now i remember that i timesed the moles of the HCL by 2 coz there was 2 moles of it. I shouldntve!!! grrr. Ah well, i recon i nailed the rest of the exam, the majority of it anyway 
The molar ratio was such that you had to halve the number of moles i.e. 0.5 x 0.0136 x 100.09 = 0.68g.katietheseal said:im pretty sure you had to take the excess number moles of hcl away from the original which was 0.015-something like 0.0014, so 0.0136 moles of hcl reacted with the CaCO3, then mass = 0.0136x100.09 or something like that, so about 1.36 grams i got. but everyone getting o.6 has got me worried
lol, but chems over
damn, yep u right im pretty sure, i probably, stupily messed up the simple formula, hope they're not too harsh in the marking~ ReNcH ~ said:
hmm yeah it does seem right~ ReNcH ~ said:
Yea, the ratio required in the titration part was 1:1 i.e. HCl:NaOH. But in the second part (to find the mass of calcium carbonate), you had to use the first equation...I think it was part a) and in this equation the molar ratio was 2 HCl: 1 CaCO3serge said:
Yeah, that sounds right. That was my reasonining at least. I'm pretty sure I also got around 0.6something. I found the question a bit tough though, I've never ran into a question were you had to take into account the excess and use it to find the concentration of the original substance. Never seen it in ANY book I had. Damm you BOS!~ ReNcH ~ said:
