PART III · Fourth Room · Cosmology
Fate of the Universe — Eternal Expansion, or
the Big Crunch?
How will the expansion that began with the Big Bang end? Will everything collapse back into a fireball, or cool forever? The future of the universe is settled not by prophecy but by an equation — its fate is decided by what fills the cosmos and how much of it there is.
§1Weighing the Universe — the Friedmann Equation
The Friedmann equation we met in “The Big Bang and Cosmic Expansion” applies Einstein's general relativity to the universe as a whole. This chapter is its sequel. The equation determines how the size of the universe (the scale factor a) changes over time, using nothing but the density of the energy the universe contains. Matter and radiation pull on the expansion through gravity and decelerate it, while dark energy pushes outward and accelerates it. The fate of the universe is, in the end, the outcome of this tug-of-war.
§2The Density Parameter Ω — the Number That Decides Fate
To weigh the universe's fate on a single scale, physicists use Ω, the ratio of the actual density to the critical density (exactly the density that would just barely halt the expansion). There is the share of matter Ωm, the share of dark energy ΩΛ, and the share of curvature Ωk representing the bending of space; adding these three together always gives exactly 1. Observations show the universe is astonishingly flat — that is, Ωtotal = Ωm + ΩΛ ≈ 1 and the curvature Ωk is close to zero. So the fate is decided by how matter and dark energy divide the remainder.
§3Three Possible Futures
There are broadly three cases. ① If matter dominates (a closed universe with little or no dark energy and a density above the critical value), gravity overcomes the expansion, decelerates it, and finally reverses it, crushing the universe back to a single point in a Big Crunch. ② If the curvature makes an open universe (insufficient density) or the universe is exactly flat, the expansion decelerates yet continues forever. ③ If dark energy dominates, the expansion instead accelerates, galaxies vanish from view, the stars burn out, and the universe heads toward a cold, empty heat death (Big Freeze). What observations tell us about our universe is Ωm ≈ 0.3, ΩΛ ≈ 0.7 — we are on the third path, that of accelerating expansion.
If dark energy is a special kind that grows stronger over time (so-called phantom energy), then in the far future its outward push could tear apart galaxies, stars, atoms, and finally spacetime itself in a Big Rip — theoretically possible. Current observations, however, say dark energy is close to a roughly constant value (the cosmological constant), so the Big Rip remains only a possibility.
Key points
- The Friedmann equation determines the universe's fate from the energy density it contains
- Ω = actual density / critical density · Ωm + ΩΛ + Ωk = 1
- Matter-dominated → deceleration → possible Big Crunch / open or flat → eternal decelerating expansion
- Dark-energy-dominated → accelerating expansion → heat death (Big Freeze)
- Our universe: Ωm≈0.3, ΩΛ≈0.7 → flat and accelerating
- 1922
- Friedmann derives the expanding and contracting solutions of the universe from his equation
- 1927
- Lemaître independently proposes an expanding universe and connects it to observation
- 1998
- Perlmutter, Schmidt, and Riess discover accelerating expansion from supernova observations → dark energy (2011 Nobel Prize)
- 2013
- The Planck satellite pins down the Ω values through precise measurements of the cosmic microwave background (flat · ΩΛ≈0.69)