neufer wrote:Nice piece of work, Pete.
We know what the closing speed of a typical Oort cloud comet on Jupiter would be: v ~ 13.07 sqrt(3) km/s
(Jupiter orbital speed = 13.07 km/s).
This gives an increase of Jupiter's cross section by about a factor of 8 => 1000 earth cross sections
However the closing speed of an Oort cloud comet coming up from behind Jupiter is: v ~ 13.07 [sqrt(2)-1] km/s
This gives an increase of Jupiter cross section by about a factor of 122 => 15,000 earth cross sections > the area of the sun!
I did a more careful analysis using Pete's formula with backside impinging angles > 0º .
The amazing thing is that the
surface escape velocity is 10 times the relative comet velocity (v) and
one must go out to ~ 100 Jupiter radii for the escape velocity to be comparable to the relative comet velocity
[a roughly sufficient condition to inject the comet into an
(e)lliptical
(o)rbit... one that returns to
impinge
precisely on Jupiter's orbit for many other shots at Jupiter's solar sized collisional cross section].
Hence, the collisional cross section (initial & return) is comparable to the area of the sun while
the initial elliptical orbit insertion cross section is comparable to 100 times the area of the sun!
Code: Select all
(solar area) sigma comet impinging
collision e.o. angle speed
----------------------------------
1.0 200 10º 6.05 km/s
0.26 50 41º 12.1 km/s
Here, Pete's own calculation of an effective doubling of the collisional cross section
for relative comet velocity ~ escape velocity repeats itself
but for this time for the
situation where these velocities are actually equivalent ... at ~ 100 Jupiter radii!
Thus the significant elliptical orbit insertion cross section
σ = 2 x (100^2) Jupiter cross sections = 200 solar areas.
-------------------------------------------------
Values used:
Jupiter diameter: 10.86 earth diameters
Sun's diameter: 109 earth diameters
60.5 km/s : escape velocity at Jupiter's surface
13.07 km/s : circular orbital velocity at Jupiter
18.48 km/s : parabolic comet orbit velocity at Jupiter
v = 18.48 - 13.07 = 5.41 km/s for 0º backside impinging angle
v = 6.05 km/s for 10º backside impinging angle
v = 12.1 km/s for 41º backside impinging angle
[quote="neufer"]Nice piece of work, Pete.
We know what the closing speed of a typical Oort cloud comet on Jupiter would be: v ~ 13.07 sqrt(3) km/s
(Jupiter orbital speed = 13.07 km/s).
This gives an increase of Jupiter's cross section by about a factor of 8 => 1000 earth cross sections
However the closing speed of an Oort cloud comet [b]coming up from behind Jupiter[/b] is: v ~ 13.07 [sqrt(2)-1] km/s
This gives an increase of Jupiter cross section by about a factor of 122 => 15,000 earth cross sections > the area of the sun![/quote]
I did a more careful analysis using Pete's formula with backside impinging angles > 0º .
The amazing thing is that the [b]surface escape velocity[/b] is 10 times the relative comet velocity (v) and
one must go out to ~ 100 Jupiter radii for the escape velocity to be comparable to the relative comet velocity
[a roughly sufficient condition to inject the comet into an [b](e)[/b]lliptical [b](o)[/b]rbit... one that returns to
impinge [b]precisely[/b] on Jupiter's orbit for many other shots at Jupiter's solar sized collisional cross section].
Hence, the collisional cross section (initial & return) is comparable to the area of the sun while
the initial elliptical orbit insertion cross section is comparable to 100 times the area of the sun!
[code](solar area) sigma comet impinging
collision e.o. angle speed
----------------------------------
1.0 200 10º 6.05 km/s
0.26 50 41º 12.1 km/s[/code]
Here, Pete's own calculation of an effective doubling of the collisional cross section
for relative comet velocity ~ escape velocity repeats itself [b]but for this time for the
situation where these velocities are actually equivalent ... at ~ 100 Jupiter radii![/b]
[b]Thus the significant elliptical orbit insertion cross section
σ = 2 x (100^2) Jupiter cross sections = 200 solar areas.[/b]
-------------------------------------------------
Values used:
Jupiter diameter: 10.86 earth diameters
Sun's diameter: 109 earth diameters
60.5 km/s : escape velocity at Jupiter's surface
13.07 km/s : circular orbital velocity at Jupiter
18.48 km/s : parabolic comet orbit velocity at Jupiter
v = 18.48 - 13.07 = 5.41 km/s for 0º backside impinging angle
v = 6.05 km/s for 10º backside impinging angle
v = 12.1 km/s for 41º backside impinging angle