Astrophysics is where the physics of the Edexcel IGCSE Science Double Award specification reaches its largest scale. This section takes you from orbiting moons to dying stars, using the same principles of force, motion and energy that run through every other topic.

The edexcel igcse science double award physics: astrophysics section of the 4SD0 specification covers three areas: units, motion in the universe, and stellar evolution. The content is compact compared with electricity or waves, but it draws heavily on your understanding of gravitational fields, orbital mechanics and energy transfers. These edexcel igcse science double award revision notes walk through every specification point, with worked examples and self-check questions to anchor your understanding.

Units

QuantityUnitSymbol
Masskilogramkg
Distance / radiusmetrem
Speedmetre per secondm/s
Accelerationmetre per second squaredm/s2
ForcenewtonN
Timeseconds
Gravitational field strengthnewton per kilogramN/kg

These are the same SI base and derived units you have used across forces and motion. Gravitational field strength (N/kg) is particularly important in this section because its value changes depending on which body you are standing on.

Motion in the universe

The structure of the universe

The universe is a vast collection of billions of galaxies. Each galaxy is itself a vast collection of billions of stars. Our solar system sits inside the Milky Way galaxy, one of those billions. The distances involved are so large that they are often expressed in light-years rather than metres, though the exam will typically provide distances in SI units or tell you how to convert.

Gravitational field strength

Gravitational field strength, g, is the force per unit mass experienced by an object in a gravitational field. On the surface of the Earth, g is approximately 9.8 N/kg. On the Moon, g is roughly 1.6 N/kg. On Jupiter, g is approximately 25 N/kg. The value depends on the mass of the body and the distance from its centre. A planet with greater mass exerts a stronger gravitational pull; a planet with a larger radius means the surface is farther from the centre, which reduces g.

Why g varies: gravitational field strength depends on the mass of the planet or moon and on how far you are from its centre. Two planets with the same mass but different radii will have different surface values of g. The larger one has a weaker surface g because the surface is farther from the concentrated mass at the centre.

Gravitational force and orbital motion

Gravitational force is what keeps everything in orbit. The Moon orbits the Earth because the Earth's gravitational pull provides the centripetal force needed to maintain a circular path. By the same principle, planets orbit the Sun, artificial satellites orbit the Earth, and comets orbit the Sun. In each case, the gravitational attraction between the two bodies supplies the force that continuously changes the direction of the orbiting object's velocity.

Types of orbits

Planets move in roughly circular orbits around the Sun at approximately constant speeds. Moons do the same around their host planets. Comets, by contrast, follow highly elliptical orbits. A comet's speed changes as it moves: it travels fastest when closest to the Sun (at perihelion) because gravitational potential energy is being converted to kinetic energy, and slowest when farthest from the Sun (at aphelion) because kinetic energy is being converted back to gravitational potential energy.

Orbiting bodyOrbit shapeSpeed variation
Planet around the SunApproximately circularNearly constant
Moon around a planetApproximately circularNearly constant
Artificial satellite around the EarthCircular or elliptical (depends on design)Constant if circular; variable if elliptical
Comet around the SunHighly ellipticalFastest at perihelion, slowest at aphelion

Orbital speed, orbital radius and time period

The relationship between orbital speed (v), orbital radius (r) and time period (T) is:

v = 2πr / T

This equation states that an object travelling in a circle of radius r completes one full orbit (circumference = 2πr) in time T. If the orbital radius is larger, the object must travel a greater distance in each orbit, and for a given gravitational field, the time period will also be longer.

Worked example: A satellite orbits the Earth at a radius of 6,800,000 m with a time period of 5,500 s. Calculate its orbital speed.

v = 2πr / T
v = 2 × π × 6,800,000 / 5,500
v = 42,725,660 / 5,500
v = 7,768 m/s (to 4 significant figures)

The satellite travels at approximately 7,800 m/s, or about 28,000 km/h.

Stellar evolution

Star colour and temperature

Stars can be classified according to their colour, and that colour is directly related to the surface temperature of the star. The hottest stars appear blue or blue-white. Cooler stars appear red. The Sun, with a surface temperature of about 5,500 degrees Celsius, appears yellow-white. The relationship runs in a consistent sequence:

ColourSurface temperatureExample
Blue / blue-whiteAbove 10,000 degrees CRigel
WhiteAbout 7,500 - 10,000 degrees CSirius A
Yellow-whiteAbout 5,000 - 7,500 degrees CThe Sun
OrangeAbout 3,500 - 5,000 degrees CArcturus
RedBelow 3,500 degrees CBetelgeuse

The key point for the exam is that hotter means bluer. A common mistake is to assume that red means hot (because of associations with fire), but in stellar physics the opposite is true.

