NTSB CAROL · Event
Event ANC96LA025
Registry · N5293X
FAA Aircraft Registry record.
Make / Model
CESSNA U206G
TCDS
A4CE · CESSNA
Engine
CONT MOTOR IO 520 SERIES (285 hp)
Seats / Engines
6 seats · 1 engine
Last airworthiness date
19830919
ADS-B equipped
Yes — Mode-S A6AD34
Registrant of record
BAKER LEASING LLC
Source: FAA Aircraft Registry (releasable master file).
Aircraft involved
Probable cause & findings
The pilot's poor judgment in conducting the flight in the existing high gusting wind conditions. A factor associated with the accident was the operator allowing/dispatching the accident flight in the prevailing weather conditions, and the icy ramp/taxi area.
Factual narrative
On January 27, 1996, about 1230 Alaska standard time, a wheel equipped Cessna 206, N5293X, experienced an upset while taxiing at the Ralph Wein Memorial Airport, Kotzebue, Alaska. The airplane was being operated as a visual flight rules (VFR) cross- country positioning flight under Title 14 CFR Part 91 when the accident occurred. The airplane, registered to and operated by Baker Aviation Inc., Kotzebue, sustained substantial damage. The certificated airline transport pilot, the sole occupant, was not injured. Visual meteorological conditions prevailed. A VFR flight plan was filed. The flight originated at the Noorvik airport, Noorvik, Alaska, at 1209. The operator reported that after landing on runway 08, the pilot exited the runway at the east end and was taxiing to the company ramp. The taxiway surface was hard-packed snow and ice. Braking action was poor. While making the turn into the ramp area, gusty winds tipped the right wing of the airplane upwards. The left wing and propeller contacted the taxiway surface, wrinkling the outboard end of the wing and damaging the propeller tips. A 1251 surface weather observation at Kotzebue was reporting in part: Sky condition and ceiling, 10,000 feet scattered, 20,000 feet thin broken clouds; visibility, 3 miles in blowing snow; temperature, 4 degrees F; dew point -1 degrees F; wind, 110 degrees at 35 knots, gusts to 41 knots; altimeter, 30.07 inHg. A telephone conversation with the Director of Operations (D.O.) on March 27, disclosed that the accident flight went through the normal flight following/dispatch procedures. The D.O. indicated that the primary responsibility for determining if the winds/weather were suitable for the flight to be conducted rested with the pilot-in-command. The D.O. said when the flight was conducted, there were no written company standards which addressed when flights should be cancelled due to excessive surface wind velocity. The D.O. also said that several earlier flights that day had been cancelled due to high winds and associated turbulence, and that the only way that the accident flight could have been prevented was "...for the pilot not to have been there." The pilot said that while taxiing from landing, as he was making a right turn into the ramp area, the wind lifted the right wing causing the left wing and propeller to strike the ground. The taxi surface was hard-packed snow and ice, and braking action was poor. The 1251 wind was reported as 35 knots with gusts to 41. The Director of Operations (D.O.) stated that the flight went through the normal flight following/dispatch procedures. The D.O. said there were no written company standards addressed when flights should be cancelled due to excessive surface wind velocity. In addition, the D.O. indicated that the primary responsibility for determining if the winds/weather were suitable for the flight to be conducted rested with the pilot-in-command. Source: NTSB Aviation Accident Database (Pre-2008 Archive) Retrieved: 2026-02-12
Verbatim from NTSB's published report. Source file
NTSB_1996_ANC96LA025.txt.
Findings + structured fields enriched from FAA avall.mdb.
Full investigation docket on
data.ntsb.gov ↗.
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Related research
What the literature says.
Academic papers and agency reports matching this event's aircraft type or causal vocabulary (turbulence). Sourced from NASA NTRS, NTSB Safety Studies, FAA CAMI, AOPA Air Safety Institute, Embry-Riddle Scholarly Commons, arXiv, and the Semantic Scholar academic graph.
- arXiv 2026 · arXiv preprint
Direct Numerical Simulations of Ice-Ocean Boundary Turbulence
Turbulent heat and freshwater transport at ice-ocean interfaces controls glacier and iceberg melt rates, yet the underlying physics remains poorly constrained.
- Embry-Riddle Scholarly Commons 2025 · Journal article (JAAER)
Political Turbulence and Aviation Safety: A Cross-National Analysis of Political Stability's Effects on Aviation Accidents
To what extent does political stability affect aviation safety? This research aims to link domestic political conditions and public safety through the consideration of aviation accident frequency.
- arXiv 2025 · arXiv preprint
Explainable LiDAR 3D Point Cloud Segmentation and Clustering for Detecting Airplane-Generated Wind Turbulence
Wake vortices - strong, coherent air turbulences created by aircraft - pose a significant risk to aviation safety and therefore require accurate and reliable detection methods.
- arXiv 2024 · arXiv preprint
Does small-scale turbulence matter for ice growth in mixed-phase clouds?
Representing the glaciation of mixed-phase clouds in terms of the Wegener-Bergeron-Findeisen process is a challenge for many weather and climate models, which tend to overestimate this process because…
- arXiv 2023 · arXiv preprint
Effects of electrostatic interaction on clustering and collision of bidispersed inertial particles in homogeneous and isotropic turbulence
In sandstorms and thunderclouds, turbulence-induced collisions between solid particles and ice crystals lead to inevitable triboelectrification.
- SKYbrary (Eurocontrol) 2023 · SKYbrary article
Wake Vortex Turbulence — SKYbrary Knowledge Base
SKYbrary wake vortex turbulence comprehensive article — generation mechanics, dissipation factors, separation standards (ICAO LIGHT/MEDIUM/HEAVY/SUPER + recategorisation RECAT-EU).
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