NTSB CAROL · Event
Event CEN23LA081
Registry · N512P
FAA Aircraft Registry record.
Make / Model
MARC JONES PITTS MODEL 12
Year of manufacture
2013 · 10 years old at event
Engine
VEDENEYEV M14P (350 hp)
Seats / Engines
2 seats · 1 engine
Last airworthiness date
20130308
ADS-B equipped
Yes — Mode-S A66A22
Registrant of record
M12 AVIATION LLC
Source: FAA Aircraft Registry (releasable master file).
Aircraft involved
Probable cause & findings
The failure of the engine-driven fuel pump, which resulted in a total loss of engine power. Contributing to the failure of the fuel pump was an unknown non-ferrous metallic debris that was noted throughout the airplane’s fuel system.
Factual narrative
On January 14, 2023, about 1425 central standard time, a Pitts Model 12 airplane, N512P, sustained substantial damage when it was involved in an accident near Conroe, Texas. The pilot sustained minor injuries and the passenger sustained serious injuries. The airplane was operated as a Code of Federal Regulations Part 91 personal flight. According to the pilot, he and the passenger were conducting a local flight to practice maneuvers and landings and the airplane contained about 40 gallons of fuel in the main fuel tank. About 3 to 4 minutes after takeoff, and at an altitude of 2,000 ft above ground level, the pilot noticed that a master warning light on the instrument panel illuminated but did not notice any anomalies or problems. The warning light then turned off, all indications were normal, and the engine was operating without issue. The pilot elected to return to the airport. The pilot stated that, about 1 minute later, the engine sustained a series of power fluctuations; “like someone was turning the [magnetos] off and on.” When the pilot turned on the fuel boost pump, the engine produced a burst of power, and then lost power. The pilot switched from the main fuel tank to the auxiliary tank with no change noted to engine power, then switched back to the main fuel tank. Unable to reach the airport or a field due to a high descent rate, the pilot performed a forced landing to a nearby roadway. During the landing, the airplane impacted a powerline and terrain before coming to rest inverted. The airplane sustained substantial damage to the wings, fuselage, and empennage (see Figure 1). Figure 1. Accident airplane as it came to rest (Source: Federal Aviation Administration) The airplane is equipped with a main fuel tank in the forward fuselage and a wing tank in the upper wing with a total capacity of 54 gallons. An aluminum header or inverted tank with a pickup (flop) tube is located beneath the main tank and provides the fuel supply for inverted flight. Postaccident examination of the airplane and engine revealed small particles of non-ferrous metal debris were noted throughout the airplane’s fuel system when fuel system components and fuel lines were removed. The airframe’s inverted fuel tank pickup tube was removed, and an o-ring at the end of the tube was not present. No evidence of the o-ring was noted in the fuel tank or fuel system. The engine was removed for a functional test in a test cell. The engine fuel pump was removed, flushed, and functionally bench tested before the functional engine test due to the presence of metal debris in the fuel system. During the functional test, a leak was noted at the pump’s rear pressure relief valve and rear diaphragm. Although the leak was present, the fuel pump flows were normal at idle and cruise power settings. The fuel pump was reinstalled on the engine for the engine functional test. During the engine prime procedure, the engine fuel pump leaked from the rear pressure relief valve and diaphragm, as observed during the bench test. Due to the potential fire and safety concerns, the pump was removed and replaced with a slave pump. The accident fuel pump was disassembled; scratches and scoring marks were noted on the pressure relief valve seat, which allowed fuel into the air side cavity of the fuel pump (see Figure 2). The diaphragm was pliable and undamaged. Blue stains, consistent with aviation fuel, were noted on the external pump housing. Figure 2. Engine fuel pump pressure relief valve with diaphragm After the fuel pump was replaced, the engine started on the test cell without issue. Around 800 rpms, a vertical vibration was observed with the engine and test cell stand. The functional test was terminated at that time due to the abnormal vibrations. The pilot and passenger were conducting a local flight to practice maneuvers and landings. About 3 to 4 minutes after takeoff, and 2,000 ft above ground level, the pilot noticed a master warning light on instrument panel but did not notice any anomalies or problems. The pilot elected to return to the airport, and about 1 minute later the engine sustained a series of power loss fluctuations. The pilot attempted to troubleshoot the problem but was unsuccessful and the engine lost total power. Unable to reach the airport or a field due to a high descent rate, the pilot performed a forced landing to a nearby roadway. During the landing, the airplane impacted a powerline and terrain before coming to rest inverted. The airplane sustained substantial damage to the wings, fuselage, and empennage. Postaccident examination of the airplane revealed non-ferrous metallic debris throughout the entire fuel system; the source of the debris was unable to be determined. Due to a leak noted during a functional test, the engine-driven fuel pump was disassembled. Scratches and scoring marks were noted on the pressure relief valve seat, which allowed fuel into the air side cavity of the fuel pump. It is likely the fuel pump air cavity filled with fuel, which equalized the pump pressure and restricted fuel flow to the engine. The restricted fuel flow resulted in a total loss of engine power. Source: NTSB Aviation Accident Database Retrieved: 2026-02-12
NTSB Findings
Hierarchical cause / factor breakdown from the FAA bulk avdata database. Each finding tagged C (Cause) or F (Factor).
- — Aircraft-Aircraft systems-Fuel system-(general)-Damaged/degraded
- — Aircraft-Aircraft power plant-Engine fuel and control-Fuel pump-Failure
- — Aircraft-Fluids/misc hardware-Fluids-Fuel-Fluid condition
Verbatim from NTSB's published report. Source file
NTSB_2023_CEN23LA081.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 (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
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- 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…
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