{"title":"飞机油箱易燃性影响因素分析","authors":"Leiming Geng, Ruihua Zhang, Weihua Liu","doi":"10.1108/aeat-02-2023-0044","DOIUrl":null,"url":null,"abstract":"<h3>Purpose</h3>\n<p>It is an indispensable part of airworthiness certification to evaluate the fuel tank flammability exposure time for transport aircraft. There are many factors and complex coupling relationships affecting the fuel tank flammability exposure time. The current work not only lacks a comprehensive analysis of these factors but also lacks the significance of each factor, the interaction relationship and the prediction method of flammability exposure time. The lack of research in these aspects seriously restricts the smooth development of the airworthiness forensics work of domestic large aircraft. This paper aims to clarify the internal relationship between user input parameters and predict the flammability exposure time of fuel tanks for transport aircraft.</p><!--/ Abstract__block -->\n<h3>Design/methodology/approach</h3>\n<p>Based on the requirements of airworthiness certification for large aircraft, an in-depth analysis of the Monte Carlo flammability evaluation source procedures specified in China Civil Aviation Regulation/FAR25 airworthiness regulations was made, the internal relationship between factors affecting the fuel tank flammability exposure time was clarified and the significant effects and interactions of input parameters in the Monte Carlo evaluation model were studied using the response surface method. And the BP artificial neural network training samples with high significance factors were used to establish the prediction model of flammability exposure time.</p><!--/ Abstract__block -->\n<h3>Findings</h3>\n<p>The input parameters in the Monte Carlo program directly or indirectly affect the fuel tank flammability exposure time by means of the influence on the flammability limit or fuel temperature. Among the factors affecting flammability exposure time, the cruising Mach number, balance temperature difference and maximum range are the most significant, and they are all positively correlated with flammability exposure time. Although there are interactions among all factors, the degree of influence on flammability exposure time is not the same. The interaction between maximum range and equilibrium temperature difference is more significant than other factors. The prediction model of flammability exposure time based on multifactor interaction and BP neural network has good accuracy and can be applied to the prediction of fuel tank flammability exposure time.</p><!--/ Abstract__block -->\n<h3>Originality/value</h3>\n<p>The flammability exposure time prediction model was established based on multifactor interaction and BP neural network. The limited test results were combined with intelligent algorithm to achieve rapid prediction, which saved the test cost and time.</p><!--/ Abstract__block -->","PeriodicalId":55540,"journal":{"name":"Aircraft Engineering and Aerospace Technology","volume":"66 1","pages":""},"PeriodicalIF":1.2000,"publicationDate":"2023-12-18","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Analysis of influencing factors of aircraft fuel tank flammability\",\"authors\":\"Leiming Geng, Ruihua Zhang, Weihua Liu\",\"doi\":\"10.1108/aeat-02-2023-0044\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<h3>Purpose</h3>\\n<p>It is an indispensable part of airworthiness certification to evaluate the fuel tank flammability exposure time for transport aircraft. There are many factors and complex coupling relationships affecting the fuel tank flammability exposure time. The current work not only lacks a comprehensive analysis of these factors but also lacks the significance of each factor, the interaction relationship and the prediction method of flammability exposure time. The lack of research in these aspects seriously restricts the smooth development of the airworthiness forensics work of domestic large aircraft. This paper aims to clarify the internal relationship between user input parameters and predict the flammability exposure time of fuel tanks for transport aircraft.</p><!--/ Abstract__block -->\\n<h3>Design/methodology/approach</h3>\\n<p>Based on the requirements of airworthiness certification for large aircraft, an in-depth analysis of the Monte Carlo flammability evaluation source procedures specified in China Civil Aviation Regulation/FAR25 airworthiness regulations was made, the internal relationship between factors affecting the fuel tank flammability exposure time was clarified and the significant effects and interactions of input parameters in the Monte Carlo evaluation model were studied using the response surface method. And the BP artificial neural network training samples with high significance factors were used to establish the prediction model of flammability exposure time.