Consider the electrochemical reaction between $Ag(s)$ and $Cl_2(g)$ electrodes in 1 litre of $0.1\,M\,KCl$ aqueous solution. Solubility product of $AgCl$ is $1.8\times10^{-10}$ and $F=96500\,\text{C mol}^{-1}$. At $1\,\mu A$ current, calculate the time required to start observing the $AgCl$ precipitation in the galvanic cell