Our Planet, the Earth, is located as the third planet from the Sun in the Solar System, one of billions of stars in the Milky way galaxy, which is one of billions of galaxies in the Universe.
Gravity, a force exerted by all bodies of mass, keeps celestial bodies in orbit around each other. It pulls bodies of mass back towards others and preventing them from moving far away, creating an orbit.
An orbit is a balance between the forwards motion of the object and the force pulling it inwards. Planets have almost circular orbits, whereas comets have elongated elliptical orbits. Moons and artificial satellites orbit planets in circular patterns.
Geostationary satellites have an orbit of 1 day, keeping it stationary over one area of land, and are useful for communications.
Stronger forces of attraction occur closer to the centre of a body of mass; because of this, planets closer to the Sun move faster, and comets move more quickly when they're closer to the Sun.
Orbital speed can be worked out through the following equation:
v= (2 x π x r ) / T
All of my notes for my 2018 IGCSEs, in an attempt at motivating myself to do work.
Showing posts with label d) Astronomy. Show all posts
Showing posts with label d) Astronomy. Show all posts
Saturday, 24 February 2018
Section 1 d) Key Words
Artificial Satellite: A man made satellite, put into space by a rocket. Can orbit the Earth, or be put in orbit over another astronomical body.
Comet: Small lumps of icy rock that orbit the Sun. They have elliptical orbits and speed up when they're closer to the Sun as the gravitational strength is stronger.
Galaxy: A collection of billions of stars.
Gravity: The force exerted by all bodies of mass. Causes small bodies to orbit larger ones.
Milky Way: The galaxy we live in.
Moon: A natural satellite. Earth has one moon, known just as "the Moon", however other planets may have many more with individual names.
Orbit: The path one astronomical body takes around another, caused by the force of gravity.
Planet: A body of mass orbiting a star, e.g. the Earth orbiting the sun. It must be of a certain size to be classed as a planet, and have an almost circular, but usually slightly elliptical orbit.
Satellite: A body of mass that orbits another body of mass.
Solar System: The system of planets and comets around our Sun.
Star: A self-luminescent celestial body that produces energy.
Sun: The star at the centre of the Solar System.
Universe: A collection of billions of galaxies. Most of it is empty space. It's huuuuugeeeeeeeeeee
Comet: Small lumps of icy rock that orbit the Sun. They have elliptical orbits and speed up when they're closer to the Sun as the gravitational strength is stronger.
Galaxy: A collection of billions of stars.
Gravity: The force exerted by all bodies of mass. Causes small bodies to orbit larger ones.
Milky Way: The galaxy we live in.
Moon: A natural satellite. Earth has one moon, known just as "the Moon", however other planets may have many more with individual names.
Orbit: The path one astronomical body takes around another, caused by the force of gravity.
Planet: A body of mass orbiting a star, e.g. the Earth orbiting the sun. It must be of a certain size to be classed as a planet, and have an almost circular, but usually slightly elliptical orbit.
Satellite: A body of mass that orbits another body of mass.
Solar System: The system of planets and comets around our Sun.
Star: A self-luminescent celestial body that produces energy.
Sun: The star at the centre of the Solar System.
Universe: A collection of billions of galaxies. Most of it is empty space. It's huuuuugeeeeeeeeeee
Section 1 d) Specification
1.32 understand gravitational field strength, g, and recall that it is different on
other planets and the moon from that on the Earth
All bodies of mass have a gravitational force that attracts other objects to them. Small bodies of mass, such as humans, have a tiny, immeasurable gravitational pull; but large bodies of mass such as the Sun are able to hold many other bodies of mass in orbit, such as the Earth. Earth has an approximate gravitational field strength of 9.8 m/s^2, but unless otherwise specified in the GCSE exam we should round it to 10. Larger planets such as Jupiter have more mass, therefore greater gravitational field strength: 24.8 m/s^2, whereas smaller bodies such as the Moon have such a weak gravitational field that they cannot have an atmosphere.
1.33 explain that gravitational force:
The Sun pulls the planets and comets of the solar system inwards, changing their direction, which prevents them from travelling away from the Sun. The same principle applies for the Moon and artificial satellites orbiting the Earth, and the solar system orbiting in the Milky Way galaxy.
1.34 describe the differences in the orbits of comets, moons and planets
Comets orbit in a very elliptical shape, the Sun usually only at one end of the orbit, which are much longer than the orbits of planets as they travel a further distance. Comets move faster when closer to the Sun due to increased gravitational force.
In contrast, Plants have relatively circular orbits, though they are slightly elliptical.
Artificial satellites orbiting the Earth can change their orbital period based on speed. Some have an orbital period of one day, and as a result remain stationary over the same area of land; these are called geostationary satellites.
1.35 use the relationship between orbital speed, orbital radius and time period:
orbital speed = (2 x π x orbital radius) / time period
v= (2 x π x r ) / T
To find the orbital speed, you first need to find the distance the object is travelling. We can do this using the same method you would find the circumference of a circle in maths: 2 x π x r. Then, to find the speed, the distance must be divided by the time period, so we get:
v= (2 x π x r ) / T
1.36 understand that:
other planets and the moon from that on the Earth
All bodies of mass have a gravitational force that attracts other objects to them. Small bodies of mass, such as humans, have a tiny, immeasurable gravitational pull; but large bodies of mass such as the Sun are able to hold many other bodies of mass in orbit, such as the Earth. Earth has an approximate gravitational field strength of 9.8 m/s^2, but unless otherwise specified in the GCSE exam we should round it to 10. Larger planets such as Jupiter have more mass, therefore greater gravitational field strength: 24.8 m/s^2, whereas smaller bodies such as the Moon have such a weak gravitational field that they cannot have an atmosphere.
1.33 explain that gravitational force:
- causes moons to orbit planets
- causes the planets to orbit the sun
- causes artificial satellites to orbit the Earth
- causes comets to orbit the sun
The Sun pulls the planets and comets of the solar system inwards, changing their direction, which prevents them from travelling away from the Sun. The same principle applies for the Moon and artificial satellites orbiting the Earth, and the solar system orbiting in the Milky Way galaxy.
1.34 describe the differences in the orbits of comets, moons and planets
Comets orbit in a very elliptical shape, the Sun usually only at one end of the orbit, which are much longer than the orbits of planets as they travel a further distance. Comets move faster when closer to the Sun due to increased gravitational force.
In contrast, Plants have relatively circular orbits, though they are slightly elliptical.
Artificial satellites orbiting the Earth can change their orbital period based on speed. Some have an orbital period of one day, and as a result remain stationary over the same area of land; these are called geostationary satellites.
1.35 use the relationship between orbital speed, orbital radius and time period:
orbital speed = (2 x π x orbital radius) / time period
v= (2 x π x r ) / T
To find the orbital speed, you first need to find the distance the object is travelling. We can do this using the same method you would find the circumference of a circle in maths: 2 x π x r. Then, to find the speed, the distance must be divided by the time period, so we get:
v= (2 x π x r ) / T
1.36 understand that:
- the universe is a large collection of billions of galaxies
- a galaxy is a large collection of billions of stars
- our solar system is in the Milky Way galaxy
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