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Tide

earth science Maturity 7-9

The ocean water moves up and down.

Tide coming in at St. Simons, Georgia, US.webm
Tide coming in at St. Simons, Georgia, US.webm
This is called a tide. The Moon pulls on the water. It makes the sea rise and fall. This happens every day. Can you see the water move?
Atlantic coast at low tide, Bar Harbor IMG 2262.JPG
Atlantic coast at low tide, Bar Harbor IMG 2262.JPG

52 words

The ocean water moves up and down.

Tide coming in at St. Simons, Georgia, US.webm
Tide coming in at St. Simons, Georgia, US.webm
This is called a tide. The Moon pulls on the water. It makes the sea rise and fall.

Water rises to a high tide.

Tide and Moon.jpg
Tide and Moon.jpg
Then the water falls to a low tide. This happens about twice every day.

Sometimes the Sun helps the Moon. The Sun and Moon line up. This makes a big spring tide. The water moves a lot.

Other times the Sun and Moon are apart. This makes a small neap tide. The water does not move much.

It is fun to watch the sea change.

Atlantic coast at low tide, Bar Harbor IMG 2262.JPG
Atlantic coast at low tide, Bar Harbor IMG 2262.JPG
The tides are always moving.

121 words

Tides are the rise and fall of the sea.

Tide coming in at St. Simons, Georgia, US.webm
Tide coming in at St. Simons, Georgia, US.webm
This happens because of gravity. The Moon and the Sun pull on Earth. The Moon has a very strong pull. It pulls on the ocean water. This pull stretches the water out.
Tidal field and gravity field.svg
Tidal field and gravity field.svg
As Earth spins, different places feel this pull. This makes the water move up and down. Most places have two high tides each day. They also have two low tides each day.
Tide type.svg
Tide type.svg

Sometimes the tides are very big. This is called a spring tide. It happens when the Sun, Moon, and Earth form a line. The Sun's pull helps the Moon's pull. This makes the high tides higher. It also makes the low tides lower.

Other times the tides are small. This is called a neap tide. It happens when the Sun and Moon are at a right angle. The Sun's pull fights the Moon's pull. This makes the water move less.

Tide terms.png
Tide terms.png
The Moon's distance also matters. When the Moon is closest to Earth, tides get bigger. This is called perigee.
Bangchuidao Island.JPG
Bangchuidao Island.JPG

191 words

Tides are the rhythmic rise and fall of sea levels across our planet.

Tide coming in at St. Simons, Georgia, US.webm
Tide coming in at St. Simons, Georgia, US.webm
This movement happens because of gravitational forces from the Moon and the Sun. The Moon has a very strong pull on our oceans. This pull creates a bulge in the water. Because the Earth rotates, different parts of the coast feel this pull at different times.
Tidal field and gravity field.svg
Tidal field and gravity field.svg
This creates a cycle of high and low water. These cycles are important for understanding how our oceans move and change.

To understand how it works, imagine the Moon pulling on the Earth. The gravitational field is stronger on the side of the Earth facing the Moon. This pulls the water toward the Moon, creating a high tide. On the opposite side of the Earth, the water bulges too. This happens because the Moon pulls the solid Earth away from the water.

Tidal circularization figure1.svg
Tidal circularization figure1.svg
As the Earth spins, a specific location moves through these bulges. This causes the sea level to rise and fall. Most places experience two high tides and two low tides every day. This pattern is called a semi-diurnal tide.
Tide type.svg
Tide type.svg

Different types of tides happen depending on where the Sun and Moon are. About twice a month, the Sun, Moon, and Earth form a straight line. This setup is called a syzygy. During a syzygy, the Sun's gravity helps the Moon's gravity. This creates a spring tide, where high tides are very high and low tides are very low.

Tide terms.png
Tide terms.png
When the Sun and Moon are at a right angle, we see neap tides. The word "neap" comes from an old word meaning "without power." During these times, the Sun's pull partially cancels the Moon's pull. This results in much smaller changes in the water level.

Scientists use many tools and names to track these changes. They use tide gauges at fixed stations to measure water levels. These measurements are compared to a reference called mean sea level.

Water surface level changes with tides.svg
Water surface level changes with tides.svg
There are many specific levels to know, like the highest astronomical tide. This is the highest tide that can be predicted to happen. The Moon's distance also changes how strong the tides are. When the Moon is at perigee, it is closest to Earth. This makes the tidal range much larger.
Bangchuidao Island.JPG
Bangchuidao Island.JPG

Tides do more than just move ocean water. The gravitational pull is so strong it even affects the solid Earth. This movement is called an Earth tide. It can move the ground up and down by a few centimeters.

M2 tidal constituent.jpg
M2 tidal constituent.jpg
Gravity even affects the air, creating something called an atmospheric tide. These tides change the pressure and wind patterns in our sky. You can see the effects of tides every time you visit a beach. The way the water moves is a constant link between our world and the space around us.

