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could someone please answer this (1 Viewer)

ta1g

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0.02 L of 0.05mol/L potassium hydroxide was titrated with sulphuric acid four times. The first titration was a rough one, so the mean volume of acid used was found from the other three. It was 0.0205 L. Find the concentration of the sulphuric acid?
 

serge

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ta1g said:
0.02 L of 0.05mol/L potassium hydroxide was titrated with sulphuric acid four times. The first titration was a rough one, so the mean volume of acid used was found from the other three. It was 0.0205 L. Find the concentration of the sulphuric acid?
2KOH + H2S04 --> 2H20 +K2SO4

so for every mole that reacts you need

2n(KOH)= 1n(H2SO4)

n=cv

2 x 0.02 x 0.05 = 0.205 x c(H2SO4)

c= 9.8 x10^-3

tell me if i messed up people...
 
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Dreamerish*~

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2KOH + H2SO4 → K2SO4 + 2H2O

KOH: 0.02 x 0.05 = 0.001 moles
H2SO4: 0.0205 x M moles

Molar ratio = 2:1

. : 0.001 moles of KOH will react with 0.0005 moles of H2SO4.

0.0005 moles of H2SO4 in 0.0205 L.

. : M = 0.0005/0.0205 = 0.024 (2 d.p.)

I sure hope I'm right.
 

Dreamerish*~

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Alternatively, this is a formula which I should (but rarely) use. :p Probably because it becomes confusing in these cases:

2KOH + H2SO4 → K2SO4 + 2H2O

Since the molar ratio is 2:1,

C1V1/C2V2 = 2 (1 being KOH and 2 being H2SO4)

C1V1 = 2C2V2

0.05 x 0.02 = 2(C2 x 0.0205)

Working it out, C2 = 0.024 (2 d.p.)

Gosh, I hate this method. If not for the answer being the same as my previous one, I'm bloody confused.
 

gosh

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Dreamerish*~ said:
2KOH + H2SO4 → K2SO4 + 2H2O

KOH: 0.02 x 0.05 = 0.001 moles
H2SO4: 0.0205 x M moles

Molar ratio = 2:1

. : 0.001 moles of KOH will react with 0.0005 moles of H2SO4.

0.0005 moles of H2SO4 in 0.0205 L.

. : M = 0.0005/0.0205 = 0.024 (2 d.p.)

I sure hope I'm right.
yeah that looks right
 

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