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The Case for Intelligent Propulsion Control for Fast Engine Response

机译:发动机快速响应的智能推进控制案例

摘要

Damaged aircraft have occasionally had to rely solely on thrust to maneuver as a consequence of losing hydraulic power needed to operate flight control surfaces. The lack of successful landings in these cases inspired research into more effective methods of utilizing propulsion-only control. That research demonstrated that one of the major contributors to the difficulty in landing is the slow response of the engines as compared to using traditional flight control. To address this, research is being conducted into ways of making the engine more responsive under emergency conditions. This can be achieved by relaxing controller limits, adjusting schedules, and/or redesigning the regulators to increase bandwidth. Any of these methods can enable faster response at the potential expense of engine life and increased likelihood of stall. However, an example sensitivity analysis revealed a complex interaction of the limits and the difficulty in predicting the way to achieve the fastest response. The sensitivity analysis was performed on a realistic engine model, and demonstrated that significantly faster engine response can be achieved compared to standard Bill of Material control. However, the example indicates the need for an intelligent approach to controller limit adjustment in order for the potential to be fulfilled.
机译:由于失去操作飞行控制表面所需的液压动力,损坏的飞机有时不得不仅依靠推力进行机动。在这些情况下,没有成功着陆的缺乏激发了人们对利用仅推进控制的更有效方法的研究。该研究表明,着陆困难的主要原因之一是与使用传统的飞行控制相比,发动机的响应速度较慢。为了解决这个问题,正在研究使发动机在紧急情况下具有更高响应能力的方法。这可以通过放宽控制器限制,调​​整时间表和/或重新设计调节器以增加带宽来实现。这些方法中的任何一种都可以以更快的响应速度为代价,这可能会增加发动机寿命并增加失速的可能性。但是,示例灵敏度分析显示,限制之间存在复杂的相互作用,并且难以预测实现最快响应的方式。灵敏度分析是在真实的发动机模型上进行的,结果表明与标准的物料清单控制相比,发动机的响应速度显着提高。但是,该示例表明需要一种智能的方法来调节控制器极限,以实现潜力。

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