pool Scheme for Demand-Side Management of Co-Located Banks
The design of a power pool scheme for demand-side management of co-located banks in Owerri metropolis, Nigeria has been carried out in this work. The paper addressed the problem of matching instantaneous load demand with appropriate generator capacities which results from dynamic nature of small and medium scale industrial load, such as co-located banks. It also aimed at proffering solutions to health and environmental problems associated with use of scattered single generators per firm. A model for interconnection of generators and loads in a pool structure was developed to form a ring network, analogous to a typical power system. One of the generators in the pool was chosen as the slack bus and the other generators and load buses were arranged in the power pool arrangement such that Newton-Raphson’s method could be applied in load flow analysis. With this modeling and application of appropriate schedule, a cooperative pooling model was developed such that only the exact generating capacities were deployed. The proposed model was simulated by paralleling three 200kVA generator units in a synchronized ring network to serve the entire five banks. Results from the load flow analysis showed that the per unit voltage magnitudes at buses 1, 2, 3, 4 and 5 were 1.000, 0.997, 1.000, 0.998 and 1.000 respectively, while voltage mismatch angles (degree) were also gotten as 0.000, 0.003, 0.024, 0.060 and 0.086 respectively for the buses 1 to 5. From the cost benefit analysis carried out, the benefit-cost ratio (BCR) of 1.965 was calculated, which showed that this project will be very beneficial to the co-operating banks. Scheduling the operations of the three generators using mathematical permutation and combination model showed that the total man-hour of the plant operators is reduced by 40%. Also, applying the greenhouse gases emissions cost model it was found that the carbon footprints i.e. greenhouse cost for the interconnected network is reduced by 40%.
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