REG NASA-TP-2917-1990 Evaluation of two transport aircraft and several ground test vehicle friction measurements obtained for various runway surface types and conditions A summary icti.pdf
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1、NASATechnicalPaper2917February 1990lEvaluation of Two TransportAircraft and Several GroundTest Vehicle FrictionMeasurements Obtained forVarious Runway SurfaceTypes and ConditionsA Summary of Test ResultsFrom Joint FAA/NASA RunwayFriction ProgramThomas J. Yager,William A. Vogler,and Paul BaldasarePro
2、vided by IHSNot for ResaleNo reproduction or networking permitted without license from IHS-,-,-Provided by IHSNot for ResaleNo reproduction or networking permitted without license from IHS-,-,-NASATechnicalPaper29171990National Aeronautics andSpace AdministrationOffice of ManagementScientific and Te
3、chnicalInformation DivisionEvaluation of Two TransportAircraft and Several GroundTest Vehicle FrictionMeasurements Obtained forVarious Runway SurfaceTypes and ConditionsA Summary of Test ResultsFrom Joint FAA/NASA RunwayFriction ProgramThomas J. YagerLangley Research CenterHampton, VirginiaWilliam A
4、. VoglerPRC Kentron, Inc.Aerospace Technologies DivisionHampton, VirginiaPaul BaldasareLangley Research CenterHampton, VirginiaProvided by IHSNot for ResaleNo reproduction or networking permitted without license from IHS-,-,-The use of trademarks or names of manufacturers in thisreport is for accura
5、te reporting and does not constitute anofficial endorsement, either expressed or implied, of suchproducts or manufacturers by the National Aeronautics andSpace Administration.Provided by IHSNot for ResaleNo reproduction or networking permitted without license from IHS-,-,-ContentsSummary 1Introducti
6、on. 1Symbols . 2Test SitesGeneralWallops Flight Facility 3FAA Technical CenterBrunswick Naval Air Station.Langley Air Force Base.Pease Air Force Base Portland International Jetport 4Test Apparatus 4Test AircraftNASA Boeing 737 aircraft . 4FAA Boeing 727 aircraftGround Test VehiclesGeneral.Diagonal-b
7、raked vehicle 6Mu-MeterSurface friction tester. 6BV- 11 skiddometerRunway friction tester.Runway condition reading vehicle7Supplemental Instrumentation and Data Measurements . 8Portable three-axis accelerometerSurface temperature gauge 8.Portable wind anemometerWater-depth gauge . 8Texture-depth kit
8、 .Snow density dataRain gauge 9Support Equipment . 9Runway markers .Snow removal equipment 9Runway water tankersPhotographic coverage . 9.Miscellaneous 10Test Procedures 10General . 10Dry Runways . 10Wet Runways 10Snow- and Slush-Covered Runways 11Ice-Covered Runways 11Io,IIIProvided by IHSNot for R
9、esaleNo reproduction or networking permitted without license from IHS-,-,-Compilation of Test Data 1212General .Aircraft Braking Friction Data . 12Ground-Vehicle Friction Data . 12Data Reduction and Analysis . 1212Aircraft Data .Ground-Vehicle Data . 14Correlation Methodology 14Statistical Analysis
10、15Results and Discussion . 1616General .Boeing 737 Aircraft and Ground-Vehicle Data Evaluation . 16Dry runways 1617Wet runways Snow- and ice-covered runways 17Boeing 737 Aircraft Snow-Impingement Drag . 17Boeing 737 Aircraft Engine Thrust-Reverser Performance . 17Comparison of Boeing 737 Aircraft Br
11、aking Techniques 18Boeing 727 Aircraft and Ground-Vehicle Data Evaluation . 1818Dry runways 18Wet runways 19Snow- and ice-covered runways Boeing 727 Aircraft Snow-Impingement Drag . 19Boeing 727 Aircraft Engine Thrust-Reverser Performance . 19Comparison of Boeing 727 Aircraft Braking Techniques 1919
12、Supplemental Data Analysis Concluding Remarks . 21Major Test Findings 2222Conclusions .Recommendat ions . 2223References .Tables . 25Appendix A-Compilation of Boeing 737 Aircraft and44Ground-Vehicle Test Data .45Tables .Appendix B-Compilation of Boeing 727 Aircraft andGround-Vehicle Test Data . 9596
13、Tables .156Figures ivProvided by IHSNot for ResaleNo reproduction or networking permitted without license from IHS-,-,-SummaryA substantial number of tests with specially in-strumented Boeing 737 and 727 aircraft togetherwith several different ground friction measuring de-vices have been conducted f
14、or a variety of runwaysurface types and conditions. These tests are part ofa Joint FAA/NASA Aircraft/Ground-Vehicle Run-way Friction Program aimed at obtaining a betterunderstanding of aircraft handling performance un-der adverse weather conditions and defining relation-ships between aircraft and gr
15、ound-vehicle tire frictionmeasurements. Aircraft braking performance for dry,wet, and snow- and ice-covered runway conditions isevaluated as well as ground-vehicle friction data ob-tained under similar runway conditions. A limitednumber of tests were conducted to evaluate aircraftengine reverser per
16、formance, snow-impingement dragon the aircraft, and the influence of runway chemicaltreatments on control of snow and ice contaminants.All the friction measurements taken during this pro-gram from aircraft and ground-vehicle test runs havebeen tabulated by major discriminators such as testsite, runw
17、ay condition, and vehicle type. Appendixescontain the aircraft/ground-vehicle friction data col-lected during tests with the two aircraft.Results from this test program have made it pos-sible to identify the relationship between ground-vehicle and aircraft friction data for a given contam-inated run
18、way condition. A better definition of bothaircraft ground handling performance and ground-vehicle operational limits under adverse weatherconditions has been obtained. The influence of ma-jor test parameters on tire-runway friction measure-ments such as speed, type and amount of surfacecontaminant,
19、tire characteristics, and ambient tem-perature has been evaluated, and a substantial fric-tion data base for further analysis and developmenthas been established. Several recommendations aregiven, including the need for additional tests underwinter runway conditions to further define the influ-ence
20、of several factors on aircraft and ground-vehiclefriction measurements.IntroductionThere is an imperative operational need for in-formation on runways which may become slipperybecause of various forms and types of contaminants.Since the beginning of “all weather“ aircraft oper-ations, there have bee
21、n landing and aborted-takeoffincidents and/or accidents each year in which aircrafthave either run off the end or veered off the shoulderof low-friction runways. These incidents/accidentshave provided the motivation for various governmentagencies and aviation industries to conduct extensiveresearch
22、to examine the factors involved in the prob-lem of less-than-acceptable runway friction.Research conducted by the National Aeronau-tics and Space Administration (NASA), the Fed-eral Aviation Administration (FAA), the U.S. AirForce (USAF), the Army Cold Regions Laboratory(CREL), the United Kingdom Mi
23、nistry of Trans-portation, the Canadian Ministry of Transport, andothers has established that tire braking friction doesdiminish on contaminated runway surfaces. The de-gree of friction reduction is related to many fac-tors, including depth of contaminant (water, snow,mixture) on the surface, paveme
24、nt surface tex-ture, tire inflation pressure, and brake applicationspeed. Much of this research effort has been di-rected towards obtaining a better understanding ofthe runway slipperiness problem exemplified in thecommercial-transport-aircraft, landing-overrun acci-dents at Erie, Pennsylvania, in F
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