1
$\begingroup$

These are the problem from UKChO-2015.

Given the standard enthalpy changes of combustion ($\Delta_\mathrm{c}H$) for heptane ($n = 7$) and octane ($n = 8$) are $-4816$ and $-5470~\mathrm{kJ~mol^{-1}}$ respectively, calculate $\Delta_\mathrm{c}H$ of dodecane ($n = 12$).

Any hint on regarding this problem? My efforts are not worth mentionable here

$\endgroup$
  • 3
    $\begingroup$ It seems it expects you to assume that the enthalpy is proportional to the number of CH2 units in the alkane. $\endgroup$ – gsurfer04 Feb 14 '17 at 12:51
  • $\begingroup$ It's just computed from changes in bonding. Write out the balanced equations. Figure out the number of bonds broken, and solve some algebra. $\endgroup$ – Zhe Feb 14 '17 at 19:35
  • $\begingroup$ @ Zhe It's an Olympiad problem man. They don't expect you to do it so easily. The problem's needs to be done without bond enthalpy just using the information given in the question. $\endgroup$ – Mockingbird Feb 15 '17 at 5:12
3
$\begingroup$

Heptane is $\ce{CH3-CH2(5)-CH3}$

Octane is $\ce{CH3-CH2(6)-CH3}$

Given combustion enthalpies for each of $-4816$ and $-5470~\mathrm{kJ~mol^{-1}}$ respectively, we now have a simple set of algeraic equations:

5A + 2B = $-4816~\mathrm{kJ~mol^{-1}}$

6A + 2B = $-5470~\mathrm{kJ~mol^{-1}}$

First we can solve for A as the combustion enthaply of a CH2 in a linear hydrocarbon and we get the value $-654~\mathrm{kJ~mol^{-1}})$.

We can now solve for B,

In the first equation we get 2B = ($-4816 - (654 * 5)~\mathrm{kJ~mol^{-1}}$, A = $-773~\mathrm{kJ~mol^{-1}}$

In the second equation we get 2B = ($-5470 - (654 * 6)~\mathrm{kJ~mol^{-1}}$ , A = $-773~\mathrm{kJ~mol^{-1}}$

dodecane has CH3-CH2(10)-CH3 , for 10A + 2B.

10 * A + 2 * B = ($-6540$ + $-1546$)$~\mathrm{kJ~mol^{-1}}$ = $-8086~\mathrm{kJ~mol^{-1}}$

$\endgroup$
  • $\begingroup$ By way of comparison, the enthalpy of combustion that can be calculated from the enthalpy of formation given in the CRC Handbook is $-8087\ \mathrm{kJ\ mol^{-1}}$. $\endgroup$ – Loong Feb 16 '17 at 13:16
2
$\begingroup$

About $-8086~\mathrm{kJ~mol^{-1}}$.

Take the difference of the two givens and multiply by the difference of carbons between dodecane and octane.

$\endgroup$
  • $\begingroup$ So you mean the difference in enthalpy is proportional to difference of number of carbon atoms between two alkanes? $\endgroup$ – Mockingbird Feb 16 '17 at 11:24
  • 2
    $\begingroup$ @Mockingbird I think this answer makes much more sense. Your answer neglects the fact that there are $\ce{CH3}$ groups at both ends which also get oxidised. To a first approximation those contribute a constant amount to $\Delta_\mathrm{c}H$. How much is this constant amount? You can work it out from the data given, but in fact you don't really need to know. All you need to know is each $\ce{CH2}$ group contributes 5470 - 4816 = 654 kJ/mol and hence dodecane is 5470 + 4(654) = 8086 kJ/mol. (With the negative signs, of course.) $\endgroup$ – orthocresol Feb 16 '17 at 12:39
  • 1
    $\begingroup$ @user41388 I'd recommend you edit your answer to include at least a minimal amount of working. $\endgroup$ – orthocresol Feb 16 '17 at 12:40
  • 1
    $\begingroup$ I'd put it this way. Take five octanes. Cut CH2 fragments from four of them and paste those into the fifth one. So, 5*octane = 4*heptane+dodecane. The same goes for enthalpies. $\endgroup$ – Ivan Neretin Feb 16 '17 at 13:00
0
$\begingroup$

I wasn't first sure about this concept. But after seeing a gsurfer04's comment and working out a little bit, it became clear.

Alkanes combustion enthalpy is roughly proportional to the number of methylene(-CH2) groups it has. (You can simply work out the example given in the question)

So, number of methylene groups in dodecane 10 number of methylene groups in octane 6

So, dodecane's enthalpy= octane's enthalpy*(10/6)

$\endgroup$

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.