Fault Diagnosis Method of Diesel Engine Lubrication System Based on Bayesian Network

A Bayesian network and lubrication system technology, applied in the field of diesel engine lubrication system fault diagnosis, can solve the problems of large model reasoning uncertainty, low diagnostic accuracy, and inability to adapt to the lubrication system, achieving strong practical guiding significance and reducing Uncertainty, the effect of improving accuracy

Active Publication Date: 2018-07-24
HARBIN ENG UNIV
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Problems solved by technology

Its shortcoming is that the Bayesian network model built by this method has a fixed form, and cannot be adaptively adjusted according to the dynamic changes of the lubrication system, and cannot accurately describe the actual state of the lubrication system. low; and this method is a kind of static reasoning for the fault diagnosis of the lubrication system, and its process is not based on the actual operation information of the diesel engine lubrication system, so it cannot truly realize the diagnosis of the diesel engine lubrication system fault, and it is difficult to guide the staff to carry out targeted maintenance

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  • Fault Diagnosis Method of Diesel Engine Lubrication System Based on Bayesian Network
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  • Fault Diagnosis Method of Diesel Engine Lubrication System Based on Bayesian Network

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[0020] The embodiments of the present invention are described in detail below in conjunction with the accompanying drawings: the present embodiment is implemented on the premise of the technical solution of the present invention, and detailed implementation is provided, but the protection scope of the present invention is not limited to the following embodiments.

[0021] The invention relates to a diesel engine lubrication system fault diagnosis method based on a Bayesian network, belonging to the technical field of diesel engine fault diagnosis. Firstly, the failure types and external symptoms of the lubrication system are abstracted into network nodes, and a Bayesian network model of the lubrication system is established; secondly, the performance parameters of the lubrication system are detected to obtain the actual working status information of the lubrication system; thirdly, according to the obtained actual working status information of the lubrication system , by resett...

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Abstract

The invention relates to a diesel engine lubricating system fault diagnosis method based on the Bayes network. According to the method, fault types and external symptoms of a lubricating system are abstracted into fault layer nodes and symptom layer nodes, and a diesel engine lubricating system Bayes network model is established; performance parameters of the diesel engine lubricating system are detected by utilizing a data acquisition system, a linear proportion transformation method is employed to carry out classification processing on the performance parameters, and the actual work state information of the lubricating system is acquired; a Hugin combined tree algorithm is employed to convert a corrected lubricating system Bayes network model into a combined tree. Before inference diagnosis, on the basis of the actual work state of the lubricating system, through resetting the prior probability of the fault layer nodes, adaptability correction on the Bayes network model is carried out, so the actual work state of the lubricating system can be accurately described through the model, nondeterminacy of model inference is reduced, and thereby fault diagnosis accuracy is improved.

Description

technical field [0001] The invention relates to a fault diagnosis method for a lubricating system of a diesel engine based on a Bayesian network. Background technique [0002] Diesel engines play an important role in various fields of the national economy. However, the structure of the diesel engine is complicated, and many components work under the harsh conditions of high temperature, high pressure and high load, which makes the system failure rate higher and the maintenance cost is very high. Statistics show that among the various operating expenses of diesel engines, the expenditure on maintenance reaches 15%-30%. Another statistics show that when performing equipment management and maintenance, the time spent in determining faults accounts for 70%-90% of the total time. It can be seen that the low-efficiency diesel engine fault diagnosis method wastes a lot of manpower and material resources, and brings great inconvenience to industrial production. [0003] Diesel en...

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Application Information

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Patent Type & Authority Patents(China)
IPC IPC(8): G01M99/00
CPCG01M99/00
Inventor 王忠巍王金鑫袁志国宋莎董佳莹
Owner HARBIN ENG UNIV
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