Modeling Exhaust-Generated Aerodynamic Pressure Loads on Airfield Matting Repair Systems

Author:

Rittelmeyer Brandon M.1,Roueche David B.1ORCID,Bianchini Alessandra2ORCID,Davidson James S.1

Affiliation:

1. Department of Civil and Environmental Engineering, Auburn University, Auburn, AL

2. Consultant, Lynn Haven, FL

Abstract

Airfield matting systems are commonly used for rapid repair of damaged runways to facilitate continuity of critical operations. Under normal service conditions, matting repair systems are subject not only to wheel loads exerted by airfield traffic but also to aerodynamic pressure loads resulting from high-speed, turbulent exhaust plumes produced by jets during taxi and take-off. Matting systems employed by the U.S. Air Force have been tested with respect to wheel loads, but probabilities of failure because of pressure loads produced by jet exhaust have not yet been established. This study presents a numerical approach for preliminary estimation of worst-case matting anchor forces resulting from exhaust-generated pressure loads. Using a two-dimensional computational fluid dynamics model, system behavior is evaluated by means of a parametric study of six system variables, of which the most significant are: (1) distance between engine and matting, (2) depth of cavity openings at matting edges, and (3) engine exhaust velocity. The results demonstrate that matting systems are likely to experience net uplift in typical service scenarios, driven by the combined effects of flow separation and cavity pressurization. Worst-case anchor pull-out forces, computed according to a tributary-area approach, are estimated to fall in the range of 130 lb (581 N) to 979 lb (4,350 N), depending on assumed load-sharing behavior among anchors and the size of the repair site. Field testing of instrumented matting systems during jet taxi and take-off sequences is recommended as the best next step toward understanding system behavior.

Publisher

SAGE Publications

Subject

Mechanical Engineering,Civil and Structural Engineering

Reference29 articles.

1. Airfield Damage Repair. TSPWG Manual 3-270-01.3-270-07. U.S. Air Force Civil Engineer Center, Tyndall Air Force Base, FL, 2020.

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3. Wade S. Osan’s Airfield Damage Repair Team Exercises With Republic of Korea Air Force. Osan Air Base, U.S. Air Force. 2009. https://www.osan.af.mil/News/Stories/Display/Article/405779/osans-airfield-damage-repair-team-exercises-with-republic-of-korea-air-force/. Accessed September 25, 2021.

4. Jones D. N. Introduction to Jet-Engine Exhaust and Trailing Vortex Wakes. Technical Report 226. U.S. Air Force, Air Weather Service, 1970.

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