An airplane has an airspeed of 770 kilometers per hour at a bearing of N 48 degrees E. If the wind velocity is 28 kilometers per hour from the west, find the angle representing the bearing for

Question

An airplane has an airspeed of 770 kilometers per hour at a bearing of N 48 degrees E. If the wind velocity is 28 kilometers per hour from the west, find the angle representing the bearing for
the ground speed?

I found Rx and Ry which are 543.23 and 572.22 respectively. To find the angle I took tan^-1 of 572.22/543.23 and got 46. 489 for the angle, but the answer is wrong. R=789 and I got that right so I don't understand why the angle is incorrect.

Henry · Answer

Vp + 28[0o] = 770[90-48] = 770[42o]CCW Vp + 28 = 770*cos42 + i770*sin42 Vp + 28 = 572.2 + 515.2i Vp = 544.2 + 515.2i = 749mi/h[43.6o] CCW = 749mi/h[46.4o] E of N.