Nonstop flight route between Ängelholm, Sweden and Shafter, California, United States:
Departure Airport:

Arrival Airport:

Distance from AGH to MIT:
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- About this route
- AGH Airport Information
- MIT Airport Information
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- Map of Furthest Airports from AGH
- List of Furthest Airports from AGH
- Map of Nearest Airports to MIT
- List of Nearest Airports to MIT
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- List of Furthest Airports from MIT
About this route:
A direct, nonstop flight between Ängelholm–Helsingborg Airport (AGH), Ängelholm, Sweden and Shafter Airport (MIT), Shafter, California, United States would travel a Great Circle distance of 5,499 miles (or 8,850 kilometers).
A Great Circle is the shortest distance between 2 points on a sphere. Because most world maps are flat (but the Earth is round), the route of the shortest distance between 2 points on the Earth will often appear curved when viewed on a flat map, especially for long distances. If you were to simply draw a straight line on a flat map and measure a very long distance, it would likely be much further than if you were to lay a string between those two points on a globe. Because of the large distance between Ängelholm–Helsingborg Airport and Shafter Airport, the route shown on this map most likely appears curved because of this reason.
Try it at home! Get a globe and tightly lay a string between Ängelholm–Helsingborg Airport and Shafter Airport. You'll see that it will travel the same route of the red line on this map!
Departure Airport Information:
IATA / ICAO Codes: | AGH / ESTA |
Airport Names: |
|
Location: | Ängelholm, Sweden |
GPS Coordinates: | 56°17'45"N by 12°50'49"E |
Area Served: | Northwestern Skåne |
Operator/Owner: | PEAB |
Airport Type: | Public |
Elevation: | 68 feet (21 meters) |
# of Runways: | 1 |
View all routes: | Routes from AGH |
More Information: | AGH Maps & Info |
Arrival Airport Information:
IATA / ICAO Codes: | MIT / KMIT |
Airport Names: |
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Location: | Shafter, California, United States |
GPS Coordinates: | 35°30'20"N by 119°11'30"W |
Area Served: | Shafter, California |
Operator/Owner: | Minter Field Airport District |
Airport Type: | Public |
Elevation: | 424 feet (129 meters) |
# of Runways: | 2 |
View all routes: | Routes from MIT |
More Information: | MIT Maps & Info |
Facts about Ängelholm–Helsingborg Airport (AGH):
- Because of Ängelholm–Helsingborg Airport's relatively low elevation of 68 feet, planes can take off or land at Ängelholm–Helsingborg Airport at a lower air speed than at airports located at a higher elevation. This is because the air density is higher closer to sea level than it would otherwise be at higher elevations.
- Ängelholm–Helsingborg Airport (AGH) currently has only 1 runway.
- The furthest airport from Ängelholm–Helsingborg Airport (AGH) is Chatham Islands (CHT), which is located 11,482 miles (18,479 kilometers) away in Waitangi, Chatham Islands, New Zealand.
- The closest airport to Ängelholm–Helsingborg Airport (AGH) is Halmstad Airport (HAD), which is located 27 miles (44 kilometers) N of AGH.
- In addition to being known as "Ängelholm–Helsingborg Airport", another name for AGH is "Ängelholm–Helsingborg flygplats".
Facts about Shafter Airport (MIT):
- The furthest airport from Shafter Airport (MIT) is Pierrefonds Airport (ZSE), which is located 11,404 miles (18,353 kilometers) away in Saint-Pierre, Réunion.
- The closest airport to Shafter Airport (MIT) is Meadows Field (BFL), which is located only 9 miles (15 kilometers) ESE of MIT.
- With the relative completion of construction in July 1942, the airfield was renamed Minter Field Army Airfield a member of the locally prominent Minter family.
- The name was derived from close proximity to the highway of the same name.
- The primary aircraft flown at Minter Field was the Vultee BT-13 Valiant, which was used for basic flight training.
- Shafter Airport (MIT) has 2 runways.
- In addition to being known as "Shafter Airport", another name for MIT is "Minter Field".
- Because of Shafter Airport's relatively low elevation of 424 feet, planes can take off or land at Shafter Airport at a lower air speed than at airports located at a higher elevation. This is because the air density is higher closer to sea level than it would otherwise be at higher elevations.