Evaluating the impact of thermostat control strategies on the energy flexibility of residential buildings for space heating

被引:0
|
作者
Kun Zhang
Michaël Kummert
机构
[1] Polytechnique Montreal,Department of Mechanical Engineering
来源
Building Simulation | 2021年 / 14卷
关键词
energy flexibility; MPC; grid-building interaction; demand response;
D O I
暂无
中图分类号
学科分类号
摘要
Buildings can be operated in an energy-flexible manner while respecting occupant thermal comfort. This energy flexibility of building operations, both in time and quantity, can be harnessed by the electrical grid for load balancing. In the context of smart grid and intelligent buildings, the concept of energy flexibility in buildings broadens the existing demand management thinking from the top-down one-way control to two-way communications. This paper, extending studies on thermostat controls of heating and air conditioning systems for demand response, evaluates the impact of different control schemes on the energy flexibility of residential buildings. Two control strategies, Model Predictive Control (MPC) and Rule-Based Control (RBC), are investigated for a space heating system using co-simulation studies. Four indicators are introduced and adapted from the literature to assess the control performances of the strategies. Simulation results show that different flexibility indicators favour different control strategies in this case study. For demand response events of four hours, the MPC strategy presents two to three times of flexible energy than that of RBC. MPC also delivers 20% more of maximum power reduction during the events against RBC. The RBC strategy, on the other hand, is twice of MPC for flexible energy efficiency. This evaluation work can be beneficial to guide the control system design of new buildings or control retrofits of existing buildings that consider better grid-building interactions for the future.
引用
下载
收藏
页码:1439 / 1452
页数:13
相关论文
共 50 条
  • [1] Evaluating the impact of thermostat control strategies on the energy flexibility of residential buildings for space heating
    Zhang, Kun
    Kummert, Michael
    BUILDING SIMULATION, 2021, 14 (05) : 1439 - 1452
  • [2] Thermostat strategies impact on energy consumption in residential buildings
    Moon, Jin Woo
    Han, Seung-Hoon
    ENERGY AND BUILDINGS, 2011, 43 (2-3) : 338 - 346
  • [3] Potential quantification and impact factors analysis of energy flexibility in residential buildings with preheating control strategies
    Ruan, Yingjun
    Ma, Jiacheng
    Meng, Hua
    Qian, Fanyue
    Xu, Tingting
    Yao, Jiawei
    JOURNAL OF BUILDING ENGINEERING, 2023, 78
  • [4] The impact of control strategies on space heating system efficiency in low-energy buildings
    Brembilla, Christian
    Renman, Ronny
    Soleimani-Mohseni, Mohsen
    Ostin, Ronny
    Olofsson, Thomas
    BUILDING SERVICES ENGINEERING RESEARCH & TECHNOLOGY, 2019, 40 (06): : 714 - 731
  • [5] Heating system energy flexibility of low-energy residential buildings
    Foteinaki, Kyriaki
    Li, Rongling
    Heller, Alfred
    Rode, Carsten
    ENERGY AND BUILDINGS, 2018, 180 : 95 - 108
  • [6] Analysis of the Energy Flexibility of Residential Buildings in the Heating and Cooling Season
    Vivian, Jacopo
    Chiodarelli, Umberto
    Emmi, Giuseppe
    Zarrella, Angelo
    PROCEEDINGS OF BUILDING SIMULATION 2019: 16TH CONFERENCE OF IBPSA, 2020, : 270 - 277
  • [7] A sensitivity analysis on the heating and cooling energy flexibility of residential buildings
    Vivian, Jacopo
    Chiodarelli, Umberto
    Emmi, Giuseppe
    Zarrella, Angelo
    SUSTAINABLE CITIES AND SOCIETY, 2020, 52
  • [8] Energy saving impact of occupancy-driven thermostat for residential buildings
    Wang, Chenli
    Pattawi, Kaleb
    Lee, Hohyun
    ENERGY AND BUILDINGS, 2020, 211
  • [9] Energy demand for space heating of residential buildings in Poland
    Siuta-Olcha, A.
    Cholewa, T.
    ENVIRONMENTAL ENGINEERING III, 2010, : 581 - 589
  • [10] Energy Use in Residential Buildings: Impact of Building Automation Control Systems on Energy Performance and Flexibility
    Mancini, Francesco
    Lo Basso, Gianluigi
    de Santoli, Livio
    ENERGIES, 2019, 12 (15)