Life cycle of a star similar in mass to the Sun

The specification requires you to describe the evolution of a Sun-like star through four stages:

  1. Nebula: A star begins as a cloud of gas and dust, primarily hydrogen. Gravity pulls the material together, and as it contracts, the temperature rises.
  2. Main sequence star: When the core temperature reaches about 15 million degrees Celsius, hydrogen nuclei begin to fuse into helium, releasing enormous amounts of energy. The outward pressure from this fusion balances the inward pull of gravity, and the star reaches a stable equilibrium. The Sun has been in this stage for about 4.6 billion years.
  3. Red giant: When the hydrogen fuel in the core is exhausted, fusion slows and the core contracts under gravity. The outer layers expand and cool, turning the star into a red giant. Helium fusion may begin in the core, but eventually the fuel runs out.
  4. White dwarf: The outer layers drift away, leaving behind the hot, dense core. This remnant is a white dwarf, roughly the size of the Earth but with a mass similar to the Sun. It gradually cools over billions of years.

Life cycle of a star with mass larger than the Sun

A star significantly more massive than the Sun follows a different path after the main sequence:

  1. Nebula: The start is the same. A massive cloud of gas and dust collapses under gravity.
  2. Main sequence star: The star burns through its hydrogen fuel much faster than a smaller star because the greater gravitational pressure drives fusion at a higher rate. Massive stars may spend only a few million years on the main sequence, compared with billions for the Sun.
  3. Red supergiant: When hydrogen is exhausted, the star expands into a red supergiant, far larger than a red giant. Successive rounds of fusion produce heavier elements up to iron.
  4. Supernova: When the core can no longer sustain fusion (iron fusion absorbs energy rather than releasing it), the core collapses catastrophically and the outer layers are blown outward in a supernova explosion. This event is so energetic that it briefly outshines an entire galaxy and scatters heavy elements into space.
  5. Neutron star or black hole: If the remaining core is between about 1.4 and 3 solar masses, it forms a neutron star, an incredibly dense object. If the core exceeds about 3 solar masses, nothing can prevent further collapse, and a black hole forms.
Exam tip: When describing stellar evolution in the exam, use the exact stage names from the specification. Saying "the star gets bigger and redder" is not sufficient. The examiners expect "red giant" (or "red supergiant" for massive stars), "white dwarf", "supernova", "neutron star" and "black hole" as precise terms.

Common mistakes in astrophysics

  • Red means hot: In everyday life, red is associated with heat. In stellar physics, red indicates a cooler surface temperature. Blue stars are the hottest. If a question asks which star is hottest, the blue or blue-white option is the answer.
  • Confusing the two life cycles: Sun-mass stars end as white dwarfs. Massive stars end as neutron stars or black holes. Mixing up the endpoints is a common error. A Sun-like star does not explode in a supernova.
  • Forgetting what provides the centripetal force in orbit: It is gravitational attraction, not momentum. The gravity of the central body continuously pulls the orbiting object toward the centre, changing the direction of its velocity and keeping it on a curved path.
  • Writing v = 2πr × T instead of v = 2πr / T: The time period goes in the denominator. Multiplying by T gives you the circumference multiplied by the time, which is not a speed.

Self-check questions

Use these edexcel igcse science double award practice questions to test your understanding of physics: astrophysics edexcel igcse content. Write your answers before checking against the notes above.

  1. State the units of gravitational field strength and explain why g is different on the Moon compared with the Earth.
  2. Explain why a comet speeds up as it approaches the Sun and slows down as it moves away.
  3. A satellite orbits at a radius of 7,200,000 m with an orbital speed of 7,400 m/s. Calculate the time period of its orbit.
  4. Describe the four stages in the life cycle of a star of similar mass to the Sun.
  5. Describe how the life cycle of a massive star differs from that of a Sun-like star after the main sequence stage.
  6. Explain why blue stars are hotter than red stars.

For question 3, rearrange v = 2πr / T to give T = 2πr / v. Substituting: T = 2 × π × 7,200,000 / 7,400 = 45,238,934 / 7,400 = 6,113 s (approximately 102 minutes).

These edexcel igcse science double award notes on astrophysics cover every specification point in the section. This is the kind of topic where precision pays off: the exam will test your ability to recall stage names, compare life cycles, and apply the orbital speed equation. On the IGCSE 4SD0 physics: astrophysics section of the Edexcel specification, the questions tend to be direct and factual, so solid recall of the star life cycles and a confident grasp of v = 2πr / T will serve you well. If you can draw the two life cycle pathways from memory and solve an orbital speed calculation without hesitating, you are well prepared for this section of the edexcel igcse science double award explained content on the Green Bridge CBT platform.

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Revision notes for edexcel igcse science double award physics: astrophysics covering orbital motion, stellar evolution and worked exam examples.