Answer:
7.45 10^5N.
Explanation:
according to newtons second law of motion;
[tex]\sum F_x = ma_x\\F_{app} - F_r = ma_x[/tex]
Fapp is the applied force
Fr is the resistive force
m is the mass of the luxury
a is the acceleration
Since the huge luxury liner move with constant velocity, then acceleration is zero i.e a = 0. The equation becomes;
[tex]F_{app} - F_f = m(0)\\F_{app} - F_f =0\\F_{app} = F_f[/tex]
This shows that the applied force will be equal to the resistive force if the velocity is constant.
Given Fr = 7.45 10^5 N therefore the resistive force will also be 7.45 10^5N.
Hence the magnitude of the resistive force exerted by the water on the cruise ship is 7.45 10^5N.
