NASA-TN-D-7743-1974 Experimental investigation of the braking and cornering characteristics of 30 x 11 5-14 5 type 8 aircraft tires with different tread patterns《带有不同胎面花纹的30 x 11 5.pdf
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1、NASA TECHNICAL NOTE NASA TN D-7743 I M w h (NASA-TN-D-7743) EXPEEIHENTSI N74-34487 u cn INVESTIGATION OF THE BRAKING AND U COhNEhING CHARACTfRISTICS CF 3: X I Z 11.5-14.5, TYPE 8, AInChBFT Ti92L iiiTP Unclas CIFIER3NT (NASA) 24 p HC $3.ijC 2SCL “1C Hl/22 52Li17 EXPERIMENTAL INVESTIGATION OF THE BRAK
2、ING AND CORNERING CHARACTERISTICS OF 30 x 11.5-14.5, TYPE VIII, AIRCRAFT TIRES ,“ / WITH DIFFERENT TREAD PATTERNS / by Robert C. Dreher urrd John A. Tanner Langley Research Center Humpton, V 23665 NATIONAL AERONAUTICS AND SPACE ADMINISTRATION WASHINGTON, D. C. OCTOBER 1974 Provided by IHSNot for Res
3、aleNo reproduction or networking permitted without license from IHS-,-,-1. Report No. 1 2. Gwtrnment Accession No. 1 3. Recipients Catalog No. NASA TN D-7743 I I 4. itle and Subtitle I 5. Repon Date EXPERIMENTAL INVESTIGATION OF THE BRAKING AND t October 1974 CORNERING CHARACIERISTICS OF 30 X 11.5-1
4、4.5, TYPE VIII, 6. PedomlngOrnizatlonCode AIRCRAFT TIRES WITH DIFFERENT rREAD PATTERNS 7. Author($) Robert C. Dreher and John A. Tanner 9 Pnfwmmg Organization Name and Address 6. Abstract 8. Perforrnng Orgnuation Report No. L-9687 10. Work Unt No. 501-3P-1.2-02 - 2. Sponsoring Agency Name and Addres
5、s National Aeronautics and Space Administration Washington. D.C. 20546 An investigation was conducted at the Langley aircraft landing loads and traction facility to study the braking and cornering characteristics of 30 x 11.5-14.5, Type VIII, aircraft tires with five different tread patterns. These
6、characteristics, which included the drag-force and cornering-force friction coefficients, were obtained on dry, damp, and flooded runway surfaces over a range of yaw angles from 0 to 12 at ground speeds from 5 to 100 knots. NASA Langley Research Center I 11. Contract or Grant No. Hampton, Va. 23665
7、13. Type of Report and Pwr:od Covered Technical Note 14. Sponsoring gmcy ode The results of this investigation indicate that a tread pattern consisting of transverse cuts across the entire width of the tread slightly improved the tire traction performance on wet surfaces. The braking and cornering c
8、apability of the tires was degraded by thin-film lubrication and tire hydroplaning effects on the wet runway surfaces. Also, the braking capability of the tires decreased when the yaw angle was increased. 7. Key Words (Suggested by Authorls) I Tires Aircraft Friction 18. Oistributon Sta:ernent Uncla
9、ssified - Unlimited STAR Category 02 19. Security Clamif. (of this report) 1 20. Security Clauif. (of this page1 Unclassified / Unclassified For mle by the National Tochnicrl Informtion Swlce, Springfield, Virginia 22151 21. NO. of PQUI 22 22. Rice $3.00 Provided by IHSNot for ResaleNo reproduction
10、or networking permitted without license from IHS-,-,-EXPERIMENTAL INVESTIGATION OF THE BRAKING AND CORNERING CHARACTEPJSTICS OF 30 X 11.5- 14.5, TYPE W, AIRCRAFT TIRES WITH DIFFERENT TREAD PATTERNS By Robert C, Dreher and John A. Tanner Langley Research Center SUMMARY An investigation was conducted
11、at the Langley aircraft landing loads and traction facility to study the braking and cornering characteristics of 30 X 11.5-14.5, Type VIII, aircraft tires with five different tread patterns. These characteristics, which included the drag-force and cornering-force friction coefficients, were obtaine
12、d on dry, damp, and flooded runway surfaces over a range of yaw angles from 0 to 12 at ground speeds from 5 to 100 knots. The results of this investigation indicate that a tread pattern consisting of transverse cuts across the entire width of the tread slightly improved the tire traction performance
13、 on wet surfaces. The braking and cornering capability of the tires was degraded by thin- film lubrication and tire hydroplaning effects on the wet runway surfaces. Also, the braking capability of the tires decreased when the yaw angle was increased. INTRODUCTION Researchers seek continually to impr
14、ove the traction of aircraft tires on runways under adverse weather conditions. After considerable research (refs. 1 to 6, for example), they have shown that aircraft braking and steering capability decreases during wet runway operations and that the problem becomes more severe with increased ground
15、 speed and fluid depth, M higher aircraft ground speeds and at a fluid depth defined by the runway surface texture and tire tread design, the phenomenon of dynamic hydroplaning occurs wherein the tire loses contact with the runway surface and thus its directional stability and braking effectiveness.
16、 Most jet aircraft are susceptible to hydroplaning because of their high ground operating speeds. Attempts have been made to eliminate or delay the deleterious effects attributed to hydroplaning by developing techniques which would prevent the buildup of water pressure in the tire-pavement interface
17、. All these attempts tried to provide improved escape routes or drainage for the water in the tire footprint either by changing the texture of the Provided by IHSNot for ResaleNo reproduction or networking permitted without license from IHS-,-,-runway surface or by revising or modifying the tire tre
18、ad pattern. Changing the runway surface texture through the installation of transverse grooves or the application of a porous asphalt overlay can provide increased tire traction under wet conditions (see refs. 6 and 7). Research on tire tread patterns (ref. 1, for example) has indicated that the lev
19、el of friction developed by a tire on a contaminated surface is extremely sensitive to the tread design at least for fluid depths less than the tire tread depth. Traditionally, increasing the number of circumferential grooves in the tire tread, or adding radial or transverse grooves seems to improve
20、 the wet braking characteristics, particularly at the higher ground speeds. It should be noted, however, that other considerations, such as tread wear and tread integrity, during high-speed operation are limiting factors to any tread alteration. This paper presents the results of an investigation co
21、nducted at the Langley aircraft landing loads and traction facility to determine the wet-runway performance characteris- tics of an aircraft tire having various tread patterns thought to improve traction under all weather conditions. Five 30 x 11.5- 14.5, Type MJ, 24-ply-rating tires having differen
22、t tread patterns were tested to define their braking and cornering characteristics. This size tire is presently employed on the main gear of a high performance jet fighter aircraft. The braking and cornering characteristics included the drag-force and cornering-force friction coefficients obtained f
23、or the tires operating on dry, damp, and flooded surfaces over a range of yaw angles from 0 to 12 at ground speeds from 5 to 100 knots (1 knot = 0.5144 meter/second). The tires used in the tests were supplied by the U.S. Air Force (Rain Tire - Project 5549). SYMBOLS Values are given in both SI and U
24、.S. Customary Units. The measurements and calculations were made in U.S. Customary Units. Factors relating the two systems are presented in reference 8. Drag force drag-force friction coefficient, parallel to direction of motion, - Vertical force C(d ,max maximum drag-force friction coefficient Vd ,
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