配备废气再循环系统和涡轮增压器切断系统的大型船用二冲程发动机模式切换的控制策略

IF 5.4 2区 计算机科学 Q1 AUTOMATION & CONTROL SYSTEMS
Daoyi Lu , Gerasimos Theotokatos , Keying Cui
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引用次数: 0

摘要

为了满足严格的氮氧化物排放规定,最近的船用二冲程发动机都配备了废气再循环(EGR)系统。要跨越废气控制区域的边界,就必须在与启动或停用 EGR 系统相关的发动机运行模式之间进行切换,这给发动机的运行带来了挑战。本研究旨在开发和数值测试有效的控制策略,以改善带有 EGR 系统的船用二冲程发动机的模式切换。所研究的发动机动态模型是通过整合 GT-POWER 中开发的零维热力学模型和 MATLAB/Simulink 中开发的控制模型而建立的。首先根据实验测量的发动机性能参数对该模型进行验证,然后利用该模型模拟带模式切换的发动机动态运行。对模拟结果进行评估,以量化几种控制策略对发动机性能的影响。得出的性能参数时间变化表明,停用 EGR 分支和小型发动机涡轮增压器会导致发动机在高负荷时超过制造商的限制并增加油耗。所提出的基于负荷的控制策略采用了负荷阈值和时间延迟来控制 EGR 和涡轮增压系统的启动/停用,证明是有效的,因为发动机性能参数保持在其限制范围内,油耗损失降到了最低。这项研究为开发船用发动机后处理系统控制提供了启示,从而有助于提高航运的可持续性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Control strategies for mode switching of a large marine two-stroke engine equipped with exhaust gas recirculation and turbocharger cut-off systems

To meet the stringent nitrogen oxides emissions regulations, the recent marine two-stroke engines are equipped with exhaust gas recirculation (EGR) systems. Crossing the boundaries of exhaust control areas requires switching between the engine operating modes associated with the activation or deactivation the EGR system, which imposes challenges to the engine operation. This study aims to develop and numerically test effective control strategies for improving the mode switching of marine two-stroke engines with EGR systems. The investigated engine dynamic model is developed by integrating a zero-dimensional thermodynamic model developed in GT-POWER and the control model developed in MATLAB/Simulink. This model is first validated against the experimentally measured engine performance parameters, and subsequently employed to simulate the engine dynamic operation with mode switching. The simulation results are assessed to quantify the impact of several control strategies on the engine performance. The derived perrformannce parameters time variations demonstrate that the deactivation of the EGR branch and the small engine–turbocharger result in exceeding the manufacturer limits at high loads and increasing the fuel consumption. The proposed load-based control strategies, which employ load thresholds and time delays for the control of the EGR and turbocharging systems activation/deactivation, are proved effective, as the engine performance parameters are retained within their limits and fuel consumption penalties are minimised. This study provides insights for developing the control of the marine engines after-treatment systems, hence contributing towards enhancing shipping sustainability.

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来源期刊
Control Engineering Practice
Control Engineering Practice 工程技术-工程:电子与电气
CiteScore
9.20
自引率
12.20%
发文量
183
审稿时长
44 days
期刊介绍: Control Engineering Practice strives to meet the needs of industrial practitioners and industrially related academics and researchers. It publishes papers which illustrate the direct application of control theory and its supporting tools in all possible areas of automation. As a result, the journal only contains papers which can be considered to have made significant contributions to the application of advanced control techniques. It is normally expected that practical results should be included, but where simulation only studies are available, it is necessary to demonstrate that the simulation model is representative of a genuine application. Strictly theoretical papers will find a more appropriate home in Control Engineering Practice''s sister publication, Automatica. It is also expected that papers are innovative with respect to the state of the art and are sufficiently detailed for a reader to be able to duplicate the main results of the paper (supplementary material, including datasets, tables, code and any relevant interactive material can be made available and downloaded from the website). The benefits of the presented methods must be made very clear and the new techniques must be compared and contrasted with results obtained using existing methods. Moreover, a thorough analysis of failures that may happen in the design process and implementation can also be part of the paper. The scope of Control Engineering Practice matches the activities of IFAC. Papers demonstrating the contribution of automation and control in improving the performance, quality, productivity, sustainability, resource and energy efficiency, and the manageability of systems and processes for the benefit of mankind and are relevant to industrial practitioners are most welcome.
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