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[SOLVED] Enthalpy of a Reaction
So we are studying the reaction NH4Cl (s) ---> NH3 (g) + HCl (g) and we have it in 4 steps:
1) NH3 (aq) + HCl (aq) ---> NH4Cl (aq) + H2O (l)
enthalpy of reaction per mole NH3: 1569.54 J/mol
enthalpy of reaction per mole HCl: 3358.73 J/mol
2) NH4Cl (s)+ H2O (l)---> NH4Cl (aq) + H2O (l)
enthalpy of reaction per mole NH4Cl: -16129.01 J/mol
3) NH3 (g) ---> NH3 (aq)
delta H=-34640 J/mol
4) HCl (g) ---> HCl (aq)
delta H= -75140 J/mol
I understand that you need to add up the enthalpies, but the sign part confuses me. I am not sure how to pick a sign at each step. Also, for the first step, do I add those two values together to get an overall value for that equation? That's what I though, but I'm not sure.
My idea was add the two from 1) and make it negative, add to it 2) (no sign change), and add to it 3) and 4), both made negative. This results in 88722.75 J/mol, but I'm not sure if I picked the signs correctly.
Thank you.
Homework Statement
Homework Equations
So we are studying the reaction NH4Cl (s) ---> NH3 (g) + HCl (g) and we have it in 4 steps:
1) NH3 (aq) + HCl (aq) ---> NH4Cl (aq) + H2O (l)
enthalpy of reaction per mole NH3: 1569.54 J/mol
enthalpy of reaction per mole HCl: 3358.73 J/mol
2) NH4Cl (s)+ H2O (l)---> NH4Cl (aq) + H2O (l)
enthalpy of reaction per mole NH4Cl: -16129.01 J/mol
3) NH3 (g) ---> NH3 (aq)
delta H=-34640 J/mol
4) HCl (g) ---> HCl (aq)
delta H= -75140 J/mol
The Attempt at a Solution
I understand that you need to add up the enthalpies, but the sign part confuses me. I am not sure how to pick a sign at each step. Also, for the first step, do I add those two values together to get an overall value for that equation? That's what I though, but I'm not sure.
My idea was add the two from 1) and make it negative, add to it 2) (no sign change), and add to it 3) and 4), both made negative. This results in 88722.75 J/mol, but I'm not sure if I picked the signs correctly.
Thank you.