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Optimal scheduling strategy of district integrated heat and power system with wind power and multiple energy stations considering thermal inertia of buildings under different heating regulation modes

机译:考虑不同热调节模式下建筑物热惯性的风能多能源区域热电联产系统优化调度策略

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Utilizing multiple energy supply solutions and the thermal inertia of buildings are considered as an efficient method for improving energy conservation and the operational flexibility of Combined Heat and Power (CHP) for wind power integration in a district integrated heat and power system (DIHPS). However, to truly take advantage of these, many factors such as the energy price, the variable efficiency of devices, and especially the different heating regulation modes (the quantity regulation and the quality regulation mode) are imperative to be considered for variable situations of the practical project. Therefore, in this paper, an integrated hydraulic thermal model of the district heating network (DHN) under the quantity regulation mode is introduced, and a novel thermal energy flow model with transmission time delay under the quality regulation mode is firstly proposed to simulate the dynamic thermal energy distribution of the DHN with multiple heat sources. Then, in terms of different heating regulation modes, the different thermal capacity of buildings to increase the flexibility of the DIHPS is studied. Moreover, an optimal scheduling method considering different energy stations and the thermal inertia of buildings under different heating regulation modes is proposed to guide the operation of the DIHPS in variable actual engineering applications for the sake of operational economics and wind power utilization. Finally, numerical cases have been compared based on a modified testing system. The results demonstrate that under the quantity regulation mode the coordination of energy stations effectively reduces the daily operation cost by 17.4%. The thermal inertia of buildings give a saving rate of 6.4% and he penalty cost of wind power is reduced by 36.3% further. Moreover, the total thermal capacity of buildings to reduce the operation cost and the wind power curtailment is less under the quality regulation mode. It results that the daily operation cost increases by 4.1%. In addition, towards the DIHPS with multiple energy stations in our case, the thermal inertia of pipes cloud not reduce the daily operation cost.
机译:利用多种能源供应解决方案和建筑物的热惯量被认为是一种有效的方法,可以提高节能效果,并提高热电联产(CHP)在区域热电联产系统(DIHPS)中的风电集成的灵活性。但是,要真正利用这些优势,必须考虑多种因素,例如能源价格,设备的可变效率,尤其是不同的加热调节模式(数量调节和质量调节模式)。实际项目。因此,本文引入了在数量调节模式下区域供热网络的综合水力热模型,并首次提出了在质量调节模式下具有传递时滞的新型热能流模型。 DHN具有多个热源的热能分布。然后,针对不同的供热调节方式,研究了建筑物不同的热容量,以提高DIHPS的灵活性。此外,出于运营的经济性和风能的利用,提出了一种在不同供热调节模式下考虑不同能量站和建筑物热惯性的最优调度方法,以指导DIHPS在各种实际工程应用中的运行。最后,基于改进的测试系统对数值案例进行了比较。结果表明,在数量调节模式下,能源站的协调有效降低了每日运行成本17.4%。建筑物的热惯性节省了6.4%的费用,风能的罚款成本进一步降低了36.3%。而且,在质量调节模式下,降低运营成本和减少风能的建筑物的总热容量较小。结果是每日运营成本增加了4.1%。此外,在我们的案例中,对于具有多个能源站的DIHPS,管道的热惯性不会降低日常运营成本。

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