No more than Earth's Sun, Earth's solar system, or the Milky Way galaxy. Movement is generally the cause of gravittaional influences or continuing expansion of the universe.
As an object moves farther from a black hole, the curvature of spacetime decreases.
maybe a fken black hole
Near a black hole, time behaves differently due to its strong gravitational pull. According to Einstein's theory of relativity, time moves slower in the vicinity of a black hole compared to areas with weaker gravitational fields. This phenomenon is known as time dilation.
no... A black hole is formed from an exploding star so unless you can control what stars do... then no.. im 12 and i know that....
By observing the movement of nearby objects. The gravity of the black hole will accelerate such an object according to Newton's Second Law (F=ma). More specifically, the details of the orbit of a star that moves around the black hole will vary, depending on the black hole's mass.
No, it is not currently possible to control or manipulate the power of a black hole. Black holes are extremely massive objects with such strong gravitational forces that even light cannot escape from them, making them one of the most powerful forces in the universe.
depressions, family member, friend moves away,ect
The so-called "event horizon" of a black hole is the point-of-no-return. That means that anything that gets inside the event horizon can't get out any more, even if if it moves at the speed of light.
A black hole moves through space by following the laws of gravity. Its movement is influenced by the gravitational pull of nearby objects, causing it to orbit or be pulled towards them. The black hole's mass and velocity also play a role in determining its movement through space.
No. You know that the stronger the gravity of a body is, the faster you have to move in order to escape from it. The gravitational field of a black hole is so strong that light can't escape from it. And as you know, light moves at the speed of light.
A Schwarzschild black hole is a non-rotating black hole. The Kerr black hole is a rotating black hole. Since the latter is more complicated to describe, it was developed much later.A Schwarzschild black hole is a non-rotating black hole. The Kerr black hole is a rotating black hole. Since the latter is more complicated to describe, it was developed much later.A Schwarzschild black hole is a non-rotating black hole. The Kerr black hole is a rotating black hole. Since the latter is more complicated to describe, it was developed much later.A Schwarzschild black hole is a non-rotating black hole. The Kerr black hole is a rotating black hole. Since the latter is more complicated to describe, it was developed much later.
When an object enters a black hole, it starts being stretched. As it moves closer and closer to the center of the black hole, the gravitational pull on the part of the object that is closer to the center becomes more powerful than the gravitation pull on the part of the object that is farther away from the center. The objects keeps on getting stretched until it reaches the center of the black hole. We don't yet know what happens at that point.