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Robert Thomas Jones (engineer)

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Robert Thomas Jones
Born28 May 1910 Edit this on Wikidata
Died11 August 1999 Edit this on Wikidata (aged 89)
Los Altos Hills Edit this on Wikidata
OccupationMilitary flight engineer, engineer Edit this on Wikidata
Employer
Awards

Robert T. Jones, (May 28, 1910 – August 11, 1999), was an American aerodynamicist and aeronautical engineer for NACA and later NASA.[1] He was known at NASA as "one of the premier aeronautical engineers of the twentieth century".[2]

Early experience

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Jones grew up in the American Midwest farming community of Macon, Missouri. Fascinated by airplanes, he attended Macon High School, built model airplanes from kits and scale drawings, and read aviation magazines and National Advisory Committee for Aeronautics (NACA) technical reports. He attended the University of Missouri for one year, but dropped out to join the Marie Meyer Flying Circus. There he took flying lessons in return for doing engineering maintenance, as he described it, "carrying gas and patching wing tips".[1]

In 1929, engineer Walter Barling left the Nicholas-Beazley Airplane Company. Stunt-pilot Charley Fower recommended Jones to the company as someone who “knew everything there was to know about airplanes.”[1] Until the company added English engineer Thomas Kirkup to the team, Jones was their sole engineer. From Kirkup, Jones learned about airplane design and stress analysis.[1] Jones developed the Pobjoy Special air racer, but because of the depression the company was forced to shut down.[3]

With the help of his local congressman, Jones found work as an elevator operator in the House Office Building in Washington, D.C. He spent his spare time studying at the Library of Congress, where he met Albert Francis Zahm, chief of the Aeronautical Division of the U.S. Library. At Zahm's recommendation, Jones tutored Maryland congressman David John Lewis (also self-educated) in mathematics. Jones also met Max Munk, who encouraged him to take a graduate-level course in aerodynamics that Munk taught in the evening at Catholic University.[1]

Research

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In 1934, President Roosevelt's public works program offered short-term positions for scientific aides at NACA's Langley Research Center in Hampton, Virginia. Jones obtained one of the positions, with recommendations from Zahm, Munk, and Lewis. At the end of the first nine month position, he was rehired through temporary reappointments. A permanent appointment at the initial civil-service level for an Engineer seemed impossible because it required a Bachelor's degree. However, the next higher professional grade did not state that requirement. In 1936 Jones was promoted directly to second level engineer. [1]

In January 1945, Jones developed a theory of the delta wing based on thin-airfoil theory. Others at Langley were sceptical until supersonic testing of models was done by Robert Gilruth and in April by Theodore von Karman. Jones's theory was not truly accepted until that summer when Von Karman's team of investigators found that German experts had been working on swept-wing designs for several years. Jones's thin-wing design ultimately proved superior to thick airfoils developed by Alexander Lippisch in Germany.[4][5]

In 1946 Jones was given the IAS Sylvanus Albert Reed Award, and transferred to Ames. The genius of Bob Jones seemed, in part, to lie in his remarkable ability to extract the essence of a problem and express it in understandable and useful terms. His approach to problems was always of a fundamental character and often yielded results of broad significance. In addition, Jones's wife Doris, an accomplished mathematician, also joined the Ames staff.[6]

Later, still at Ames, Jones promoted the oblique wing.[1][7] (The first known oblique wing design was the Blohm & Voss P.202, proposed by Richard Vogt in 1942.[8]) Jones's wind tunnel studies indicated that such a wing design on a supersonic transport might achieve twice the fuel economy of an aircraft with conventional wings. The concept was flight tested successfully on the NASA AD-1. This unique aircraft had a wing which pivoted about the fuselage, remaining perpendicular to it during slow flight and rotating to angles up to 60 degrees as aircraft speed increased. Analytical and wind tunnel studies by Jones indicated that a transport-sized oblique-wing aircraft flying at speeds up to Mach 1.4 (1.4 times the speed of sound) would have substantially better aerodynamic performance than an aircraft with conventional wings at the same speed.[9] A later DARPA project using a variable sweep oblique wing was the Switchblade.[10]

Jones spent much of his time at Langley working in the Stability Research Division which pioneered many concepts that were incorporated into U.S. aircraft. As a self-trained aerodynamicist and mathematician, Jones built up a national reputation through his perceptive and original work at Langley and Ames.[1]

