Calculating Precipitate Mass: How Much Can Form in a Chemical Reaction?

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The discussion centers around a chemistry homework question involving the formation of a precipitate from a reaction between barium nitrate and sodium sulfate. The user has calculated the moles of barium nitrate and identified sodium sulfate as the limiting reactant. To determine the maximum precipitate mass, the balanced chemical equation is essential for stoichiometric calculations. Participants suggest focusing on the mole ratio of reactants to products to find the precipitate formed. The conversation emphasizes the importance of understanding stoichiometry for solving such problems.
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I have a question in my Chemistry homework that has to do with precipitates. Theres nothing in my notes what so ever and I ont remember my prof going over any of this. Any help would be appreciated, thanks!

Question:

24.8 g of BA(No3)2 were dissolved in enough water to make 150mL of solution. To this, 25 mL of 0.329 M Na2So4 was added and a precipitate formed.

What is the maximum amount of precipitate, in grams, that can form in this reaction?






so far I have...

moles Ba(NO3)2=24.8 g (1 mole/261.32g)=.0949

moles NA2(SO4)= .025L(.329M)=.008225 mol which is the limiting reactant

now what do i do?! and please don't just give me the answer!
 
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What is the precipitate formed?
What is the ratio of reactants to products? (e.g. if A + 2B --> B2A, then B : B2A is 2 : 1)
Knowing this you can solve.
 
Start with the reaction equation, this is simple stoichiometry.

And post this type of the questions in the homework subforum. I am moving the thread.
 

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