2024 Orbic Air Eurocopter EC130 crash
Airbus Helicopters EC 130 · Loss of control during night, spatial disorientation and poor company oversight
From Palm Springs International Airport (PSP) to Boulder City Municipal Airport (BVU)
Event
- NTSB case
- CEN24MA111
- Event typeAccident: someone killed or seriously injured, or the aircraft substantially damaged (NTSB definition). Incident: an occurrence that affected or could have affected safety, short of that. Glossary
- Accident
- InvestigationHow far the investigation had got when the record was published: preliminary, ongoing, final or completed. Unknown where the source does not say. Glossary
- Completed
- Event fatalities
- 6 · all aircraft and ground
- Ground fatalities
- Unknown
- Occupants
- 6
- Survivors
- 0
- InjuriesFatal: death within 30 days. Serious: over 48 hours in hospital within a week, most broken bones, severe bleeding, nerve or organ damage, or serious burns. Minor: anything less. Glossary
- 0 serious · 0 minor (NTSB)
- OperationWhat kind of flying it was, grouped by the rules it flew under: airline (US Part 121), air taxi and commuter (Part 135), general aviation (Part 91 and similar), military or government. Glossary
- Charter & commuter
- WeatherVisual meteorological conditions (VMC): good enough to fly by looking outside. Instrument conditions (IMC): cloud or low visibility, flying by instruments. Glossary
- Instrument Meteorological Cond
Airbus Helicopters EC 130
- Aircraft type
- Airbus EC-130
- Category
- Helicopter
- RegistrationThe aircraft's tail number, such as N12345 or G-ABCD. Registrations are reissued, so the same one years apart can be a different aircraft. Glossary
- N130CZ
- Operator
- Orbic Air
- Onboard fatalities
- Unknown
- Route
- From Palm Springs International Airport (PSP), Palm Springs, CATo Boulder City Municipal Airport (BVU), Boulder City, NV
- Aircraft age
- About 18 years (built 2006)
- Flight rulesThe regulations the flight operated under: in the US, Part 91 (general aviation), Part 121 (airlines), Part 135 (air taxi and commuter) and others; for flights abroad, the NTSB's coarser commercial or non-commercial code. Glossary
- Part 135: Air Taxi & Commuter
- Phase of flightThe stage of the flight when things started to go wrong: standing, taxi, takeoff, initial climb, en route, maneuvering, approach or landing. Glossary
- En route
- Defining eventThe single coded event the NTSB judges best describes what happened (records from 2008 on). Older records name the first occurrence in the sequence instead. Glossary
- VFR encounter with IMC
- DamageDestroyed: beyond practical repair. Substantial: damage that affects the structure, performance or handling and normally needs major repair. Minor: less than that. Glossary
- Destroyed
Cause areas
- Environmental issues › Conditions/weather/phenomena
- Organizational issues › Support/oversight/monitoring
- Personnel issues › Action/decision
- Personnel issues › Psychological
- Personnel issues › Task performance
Approximate · Coordinates as recorded by the NTSB; no uncertainty radius is established.
From the Wikipedia article
On February 9, 2024, a Eurocopter EC130 crashed in the Mojave Desert near Nipton, California around 10:00 p.m. PST. Six people were on board, including Nigerian banker Herbert Wigwe and former Nigerian Exchange Group Plc Chairman Abimbola Ogunbanjo. There were no survivors.
Accident
The helicopter left Palm Springs International Airport in California and was flying southeast towards Boulder City, Nevada, for that year's Super Bowl in Las Vegas. The weather was unfavorable, with rain and snowfall reported in the area—a remote area with few light sources to aid navigation. The helicopter was slowly losing height and picking up speed over the ground prior to crashing.
All six people aboard the helicopter were killed, namely Herbert Wigwe, the CEO of the Nigerian banking firm Access Bank plc, his wife Doreen Chizoba Wigwe, his 29-year old son Chizi Wigwe, former Nigerian Exchange Group Plc Chairman Abimbola Ogunbanjo, and two crew members.
Investigation and cause
Investigation
According to a former National Transportation Safety Board (NTSB) investigator, clipping a power line in low visibility conditions might have been the cause of the crash. As of February 2024, the investigation is conducted by the Federal Aviation Administration and the NTSB. The final report into the accident was released on May 6 2025, which cited the cause of the accident was spatial disorientation. The probable cause of the accident was stated to be: The pilot’s decision to continue the visual flight rules flight into instrument meteorological conditions, which resulted in the pilot’s spatial disorientation and loss of control. Contributing to the accident was the company’s inadequate oversight of its safety management processes, including ensuring the pilots were accurately completing and updating the flight risk analysis, logging maintenance discrepancies, and ensuring the helicopter met Part 135 regulations before departure.
