NTSB CAROL · Event
Event ERA10LA184
Aircraft involved
Probable cause & findings
A loss of engine power during the landing approach for undetermined reasons.
Factual narrative
On March 22, 2010, at about 1100 eastern daylight time, a Cessna 150L, N6589G, was substantially damaged during a forced landing following a loss of engine power while attempting to land at Winter Haven’s Gilbert Airport (GIF), Winter Haven, Florida. The certificated flight instructor (CFI) and student pilot were not injured. Visual meteorological conditions prevailed, and no flight plan was filed for the local instructional flight conducted under the provisions of 14 Code of Federal Regulations Part 91. In written statements, and during separate telephone interviews, the pilots reported that they were turning from the base leg of the traffic pattern to the final leg, to land on runway 23. They completed the before landing checklist, before the student pilot reduced the throttle to 2,000 rpm. Shortly thereafter, the engine power dropped to 1,500 rpm without any input from the student pilot. The student pilot increased to the throttle until the engine reached 1,800 rpm. The engine maintained that power setting for about 20 seconds, before losing power completely. When the engine lost power, the airplane was about 500 feet above ground level, and during the descent neither pilot attempted to restart the engine. The CFI took control of the airplane and performed a forced landing to a field near the airport. During the landing roll, the nose wheel encountered rough terrain, and the airplane nosed over and came to rest inverted. The airplane was examined at the accident scene by a Federal Aviation Administration (FAA) inspector. According to the inspector, the airplane's firewall and empennage were substantially damaged. The airplane came to rest in an inverted, left wing low attitude. About four gallons of fuel were drained from the left wing fuel tank and gascolator. The right wing fuel tank was absent of fuel. On April 1, 2010, a detailed examination of the engine was performed by two FAA inspectors. The magnetos were tested and found to operate normally. The carburetor was disassembled and inspected, and no evidence of any leakage or contamination was noted. A compression check was performed and all cylinders displayed acceptable results. All spark plugs were removed and had indication of normal function, except for the lower spark plug on cylinder four, which was oil soaked. No evidence of any mechanical malfunction was noted by either inspector during the examination. According to FAA records, the CFI held a commercial pilot certificate with ratings for airplane single engine land, multi-engine land, and instrument airplane, and a flight instructor certificate with ratings for airplane single engine, airplane multi-engine, and instrument airplane. His most recent second class medical certificate was issued on November 20, 2009. The pilot reported approximately 2,800 hours of flight experience, of which 1,000 were in the accident airplane make and model. According to FAA records, the student pilot was issued a third class medical certificate on July 25, 2008. FAA records indicated that the airplane was manufactured in 1970, and was registered to an individual in September 2009. It was equipped with a 100-horsepower, Teledyne-Continental Motors O-200 engine. It was a two-place, all-metal, high-wing, single-engine, cantilever monoplane with fixed tricycle landing gear. Review of the engine logbooks revealed that the last engine overhaul was performed on June 1, 1995, at an engine total time of 1,687.7 hours. The last engine inspection was performed on May 16, 2009, at an engine total time of 2,329.9 hours. At the time of the accident, the engine tachometer indicated approximately 2,472 hours total time. At 1050, the weather reported at GIF included winds from 250 degrees at 6 knots; visibility 10 statute miles; scattered clouds at 15,000 feet; temperature 16 degrees Celsius (C); dew point 11 degrees C; and the altimeter setting was 30.00 inches of mercury. Review of an FAA Carburetor Icing Chart revealed "Serious icing - glide power" for a temperature of 16 degrees Celsius and a dew point of 11 degrees Celsius. The pilots reported using carburetor heat as they reduced the engine power, once they had entered the airport traffic pattern. While turning from the base leg to the final leg of the traffic pattern, the airplane's engine lost partial power. The student pilot increased the throttle setting and the engine maintained that power setting for about 20 seconds before losing power completely. The certificated flight instructor assumed authority over the airplane's controls and performed a forced landing to a field near the airport. During the landing roll, the nosewheel encountered rough terrain and the airplane nosed over, coming to rest inverted. A Federal Aviation Administration (FAA) inspector drained approximately four gallons of fuel from the left wing tank and gascolator at the accident site. A detailed examination of the engine by two FAA inspectors revealed no evidence of any preexisting anomalies or malfunctions. While a review of the carburetor icing probability chart showed that the aircraft was operating in conditions conducive to serious carburetor icing at glide power, the pilots reported using carburetor heat for the approach to land. Source: NTSB Aviation Accident Database Retrieved: 2026-02-12
NTSB Findings
Hierarchical cause / factor breakdown from the FAA bulk avdata database. Each finding tagged C (Cause) or F (Factor).
- C Not determined-Not determined-(general)-(general)-Unknown/Not determined - C
Verbatim from NTSB's published report. Source file
NTSB_2010_ERA10LA184.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 (icing). Sourced from NASA NTRS, NTSB Safety Studies, FAA CAMI, AOPA Air Safety Institute, Embry-Riddle Scholarly Commons, arXiv, and the Semantic Scholar academic graph.
- NASA NTRS 2026 · Contractor Report (CR)
Icing Physics Studies Using the 3D SIDRM Test Article: 2023 Icing Tests Analysis
In-flight icing is an important safety issue and is a factor that affects aircraft design and performance. Newer regulations are driving a need for improvements in airframe and engine icing simulation…
- arXiv 2025 · arXiv preprint
Multi-Agent Deep Reinforcement Learning for UAV-Assisted 5G Network Slicing: A Comparative Study of MAPPO, MADDPG, and MADQN
The growing demand for robust, scalable wireless networks in the 5G-and-beyond era has led to the deployment of Unmanned Aerial Vehicles (UAVs) as mobile base stations to enhance coverage in dense urb…
- Embry-Riddle Scholarly Commons 2025 · Journal article (JAAER)
A Mathematical Model on the Temporal Dynamics of Aviation Competitive Pricing
This study investigates the competitive dynamics of airport pricing using U.S. airport data to validate the findings. It employs linear and nonlinear ordinary differential equation models to analyze t…
- NASA NTRS 2025 · Presentation
NASA Icing Update – March 2025
This NASA Icing Update was prepared for presentation to the SAE International AC-9C Inflight Icing Technology Committee. This update includes the following topics: planned Rotational Icing Scaling tes…
- arXiv 2024 · arXiv preprint
An energy-stable phase-field model for droplet icing simulations
A phase-field model for three-phase flows is established by combining the Navier-Stokes (NS) and the energy equations, with the Allen-Cahn (AC) and Cahn-Hilliard (CH) equations and is demonstrated ana…
- NASA NTRS 2024 · Presentation
NASA Icing Update – Oct 2024
This presentation provides a status update on select NASA icing research activities for the SAE AC-9C Icing Technical Committee Meeting on Oct 21, 2024.
Browse the full corpus — academia portal ↗