CameraIcon
CameraIcon
SearchIcon
MyQuestionIcon
MyQuestionIcon
1
You visited us 1 times! Enjoying our articles? Unlock Full Access!
Question

The volume of a closed reaction vessel in which the equilibrium 2SO2(g)+O2(g)2SO3(g) sets is halved now:

A
the rates of forward and backward reactions will remain the same .
No worries! We‘ve got your back. Try BYJU‘S free classes today!
B
the equilibrium will not shift
No worries! We‘ve got your back. Try BYJU‘S free classes today!
C
the equilibrium will shift to the right
No worries! We‘ve got your back. Try BYJU‘S free classes today!
D
the rate of forward reaction will become double that of reverse reaction and the equilibrium will shift to the right
Right on! Give the BNAT exam to get a 100% scholarship for BYJUS courses
Open in App
Solution

The correct option is D the rate of forward reaction will become double that of reverse reaction and the equilibrium will shift to the right
2SO2(g)+O2(g)2SO3(g) In this reaction three moles (or volumes`) of reactants are converted into two moles (or volumes) of products i.e. there is a decrease in volume and so if the volume of the reaction vessel is halved the equilibrium will be shifted to the right i.e. more product will be formed and the rate of forward reaction will increase i.e.double that of reverse reaction.

flag
Suggest Corrections
thumbs-up
0
Join BYJU'S Learning Program
similar_icon
Related Videos
thumbnail
lock
Chemical & Physical Equilibrium
CHEMISTRY
Watch in App
Join BYJU'S Learning Program
CrossIcon