Text from the Wikipedia article “2024 Orbic Air Eurocopter EC130 crash” (revision 1344693778, retrieved 2026-09-18) by its authors, under CC BY-SA 4.0. Extracted as plain text: references, tables, images and some sections are left out. Read the article
NTSB narrative
In preparation for the Part 135 on-demand charter flight, there was no record that the pilot or safety pilot obtained a formal preflight weather briefing for the accident flight either directly from a flight services provider, through the ForeFlight application, or from a third-party vendor. No data were available to determine what weather information the pilots may have accessed using the ForeFlight application or some other source. The flight risk analysis (FRA) form the pilot completed about 4 1/2 hours before the accident flight’s departure included risk items related to maintenance, weather, duty hours, and a second pilot. Based on the form’s risk scoring criteria, the pilot’s score of 12 for the accident flight was in the company’s low risk category (the maximum score for the flight to remain in the low risk category was 15). In the days preceding the accident, the helicopter had been undergoing routine maintenance that involved work on the radar altimeter, which was a required instrument for Part 135 flight operations. About 1727 on the day of the accident, the accident pilot and a company mechanic/pilot repositioned the helicopter from the maintenance facility to the company’s flight operations base, and during the flight the accident pilot noted the radar altimeter was not functioning. During the return flight, the pilot texted the director of maintenance (DOM) about the issue. After arriving at the company’s flight operations base, the pilot discussed the issue with the company flight follower (who was also the company’s president). According to the flight follower, who also held operational control of the charter flight, during the discussions he told the pilot that the flight could not depart if the radar altimeter was not functioning. A company mechanic performed some troubleshooting on the radar altimeter; however, he was unable to rectify the issue and the radar altimeter remained non- functional. The mechanic reported that the pilots and the DOM were aware that the radar altimeter was not functioning, yet they departed at 1822 on the positioning flight to pick up the passengers. About 40 minutes later, the positioning flight landed at the airport to pick up the charter passengers. After arrival, the pilot and flight follower had a phone conversation and exchanged text messages, but they did not discuss the status of the radar altimeter or weather conditions. The accident leg departure was delayed about 50 minutes due to a passenger’s lost passport. A review of surveillance video at the fixed-based operator showed the pilots in the lobby using their cellphones; it is not known if the pilots checked the weather on their cellphones during that departure delay. In addition, the pilot did not complete an update to the FRA (which was internet accessible) while waiting at the airport. There was no evidence that the radar altimeter began functioning normally before the accident flight. During the time between the pilot completing the FRA and the accident flight leg departure, the National Weather Service issued weather updates involving the planned flight route area. The updates included lower ceilings and precipitation with rain and snow showers across the region. The accident flight departed in dark night visual flight rules (VFR) conditions and no moon illumination with a planned route to follow freeways to the destination airport. The freeway lights, vehicle lights, and various ground lights along the route of flight would have provided the light sources for VFR orientation. ADS-B and company flight tracking data showed the helicopter following the freeways at various altitudes and airspeeds toward the destination airport. About 10 miles west of the accident site, with mainly freeway vehicle lights available, the pilot began operating the helicopter at lower and slower airspeeds, deviated to the north of the freeway about 3,100 ft laterally, then returned back over the freeway. The lower altitude, slower airspeed, and deviation were likely due to encountering low ceilings and reduced visibility related to precipitation. Generally, helicopter pilots are trained to slow down and descend, if prudent, when negotiating or encountering deteriorating weather conditions. This can allow a pilot more time to safely maneuver the helicopter to avoid the conditions. The accident site area included hilly terrain that was rising on both sides of the freeway and in front of the helicopter. About 2 minutes before the accident, the helicopter’s airspeed and altitude increased, with a slight deviation to the south of the freeway. It is unclear if the pilot was attempting an inadvertent instrument meteorological conditions (IIMC) recovery maneuver. The helicopter continued the right turn for about 10 seconds when the helicopter began a rapid descent into terrain while maintaining the right turn. Witnesses, who were traveling in their vehicles, reported observing a fireball to the south of the freeway. The witnesses reported that the weather conditions in the area were not good as it was raining with a snow mix. Search and rescue efforts were difficult due to weather conditions that included low visibility, rain, snow, and high winds. The helicopter wreckage, which was highly fragmented and not survivable, was located about 1 hour and 40 minutes after the accident. Postaccident examination of the airframe, engine, rotor blades, flight controls, rotor drive, main rotor, and fenestron components identified no evidence of preimpact malfunction or failure that would have precluded normal operation. The engine displayed rotational damage signatures and resolidified metal deposits consistent with powered operation at impact. All recovered instruments, avionics, and portable/personal electronic devices sustained damage that prevented data extraction. The helicopter wreckage was consistent with