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Combined Heat and Power Dispatch Considering Heat Storage of Both Buildings and Pipelines in District Heating System for Wind Power Integration

机译:考虑风能集成的区域供热系统中考虑建筑物和管道蓄热的热电联产

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The strong coupling between electric power and heat supply highly restricts the electric power generation range of combined heat and power (CHP) units during heating seasons. This makes the system operational flexibility very low, which leads to heavy wind power curtailment, especially in the region with a high percentage of CHP units and abundant wind power energy such as northeastern China. The heat storage capacity of pipelines and buildings of the district heating system (DHS), which already exist in the urban infrastructures, can be exploited to realize the power and heat decoupling without any additional investment. We formulate a combined heat and power dispatch model considering both the pipelines’ dynamic thermal performance (PDTP) and the buildings’ thermal inertia (BTI), abbreviated as the CPB-CHPD model, emphasizing the coordinating operation between the electric power and district heating systems to break the strong coupling without impacting end users’ heat supply quality. Simulation results demonstrate that the proposed CPB-CHPD model has much better synergic benefits than the model considering only PDTP or BTI on wind power integration and total operation cost savings.
机译:电力和供热之间的强耦合极大地限制了供暖季节热电联产(CHP)单元的发电范围。这使得系统的运行灵活性非常低,导致大量的风电被削减,特别是在热电联产单元比例高,风电能源丰富的地区(例如中国东北)。可以利用城市基础设施中已经存在的区域供热系统(DHS)的管道和建筑物的储热能力来实现电力和热力的解耦。我们结合管道的动态热性能(PDTP)和建筑物的热惯性(BTI)制定了热电联产模型,简称为CPB-CHPD模型,强调了电力与区域供热系统之间的协调运行在不影响最终用户的供热质量的情况下破坏牢固的耦合。仿真结果表明,与仅考虑PDTP或BTI进行风电集成和节省总运营成本的模型相比,所提出的CPB-CHPD模型具有更好的协同效益。

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