Truly awesome, Enik. A couple of questions, if you don't mind.
How much lighter is the second trial? It bounces, but it doesn't look like it stops in the data; does it arrest?
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No period of free fall in initial descent was observed...

OneWhiteEye wrote:Truly awesome, Enik. A couple of questions, if you don't mind.
How much lighter is the second trial? It bounces, but it doesn't look like it stops in the data; does it arrest?
achimspok wrote:We indeed observe periods of free fall.
Enik wrote:The numbers I used were .284 lb/cu. in. for the steel density and .00284 lb/cu. in. for the lighter upper material. The lower one stayed at .284.
also shows greater than freefall.
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I can see where that makes sense in close proximity to the contact interface, it's seen on Enik's graph, but I can't say it makes a whole lot of sense at the roofline or above.

achimspok wrote:And there is one more thing to consider:
I got the very same phenomenon for the WTC7 drop. There it appears to be hard data. Imo, the mechanism is obvious. The core/west penthouse dropped at free fall - not above. It sank into the roof for a certain amount and took the perimeter down. The perimeter - once released - also accelerated above freefall for a short distance followed by "usual" free fall.
So if the mass of the core is already in motion and the mass of the core spans the floors like a bow then - once released - the perimeter will shoot down above free fall.
The pattern of the second and third acceleration period for the NW corner WTC1 looks pretty similar.
Major_Tom wrote:If core leads perimeter there can be a short additional force downwards as the floors pull the perimeter down. Just as you showed with detection of "jolts", it's the little things that can provide big clues.
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