El NiƱo looks to reach an intensity unprecedented in recorded history.
Characterized by warmer-than-normal sea surface temperatures in the equatorial Pacific, El NiƱo occurs every few years. Meteorological agencies and researchers around the world are on high alert because when the heat stored in the ocean is released into the atmosphere, it triggers a chain reaction that affects rainfall, temperatures, and even hurricane activity around the world.
This yearās El NiƱo has gained strength at an exceptional speed, and it will wreak havoc on everything from fisheries to ski seasons. Not all impacts are badāthe parched Southwest, for example, is likely to see more winter precipitationābut anticipating them is the key to being prepared.
What exactly is happening now, and what might happen in the coming months? Read on to understand what El NiƱo is, why this one might be a super El NiƱo, and where its impacts will be most acutely felt.
What Is El NiƱo?
Declaring an El NiƱo requires meeting a certain threshold of oceanic heat in the Pacificāspecifically, a region known as NiƱo 3.4. Itās an area that sits between NiƱo 3 and NiƱo 4 if you want to geek out even more. In plain language, itās a region in the eastern-central tropical Pacific.
The US National Oceanic and Atmospheric Administration uses the three-month average sea surface temperature of the region to determine if an El NiƱo is in effect. If the ocean is 0.5 degrees Celsius (0.9 degrees Fahrenheit) above normal for three overlapping three-month periods, itās officially an El NiƱo.
Other weather agencies do things a little differently. Japanās Meteorological Agency monitors a slightly different region using its own criteria, while the Australian Bureau of Meteorologyās threshold has an atmospheric component as well.
In addition to warmer oceans, the trade winds that blow from east to west also weaken. That allows seawater to pile up on the eastern side of the Pacific. In 1997 and 2015āwhen El NiƱo events were among the strongest on recordāsea levels rose more than 18 centimeters (7 inches) above average.
All this increases the odds of shifts in weather around the world. Thereās the aforementioned increase in rainfall in the Southwest as well as a corresponding decrease in Pacific Northwest precipitation. Atlantic hurricane season tends to be milder as well, with fewer storms.
Indonesia sees an increased risk of drought, as do parts of southern Africa. El NiƱo also tends to raise the odds of winter warmth in Japan and parts of Australia and Brazil. (We can only speak of probabilities, because El NiƱo is not the only phenomenon affecting the weather on a given day or in a given season, but the phenomenon tilts the odds.
What Is a Super El NiƱo?
āSuper El NiƱoā isnāt an official term any meteorological agency uses, but scientists generally use it to define any event where temperatures rise by at least 2 degrees Celsius above average. While thereās no standardized definition, four particular El NiƱos are ones that check the super box: 1982ā83, 1997ā98, 2015ā16, and 2023ā24.
When the Super El NiƱo occurred in 1982ā83, the Colorado River Basin in the US was hit by record-breaking heavy snowfall. Combined with high spring temperatures and rainfall, the riverās flow exceeded 1.5 times the average. Reservoirs upstream filled to capacity one after another, forcing emergency releases, and Lake Mead also reached near-capacity, causing water to overflow from the Hoover Dam spillway for the first time in about 40 years. As a result, the basin suffered significant flood damage. In other words, the impacts of El NiƱo that may be āgoodā can still lead to bad outcomes.
In 1997ā98, Indonesia was hit by the worst drought in the past half-century, while the 2023-24 super El NiƱo contributed to the worst drought in over 100 years for southern Africa. Conditions were so extreme that approximately 61 million people needed humanitarian aid.
How Is This El NiƱo Shaping Up?
There is a greater than 90 percent probability of this El NiƱo becoming āvery strongā this fall and winter, according to NOAA.
Modeling by Berkeley Earth shows that median temperatures for the NiƱo 3.4 region could reach 3.6 degrees Celsius above normalāeven after accounting for the effects of long-term global warming. This would exceed the all-time high recorded during the 2015ā16 El NiƱo by approximately 0.8 degrees Celsius. Given that the difference between the strongest and fifth-strongest El NiƱo events over the past 150 years was only about 0.5 degrees Celsius, this represents an exceptional level of warming.


