NTSB CAROL · Event
Event LAX95LA188
Registry · N6120A
FAA Aircraft Registry record.
Make / Model
SCHWEIZER 269C
Year of manufacture
1991 · 4 years old at event
TCDS
4H12 · SCHWEIZER RSG LLC
Engine
LYCOMING HIO-360 SER (205 hp)
Seats / Engines
3 seats · 1 engine
Last airworthiness date
19910211
ADS-B equipped
Yes — Mode-S A7F885
Registrant of record
BRABECK MARK F
Source: FAA Aircraft Registry (releasable master file).
Aircraft involved
Probable cause & findings
The CFI's failure to apply adequate power during the flare which was a result of not maintaining the required engine and rotor rpm.
Factual narrative
On May 12, 1995, at 1030 hours mountain standard time, a Schweizer 269C helicopter, N6120A, sustained a hard landing about 7 miles northwest of Scottsdale Airport, Scottsdale, Arizona. The pilots were conducting a local visual flight rules instructional flight. The helicopter, registered to and operated by Luso America, Inc., Scottsdale, sustained substantial damage. Neither the certificated commercial pilot/certified flight instructor (CFI) nor the certificated private pilot/dual student was injured. Visual meteorological conditions prevailed. The flight originated at the Scottsdale Airport at 0945 hours. The operator reported in a telephone interview conducted on May 15, 1995, that the CFI said the dual student was practicing a forward flight autorotation. The CFI planned to terminate the autorotation with a power recovery, but the helicopter struck the ground. In the aircraft accident report, the CFI said that preceding the accident he was demonstrating an autorotation, with the student pilot on the controls, out of an "S" turn. While on final approach before the flare, the helicopter's airspeed was indicating 55 knots and the main rotor blades were turning at 470 rpm. The CFI moderately flared the helicopter at 40 feet above the ground (agl) and the indicated airspeed reduced to 15 knots. He then leveled the helicopter and initiated a power recovery, but the engine and rotor rpm needles did not join up. He said that when he increased the collective the engine rpm did not increase and the main rotor rpm began to decrease. The CFI then slowly lowered the collective and increased the throttle, but without success. At this time the helicopter was between 6 and 8 feet agl and between 10 and 12 knots forward speed; the engine was producing 2,700 rpm and the main rotor was turning at 420 rpm. On ground contact, the helicopter spun to the right about 1 1/2 revolutions. The helicopter came to rest about 20 feet from the original touchdown point and the engine was producing power. In a written statement, the dual student essentially confirmed the CFI's statement. The dual student did say that the engine rpm did not increase when the CFI raised the collective and added power. According to the airplane's pilots flight manual, the normal engine operating range is between 3,000 and 3,200 rpm. The normal main rotor operating range is between 380 and 504 rpm. THE CFI WAS DEMONSTRATING AN AUTOROTATION OUT OF AN 'S' TURN. THE ENGINE RPM DECELERATED DURING THE LEVEL OFF. THE CFI IMMEDIATELY INCREASED THE COLLECTIVE AND THROTTLE SETTINGS, BUT WITHOUT SUCCESS. THE HELICOPTER THEN SUSTAINED A HARD LANDING. Source: NTSB Aviation Accident Database (Pre-2008 Archive) Retrieved: 2026-02-12
Verbatim from NTSB's published report. Source file
NTSB_1995_LAX95LA188.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 ↗