🚨 Navajo, AZ: Flash Flood Warning issued September 13 at 5:27PM MST until September 13 at 8:30PM MST by NWS Flagstaff AZ     🚨 Western Schenectady; Eastern Schenectady; Southern Saratoga; Western Albany; Eastern Albany: Special Weather Statement issued September 13 at 8:25PM EDT by NWS Albany NY     🚨 Montgomery: None     🚨 Cascade County below 5000ft; Gates of the Mountains; Little Belt and Highwood Mountains: Special Weather Statement issued September 13 at 6:22PM MDT by NWS Great Falls MT     🚨 Tidal Potomac from Key Bridge to Indian Head MD; Tidal Potomac from Indian Head to Cobb Island MD: Marine Weather Statement issued September 13 at 8:21PM EDT by NWS Baltimore MD/Washington DC     🚨 Dallam; Hartley; Oldham; Deaf Smith: Special Weather Statement issued September 13 at 7:17PM CDT by NWS Amarillo TX     🚨 St. Helena, LA; Tangipahoa, LA; Washington, LA; Amite, MS; Pike, MS: Severe Thunderstorm Warning issued September 13 at 7:16PM CDT until September 13 at 7:45PM CDT by NWS New Orleans LA     🚨 Northern Saratoga; Western Schenectady; Eastern Schenectady; Southern Saratoga: Special Weather Statement issued September 13 at 8:16PM EDT by NWS Albany NY     🚨 Mohave, AZ: Flood Advisory issued September 13 at 5:15PM PDT until September 13 at 8:15PM PDT by NWS Las Vegas NV     🚨 Northwest Pinal County; West Pinal County: Special Weather Statement issued September 13 at 5:14PM MST by NWS Phoenix AZ    

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: 00 UTC 14 Sep 2026

Active storms summary

Select a Storm

NORBERT (EP142026)

Type: TS Max Wind: 40 kt Min Pressure: 1002 hPa Position: 18.9, -134.6 Basin: East Pacific
ZCZC MIATCDEP4 ALL TTAA00 KNHC DDHHMM Tropical Storm Norbert Discussion Number 17 NWS National Hurricane Center Miami FL EP142026 1100 AM HST Sun Sep 13 2026 Visible satellite imagery indicates that Norbert’s center has become exposed. The bulk of the convection is located on the south and east sides of the storm. Water vapor imagery shows that a good amount of dry air has penetrated into the core of the cyclone. The latest TAFB Dvorak fix estimated the intensity around 45 kt and the objective intensity estimates from UW-CIMSS are in the range of 32-39 kt. In addition, recent ASCAT pass shows that the strongest winds close to the center were around 37 kt. Therefore, the initial intensity has been lowered to 40 kt for this advisory. The initial motion is estimated to be 290/11 kt. The storm is expected to move west-northwestward to westward as it moves to the south of a low- to mid-level subtropical ridge. The track guidance continues to have good agreement on the general heading for this storm. The current NHC track forecast has been nudged slightly to north of the previous forecast track and remains close to the corrected multi-model consensus (HCCA) and the Google DeepMind (GDMI) ensemble mean. More fluctuations in intensity are possible in the short term as Norbert remains in a marginal environment. The cyclone continues to contend with mid-level dry air intrusions and light west- southwesterly vertical wind shear. After 12 h, the wind shear is expected to increase, which should result in a gradual weakening. Around 60 h, the simulated GFS and ECMWF satellite imagery shows that the cyclone should lose organized deep convection and it is therefore expected to become a post-tropical remnant low and then dissipate by around 72 h. The current NHC intensity forecast remains in line with the latest guidance including the HCCA and GDMI consensus guidance. FORECAST POSITIONS AND MAX WINDS INIT 13/2100Z 18.8N 134.0W 40 KT 45 MPH 12H 14/0600Z 19.2N 136.0W 40 KT 45 MPH 24H 14/1800Z 19.7N 138.6W 35 KT 40 MPH 36H 15/0600Z 20.2N 141.4W 35 KT 40 MPH 48H 15/1800Z 20.7N 144.0W 30 KT 35 MPH 60H 16/0600Z 20.8N 146.9W 25 KT 30 MPH...POST-TROP/REMNT LOW 72H 16/1800Z...DISSIPATED $$ Forecaster Katz/Brown NNNN

FIFTEEN (EP152026)

Type: TD Max Wind: 30 kt Min Pressure: 1006 hPa Position: 17.3, -116.7 Basin: East Pacific
ZCZC MIATCDEP5 ALL TTAA00 KNHC DDHHMM Tropical Depression Fifteen-E Discussion Number 1 NWS National Hurricane Center Miami FL EP152026 200 PM PDT Sun Sep 13 2026 Deep convection became more persistent overnight and this morning in association with the area of low pressure (EP97) located southwest of the southern tip of the Baja Peninsula. The system is being affected by moderate west-northwesterly shear, and the center has recently become exposed to the northwest of the area of deep convection. Regardless of the exposed center, subjective Dvorak T-numbers increased to T1.5 at 18z with data T-numbers slightly higher. Therefore, advisories are being initiated on a 30-kt tropical depression. The environment ahead of the depression is not expected to be conducive for significant strengthening. However, most of the intensity guidance calls for the system to reach tropical storm strength within the next day or so. By 48 hours, continued moderate shear and drier mid-level air are expected to cause gradual weakening. Simulated satellite imagery from the GFS and ECMWF show the deep convection waning in 3 to 4 days and the system is likely to become a remnant low during that time. The global models indicate that the system will become an open trough before the end of the 5-day forecast period, and the official forecast follows suit. The depression is moving generally westward or 260/7 kt. A mid-level ridge to the north and northwest of the system is expected to steer it south of due west during the next few days. The guidance suggests the forward speed will increase, especially toward the end of the period when the cyclone weakens and becomes even more vertically shallow. The NHC forecast follows the faster solutions of the typically reliable GDM and HCCA consensus aids. FORECAST POSITIONS AND MAX WINDS INIT 13/2100Z 17.2N 117.2W 30 KT 35 MPH 12H 14/0600Z 17.0N 118.2W 35 KT 40 MPH 24H 14/1800Z 16.7N 119.8W 35 KT 40 MPH 36H 15/0600Z 16.5N 121.6W 35 KT 40 MPH 48H 15/1800Z 16.4N 123.6W 30 KT 35 MPH 60H 16/0600Z 16.3N 125.7W 30 KT 35 MPH 72H 16/1800Z 16.1N 128.1W 30 KT 35 MPH 96H 17/1800Z 16.0N 133.0W 25 KT 30 MPH...POST-TROP/REMNT LOW 120H 18/1800Z...DISSIPATED $$ Forecaster Brown 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: E (90°), 3.9 kt   |   Gust: 7.8 kt

Pressure: 30.01 steady   |   Air Temp: 88.0 °F

Water Temp: 89.6 °F   |   Dew Point: 80.2 °F

Swell: 1.0 ft   |   Wind Wave: 1.0 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.