🚨 Lincoln, CO: Severe Thunderstorm Warning issued September 9 at 11:31PM MDT until September 10 at 12:00AM MDT by NWS Denver CO     🚨 Adams, OH; Highland, OH; Pike, OH; Ross, OH: Flash Flood Warning issued September 10 at 1:28AM EDT until September 10 at 5:00AM EDT by NWS Wilmington OH     🚨 Montgomery: None     🚨 Cheyenne, CO: Severe Thunderstorm Warning issued September 9 at 11:27PM MDT until September 10 at 12:15AM MDT by NWS Goodland KS     🚨 Kiowa, CO: Severe Thunderstorm Warning issued September 9 at 11:26PM MDT until September 10 at 12:00AM MDT by NWS Pueblo CO     🚨 Franklin, MO; Jefferson, MO; St. Charles, MO; St. Louis, MO; Warren, MO: Flood Advisory issued September 10 at 12:25AM CDT until September 10 at 3:30AM CDT by NWS St Louis MO     🚨 Fremont, CO; Pueblo, CO: Severe Thunderstorm Warning issued September 9 at 11:24PM MDT until September 10 at 12:00AM MDT by NWS Pueblo CO     🚨 Sioux Ranger District Custer National Forest: Red Flag Warning issued September 9 at 11:23PM MDT until September 10 at 8:00PM MDT by NWS Billings MT     🚨 Gallatin National Forest; Wheatland County/Sweet Grass County; Golden Valley County/Musselshell County: Red Flag Warning issued September 9 at 11:23PM MDT until September 10 at 8:00PM MDT by NWS Billings MT     🚨 Whitefish Bay (U.S. Portion)/Whitefish Point to Point Iroquois MI: Small Craft Advisory issued September 10 at 1:16AM EDT until September 10 at 12:00PM EDT by NWS Gaylord MI    

Active Tropical Systems & Formation Outlook

A whole-basin summary of all active tropical cyclones and the NHC Tropical Weather Outlook, generated with the tropycal package. Select a storm below for its official forecast and model guidance.

Summary & NHC 7-Day Formation Outlook

Valid: 05 UTC 10 Sep 2026

Active storms summary

Select a Storm

LOWELL (EP122026)

Type: TS Max Wind: 45 kt Min Pressure: 991 hPa Position: 29.1, -164.4 Basin: East Pacific

FOURTEEN (EP142026)

Type: TD Max Wind: 30 kt Min Pressure: 1006 hPa Position: 16.3, -116.1 Basin: East Pacific
ZCZC MIATCDEP4 ALL TTAA00 KNHC DDHHMM Tropical Depression Fourteen-E Discussion Number 2 NWS National Hurricane Center Miami FL EP142026 800 PM PDT Wed Sep 09 2026 There has been no significant increase in the overall organization of the tropical cyclone over the past several hours. The system is producing vigorous deep convection well east of the estimated center location with cloud tops to -80 deg C or colder. These heavy showers and thunderstorms are not very well organized with little evidence of convective banding at this time. There is some westerly shear over the depression since the low-level center is near the western edge of the main cloud mass. Given that the system has not become much better organized since the previous advisory, the intensity is held at 30 kt for now. This is just a little below the subjective Dvorak estimate. The center appears to have reformed in the low-level vorticity maximum on the northern side of the broad circulation, and is a little to the north of the previous track. A mid-tropospheric ridge should prevail to the north of the system for the next several days, which should keep the cyclone moving on a generally westward track. Late in the forecast period, the ridge shifts westward and builds a little. This could result in a gradual turn to the left around day 5. The official forecast is a little north of the previous NHC track and is close to the latest corrected consensus, HCCA, guidance. The system is expected to be in a reasonably conductive environment for intensification in a few days. However, the current westerly shear could be an impediment to short-term strengthening. Also, some arc clouds have been seen emanating from the cyclone on visible satellite imagery, which is usually indicative of the presence of some dry mid-level air. However, these negative factors are expected to be short-lived, and the system is forecast to strengthen and eventually become a hurricane. The official intensity forecast is similar to the simple and corrected consensus intensity model predictions and is the same as in the previous advisory. FORECAST POSITIONS AND MAX WINDS INIT 10/0300Z 16.4N 116.6W 30 KT 35 MPH 12H 10/1200Z 16.7N 118.5W 35 KT 40 MPH 24H 11/0000Z 16.8N 121.1W 40 KT 45 MPH 36H 11/1200Z 16.8N 123.6W 45 KT 50 MPH 48H 12/0000Z 16.7N 126.0W 55 KT 65 MPH 60H 12/1200Z 17.0N 128.3W 60 KT 70 MPH 72H 13/0000Z 17.4N 129.8W 65 KT 75 MPH 96H 14/0000Z 18.0N 133.2W 70 KT 80 MPH 120H 15/0000Z 18.1N 136.8W 75 KT 85 MPH $$ Forecaster Pasch NNNN

ECMWF 10-m Streamlines

This map visualizes near-surface winds from the ECMWF operational model using streamlines — continuous curves that show the direction of the wind at every point. Streamlines help us visually detect patterns of atmospheric flow, such as jets, troughs, and areas of rotation.

