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"So, gravity and time relate. Greater the gravity slower time. Time runs faster on moon than on earth. So the question- When the moonrocks were brought back- they must have looked older than the comparable rocks left behind on earth early on when the moon 'departed' earth? Maybe not by much given the margin of error in measurement.
However if that is right (and I hesitate to ask this....) will there come a period when the rocks originated from the earth....BEFORE the earth was formed?"
Ranjit has been lost in this lunar conundrum for a while so he submitted it to The Naked Scientists..."So, gravity and time relate. Greater the gravity slower time. Time runs faster on moon than on earth. So the question- When the moonrocks were brought back- they must have looked older than the comparable rocks left behind on earth early on when the moon 'departed' earth? Maybe not by much given the margin of error in measurement. However if that is right (and I hesitate to ask this....) will there come a period when the rocks originated from the earth....BEFORE the earth was formed?"Do you have any answers that can make things relatively simple? Leave them in the comments below...
First off, the time dilation is not due to a difference in the strength of gravity, but to a difference in gravitational potential.To illustrate the difference, imagine you had a uniform gravity field (one that did not change in strength with altitude). If you place two clock at different heights in this field, the higher clock runs faster even though it feels exactly the same gravitational force as the lower clock.
Has this been shown experimentally, if so could you provide information please.
HI allJanusQuoteFirst off, the time dilation is not due to a difference in the strength of gravity, but to a difference in gravitational potential.To illustrate the difference, imagine you had a uniform gravity field (one that did not change in strength with altitude). If you place two clock at different heights in this field, the higher clock runs faster even though it feels exactly the same gravitational force as the lower clock.Has this been shown experimentally, if so could you provide information please.
....(In each step)......keep doubling the radius and quadrupling the mass.
First off, the time dilation is not due to a difference in the strength of gravity, but to a difference in gravitational potential.
Hi all,Thank you Janus for that response, it sits better with me than the previous analogy of a gravity field not following the inverse square law.If I may borrow part of your explanation to respond, and explain why/how I understand your statement is correct : Janus QuoteFirst off, the time dilation is not due to a difference in the strength of gravity, but to a difference in gravitational potential.So firstly if you calculate the strength of g and escape velocity and time dilation at the Earths surface gives g = 9.82 m/s^2 escape velocity = 11.19 x10^3 m/s time dilation = + 6.97 x10^-10 sec/secThen to borrow your example: "Now double the Earth's radius and quadruple its mass" Lets call this plant B gives the following equivalent values. g = 9.82 m/s^2 escape velocity = 15.82 x10^3 m/s time dilation = + 1.39 x10^-9 sec/secAs can be seen the identical value of g for Earth and planet B at their surface, but a different value for escape velocity and therefore gravitational time dilation.
I am happy to be corrected if anyone else wants to chip in.
Earth time dilation = 6.965 x 10^-10 sec/sec
the escape velocity from (Uranus) is 21.3 km/s which is nearly double that of the Earth's
If you take into account the Sun's mass, Earth is deep in the Sun's gravitational well, compared to Uranus.
A planet is a mole-hill in the area, everything is really on the slopes of Mount Everest anyway.
I believe using the word slope in this context is misleading
I think we maybe wondering a little from the original question
If I recall correctly, proximity to the sun is sufficient to put the planets in the right order of time dilation that would apply on their surface from Mercury to Pluto - their own individual mass, radius, rotation and orbit speed makes just a small contribution.