Embedded Model Predictive Control of Tankless Gas Water Heaters to Enhance Users' Comfort

被引:0
作者
Conceicao, Cheila [1 ]
Quinta, Andre [1 ,2 ,3 ]
Ferreira, Jorge A. F. [1 ,2 ,3 ]
Martins, Nelson [1 ,2 ,3 ]
dos Santos, Marco P. Soares [1 ,2 ,3 ]
机构
[1] Univ Aveiro, Dept Mech Engn, P-3810193 Aveiro, Portugal
[2] Univ Aveiro, TEMA Ctr Mech Technol & Automat, P-3810193 Aveiro, Portugal
[3] LASI Intelligent Syst Associate Lab, P-4800058 Guimaraes, Portugal
关键词
tankless gas water heater; domestic hot water; thermal comfort; model predictive control; hardware-in-the-loop simulation; low-cost embedded control; PERFORMANCE; ALGORITHM; ENERGY; MPC; GENERATION; PUMP;
D O I
10.3390/machines11100951
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Water heating is a significant part of households' energy consumption, and tankless gas water heaters (TGWHs) are commonly used. One of the limitations of these devices is the difficulty of keeping hot water temperature setpoints when changes in water flow occur. As these changes are usually unexpected, the controllers typically used in these devices cannot anticipate them, strongly affecting the users' comfort. Moreover, considerable water and energy waste are associated with the long-time response to cold starts. This work proposes the development of a model predictive control (MPC) to be deployed in low-cost hardware, such that the users' thermal comfort and water savings can be improved. Matlab/Simulink were used to develop, validate and automatically generate C code for implementing the controller in microcontroller-based systems. Hardware-in-the-loop simulations were performed to evaluate the performance of the MPC algorithm in 8-bit and 32-bit microcontrollers. A 6.8% higher comfort index was obtained using the implementation on the 32-bit microcontroller compared to the current deployments; concerning the 8-bit microcontroller, a 4.2% higher comfort index was achieved. These applications in low-cost hardware highlight that users' thermal comfort can be successfully enhanced while ensuring operation safety. Additionally, the environmental impact can be significantly reduced by decreasing water and energy consumption in cold starts of TGWHs.
引用
收藏
页数:20
相关论文
共 50 条
[41]   Nonlinear Model Predictive Control for Premixed Turbocharged Natural Gas Engine [J].
Gong, Qichangyi ;
Xu, Jinbang ;
Ye, Jie ;
Feng, Han ;
Shen, Anwen .
IEEE-ASME TRANSACTIONS ON MECHATRONICS, 2022, 27 (05) :3694-3705
[42]   Fuzzy modeling and fast model predictive control of gas turbine system [J].
Hou, Guolian ;
Gong, Linjuan ;
Huang, Congzhi ;
Zhang, Jianhua .
ENERGY, 2020, 200
[43]   Efficient Convex Optimization on GPUs for Embedded Model Predictive Control [J].
Yu, Leiming ;
Goldsmith, Abraham ;
Di Cairano, Stefano .
PROCEEDINGS OF THE GENERAL PURPOSE GPUS (GPGPU-10), 2017, :12-21
[44]   Embedded Online Optimization for Model Predictive Control at Megahertz Rates [J].
Jerez, Juan L. ;
Goulart, Paul J. ;
Richter, Stefan ;
Constantinides, George A. ;
Kerrigan, Eric C. ;
Morari, Manfred .
IEEE TRANSACTIONS ON AUTOMATIC CONTROL, 2014, 59 (12) :3238-3251
[45]   Reinforcement learning and model predictive control for robust embedded quadrotor guidance and control [J].
Colin Greatwood ;
Arthur G. Richards .
Autonomous Robots, 2019, 43 :1681-1693
[46]   Analysis of the Influence of Suspension Actuator Limitations on Ride Comfort in Passenger Cars Using Model Predictive Control [J].
Enders, Erik ;
Burkhard, Georg ;
Munzinger, Nathan .
ACTUATORS, 2020, 9 (03)
[47]   Research on intelligent control model of gas drainage based on model predictive control [J].
Ma L. ;
Shi X. ;
Li S. ;
Lin H. ;
Song S. ;
Dai X. .
Meitan Kexue Jishu/Coal Science and Technology (Peking), 2022, 50 (08) :82-90
[48]   Enhance Upset Prediction and Recovery Training Motion Cueing Using Switched Model Predictive Control and Pilot Model [J].
Wu, Dongsu ;
Zhang, Zesheng ;
Zhao, Jiangwei .
PROCEEDINGS OF 2020 IEEE 2ND INTERNATIONAL CONFERENCE ON CIVIL AVIATION SAFETY AND INFORMATION TECHNOLOGY (ICCASIT), 2020, :1083-1087
[49]   Wireless model predictive control: Application to water-level system [J].
Hedjar, Ramdane ;
Bounkhel, Messaoud .
ADVANCES IN MECHANICAL ENGINEERING, 2016, 8 (04) :1-13
[50]   Model Predictive Control for Water Level Control in the Case of Spills [J].
Tian, Xin ;
Aydin, Boran Ekin ;
Negenborn, Rudy R. ;
van de Giesen, Nick ;
Maria Maestre, Jose .
JOURNAL OF IRRIGATION AND DRAINAGE ENGINEERING, 2017, 143 (03)