Forecasters at the NHC monitor 10-meter wind fields for signs of a closed low-level circulation — a common feature of early tropical cyclone formation. When streamlines wrap into a tight, circular pattern and form a closed loop, it may signal that a system is transitioning from a disorganized disturbance into a structured cyclone.

This early organization of wind flow is a key threshold in classifying an area as a potential tropical cyclone. While other ingredients like convection and mid-level humidity are also necessary, closed low-level circulation is often the first structural milestone forecasters look for.

Look for small, circular loops in the streamlines over oceanic regions — especially where other environmental factors also align for storm formation.

Streamline Wind Map

ECMWF Predictions

No active storm found in ECMWF data at this time.

Environmental Indicators

Hypothetical TC Drift Paths

This map displays hypothetical tropical cyclone (TC) paths projected from genesis-favorable zones identified by an environmental mask. These paths are computed using the Emanuel Beta and Advection Model, a physically based framework that estimates the motion of nascent cyclones by combining steering-level winds and planetary rotation effects.

The model blends winds from two critical pressure levels — 850 hPa (lower troposphere) and 250 hPa (upper troposphere) — weighted toward the lower level where most of a tropical cyclone's mass resides. It also incorporates a background component associated with beta drift, which arises from the variation of the Coriolis force with latitude.

Each pink trajectory represents a storm initialized from a grid cell where all five environmental thresholds were favorable: high CAPE, low vertical wind shear, high mid-level humidity, warm SSTs, and positive low-level vorticity. Arrows darken with time, tracing the cyclone’s evolution in 6-hour steps. These tracks can move over land given the steering winds, but in reality these storms weaken quickly when no longer over warm water. This means the tracks that move over significant would likely die out quickly and are not well represented in this model.

Hypothetical storms often drift westward and poleward, steered by large-scale tropical flow and Earth's rotation — this helps forecasters anticipate where early-stage disturbances might evolve into organized storms.

TC Drift Path Map

Pressure & Rainfall (hPa)

This chart shows 24-hour forecasts of surface pressure (in hPa) and precipitation (in mm) for select U.S. cities. The data comes from the Open-Meteo API, which sources its predictions from high-resolution numerical weather models like ICON (from the German Weather Service) and ECMWF's IFS. These are advanced general circulation models (GCMs) that solve physical equations governing the atmosphere — including thermodynamics, fluid motion, and radiation — to simulate and forecast future states of weather.

A sudden drop in pressure may signal the approach of a developing storm system. Increasing rainfall intensity often tracks with tropical activity or frontal systems. These paired indicators help visualize evolving atmospheric instability and potential hazards.

NBDC Gulf Buoy Data

This data comes from the National Data Buoy Center (NDBC), a division of NOAA responsible for monitoring ocean and atmospheric conditions using moored buoys, coastal stations, and drifting floats. These sensors play a vital role in tracking tropical cyclone development by recording variables like wind speed, barometric pressure, air & sea surface temperatures, and wave height — all of which help determine storm structure and intensification.

A sudden drop in sea-level pressure or a spike in wind gusts can signal rapid cyclone strengthening. Water temperature above ~26°C is a key fuel source for tropical cyclones. Wave and swell height give insight into the storm’s reach and energy transfer across the ocean. Monitoring these in real time helps improve forecasts and early warnings.

Wind: S (190°), 5.8 kt   |   Gust: 7.8 kt

Pressure: 30.04 rising   |   Air Temp: 86.0 °F

Water Temp: 88.9 °F   |   Dew Point: 78.4 °F

Swell: 1.3 ft   |   Wind Wave: 0.7 ft

NWS U.S. Radar

The National Weather Service (NWS) collects radar data using the NEXRAD (Next Generation Radar) network — a nationwide system of over 150 high-resolution Doppler radar stations. Radar works by emitting pulses of energy that bounce off precipitation (like raindrops, hail, or snow) and return to the radar dish. Doppler radar not only detects the location and intensity of storms, but also their motion — by measuring shifts in frequency caused by movement of particles toward or away from the radar site. This allows meteorologists to spot rotating storms and potential tornadoes in real time.

US National Radar Loop

GOES 15-min Satellite

The GOES (Geostationary Operational Environmental Satellite) system is operated by NOAA and provides continuous weather observation over the Americas. Orbiting 22,300 miles above Earth, GOES satellites deliver high-resolution imagery every 15 minutes, helping track tropical systems, cloud formation, and atmospheric motion in real time. The Geocolor imagery shown here combines visible and infrared data to highlight clouds, land, and sea in a natural-looking format.

Satellite

GOES Band 13 – Infrared (IR) Imagery

Band 13 (10.3 µm) is one of the most important infrared channels for tropical meteorology, measuring emitted radiation from cloud tops. Colder colors (red, yellow) signal deep convection, where strong thunderstorms punch through the upper atmosphere. These features often indicate the early stages of tropical cyclone formation.

GOES IR Band 13

Most recent GOES Band 13 image. Provided by NOAA/NESDIS/STAR.