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More Heat Calculations What have we done?. We can figure out heat values and then put them into kJ / mole.

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Presentation on theme: "More Heat Calculations What have we done?. We can figure out heat values and then put them into kJ / mole."— Presentation transcript:

1 More Heat Calculations What have we done?

2 We can figure out heat values and then put them into kJ / mole

3 What have we done? We can figure out heat values and then put them into kJ / mole We can put heat on the correct side of the equation and then do STOICH!

4 What have we done? We can figure out heat values and then put them into kJ / mole We can put heat on the correct side of the equation and then do STOICH! Hess’s Law problems

5 What have we done? We can figure out heat values and then put them into kJ / mole We can put heat on the correct side of the equation and then do STOICH! Hess’s Law problems Now, let’s calculate heat by just having the equation

6 Heat of formation CH 4 (g) + 2O 2 (g) ==> CO 2 (g) + 2H 2 O (g)  H = ? Find the Standard Heat of Formation for each substance. Hº f

7 Hº f Hº f  how it exists at 1 atm and 25ºC.

8 Hº f Hº f --> how it exist at 1 atm and 25 °C. Get used to seeing °

9 Hº f Hº f  how it exist at 1 atm and 25ºC. Get used to seeing ° For elements and diatomics molecules Hº f = 0

10 Hº f Hº f --> how it exists at 1 atm and 25ºC. Get used to seeing ° For elements and diatomics molecules Hº f =0 The rest - Look at Appendix

11 Hº f Hº f --> how it exists at 1 atm and 25 ºC. Get used to seeing ° For elements and diatomics molecules Hº f = 0 The rest - Look at Appendix Coefficients act as multipliers. WHY? Look at units.

12 Hº f Hº f --> how it exists at 1 atm and 25 ºC. Get used to seeing ° For elements and diatomics molecules Hº f = 0 The rest - Look at Appendix 4 page A21 Coefficients act as multipliers. WHY? Look at units. Always!  H = ∑P - ∑R ∑=sum

13 Hº f Remember! Hº f is the change in enthalpy that accompanies the formation of 1 mole of a compound from its elements. Therefore: In order to find the Hº f of a compound, you need to break it up into individual elements! Ca(s) + S(s) + 2O 2 (g)  CaSO 4 (s)

14 Hº f CH 4 (g) + 2O 2 (g) ==> CO 2 (g) + 2H 2 O(g)  H = ? Look up values. Make sure you have correct states of matter.

15 Hº f CH 4 (g) + 2O 2 (g) ==> C0 2 (g) + 2H 2 0(l)  H = ? ((-75 kJ) + 2(0kJ)) ==> ((-393.5kJ) + 2(-242kJ))

16 Hº f CH 4 (g) + 2O 2 (g) ==> C0 2 (g) + 2H 2 0(l)  H = ? ((-75 kJ) + 2(0kJ)) ==> ((-393.5kJ) + 2(-242kJ)) -75 kJ ==> -393.5 kJ + -484kJ -877.5 kJ

17 Hº f CH 4 (g) + 2O 2 (g) ==> C0 2 (g) + 2H 2 0g)  H = ? ((-75 kJ) + 2(0kJ)) ==> ((-393.5kJ) + 2(-242kJ)) -75 kJ ==> -393.5 kJ + -484 kJ -877.5 kJ  H = -877.5 kJ - (-75 kJ)  H = -802.5 kJ

18 Hº f Problems Calculate the standard change in enthalpy for the following reaction. 2 Al(s) + Fe 2 0 3 (s)  Al 2 0 3 (s) + 2 Fe(s)

19 One More 2) Students tend not to like this format! a) Write the combustion reaction for methanol. b)For the combustion of methanol,  H, is equal to -1454 kJ. Find the heat of formation of methanol given only the information below. H° f for CO 2 (g) = -393.5 kJ/mole H° f for H 2 O (g) = -242 kJ/mole

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