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  1. #1
    Raider of the lost time
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    hastened nutshell

    In a nutshell force of gravity according to the inverse square law should diminish at smaller and smaller mass, and similarly diminish at smaller and smaller volume for constant density. However, it also should replenish at shorter and shorter distances. The simultaneous event is zero-gravity.

    However the product of infinitesimal change in mass and change in distance should also become a principle of uncertainty ∆m·∆rh/c and its square includes complex factor such that ∆m²·∆r² ≥ h²/c² giving the absolute quantum of mass as ∆m = |h/rc| where r is Planck length, h is Planck’s constant, and c is lightspeed.

    Since mass is equivalent to energy, it is also true that ∆E² ≥ h²y², y denotes generalized frequency. If it becomes temporal frequency then E = hn. If it becomes spatial frequency then E = mc². Since these frequencies are indistinguishable at the quantum level, their constancy requires constant absolute acceleration a = c²/r, where r is Planck length.
    Time independence: [∂E(g)]²=[∂F(a)×∂r(a)]·[∂F(b)×∂r(b)] and Mass independence: a(tr(t)=c²

  2. #2
    Master
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    Re: hastened nutshell

    Time independence: [∂E(g)]²=[∂F(a)×∂r(a)]·[∂F(b)×∂r(b)] and Mass independence: ¶a(t)·¶r(t)=c²

    It's simply a matter of wave vs. particle for most of ACADEMIA. They enjoy fighting so long as they have a home to nurse their wounds from the bad men and women of THE ISLAND OF INTELLECTIS.

  3. #3
    Raider of the lost time
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    Re: hastened nutshell

    Quote Originally Posted by theunify
    They enjoy fighting so long as they have a home to nurse their wounds
    Do you mean Bohr's principle of complementarity?
    Time independence: [∂E(g)]²=[∂F(a)×∂r(a)]·[∂F(b)×∂r(b)] and Mass independence: a(tr(t)=c²

 

 

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