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Evaluating and Augmenting Fuel-saving Benefits Obtained in Aircraft Formation Flight

Evaluating and Augmenting Fuel-saving Benefits Obtained in Aircraft Formation Flight
Author: Wendy Awele Okolo
Publisher:
Total Pages: 235
Release: 2015
Genre: Airplanes
ISBN:

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When an aircraft flies, it generates wake vortices, which induce a non-uniform wind distribution in its wake. A trail aircraft, placed in the wake of a lead's aircraft vortices experiences this non-uniform wind distribution with varying directions and magnitudes, depending on the location within the wake. It has been demonstrated that there is a "sweet spot" within the wake of a leader in which a trail can experience upwash which leads to reduced drag. Through this mechanism, aircraft can save significant amounts of fuel by flying at the sweet spot of the lead aircraft's wake. This dissertation provides two metrics of obtaining the sweet spot and evaluating the benefits to the trail aircraft at the sweet spot: a static and a dynamic study. The static study, similar to wind tunnel tests in which aircraft are statically placed in formation without trimming, investigates the induced aerodynamic forces and moments on the trail aircraft as it varies its position within the wake of the lead aircraft, and assigns the relative location of maximum lift-to-drag ratio as the static sweet spot. The dynamic study, similar to flight tests which account for trim, analyzes the control surface deflection and thrusts for the trail aircraft as it varies its position within the lead's wake and assigns the location of minimum thrust as the dynamic sweet spot. The static and dynamic analyses are applied to aircraft formations with different relative sizes and varying configurations of trail aircraft such as a flying-wing and a conventional aircraft. Results indicate that sweet spot locations and associated bene ts are dependent on the weight of the leader and the relative sizes of the aircraft pair in the formation. This dissertation then augments the fuel-savings by investigating alternate lateral trimming methods to reduce the need for drag-inducing control effector deflections required at the static sweet spot. Internal fuel transfer and differential thrusting are employed to increase the thrust saved at the static sweet spot, making it comparable to the dynamic sweet spot. Formation simulations of extended durations are also studied to understand the impact of significant weight variations in the leader on the formation benefits. In longduration flights, the lead and trail aircraft weights decrease due to fuel burn. Since the upwash generated by the leader decreases with lift and weight as fuel is burned, the magnitudes of the non-uniform wind induced and thus bene ts for the trail decrease. This decrease is investigated for a 6.5-hour formation simulation. Although there is a reduction in the benefits with time, the overall benefits of flying in formation is significant enough to motivate formations of such long durations. Finally, the feasibility of formation flying is also considered from a perspective of comfort levels for passengers or aircrew in the trail aircraft. Using international standards for likely reactions of a person subjected to discomforts characterized by vibrations, it is shown that there is no additional detrimental degradation of comfort levels for a person onboard a trail aircraft in formation as compared to a solo flight.


Fuel Economy in Aviation

Fuel Economy in Aviation
Author: Jeffrey L. Ethell
Publisher:
Total Pages: 132
Release: 1983
Genre: Aeronautics
ISBN:

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F/a-18 Performance Benefits Measured During the Autonomous Formation Flight Project

F/a-18 Performance Benefits Measured During the Autonomous Formation Flight Project
Author: National Aeronautics and Space Administration (NASA)
Publisher: Createspace Independent Publishing Platform
Total Pages: 36
Release: 2018-05-31
Genre:
ISBN: 9781720521105

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The Autonomous Formation Flight (AFF) project at the NASA Dryden Flight Research Center (Edwards, California) investigated performance benefits resulting from formation flight, such as reduced aerodynamic drag and fuel consumption. To obtain data on performance benefits, a trailing F/A-18 airplane flew within the wing tip-shed vortex of a leading F/A-18 airplane. The pilot of the trail airplane used advanced station-keeping technology to aid in positioning the trail airplane at precise locations behind the lead airplane. The specially instrumented trail airplane was able to obtain accurate fuel flow measurements and to calculate engine thrust and vehicle drag. A maneuver technique developed for this test provided a direct comparison of performance values while flying in and out of the vortex. Based on performance within the vortex as a function of changes in vertical, lateral, and longitudinal positioning, these tests explored design-drivers for autonomous stationkeeping control systems. Observations showed significant performance improvements over a large range of trail positions tested. Calculations revealed maximum drag reductions of over 20 percent, and demonstrated maximum reductions in fuel flow of just over 18 percent.Vachon, M. Jake and Ray, Ronald J. and Walsh, Kevin R. and Ennix, KimberlyArmstrong Flight Research CenterAUTONOMY; FORMATION FLYING; FLIGHT TESTS; F-18 AIRCRAFT; AIRCRAFT PERFORMANCE; MATHEMATICAL MODELS; AERODYNAMIC DRAG; FUEL CONSUMPTION; DRAG REDUCTION; FUEL FLOW; THRUST; FLIGHT CONDITIONS; AIRCRAFT MANEUVERS; VORTICES


