Question #fbf2a

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Question #fbf2a

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Answer 1 · 2017-06-28T01:55:10

This question may be missing some important info to proceed, so I made it up along the way. For my made-up volume of gastric acid you need about 4.5 tablets. The dosage would be 5, probably.

Explanation:

Let's first obtain the HCl molarity in the gastric "juice" solution.

$2.19 g (\frac{H C l}{36.463 g}) = 0.0601 m o l = \frac{0.0601 m o l}{L} = 0.0601 M$ $2.19g((HCl)/(36.463g)) = 0.0601mol = (0.0601mol)/L = 0.0601M$

This is the balanced neutralization reaction.

$3 H C l (a q) + A l {(O H)}_{3} (s) \to A l C l_{3} (a q) + 3 H_{2} O (l)$ $3HCl(aq)+Al(OH)_3(s) to AlCl_3(aq)+3H_2O(l)$

Normally, there is some amount of solution to neutralize, here evidently none is given. I think this is almost needed in order to proceed (please correct me in the comments if not!), so I will make one up for example's sake. Let's say we have 1.50L of gastric "juice", a reasonable estimate.

$1.50 L (\frac{0.0601 m o l}{L}) (\frac{A l {(O H)}_{3}}{3 H C l}) (\frac{78.01 g}{A l {(O H)}_{3}}) (\frac{10^{3} m g}{g}) = 2.34 \cdot 10^{3} m g$ $1.50L((0.0601mol)/L)((Al(OH)_3)/(3HCl))((78.01g)/(Al(OH)_3))((10^3mg)/g) = 2.34*10^3 mg$

Lastly, we'd then divide this mass of $A l {(O H)}_{3}$ $Al(OH)_3$ by the mass of one antacid tablet to arrive at our answer.

$\frac{2.34 \cdot 10^{3} m g}{520 m g} = 4.5$ $(2.34*10^3 mg)/(520mg) = 4.5$ tablets

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