PF1010 HAM 2425 Tutorial 3 Slides PDF
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This document presents a tutorial on thermochemistry, focusing on problems involving enthalpy calculations for chemical reactions, including the reaction of glucose and oxygen, and calculations using enthalpies of formation. Concepts of balanced chemical equations are involved.
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Tutorial. Thermochemistry problems A. Given the enthalpies of formation (at 298 K) of fumaric acid and maleic acid are −807.6 and −784.4 kJ mol−1 respectively, determine Hrxn for the following process. maleic acid → fumaric acid (at 298 K) B. Glucose (C6H12O6) is metab...
Tutorial. Thermochemistry problems A. Given the enthalpies of formation (at 298 K) of fumaric acid and maleic acid are −807.6 and −784.4 kJ mol−1 respectively, determine Hrxn for the following process. maleic acid → fumaric acid (at 298 K) B. Glucose (C6H12O6) is metabolised in the presence of oxygen (O2) to give carbon dioxide (CO2) and water (H2O). (i) Write a balanced equation for the reaction of glucose and oxygen to give carbon dioxide and water (ii) Using the following data (305 K), calculate the enthalpy of the process. Hf⁰ C6H12O6 (s) = −1273.0 kJ mol−1 Hf⁰ O2 (g) = 0 kJ mol−1 (element) Hf⁰ H2O (l) = −285.8 kJ mol−1 Hf⁰ CO2 (g) = −393.5 kJ mol−1 Thermochemistry tutorial A. Given the enthalpies of formation (at 298 K) of fumaric acid and maleic acid are −807.6 and −784.4 kJ mol−1 respectively, determine Hrxn for the following process. maleic acid → fumaric acid (at 298 K) Thermochemistry tutorial answers A. Given the enthalpies of formation (at 298 K) of fumaric acid and maleic acid are −807.6 and −784.4 kJ mol−1 respectively, determine Hrxn for the following process. maleic acid → fumaric acid (at 298 K) ΔHrxn = (-807.6) – (-784.4) = - 23.3 kJ mol-1 Thermochemistry tutorial answers B. Glucose (C6H12O6) is metabolised in the presence of oxygen (O2) to give carbon dioxide (CO2) and water (H2O). (i) Write a balanced equation for the reaction of glucose and oxygen to give carbon dioxide and water (ii) Using the following data (305 K), calculate the enthalpy of the process. Hf⁰ C6H12O6 (s) = −1273.0 kJ mol−1 Hf⁰ O2 (g) = 0 kJ mol−1 (element) Hf⁰ H2O (l) = −285.8 kJ mol−1 Hf⁰ CO2 (g) = −393.5 kJ mol−1 First need balanced equation C6H12O6 + O2 → CO2 + H2O not balanced Thermochemistry tutorial answers B. Glucose (C6H12O6) is metabolised in the presence of oxygen (O2) to give carbon dioxide (CO2) and water (H2O). (i) Write a balanced equation for the reaction of glucose and oxygen to give carbon dioxide and water (ii) Using the following data (305 K), calculate the enthalpy of the process. Hf⁰ C6H12O6 (s) = −1273.0 kJ mol−1 Hf⁰ O2 (g) = 0 kJ mol−1 (element) Hf⁰ H2O (l) = −285.8 kJ mol−1 Hf⁰ CO2 (g) = −393.5 kJ mol−1 First need balanced equation C6H12O6 + O2 → CO2 + H2O not balanced C6H12O6 + 6 O2 → 6 CO2 + 6 H2O balanced Then use thermochemical data Hf⁰ C6H12O6 (s) = −1273.0 kJ mol−1 Hf⁰ O2 (g) = 0 kJ mol−1 (element) Hf⁰ H2O (l) = −285.8 kJ mol−1 Hf⁰ CO2 (g) = −393.5 kJ mol−1 C6H12O6 + 6 O2 → 6 CO2 + 6 H2O balanced ΔHrxn = [6(-393.5) + 6(-285.8)] – [(-1273.0) + 6(0)] = -2802.8 kmol-1
