NTSB CAROL · Event
Event LAX04LA318
Aircraft involved
Probable cause & findings
the flight's encounter with the wake turbulence from a preceding heavy airplane while on approach.
Factual narrative
On September 13, 2004, at 2003 Pacific daylight time, a Boeing 737-3H4 transport category airplane, N601WN, operated by Southwest Airlines as flight 1437, landed uneventfully after encountering wake turbulence while on approach to the Los Angeles International Airport (LAX), Los Angeles, California. Two flight crew, 2 cabin attendants, and 42 passengers were uninjured, while 1 flight attendant sustained serious injuries. The airplane was not damaged. Southwest Airlines was operating the airplane, registered to a trustee and leased to Southwest, under the provisions of 14 CFR Part 121 as a scheduled domestic passenger flight. The flight originated from Salt Lake City, Utah, and was destined for LAX. Visual meteorological conditions prevailed, and an instrument flight rules flight plan had been filed. According to a written statement provided by Southwest Airlines safety department, the airplane was on the SADDE 6 arrival into LAX, and was following a Boeing 747 located approximately 5 miles ahead at 10,000 feet. The accident flight was about 8 miles west of the Santa Monica (SMO) very-high frequency omni-directional radio range navigation aid and at 10,000 feet and 250 knots, when the flight crew experienced a "quick and violent roll of about 35 degrees to the left due to wake turbulence from the preceding [Boeing] 747." The captain righted the airplane and the first officer informed air traffic control that they had encountered wake turbulence and were going to offset to the north of the 747's course to avoid any additional wake turbulence. The remaining portion of the flight was uneventful. According to air traffic control records (from the Southern California Terminal Radar Control), controllers cautioned Southwest flight 1437 of wake turbulence from the preceding heavy Boeing 747. The flight crew responded and indicated that they had the Boeing 747 in sight. According to Southwest Airlines written statement, the fasten seat belt sign was illuminated and none of the passengers were out of their seats. However, the flight attendants had not been seated yet (usual time for flight attendants to be seated is during descent out of 10,000 feet). A flight attendant, who was standing in the aft galley at the time of the turbulence encounter, was injured in the cabin area. Southwest Airlines learned the extent of the flight attendant's injuries (broken ribs) 2 days following the event and then notified the National Transportation Safety Board Southwest Regional Office. The Safety Board authorized Southwest Airlines to download the data from the flight data recorder (FDR) for review. The information gleaned from the FDR revealed that the airplane experienced between +0.734 and +1.547 Gs in vertical acceleration, -0.028 and +0.104 Gs in longitudinal acceleration, and -0.181 and +0.271 Gs in lateral acceleration. According to the Federal Aviation Administration's (FAA) safety product brochure titled "CAUTION Wake Turbulence" (www.asy.faa.gov/safety _products/wake.htm), the intensity or strength of the vortex is primarily a function of aircraft weight and configuration. The strongest vortices are produced by heavy aircraft, flying slowly, in a clean configuration (i.e., flaps and landing gear retracted). For example, a large or heavy aircraft that must reduce its speed to 250 knots below 10,000 feet and is flying in a clean configuration while descending, produces a very strong wake. Extra caution is needed when flying below and behind such aircraft. The FAA recommends the following to avoid wake turbulence when following another aircraft: "Stay either on or above the preceding aircraft's flight path, upwind, or at least 1,000 feet below." A flight attendant sustained serious injuries when the Boeing 737 transport category airplane encountered wake turbulence while following behind a Boeing 747 on approach. The injured flight attendant was standing in the aft galley at the time of the event. Air traffic controllers issued a wake turbulence caution to the 737, which was level at 10,000 feet and trailing behind a 747 that was also level at 10,000 feet. According to the accident flight crew, they trailed behind the 747 by 5 miles; however, they still experienced a sudden and violent roll to the left of about 35 degrees. The flight crew righted the airplane and offset their flight path to the north of the 747's flight path. The airplane then landed uneventfully. Review of the aircraft's flight data recorder information revealed the fasten seat belt sign was illuminated and the passengers were all seated at the time of the event. However, the cabin attendants were not yet seated for landing. The Federal Aviation Administration's recommended procedures for avoiding wake turbulence while following another airplane (stay either on or above the preceding aircraft's flight path, upwind, or at least 1,000 feet below) was being followed at the time of the upset. Source: NTSB Aviation Accident Database (Pre-2008 Archive) Retrieved: 2026-02-12
Verbatim from NTSB's published report. Source file
NTSB_2004_LAX04LA318.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 (wake turbulence, turbulence). 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 2019 · Conference Paper
Aircraft wake turbulence minimization by aerodynamic means
The paper reviews NASA's efforts on wake vortex turbulence minimization by aerodynamic design or retrofit modifications to large transport aircraft.
- NASA NTRS 2019 · Conference Paper
Wake Turbulence Mitigation for Arrivals (WTMA)
The preliminary Wake Turbulence Mitigation for Arrivals (WTMA) concept of operations is described in this paper. The WTMA concept provides further detail to work initiated by the Wake Vortex Avoidance…
- NASA NTRS 2019 · Conference Paper
Aircraft wake turbulence avoidance
Aircraft wake turbulence /trailing vortex systems/ avoidance during flight, describing procedures for pilots and tower operators
- NASA NTRS 2019 · Conference Paper
Aircraft wake turbulence progress and plans
Aircraft wake turbulence and trailing vortices, investigating physical characteristics, hazard potential and avoidance techniques
- SKYbrary (Eurocontrol) 2023 · SKYbrary article
Wake Vortex Turbulence — SKYbrary Knowledge Base
SKYbrary wake vortex turbulence comprehensive article — generation mechanics, dissipation factors, separation standards (ICAO LIGHT/MEDIUM/HEAVY/SUPER + recategorisation RECAT-EU).
- NASA NTRS 2019 · Contractor Report (CR)
An Examination of Aviation Accidents Associated with Turbulence, Wind Shear and Thunderstorm
The focal point of the study reported here was the definition and examination of turbulence, wind shear and thunderstorm in relation to aviation accidents.
Browse the full corpus — academia portal ↗