ERA10LA110
2010-01-06 · Auburn, Alabama, United States · None · 1 aircraft · Status: Completed
Airport AUO
Current FAA registration · N8448Y
- Make / Model
- PIPER PA-32R-301T
- Year of manufacture
- 1981 · 29 years old at event
- Engine
- LYCOMING TI0-540 SER (310 hp)
- Seats / Engines
- 7 seats · 1 engine
- Last airworthiness date
- 19810930
- ADS-B equipped
- Yes — Mode-S AB923C
Source: FAA Aircraft Registry (releasable master file).
Aircraft involved
Probable cause & findings
The pilot's loss of directional control after landing, which resulted in a runway excursion.
Factual narrative
On January 6, 2010, at 1646 central standard time, a Piper PA-32R-301T, N8448Y, was substantially damaged during a runway excursion after landing at the Auburn-Opelika Airport (AUO), Auburn, Alabama. The private pilot was not injured. Visual meteorological conditions prevailed for the personal flight conducted under the provisions of Title 14 Code of Federal Regulations Part 91. The flight originated from the Thomaston-Upson County Airport (OPN), Thomaston, Georgia, at 1615. The pilot stated that after landing on runway 36 he applied the brakes to slow the airplane for a left turn off the runway. Instead, the airplane began a turn to the right, which could not be corrected with left brake application. The airplane departed the right side of the runway, the left main landing gear collapsed, and the airplane stopped upright on the grass apron. According to Federal Aviation Administration (FAA) airman records, the pilot was issued a private pilot certificate with a rating for airplane single engine land, multi-engine land, and instrument airplane. However, the pilot had surrendered his certificate to the FAA one month prior to the accident. His most recent FAA third class medical certificate was issued on September 8, 2009, at which time the pilot reported 1,386 total hours of flight experience, 170 hours of which were in the same make and model of the accident airplane. He reported 20 total hours of flight experience in the 90 days preceding the accident. According to FAA and maintenance records the airplane had accrued 3,030 total hours. Its most recent annual inspection was completed on January 1, 2010, at 3,029 hours. At 1655, the weather reported at AUO, included clear skies and wind from 280 degrees at 4 knots. The visibility was 10 miles. The temperature was 3 degrees C and the dew point was -13 degrees C. Examination of the airplane at the accident site by an FAA inspector revealed substantial damage to the left wing spar, a twisted fuselage, and collapsed landing gear. A detailed examination of the brakes was completed by a licensed airframe and powerplant mechanic. The mechanic reported that both the left and right brakes turned freely with no dragging noted and that the brake system appeared to be functional. After landing, the pilot applied the brakes to slow the airplane for a left turn off the runway. Instead, the airplane began a turn to the right, which could not be corrected with left brake application. The airplane departed the right side of the runway and came to a stop upright on a grass apron. A postaccident examination of both the left and right brakes by an aircraft mechanic revealed that the brakes turned freely with no dragging noted and that they appeared to be functional at the time of the examination. Source: NTSB Aviation Accident Database Retrieved: 2026-02-12
NTSB Findings
FAA avdata. C = Cause, F = Factor.
- C Aircraft-Aircraft oper/perf/capability-Performance/control parameters-Directional control-Not attained/maintained - C
- C Personnel issues-Task performance-Use of equip/info-Aircraft control-Pilot - C
Verbatim from NTSB's published report. Source file
NTSB_2010_ERA10LA110.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 (runway excursion, 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.
- SKYbrary (Eurocontrol) 2024 · SKYbrary article Runway Excursion — SKYbrary Knowledge Base
SKYbrary runway excursion review — RE-OE (overruns) + RE-LO (lateral). Risk drivers: long landing, high approach speed, contaminated surface, tailwind, mis-set autobrakes.
- 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.