zeromodz said:
But that brings me back to my first problem. The sun always has the same gravitational pull though, how can it ever turn into a black hole? It doesn't matter how much you compress it, even if the radius falls below Schwarzschilds radius. It will always have the same pull, am I wrong?
As you already know, all objects fall at the same rate on the moon because the moon doesn't have an atmosphere to slow things down. Now to answer your question:
Suppose you're on the moon, and you have two objects of equal mass: The first object is a lead pellet, and the other object is a huge ball of aerogel that's 1 foot in diameter. Remember, they both weigh the same and are of equal mass.
Now drop both objects onto a very thin sheet of cellophane that's suspended 1 foot from the lunar surface. Which object caused the most stretching of the sheet of cellophane? That's right: the lead pellet. They are both of equal mass, yet the pellet did more damage! How can that be? They're of equal mass, after all!
Likewise, consider two interstellar objects: the first object is the Sun, and the second object is exactly as massive as the Sun, only it had been compressed to a diameter of only 3Km. Which interstellar object will have the greater gravitational pull
at its surface (important)? The Sun? Or the 3Km object? That's right: Since the Sun has its gravitational field distributed and weakened over a very, very large area equal to its very large radius (minus 3 Km), and the 3Km object has its
gravitational pull concentrated and strengthened to a very fine point, the 3Km object will by far exert the greater gravitational pull
at its surface (again, important!) even though both objects are of equal mass.