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首页> 外文期刊>International journal of hydrogen energy >Mixed integer linear programing based approach for optimal planning and operation of a smart urban energy network to support the hydrogen economy
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Mixed integer linear programing based approach for optimal planning and operation of a smart urban energy network to support the hydrogen economy

机译:基于混合整数线性规划的方法,用于智能城市能源网络的最佳规划和运营,以支持氢经济

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The future of urban energy systems relies on the transition to "smart energy networks" which incorporate energy storage with renewable energy sources such as wind and solar. Hydrogen provides a desirable energy vector for both energy storage and exchange of energy between energy hubs within a smart energy network. This paper aims to develop a generic mathematical model for the optimal energy management of future communities where hydrogen is used as an energy vector. An energy hub is a novel concept that systematically and holistically considers the energy requirements of both mobility and stationary loads. In order to perform optimization studies, the minimization of capital cost of hydrogen refueling stations and operation and maintenance cost of all energy hubs within the network are considered. The modeling and optimization are undertaken and carried out in the General Algebraic Modeling Software (GAMS). The case study considers four energy hubs consisting of a commercial building, school, residential complex, as well as hydrogen refueling stations. The study investigates the optimal operation of different energy conversion and storage technologies in order to meet the demand of energy. The results showed that the optimum size of electrolyser and hydrogen tank for supplying the hydrogen demand in the energy hub network is two 290-kW electrolysers and four 30-kg tanks, respectively. The average daily strike price of electricity by which the electrolyser operates is $0.036 per kWh and will not operate when the average hourly Ontario electricity price is higher than $0.13 per kWh. The levelized cost of hydrogen produced by hydrogen refueling station is estimated to be $6.74 per kg. Moreover, the optimal operation of energy conversion and energy storage technologies within each hub and the optimal interaction between energy hubs with in the network are also investigated. In addition, it is shown that distributed hydrogen generation is more preferable than H-2 delivery in environmental and economic comparison. (C) 2015 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:城市能源系统的未来取决于向“智能能源网络”的过渡,该网络将能量存储与风能和太阳能等可再生能源结合在一起。氢气为智能能源网络内的能源枢纽之间的能量存储和能量交换提供了理想的能量矢量。本文旨在开发一种通用数学模型,用于未来社区的最佳能源管理,在该社区中,氢气被用作能源矢量。能源枢纽是一个新颖的概念,可以系统地,全面地考虑移动性和固定负载的能源需求。为了进行优化研究,应考虑将加氢站的资本成本以及网络内所有能源枢纽的运营和维护成本降至最低。建模和优化是在通用代数建模软件(GAMS)中进行的。该案例研究考虑了四个能源枢纽,包括商业建筑,学校,住宅综合体以及加氢站。该研究调查了各种能量转换和存储技术的最佳运行,以满足能源需求。结果表明,用于满足能源枢纽网络中的氢气需求的电解槽和氢气罐的最佳尺寸分别是两个290 kW电解槽和四个30 k​​g罐。电解器的平均每日罢工电价为0.036美元/千瓦时,而安大略省的平均小时平均电价高于0.13美元/千瓦时时,它将不再运行。加氢站生产的氢气的平准化成本估计为每公斤6.74美元。此外,还研究了每个集线器内的能量转换和能量存储技术的最佳运行以及能量集线器与网络之间的最佳交互。另外,在环境和经济方面的比较中,显示出比H-2输送更优选分布氢的产生。 (C)2015 Hydrogen Energy Publications LLC。由Elsevier Ltd.出版。保留所有权利。

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