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Benchmark value determination of energy efficiency indexes for coal-fired power units based on data mining methods
Affiliation:1. China Institute of FTZ Supply Chain, Shanghai Maritime University, Shanghai, PR China;2. Nanjing Metro Operation Co., Ltd., Nanjing, PR China;1. Department of Architecture, KU Leuven, Kasteelpark Arenberg 1, 3001 Leuven, Belgium;2. Digital Architecture and Sustainability Group, Berlin University of Technology, Strasse des 17. Juni 152, A61, 10623 Berlin, Germany
Abstract:The operational optimisation of coal-fired power units is important for saving energy and reducing losses in the electric power industry. One of the key issues is how to determine the benchmark values of the energy efficiency indexes of the units. Therefore, a new framework for determining these benchmark values is proposed, based on data mining methods. First, the energy efficiency key performance indicators (KPIs) associated with the net coal consumption rate (NCCR) were selected based on the domain knowledge. Second, the decision-making samples with minimal NCCR were acquired with the fuzzy C-means (FCM) clustering algorithm, and the corresponding clustering centres were employed as the benchmark values. Finally, based on the support vector regression (SVR) algorithm, the target values of the NCCR were obtained with the KPIs as input, and the energy saving potential was evaluated by comparing the target values with the historical values of the NCCR. An actual on-duty 1000 MW unit was taken as study unit, and the results show that the energy saving potential is remarkable when the operators adjust the KPIs based on the calculated benchmark values.
Keywords:Coal-fired power unit  Energy saving  Benchmark value  Fuzzy C-means  Support vector regression
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