a high-energy, right-side-low attitude impact with terrain. The accident pilot was trained that, to recover from entry into instrument meteorological conditions (IMC), he should first level the wings on the artificial horizon indicator, maintain heading, adjust torque and airspeed for best rate of climb, and climb to an altitude that will avoid obstacles. The gradual right turn, increased airspeed, and increased descent rate were inconsistent with the training to recover from entry into IMC. The pilot may have been susceptible to the Coriolis illusion when maintaining a constant turn if he moved his head, for example, to look from inside the cockpit to outside the cockpit. In addition, the helicopter also began to accelerate as it descended, which could have resulted in a somatogravic (false climb) illusion that led the pilot to believe the helicopter was climbing. The pilot likely experienced spatial disorientation while maneuvering the helicopter in IMC, which led to his loss of helicopter control and the resulting collision with terrain. The accident occurred at 2208; while this time is not typically associated with extreme fatigue, it is a time when melatonin is increasing, and the body is preparing for sleep. Additionally, based on information from the pilot’s fiancée, the accident occurred during a time when the pilot would normally have been sleeping. Although the pilot had only been awake about 13 hours and on duty about 8 hours at the time of the accident, given the time of day and the body’s biological desire to sleep, the role of fatigue could not be ruled out. While the exact actions of the pilot before his spatial disorientation are unknown, fatigue has been shown to reduce one’s judgement, decrease reaction time, and degrade performance, all affecting the pilot’s ability to respond to deteriorating weather conditions. Recognizing that opportunities exist to identify hazards or deficiencies before an accident occurs is a vital component of the safety management system (SMS). However, Orbic Air missed several opportunities to ensure that the flight met Federal Aviation Regulations (FAR) Part 135.160 and was being operated in a safe manner. Based on information from the company mechanic, after performing unsuccessful maintenance troubleshooting, the flight departed on the Part 91 positioning leg with an inoperative radar altimeter. Following the performed maintenance, the inoperative radar altimeter was not entered into the aircraft maintenance log as required by the company’s general operations manual (GOM) by either the pilot who identified the discrepancy or the mechanic who performed the work to rectify the discrepancy. Company management (both the president and DOM) was aware of the radar altimeter’s status; however, they failed to exercise ground and flight operational control to cancel or modify the flight. In addition, the flight-follower had an opportunity to follow up with the pilot after the Part 91 positioning leg to ensure the radar altimeter was functioning, but neither the pilot nor flight follower readdressed the issue. Postaccident review of the FRA completed by the pilot about 4 1/2 hours before the accident flight showed concerns of accuracy related to risk items involving maintenance, weather, second pilot, and duty hours. Providing some leniency in the interpretation of the second pilot and borderline duty hours after experiencing the delay, a minimum rating of 18 should have been assigned to the flight, indicating an elevated risk that required a discussion with management and consideration of risk mitigation strategies. There was no evidence the pilot updated the FRA after his initial assessment.
Probable cause
The pilot’s decision to continue the visual flight rules flight into instrument meteorological conditions, which resulted in the pilot’s spatial disorientation and loss of control. Contributing to the accident was the company’s inadequate oversight of its safety management processes, including ensuring the pilots were accurately completing and updating the flight risk analysis, logging maintenance discrepancies, and ensuring the helicopter met Part 135 regulations before departure.
Verbatim NTSB analysis and probable cause from the NTSB dataset
Sources
Wikipedia article: 2024 Orbic Air Eurocopter EC130 crash
- Revision
- 1344693778 · 2026-03-22 · retrieved 2026-09-18
- Wikidata
- Q125167243
- Licence
- Text CC BY-SA 4.0, by the article's authors; Wikidata CC0; town positions GeoNames (CC BY 4.0)
NTSB record CEN24MA111
- Event ID
- 20240210193770
- Case number
- CEN24MA111
- Dataset
- full-current
- Source SHA-256
- 5cf380f0061817c0331a6b2d8cc7e0ee3a79bea469a1001dc5c10e56f35f5ab3
Where each value comes from
- Record
- Wikipedia article "2024 Orbic Air Eurocopter EC130 crash" (page 76348516, revision 1344693778); merged with NTSB case CEN24MA111 (events / aircraft)
- Date
- NTSB record CEN24MA111: NTSB API eventDate, eventTimeUtc and eventTimeUtcOffsetHours (local date)
- Place and country
- Wikipedia infobox: site; country from NTSB record CEN24MA111
- Map position
- NTSB record CEN24MA111: events decimal coordinates
- Aircraft, operator and route
- NTSB record CEN24MA111: aircraft; gaps from Wikipedia infobox: aircraft type, registration, operator, origin and destination; route airports from the linked airport articles' Wikidata codes (OurAirports)
- Operation
- NTSB record CEN24MA111: operated under Part 135: Air Taxi & Commuter
- Fatalities
- NTSB record CEN24MA111: NTSB API totalFatal
- Ground fatalities
- NTSB record CEN24MA111: events.inj_f_grnd
- Summary
- Wikipedia infobox: summary
Source notes (3)
- One occurrence in two sources, merged: the Wikipedia article "2024 Orbic Air Eurocopter EC130 crash" and NTSB case CEN24MA111, matched by the same aircraft registration and date. For this US event the NTSB's values are used where the two differ; each value names its source.
- Filled from the NTSB case API where the bulk record had no value: local date, investigation status, cause areas. Values present in the bulk record are kept.
- The date is the local date; the NTSB stores the UTC date 2024-02-10.