Abbey steers her boat in a North Easterly direction for 15 s, East for 6 s and then stops to avoid hitting a duck. If her boat travels at a constant speed of 10 m/min during this time, what is the distance and compass bearing of Abbey’s boat from the starting point when it stops? Distances are to be rounded to 2 decimal places and angle sizes to 1 decimal place.

Question

Henry · Answer

t = 15s @ 45Deg. + 6s. @ 0 Deg.

X = 15*cos45 + 6 = 16.61 s.
Y = 15*sin45 = 10.61 s.

tanA = Y/X = 10.61 / 16.61 = 0.63877.
A = 32.57 Deg.

t =X / cos32.57 = 16.61 / cos32.57 = 19.71 s @ 32.57 Deg..

V = 10m/min = 10m/60s = 0.1667m/s.

d = V*t = 0.1667m/s * 19.71s = 3.29m
@32.57 Deg.
.

Rianna · Answer

Thanks for the answer but can this be worked out using the cosine and sine rules Like the Cosine rule: b^2=a^2+c^2-2ac cosB or the Sine rule a/sinA = b/sinB = c/sinC