IB Physics HL Topic 5 — Fusion & Stars Paper 1 & 2 gravity vs pressure ~15 min read

How Stars Form

Every star — including the Sun — began life as nothing more than a cold, thin cloud of gas and dust drifting in space. So how do you get from a cloud to a blazing ball of fusion? The answer is a tug-of-war between two forces: gravity pulling inward and pressure pushing outward. When gravity wins, the cloud collapses and heats up until fusion ignites. When the two forces balance, you have a stable star. Let’s follow that story.

📚 What you need to know

From nebula to protostar

It all starts with a nebula — a vast cloud of hydrogen gas and dust. Gravity acts between all the particles, pulling them together into denser and denser clumps. This inward movement is called gravitational collapse.

As the cloud collapses, the particles crash into each other more and more. This does work on them, increasing their kinetic energy and so raising the temperature. The clump heats up and begins to glow, forming a protostar. Protostars aren’t hot enough to shine in visible light yet, so we detect them by their infrared radiation.

Nebula → protostar → star Nebula gas + dust collapse Protostar heats & glows fusion Star fusion ignites
Gravitational collapse turns a diffuse nebula into a hot, glowing protostar; once the core is hot enough, fusion ignites and a stable star is born.

Conditions for fusion

Fusion doesn’t switch on until conditions in the core are extreme. Remember, the nuclei repel each other electrostatically (the Coulomb repulsion), so they need very high kinetic energy to get close enough for the strong force to fuse them. That requires:

Once the protostar’s core hits these conditions, four hydrogen nuclei begin fusing into helium, releasing enormous energy and producing an outward radiation pressure.

The chain of cause and effect here is a favourite exam question, so learn it as a story: gravity collapses the cloud → collisions do work on the particles → kinetic energy rises → temperature rises → nuclei move fast enough to beat the Coulomb repulsion → fusion begins. Every arrow in that chain is a mark. Learn the sequence, not just the endpoints.

Equilibrium in stars

Here’s the key idea for a stable star. Once fusion starts, its energy creates an outward push — the radiation pressure from photons, plus the ordinary gas pressure. These outward forces balance the inward pull of the star’s own gravity (its weight). When the two are equal, the star is in equilibrium and stays the same size for millions or billions of years.

A stable star is in equilibrium OUTWARD radiation + gas pressure INWARD gravity (weight)balanced → the star stays stable
Outward radiation and gas pressure balance the inward pull of gravity. As long as they stay equal, the star holds its size — this is stellar equilibrium.

This balance is self-correcting, which is what keeps stars so steady:

As long as the two forces stay balanced, the star remains stable. This stable phase is called the main sequence, and stars spend most of their lives there.

WE 1

Explain, step by step, how the collapse of a nebula leads to the start of nuclear fusion.

Step 1 — gravity Gravitational attraction pulls the gas and dust together — gravitational collapse. Step 2 — work done Collisions between particles do work, raising their kinetic energy. Step 3 — temperature More kinetic energy means a higher core temperature. Step 4 — fusion Eventually nuclei move fast enough to overcome Coulomb repulsion, and fusion begins. collapse → heating → high KE → fusion Follow the causal chain in order. Each link (collapse, work, KE, temperature, overcoming repulsion) is a separate marking point.
WE 2

A main sequence star is described as being “in equilibrium”. State the forces involved and explain what happens if the star’s core temperature rises slightly.

Step 1 — the forces Outward: radiation pressure + gas pressure. Inward: gravity. Step 2 — temperature rises Higher temperature raises the outward pressure above gravity. Step 3 — result The star expands, which cools it and restores the balance. Self-correcting: expands then cools back to equilibrium The balance is stable because expansion cools the star and contraction heats it — the star automatically pushes itself back to equilibrium.

⚛ The star-formation story

  1. Nebula: cloud of hydrogen gas and dust.
  2. Gravitational collapse: gravity pulls matter together.
  3. Protostar: collisions heat the gas until it glows (seen in infrared).
  4. Fusion ignites: core hits ~millions of K, nuclei beat Coulomb repulsion.
  5. Equilibrium: outward pressure balances inward gravity → stable star.

💡 Top tips

⚠ Common mistakes

Quick recap: Stars form when a nebula undergoes gravitational collapse, heating up as collisions do work, forming a glowing protostar. When the core reaches millions of Kelvin, nuclei overcome Coulomb repulsion and fusion begins. A stable star sits in equilibrium, with outward radiation + gas pressure balancing inward gravity — a self-correcting balance that lasts most of the star’s life.
A star reaching equilibrium is only the beginning of its story. What happens next — whether it swells into a red giant, blows up as a supernova, or fades quietly — depends entirely on one thing: its mass. Next page: The Life Cycle of a Star.

Star formation and equilibrium unclear?

Book a free meeting and we’ll drill the collapse-to-fusion causal chain and the force-balance reasoning examiners reward.

Book your free meeting