Cannibal CMEs: how it works and what it teaches us
When a fast CME is launched behind a slower one, it can catch up and interact with it. The result may be a more complex structure that is harder to forecast than two independent events.
What it really means
These processes occur long before any disturbance reaches Earth. Their relevance to aurora observers is precisely that they explain the physical origin of conditions that, hours or days later, may alter the solar wind and Earth’s magnetosphere. Observed properties can change quickly and also depend on viewing geometry, so a single image is not enough to describe the full evolution.
Why it matters
Images of the Sun show only part of the story. Different wavelengths reveal different layers and temperatures, while magnetograms and coronagraphs provide information that visible-light photographs cannot. For an aurora observer it is mainly a causal piece of the puzzle: it helps identify what kind of disturbance may be produced, but by itself it cannot tell how geoeffective that disturbance will be at Earth.
How to interpret it without oversimplifying
The Sun is not a static surface but an evolving magnetised plasma. Understanding Cannibal CMEs therefore requires looking at magnetic fields, temperature, density and plasma motion together; isolating a single parameter easily leads to the wrong conclusion.