For rotational equilibrium of the door we can say that torque due to weight of the door must be counter balanced by the torque of external force
[tex]F\times L = mg \times \frac{L}{2}[/tex]
here weight will act at mid point of door so its distance is half of the total distance where force is applied
here we know that
[tex]mg = 145 N[/tex]
now we will have
[tex]F = \frac{mg}{2}[/tex]
[tex]F = \frac{145}{2} = 72.5 N[/tex]
so our applied force is 72.5 N
