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1243 at the moment. The moon is moving away from the earth but as of right now there will be exactly 2486 full moons between 1900-2100. There are 2400 months in those 200 years but 2486 full moons. This means 2486/2400 = 1.03583333 full moons per month or 12.43 full moons per year. Multiply by 1000 = 1243 full moons in a 100 year period. Most sources say there is a full moon every 29.5 days but this is slightly off. At a rate of 29.5 days for each full moon there will be 1238 full moons in 100 years. Perhaps it is the color blue, which causes blindness. After 38 blue moons the person can't see the remaining 5 blue moons in the 100 year period. Whereas scientists tell us the universe only exists because we looked at it, the remaining 5 moons really don't exist if we are blind. So the right answer in this case is 1238 full moons or less, depending when your eyesight goes.

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How many full moons have there been in the last century?

One every 29 and a half days. (so 365.25 * 100 / 29.5 )


A planet with more than 16 moons?

Saturn is the planet with the most moons in our solar system, having more than 80 moons. Another planet with more than 16 moons is Jupiter, which has over 50 moons. These moons vary in size and composition, with some being as small as a few kilometers across and others as large as our own Moon.


How many moons do all of the planets have in all?

These are the number of confirmed moons of each planet.Some may have more yet to be discovered.Mercury: 0Venus: 0Earth: 1Mars: 2Jupiter: 63Saturn: 61Uranus: 27Neptune: 13Ceres: 0Pluto: 3Eris: 1Makemake: 0Haumea: 2


How many years in total were there between the observation the theory and the conclusion?

100


Would you need half a million full moons to equal the brightness of the sun?

The apparent magnitude (AM) [See Link] is a measure of its brightness as seen by an observer on Earth, in the absence of the atmosphere. The brighter the object appears, the lower the value of its magnitude. The Sun has an AM of -26.73 whereas a full Moon has an AM of -12.6. The scale is logarithmic: the relative brightness of two objects is determined by the difference of their magnitudes. Pogson's Ratio was suggested in 1856 so that each decrease in magnitude represented a decrease in brightness equal to the fifth-root of 100 (or about 2.512) So, the difference in magnitude is (-12.6) - (-26.73) giving 14.13 Thus 2.51214.13 = 449,032. Close enough to half a million.

Related Questions

How many full moons have there been in the last century?

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How many years are in 1 centuries?

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