Circular motion, kinetic friction and tension

Hi: I’ve read this post: Uniform Circular Motion w/ Tension and Friction and helped me a lot.

I have a similar problem:

At one end of the rope ($R = 1 m$) is tied a mass ($m = 3 kg$) and the other end is attached to a spherical joint located in the center of a entirely horizontal turntable. The mass is on the turntable and both remain at rest ($V = 0 m/s$ , $omega = 0 rad/s$). When the turntable begins to rotate, the mass remains without relative velocity on the turntable, rotating at an unknown speed until its acceleration increases and the mass begins to have an angular velocity different from that of the turntable. The kinetic coefficient between the mass and the turntable is 0.1 and the maximum tension of the string is $100 N$.
Calculate the time required by the mass to reach enough speed to break the rope.

I analyzed the problem and this is what I think:

The turntable moves and the mass rotate together (there is static friction) at an unknown speed. Then, the mass has a relative motion due to the acceleration and the kinetic friction (between the turntable and the mass). Finally the mass reach a speed that make the rope breaks and the mass leaves the turntable.

I think that when the tension is maximum, I can use this equation to describe the tension:

$$T = mfrac{V^2}{R}$$

Based in the previous formula, I can use it to calculate the speed of the mass at that instant of the following equation:

$$V = sqrt{frac{TR}{m}}$$

And to find the time in which the mass exits the turntable with the equation:

$$t = frac{2pi R}{V}$$ (I’m not sure)

I know the kinetic friction acts in opposite direction of the tangential acceleration and perpendicular to the tension and the centripetal acceleration.

The tangential acceleration and the angular acceleration ($alpha$) are unknown and any of them can help to solve the problem: how long the mass rotate until the rope breaks?