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Uncertainty Quantification for the Actuation Power Requirements of a Hybrid Wing Body Configuration with Electrically Actuated Flight Control Surfaces

机译:具有电动飞行控制表面的混合翼体配置的致动电源要求的不确定度量化

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Hybrid Wing Body configurations, such as the N2A-EXTE, have the potential to meet NASA Environmentally Responsible Aviation N+2 goals. These configurations have redundant elevons typically spanning the entire trailing-edge of the wing, whose large areas result in the generation of large hinge moments. To ensure aircraft stability with a reduced static margin, high control surface deflection rates may also be required. The combination of large actuation loads and rates results in significant actuation power requirements, which affect both fuel burn and the sizing of the actuation subsystem. In the early design phases, there is significant uncertainty regarding the magnitude of the actuation power, which may depend on the vehicle's static margin, the design and designated roles of the redundant control surfaces, actuator design parameters, and additionally the intensity of encountered atmospheric turbulence. The objective of this paper is to present a methodical approach for assessing the magnitude of the uncertainty and relating it to aspects of the vehicle and actuation system design. Doing so will facilitate decision-making in early vehicle design. Following the sizing and optimization of electric actuators to meet the actuation requirements of the N2A-EXTE Hybrid Wing Body configuration's control surfaces, the power consumption of these actuators was evaluated under the following scenarios: (1) varying atmospheric turbulence, (2) varying vehicle center of gravity, (3) varying control surface utilization, and (4) varying actuator design parameters.
机译:混合翼身配置,如N2A-EXTE,必须符合美国宇航局的潜在环境负责航空N + 2个的目标。这些配置具有冗余升降副翼通常跨越翼,其大面积导致较大的铰链力矩的产生的整个后缘。为了保证以减少的静态余量飞机稳定性,高的控制表面偏转率也可能是必需的。大驱动负载和速度导致显著驱动电源的要求,这既影响燃油消耗和驱动子系统的大小的组合。在早期的设计阶段,存在关于致动功率的大小,其可取决于车辆的静态余量,设计和冗余控制表面的指定角色,致动器设计参数显著的不确定性,并遇到大气湍流的额外的强度。本文的目的是提供一个系统的方法来评估的不确定性的大小和它与车辆和驱动系统设计的各个方面。这样做将有利于早期整车设计决策。以下大小和电动致动器的优化,以满足N2A-EXTE混合翼身结构的控制表面的致动的要求,这些致动器的功率消耗是在以下情况下进行评价:(1)变化的大气湍流,(2)变化的车辆重心,(3)变控制面的利用率,和(4)改变致动器的设计参数。

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