DFW05CA109
2005-04-27 · Bandera, Texas, United States · None · 1 aircraft · Status: Completed
Airport ERV
N422SH has since been reassigned. It is now registered to a different aircraft (CESSNA 182T, built 2019), which was not involved in this event.
Aircraft involved
Probable cause & findings
The pilot's loss of control while hovering after encountering settling with power.
Factual narrative
On April 27, 2005, approximately 0831 central daylight time, a Robinson R22 single engine helicopter, N422SH, sustained substantial damage when it impacted water while hovering near Bandera, Texas. The commercial helicopter pilot and his passenger were not injured. Visual meteorological conditions prevailed and a flight plan was not filed for the animal herding flight, which was conducted under the provisions of 14 Code of Federal Regulations Part 91. The local flight originated from a private ranch near Bandera, Texas, approximately 0820. In a written statement, the 2,216-hour pilot reported that after refueling at a private ranch, he and a passenger departed and "began a process of herding some exotic animals across an earthen dam to an open area for capture." One particular trophy exotic that they were trying to capture began to swim in a creek below, and "it was obvious that the animal was struggling to cross." The pilot then began to hover beside the animal to herd it out of the water and towards the bank. At this point, "the aircraft began to settle with power at a height of approximately six feet above the water." The pilot "applied forward cyclic and right pedal, along with a lower collective setting. The skid gear then settled into the water with forward motion, and the main rotors contacted the water." The helicopter sank in approximately six feet of water. A review of photographs taken after the accident revealed structural damage to the main rotor blades and the fuselage. According to the Federal Aviation Administration (FAA) Rotorcraft Flying Handbook, pages 11-5 to 11-7, Vortex Ring State (Settling with Power), "Vortex ring state describes an areodynamic condition where a helicopter may be in a vertical descent with up to maximum power applied, and little, or no cyclic authority. The term 'settling with power' comes from the fact that the helicopter keeps settling even though full engine power is applied. In a normal out-of-ground effect-hover, the helicopter is able to remain stationary by propelling a large mass of air down through the main rotor. Some of the air is recirculated near the tips of the blades, curling up from the bottom of the rotor system and rejoining the air entering the rotor from the top. However, when the helicopter begins to descend vertically, it settles into its own downwash, which greatly enlarges the tip vortices. In this vortex ring state, most of the power developed by the engine is wasted in accelerating the air in a doughnut pattern around the rotor. In addition, the helicopter may descend at a rate that exceeds the normal downward induced-flow rate of the inner blade sections. As a result, the airflow of the inner blade sections is upward relative to the disc. This produces a secondary vortex ring in addition to the normal tip-vortices. The secondary vortex ring is generated about the point on the blade where the airfoil changes from up to down. The result is an unsteady turbulent flow over a large area of the disc. Rotor efficiency is lost even though power is still being supplied from the engine." At 0745, the automated weather observing system at the Kerrville Municipal Airport (ERV), located approximately 20 nautical miles north of the accident site, reported no wind, scattered clouds at 12,000 feet, 10 statute miles visibility, temperature 52 degrees Fahrenheit, dew point 45 degrees Fahrenheit, and a barometric pressure setting of 30.08 inches of Mercury. The 2,216-hour pilot refueled at a private ranch and departed with a passenger to "begin a process of herding some exotic animals across an earthen dam to an open area for capture." One particular trophy exotic that they were trying to capture began to swim in a creek below, and "it was obvious that the animal was struggling to cross." The pilot then began to hover beside the animal to herd it out of the water and towards the bank. At this point, "the aircraft began to settle with power at a height of approximately six feet above the water." The pilot "applied forward cyclic and right pedal, along with a lower collective setting. The skid gear then settled into the water with forward motion, and the main rotors contacted the water." The helicopter sank in approximately six feet of water. Source: NTSB Aviation Accident Database (Pre-2008 Archive) Retrieved: 2026-02-12
Verbatim from NTSB's published report. Source file
NTSB_2005_DFW05CA109.txt.
Findings + structured fields enriched from FAA avall.mdb.
Full investigation docket on
data.ntsb.gov ↗.
Search this event elsewhere
External sources are reported, not agency: signal that something happened, not fact about what happened.
- TallyAero Live Wire Aviation press
- NTSB CAROL Agency ↗
- NTSB Docket Agency ↗
- Aviation Safety Network Aviation press ↗
- Kathryn's Report Aviation press ↗
- Aviation Herald Aviation press ↗
- AVweb Aviation press ↗
- Pilots of America Community ↗
- Reddit /r/flying Community ↗
- FlightAware Aviation press ↗
- AOPA accident database Aviation press ↗
- Google News News ↗
- DuckDuckGo News ↗
Related research
Matched on aircraft type or causal vocabulary (loss of control). All research papers
- Embry-Riddle Scholarly Commons 2025 · Journal article (JAAER) A Scoping Review of Aviation Loss of Control Inflight Research
Loss of control – inflight (LOC-I) contributes to aircraft accidents at unacceptably high rates. Significant industry efforts and research have aimed to improve LOC-I prevention, detection, and recove…
- SKYbrary (Eurocontrol) 2024 · SKYbrary article Loss of Control In-Flight (LOC-I) — SKYbrary Knowledge Base
SKYbrary comprehensive knowledge-base entry on Loss of Control In-Flight — definitions, contributing factors, accident case studies (Air France 447, Colgan 3407), and prevention strategies.
- Semantic Scholar 2024 · Article (International Conference on Networking and Services) Risk Assessment of Loss of Control In-Flight Trajectories for Urban Air Mobility Safety
In Urban Air Mobility (UAM), maintaining a minimum separation between aircraft is a safety requirement, which becomes challenging amidst congested air traffic and off-nominal conditions, such as Loss …
- NTSB Aircraft Accident Reports 2022 · Accident report Loss of Control on Takeoff in Icing Conditions — Citation 560XL
Cessna Citation 560XL fatal takeoff icing accident, March 2018. Investigation of a Citation 560XL loss-of-control takeoff accident in icing conditions.
- Semantic Scholar 2021 · Article (Aviation) ANALYSIS OF GENERAL AVIATION FIXED-WING AIRCRAFT ACCIDENTS INVOLVING INFLIGHT LOSS OF CONTROL USING A STATE-BASED APPROACH
Inflight loss of control (LOC-I) is a significant cause of General Aviation (GA) fixed-wing aircraft accidents. The United States National Transportation Safety Board’s database provides a rich source…
- NASA NTRS 2021 · Presentation Use of Design of Experiments in Determining Neural Network Architectures for Loss of Control Detection
Abstract—We describe empirical methods for selecting a neural network architecture to implement belief state inference on generic commercial transport aircraft.