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Integrated heat and power dispatch truly utilizing thermal inertia of district heating network for wind power integration

机译:整合热电调度,真正利用区域供热网络的热惯性进行风电集成

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摘要

Utilizing the thermal inertia of a district heating network (DHN) for thermal storage is considered an effective energy-saving method for improving the operational flexibility of combined heat and power (CHP) generation units for wind power integration in an integrated heat and power dispatch (IHPD) system. However, to truly utilize the thermal inertia of the DHN, the supply and return temperatures at the heat source are both necessary to regulate the district heating system (DHS) for wind power integration, whereas the heat output of CHP is not able to do that. Therefore, a new IHPD model that considers the thermal inertia of the DHN was formulated to improve the flexibility of CHP units for wind power integration, in which the first proposed integration model was used to completely simulate the dynamic temperature distribution of the DHS. The optimised supply and return temperatures at the heat source were then obtained to guide the operation regulation of DHS for wind power integration in actual engineering applications. Moreover, the stored thermal energy and the thermal storage rate of the DHN were quantitatively calculated to determine the thermal state of DHN. To analyse the effects of the proposed IHPD model, the approach was compared with a conventional heat and power dispatch model through a case study based on a real DHS. The results demonstrate the advantages of the proposed model in terms of wind power integration, energy saving and operation regulation of DHS.
机译:利用集中供热的区域供热网(DHN)的热惯性被认为是一种有效的节能方法,可提高热电联产(CHP)发电单元在风电集成中的风电集成的运行灵活性( IHPD)系统。但是,要真正利用DHN的热惯性,必须调节热源的供热和回流温度,以调节用于风能集成的区域供热系统(DHS),而CHP的热量输出却无法做到这一点。因此,提出了一种新的考虑到DHN热惯性的IHPD模型,以提高CHP单元在风电集成中的灵活性,其中使用第一个提出的集成模型来完全模拟DHS的动态温度分布。然后,获得了热源处的最佳供气和回流温度,以指导DHS在实际工程应用中用于风电集成的运行规定。此外,定量地计算DHN的存储热能和储热速率,以确定DHN的热状态。为了分析所提出的IHPD模型的效果,通过基于真实DHS的案例研究,将该方法与常规的热电分配模型进行了比较。结果证明了该模型在风电集成,DHS的节能和运行调节方面的优势。

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