N53466 is a 1943 Boeing A75L3. It is a fixed-wing single-engine aircraft with 2 seats, powered by a Lycoming R680 rated at 215 horsepower. The registration is active, with the registrant based in Eatonville, WA. Its standard airworthiness certificate was issued in May 1983. It has been registered to its current owner since Dec 2004. This page also carries 1 NTSB event.
- 83 years old
- 1 of 32 Boeing A75L3
2004
1983
That's everything on file so far — TailWiki checks the FAA registry daily and adds new entries as N53466's record changes.
On September 6, 2024, about 1259 Pacific daylight time, a Boeing A75L3 airplane, N53466, was substantially damaged when it was involved in an accident near Yacolt, Washington. The pilot was seriously injured and the passenger was fatally injured. The airplane was operated as a Title 14 Code of Federal Regulations Part 91 personal flight.
The pilot reported that he had no memory of the accident flight or the accident sequence.
Two other pilots reported that the accident airplane was part of a group of three airplanes traveling together. The group departed Ed Carlson Memorial Field/South Lewis County Airport (TDO), Toledo, Washington, with an intended destination of Ken Jernstedt Airfield (4S2), Hood River, Oregon, and maintained loose trail with one another. Near Woodland, Washington, the accident pilot announced a previously undiscussed alternate route of flight to the group and instructed a turn to the east/southeast. One airplane turned with the accident airplane, and one airplane chose to maintain the originally planned, southerly course. The pilot of the airplane on the southerly course heard the pilot of the accident airplane state, “this is the cut we’re going to take” to the second airplane, then did not hear any subsequent communication from either of the other two pilots.
The two airplanes on the alternate route of flight proceeded toward mountainous terrain and the accident pilot offered continued direction to the second airplane. As the airplanes approached a ridgeline in the rising terrain, the pilot of the second airplane realized that his airplane was not high enough to clear the ridge and initiated a climb. He observed a decrease in his airplane’s ground speed and added engine power to facilitate the climb. He subsequently added additional engine power and completed two 360° circles in a circle climb to clear the ridge. The pilot of the second airplane then continued the flight toward their intended destination and was unaware that the accident airplane had not crossed the previous ridgeline.
The final 6 minutes of available ADS-B flight track data showed the accident airplane maintained a variable altitude between 2,600 ft and 2,900 ft msl. About .63 miles west of terrain at 3,550 ft, the data showed the initiation of a left turn followed by a rapid descent. The accident airplane’s ground speed had slowed to 40 knots at the onset of the rapid descent.
The other two airplanes from the group arrived at 4S2. Their pilots subsequently reported the accident airplane overdue, and an Alert Notice (ALNOT) was issued at 1637. The wreckage was located about 12 miles southeast of Yacolt, Washington, in wooded, mountainous terrain by a United States Coast Guard rescue helicopter and ground search and rescue teams from Skamania County Sheriff.
Records showed that the most recent annual inspection was completed on June 1, 2024. The most recent engine overhaul was completed on April 10, 2012.
The closest available weather reporting station was located at Portland-Troutdale Airport (TTD), Portland, Oregon, and included a reported 10 miles visibility and temperature of 31°C near the time of the accident.
Based on the available weather report, the calculated density altitude near the accident site was 4,626 ft.
The pilot of the airplane who continued on the southerly course while enroute estimated the visibility to be about 7 statute miles, with wildfire smoke in the area. The pilot of the airplane flying the alternate route with the accident airplane reported that “it wasn’t too smooth out.”
Records showed that the most recent annual inspection was completed on June 1, 2024. The most recent engine overhaul was completed on April 10, 2012.
Examination of the accident site revealed that the airplane came to rest in a nose-low attitude on a heading of about 110° magnetic, at an elevation of about 2,751 ft mean sea level. The wreckage was at the base of an about 100-ft-tall tree. Multiple impact scars were observed from the base of the tree to about 50 ft, and several branches from the tree were observed around and within the wreckage.
The engine was partially buried in the forest floor, nose low and beneath the fuselage. The propeller assembly was attached to the engine, buried in recently disturbed earth, directly beneath the engine.
The main landing gear assembly was about 75 ft downhill from the main wreckage.
All major structural components of the airplane were located at the accident site. Postaccident examination of the wreckage revealed no evidence of preaccident mechanical malfunction or failure that would have precluded normal operation.
According to the FAA Airplane Flying Handbook (FAA-H-8083-3C),
The angle of attack (AOA) is the angle at which the chord of the wing meets the relative wind. The chord is a straight line from the leading edge to the trailing edge. At low angles of attack, the airflow over the top of the wing flows smoothly and produces lift with a relatively small amount of drag. As the AOA increases, lift as well as drag increases; however, above a wing’s critical AOA, the flow of air separates from the upper surface and backfills, burbles, and eddies, which reduces lift and increases drag. This condition is a stall, which can lead to loss of control if the AOA is not reduced.
It is important for the pilot to understand that a stall is the result of exceeding the critical AOA, not of insufficient airspeed. The term “stalling speed” can be misleading, as this speed is often discussed when assuming 1G flight at a particular weight and configuration. Increased load factor directly affects stall speed (as well as do other factors such as gross weight, center of gravity, and flap setting). Therefore, it is possible to stall the wing at any airspeed, at any flight attitude, and at any power setting. For example, if a pilot maintains airspeed and rolls into a coordinated, level 60° banked turn, the load factor is 2G, and the airplane will stall at a speed that is 41 percent higher than the 1G stall speed. In that 2G level turn, the pilot has to increase AOA to increase the lift required to maintain altitude. At this condition, the pilot is closer to the critical AOA than during level flight and therefore closer to the higher stalling speed. Because “stalling speed” is not a constant number, pilots need to understand the underlying factors that affect it in order to maintain aircraft control in all circumstances.
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