Hurricane Intelligence Florida: Florida impacts and ENSO, 1851 to present. A JnGmedia property.

Phase vs Phase, 1950-2025 (ONI coverage)

ENSO Laboratory

What Even Is El Nino?

You cannot turn on the news during hurricane season without hearing "El Nino this" or "La Nina that" -- but almost nobody ever explains what the words actually mean. Here is the real answer.

The Pacific pattern starts it; the wind shear it creates over the Caribbean and Atlantic is what actually decides whether a storm gets torn apart or left free to strengthen. The pattern itself travels -- the ocean water stays put in the Pacific. Tap to enlarge.

Steady winds called trade winds normally blow across the Pacific Ocean from east to west, all the way from South America to Asia. Think of it like blowing across a bowl of soup -- it pushes the warm broth toward the far side of the bowl. That is what the trade winds do to the ocean: they pile up warm water on the western side of the Pacific, near Asia and Australia, while cooler water rises up to replace it on the eastern side, near South America.

El Nino happens when those trade winds weaken. With less wind pushing it west, the warm water that was piled up near Asia sloshes back east, toward South America -- like letting go of that bowl of soup and watching it settle back to level.

La Nina is the opposite: the trade winds get stronger than normal, piling up even more warm water in the west and pulling up even more cold water in the east.

Neutral -- the most common state of the three -- is just... normal. Neither extreme. The soup sitting still.

Scientists call the whole system ENSO -- El Nino Southern Oscillation -- because there is a second half to the story: air pressure over the Pacific rises and falls in a seesaw pattern that mirrors the water temperature. That seesaw is actually the part that reaches all the way to Florida, thousands of miles from the Pacific -- not the warm water itself.

Here is the piece that matters most for this whole page: El Nino tends to increase wind shear over the Atlantic and Caribbean -- strong winds blowing at different speeds and directions at different altitudes, which can literally rip a forming hurricane apart before it gets organized. La Nina relaxes that shear, giving storms a clear, calm path to build and strengthen. That one mechanism is why the numbers below skew the way they do.

How do we know which phase we are in? NOAA tracks it with the Oceanic Nino Index (ONI), a running measure of Pacific sea-surface temperature. That record only goes back to 1950, which is why the comparison below is scoped to 1950-present.

The Numbers

Head-to-head comparison of the three ENSO phases across every hurricane season from 1950 to 2025. Raw counts alone mislead when the phases occur unequally often, so each column also shows how many total seasons that phase produced, and the share that brought Florida a hurricane. Storms before 1950 predate the ONI record and are listed in the Timeline without a phase.

El Nino

22 seasons in phase

FL impact seasons7 of 22 (32%)

95% confidence: 16.4–52.7% -- a modest sample size means this rate could plausibly sit anywhere in that range, not just at the 32% point estimate.

FL hurricanes11
Center landfalls9
Major impacts (Cat 3+)6
Gulf vs Atlantic8 / 3
Gulf 73%Atlantic 27%

La Nina

18 seasons in phase

FL impact seasons7 of 18 (39%)

95% confidence: 20.3–61.4% -- a modest sample size means this rate could plausibly sit anywhere in that range, not just at the 39% point estimate.

FL hurricanes11
Center landfalls10
Major impacts (Cat 3+)3
Gulf vs Atlantic5 / 6
Gulf 45%Atlantic 55%

Neutral

36 seasons in phase

FL impact seasons12 of 36 (33%)

95% confidence: 20.2–49.7% -- a modest sample size means this rate could plausibly sit anywhere in that range, not just at the 33% point estimate.

FL hurricanes22
Center landfalls17
Major impacts (Cat 3+)9
Gulf vs Atlantic14 / 8
Gulf 64%Atlantic 36%

Approach side is derived from the HURDAT2 track by a documented heuristic, not a NOAA-published field; see the methodology.

The 95% confidence range on each FL impact rate uses a Wilson score interval -- the standard textbook choice for a proportion at a modest sample size (dozens of seasons, not thousands), and one that never produces a nonsense bound below 0% or above 100% the way a plain +/- margin can. It answers "how much could this rate plausibly move with a few more or fewer seasons of data," not a claim about causation.

Storms Behind the Numbers

11 storms match.

SeasonStormENSOFL MonthRegionsApproachPeak CatMin P (mb)LandfallJoin
2023IdaliaEl NinoAugNW3gulf4942yesname_match
2018MichaelEl NinoOctNW5gulf5919yesname_match
2004JeanneEl NinoSepSE3 SW1 NW1atlantic3950yesname_match
2004IvanEl NinoSepNW3gulf5910noname_match
2004FrancesEl NinoSepSE2 SW1atlantic4935yesname_match
2004CharleyEl NinoAugSW4 SE1 NE1gulf4941yesname_match
1987FloydEl NinoOctSW1gulf1993yesname_match
1972AgnesEl NinoJunNW1gulf1977noname_match
1965BetsyEl NinoSepSE3 SW3atlantic4942yesname_match
1953HazelEl NinoOctSW1gulf1989yesname_match
1953FlorenceEl NinoSepNW1gulf3968yesname_match

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The export carries every column above plus join confidence, pressure differences, and provenance fields, so the numbers can be verified independently.

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