Flight Evaluation of an Extended Engine Life Mode on an F-15 Airplane

Flight Evaluation of an Extended Engine Life Mode on an F-15 Airplane
Author: National Aeronautics and Space Administration (NASA)
Publisher: Createspace Independent Publishing Platform
Total Pages: 32
Release: 2018-07-03
Genre:
ISBN: 9781722239824

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An integrated flight and propulsion control system designed to reduce the rate of engine deterioration was developed and evaluated in flight on the NASA Dryden F-15 research aircraft. The extended engine life mode increases engine pressure ratio while reducing engine airflow to lower the turbine temperature at constant thrust. The engine pressure ratio uptrim is modulated in real time based on airplane maneuver requirements, flight conditions, and engine information. The extended engine life mode logic performed well, significantly reducing turbine operating temperature. Reductions in fan turbine inlet temperature of up to 80 F were obtained at intermediate power and up to 170 F at maximum augmented power with no appreciable loss in thrust. A secondary benefit was the considerable reduction in thrust-specific fuel consumption. The success of the extended engine life mode is one example of the advantages gained from integrating aircraft flight and propulsion control systems. Myers, Lawrence P. and Conners, Timothy R. Armstrong Flight Research Center RTOP 533-02-36...


An evaluation of the operational capabilities and fuel conservation implications of using remotely piloted vehicles, advanced aircraft flight simulators, and lighter-than-air aircraft

An evaluation of the operational capabilities and fuel conservation implications of using remotely piloted vehicles, advanced aircraft flight simulators, and lighter-than-air aircraft
Author:
Publisher:
Total Pages: 148
Release: 1975
Genre:
ISBN:

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As early as 1950, the current world fuel energy crisis was predicted to occur. However, the warnings went unheeded until the oil embargo was initiated in 1973. Due to the resulting high cost and limited availability, the petroleum users of the world have attempted measures to conserve the use of fuel. In the United States, the Federal Government, specifically the Department of Defense, has implemented various measures and studies to reduce fuel consumption. This thesis researched literature in three areas--remotely piloted vehicles, advanced aircraft simulators, and lighter-than-air aircraft--to explore their operational capabilities and to evaluate any fuel energy benefits that may be derived from their use. The thesis concludes that remotely piloted vehicles and advanced aircraft flight simulators can be utilized to meet various operational requirements while reducing fuel consumption. However, lighter-than-air aircraft designs do not currently possess the technology needed to accomplish operational requirements while reducing fuel consumption.


Introduction to Aircraft Flight Mechanics

Introduction to Aircraft Flight Mechanics
Author: Thomas R. Yechout
Publisher: AIAA
Total Pages: 666
Release: 2003
Genre: Aerodynamics
ISBN: 9781600860782

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Based on a 15-year successful approach to teaching aircraft flight mechanics at the US Air Force Academy, this text explains the concepts and derivations of equations for aircraft flight mechanics. It covers aircraft performance, static stability, aircraft dynamics stability and feedback control.


AIAA Journal

AIAA Journal
Author: American Institute of Aeronautics and Astronautics
Publisher:
Total Pages: 1184
Release: 2007
Genre: Aeronautics
ISBN:

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Aeronautical Engineering

Aeronautical Engineering
Author:
Publisher:
Total Pages: 290
Release: 1993
Genre: Aeronautics
ISBN:

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A selection of annotated references to unclassified reports and journal articles that were introduced into the NASA scientific and technical information system and announced in Scientific and technical aerospace reports (STAR) and International aerospace abstracts (IAA).


Securing the Future of U.S. Air Transportation

Securing the Future of U.S. Air Transportation
Author: National Research Council
Publisher: National Academies Press
Total Pages: 92
Release: 2003-12-18
Genre: Transportation
ISBN: 9780309090698

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As recently as the summer of 2001, many travelers were dreading air transportation because of extensive delays associated with undercapacity of the system. That all changed on 9/11, and demand for air transportation has not yet returned to peak levels. Most U.S. airlines continue to struggle for survival, and some have filed for bankruptcy. The situation makes it difficult to argue that strong action is urgently needed to avert a crisis of undercapacity in the air transportation system. This report assesses the visions and goals for U.S. civil aviation and technology goals for the year 2050.