Doubts regarding solubility product problem

Join the discussion
Ask a follow-up here, or get your own question answered by working scientists, mathematicians and engineers — people, not an autocomplete.
Real named experts · corrections over time · the nuance an AI answer skips
3 replies · 2K views
gracy
Messages
2,486
Reaction score
83
As I am also attaching solution along with the problem there is no point in posting this thread in homework forums .
In the following question (solution is also there) https://s29.postimg.org/omlnt73lz/IMG_20170407_090748.jpg https://s18.postimg.org/hsuxm5uvt/IMG_20170407_090805.jpg why are we taking volume= 2 ? I know it's a mixture of two solutions of equal volumes but it's no where mentioned in the question that volume of each solution is 1 litre .
Another query regarding the Same problem is that why are we even bothered about the volume?we are directly given the concentrations of Ag and Cl (in the options. just look at the units , it's M that means molarity which is unit of concentration.) If it would have been number of moles then we would have required to divide it by volume to get concentration. Please Clear my doubts.
 
Chemistry news on Phys.org
1. It doesn't matter what the volume is - as long as you mix two equal volumes when trying to calculate concentration after the dilution you will get something like [itex]\frac V {V+V}[/itex] where the V cancels out leaving you with [itex]\frac 1 2[/itex]. As V cancels out, we can safely ignore it.

2. They never assumed the volume to be 1 L, they just halved the concentration for the reason explained above.

3. But then, actually there is nothing wrong with assuming volume of 1L (or any other). All that is important is that you assume equal volumes and 1L is much easier to use in further calculations than - say - 2.7641 gallons.
 
  • Like
Likes   Reactions: gracy
Borek said:
1. It doesn't matter what the volume is - as long as you mix two equal volumes when trying to calculate concentration after the dilution you will get something like VV+VVV+V\frac V {V+V} where the V cancels out leaving you with 1212\frac 1 2. As V cancels out, we can safely ignore it.
If there will be mixture of three solutions of equal volume we will divide it by 3, right?

gracy said:
Another query regarding the Same problem is that why are we even bothered about the volume?we are directly given the concentrations of Ag and Cl (in the options. just look at the units , it's M that means molarity which is unit of concentration.) If it would have been number of moles then we would have required to divide it by volume to get concentration. Please Clear my doubts.
Please try to answer this as well.
 
gracy said:
If there will be mixture of three solutions of equal volume we will divide it by 3, right?

Try to derive it.

Please try to answer this as well.

I don't understand where the problem is. Yes, we are given concentrations, but we have to calculate dilution. And calculating dilution is nothing else but calculating how much substance is put into the final solution (number of moles) and then dividing by the final volume. Yes, to speed up things we often do tricks (like here - dividing by two), but this is just a shortcut to the full calculation.