490 words

Tides are the periodic rise and fall of sea levels across the globe. This phenomenon results from differential gravitational forces exerted primarily by the Moon and the Sun. These forces combine with inertial effects from the Earth–Moon system's orbital motion and the Earth's rotation. While astronomical forces generate the fundamental tidal potential, local factors strongly modify what we actually observe. These terrestrial factors include the geometry of ocean basins, continental boundaries, and bathymetry, which is the study of underwater depth. Other influences include the Coriolis effect, frictional dissipation in shallow seas, and the tidal resonance of coastlines.

tide overview.svg
tide overview.svg

To understand the mechanism, we must look at how gravity acts on a sphere. The gravitational field created by the Moon weakens with distance. Therefore, the Moon exerts a slightly stronger force on the side of the Earth facing it. This pulls the water toward the Moon, creating a high tide. On the opposite side of the Earth, a second bulge occurs. This happens because the Moon pulls the solid Earth away from the water. The Moon essentially "stretches" the Earth along the line connecting the two bodies.

Tidal field and gravity field.svg
Tidal field and gravity field.svg
While the solid Earth deforms slightly, the fluid ocean moves much more easily. As the Earth rotates, the magnitude and direction of this tidal force change constantly. This causes the rhythmic changes in sea surface height we call tides.
Tidal circularization figure1.svg
Tidal circularization figure1.svg

Tidal cycles consist of four distinct stages. First, the water stops falling and reaches a local minimum called low tide. Next, the sea level rises over several hours, a process known as flooding. This covers the intertidal zone, which is the area between high and low water. The water then stops rising and reaches a local maximum called high tide. Finally, the sea level falls over several hours, a process called ebbing.

Tide type.svg
Tide type.svg
The oscillating currents produced by these movements are known as tidal streams or tidal currents. When the current ceases, it is called slack water or slack tide. This moment of slack water usually occurs near high or low water.

Tides are categorized by their frequency and patterns. Most locations experience semi-diurnal tides, which feature two high and two low waters each day. Some areas see mixed semi-diurnal tides, where the two daily high waters have different heights. Others experience diurnal tides, which consist of only one tidal cycle per day. The difference between the two high waters in a day is called daily inequality. This inequality is generally small when the Moon is positioned over the Equator.

Diurnal tide types map.jpg
Diurnal tide types map.jpg

The magnitude of tides changes in a two-week cycle based on the Moon's phase. Approximately twice a month, the Sun, Moon, and Earth form a straight line. This configuration is known as a syzygy. During a syzygy, the solar tidal force reinforces the lunar force. This results in a spring tide, which features the maximum tidal range. Spring tides produce higher high waters and lower low waters than average.

Tide terms.png
Tide terms.png
Conversely, when the Sun and Moon are at a 90-degree angle, known as quadrature, we see neap tides. The term "neap" is an Anglo-Saxon word meaning "without the power." During neap tides, the solar force partially cancels the Moon's force, resulting in milder conditions.
Tide schematic.svg
Tide schematic.svg

Scientists use specific reference levels to measure these changes accurately. These include the Highest Astronomical Tide (HAT), the highest tide predicted to occur. They also use Mean Sea Level (MSL), which is the constant average sea level for a location. Other levels include Mean High Water Springs (MHWS) and Lowest Astronomical Tide (LAT). To track these, tide gauges at fixed stations measure water levels over time. These gauges ignore short variations like waves that last less than a few minutes.

Water surface level changes with tides.svg
Water surface level changes with tides.svg

Tidal forces act on the entire Earth system, not just the oceans. In the Earth's crust, these forces produce vertical displacements of centimeters called Earth tides. In the atmosphere, gravitational forcing and solar heating create atmospheric tides. These are observed as oscillations in pressure, density, and wind patterns. Furthermore, the distance between the Moon and Earth affects height. When the Moon is at perigee, it is closest to Earth, increasing the tidal range. At apogee, the Moon is farthest away, and the range shrinks.

M2 tidal constituent.jpg
M2 tidal constituent.jpg

719 words
🖼️ Images & Media (27)
File:tide overview.svg
tide overview.svg
File:Tidal circularization figure1.svg
Tidal circularization figure1.svg
File:Tide and Moon.jpg
Tide and Moon.jpg
Tide St. Simons, GA 2018.webm
Tide coming in at St. Simons, Georgia, US.webm
File:Tide terms.png
Tide terms.png
File:Tide schematic.svg
Tide schematic.svg
Global surface elevation of M2 ocean tide.webm
File:Tide type.svg
Tide type.svg
File:Bangchuidao Island.JPG
Bangchuidao Island.JPG
File:Negative low tide at Ocean Beach 1.jpg
Negative low tide at Ocean Beach 1.jpg
File:Atlantic coast at low tide, Bar Harbor IMG 2262.JPG
Atlantic coast at low tide, Bar Harbor...

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