Moving horizon estimation for pipeline leak detection, localization, and constrained size estimation

IF 3.9 2区 工程技术 Q2 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS Computers & Chemical Engineering Pub Date : 2024-06-25 DOI:10.1016/j.compchemeng.2024.108777
Junyao Xie, Biao Huang, Stevan Dubljevic
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引用次数: 0

Abstract

Advanced pipeline leak detection and localization techniques are needed to reduce greenhouse gas emissions from hydrocarbon transportation pipelines. Developing effective leak detection and localization methods is challenging due to the spatiotemporal dynamics of process variables, the presence of process/measurement disturbances and constraints, and the limited measurement data. To address this issue, this manuscript proposes a novel moving horizon estimation design for pipeline leak detection, constrained estimation of leak size and location by using an infinite-dimensional pipeline hydraulic model. Based on the mass and momentum balance laws and the Cayley–Tustin time-discretization method, an infinite-dimensional discrete-time pipeline hydraulic model is proposed considering (unknown but bounded) disturbance and leak. By introducing a coordinate transformation, we decouple the leak size and location estimation problems. The implementable discrete-time moving horizon estimator and observer are designed for constrained leak size and location estimation. The effectiveness of the proposed designs is validated via simulation examples.

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用于管道泄漏检测、定位和受限尺寸估计的移动地平线估计
需要先进的管道泄漏检测和定位技术来减少碳氢化合物运输管道的温室气体排放。由于过程变量的时空动态性、过程/测量干扰和约束的存在以及测量数据的有限性,开发有效的泄漏检测和定位方法具有挑战性。为解决这一问题,本手稿提出了一种用于管道泄漏检测的新型移动地平线估计设计,通过使用无穷维管道水力模型对泄漏大小和位置进行受限估计。基于质量和动量平衡定律以及 Cayley-Tustin 时间离散化方法,我们提出了一个考虑到(未知但有界的)干扰和泄漏的无穷维离散时间管道水力模型。通过引入坐标变换,我们解耦了泄漏大小和位置估计问题。针对有约束的泄漏大小和位置估计,设计了可实现的离散时间移动水平线估计器和观测器。通过仿真实例验证了所提设计的有效性。
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来源期刊
Computers & Chemical Engineering
Computers & Chemical Engineering 工程技术-工程:化工
CiteScore
8.70
自引率
14.00%
发文量
374
审稿时长
70 days
期刊介绍: Computers & Chemical Engineering is primarily a journal of record for new developments in the application of computing and systems technology to chemical engineering problems.
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