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Friday, November 14, 2031

Hybrid Solar Eclipse

Until greatest eclipse
1920days
07hrs
08min
19sec

Eclipse overview

The Hybrid solar eclipse on November 14, 2031 includes interactive UTC and local timeline data, city visibility details, and map-based viewing tools. At the greatest-eclipse reference point, the local partial phases span about 3h 30m with around 1 min in the local central phase. Coverage currently includes visibility guidance for 27 cities. Solar eclipse visibility depends on the eclipse path and your location relative to total, annular, or partial zones.

Visibility regions: Solar eclipse visibility depends on the eclipse path and your location relative to total, annular, or partial zones.

Last updated: 2026-08-12

Type
Hybrid solar
Peak (UTC)
21:06
Greatest Eclipse
-0.63°, -137.63°
Obscuration
100%
Reference-point Duration
3h 30m
Totality/Annularity at Reference Point
1 min
Visible Cities
27

A hybrid solar eclipse changes between annular and total along different portions of its narrow central path because Earth’s curved surface changes the apparent sizes of the Sun and Moon.

Greatest-point Reference Timeline

These C1–C4 times apply to the greatest-eclipse reference coordinates shown above, not to the whole world or every city.

See the eclipse in the right local time. We use your device timezone automatically, or you can choose any city, country, or timezone for your viewing plans.

StageUTC
Reference-point partial phase begins (C1)
07:22:03 PM UTC
Nov 14
11:22:03 AM
Nov 14
Reference-point totality/annularity begins (C2)
09:05:36 PM UTC
Nov 14
01:05:36 PM
Nov 14
Maximum at reference point
09:06:12 PM UTC
Nov 14
01:06:12 PM
Nov 14
Reference-point totality/annularity ends (C3)
09:06:49 PM UTC
Nov 14
01:06:49 PM
Nov 14
Reference-point partial phase ends (C4)
10:51:47 PM UTC
Nov 14
02:51:47 PM
Nov 14

An Eclipse Never Comes Alone

A solar eclipse always occurs about two weeks before or after a lunar eclipse.

FAQ

When is the hybrid solar eclipse in UTC?

Peak eclipse occurs at 21:06:12 UTC.

How can I check eclipse time in my local timezone?

Use the timeline and city visibility tables on this page to compare UTC and local eclipse times for your timezone and major cities.

Where is this eclipse visible?

Solar eclipse visibility depends on the eclipse path and your location relative to total, annular, or partial zones.

How long does this eclipse last?

At the greatest-eclipse reference point, the local partial phases span about 3h 30m, including around 1 min of totality or annularity. Times and duration differ by viewing location.

What do C1, C2, C3, and C4 mean in the eclipse timeline?

These are observer-location contacts: the precise moments when the Moon's and Sun's disks touch or separate at one place. On this page, the main C1–C4 timeline is calculated at the labeled greatest-eclipse reference point; it is not the global beginning or ending of the eclipse and it may not match your city. C1 begins the local partial phase, C2 begins local totality or annularity, C3 ends it, and C4 ends the local partial phase. A below-horizon contact is not presented as observable in city data.

What affects eclipse viewing quality?

Cloud cover, local horizon obstructions, and Moon altitude can all affect what you see. Higher Moon altitude generally improves viewing conditions for lunar eclipses.

Why is a city labeled "partial" even with very high obscuration?

Astronomers use strict definitions: "total" means the Moon completely covers the Sun (100.0%), and "partial" means anything less — even 99.9%. A city at 99.9% will see a dramatic darkening and most of the Sun hidden, but a thin sliver of sunlight remains visible around the Moon's edge. Only cities inside the narrow "path of totality" experience the full blackout, corona, and stars-in-daytime effect that makes a total eclipse extraordinary.

What's the difference between a solar and a lunar eclipse?

In a solar eclipse, the Moon passes between the Sun and Earth, casting a small, fast-moving shadow on Earth's surface. Only people inside that narrow shadow see the eclipse, which is why solar eclipses have a "path of totality." In a lunar eclipse, Earth passes between the Sun and the Moon, casting Earth's much larger shadow onto the Moon. Because the Moon is visible to everyone on the nightside of Earth at once, there's no moving shadow across the ground — everyone in the right hemisphere sees the same eclipse at the same time.

Why does the map show a shadow path?

During a solar eclipse, the Moon's shadow is relatively small and sweeps across Earth's surface at over 1,000 mph. The dark line on the map traces this shadow's path. Cities directly on this path experience the full eclipse, while those farther away see only a partial eclipse.

What does "penumbral" mean?

The penumbra is the outer, lighter part of a shadow where the light source is only partially blocked. During a penumbral lunar eclipse, the Moon passes through Earth's penumbra — the Sun is partially obscured by Earth, causing a subtle dimming of the Moon rather than the dramatic red coloring seen in a total lunar eclipse. Penumbral eclipses are often difficult to notice with the naked eye. The word comes from the Latin "paene" (almost) and "umbra" (shadow) — literally "almost shadow."

What does "umbra" mean?

