An intrinsic S-type star is a thermally pulsing AGB star whose third dredge-up exposes carbon and products of the slow neutron-capture process. An extrinsic S-type star has similar surface pollution but no current internal source; it received the material from a former AGB companion. A barium star is the warmer main-sequence or giant counterpart, recognized particularly through strong barium and other slow-neutron-capture elements.
This interpretation predicts a white dwarf companion, the remnant of the former AGB donor. Barium and extrinsic S-type stars are indeed binaries, often with periods long enough that the donor could not have undergone ordinary Roche-lobe overflow. Their abundance patterns, white-dwarf companions, and wide or eccentric orbits therefore point to wind mass transfer in a binary star.
The Bondi–Hoyle accretion estimate treats the companion as moving through a locally uniform wind with relative speed , sound speed , and density . Gravity focuses gas from the accretion radius
giving
For a roughly spherical donor wind, and combines wind and orbital velocities. This supplies an order-of-magnitude accreted fraction; wind acceleration, density gradients, orbital deflection, and Wind Roche-lobe overflow can substantially change it.
For initial masses and , increasing the initial period gives three broad channels:
The transition periods are set by the primary's maximum radius relative to its Roche lobe, and their exact values depend on mass-transfer efficiency, wind speed, and common-envelope energy formalism.
A common envelope is invoked because many observed compact binaries have separations far smaller than the radii of their progenitor giants; ordinary conservative transfer cannot remove enough orbital energy and angular momentum. It begins when rapid or dynamically unstable Roche-lobe overflow engulfs the companion, or when a companion is swallowed by an expanding giant. Drag inside the envelope transfers orbital energy and angular momentum to gas, causing a fast inspiral. If the deposited energy ejects the envelope before the cores touch, a close exposed-core binary survives; otherwise the cores merge. Partial ejection or delayed thermal readjustment can complicate either outcome.
The common-envelope energy formalism writes
Here are donor, core, and envelope masses; describes envelope structure; and is the efficiency with which released orbital energy unbinds gas. Solving estimates , while failure to supply predicts merger.
A carbon--oxygen white dwarf can make a Type Ia supernova when carbon ignites under degenerate conditions. Burning carbon and oxygen to iron-group and intermediate-mass nuclei releases of order J, comparable to and exceeding the white dwarf's gravitational binding energy, so the thermonuclear flame disrupts the star. Radioactive and then decay power the optical light curve by depositing gamma-ray and positron energy. Possible triggers include near-Chandrasekhar mass central ignition and sub-Chandrasekhar detonations initiated by an accreted helium shell or a merger.
One route from zero-age masses and is as follows. The primary evolves first, fills its Roche lobe, and transfers its envelope; if stable, the orbit usually widens after mass-ratio reversal, leaving a carbon--oxygen core that becomes the first white dwarf. The rejuvenated secondary later evolves and becomes the more massive giant. Transfer to the white dwarf then has an extreme mass ratio and is dynamically unstable, producing a common envelope. Inspiral ejects the giant envelope and leaves the first white dwarf close to the secondary's exposed helium or carbon--oxygen core, which becomes the second white dwarf. Depending on the earlier separation, a second unstable episode may be required. Once detached, gravitational-wave emission from a binary system removes energy and angular momentum, steadily shrinking the orbit until the white dwarfs contact. This is the Double-degenerate Type Ia supernova scenario.
If white-dwarf mass transfer is dynamically stable, the lighter donor is gradually disrupted or transferred at rates that may lead to quiescent burning, off-centre carbon ignition, and conversion to an oxygen--neon remnant followed by accretion-induced collapse, rather than prompt thermonuclear disruption. Dynamically unstable transfer can overcome this by producing a violent merger: rapid stream impact, tidal heating, shocks, and helium or carbon hotspots may detonate before the remnant settles and ignites carbon off centre. Whether this happens is the central ignition problem of the double-degenerate channel.