Dashin_Dan
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- 2005
I have very little notes on the CO2 solubility equilibrium. Can anyone help me with this? Any would be great.
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Help with CO2 soulubility equilibrium (1 Viewer)
- Thread starter Dashin_Dan
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nomz
Member
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- Feb 10, 2004
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try the csu hsc online site-
http://hsc.csu.edu.au/chemistry/core/acidic
there's a few notes there...
http://hsc.csu.edu.au/chemistry/core/acidic
there's a few notes there...
funking_you
Member
Dashin_Dan said:
Normally i wouldn't do this, however i've attached a worksheet on Equilibrium Systems, it is very simple to understand.
Equilibrium is such an important concept, and once you get the hang of how to apply its concepts, you'll actually enjoy this part of the syllubus.
Read through, and work through the questions, and i guarantee you'll master this concept.
Any more questions, email me at
george@chemistrycoach.com.au
Cheers,
George
Get the worksheet.....
Last edited by a moderator:
funking_you
Member
Glad be of assistance! if you require any help with the exercises in the worksheet just post your questions here
lfc_reds2003
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- Aug 22, 2004
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ill take u up on that...theChemCoach said:
H2(g) + I2(g) = 2HI(g) Pressure increased
which side is favoured (aren't there same ratio of moles on each side??)
Danni07
happy little vegemite
I asked my teacher he said it's almost like a trick question, and the equilibrium doesn't shift
Trev
stix
aural_sax05;
since the same ratio of moles on both sides, the equilibrium doesn't shift to either side.
correct me if i'm wrong chemcoach, ps. thanx for sheet!
since the same ratio of moles on both sides, the equilibrium doesn't shift to either side.
correct me if i'm wrong chemcoach, ps. thanx for sheet!
funking_you
Member
Download the EQUILIBRIUM SYSTEM'S document in my early thread.
Pressure and Volume changes only affect GASEOUS equilibrium systems, and if there is an EQUAL amount of gases moles on each side of the reaction, the changes (increase/decreases) have no effect on the equilibrium.
Why?
This is because pressure is directly related to the number of molecules, and hence if there is the same number of molecules (and hence moles) on both sides, the pressure would be just about the same too.
Its not a 'TRICK' question, just examines whether you understand the finer point of equilibriums.
TREV, you got it correct, well done mate!
Keep studying everyone,
George
Pressure and Volume changes only affect GASEOUS equilibrium systems, and if there is an EQUAL amount of gases moles on each side of the reaction, the changes (increase/decreases) have no effect on the equilibrium.
Why?
This is because pressure is directly related to the number of molecules, and hence if there is the same number of molecules (and hence moles) on both sides, the pressure would be just about the same too.
Its not a 'TRICK' question, just examines whether you understand the finer point of equilibriums.
TREV, you got it correct, well done mate!
Keep studying everyone,
George
lfc_reds2003
Member
- Joined
- Aug 22, 2004
- Messages
- 357
good i just leanrt that today
thanks anyway y'all
Gl in chemistry all u 05ers
thanks anyway y'all
Gl in chemistry all u 05ers
the solubility of carbon dioxide in water depends on:
- pressure
- temperature
The equilibrium of carbon dioxide in water can be described using the following:
CO2 (g) <=====> CO2 (aq)
CO2(aq)+ H2O(l) <======> H2CO3 (aq)
H2CO3(aq) + H2O(l) <======> HCO3-(aq) + H3O+(aq)
HCO3-(aq) + H2O(l) <=====> H3O (aq)+ + CO3 2- (aq)
now, increasing the pressure means that the equilibrium will shift to the right (as described by Le chat's priniciple) because the sytem wants to decrease the CO2 (g) by dissolving the gas and therefore reducing the pressure of the system.
now, increasing the temperature means that the system favours the endothermic reaction.
- pressure
- temperature
The equilibrium of carbon dioxide in water can be described using the following:
CO2 (g) <=====> CO2 (aq)
CO2(aq)+ H2O(l) <======> H2CO3 (aq)
H2CO3(aq) + H2O(l) <======> HCO3-(aq) + H3O+(aq)
HCO3-(aq) + H2O(l) <=====> H3O (aq)+ + CO3 2- (aq)
now, increasing the pressure means that the equilibrium will shift to the right (as described by Le chat's priniciple) because the sytem wants to decrease the CO2 (g) by dissolving the gas and therefore reducing the pressure of the system.
now, increasing the temperature means that the system favours the endothermic reaction.