Chronos said:The law of gravity doesn't really care much about mass density, just mass. Instead, let's pretend the Earth was at a distance of 1,000,000 AU from the sun. Using Kepler's 3rd law, it would theoretically complete an orbit around the sun in one billion years. Of course at such a distance the Earth would be about 15.8 light years from the sun. Further complicating matters, there are about 50 other stars within that same distance.
Bandersnatch said:Changing the size to within the radius of an orbit wouldn't affect the orbiting body.
It goes the other way around too: compressing the Sun into a black hole wouldn't affect the orbits of any of the planets.
Look up Shell Theorem for geometrical explanation of why it is so.
If the Sun were blown up to anything higher than ~200 times its current radius, its outer parts would pass the Earth, no longer affecting it gravitationally(again, shell theorem explains this effect), and the force of gravity towards the centre of the orbit would no longer remain the same, causing the Earth to spiral outwards.
Distibuting the Sun's mass over an infinite volume(i.e., "gazillion times" larger) would be equivalent to nullifying any gravitational influence it may have had on Earth, as the mass remaining within the Earth's orbital radius would be negligible, and Earth would just float away rectilinearly at its current orbital speed.
Gravity is an infinite-range force. It falls off with distance slowly enough that its effect never disappears.enquirealways said:How can sun affect Earth at such a large distance?
Because the pull from the part that has passed the orbit near the planet(and which is now pulling outwards) is exactly canceled by the pull of the mass that has passed the orbit on the oposite side(which still pulls in the same direction as always - towards the centre).enquirealways said:When the outer parts of sun pass the earth, why wouldn't they affect the earth.
The parts that pass would have mass, so they should attract the Earth in some other/ opposite direction.
Even if you have no density gradient, you'll still have a gravitational gradient. If I remember correctly, the strength of the force of gravity in the case of constant density is proportional to the distance from the center (and, of course, drops as ##1/r^2## once you go beyond the surface of the spherical body).Chronos said:What I'm saying is you can have more mass inside the shell than outside. That produces a gravitational gradient.
The sun's gravity is responsible for keeping all of the planets in orbit around it. The strength of its gravitational pull decreases as you move further away from the sun, allowing the planets to maintain their distance from each other and the sun.
The force of gravity on the surface of the sun is about 28 times stronger than the force of gravity on Earth. This is due to the sun's large mass and density.
Yes, the sun's gravity does have a slight effect on objects on Earth. However, this effect is very small compared to the pull of Earth's gravity.
The sun's gravity plays a crucial role in the formation of solar systems. As a large cloud of gas and dust collapses under its own gravity, the center becomes dense enough to ignite and form a star, which then exerts a gravitational pull on the remaining material, eventually forming planets and other objects in orbit.
The sun's gravity is considered average compared to other stars in the universe. Some stars, known as neutron stars, have incredibly strong gravitational fields due to their extreme density, while other stars may have much weaker gravitational pulls due to their smaller size or lower mass.