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Hour angle

space Maturity 11-13

Stars and the sun move in the sky.

HourAngle Observer en.png
HourAngle Observer en.png
We can use math to find them. This helps us know where they are. It helps us find our way. It is like a clock in the sky. Do you like to look at stars?

46 words

Stars and the sun move across the sky.

HourAngle Observer en.png
HourAngle Observer en.png
We can use a special angle to find them. This angle works like a clock in the sky.
Hour angle still1.png
Hour angle still1.png
It tells us how far a star is from our middle line. At noon, the sun is on that line. The angle is zero at that time. Before noon, the angle is negative. After noon, the angle is positive. This helps people find their way.
Solar system.jpg
Solar system.jpg
It is a great way to track the sky.

88 words

Astronomers use a tool called the hour angle.

HourAngle Observer en.png
HourAngle Observer en.png
This is a way to find where a star or the Sun is in the sky. It measures the angle between a middle line in the sky and the object. We call this middle line the meridian.
Hour angle still1.png
Hour angle still1.png

When an object is right on the meridian, the angle is zero. If the object is moving toward the meridian, the angle is negative. If it moves away, the angle is positive. You can measure this angle in degrees or in time.

Length of solar day.png
Length of solar day.png

The Sun has its own solar hour angle. This angle tells us how much time has passed since solar noon. At solar noon, the angle is zero. For example, at 10:30 AM, the angle is -22.5 degrees. This happens because the Sun is 1.5 hours before noon. The angle changes slightly depending on the time of year. In September, a solar day is about 22 seconds shorter than 24 hours. In late December, a solar day is about 28 seconds longer. This change is part of the equation of time.

187 words

Astronomers use a special tool called the hour angle.

HourAngle Observer en.png
HourAngle Observer en.png
This measurement helps find where a star or planet is located. It is the angle between two important lines in space. One line is the meridian plane, which contains Earth's axis and the zenith. The other is the hour circle, which contains the Earth's axis and the object.
Hour angle still1.png
Hour angle still1.png
Knowing this angle is very helpful for navigation. It works together with declination to find an object's exact spot. This system is known as the equatorial coordinate system.

Measuring the hour angle follows a specific way. You can use degrees or units of time. If you use time, 24 hours equals exactly 360 degrees.

Length of solar day.png
Length of solar day.png
The angle can be positive or negative. A negative angle means the object is coming toward the meridian. A positive angle means it is moving away from it. If the angle is zero, the object is right on the meridian. You can find the local hour angle using sidereal time and right ascension. This math helps people see where things are in the sky.

People use different types of hour angles for different jobs. In navigation, they use the Greenwich hour angle. This measures westward from the prime meridian. They also use the local hour angle, or LHA.

Hour angle still1.png
Hour angle still1.png
Another kind is the sidereal hour angle, or SHA. This measures the distance west of the March equinox. Navigators often find these values in special books called nautical almanacs. These books help sailors know where the stars are located.

There are many specific numbers to know about these angles. The Sun has its own solar hour angle. This angle shows how much time has passed since solar noon. At 10:30 AM, the solar hour angle is -22.5 degrees. This happens because it is 1.5 hours before noon. The Sun's angle changes slightly throughout the year. In mid-September, a solar day is 22 seconds shorter than 24 hours. In late December, a solar day is 28 seconds longer.

Length of solar day.png
Length of solar day.png

These measurements help us understand how Earth moves. The Earth rotates about 365.2564 times in a sidereal year. Because of this, a star's hour angle grows by about 1.0027 every hour. It actually takes 59 minutes and 50.17 seconds for the angle to grow by one hour.

Solar system.jpg
Solar system.jpg
This is different from how we think of a normal clock. The sidereal hour angle of a star changes very little each year. However, the angle for a planet can change a lot every night. These tiny shifts show us how the whole universe is always moving.

439 words

In astronomy and celestial navigation, the hour angle is a vital measurement used to locate objects in the sky. It is defined as a dihedral angle, which is an angle between two planes. One plane is the meridian plane, which contains Earth's axis and the zenith, or the point directly above an observer. The other plane is the hour circle, which contains Earth's axis and a specific object of interest.

HourAngle Observer en.png
HourAngle Observer en.png
By using this angle alongside declination, astronomers can fully specify an object's location within the equatorial coordinate system. This system acts like a map for the entire celestial sphere.

