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A cargo service operates by running a ship between port a and port b at a constant speed of v kilometres per hour

For a given v, the cost per hour of running the ship is 9000+10v^2 dollars.
Find the value of v which minimises the cost of the trip

ANS: 30
 
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BlueGas

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Brah I'm getting 9000, lol, what am I doing wrong. When you make the first derivative = 0, it'll be 20V = 0 therefore V = 0, and the second derivative is 20 which is greater than 0 so it's a minimum, to find C you sub v=0 into the first equation (9000+10v^2) and the answer is 9000. But that's what I'm getting haha.
 

BlueGas

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How many parts are there to this question?
 

psyc1011

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Since v is a real number, then v^2 is always positive and is at least 0.



That is the same as



Which means that C is at least 1000.
 

Drsoccerball

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Since v is a real number, then v^2 is always positive and is at least 0.



That is the same as



Which means that C is at least 1000.
That depends on the distanc between A and B what if the distance is 0 ? it cost 0$...
 

Drsoccerball

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How did you find v if you don't know the value of d?
We didnt have the value of d in this question....
In these types of questions the most important thing is
Edit: The D cancels in the derivative
 

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