Dual-time-scale zone economic model predictive control of micro gas turbine cogeneration systems

IF 3.7 3区 工程技术 Q2 ENGINEERING, CHEMICAL
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Abstract

The utilization of decentralized micro gas turbine combined heat and power (MGT-CHP) units is considered as a prospective technique in power generation due to its high levels of fuel utilization rates and low emissions. However, the inherent strong coupling and complex timescale multiplicity make it challenging to realize optimal operation. To this end, this paper first establishes a precise mechanism model to attain a thorough understanding of the system properties. By conducting singular perturbation theory, the complex nonlinear system is decomposed into a fast power subsystem and a slow heat subsystem. Then, a dual-time-scale zone economic model predictive control (D-ZEMPC) algorithm, which is comprised of a fast EMPC and a slow EMPC, is applied to achieve dynamic synergy between heat and power supply by actively coordinating the two sub-controllers. Moreover, a zone tracking method is introduced for room temperature control, thereby yielding increased freedom in balancing the economic profits and thermal comfort. The simulation results in three scenarios along with the qualitative and quantitative discussions show that compared with the other two centralized EMPC algorithms, the proposed D-ZEMPC can significantly alleviate computational loads and reduce the simulation time by over 64.5 % while maintaining required thermal comfort with minimum fuel consumption.

微型燃气轮机热电联产系统的双时区经济模型预测控制
分散式微型燃气轮机热电联产机组(MGT-CHP)具有燃料利用率高、排放低的特点,被认为是一种前景广阔的发电技术。然而,由于其固有的强耦合性和复杂的时间尺度多重性,实现最佳运行具有挑战性。为此,本文首先建立了一个精确的机制模型,以获得对系统特性的透彻理解。通过奇异扰动理论,将复杂的非线性系统分解为快速动力子系统和慢速热子系统。然后,应用由快速 EMPC 和慢速 EMPC 组成的双时间尺度区域经济模型预测控制(D-ZEMPC)算法,通过积极协调两个子控制器,实现供热和供电之间的动态协同。此外,还在室温控制中引入了分区跟踪方法,从而提高了平衡经济效益和热舒适度的自由度。三种方案的仿真结果以及定性和定量讨论表明,与其他两种集中式 EMPC 算法相比,所提出的 D-ZEMPC 可以显著减轻计算负荷,并将仿真时间减少 64.5 % 以上,同时以最低的燃料消耗维持所需的热舒适度。
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来源期刊
Chemical Engineering Research & Design
Chemical Engineering Research & Design 工程技术-工程:化工
CiteScore
6.10
自引率
7.70%
发文量
623
审稿时长
42 days
期刊介绍: ChERD aims to be the principal international journal for publication of high quality, original papers in chemical engineering. Papers showing how research results can be used in chemical engineering design, and accounts of experimental or theoretical research work bringing new perspectives to established principles, highlighting unsolved problems or indicating directions for future research, are particularly welcome. Contributions that deal with new developments in plant or processes and that can be given quantitative expression are encouraged. The journal is especially interested in papers that extend the boundaries of traditional chemical engineering.
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