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Control of micro-CHP and thermal energy storage for minimising electrical grid utilisation

机译:控制微型热电联产和热能存储,以最大程度地减少电网利用率

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The efficient use of combined heat and power (CHP) systems in buildings presents a control challenge due to their simultaneous production of thermal and electrical energy. The use of thermal energy storage coupled with a CHP engine provides an interesting solution to the problem—the electrical demands of the building can be matched by the CHP engine, while the resulting thermal energy can be regulated by the thermal energy store. Based on the thermal energy demands of the building the thermal store can provide extra thermal energy or absorb surplus thermal energy production. This paper presents a multi-input multi-output inverse-dynamics-based control strategy that will minimise the electrical grid utilisation of a building, while simultaneously maintaining a defined operative temperature. Electrical demands from lighting and appliances within the building are considered. In order to assess the performance of the control strategy, a European Standard validated simplified dynamic building physics model is presented that provides verified heating demands. Internal heat gains from solar radiation and internal loads are included within the model. Results indicate the control strategy is effective in minimising the electrical grid use and maximising the utilisation of the available energy when compared with conventional heating systems.
机译:由于建筑物中同时产生热能和电能,因此在建筑物中有效利用热电联产(CHP)系统提出了控制挑战。将热能存储器与CHP发动机结合使用可为该问题提供有趣的解决方案-CHP发动机可满足建筑物的电力需求,而产生的热能可通过热能存储器进行调节。根据建筑物的热能需求,蓄热器可以提供额外的热能或吸收多余的热能产生。本文提出了一种基于多输入多输出逆动力学的控制策略,该策略将使建筑物的电网利用率降至最低,同时保持定义的工作温度。考虑建筑物内照明和电器的电力需求。为了评估控制策略的性能,提出了经过欧洲标准验证的简化动态建筑物理模型,该模型提供了经过验证的供暖需求。该模型包括太阳辐射和内部负载产生的内部热量。结果表明,与常规加热系统相比,该控制策略可有效减少电网使用并最大限度地利用可用能量。

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