Consider the combustion of butane: 2 C4H10 (g) + 13 O2 (g) ⟶ 8 CO2 (g) + 10 H2O (l) ∆Hrxn = −2878 kJ/mol a) How much heat will be released if 425 mL of butane gas at 45°C and 792 mmHg is burned in the reaction above? b) If 495 kJ of heat are released during the reaction above, how many grams of carbon dioxide will be formed?

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Consider the combustion of butane: 2 C4H10 (g) + 13 O2 (g) ⟶ 8 CO2 (g) + 10 H2O (l) ∆Hrxn = −2878 kJ/mol

a) How much heat will be released if 425 mL of butane gas at 45°C and 792 mmHg is burned in the reaction above?

b) If 495 kJ of heat are released during the reaction above, how many grams of carbon dioxide will be formed?

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