In January 2025
Answer to Question #325118 in General Chemistry for Horse1
Stomach acid is approximately 0.137 M HCl. Using your average number of moles of CaCO3 per antacid tablet, what volume of stomach acid will a tablet neutralize?
2 mol HCl - 1 mol CaCO3
x mol HCl - 4.955×10-3 mol CaCO3
x = 4.955×10-3 × 2 = 0.00991 mol
V(sol) = n(HCl) / C(sol) = 0.00991 mol / 0.137 mol/l = 0.07233 l = 72.33 ml
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