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Help..2007 HSC paper Q21 c (1 Viewer)

needsomehelp

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I don't know how to do this, can anyone help?


10 mL of 0.005 mol L
–1 H2SO4 was diluted to 100 mL

What volume of 0.005 mol L
–1 KOH is required to neutralise 15 mL of the diluted solution of H2SO4?
 

clintmyster

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using the formula c1v1 = c2v2,

C2 = c1v1/v2
= 0.010 x 0.005 / 0.100
= 5 x 10^(-4)

Therefore moles of sulfuric acid = C x V = 5 x 10^(-4) x 0.015 = 7.5 x 10^(-6)

Now 2KOH + H2SO4 --> K2SO4 + 2H2O

There is a 2:1 mole ratio between KOH and H2SO4 Therefore multiple moles of sulfuric acid by 2

now C = n/v therefore V = n/C
so V = 7.5 x 10^(-6) / 0.005 = 0.003 L or 3 mL
 

boxhunter91

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using the formula c1v1 = c2v2,

C2 = c1v1/v2
= 0.010 x 0.005 / 0.100
= 5 x 10^(-4)

Therefore moles of sulfuric acid = C x V = 5 x 10^(-4) x 0.015 = 7.5 x 10^(-6)

Now 2KOH + H2SO4 --> K2SO4 + 2H2O

There is a 2:1 mole ratio between KOH and H2SO4 Therefore multiple moles of sulfuric acid by 2

now C = n/v therefore V = n/C
so V = 7.5 x 10^(-6) / 0.005 = 0.003 L or 3 mL
That looks right.
I remember doing this Question and thinking wth 3mL as an answer.
 

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