In the circuit in fig. If no current flows through the galvanometer when the key k is closed, the bridge is balanced. The balancing condition for bridge is

b) In the steady state, no current is passing through capacitor. Let the charge on each capacitor be q. Since, the current through galvanometer is zero.
`therefore I_(1)=I_(2)`
The potential difference between ends of galvanometer will be zero.
`therefore V_(A)-V_(B)=V_(A)-V_(D)`
`therefore I_(1)R_(1)=q/C_(1)`
similarly, `V_(B)-V_(C) = V_(D)-V_(C)`
`I_(2)R_(2)=q/C_(2)` ..............(ii)
On dividing Eq. (i) by Eq. (ii), we get
`therefore (I_(1)R_(1))/(I_(2)R_(2))=(q//C_(1))/(q//C_(2))= C_(2)/C_(1)`
`C_(1)/C_(2) = R_(2)/R_(1)`