NTSB CAROL · Event
Event LAX06CA001
Aircraft involved
Probable cause & findings
the student pilot's failure to maintain adequate airspeed and rotor rpm during a practice autorotation, and the instructor's failure to adequately monitor the maneuver, which resulted in a hard landing and roll over.
Factual narrative
On October 3, 2005, at 0745 mountain standard time, a Robinson Helicopter Company R22 Beta, N926SH, made a hard landing and rolled over during a practice autorotation near Tucson, Arizona. The certified flight instructor and the private pilot receiving instruction sustained minor injuries, and the helicopter was substantially damaged. The helicopter was registered to, and operated by, Silver State Helicopters out of their Tucson Flight Academy, as an instructional flight under the provisions of 14 CFR Part 91. The local area training flight originated from Tucson around 0700, and no flight plan had been filed. According to the instructor pilot, he directed the student to the training area where they were going to practice simulated engine failures and 180-degree autorotations. The student attempted a number of 180-degree autorotations, but did not meet the instructor's standards. The instructor demonstrated one and then gave the student the controls again following the recovery. The student performed another 180-degree autorotation, but let his rotor rpm drop slightly in the turn. The instructor requested that the student practice another. During the last demonstration, the airspeed dropped to about 55 knots; the low rotor rpm horn sounded, and the low rotor rpm light illuminated. The rotor rpm was around 95 percent on rollout. The instructor took the controls and announced this to his student, who in turn relinquished control of the helicopter. The instructor rolled on the throttle and initiated a go-around. However, because their vertical speed was high and rotor rpm was low, he was unable to recover adequate rotor rpm prior to making ground contact. The instructor attempted to cushion the landing with the remaining rotor rpm with up collective input and forward cyclic input. The helicopter impacted desert terrain in a level pitch attitude, but began to slide to one side. The right front skid hung up in the soft dirt, and the helicopter rolled over approximately three times before coming to rest on its left side. The student reported doing three successful 180-degree autorotations and was working on the fourth when upon rollout, the airspeed dropped to 60 knots and the rotor rpm decreased to 97 percent at 80 feet above ground level (agl). The instructor called for a go-around, but the rotor rpm did not respond and the instructor took over control of the helicopter. The instructor then pulled up on the collective and pushed forward on the cyclic in an attempt to land the helicopter in a level pitch attitude. The remaining statement was similar to that written by the instructor. The helicopter's main rotor system, tail boom, and fuselage were substantially damaged. Neither pilot reported any mechanical problems with the 218-hour helicopter prior to the accident. According to the chief pilot for the Tucson Flight Academy, Silver State Helicopters has a policy in place that dictates that instructors are only allowed to practice the autorotation entrance and glide so that they recover at least 500 feet agl when they are not at a controlled airport with emergency equipment. When asked why the instructor did not follow this procedure, the instructor indicated that there was too much traffic at the Tucson Airport and he needed to prepare his student for his upcoming check ride. The helicopter touched down hard and rolled over following a practice 180-degree autorotation. The instructor pilot reported that he was having his student practice a number of autorotations for an upcoming check ride. During the last autorotation, the student rolled out of the turn; the helicopter slowed to 60 knots, and the low rotor rpm warning horn sounded and the caution light illuminated. The instructor called for a go-around about 80 feet above the ground, but the rotor rpm did not increase. He took control of the helicopter from the student and applied collective and forward cyclic to touchdown in a level pitch attitude. The helicopter impacted the ground and began sliding to the side. The right skid dug into the soft ground and the helicopter rolled over three times before coming to rest on its left side. The instructor and student reported no anomalies with the 218-hour helicopter prior to the event. The flight school that employed the instructor had a policy, which dictated that instructors were to perform practice autorotations at a controlled airport equipped with emergency response equipment; however, if they did not, they were supposed to recover from autorotations 500 feet above the ground. Source: NTSB Aviation Accident Database (Pre-2008 Archive) Retrieved: 2026-02-12
Verbatim from NTSB's published report. Source file
NTSB_2005_LAX06CA001.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 (engine failure, go-around). 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 2025 · Conference Paper
A Training Study to Improve Monitoring During A Go-Around
As part of an FAA program to improve go-around (GA) safety, we were asked to determine if we could improve the performance of the Pilot Monitoring (PM) during a GA maneuver.
- Flight Safety Foundation 2024 · FSF / AeroSafety World
Go-Around Safety Forum Findings
Foundation Go-Around Safety Forum technical findings — examines why pilots fail to execute go-arounds when criteria are met (stabilized approach gate not met, energy state out of envelope, traffic con…
- arXiv 2022 · arXiv preprint
Multi-level Adaptation for Automatic Landing with Engine Failure under Turbulent Weather
This paper addresses efficient feasibility evaluation of possible emergency landing sites, online navigation, and path following for automatic landing under engine-out failure subject to turbulent wea…
- Semantic Scholar 2022 · Article (Journal of Safety Research)
Go-around accidents and general aviation safety.
INTRODUCTION Changes in General Aviation (GA) accident rates, specifically in the go-around phase, are examined by comparing the number of accidents, the proportion of fatal accidents, and the proport…
- Semantic Scholar 2021 · Article (Aerospace)
Classification and Analysis of Go-Arounds in Commercial Aviation Using ADS-B Data
Go-arounds are a necessary aspect of commercial aviation and are conducted after a landing attempt has been aborted. It is necessary to conduct go-arounds in the safest possible manner, as go-arounds …
- NASA NTRS 2021 · Accepted Manuscript (Version with final changes)
Go-Around Criteria Refinement for Transport Category Aircraft
Presently, airline pilots are trained to go around if, when lower than 500 ft above the ground, they are outside of a handful of parameters such as airspeed, position, and rate of descent.
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