WPR10LA339
2010-07-08 · Fallon, Nevada, United States · Minor · 1 aircraft · Status: Completed
Airport NFL
N132AT has since been reassigned. It is now registered to a different aircraft (AIRTIME AIRCRAFT INC CYGNET, built 2019), which was not involved in this event.
Aircraft involved
Probable cause & findings
A loss of engine power during takeoff due to the failure of the engine's stator and turbine. Contributing to the accident was inadequate maintenance.
Factual narrative
On July 8, 2010, about 1340 Pacific daylight time, a Douglas A4L, N132AT, collided with terrain after the pilot ejected following a loss of engine power on takeoff from Fallon Naval Air Station, Fallon, Nevada. Airborne Tactical Advantage Company (ATAC) was operating the airplane under the provisions of 14 Code of Federal Regulations (CFR) Part 91 on a local public-use flight. The airline transport pilot sustained minor injuries. The airplane sustained substantial damage by impact forces and post crash fire. Visual meteorological conditions prevailed, and no flight plan had been filed. The operator reported that the takeoff and gear and flap retraction were normal. The pilot started a right turn for departure from the airport traffic area during the initial climb when the engine lost power. He reversed his turn, and attempted to land on the runway in the opposite direction of the takeoff. The airplane was too low and slow, so he steered the airplane in the direction of an empty field and successfully ejected. The airplane exploded on impact. The operator reported that their examination of the engine determined that the protective coating on the turbine blades and stators had degraded. This degradation led to the eventual failure of the stator vanes and then the turbine blades. They could not establish the exact reason for the degradation of the protective coating. The operator listed several contributing factors. They were unaware of a requirement to down trim the engines to a maximum of 102 percent until an associated technical change had been complied with. The airplane had a modified electrical start system that resulted in starts that approached the flight manual time and temperature maximum limits. During the post accident exam, they discovered a broken fuel tube due to fatigue in the combustion chamber at the 11 o'clock position. The operator believes that none of the contributing conditions caused the engine problem. However, they stated that the combination of the three led to the degradation of the protective coatings on the stators and blades in the turbine section, and ultimately the failure of the turbine blades. According to the pilot, he entered a right-hand climbing turn after departure and the engine experienced a loss of thrust. The pilot reversed direction and attempted to land on the runway in the opposite direction, but the airplane was too low and slow to make it back to the runway. He elected to steer the airplane in the direction of an empty field and successfully ejected. The operator reported that their postaccident examination of the engine determined that the protective coating on the turbine blades and stators had degraded. This degradation led to the eventual failure of the stator vanes and then the turbine blades. They could not establish the exact reason for the degradation of the protective coating. Source: NTSB Aviation Accident Database Retrieved: 2026-02-12
NTSB Findings
FAA avdata. C = Cause, F = Factor.
- C Aircraft-Aircraft power plant-Engine (turbine/turboprop)-Turbine section-Failure - C
- — Aircraft-Aircraft oper/perf/capability-Performance/control parameters-(general)-Attain/maintain not possible
Verbatim from NTSB's published report. Source file
NTSB_2010_WPR10LA339.txt.
Findings + structured fields enriched from FAA avall.mdb.
Full investigation docket on
data.ntsb.gov ↗.
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Related research
Matched on aircraft type or causal vocabulary (maintenance). All research papers
- Embry-Riddle Scholarly Commons 2026 · Journal article (IJAAA) From Reactive to Predictive: A hybrid Trust-Mediated Adoption Framework for Data-Driven Maintenance in Distributed-Authority Aviation Environments
Modern aviation maintenance operates within increasingly data-intensive technological environments, yet the operational integration of predictive maintenance into routine decision-making remains incon…
- Semantic Scholar 2026 · Article (Reliability Engineering & System Safety) Understanding human error in military aviation maintenance: The role of Performance shaping factors, cognitive workload and error orientation
- Semantic Scholar 2025 · Article (Applied Sciences) Decision-Making Framework for Aviation Safety in Predictive Maintenance Strategies
The implementation of predictive maintenance (PM) in aviation presents unique challenges due to strict safety requirements, complex operational environments, and regulatory constraints.
- Semantic Scholar 2024 · Article (Defence Science Journal) Modelling of Human Factors in Aviation Maintenance Using HFACS ME Human Factors Analysis and Classification System Maintenance Extension and Bayesian Network
Aircraft maintenance is a complex task involving a skilled human workforce, spare parts, and various other resources. Human factors are an inherent element of the human workforce.
- Embry-Riddle Scholarly Commons 2024 · Journal article (JAAER) A New Trajectory in UAV Safety: Leveraging Reinforcement Learning for Distance Maintenance Under Wind Variations
In the field of aviation, safety is a critical cornerstone, and the operation of Unmanned Aerial Vehicle (UAV) systems is deeply connected with this principle.
- Embry-Riddle Scholarly Commons 2024 · Journal article (JAAER) Low-Resource Automatic Speech Recognition Domain Adaptation – A Case-Study in Aviation Maintenance
With timeliness and efficiency being critical in the aviation maintenance industry, the need has been growing for smart technological solutions that optimize and streamline the different underlying ta…