Using mirror formula.

$${1 \over v} + {1 \over { - 4}} = {1 \over { - 5}}$$

$$ \Rightarrow \,\,\,{1 \over v} = {1 \over 4} - {1 \over 5} = {1 \over {20}}$$

$$ \Rightarrow \,\,\,v = 20\,$$ cm

$$ \therefore $$   Image distance is 20 cm



I₁ acts as object for plane glass surface.

$$ \therefore $$   Appartent depth =  $${{R + v} \over \mu } = {{30} \over {1.5}} = 20$$ cm

$$ \therefore $$   Position of the image of the air bubble is 20 cm below the flat surface.