The sun comes up in the morning. 
Sunrise is when the sun appears in the morning. 
The sky can look very pretty. It often turns red and orange. This happens because of the air. The air scatters the light. This leaves the warm colors for us to see.
Sometimes the sky gets bright before the sun shows up. This time is called twilight. The sun rises at different times each year. It also changes based on where you live. It is fun to watch the start of a new day.
Sunrise is the moment the top of the Sun appears on the horizon. 
Before the Sun is seen, the sky gets bright. We call this time twilight. The very first part of this is called astronomical dawn. The sky often turns bright red or orange during this time. This happens because of how light moves through the air. Air molecules and tiny particles scatter the light. Blue and green colors scatter away easily. This leaves the long red and orange colors for us to see.
Sometimes, we see a false sunrise. This happens because the air bends the light. This can make the Sun look like it is there when it is still below the horizon. 
Sunrise is the moment the top edge of the Sun appears on the horizon. 
It might look like the Sun is moving upward, but it is actually an illusion. The Sun stays in place while the Earth rotates. This happens because we are observing from a rotating frame of reference. In the 16th century, Nicolaus Copernicus changed how we think about this. He created the heliocentric model, which shows the Sun at the center. Before him, many cultures used the geocentric model. This older idea suggested the Earth was the center of everything.
Light travels through the atmosphere to reach our eyes. This journey causes the colors we see during sunrise. Air molecules and tiny particles scatter the sunlight. This is called Rayleigh scattering. Blue and green light colors scatter away easily. This leaves the longer red and orange colors to reach us.
The exact time of sunrise changes throughout the year. It depends on your latitude, longitude, and altitude. The Earth's tilt and its path around the Sun cause these changes. In the spring, sunrise happens earlier each day. It reaches its earliest time near the summer solstice. Later, the time gets later until the winter solstice.
Sometimes, the atmosphere plays tricks on our eyes. This can create a "false sunrise." This happens because the Earth's atmosphere refracts, or bends, the light. This bending makes the Sun appear above the horizon even when it is still below it. 
Sunrise is the specific moment when the upper rim of the Sun first appears on the horizon. 
Although it looks like the Sun is rising, this motion is actually an illusion. The Sun remains relatively fixed while the Earth rotates on its axis. Because we are observing from a rotating reference frame, the Sun appears to move. For a long time, many cultures believed in the geocentric model, which placed Earth at the center of the universe. This changed in the 16th century when the astronomer Nicolaus Copernicus formulated the heliocentric model. This model correctly placed the Sun at the center of the system.
Measuring the exact moment of sunrise involves complex geometry and atmospheric physics. Astronomically, sunrise occurs when the upper limb of the Sun is tangent to the horizon. However, the atmosphere bends light through a process called refraction. At the horizon, the average amount of refraction is 34 arcminutes. This bending can create a "false sunrise," where the Sun appears above the horizon even though it is still below it. 
The timing of sunrise is never the same every day. It changes based on your latitude, longitude, altitude, and time zone. These variations are driven by the Earth's axial tilt and its elliptical orbit around the Sun. It is also affected by the paired revolutions of the Earth and the Moon. In temperate latitudes, sunrise occurs earlier each day during late winter and spring. It reaches its earliest time shortly before the summer solstice. After that, the time of sunrise gets later each day until the winter solstice.
Sunrise also changes depending on where you look on the horizon. In temperate regions, the Sun rises in the northeast quadrant from the March equinox to the September equinox. From the September equinox to the March equinox, it rises in the southeast quadrant. On the equinoxes themselves, the Sun rises approximately due east for everyone on Earth. The exact position, or azimuth, can be calculated using complex solar geometry routines. These calculations must account for the Sun's declination and the specific hour angle of the sunrise.
The brilliant colors of sunrise are caused by how light interacts with the atmosphere. As sunlight travels through the air, molecules and particles scatter the light. This involves two main processes: Rayleigh scattering and Mie scattering. Rayleigh scattering occurs when light hits molecules much smaller than its wavelength. This process removes blue and green light from the beam because those colors scatter more strongly.
Other factors can make these colors even more dramatic. Volcanic eruptions can change the appearance of the sky by adding particles to the atmosphere. If ash stays in the troposphere, it can mute the colors. However, if volcanic ejecta reaches the stratosphere, it can create beautiful "pre-sunrise glows." For example, eruptions of Mount Pinatubo in 1991 and Krakatoa in 1883 produced remarkable afterglows. These high-altitude sulfuric acid droplets reflect reddened sunlight back down to the surface. These atmospheric connections show how even distant geological events can change our daily view of the sky.
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