In Deacon process, gas phase reaction was carried out in isothermal batch reactor to form chlorine (Cl2) and water (H20) according to the reaction equation below. 4HCI + 02 - 2cl, + 2H20 An equal...


In Deacon process, gas phase reaction was carried out in isothermal batch reactor<br>to form chlorine (Cl2) and water (H20) according to the reaction equation below.<br>4HCI + 02 - 2cl, + 2H20<br>An equal molar of HCI and O2 are fed to the reactor with total pressure of 4.7 atm<br>and 300 °C as reaction temperature. By taking HCl as limiting reactant, the following<br>experimental data were recorded from constant batch reactor volume:<br>Table 1 Experimental data in an isothermal batch reactor<br>t (min)<br>P (atm)<br>50<br>100<br>150<br>250<br>1.04 0.916 0.817<br>200<br>300<br>2.35<br>1.78<br>1.44<br>1.20<br>Rate law of the above reaction respond to -TA=KCA°CBP, in which B is zero order with<br>respect to oxygen. Given R as 0.082 atm. dm/mol. K.<br>Construct a stoichiometric table and determine the reaction order and the rate<br>constant using numerical method (differentiation).<br>

Extracted text: In Deacon process, gas phase reaction was carried out in isothermal batch reactor to form chlorine (Cl2) and water (H20) according to the reaction equation below. 4HCI + 02 - 2cl, + 2H20 An equal molar of HCI and O2 are fed to the reactor with total pressure of 4.7 atm and 300 °C as reaction temperature. By taking HCl as limiting reactant, the following experimental data were recorded from constant batch reactor volume: Table 1 Experimental data in an isothermal batch reactor t (min) P (atm) 50 100 150 250 1.04 0.916 0.817 200 300 2.35 1.78 1.44 1.20 Rate law of the above reaction respond to -TA=KCA°CBP, in which B is zero order with respect to oxygen. Given R as 0.082 atm. dm/mol. K. Construct a stoichiometric table and determine the reaction order and the rate constant using numerical method (differentiation).

Jun 10, 2022
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