NTSB CAROL · Event
Event WPR22LA080
Registry · N145WT
FAA Aircraft Registry record.
Make / Model
ZENITH CH 750 CRUZER
Year of manufacture
2019 · 3 years old at event
Engine
HONDA VTECH (135 hp)
Seats / Engines
2 seats · 1 engine
Last airworthiness date
20191120
ADS-B equipped
Yes — Mode-S A0B749
Registrant of record
TACHIKI WALTER
Source: FAA Aircraft Registry (releasable master file).
Aircraft involved
Probable cause & findings
A partial loss of engine power due to an obstructed catalytic converter, which most likely resulted from the pilot’s failure to properly repair or replace it after it was likely damaged during a previous incident. Contributing to the accident was the pilot’s failure to maintain adequate airspeed during the forced landing, which led to an exceedance of the airplane’s critical angle-of-attack and an aerodynamic stall.
Factual narrative
On January 14, 2022, about 1248 mountain standard time, an experimental amateur-built Zenith CH 750 (Cruzer), N145WT, was substantially damaged when it was involved in an accident near Spanish Fork, Utah. The pilot was seriously injured. The airplane was operated as a Title 14 Code of Federal Regulations Part 91 personal flight. The pilot reported that this was his first flight in the accident airplane since he was involved in a landing incident that took place in the same airplane about 18 months earlier. Before the accident flight, he fast-taxied the airplane down the runway to check the operability of the flight control system and engine controls and did not observe any anomalies. Shortly after takeoff when the airplane was about 5 nautical miles away from the airport, the pilot observed a slow decay in engine power and was suddenly unable to maintain altitude. He immediately started a left turn to return to the airport and he advanced the throttle to the full power setting but was unsuccessful in restoring power to the engine. According to a witness, the airplane entered a steep left turn at approximately 80 ft above ground level that quickly transitioned into a nose-down dive before it disappeared from view behind obstacles. The pilot stated that the airplane slowed during the turn and impacted the roof of a building. The airplane sustained substantial damage to the fuselage and both wings. The airplane was equipped with a Honda VTEC automotive engine. Postaccident examination revealed that mechanical continuity was established throughout the rotating group, reduction gearbox, engine flywheel, crankshaft and accessory section as the crankshaft was manually by hand rotated at the prop hub. Thumb compression was achieved at all four cylinders. Examination of the cylinders combustion chamber interior components using a lighted borescope revealed normal piston face and cylinder wall signatures, and no indications of a catastrophic engine failure. The ignition coils were tightly secured to their respective spark plugs and the ECU harnesses were connected to each coil. The coils were all normal in appearance and did not exhibit any debris or discoloration when visually inspected. All four of the spark plugs were gray in appearance, consistent with normal wear and the center electrodes were unremarkable. A postaccident engine run did not reveal any preimpact anomalies. An inspection of the elevator, flaperon, and rudder controls did not reveal any abnormalities. The engine was equipped with a catalytic converter that was used to convert toxic exhaust gases produced during combustion. The converter was comprised of a honeycomb ceramic substrate secured within the case that directed the exhaust gas airflow towards the tailpipe. Although the converter remained securely attached to the engine case, the bottom half of the internal ceramic substrate had broken into numerous large pieces. Figure 1. Interior catalytic converter substrate as observed through tailpipe Figure 2. Top and bottom halves of catalytic converter with exposed substrate (top is on the left side, bottom on the right side) The pilot reported that following a landing incident that occurred 18 months before the accident, he noticed gray fragments coming from the tailpipe, which was bent as a result of impact damage. The pilot subsequently repaired the tailpipe by straightening it and re-welded it back to the catalytic converter. The pilot reported he noticed small white particles come out of the tailpipe the first time he started the engine after the incident and then once again a piece that was the size of a quarter to a half-dollar came out on the second or third engine start. He did not inspect, repair, or replace the catalytic converter before the accident flight. According to a representative of the engine manufacturer who reviewed the engine examination report, as backpressure is required for the engine to function, an obstructed exhaust can affect engine backpressure and result in a partial loss of engine power. The engine kit manufacturer, and company responsible for retrofitting the automotive engine for aviation applications, also stated that an obstructed catalytic converter could prevent the engine from producing power. The pilot departed on the local accident flight after having repaired his airplane following a landing incident that occurred 18 months earlier. Shortly after departure, he observed a partial loss of engine power and was unable to maintain altitude. He immediately returned to the airport, but, while maneuvering toward the runway, he made a tight left turn, which likely resulted in an exceedance of the airplane’s critical angle of attack and an accelerated stall. The airplane entered a nose-down dive and impacted a rooftop. Postaccident examination of the airframe did not reveal any preimpact mechanical anomalies that could have precluded the pilot from controlling the airplane. Examination of the engine revealed that most of the internal components were likely operational at the time of impact. However, the catalytic converter contained several broken pieces of ceramic substrate that had separated during the previous accident. As there were no other preimpact mechanical anomalies with the engine, it is likely that broken substrate blocked the engine exhaust gas path following combustion, which resulted in a partial loss of engine power during the accident flight. The pilot straightened the bent exhaust tailpipe after the landing incident and re-welded the catalytic converter. However, he did not inspect, repair, or replace the catalytic converter before the accident flight even after debris was emitted from the tailpipe on subsequent engine starts. 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 power plant-Engine exhaust-(general)-Fatigue/wear/corrosion
- — Personnel issues-Task performance-Use of equip/info-Aircraft control-Pilot
- — Aircraft-Aircraft oper/perf/capability-Performance/control parameters-Angle of attack-Not attained/maintained
- — Aircraft-Aircraft oper/perf/capability-Performance/control parameters-Airspeed-Not attained/maintained
- — Personnel issues-Task performance-Maintenance-Repair-Pilot
Verbatim from NTSB's published report. Source file
NTSB_2022_WPR22LA080.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, engine failure). 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
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…
- 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…
Browse the full corpus — academia portal ↗