Higher chemistry enthalpy question
Hi all,
I'm struggling with a past paper question using hess' law -
5C + 6H2O + 1/2O2 ----> C5 H11 OH
The question is 'the enthalpy for formation of pentan-1-ol is deltaH = -354 kJ/mol. Using this and the enthalpies of combustion of carbon and hydrogen, calculate the enthalpy of combustion of pental-1-ol'
I thought the answer would be an addition of:
Pentan-1-ol = -354 for formation, so +354 for combustion to gives the intermediate products (CO2 and H2O)
Then, from the intermediate products to 5C and 6H2 you would add...
carbon = -394 for combustion, so 5x394 = 1970
Hydrogen = -286 for combustion, so 6x286 = 1716
Overall --> 354 + 1970 + 1716 = 4040
BUT The answer booklet says that the figures for carbon and hydrogen should be negative (i.e. just the enthalpies of combustion) and I don't understand why.... wouldn't that mean you were adding all the enthalpy changes that lead to the intermediate products, rather than the final products of combustion (on the left side of the given equation??)
Any help would be appreciated, thank you!
I'm struggling with a past paper question using hess' law -
5C + 6H2O + 1/2O2 ----> C5 H11 OH
The question is 'the enthalpy for formation of pentan-1-ol is deltaH = -354 kJ/mol. Using this and the enthalpies of combustion of carbon and hydrogen, calculate the enthalpy of combustion of pental-1-ol'
I thought the answer would be an addition of:
Pentan-1-ol = -354 for formation, so +354 for combustion to gives the intermediate products (CO2 and H2O)
Then, from the intermediate products to 5C and 6H2 you would add...
carbon = -394 for combustion, so 5x394 = 1970
Hydrogen = -286 for combustion, so 6x286 = 1716
Overall --> 354 + 1970 + 1716 = 4040
BUT The answer booklet says that the figures for carbon and hydrogen should be negative (i.e. just the enthalpies of combustion) and I don't understand why.... wouldn't that mean you were adding all the enthalpy changes that lead to the intermediate products, rather than the final products of combustion (on the left side of the given equation??)
Any help would be appreciated, thank you!
Original post by chem1
Hi all,
I'm struggling with a past paper question using hess' law -
5C + 6H2O + 1/2O2 ----> C5 H11 OH
The question is 'the enthalpy for formation of pentan-1-ol is deltaH = -354 kJ/mol. Using this and the enthalpies of combustion of carbon and hydrogen, calculate the enthalpy of combustion of pental-1-ol'
I thought the answer would be an addition of:
Pentan-1-ol = -354 for formation, so +354 for combustion to gives the intermediate products (CO2 and H2O)
Then, from the intermediate products to 5C and 6H2 you would add...
carbon = -394 for combustion, so 5x394 = 1970
Hydrogen = -286 for combustion, so 6x286 = 1716
Overall --> 354 + 1970 + 1716 = 4040
BUT The answer booklet says that the figures for carbon and hydrogen should be negative (i.e. just the enthalpies of combustion) and I don't understand why.... wouldn't that mean you were adding all the enthalpy changes that lead to the intermediate products, rather than the final products of combustion (on the left side of the given equation??)
Any help would be appreciated, thank you!
I'm struggling with a past paper question using hess' law -
5C + 6H2O + 1/2O2 ----> C5 H11 OH
The question is 'the enthalpy for formation of pentan-1-ol is deltaH = -354 kJ/mol. Using this and the enthalpies of combustion of carbon and hydrogen, calculate the enthalpy of combustion of pental-1-ol'
I thought the answer would be an addition of:
Pentan-1-ol = -354 for formation, so +354 for combustion to gives the intermediate products (CO2 and H2O)
Then, from the intermediate products to 5C and 6H2 you would add...
carbon = -394 for combustion, so 5x394 = 1970
Hydrogen = -286 for combustion, so 6x286 = 1716
Overall --> 354 + 1970 + 1716 = 4040
BUT The answer booklet says that the figures for carbon and hydrogen should be negative (i.e. just the enthalpies of combustion) and I don't understand why.... wouldn't that mean you were adding all the enthalpy changes that lead to the intermediate products, rather than the final products of combustion (on the left side of the given equation??)
Any help would be appreciated, thank you!
Check out this interactive on Hess's law... it should help.
Quick Reply
Related discussions
- AQA A Level Chemistry Thermodynamics
- Chemistry Olympiad question
- As level chemistry
- Enthalpy change
- enthalpy question
- Chemistry question- energetics
- Chemistry ocr a level enthalpy
- Chemistry question- enthalpy of formation
- Chemistry help pleaseee !!!! 🙏🙏🙏
- AQA A Level Chemistry Paper 3 7405/3 - 23 Jun 2022 [Exam Chat]
- Chemistry a level enthalpy
- higher chemistry assignment sqa
- enthalpy changes
- energetics a level chem help!
- 2Al(s) Fe2O3(s) → Al2O3(s) 2Fe(s), struggling with this question
- Lattice enthalpy A2 chem question!
- Edexcel A Level Chemistry Paper 3 2023
- Chemistry Help: Bond Enthalpies
- Chemistry help ( please 😭😭 )
- Polarising effect A level Chem
Latest
Last reply 5 minutes ago
year 13 gyg journal : trying not to become an academic victim 🤡📖Last reply 6 minutes ago
NICS Staff Officer and Deputy Principal recruitment 2022 2023Last reply 7 minutes ago
Rishi Sunak pledges to remove benefits for people not taking jobs after 12 monthsLast reply 8 minutes ago
Official: University of Bristol A100 2024 Entry ApplicantsLast reply 11 minutes ago
Can I do medicine with these gcse grades and what unis would be most likely to acceptPosted 13 minutes ago
Worried about son who wants to move out, will he be able to afford it?Last reply 14 minutes ago
Work experience opportunity related to finance/economiczLast reply 18 minutes ago
Official UCL Offer Holders Thread for 2024 entry
