Klingons Break Treaty
- Thread starter resurrection33
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G
actually, with the increased rotation rate, some people will experience weight loss
thos near the equator or in texas will notice they are lighter
people in norway will notice hardly any difference
given a rotation period of 24 hours (and a diameter of 8000 km) becomes a rotation period of 8.77 hours
it should be possible to calculate the increased acceleration at the equator and subtract that from the acceleraton due to gravity 10m/sec
how do we do the sums someone?
thos near the equator or in texas will notice they are lighter
people in norway will notice hardly any difference
given a rotation period of 24 hours (and a diameter of 8000 km) becomes a rotation period of 8.77 hours
it should be possible to calculate the increased acceleration at the equator and subtract that from the acceleraton due to gravity 10m/sec
how do we do the sums someone?
B
My weight = 65kg (let's suppose it's my mass m). Actually weight is not mass. Weight is force (my mass will be the same, but my weight will change). Weight is a force F(w)
To calculate v, we suppose I'm at the equator: r = 6.378.000 m (diameter is not 8000km Kraw)
With 1 period = 8h = 28800 sec, v = Pi*2*r/28800sec = 40074249 m/28800sec = 1391 m/sec
So F centrifugal = 65 * 1391² / 6378000 = 19 Newton (direction is off cource away from earth).
Do the same with the 'normal values', you get the current F centrifugal = 2 Newton. Thats a difference of 17 Newton.
So my "weight" would be reduced by 17 Newton
Here you go
I
Ohhhhh, I get it, so what you're all saying is, that with the centrivucal intonation of the rammification of the equator, twelve times two equals buckle my shoe, and assuming that the earth spins fivethousand and thirtythree milliseconds per concordination of distansation, the pixels involved are no more than those on the megasypnosis of the arterosclerosis...ahhhhhhh, I see...yes...it's all very clear to me now...
so can I be a Klingon?
so can I be a Klingon?
G
My weight = 65kg (let's suppose it's my mass m). Actually weight is not mass. Weight is force (my mass will be the same, but my weight will change). Weight is a force F(w)
To calculate v, we suppose I'm at the equator: r = 6.378.000 m (diameter is not 8000km Kraw)
With 1 period = 8h = 28800 sec, v = Pi*2*r/28800sec = 40074249 m/28800sec = 1391 m/sec
So F centrifugal = 65 * 1391² / 6378000 = 19 Newton (direction is off cource away from earth).
Do the same with the 'normal values', you get the current F centrifugal = 2 Newton. Thats a difference of 17 Newton.
So my "weight" would be reduced by 17 Newton
Here you go
earths circumference is 24000 miles = 40000 kilometres
diameter is 8000 miles = 12000 kilometres
radius = 6000 kilometres
or as BP says 6,378,000 metres
so rotational velocity = 40000km/8.77 (old)hours
so we get 40000*1000 metres/60*60*8.77 sec = 1267m/s
previously it was 40,000,000 metres/ (3600 * 24)sec = 463m/s
now we have our 2 velocities
(thank you aksel)
f1 = (m * 1267 * 1267) / 6,378,000 = 0.251*Mass metres/second/second
f2 = (m * 463 * 463) / 6,378,000 = 0.033Mass metres/second/second
assume a mass of 100kg
f1=25.1 newtons
f2 = 3.3 newtons
given gravity is 9.8 newtons INCLUDING the 3.3 newtons
we get new gravity = 9.8 newtons +3.3 newtons -25.1newtons = -12 newtons
therefore we will fly off the planet at the equator at a velocity of 12 metres per second
this will not happen at the north pole or in Norway