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Design of Intelligent Acceleration Schedules for Extending the Life of Aircraft Engines

机译:延长飞机发动机寿命的智能加速计划设计

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Aircraft engine controllers are designed and operated to provide desired performance and stability margins. This paper addresses the relationship between acceleration action and engine component life usage. Based upon this relationship, an intelligent approach for designing acceleration schedules that provide proper tradeoffs between performance and engine life usage is proposed. The benefit of this approach is that it is expected to maintain safety while minimizing the overall operating costs. With the advances of computer technology, engine operation models, and damage physics, it is necessary to reevaluate the control strategy for overall operating cost consideration. This paper uses the thermal--mechanical fatigue (TMF) of a critical component to demonstrate how an intelligent acceleration algorithm can drastically reduce the engine life usage with minimum sacrifice in performance. We have modeled and calculated the probability of failure due to TMF damage. A Monte Carlo simulation is also performed to evaluate the likelihood of engine damage accumulation under various operating conditions. By means of genetic search algorithms, optimal acceleration schedules can be obtained with multiple constraints. The simulation results show that a selected best acceleration schedule can provide a significant life saving in selected engine components.
机译:飞机发动机控制器的设计和操作可提供所需的性能和稳定性裕度。本文探讨了加速作用与发动机部件使用寿命之间的关系。基于这种关系,提出了一种智能的设计加速计划的方法,该方法可在性能和发动机使用寿命之间提供适当的权衡。这种方法的好处是可以在保持安全性的同时最大程度地降低总体运行成本。随着计算机技术,发动机运行模型和损伤​​物理技术的进步,有必要重新考虑总体运行成本考虑的控制策略。本文使用关键部件的热机械疲劳(TMF)来演示智能加速算法如何在最大程度地降低性能的前提下大幅减少发动机寿命。我们已经建模并计算了由于TMF损坏而导致的故障概率。还执行了蒙特卡洛模拟,以评估各种工况下发动机损坏累积的可能性。通过遗传搜索算法,可以在多个约束条件下获得最佳加速时间表。仿真结果表明,选定的最佳加速时间表可以在选定的发动机部件中大大节省使用寿命。

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