u = 31 m/s, the initial speed of the boat
s = 100 m, distanceĀ to the buoy
a = -4 m/sĀ², the acceleratin (actually deceleration)
Part (a)
Let t = time required to reach the buoy.
Use the formulaĀ ut + (1/2)atĀ² = s.
(31 m/s)*(t s) - (1/2)*(4 m/sĀ²)*(t s)Ā² = (100 m)
2tĀ² - 31t + 100 = 0
Solve with the quadratic formula.
t = (1/4) [31 +/-Ā ā(31Ā² - 800)]
Ā = 10.92 s or 4.58 s
Before selecting the answer, we should determine the velocity at the buoy.
Part (b)
When t = 10.92 s, the velocity at the buoy is
v = (31 m/s) - (4 m/sĀ²)*(10.92 s) = -12.68 m/s
Because of the negative value, this value of t should be rejected.
When t = 4.58 s, the velocity at the buoy is
v = (31 m/s) - (4 m/sĀ²)*(4.58 s) = 12.68 m/s
This value of t is acceptable.
Answer (to nearest tenth):Ā
(a) The time is 4.6 sĀ
(b) The velocity is 12.7 m/s
