2. Use the collision theory of gas-phase reactions to calculate the theoretical value of the second-order rate constant for the elementary reaction H2 + I2 → HI + HI at 650 K. The collision cross-section is 0.36 nm², the reduced mass is 3.32 × 10-27 kg, and the activation energy is 171 kJ mol·'. (Assume a steric factor of 1.)
2. Use the collision theory of gas-phase reactions to calculate the theoretical value of the second-order rate constant for the elementary reaction H2 + I2 → HI + HI at 650 K. The collision cross-section is 0.36 nm², the reduced mass is 3.32 × 10-27 kg, and the activation energy is 171 kJ mol·'. (Assume a steric factor of 1.)
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
Section: Chapter Questions
Problem 1.1P
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![2. Use the collision theory of gas-phase reactions to calculate the theoretical value of the
second-order rate constant for the elementary reaction H2 + I2 → HI + HI at 650 K. The
collision cross-section is 0.36 nm?, the reduced mass is 3.32 × 10-27 kg, and the activation
energy is 171 kJ mol-!. (Assume a steric factor of 1.)](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F06465a42-dc5d-4d83-97e2-b683e56c0a23%2Fa8bb11fc-df44-48df-881d-fa92c1141a11%2F6sngi9p_processed.png&w=3840&q=75)
Transcribed Image Text:2. Use the collision theory of gas-phase reactions to calculate the theoretical value of the
second-order rate constant for the elementary reaction H2 + I2 → HI + HI at 650 K. The
collision cross-section is 0.36 nm?, the reduced mass is 3.32 × 10-27 kg, and the activation
energy is 171 kJ mol-!. (Assume a steric factor of 1.)
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