math question help (1 Viewer)

poptarts12345 · Feb 21, 2020

1. The point A lies on the positive half of the x-axis, and the point B lies on the positive half of the y-axis, and the interval AB passes through the point P(5,3). Find the coordinates of A and B so that triangle AOB has minimum area.

2. A man in a rowing boat is presently 6km from the nearest point A on the shore. He wants to reach as soon as possible a point B that is a further 20km down from the shore from A. If he can row at 8km/hr and run at 10km/hr , how far from A should he land.

ultra908 · Feb 21, 2020

1. Let A be a variable point on the x axis, (x,0). Notice for any A, there can only be one B for which AB passes through (5,3). Thus we don't really have to worry about B for now. Then find an equation for area of triangle AOB, and its min using calculus. Using ur min value of x, find A and B!

2. Draw a diagram (assuming the coast is a straight line). Let x be the distance from A he lands. Find an equation for the time of the trip wrt to x,. Then find its min using calculus and thus the distance x.

Hannah0605 · Mar 4, 2020

Send your question on Airstudy and see whether someone can help. They have a request teacher's function.

CM_Tutor · Mar 7, 2020

poptarts12345 said:
1. The point A lies on the positive half of the x-axis, and the point B lies on the positive half of the y-axis, and the interval AB passes through the point P(5,3). Find the coordinates of A and B so that triangle AOB has minimum area.

Let A be at $(a, 0)$ and B be at $(0, b)$ where a and b are positive. Since the line AB passes through $P(5, 3)$ , we actually know that $a > 5$ and $b > 3$ .
(We know this as (i) if $a = 5$ then AP is vertical and so does not pass through B and (i) if $a < 5$ then AP has a positive slope and so intersects the negative half of the y-axis, violating the restriction on the position of B. The same reasoning applies to restricting that $b > 3$ .)

Now, the line AB has equation $\frac{x}{a} + \frac{y}{b} = 1$ as the coordinates for A and B satisfy this linear equation. Further, the triangle AOB is right-angled at O and so has area given by $A = \frac{ab}{2}$ . So, we need only re-write this expression in two variables and apply calculus or other methods to find the required minimum. Since P lies on AB, we know that:

$\begin{align*} \frac{5}{a} + \frac{3}{b} &= 1 \\ 5b + 3a &= ab \\ 3a &= ab - 5b = b(a - 5) \\ b&= \frac{3a}{a - 5} \\ \\ \text{So,} \quad A &= \frac{ab}{2} = \frac{3a^2}{2(a - 5)} \\ \frac{dA}{da} &= \frac{2(a - 5) \times 6a - 3a^2 \times 2}{4(a - 5)^2} \\ &= \frac{12a^2 - 60a - 6a^2}{4(a - 5)^2} \\ &= \frac{6a(a - 10)}{4(a - 5)^2} \\ &= \frac{3a(a - 10)}{2(a - 5)^2} \end{align*}$

So, we have stationary points at $a = 0$ and $a = 10$ and the derivative is undefined at $a = 5$ . Fortunately, we know the domain for valid answers is $a > 5$ and so we need only investigate $a = 10$ .

When a is near to but below 10, $\frac{dA}{da} = \frac{3a(a - 10)}{2(a - 5)^2} = \frac{(+)(-)}{(+)(+)^2} < 0$
And, when a is near to but above 10, $\frac{dA}{da} = \frac{3a(a - 10)}{2(a - 5)^2} = \frac{(+)(+)}{(+)(+)^2} > 0$

It follows that in the vicinity of $a = 10$ , A is first decreasing, then stationary, then increasing, meaning that the stationary point there is a local minimum, where $b = \frac{3a}{a - 5} = \frac{3 \times 10}{10 - 5} = 6$ and $A = \frac{3a^2}{2(a - 5)} = \frac{3 \times 10^2}{2(10 - 5)} = \frac{3 \times 100}{10} = 30$ .

Thus, the minimum area triangle AOB has A at (10, 0), B at (0, 6), and has area of 30 square units.

