Lyrids Meteor Shower
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Lyrids Meteor Shower
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Re: Lyrids Meteor Shower
#2Re: Lyrids Meteor Shower
#3The Lyrids are easy to find with one of those constellation finding apps, I highly recommending giving it a try.
Good Idea!
search: >'constellation finding app' @DDG : https://html.duckduckgo.com/html?q='constellation finding ap...>
Re: Lyrids Meteor Shower
#4Re: Lyrids Meteor Shower
#5Re: Lyrids Meteor Shower
#6Do I understand it correctly that this repeats every year at the same time?
Re: Lyrids Meteor Shower
#7Re: Lyrids Meteor Shower
#8Do I understand it correctly that this repeats every year at the same time?
Yes, a comet left dust particles on its orbit and Earth moves through the cloud of debris at this time of the year.
The dust can't just hang there like it does in an atmosphere so why isn't it moving either in orbit or falling towards the sun? And if it is, how can it occur at the same time of year every year?
Re: Lyrids Meteor Shower
#9Earlier quoted context omitted.
Yes, a comet left dust particles on its orbit and Earth moves through the cloud of debris at this time of the year.
See, I knew this but now I think of it, it doesn't make sense. The dust can't just hang there like it does in an atmosphere so why isn't it moving either in orbit or falling towards the sun? And if it is, how can it occur at the same time of year every year?
https://en.m.wikipedia.org/wiki/Comet_dust
https://earthsky.org/astronomy-essentials/everything-you-nee...
Re: Lyrids Meteor Shower
#10Earlier quoted context omitted.
Yes, a comet left dust particles on its orbit and Earth moves through the cloud of debris at this time of the year.
See, I knew this but now I think of it, it doesn't make sense. The dust can't just hang there like it does in an atmosphere so why isn't it moving either in orbit or falling towards the sun? And if it is, how can it occur at the same time of year every year?
Imagine two small pebbles ejected from a comet at the same time, one in the prograde direction (ie. in the comet’s direction, ahead of it) and one retrograde. For the first pebble, at the point 180 degrees opposite on its orbital ellipse, it’s orbit has been raised by (say) a few thousand km, while the second pebble’s orbit has been lowered by a few thousand km. If you zoom out you can barely tell the difference - on a solar system scale the ellipses look almost identical. But the difference in velocities means that they will quickly start to diverge in time. Both pebbles will do a full orbit and return roughly to the same point in space where they were ejected. But the retrograde particle (ie. the one “dumped out the back” of the comet instead of the one “fired ahead” of the it) will arrive there much earlier - it went faster and had less distance to cover. Repeat with millions or particles and you get a cloudy stream along the ellipse.