The Transport Rotorcraft Airframe Crash Testbed (TRACT) full-scale tests were performed at NASA Langley Research Center's Landing and Impact Research Facility in 2013 and 2014. Two CH-46E airframes were impacted at 33-ft/s forward and 25-ft/s vertical combined velocities onto soft soil, which represents a severe, but potentially survivable impact scenario. TRACT 1 provided a baseline set of responses, while TRACT 2 included retrofits with composite subfloors and other crash system improvements based on TRACT 1. For TRACT 2, a total of 18 unique experiments were conducted to evaluate Anthropomorphic Test Devices (ATD) responses, seat and restraint performance, cargo restraint effectiveness, patient litter behavior, and activation of emergency locator transmitters and crash sensors. Combinations of Hybrid II, Hybrid III, and ES-2 ATDs were placed in forward and side facing seats and occupant results were compared against injury criteria. The structural response of the airframe was assessed based on accelerometers located throughout the airframe and using three-dimensional photogrammetric techniques. Analysis of the photogrammetric data indicated regions of maximum deflection and permanent deformation. The response of TRACT 2 was noticeably different in the horizontal direction due to changes in the cabin configuration and soil surface, with higher acceleration and damage occurring in the cabin. Loads from ATDs in energy absorbing seats and restraints were within injury limits. Severe injury was likely for ATDs in forward facing passenger seats.
[1]
nbsp,et al.
Rotocraft Troop Seat with Selectable Energy Absorber System — Design & Test
,
2015
.
[2]
Martin Annett.
Evaluation of the Second Transport Rotorcraft Airframe Crash Testbed (TRACT 2) Full Scale Crash Test
,
2016
.
[3]
Lindley W. Bark.
Testing Mobile Aircrew Restraint Systems in a Full-Scale CH-46 Airframe Crash Test — Exploring the Limits
,
2016
.
[4]
Labun,et al.
A Study of Rotary-Wing Crashes to Support New Crashworthiness Criteria
,
2010
.
[5]
David H. Laananen,et al.
Analysis of Rotorcraft Crash Dynamics for Development of Improved Crashworthiness Design Criteria
,
1985
.
[6]
Alex Harris,et al.
Performance of CH-46 Pilot seats in NASA Full Scale Crash Test
,
2014
.
[7]
Michael A. Thomas,et al.
Constitutive Soil Properties for Mason Sand and Kennedy Space Center
,
2011
.
[8]
Angela Sample,et al.
Mobile Aircrew Restraint System - MARS
,
2005
.
[9]
Lindley Bark,et al.
Comparison of Mobile Aircrew Restraint Strategies in a Full-Scale CH-46 Airframe Crash Test
,
2014
.
[10]
Nasa,et al.
The Development of Two Composite Energy Absorbers for Use in a Transport Rotorcraft Airframe Crash Testbed (TRACT 2) Full-Scale Crash Test
,
2015
.
[11]
Karen E. Jackson,et al.
Evaluation of the First Transport Rotorcraft Airframe Crash Testbed (TRACT 1) Full-Scale Crash Test
,
2014
.