Awards

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Bibliography

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  • Properties of Low-Aspect-Ratio Pointed Wings at Speeds Below and Above the Speed of Sound. NACA Report Nº 835, 1946
  • The Minimum Drag of Thin Wings in Frictionless Flow, Journal of the Aeronautical Sciences, Feb. 1951
  • Theoretical Determination of the Minimum Drag of Airfoils at Supersonic Speeds, Journal of the Aeronautical Sciences, Dec. 1952
  • Possibilities of Efficient High Speed Transport Airplanes, Proceedings of the Conference on High-Speed Aeronautics, Polytechnic Institute of Brooklyn, Jan. 1955
  • Aerodynamic Design for Supersonic Speed, Advances in Aeronautical Sciences, Vol.1, Pergammon Press, 1959
  • With Cohen, D., High Speed Wing Theory, Princeton University Press, 1960
  • New Design Goals and a New Shape for the SST, Astronautics and Aeronautics, Dec. 1972
  • With Graham, A., and Boltz, F., An Experimental Investigation of an Oblique Wing and Body Combination at Mach Numbers Between .6 and 1.4, NASA TM X-62207, Dec. 1972
  • With Graham, A., and Boltz, F., An Experimental Investigation of Three Oblique Wing and Body Combinations at Mach Numbers Between .6 and 1.4, NASA TM X-62256, April 1973
  • With Graham, A., and Summers, J., Wind Tunnel Test of an F-8 Airplane Model Equipped with an Oblique Wing, NASA TM X-62273, June 1973
  • With Nisbet, J., Transonic Transport Wings -- Oblique or Swept? Astronautics and Aeronautics, Jan. 1974
  • With Smith, R., and Summers, J., Transonic Wind Tunnel Tests of an F-8 Airplane Model Equipped with 12 and 14-percent Thick Oblique Wings, NASA TM X-62478, Oct. 1975
  • With Smith, R., and Summers, J., Transonic Longitudinal and Lateral Control Characteristics of an F-8 Airplane Model Equipped with an Oblique Wing, NASA TM X-73103, March 1976
  • The Oblique Wing — Aircraft Design for Transonic and Low Supersonic Speeds, Acta Astronautica, Vol. 4, Pergammon Press, 1977
  • With Nisbet, J., Aeroelastic Stability and Control of an Oblique Wing, The Aeronautical Journal of the Royal Aeronautical Society, Aug. 1986
  • The Flying Wing Supersonic Transport, Aeronautical Journal, March 1991.
  • Wing Theory, Princeton University Press, 1990.

References

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  1. ^ a b c d e f g h i j k l m n o Vincenti, Walter G. (1 January 2005). "Robert T. Jones, One of a Kind". Annual Review of Fluid Mechanics. 37 (1): 1–21. Bibcode:2005AnRFM..37....1V. doi:10.1146/annurev.fluid.36.050802.122008. ISSN 0066-4189. Retrieved 22 February 2023.
  2. ^ Merlin, Peter (March 3, 2005). "NASA Celebrates 90 Years Of Aeronautics Excellence". www.nasa.gov. NASA Dryden Flight Research Center. Retrieved 22 February 2023.
  3. ^ "Nicholas-Beazley Pobjoy Special Replica - N6119G". EAA Aviation Museum. Retrieved 22 February 2023.
  4. ^ Von Karman, Aerodynamics: Selected Topics in the Light of their Historical Development, 1954
  5. ^ Richard Hallion, Lippisch, Gluhareff and Jones: The Emergence of the Delta Planform, Aerospace Historian, March 1979.
  6. ^ Hartman, Edwin Phelps (1970). Adventures in Research: A History of Ames Research Center, 1940-1965. NASA SP-4302. Washington, DC: NASA History Series.
  7. ^ Gipson, Lillian (24 February 2015). "'Thinking Obliquely' Tells Story of NASA's Scissors Wing Airplane". NASA. Retrieved 22 February 2023.
  8. ^ A Summary Of A Half-Century of Oblique Wing Research Archived 2007-06-14 at the Wayback Machine
  9. ^ ECN-17954 Archived 2011-07-19 at the Wayback Machine
  10. ^ Warwick, Graham (12 September 2005). "Strange shapes". Flight Global. Retrieved 22 February 2023.
  11. ^ a b c Allen, Bob (Aug 10, 2015). "Robert T. Jones". NASA. Retrieved 22 February 2023.
  12. ^ "The W. Rupert Turnbull Lecture Conférence de W. Rupert Turnbull" (PDF). Canadian Aeronautics and Space Institute. Retrieved 22 February 2023.
  13. ^ "Langley Gold Medal". Smithsonian Institution. Retrieved 22 February 2023.
  14. ^ "Jones receives President's award". NASA Activities. No. May. The Administration. 1981. p. 7.
  15. ^ "J. C. Hunsaker Award in Aeronautical Engineering". National Academy of Sciences. Retrieved 14 February 2011.
  16. ^ "Superstars of Modern Aeronautics" (PDF). NASA. Retrieved 22 February 2023.
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