Answer:
0.003125 msv
Explanation:
[tex]I_1[/tex] = Initial Exposure = 0.05 msv
[tex]I_2[/tex] = Final Exposure
[tex]D_1[/tex] = Initial distance = 1.5 ft
[tex]D_2[/tex] = Final distance = 6 ft
Exposure is inversely related to the distance squared (inverse square law)
[tex]I\propto \dfrac{1}{D}[/tex]
So,
[tex]\dfrac{I_1}{I_2}=\dfrac{D_2^2}{D_1^2}\\\Rightarrow I_2=\dfrac{I_1D_1^2}{D_2^2}\\\Rightarrow I_2=\dfrac{0.05\times 1.5^2}{6^2}\\\Rightarrow I_2=0.003125\ msv[/tex]
The exposure at the given distance is 0.003125 msv
