Aeromechanical stability analysis of a multirotor vehicle with application to hybrid heavy lift helicopter dynamicsThe Hybrid Heavy Lift Helicopter (HHLH) is a potential candidate vehicle aimed at providing heavy lift capability at low cost. This vehicle consists of a buoyant envelope attached to a supporting structure. Four rotor systems are also attached to the supporting structure. Nonlinear equations of motion capable of modeling the dynamics of this multi-rotor/support frame/vehicle system have been developed and used to study the fundamental aeromechanical stability characteristics of this class of vehicles. The mechanism of coupling between the blades, supporting structure and rigid body modes is identified and the effect of buoyancy ratio (buoyant lift/total weight) on the vehicle dynamics is studied. It is shown that dynamics effects have a major role in the design of such vehicles. The analytical model developed is also useful for studying the aeromechanical stability of single rotor and tandem rotor coupled rotor/fuselage systems.
Document ID
19860041403
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Venkatesan, C. (California Univ. Los Angeles, CA, United States)
Friedmann, P. P. (California, University Los Angeles, United States)