Fuel fraction

With a fuel fraction of nearly 85%, the GlobalFlyer could carry 5 times its weight in fuel.

In aerospace engineering, an aircraft's fuel fraction, fuel weight fraction,[1] or a spacecraft's propellant fraction, is the weight of the fuel or propellant divided by the gross take-off weight of the craft (including propellant):[2]

The fractional result of this mathematical division is often expressed as a percent. For aircraft with external drop tanks, the term internal fuel fraction is used to exclude the weight of external tanks and fuel.

Fuel fraction is a key parameter in determining an aircraft's range, the distance it can fly without refueling. Breguet’s aircraft range equation describes the relationship of range with airspeed, lift-to-drag ratio, specific fuel consumption, and the part of the total fuel fraction available for cruise, also known as the cruise fuel fraction, or cruise fuel weight fraction.[3]

Fighter aircraft

At today’s state of the art for jet fighter aircraft, fuel fractions of 29 percent and below typically yield subcruisers; 33 percent provides a quasi–supercruiser; and 35 percent and above are needed for useful supercruising missions. The U.S. F-22 Raptor’s fuel fraction is 29 percent,[4] Eurofighter is 31 percent, both similar to those of the subcruising F-4 Phantom II, F-15 Eagle and the Russian Mikoyan MiG-29 "Fulcrum". The Russian supersonic interceptor, the Mikoyan MiG-31 "Foxhound", has a fuel fraction of over 45 percent.[5] The Panavia Tornado had a relatively low internal fuel fraction of 26 percent, and frequently carried drop tanks.[6]

Airliners

Airliners have a fuel fraction of less than half their takeoff weight, between 26% for medium-haul to 45% for long-haul:

ModelMTOW (t)OEW (t)OEW
Fraction
Fuel
capacity (t)
Fuel
fraction
Payload
Max. (t)
Payload
fraction
Airbus A380[7]575 28549.6% 25444.2% 8414.6%
Boeing 777-300ER[8]351.5 167.847.7% 145.541.4% 69.919.9%
Boeing 777-200LR[8]347.5 145.241.8% 145.541.9% 64.018.4%
Airbus A350-1000[9]308 15650.6% 122.539.8% 6420.8%
Airbus A350-900[9]280 142.751% 108.338.7% 5318.9%
Boeing 787-9[10]254 128.950.7% 101.540% 52.620.7%
Airbus A330-300[11]242 13053.7% 109.245.1% 4518.6%
Airbus A330-200[11]242 12150% 109.245.1% 4920.2%
Boeing 787-8[10]227.9 12052.7% 101.344.4% 43.319%
Airbus A320ceo[12]79 44.356.1% 23.329.5% 2025.3%
Boeing 737-800[13]79 41.452.4% 20.926.5% 21.327%
Bombardier CS300[14]67.6 37.154.9% 17.225.5% 18.727.7%
Bombardier CS100[14]60.8 35.257.9% 17.629% 15.124.9%

The Concorde supersonic transport had a fuel fraction of 51%.

General aviation

The Rutan Voyager took off on its 1986 around-the-world flight at 72 percent, the highest figure ever at the time.[15] Steve Fossett's Virgin Atlantic GlobalFlyer could attain a fuel fraction of nearly 85 percent, meaning that it carried more than five times its empty weight in fuel.[16]

See also

References

  1. Brandt, Steven (2004). Introduction to Aeronautics: a Design Perspective. AIAA (American Institute of Aeronautics & Ast). p. 359. ISBN 1-56347-701-7.
  2. Vinh, Nguyen (1993). Flight Mechanics of High-Performance Aircraft. Cambridge: Cambridge University Press. p. 139. ISBN 0-521-47852-9.
  3. Filippone, Antonio (2006). Flight Performance of Fixed and Rotary Wing Aircraft. Elsevier. p. 426. ISBN 0-7506-6817-2.
  4. 8200/27900 = 0.29
  5. The F-22 Program FACT VERSUS FICTION Archived 2007-04-21 at the Wayback Machine. by Everest E. Riccioni, Col. USAF, Ret.
  6. Spick, Mike (2002). Brassey's Modern Fighters. Washington: Potomac Books. pp. 51–53. ISBN 1-57488-462-X.
  7. "A380 Aircraft Characteristics – Airport and Maintenance Planning" (PDF). Airbus. December 2016.
  8. 1 2 777-200LR/-300ER/-Freighter Airplane Characteristics for Airport Planning (PDF) (Technical report). Boeing. May 2015.
  9. 1 2 "A350 Aircraft Characteristics – Airport and Maintenance Planning" (PDF). Airbus. November 2016. Archived from the original (PDF) on 2016-11-28.
  10. 1 2 "787 Airplane Characteristics for Airport Planning" (PDF). Boeing. December 2015.
  11. 1 2 "A330 Aircraft Characteristics – Airport and Maintenance Planning" (PDF). Airbus. December 2016.
  12. "A320 Aircraft Characteristics – Airport and Maintenance Planning" (PDF). Airbus. June 2016.
  13. "737 Airplane Characteristics for Airport Planning" (PDF). Boeing. September 2013.
  14. 1 2 "CSeries brochure" (PDF). Bombardier. June 2015.
  15. Noland, David (February 2005). "Burt Rutan and the Ultimate Solo". Popular Mechanics. Archived from the original on 2006-12-11.
  16. Schneider, Mike (2006-02-06). "Adventurer Set for Record-Setting Flight". Space.com. Associated Press. Retrieved 2007-03-18. At takeoff, fuel is expected to account for almost 85 percent of the graphite-made aircraft's weight.
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