The umbra is the darkest, central part of a shadow where the light source is completely blocked. During a total lunar eclipse, the Moon passes fully into Earth's umbra, causing the dramatic blood-red coloring as the only light reaching the Moon is bent and filtered through Earth's atmosphere. During a solar eclipse, the Moon's umbra is the small, dark core of its shadow — the narrow path on Earth where the Sun is completely covered. The word comes from the Latin for "shadow."

What does "totality" mean?

Totality is the phase of an eclipse where the covering body completely blocks the light source. In a total solar eclipse, totality is the awe-inspiring window — typically 1–7 minutes — when the Moon fully covers the Sun, revealing the solar corona, making stars visible in daytime, and causing a 360° sunset along the horizon. In a total lunar eclipse, totality is when the Moon is fully inside Earth's umbra and turns red or orange. Only locations directly within the path of totality (solar) or on the nightside of Earth (lunar) experience this phase.

What does "annular" mean in an eclipse?

An annular solar eclipse occurs when the Moon is near its farthest point from Earth (apogee) and appears slightly smaller in the sky than the Sun. At maximum eclipse, the Moon covers the center of the Sun but leaves a bright ring — called the "ring of fire" — visible around the Moon's edge. Unlike a total eclipse, an annular eclipse never reaches full darkness because the Sun is never completely covered. The word comes from the Latin "annulus" meaning ring.

What does "magnitude" mean for an eclipse?

Eclipse magnitude measures how much of the eclipsed body's diameter is covered at maximum eclipse. A magnitude of 1.0 means the covering body exactly matches the eclipsed body's apparent size. For solar eclipses, a magnitude greater than 1.0 produces totality; less than 1.0 produces a partial or annular eclipse. For lunar eclipses, magnitude measures how deeply the Moon enters Earth's shadow — above 1.0 means the Moon is fully inside the umbra (total eclipse). Magnitude is a dimensionless ratio of diameters, not area, so it's different from obscuration.

What does "obscuration" mean?

Obscuration is the fraction of the Sun's (or Moon's) area that is covered at any given moment, expressed as a percentage. Unlike magnitude (which measures diameter), obscuration measures the actual covered area. At 50% obscuration, half of the Sun's disk is blocked by the Moon. At 100%, the Sun is completely covered — but this only happens during totality in a total solar eclipse. In the City Visibility table, obscuration shows the maximum coverage that location will experience.

Eclipse Visibility Map

00:00 — 23:59 UTC
21:06 UTC01:06 PM UTC-8Peak eclipse
Intensity:
≥90%<100%>75%>50%>25%>0%
|
How to read
Black dot: moon shadow center
Scrubber: moves eclipse in time
Darker band = stronger eclipse
Rendered shadow-path range: --:-- to --:-- UTC
Peak: 21:06 UTC
Sun/Moon markers are subpoints (overhead positions), so they can be far from eclipse center.
|Click anywhere to check visibility

3D Globe View

Drag to rotate · Scroll to zoom
Sun subpoint Moon subpoint Shadow center Totality Partial Penumbra edge
How to read
Black dot: moon shadow center
Sun
Moon
Scrubber: moves eclipse in time
Darker band = stronger eclipse
Rendered shadow-path range: 19:30 to 22:44 UTC
Peak: 19:36 UTC
00:00 — 23:59 UTC
21:06 UTC01:06 PM UTC-8Peak eclipse

City Visibility

27 cities
CityTypeObscurationStart (local)Maximum (local)End (local)
Calipartial
78%
16:4617:4918:45
Quitopartial
67%
16:4717:4918:45
Guayaquilpartial
61%
16:4717:4918:10sunset
Havanapartial
44%
16:3817:3917:46sunset
Meridapartial
43%
15:3216:3717:18sunset
Pueblapartial
41%
15:2116:3117:33
Iztapalapapartial
39%
15:2016:3017:32
Ciudad Nezahualcoyotlpartial
39%
15:2016:3017:31
Mexico Citypartial
39%
15:1916:3017:31
Gustavo Adolfo Maderopartial
39%
15:2016:3017:31
Ecatepec De Morelospartial
39%
15:2016:3017:31
Santiago De Queretaropartial
35%
15:1816:2817:28
Leon De Los Aldamapartial
32%
15:1616:2517:26
Guadalajarapartial
32%
15:1316:2317:25
Zapopanpartial
32%
15:1316:2317:25
Callaopartial
26%
16:5817:4718:13sunset
Limapartial
25%
16:5817:4718:14sunset
Monterreypartial
22%
15:2216:2317:17
Houstonpartial
16%
15:3116:2317:11
San Antoniopartial
15%
15:2716:2017:09
Dallaspartial
10%
15:3216:1817:00
Ciudad Juarezpartial
7%
14:2015:0615:49
Tijuanapartial
4%
13:0013:4314:23
San Diegopartial
4%
13:0013:4214:22
Phoenixpartial
4%
14:1414:5315:30
Los Angelespartial
3%
13:0113:3814:12
Chicagopartial
2%
15:4716:1316:33sunset
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