The decomposition of A into product has value of k as 4.5 × 103 s–1 at 10°C and energy of activation 60 kJ mol–1. At what temperature would k be 1.5 × 104s–1?

 
From the Arrhenius equation, we obtain
logk2k1=Ea2.303 RT2-T1T1T2
Also , k1=4.5×103 s-1
T1=273+10=283 K 
k2=1.5 ×104 s-1
Ea=60 KJ mol-1 =6.0 ×104 J mol-1
Then, 
log1.5×1044.5×103=6.0×104Jmol12.303×8.314JK1mol1(T2283283T2)0.5229=3133.627(T2283283T2)0.5229×283T23133.627=T22830.0472T2=T22830.9528T2=283T2=297.019K (approximately)=297K=24CHence, k would be 1.5×104s1at 24C.