History of NACA/NASA rotating-wing aircraft research, 1915-1970. IV Cont'd
NACA/NASA rotary wing aircraft research, considering rotor loads and configurations, ground resonance, blade flutter and flapping, motion equations and VTOL
Engineering topics
Publications and source records attributed to Gustafson, F. B..
NACA/NASA rotary wing aircraft research, considering rotor loads and configurations, ground resonance, blade flutter and flapping, motion equations and VTOL
NACA/NASA rotating wing aircraft research history during 1955-1970 period, discussing wind tunnel research
NACA/NASA rotating wing aircraft research history 1915-1970, Part 3, covering rotor dynamics and flying qualities, hovering tests, rotor flow, loads, etc
NACA/NASA rotary wing aircraft research history 1915-1970, Part 3, covering rotor and helicopter theory, related flight and wind tunnel testing, etc
NACA/NASA rotating wing aircraft research history 1915-1970, Part 2, autogyro flight test experiences, rotor blade dynamics research, interest in helicopters, etc
NACA/NASA rotary wing aircraft research covering autogyro and helicopter development, noting flight safety
Rotor aerodynamics research in terms of theoretical and experimental data comparison, rotor blade flow visualization and blade section camber
Explore the source record for details and available documents.
Helicopter-type rotor aerodynamics, and design problems on cruise efficiency and maneuvering
Nasa research on various types of v/tol aircraft, including helicopters
Helicopter design improvements possible with low disk loading concept retained
New improvements in the design of helicopters via research viewpoint
Effect of ground proximity, wing-stall phenomena, pitching moments, and power requirements on vtol aircraft
A numerical study was made of the effects of blade cutout on the power required by a sample helicopter rotor traveling at tip-speed ratios of 0.3, 0.4, and 0.5. The amount of cutout varied from 0 to 0.5 of the rotor radius and the calculations were carried out for a thrust coefficient-solidity ratio of 0.04. In these calculations the blade within the cutout radius was assumed to have zero chord. The effect of such cutout on profile-drag power ranged from almost no effect at a tip-speed ratio of 0.3 to as much as a 60 percent reduction at a tip-speed ratio of 0.5. Optimum cutout was about 0.3 of the rotor radius. Part of the large power reduction at a tip-speed ratio of 0.5 resulted from a reduction in tip-region stall, brought about by cutout. For tip-speed ratios greater than 0.3, cutout also effected a significant increase in the ability of the rotor to overcome helicopter parasite drag. It is thus seen that the adverse trends (at high tip-speed ratios) indicated by the uniform-chord theoretical charts are caused in large measure by the center portion of the rotor. The extent to which a modified-design rotor can actually be made more efficient at high speeds than a uniform-chord rotor will depend in practice on the degree of success in minimizing the blade plan form near the center and on special modifications in center-section profiles. A few suggestions and estimates in regard to such modifications are included herein.
Explore the source record for details and available documents.