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Dynamic Process Safety Assessment Using Adaptive Bayesian Network with Loss Function

delete2022-11-02
delete22
PRE
AI
M
Md. Tanjin Amin
F
Faisal Khan *
DOI:10.1021/acs.iecr.2c03080delete
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Abstract

Abstract

En 中文
Fault detection and diagnosis (FDD) is crucial for dynamic process safety analysis. Integrated with failure prediction models, it enables us to realize how a deviation in process variable(s) can affect system safety (measured as risk). This work aims to overcome the challenges of nonlinear, non-Gaussian, and multimodal behavior of the processing systems to detect abnormal process operations, predict dynamic operational risk, and diagnose root cause of the abnormal situation. A methodology is proposed here by integrating different techniques. The artificial neural network (ANN) is used to identify process modes, while the Bayesian network (BN) is used for fault detection. How a fault will lead to a process failure is modeled using the event tree (ET), whereas time-dependent losses associated with the failure scenarios are assessed using the inverted normal loss function (INLF). A probability adaption mechanism is used to estimate the conditional probabilities in each time slice. The complexity of estimating conditional probabilities is handled using the copula theory. The proposed framework is validated using numerical, simulated, and industrial datasets. The results suggest that the developed framework can provide greater flexibility and wider applications.
Keywords:
OPERATIONAL RISK-ASSESSMENT
FAULT-DETECTION
MULTIMODE PROCESS
DIAGNOSIS
MANAGEMENT
SYSTEMS

Journal

I
Industrial and Engineering Chemistry Research
IF:
3.9
Papers:
4.0W
Citations:
9.6W

Organization

T
Texas A&M University System
Scholars:
4.4W
Papers: 4.0W
Citations: 4.0K
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