Wisconsin tornado and meteotsunami events on Lake Winnebago highlight rare weather phenomena that captivate meteorologists and residents alike. On Monday, a powerful EF3 tornado carved a 12-mile path through Appleton and Menasha, while a meteotsunami caused water levels to drop and surge dramatically. These twin events underscore the complexity of atmospheric and hydrological interactions.
The Wisconsin Tornado: A Rare EF3 Strike
The tornado that hit north-east Wisconsin lasted 26 minutes, leaving a trail of destruction that destroyed several homes but resulted in only a few injuries. The National Weather Service classified it as an EF3 tornado, the fourth of that strength in Wisconsin during 2026—the highest annual count since 1984. This rarity makes the event particularly significant for weather researchers.
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EF3 tornadoes are uncommon in this region, and their occurrence in the afternoon likely reduced casualties, as many residents were at work. The tornado dissipated over Lake Winnebago, adding to the day's meteorological drama.
What Causes an EF3 Tornado?
An EF3 tornado has wind speeds between 136 and 165 mph, capable of severe structural damage. They form from supercell thunderstorms when wind shear and instability align. In Wisconsin, such tornadoes are more typical in the southern plains, making this event a notable outlier.
Meteotsunami on Lake Winnebago: A Rare Lake Phenomenon

Simultaneously, a meteotsunami struck Lake Winnebago, caused not by wind but by air pressure disturbances from severe thunderstorms. These pressure changes generate waves with long wavelengths, lasting minutes to hours, similar to ocean tsunamis. The meteotsunami caused water levels to fall by about 60cm (2ft) before surging back, startling onlookers and scientists.
Unlike ordinary lake waves, meteotsunamis are rare and often underreported. They require specific atmospheric conditions, making them a fascinating subject for study.
How Meteotsunamis Differ from Wind Waves
| Feature | Wind Waves | Meteotsunamis |
|---|---|---|
| Cause | Wind friction | Air pressure changes |
| Wavelength | Short (seconds) | Long (minutes to hours) |
| Duration | Brief | Extended |
| Occurrence | Common | Rare |
Other Extreme Weather Events: Hurricanes and Typhoons
In the Pacific, Hurricane Genevieve intensified to category 5, while Typhoon Dolphin became a super typhoon. Both systems rapidly strengthened, with Genevieve tracking north-westwards and weakening without landfall. Dolphin may hit southern Japan or Taiwan, posing potential threats.
Europe's Heatwave Continues
Europe is enduring a prolonged heatwave, with temperatures soaring in Austria, Hungary, and Bosnia. The heat is expected to shift eastwards, offering little relief to affected regions.
Key Takeaways from These Rare Weather Events
- Wisconsin's EF3 tornado is the fourth of its kind in 2026, a record since 1984.
- Meteotsunamis are caused by air pressure disturbances, not wind.
- Both events occurred on the same day, highlighting weather's unpredictability.
- Afternoon tornado timing reduced injuries significantly.
- Pacific storms show rapid intensification trends.