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Demand response potential of model predictive control of space heating based on price and carbon dioxide intensity signals

机译:基于价格和二氧化碳强度信号的空间供暖模型预测控制的需求响应潜力

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This paper reports on a simulation-based study that investigated the demand response potential of a model predictive controller (MPC) for space heating defined to minimize a weighted sum of electricity costs and CO2 emissions. The performance of the MPC was compared to a traditional controller and the results showed that an MPC with no weight on CO2 emissions reduced the total electricity costs, shifted consumption from high to low load periods and reduced consumption in the hour with the yearly maximum grid load; but it could also cause an increase in CO2 emissions. Contrary, the MPC with no weight on electricity costs reduced CO2 emissions; but it only reduced total costs marginally, it could cause a shift of consumption from low to high load periods and it increased consumption in the hour with the yearly maximum grid load. Finally, if the MPC used a weighted sum of electricity costs and CO2 emissions a range of intermediate results were obtained. The weighting factor can thus be used either to balance the performance of the MPC with respect to all performance indicators or to maximise it with respect to one indicator of particular interest. (C) 2016 Elsevier B.V. All rights reserved.
机译:本文报告了一项基于仿真的研究,该研究调查了模型预测控制器(MPC)对空间供暖的需求响应潜力,该模型已定义为最小化电力成本和CO2排放的加权总和。将MPC的性能与传统控制器进行了比较,结果表明,不考虑CO2排放的MPC降低了总电力成本,将耗电量从高负荷时段转移到了低负荷时段,并在年度最大电网负荷的情况下减少了每小时的耗电量;但这也可能导致二氧化碳排放量的增加。相反,不考虑电力成本的MPC减少了CO2排放;但是它仅略微降低了总成本,这可能导致能耗从低负荷时段转变为高负荷时段,并且在年度最大电网负荷的情况下每小时增加能耗。最后,如果MPC使用了电力成本和CO2排放的加权总和,则会获得一系列中间结果。因此,加权因子既可以用于相对于所有性能指标平衡MPC的性能,也可以用于相对于特定关注的指标最大化MPC的性能。 (C)2016 Elsevier B.V.保留所有权利。

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