Image credil Voyager, NASA d (dist. from s/c to maon) I 8 x (distance to closest approach) Spacecraft The slew angle, 0, is related to r and x by tan(0) = r/x. (Important note, r is a constant!) Taking the time derivative (and remembering the chain rule), we get 8 (sec 0 )² = - 17/7/2 x ₁ or 8 = - * (cos 0)² Remembering our trigonometry, we can replace cos(0) and set x = -V (because x is getting x Vr Therefore, required 8 = x²+r² with smaller). "

If theta dot is the slew rate, what would be the maximum slew rate? How would you differentiate theta dot to get theta double dot?

Transcribed Image Text:

Image credil. Voyager, NASA r d (dist. from s/c to maon) 0 V x (distance to closest approach) Spacecraft The slew angle, 0, is related to r and x by tan(0) = r/x. (Important note, r is a constant!) Taking the time derivative (and remembering the chain rule), we get (sec 0 )² = -1/2 x ₁ x, ė x2 or 8 = Remembering our trigonometry, we can replace cos(0) with √22, and set x = -V (because x is getting X Vr smaller). Therefore, required 8 = x²+r² r 2 x (cos 0) ² x2