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Cambridge Prelim MX1 Textbook Marathon/Q&A (1 Viewer)

leehuan

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Re: Year 11 Mathematics 3 Unit Cambridge Question & Answer Thread

Now subbing x = 1, you get y = -3 and so point of contact is (1, -3)

But answer in the book also says at ( -1, 3) the tangent is x + y -2 = 0

Not sure what it means?
Not too sure how that relates to the aforementioned question...
 
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Re: Year 11 Mathematics 3 Unit Cambridge Question & Answer Thread

How do you answer q 19)

Find the points where the line x + 2y = 4 cuts the parabola y = ( x -1)^2, and show that the line is the normal to the curve at one of these points.

I made x = 4 - 2y

and subbed it in to the parabola and got:

4y^2 - 13y + 9 = 0

(4y - 9) (y -1) = 0

Therefore points are ( 2,1) and the second point I am not sure: when I sub y = 9/4 into the parabola I get x = 5/2 but when into the line x = 8/9

Not sure why I am getting different results. And how to show that at one of these points the line is the normal to the curve.
<a href="http://www.codecogs.com/eqnedit.php?latex=x&space;&plus;&space;2y&space;=&space;4&space;\\&space;y&space;=&space;(x-1)^{2}&space;\\&space;\\&space;x&space;&plus;&space;2(x^{2}-2x&plus;1)&space;=&space;4&space;\\&space;x&space;&plus;&space;2x^{2}&space;-4x&plus;-2=0&space;\\&space;2x^{2}-3x-2=0&space;\\(2x&plus;1)(x-2)&space;=&space;0" target="_blank"><img src="http://latex.codecogs.com/gif.latex?x&space;&plus;&space;2y&space;=&space;4&space;\\&space;y&space;=&space;(x-1)^{2}&space;\\&space;\\&space;x&space;&plus;&space;2(x^{2}-2x&plus;1)&space;=&space;4&space;\\&space;x&space;&plus;&space;2x^{2}&space;-4x&plus;-2=0&space;\\&space;2x^{2}-3x-2=0&space;\\(2x&plus;1)(x-2)&space;=&space;0" title="x + 2y = 4 \\ y = (x-1)^{2} \\ \\ x + 2(x^{2}-2x+1) = 4 \\ x + 2x^{2} -4x+-2=0 \\ 2x^{2}-3x-2=0 \\(2x+1)(x-2) = 0" /></a>

Points of intersection are (2,1) and (-1/2, 9/4)

Now

<a href="http://www.codecogs.com/eqnedit.php?latex=y&space;=&space;(x-1)^{2}&space;\\&space;y'&space;=&space;2(x-1)&space;\\&space;\text{sub&space;x&space;=&space;2,&space;gradient&space;of&space;tangent&space;to&space;the&space;curve&space;is&space;2.}" target="_blank"><img src="http://latex.codecogs.com/gif.latex?y&space;=&space;(x-1)^{2}&space;\\&space;y'&space;=&space;2(x-1)&space;\\&space;\text{sub&space;x&space;=&space;2,&space;gradient&space;of&space;tangent&space;to&space;the&space;curve&space;is&space;2.}" title="y = (x-1)^{2} \\ y' = 2(x-1) \\ \text{sub x = 2, gradient of tangent to the curve is 2.}" /></a>

Therefore gradient of normal to the curve is <a href="http://www.codecogs.com/eqnedit.php?latex=\frac{-1}{2}" target="_blank"><img src="http://latex.codecogs.com/gif.latex?\frac{-1}{2}" title="\frac{-1}{2}" /></a> which is the gradient of the line. Hence line is normal to curve at (2,1)
 

leehuan

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Re: Year 11 Mathematics 3 Unit Cambridge Question & Answer Thread

^Done more neatly
 

Drongoski

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Re: Year 11 Mathematics 3 Unit Cambridge Question & Answer Thread

Ex 8E - Q20 (for lollipop)

Let radius of semi-circles be 'r'

.: each side of rectangle = (1000 - 2 x pi x r)/2 = 500 - pi x r

.: area of shaded rectangle A(r) = 2r x (500 - pi x r) . . . a quadratic in 'r' = 0 at r = 0, r = 500/pi

The mid-point of this 2 zeroes is r = (0 + 500/pi)/2 = 250/pi

The Max for A(r) occurs at this value of r (concave down parabola, vertex at r = 250/pi).

The corresponding dimensions of the rectangle
: 2r x (500 - pi x r) = 2 x 250/pi x (500 - pi x 250/pi) = 500/pi x 250 metres
 
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Drongoski

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Re: Year 11 Mathematics 3 Unit Cambridge Question & Answer Thread

Ex 8F - Q14 (for lollipop)

Let 'm' be the gradient of the line thru (1,7); its eqn is: y - 7 = m(x - 1) or: y = m(x - 1) + 7

Where this line meets: y = (2 - x)(1 + 3x) = -3x2 + 5x + 2

m(x - 1) + 7 = -3x2 + 5x + 2

.: 3x2 + (m - 5)x + (5 - m) = 0

Since line is tangent to the parabola, this equation has a repeated root, or:

discriminant "b2 - 4ac" = (m - 5)2 - 4 x 3 x (5 - m) = 0

.: (m - 5)(m + 7) = 0

.: gradient m = -7, 5
 
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appleibeats

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Re: Year 11 Mathematics 3 Unit Cambridge Question & Answer Thread

For Q 9 in 7E:

a) Find the equation of the tangent to y = 1/ x - 4 at the point L where x = b

b) Hence find the equations of the tangents passing through: i) the origin ii) W (6,0)


I was able to find the equation:

x + y(b - 4)^2 = 2b - 4

Now I though to answer b) you just subbed in the coordinates, but that doesn't get the answer.

