Answers to Review Questions
1.
0.0142g KCl x 1 mol KCl x 1.0 ml solution x 1000 ml =
1.91 x 10-5 mol/ liter
100 ml soln 74.5 g KCl 100 ml soln
1 liter
1.91
x 10-5 mol Cl- x 35.5 g Cl- x 1 liter
soln x 106 = 0.678 ppm
liter
soln
mol Cl- 103 g
soln
2. 0.0100
g Pb x 331.2 g Pb(NO3)2 x 100 ml = 1.598 g Pb(NO3)2
ml
207.2 g Pb
3.
1.00 microg Pb x 1 g Pb x 331.2 g Pb(NO3)2
x 100 ml = 1.598 x 10-4 g Pb(NO3)2
ml 106
microg Pb 207.2 g Pb
Too little to weigh accurately. Make 100 ml of a solution using 100 times as much Pb(NO3)2. Then dilute 1 ml of this to 100 ml to obtain the desired solution.
4. (5 ppm /1.94) x 1.02 = 2.63 ppm in the sample.
Assuming that the response of the instrument is linear in the range covered by the sample and standard.
5. All the Cu in the 25 ml extract was originally contained in 1 liter of sample.
4.8 ppm x 25/1000 = 0.12 ppm
or 10.9 ug/m3
69.8 g volatiles x (2.45 g water/2.574 g volatiles) = 66.5 g water
Totals 100-69.8 = 30.2 % solids, 66% water, 3.8% other volatiles