HERMODYNAMICS: Given the following hypothetical thermochemical equations: 2QJ3 (g) + 3Q2X (g) → 4Q2 (g) + 3J2X (I) 4QJ3 (g) + 3X2 (g) → 2Q2 (g) + 6J2X (1) Calculate the value of AH (in kJ) for the reaction: AH = -1098.5 kJ AH = -1505.8 kJ Q2 (g) + ½ X2 (g) → Q2X (g) (Round off final answer to ONE decimal place)

Introduction to Chemical Engineering Thermodynamics
8th Edition
ISBN:9781259696527
Author:J.M. Smith Termodinamica en ingenieria quimica, Hendrick C Van Ness, Michael Abbott, Mark Swihart
Publisher:J.M. Smith Termodinamica en ingenieria quimica, Hendrick C Van Ness, Michael Abbott, Mark Swihart
Chapter1: Introduction
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HERMODYNAMICS: Given the following hypothetical thermochemical equations:
2QJ3 (g) + 3Q2X (g) → 4Q2 (g) + 3J2X (I)
AH = -1098.5 kJ
4QJ3 (g) + 3X2 (g) 2Q2 (g) + 6J2X (1)
AH = -1505.8 kJ
Calculate the value of AH (in kJ) for the reaction:
Q2 (g) + ½ X2 (g) → Q2X (g)
(Round off final answer to ONE decimal place)
Transcribed Image Text:HERMODYNAMICS: Given the following hypothetical thermochemical equations: 2QJ3 (g) + 3Q2X (g) → 4Q2 (g) + 3J2X (I) AH = -1098.5 kJ 4QJ3 (g) + 3X2 (g) 2Q2 (g) + 6J2X (1) AH = -1505.8 kJ Calculate the value of AH (in kJ) for the reaction: Q2 (g) + ½ X2 (g) → Q2X (g) (Round off final answer to ONE decimal place)
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