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The exothermic reaction between Al and KNO3 (a slow flash powder) oxidizes Al. If Al2O3 is one of the products, what are the others? A thick white smoke was released, I'm guessing it was some form of oxidized N. What is the balanced equation? Since there was no H involved, it seems that K2O must be included.
Could it really create elemental K? I didn't think that it would get hot enough to do so.
And if it did, there would be a secondary reaction between the K and the Al2O3 right?