</p><!--/ Abstract__block -->\\n<h3>Findings</h3>\\n<p>The input parameters in the Monte Carlo program directly or indirectly affect the fuel tank flammability exposure time by means of the influence on the flammability limit or fuel temperature. Among the factors affecting flammability exposure time, the cruising Mach number, balance temperature difference and maximum range are the most significant, and they are all positively correlated with flammability exposure time. Although there are interactions among all factors, the degree of influence on flammability exposure time is not the same. The interaction between maximum range and equilibrium temperature difference is more significant than other factors. The prediction model of flammability exposure time based on multifactor interaction and BP neural network has good accuracy and can be applied to the prediction of fuel tank flammability exposure time.</p><!--/ Abstract__block -->\\n<h3>Originality/value</h3>\\n<p>The flammability exposure time prediction model was established based on multifactor interaction and BP neural network. 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引用次数: 0
摘要
目的 评估运输机油箱易燃性暴露时间是适航认证不可或缺的一部分。影响油箱易燃性暴露时间的因素众多,耦合关系复杂。目前的工作不仅缺乏对这些因素的全面分析,也缺乏对各因素的重要性、相互作用关系以及易燃性暴露时间的预测方法的研究。这些方面研究的缺失严重制约了国产大飞机适航取证工作的顺利开展。本文旨在阐明用户输入参数之间的内在关系,预测运输机油箱易燃暴露时间。设计/方法/途径根据大型飞机适航取证的要求,深入分析了中国民航规章/FAR25适航条例中规定的蒙特卡罗易燃性评估源程序,阐明了影响油箱易燃暴露时间因素之间的内在关系,并利用响应面法研究了蒙特卡罗评估模型中输入参数的显著影响和交互作用。研究结果蒙特卡洛程序中的输入参数通过对易燃极限或燃料温度的影响直接或间接地影响油箱易燃性暴露时间。在影响易燃性暴露时间的因素中,巡航马赫数、平衡温差和最大航程最为显著,它们都与易燃性暴露时间呈正相关。虽然各因素之间存在相互作用,但对易燃性暴露时间的影响程度并不相同。与其他因素相比,最大范围与平衡温差之间的交互作用更为显著。基于多因素相互作用和 BP 神经网络的易燃性暴露时间预测模型具有良好的准确性,可应用于油箱易燃性暴露时间的预测。将有限的试验结果与智能算法相结合,实现了快速预测,节约了试验成本和时间。
Analysis of influencing factors of aircraft fuel tank flammability
Purpose
It is an indispensable part of airworthiness certification to evaluate the fuel tank flammability exposure time for transport aircraft. There are many factors and complex coupling relationships affecting the fuel tank flammability exposure time. The current work not only lacks a comprehensive analysis of these factors but also lacks the significance of each factor, the interaction relationship and the prediction method of flammability exposure time. The lack of research in these aspects seriously restricts the smooth development of the airworthiness forensics work of domestic large aircraft. This paper aims to clarify the internal relationship between user input parameters and predict the flammability exposure time of fuel tanks for transport aircraft.
Design/methodology/approach
Based on the requirements of airworthiness certification for large aircraft, an in-depth analysis of the Monte Carlo flammability evaluation source procedures specified in China Civil Aviation Regulation/FAR25 airworthiness regulations was made, the internal relationship between factors affecting the fuel tank flammability exposure time was clarified and the significant effects and interactions of input parameters in the Monte Carlo evaluation model were studied using the response surface method. And the BP artificial neural network training samples with high significance factors were used to establish the prediction model of flammability exposure time.
Findings
The input parameters in the Monte Carlo program directly or indirectly affect the fuel tank flammability exposure time by means of the influence on the flammability limit or fuel temperature. Among the factors affecting flammability exposure time, the cruising Mach number, balance temperature difference and maximum range are the most significant, and they are all positively correlated with flammability exposure time. Although there are interactions among all factors, the degree of influence on flammability exposure time is not the same. The interaction between maximum range and equilibrium temperature difference is more significant than other factors. The prediction model of flammability exposure time based on multifactor interaction and BP neural network has good accuracy and can be applied to the prediction of fuel tank flammability exposure time.
Originality/value
The flammability exposure time prediction model was established based on multifactor interaction and BP neural network. The limited test results were combined with intelligent algorithm to achieve rapid prediction, which saved the test cost and time.
期刊介绍:
Aircraft Engineering and Aerospace Technology provides a broad coverage of the materials and techniques employed in the aircraft and aerospace industry. Its international perspectives allow readers to keep up to date with current thinking and developments in critical areas such as coping with increasingly overcrowded airways, the development of new materials, recent breakthroughs in navigation technology - and more.