Answer for b)

i) x + 4y = 0
ii) x + y = 6
 

rand_althor

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Re: Year 11 Mathematics 3 Unit Cambridge Question & Answer Thread

 
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appleibeats

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Re: Year 11 Mathematics 3 Unit Cambridge Question & Answer Thread

For Q22 IN 7D

Find the equation of the tangent to the parabola y = (x - 3)^2 at the point T where x = a, find the coordinates of the x -intercept A and y - intercept B of the tangent, and find the midpoint M of AB. For what value of a does M coincide with T?

I can answer all parts of the question but don't know how to work out and answer the last part. FOR WHAT VALUE OF A DOES M COINCIDE WITH T ?

The answer is a = 1

Is there a method to getting this answer or is it guess and check??
 

appleibeats

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Re: Year 11 Mathematics 3 Unit Cambridge Question & Answer Thread

3a from 7F

Find the tangents and normals to these curves a the indicated points:

y = x( 1 - x)^6 at the origin

I found the derivative:

y' = ( 1 - x)^5 (1 - 7x)

Now don't you just sub in (0,0)?
 

VBN2470

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Re: Year 11 Mathematics 3 Unit Cambridge Question & Answer Thread

So your tangent will be of the form (since it passes through the origin). Find the derivative of which will be (what you found) and sub. in the point x = 0 to get f'(0) = 1. Hence your tangent to the graph of f at (0, 0) will be y = x. Normal at the origin will then be y = -x.
 

appleibeats

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Re: Year 11 Mathematics 3 Unit Cambridge Question & Answer Thread

I am not sure about how to differentiate 8a from 7F

Differentiate y = a(x-a)(x-b) using the product rule

Is this right:

u = a( x-a) u' = not sure whether it is a or -a (do you need to do chain rule?)
v = (x - b) v' = not sure whether 1 or -1

I seem to get the correct answer without the negatives but am unsure why it is not negative. Don't you have to use chain rule in the derivate??
 

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Re: Year 11 Mathematics 3 Unit Cambridge Question & Answer Thread

Factor out the 'a' term and differentiate via product rule as usual
 

rand_althor

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Re: Year 11 Mathematics 3 Unit Cambridge Question & Answer Thread

Is this right:

u = a( x-a) u' = not sure whether it is a or -a (do you need to do chain rule?)
v = (x - b) v' = not sure whether 1 or -1
As VBN2470 said you should factor out the 'a'. Hence you would have: u=(x-a), v=(x-b). Both u' and v' would be 1, as the derivative of x is 1. Both 'a', and 'b' are constants, hence when you derive them with respect to x, they become 0.
If you did u=a(x-a), you would not have to do the chain rule, as the 'a' term is independent of x - it is a constant.
 
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DatAtarLyfe

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Re: Year 11 Mathematics 3 Unit Cambridge Question & Answer Thread

Every time i go to answer a question, someone else says it before me, FML
 

appleibeats

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Re: Year 11 Mathematics 3 Unit Cambridge Question & Answer Thread

What do you mean factor out the a.

Also does it matter that the question has alpa and beta in the brackets?

y = a( x - alpha)(x - beta)
 

rand_althor

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Re: Year 11 Mathematics 3 Unit Cambridge Question & Answer Thread

It doesn't matter if it is alpha and beta instead of a and b.

 

DatAtarLyfe

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Re: Year 11 Mathematics 3 Unit Cambridge Question & Answer Thread

What do you mean factor out the a.

Also does it matter that the question has alpa and beta in the brackets?

y = a( x - alpha)(x - beta)
As VBN2470 said you should factor out the 'a'. Hence you would have: u=(x-a), v=(x-b). Both u' and v' would be 1, as the derivative of x is 1. Both 'a', and 'b' are constants, hence when you derive them with respect to x, they become 0.
If you did u=a(x-a), you would not have to do the chain rule, as the 'a' term is independent of x - it is a constant.
^^
 

appleibeats

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Re: Year 11 Mathematics 3 Unit Cambridge Question & Answer Thread

For that same question part b)

Show that the tangents at the x- intercepts have opposite gradients and meet at a point M whose x -coordinates is the average of the x -intercepts.

I can show that the tangents at the two x - intercepts have opposite gradients:

at x = a

gradient = a ( a -b )

at x = b
gradient = -a (a - b)

But am struggling on the second part of the question. I though it has something to do with simultaneous equations??
 

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