The rate constant for the decomposition of hydrocarbons is 2.418 × 10–5s–1 at 546 K. If the energy of activation is 179.9 kJ/mol, what will be the value of pre-exponential factor.

k=2.418×10-s s-1
T=546 K
Ea=179.9 kl mol-1=179.9×103 j mol-1
According to the Arrhenius equation,
ln k=ln A-EaRT
log k=log A-Ea2.303 RT
log A= log k+Ea2.303 RT
=log(2.418×10-5s-1) +179.9×103 J mol-12.303×8.314 JK-1 ×546 K
=(0.3835-5) +17.2082
=12.5917
Therefore, A = antilog (12.5917)
3.9×1012 s-1 (approximately)