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首页> 外文期刊>SAE International Journal of Aerospace >Aircraft Electrical Power Systems and Nonlinear Dynamic Loads
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Aircraft Electrical Power Systems and Nonlinear Dynamic Loads

机译:飞机电力系统和非线性动态负载

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摘要

Aircraft utilize electrical power for many functions ranging from simple devices such as resistive heaters to highly advanced and complex systems responsible for communications, situational awareness, electronic warfare and fly-by-wire flight controls. The operational states of these electronic systems affect safety, mission success and the overall economic expense of operation and maintenance. These electronic systems rely on electrical power within established limits of power quality. In recent years, electrical power quality is becoming excessively degraded due to increased usage of nonlinear and dynamic loads coupled to aircraft power systems that were neither designed nor tested for these loads. Legacy power generation systems were designed for electrical loads with resistive and inductive properties, which previously represented the majority of actual aircraft electrical loads. As more complex and advanced electronic systems were invented, mostly due to developments in semiconductors, the characteristics of electrical load signatures evolved and transitioned from mostly linear to a dominant nonlinear and randomly dynamic composition. This transition to predominantly nonlinear loads is primarily due to the fundamental processing techniques of electrical power from its original state (i.e. AC/DC source) to the various required intermediate and final states of power in order to accomplish the tasks required of the electronic systems. Switch Mode Power Supplies (SMPSs) and other rectifying circuits using SCRs and diodes, are commonly used on the inputs to avionics equipment, creating the nonlinear loads that adversely affect the power system's power quality. The adverse effects can reduce reliability and degrade the electronic systems resulting in various degrees of faults. Understanding cause and effect relationships of the dominant nonlinear arid dynamic loads on aircraft electrical power systems is the purposes of this paper. Actual test data of military aircraft power systems exhibiting these conditions is presented here to make the reader aware of the problem and provide a relative basis for comparison. An analytical model is used to replicate the issues and show how simulations can aid engineers with determining the effects on their systems without performing costly and possibly destructive tests on actual equipment. These efforts support future activities such as revision of standards for aircraft electrical power systems and ultimately how they are designed, tested and utilized in a more severe and complex environment.
机译:飞机将电能用于许多功能,从简单的设备(例如电阻加热器)到负责通信,态势感知,电子战和电传飞行控制的高度复杂的系统。这些电子系统的运行状态会影响安全性,任务成功以及运行和维护的总体经济成本。这些电子系统在已建立的电能质量限制内依靠电能。近年来,由于越来越多地使用非线性和动态负载以及未针对这些负载进行设计或测试的飞机动力系统,电力质量正变得过分下降。传统发电系统设计用于具有电阻和电感特性的电气负载,以前代表了大多数实际飞机电气负载。由于发明了更复杂,更先进的电子系统,这主要是由于半导体的发展,电负载信号的特征逐渐演变并从大部分线性转变为主要的非线性和随机动态组成。过渡到主要是非线性负载的主要原因是,电力的基本处理技术从其原始状态(即AC / DC电源)到各种所需的中间和最终电力状态,以完成电子系统所需的任务。航空电子设备的输入端通常使用开关模式电源(SMPS)和其他使用SCR和二极管的整流电路,从而产生非线性负载,从而不利地影响电源系统的电源质量。不利影响会降低可靠性并降低电子系统的性能,从而导致各种程度的故障。了解飞机电力系统中主要的非线性和动态载荷的因果关系是本文的目的。此处展示了表现出这些条件的军用飞机动力系统的实际测试数据,以使读者了解问题并提供比较的相对依据。使用分析模型来复制问题并显示仿真如何可以帮助工程师确定对其系统的影响,而无需在实际设备上进行昂贵且可能造成破坏性的测试。这些努力为将来的活动提供了支持,例如修订飞机电源系统的标准,并最终在更严峻和复杂的环境中设计,测试和利用它们。

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