If you have TEX with tikzpicture installed, here is the picture I would draw to accompany this solution:
\begin{tikzpicture}
\fill[blue!20] (0, 0) -- (8, 0) -- (0, 8);
\draw[latex-latex] (-1.5, 0) -- (10, 0) node {$x$};
\draw[latex-latex] (0, -1.5) -- (0, 9) node {$y$};
\draw[thick,blue] (8, 0) -- (0, 8);
\node at (4.5, 5) {$\color{blue} \cfrac{x}{a} + \cfrac{y}{b} = 1 \color{black}$};
\node at (-0.3, -0.3) {$O$};
\node at (8.5, 0.3) {$A(a, 0)$};
\node at (0.8, 8) {$B(0, b)$};
\node at (5.8, 3) {$P(5, 3)$};
\fill[black] (5, 3) circle (0.1);
\fill[black] (8, 0) circle (0.075);
\fill[black] (0, 8) circle (0.075);
\draw[dashed] (0, 3) -- (5, 3);
\draw[dashed] (5, 0) -- (5, 3);
\draw[dotted] (-1, 8) -- (0, 8);
\draw[dotted] (8, -1) -- (8, 0);
\draw[<-] (0, -0.75) -- (3.7, -0.75);
\draw[<-] (8, -0.75) -- (4.3, -0.75);
\node at (4.05, -0.75) {$a$};
\draw[<-] (-0.75, 0) -- (-0.75, 3.7);
\draw[<-] (-0.75, 8) -- (-0.75, 4.3);
\node at (-0.75, 3.95) {$b$};
\node at (5, -0.3) {$5$};
\node at (-0.3, 3) {$3$};
\node at (2.5, 1.5) {Area$_{\Delta AOB} = \cfrac{ab}{2}$};
\end{tikzpicture}

CM_Tutor · Mar 14, 2020

poptarts12345 said:
2. A man in a rowing boat is presently 6km from the nearest point A on the shore. He wants to reach as soon as possible a point B that is a further 20km down from the shore from A. If he can row at 8km/hr and run at 10km/hr , how far from A should he land.

Firstly, let's look at the answer that is sought:

Let S be the starting point for the rowing boat, which is 6 km from point A on the shore, which is the closest point on the shore to S.. We know that B is 20 km from A along the shore, and let point P be located a distance of x km from A, so that the distance PB is (20 - x) km.

The attached file contains this information shown in a diagram. We seek the position of P (and thus the value of x) so as to minimise the travel time from S to B. Let T be the travel time (in hours) from S to B, made up of the travel time from S to P (t_SP) and the travel time from P to B (t_PB). In otherwise, we need to minmise:

$T = t_{SP} + t_{PB}$

Defining the distances SP and PB (in km) as d_SP and d_PB, respectively, and remembering that distance equals speed times times, we can see that:

$\text{Travelling } d_{PB} = 20 - x \text{ km at 10 km/h implies that } t_{PB} = \frac{d_{PB}}{10} = \frac{20 - x}{10}$

Now, applying Pythagoras' Theorem to triangle SAP, we can see that SA² + AP² = SP²:

$\begin{align*} 6^2 + x^2 &= {d_{SP}}^2 \\ d_{SP} &= \sqrt{x^2 + 36} \\ \text{So, } t_{SP} &= \frac{\sqrt{x^2 + 36}}{8} \\ \text{So, } T = t_{PB} + t_{SP} &= \frac{20 - x}{10} + \frac{\sqrt{x^2 + 36}}{8} \\ \frac{dT}{dx} &= \frac{0 - 1}{10} + \frac{1}{8} \times \frac{1}{2} (x^2 + 36)^{\frac{-1}{2}} \times (2x + 0) \\ &= \frac{-1}{10} + \frac{2x}{8 \times 2} \times \frac{1}{\sqrt{x^2 + 36}} \\ &= \frac{-1}{10} + \frac{x}{8\sqrt{x^2 + 36}} \end{align*}$

To find stationary points, we need to set this derivative to zero:

$\frac{-1}{10} + \frac{x}{8 \sqrt{x^2 + 36}} = 0$
$\frac{x}{8\sqrt{x^2 + 36}} = \frac{1}{10}$
$\frac{40x}{8} = \frac{40\sqrt{x^2 + 36}}{10}$
$5x &= 4\sqrt{x^2 + 36}$
$25x^2 &= 16(x^2 + 36)$
$(25 - 16)x^2 = 16 \times 36 \implies x^2 = \frac{16 \times 4 \times 9}{9} = 64$
$x = 8 \text{ as } x \geqslant 0$

So, there is a stationary point at (x = 8 km, T = 2 h 27 min)

Following the path SAB (corresponding to x = 0), the rower rows 6 km taking 45 min and then runs 20 km taking 2 h, so that T = 2 h 45 min.
Following path SB (rowing directly from S to B, corresponding to x = 20), the distance rowed is (6² + 20²)^0.5 = 20.8806... km taking a little over 2 h 36 min. It follows that the stationary point is a minimum, and thus the rower should row to point P, 8 km from A towards B.

Of course, that x = 8 corresponds to a minimum can also be established by the usual methods of examining the behaviour of dT/dx in the vicinity of x = 8 or by showing that the second derivative is positive.

Note, however, that we have assumed that the shore line from A to B is a straight line with AB perpendicular to AS. I believe that this is what is intended, but the question does not actually specify this and if the shoreline is different from this then the answer may change.

math question help (1 Viewer)

poptarts12345

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ultra908

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Hannah0605

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CM_Tutor

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CM_Tutor

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