Author Topic: 2011 exam 2 question 4 (Read 547 times) Tweet Share

teexo · « **on:** November 05, 2013, 01:20:31 pm »

For 4a why is n-1 used when finding length, where did they draw their triangle coz where I drew mine n is smaller than 1
And I don't get 4c or f at all, this is really stressing me out if anyone could please help me

Conic · « **Reply #1 on:** November 05, 2013, 01:41:11 pm »

4a:
The distance between 2 points, $(x_1,y_1)$ and $(x_2,y_2)$ is given by $\sqrt{(x_2-x_1)^2+(y_2-y_1)^2)$ . In this case the points are (m,n) (the desalination plant) and (0,1) (the village). So the distance, L, is $\sqrt{(m-0)^2+(n-1)^2)$ . You use that and $n=m^2-1$ to get the L shown.

4c: First, we find the distance he covers when he runs. He runs to (x,y) (the point on the river) from (0,0) (the camp). We also know that $y=x^2-1$ , so he runs from (0,0) to $(x,x^2-1)$ . We use the distance formula again to get $\sqrt{x^2<br />+(x^2-1)^2}$ , which is $\sqrt{x^4-x^2+1}$ . He runs this distance with a speed of 2km/h. Speed = distance/time, so the time is distance/speed. So the time for Tasmania running is $\frac{\sqrt{x^4-x^2+1}}{2}$ .

The time he takes to swim is proportional to the difference between the y coordinate of the desalination plant and the point he enters.
The y coordinate of where he enters is y, or $x^2-1$ , and the y coordinate of the desalination plant is 3/4, so the difference is $\frac{3}{4}-(x^2-1)=\frac{7}{4}-x^2=\frac{1}{4}(7-4x^2)$ . Proportional means that the time is equal to a real constant times the difference, or $k \times \frac{1}{4}(7-4x^2)$ .

The total time is the running time and the swimming time, or $\frac{\sqrt{x^4-x^2+1}}{2}+k \times \frac{1}{4}(7-4x^2)$ .

4f: If he runs from his camp to the desalination plant he enters the river at the desalination plant, ie at $(\frac{\sqrt{7}}{2},\frac{3}{4})$ . We also know that $\frac{dT}{dt}=\frac{2x^3-x}{2\sqrt{x^4-x^2+1}}-2kx$ . For the time to be a minimum when he runs directly to the camp, we want the minimum to occur when $x=\frac{\sqrt{7}}{2}$ . So you can substitute $x=\frac{\sqrt{7}}{2}$ to $\frac{dT}{dt}=\frac{2x^3-x}{2\sqrt{x^4-x^2+1}}-2kx$ and solve for when $\frac{dT}{dt}=0$ , which gives $k=\frac{5\sqrt{37}}{74}$ . When k is above this the time for him swimming will increase, so for all values of k above this he will still run directly to the plant for minimum time, so the values of k are $k\geq\frac{5\sqrt{37}}{74}$

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Author Topic: 2011 exam 2 question 4 (Read 547 times) Tweet Share

teexo

2011 exam 2 question 4

Conic

Re: 2011 exam 2 question 4

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