NTSB CAROL · Event
Event NYC95LA099
Registry · N900PH
FAA Aircraft Registry record.
Make / Model
PIPER PA-28R-180
Engine
LYCOMING IO-360-B1E (180 hp)
Seats / Engines
4 seats · 1 engine
Last airworthiness date
20140512
ADS-B equipped
Yes — Mode-S AC7079
Registrant of record
SOUTHERN AIRCRAFT CONSULTANCY INC TRUSTEE
Source: FAA Aircraft Registry (releasable master file).
Aircraft involved
Probable cause & findings
Failure of the position 19 engine bearing, which resulted in shifting of the accessory gear drive, disengagement of the fuel pump, fuel starvation, and loss of engine power.
Factual narrative
On May 3, 1995, about 1300 eastern daylight time, a Eurocopter, AS350D, helicopter, N900PH, collided with the water during a forced landing near Sea Bright, New Jersey. The pilot and one passenger were not injured. The helicopter was substantially damaged. Visual meteorological conditions prevailed, and a VFR flight plan had been filed. The on-demand air taxi flight was being conducted under 14 CFR 135. The helicopter had departed the 34th Street Heliport, New York City, New York, at 1245, en route to Keansburg, New Jersey. At an altitude of 1000 feet mean sea level, the helicopter's engine lost total power. The pilot entered autorotation, deployed the floats in preparation for a landing in water, and flared. While in the flare the tailrotor entered the water, and separated from the tailboom. The pilot stated that about 2 miles southwest of Coney Island, New York, the engine chip detector light illuminated. He "pulsed" the light and it went out. About 1 minute later the light illuminated again, but this time would not go out. According to the pilot's written statement: I decided to continue because I was more then halfway across the Raritan [Bay]...about 1 to 2 minutes later the engine lost power, the horn sounded...entered autorotation, made a mayday call, armed [the] floats, popped the floats and completed the autorotation. On May 15, 1995, a preliminary engine teardown was conducted under the supervision of the FAA, at Allied Signal's facilities, Stratford, Connecticut. Additional examinations were conducted at Allied Signal's facilities, Phoenix, Arizona. According to the FAA Inspector's statement, the engine teardown revealed: ...a spur gear assembly had failed and disengaged from [the] opposing gear assembly. The disengagement caused immediate shutdown due to fuel starvation. Further investigation revealed damage to #19 bearing and a worn boss seat area...[when the] gear failure occurred, disconnection of the shaft occurred, and the engine shutdown occurred due to fuel starvation by fuel pump deactivation. Disassembly of the engine revealed that the #1 and #2 accessory gears had disengaged. These two gears provided drive to the Ng (gas generator) accessories, which include the fuel pump/control assemblies. When the gears failed the drive to the fuel pump was lost, rendering it incapable of delivering fuel to the fuel control. The Position 19 bearing, one of two conrad ball bearings, that supports the high speed power take-off gearshaft failed. The gearshaft transmits power from the engine gas producer shaft, at the number two gear mesh, to the high speed accessories located at the accessory gearbox. The bearings are designed to support the combination of radial loads resulting from two spur gear meshes. The Position 19 bearing was damaged, but turned freely. The bearing outer race was fractured axially in a single location and the cage was fractured through four rails on one side and a single rail on the other. Measurements of the bearing diameter clearance showed it to be inconsistent. The gearbox bore, displayed erratic wear. The wear was located in the area of the gear reaction force. The wear allowed a gearshaft center shift of .060"/.070". There were no signs of heating observed. Examination of the Position 19 bearing revealed brinnelling damage on the inner race. Brinnelling dents were visible on both sides of the inner race. Spalling damage was also observed on the inner race. The disassembly revealed that the greatest loss of shaft support, resulted from bearing spinning and wear in the bore. Dynamic loading then caused a fatigue origin in the fillet area, at the ends of the teeth, of the #1 gear (the smaller of the 2 gears). Monmouth Aircraft, the maintenance facility, used by the operator, reported the last chip incident involving this engine was approximately 10 hours prior to the accident. At that time "many fine chips" had bridged the chip detector gap. The chips were not analyzed, because Monmouth had decided to tear down the engine to locate the source of the chips. The teardown revealed, wear on the teeth of the output gear and the mating power idler gear. This was determined as the source of the chips and replaced. At the time of the accident, the pilot had 5,500 total flight hours, and 3,300 flight hours in this make and model helicopter. The reported local weather was; clear, visibility 10 miles, temperature 65 degrees F, dew point missing, wind 225 degrees, 10 knots, altimeter missing. At 1000 feet mean sea level, the helicopter's engine lost total power. The pilot entered autorotation, and deployed the floats in preparation for a water landing. During the flare, the tailrotor entered the water and separated from the tailboom. An engine teardown revealed that the inner race of the position 19 bearing, which supported the high speed power gearshaft, failed due to fatigue. Subsequently, the #1 and #2 (accessory) gears disengaged. These gears provided drive to the gas generator accessories, which included the fuel pump/control assemblies. With the gears disengaged, there was no drive to the fuel pump, rendering it incapable of delivering fuel to the fuel control. Source: NTSB Aviation Accident Database (Pre-2008 Archive) Retrieved: 2026-02-12
Verbatim from NTSB's published report. Source file
NTSB_1995_NYC95LA099.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 (fuel starvation, maintenance). Sourced from NASA NTRS, NTSB Safety Studies, FAA CAMI, AOPA Air Safety Institute, Embry-Riddle Scholarly Commons, arXiv, and the Semantic Scholar academic graph.
- Embry-Riddle Scholarly Commons 2026 · Journal article (IJAAA)
From Reactive to Predictive: A hybrid Trust-Mediated Adoption Framework for Data-Driven Maintenance in Distributed-Authority Aviation Environments
Modern aviation maintenance operates within increasingly data-intensive technological environments, yet the operational integration of predictive maintenance into routine decision-making remains incon…
- Semantic Scholar 2025 · Article (Applied Sciences)
Decision-Making Framework for Aviation Safety in Predictive Maintenance Strategies
The implementation of predictive maintenance (PM) in aviation presents unique challenges due to strict safety requirements, complex operational environments, and regulatory constraints.
- Embry-Riddle Scholarly Commons 2024 · Journal article (JAAER)
Low-Resource Automatic Speech Recognition Domain Adaptation – A Case-Study in Aviation Maintenance
With timeliness and efficiency being critical in the aviation maintenance industry, the need has been growing for smart technological solutions that optimize and streamline the different underlying ta…
- Embry-Riddle Scholarly Commons 2024 · Journal article (JAAER)
A New Trajectory in UAV Safety: Leveraging Reinforcement Learning for Distance Maintenance Under Wind Variations
In the field of aviation, safety is a critical cornerstone, and the operation of Unmanned Aerial Vehicle (UAV) systems is deeply connected with this principle.
- Embry-Riddle Scholarly Commons 2024 · Journal article (IJAAA)
Just Culture in Aviation: A Metaphorical Study on Aircraft Maintenance Students
Just Culture, a sub-dimension of safety culture, has been a prominent and debated topic in aviation safety in recent years.
- Embry-Riddle Scholarly Commons 2024 · Journal article (IJAAA)
Performance PRISM: A Comprehensive Framework For Performance Measurement In Aircraft Maintenance
Aircraft maintenance is governed by rigorous safety requirements and high operational complexity, demanding robust performance measurement frameworks to ensure optimal maintenance practices.
Browse the full corpus — academia portal ↗