Measuring the hour angle involves specific mathematical conventions. It can be expressed in degrees, in units of time, or in rotations. If measured in time, 24 hours is exactly equal to 360 degrees.

Hour angle still1.png
Hour angle still1.png
The direction of the angle is also important for tracking movement. An angle can be negative if it is east of the meridian plane. It is expressed as positive if it is west of the meridian plane. Some systems use positive westward measurements from 0° all the way to 360°.
Hour angle still1.png
Hour angle still1.png
These different ways of writing the number ensure that navigators and scientists can communicate clearly.

Understanding the movement of an object requires looking at its relationship to the meridian. The meridian is the imaginary line that passes directly overhead. When an object's hour angle is zero, it is sitting exactly on the meridian. If the hour angle is negative, such as between -180° and 0°, the object is approaching the meridian. Conversely, a positive hour angle between 0° and 180° indicates the object is moving away from the meridian.

HourAngle Observer en.png
HourAngle Observer en.png
This simple rule helps observers predict when a star will reach its highest point in the sky.

There are several distinct types of hour angles used depending on the observer's needs. In celestial navigation, experts use the Greenwich hour angle (GHA), which measures westward from the prime meridian. They also use the local hour angle (LHA), which is measured from the observer's own local meridian.

Hour angle still1.png
Hour angle still1.png
Another important type is the sidereal hour angle (SHA). The SHA measures the angular distance west of the first point of Aries, or the March equinox. Navigators often find these specific values published in nautical almanacs to help them find their way at sea.

Calculating the local hour angle (LHA) involves a specific relationship with right ascension. The LHA of an object is found by subtracting the object's right ascension from the local sidereal time (LST).

Solar system.jpg
Solar system.jpg
It can also be calculated using Greenwich sidereal time (GST) plus the observer's longitude, then subtracting the right ascension. Right ascension is often written in a format called sexagesimal hours-minutes-seconds (HH:MM:SS). Because the Earth rotates about 365.2564 times in a sidereal year, stars appear to move differently than the Sun. A star's hour angle increases by about 1.0027 per hour. This means it takes only 59 minutes and 50.17 seconds for the hour angle to increase by one full hour.

The Sun has its own unique measurement called the solar hour angle. This is an expression of time expressed in angular units, usually degrees, measured from solar noon. At solar noon, the solar hour angle is zero degrees. Times before noon are expressed as negative degrees, while times after noon are positive.

Length of solar day.png
Length of solar day.png
For example, at 10:30 AM local apparent time, the solar hour angle is -22.5°. This is because it is 1.5 hours before noon, and each hour accounts for 15 degrees.
Length of solar day.png
Length of solar day.png

While the solar hour angle increases by one hour per hour on average, it is not perfectly steady. This variation is caused by something called the equation of time. In mid-September, a solar day is about 22 seconds shorter than 24 hours. During this time, the solar hour angle increases by 1.00025 hours every hour. In late December, the situation reverses, and a solar day is about 28 seconds longer.

Length of solar day.png
Length of solar day.png
In that period, the angle increases by only 0.99968 hours per hour. Scientists also use the cosine of the hour angle to calculate the solar zenith angle. Because the cosine of a negative angle is the same as the cosine of a positive angle, the Sun reaches the same altitude at 11:00 AM as it does at 1:00 PM.

The sidereal hour angle (SHA) provides a stable way to track celestial bodies. For a star, the SHA varies by less than a minute of arc per year because of a process called precession.

He1523a.jpg
He1523a.jpg
However, the SHA of a planet can change significantly from one night to the next. This difference highlights how different objects move through our solar system and the wider galaxy. By mastering these angles, humans have been able to map the heavens and navigate the oceans for centuries.

815 words
🖼️ Images & Media (9)
File:Stylised atom with three Bohr model orbits and stylised nucleus.svg
Stylised atom with three Bohr model...
File:RocketSunIcon.svg
RocketSunIcon.svg
File:Solar system.jpg
Solar system.jpg
File:Crab Nebula.jpg
Crab Nebula.jpg
File:Earth-moon.jpg
Earth-moon.jpg
File:Length of solar day.png
Length of solar day.png
File:HourAngle Observer en.png
HourAngle Observer en.png
File:Hour angle still1.png
Hour angle still1.png
File:He1523a.jpg
He1523a.jpg
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