NTSB CAROL · Event
Event FTW02LA261
Aircraft involved
Probable cause & findings
The loss of engine power due to the low-pressure pump separating internally. Contributing factors were the deterioration of the fuel pump and the lack of suitable terrain for the forced landing.
Factual narrative
On September 21, 2002, at 1655 central daylight time, a Beech V35 airplane, N9486S, was substantially damaged when it impacted a fence and a ditch during a forced landing following a loss of engine power during takeoff at the Del Rio International Airport, near Del Rio, Texas. The airplane was registered to and operated by the pilot. The private pilot, sole occupant of the airplane, was not injured. Visual meteorological conditions prevailed, and a flight plan was not filed for the 14 Code of Federal Regulations Part 91 personal flight. The cross-country flight was originating at the time of the accident, and was destined for Scottsdale, Arizona. According to the pilot, he departed Brownsville, Texas, on Labor Day for Scottsdale with a planned refueling stop at Pecos, Texas. About 30 minutes past Del Rio, while in cruise flight at 10,500 feet msl, "the engine quit without warning." He immediately made a turn back to Del Rio, and then switched fuel tanks, cycled the boost pump, mixture control, etc., and set up a best glide speed of 105 knots. "After some fiddling [he] determined that the engine would produce some power using the aux pump on the high boost position resulting in a very low power setting." He continued to the Del Rio International Airport and landed the airplane without further incident. After conversations with a local aircraft mechanic, it was determined that the likely problem was the failure of the engine driven fuel pump. The mechanic removed the fuel pump, rebuilt it, and the same fuel pump was reinstalled on the engine. On the day of the accident, the 758-hour pilot completed a preflight during which the fuel was sumped. After the fuel tanks were topped-off, the pilot started the engine. He stated "that the start-up was a bit different from what [he] was used to, in that generally after the engine starts, if there is any stumbling or roughness, a quick pulse of the aux pump on low usually clears any vapor remaining in the fuel line. However, when [he] pulsed the aux pump on low this time, the engine almost died. Operating the engine at about 1,500 RPM for 5-10 seconds seem to cleared it up, and it seemed smooth and operating in a normal manner." The pilot reported that he taxied the airplane to runway 13 and completed a "normal" run up. After performing the before takeoff checks, he taxied the airplane onto the runway, held the brakes, and applied full throttle. "It took a few seconds for the engine to reach 32.5 inches of manifold pressure (takeoff power) as it usually does, and [he] observed the fuel flow to be not at, but very close to the red line pressure (where it is supposed to be). The fuel flow was in roughly the same position on the gauge as it has been in this airplane for many years, so [he] deemed that it was acceptable." At full power, he held the brakes for 30-40 seconds, "checked the cylinder heat-temperature and exhaust gas temperatures and fuel flow, everything was within normal limits" so he started the takeoff roll. About 50 feet agl, the pilot retracted the landing gear and established an 90 knot climb. "Just as the gear had cycled up, about 100 feet AGL, the engine quit completely." He switched fuel tanks and turned on the boost pump, but it had no effect. He selected a field to land in and extended the landing gear and flaps. The nose landing gear "clipped the airport fence, and [he] made a gentle left turn (about 20 degrees) to aim for the longest part of the field." The main landing gear touched down and he held the nose up as long as possible, but when it came down, it started skidding along the ground. The airplane came to a stop upright in a ditch. Examination of the airplane revealed that the low-pressure pump was deteriorated and came apart internally. The pins that hold the fuel pump vanes in place in the drive wheel were broken and a quarter-inch piece of the tiny metal shafts flowed towards the engine and wedged in the mechanical engine-driven fuel pump vanes shearing the shaft at the "fail point." According to the pilot, after taking off, just as the gear had cycled up, about 100 feet AGL, the "engine quit completely." He switched fuel tanks and turned on the boost pump, but it had no effect. He selected a field to land in and extended the landing gear and flaps. Examination of the airplane revealed that the low-pressure pump was deteriorated and came-apart internally. The pins that hold the fuel pump vanes in place in the drive wheel were broken and a quarter-inch piece of the tiny metal shafts flowed towards the engine and wedged in the mechanical engine-driven fuel pump vanes shearing the shaft at the "fail point." Source: NTSB Aviation Accident Database (Pre-2008 Archive) Retrieved: 2026-02-12
Verbatim from NTSB's published report. Source file
NTSB_2002_FTW02LA261.txt.
Findings + structured fields enriched from FAA avall.mdb.
Full investigation docket on
data.ntsb.gov ↗.
Beyond the agency record
Search this event elsewhere.
Pre-filled searches into the sources where news + community discussion of aviation events lives. External sources are reported, not agency. Treat them as signal that something happened, not as fact about what happened.
Entity-clustered aviation events in the press — last 24 hr + 30-day archive.
Official agency record + docket.
Investigative docket: factual reports, photos, transcripts.
Long-running aviation incident database (Flight Safety Foundation).
Community NTSB synthesis blog — often has photos and witness reports.
Gold-standard aviation incident blog.
Aviation industry news search.
GA pilot forum — informed but rumor-prone.
GA pilot subreddit search.
Tail-number page — flight history (free tier limited).
AOPA Air Safety Institute search.
Mainstream press coverage. Recent events only.
Privacy-preserving news search.
External links open in a new tab. We don't ingest their content; we deep-link search queries.
Related research
What the literature says.
Academic papers and agency reports matching this event's aircraft type or causal vocabulary (stall). 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 · Conference Paper
Computational Analysis of Steady State Aerodynamics of Transonic Truss-Braced Wing Configuration in Deep Stall
This study presents a computational investigation of steady state aerodynamics of the Subsonic Ultra-Green Aircraft Research (SUGAR) Transonic Truss-Braced Wing (TTBW) configuration over a wide range …
- arXiv 2023 · arXiv preprint
Automating Bird Diverter Installation through Multi-Aerial Robots and Signal Temporal Logic Specifications
This paper tackles the task assignment and trajectory generation problem for bird diverter installation using a fleet of multi-rotors.
- arXiv 2023 · arXiv preprint
Variation of Critical Crystallization Pressure for the Formation of Square Ice in Graphene Nanocapillaries
Two-dimensional square ice in graphene nanocapillaries at room temperature is a fascinating phenomenon and has been confirmed experimentally.
- arXiv 2023 · arXiv preprint
Polycrystallinity enhances stress build-up around ice
Damage caused by freezing wet, porous materials is a widespread problem, but is hard to predict or control. Here, we show that polycrystallinity makes a great difference to the stress build-up process…
- arXiv 2022 · arXiv preprint
Enhanced Prediction of Three-dimensional Finite Iced Wing Separated Flow Near Stall
Icing on three-dimensional wings causes severe flow separation near stall. Standard improved delayed detached eddy simulation (IDDES) is unable to correctly predict the separating reattaching flow due…
- Embry-Riddle Scholarly Commons 2021 · Journal article (JAAER)
Analysis on the Negative Emotional, Physiological, and Cognitive Responses Elicited from of the Activation of a Stall Alarm
Failing to identify an aerodynamic stall can lead to the inability of an aircraft to sustain flight. To warn pilots of an impending or fully-developed stall, many aircraft have safety devices installe…
Browse the full corpus — academia portal ↗