question assume that 50.0ml of 1.0mnacl(aq) and 50.0ml of 1.0magno3(aq) were combined. according to the balanced equation, if 50.0ml of 2.0mnacl(aq) and 50.0ml of 1.0magno3(aq) were combined, the amount of precipitate formed wouldquestion assume that 50.0ml of 1.0mnacl(aq) and 50.0ml of 1.0magno3(aq) were combined. according to the balanced equation, if 50.0ml of 2.0mnacl(aq) and 50.0ml of 1.0magno3(aq) were combined, the amount of precipitate formed would



Answer :

If 50.0ml of 2.0mnacl(aq) and 50.0ml of 1.0magno3(aq) were combined, the amount of precipitate formed would not change because the amount of AgCl did not change.

A silver nitrate solution is mixed with a sodium chloride solution. Although the resulting solution contains Na+, Ag+, Cl-, and NO3-, AgCl is not water soluble. Because Ag+ is now present in solution with Cl-, the two will react to form AgCl, which will precipitate from the solution.

If an ion is insoluble according to the solubility rules, it will combine with an ion from another reactant to form a solid. If all of the ions in a reaction are discovered to be soluble, there will be no precipitate formed.

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Complete question :

A student combines a solution of NaCl(aq) with a solution of AgNO3(aq), and a precipitate forms.

Assume that 50.0mL of 1.0MNaCl(aq) and 50.0mL of 1.0MAgNO3(aq) were combined. According to the balanced equation, if 50.0mL of 2.0MNaCl(aq) and 50.0mL of 1.0MAgNO3(aq) were combined, the amount of precipitate formed would