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Sagot :
The distance between the ships changing at 92.29 Knots
- Using the position of ship A as the reference point, at time t measured in hours past noon, ship A is 18 t miles west of this point and ship B is 40 + 17t north of this point.
- The distance between ships is then
[tex]d(t) = \sqrt{(18t)^{2} + (40+17t)^{2} } \\[/tex]
The rate of change of distance is -
[tex]\frac{dd}{dt} = \frac{36t + 2(40 + 17t)17}{2\sqrt{18t^{2} + (40 + 17t) } }[/tex]
after putting t = 5 into this rate of change ,
we get, answer = 92.29
To learn more about differentiation from the given link
https://brainly.com/question/25081524
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