2006 · 157 citations · 10 references
Unmanned Aircraft ControlFlight DynamicsAviation SystemsAerial RoboticsEngineeringAerospace EngineeringAir Vehicle SystemUnmanned SystemControl System ScalingUav PlatformSystems EngineeringAerodynamicsFlying RobotReal-time Control SystemUnmanned Aerial SystemsFlight Control SystemsFlight ControlUnmanned Aircraft Dynamics
NASA’s Aviation Safety Program is developing a scaled UAV to study the dynamics and control of large transport aircraft during upset conditions. The testbed aims to validate modeling, flight‑dynamics, and control‑system designs for large transport aircraft to reduce fatal loss‑of‑control accidents. The 5.5 % scale twin‑turbine UAV, equipped with a 70‑channel telemetry and 30‑channel control system operating at >200 Hz, is paired with a real‑time ground control system that dynamically scales dimensional, weight, inertial, actuation, and control parameters to emulate full‑scale aircraft flight characteristics.
As part of the NASA Aviation Safety Program at Langley Research Center, a dynamically scaled unmanned aerial vehicle (UAV) and associated ground based control system are being developed to investigate dynamics modeling and control of large transport vehicles in upset conditions. The UAV is a 5.5% (seven foot wingspan), twin turbine, generic transport aircraft with a sophisticated instrumentation and telemetry package. A ground based, real-time control system is located inside an operations vehicle for the research pilot and associated support personnel. The telemetry system supports over 70 channels of data plus video for the downlink and 30 channels for the control uplink. Data rates are in excess of 200 Hz. Dynamic scaling of the UAV, which includes dimensional, weight, inertial, actuation, and control system scaling, is required so that the sub-scale vehicle will realistically simulate the flight characteristics of the full-scale aircraft. This testbed will be utilized to validate modeling methods, flight dynamics characteristics, and control system designs for large transport aircraft, with the end goal being the development of technologies to reduce the fatal accident rate due to loss-of-control.
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Experimental Validation: Subscale Aircraft Ground Facilities and Integrated Test Capability
R. Bailey, Robert Hostetler, Kevin Barnes et al. · AIAA Guidance, Navigation, and Control Conference and Exhibit · 2005 · 80 citations · Full text
Generic Transport Model, Engineering, Experimental Validation +18