Question
I have part 1 and 2 but part 3 is a no go. how do
I even?

The process illustrated here takes place at constant pressure. Reaction
Write a balanced equation for the process. (Do not include states of matter.) x x He . 250, +02 —> 2803 Part 2 (1 point) See
Using data from the back of the textbook, calculate the AHⓇxn for the formation of 8.00 moles of product.


5) Alf SO₃ = -395.7ksimal ДНf S0; e-241. Оқу mol Дg O2 = би тој
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Answer #1

Part 3 : \DeltaHorxn = -791.2 kJ

Explanation

The balanced equation for formation of 1 mole of product is :

SO2 (g) + 1/2 O2 (g) \rightarrow SO3 (g)

\DeltaHo = \DeltaHof products - \DeltaHof reactants

\DeltaHo = \DeltaHof SO3 (g) - [\DeltaHof SO2 (g) + (1/2) * (\DeltaHof O2 (g))]

\DeltaHo = (-395.7 kJ/mol) - [(-296.8 kJ/mol) + (1/2) * (0)]

\DeltaHo = -395.7 kJ/mol + 296.8 kJ/mol

\DeltaHo = -98.9 kJ/mol

\DeltaHorxn = (\DeltaHo) * (moles SO3 formed)

\DeltaHorxn = (-98.9 kJ/mol) * (8.00 mol)

\DeltaHorxn = -791.2 kJ

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