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Please note that the "color charge" (red, green, blue, anti-red, anti-green, anti-blue, white = neutral) of quarks is completely unrelated to the colors we see. It's just a fancy name given to them.

As far as I know, quantum chronodynamics doesn't analyze where these color charges come from; only how they interact.

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7y ago
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13y ago

Let me be the first to apologize, on behalf of all physicists, about the model we have used in quantum chromodynamics. The model I'm referring to is:

There are six quarks and six corresponding antiquarks that make up all of the particles called fermions. Each quark can have one of three "colors" (blue, green, red) and each antiquark can have one of three "anticolors" (antiblue, antigreen, and antired). Quarks bind together only in combinations that produce "white", ie. color-anticolor or red-blue-green (antired-antiblue-antigreen). The particles in the first group are called mesons, the particles in the second group are called baryons (antibaryons).

That being said, there is no actual color!

The reason why the color model is used is because people can understand it. People understand it when you say, "the colors must always form white." People don't understand it when you say, "quarks form and transform under the SU(3) gauge symmetry group," which is what is actually happening.

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Q: From the point of view of quantum chromodynamics where color originates from?
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