Federal Aviation Administration will certainly require the Heavy Lift Rotorcraft to be operated under Category A performance and operations requirements. Because of the weight, no operation will be allowed except Category A according to FAA Part 29.1(c). This means that any where along the flight path, the aircraft must be able to land safely following an engine failure or continue flight. A repeatable flight profile must be developed and executed to ensure that the aircraft can be safely landed or flown away depending on its location on the flight profile. This means that there will be no Height-Velocity testing required as is currently required for Part 29 Category B. Since all the configurations shown to date are different than existing rotorcraft, each type would have to develop their individual requirements under existing special conditions FAA Part 21.17(b). This means the FAA will take the opportunity to negotiate additional requirements or change requirements to ensure safety. For example, since the tiltrotor did not fit normal rotorcraft category, new rules were negotiated between the applicant and the FAA. As a result of this negotiation, performance requirements for Category A were increased. The rules were written in terms of guaranteed performance instead of Category A requirements. Detailed discussion will follow later. The proposed tiltrotor would likely follow along with the current tiltrotor rules with the possibility of increase Category A performance requirements. Compounding with addition of wing and auxiliary thrust to both the tandem and coaxial rotor would result in new special condition aircraft. To my knowledge, no compound tandem or compound coaxial rotor has ever been certified by FAA.
One Engine Inoperative (OEI) and Autorotation For Heavy Lift Rotorcraft Systems
2012
16 pages
Report
Keine Angabe
Englisch
Rotorcraft Autorotation Control Through Electrical Braking
Europäisches Patentamt | 2023
|Automated Autorotation for Unmanned Rotorcraft Recovery
British Library Conference Proceedings | 2005
|Analysis of Rotorcraft Flight Dynamics in Autorotation
AIAA | 2002
|Rotorcraft autorotation control through electrical braking
Europäisches Patentamt | 2024
|