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Since in a gravitational field, weight is the same as mass, this seems to be a self-defeating explanation.
Why do objects in free fall within the earth’s gravitational influence, still fall to earth with an acceleration of 9.8 m/s2 even though there is apparently no force acting on them.
The inertial mass exactly matching the gravitational mass, the two masses should cancel each other out
leaving a net zero force acting on them
Why don’t objects dropped from a height just float instead? This is what happens in the space station where almost zero gravity is experienced.
If the gravity exerted by the Universe were not pulling objects away from the earth with exactly the same force that they are attracted towards the earth, it would not be possible that objects of different weight would fall at the same rate.
Lastly: could you give me your definition of an object in free fall?
No, the reason that objects fall at the same rate is because both inertia and gravitational field strength increase at the same rate as mass goes up. So although Earth's gravity pulls heavier objects more strongly, they have more inertia and thus resist Earth's pull more than lighter objects.
The aircraft is not travelling at the 27,000 kmh needed to oppose gravity
but it does generate forces that oppose gravity.
Whhat is left are inertial gravity
This is starting to feel like it is moving into "New Theories" territory. Do I need to move it?
All of McQueen’s topics contain serious misunderstandings about the equivalence principle and relativity. You might almost think he has a personal grudge against Einstein
So although Earth's gravity pulls heavier objects more strongly, they have more inertia and thus resist Earth's pull more than lighter objects.
There is not a stronger force on larger objects.
Quote from: jeffreyH on 30/05/2021 16:31:34There is not a stronger force on larger objects.I assume you meant "more massive" instead of "larger". If gravity didn't pull more strongly on more massive objects, then everything on Earth would weigh the same, regardless of mass.