HSC 2016 MX1 Marathon (archive) (1 Viewer)

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davidgoes4wce

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Re: HSC 2016 3U Marathon



From the centre point, divide 360 degrees by 12= 30 degrees. From the centre we can treat each triangle as an isosceles triangle so the interior angles are 75 degrees . The sum of an angle of a triangle is = 75+75+30=180 degrees.

The exterior angle is equal to : 180-150= 30 degrees
 

davidgoes4wce

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Re: HSC 2016 3U Marathon

I had a bit of trouble visualising this question.

From Fitzpatrick

P and Q are points on the parabola x^2=4ay. Tangents TP and TQ are drawn from an external point T to cut the x-axis at A and B. Show that the joining the focus to the midpoint of AB is perpendicular to the chord of contact PQ.
 

leehuan

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Re: HSC 2016 3U Marathon

Call the midpoint of AB something like M, but I don't think F, M and T have to be collinear do they? In other words I reckon T doesn't have to lie on FM.

I think:

a) Find the gradient of PQ
b) Find the equation of the tangents
c) Sub y=0 to find x-intercepts
d) Find midpoint
e) Focus is obviously (0,a) so use gradient formula with focus and midpoint.
f) Prove perpendicularity
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P.S. If you want to know why I put the easy question
http://community.boredofstudies.org/10/maths/344794/hard-vce-maths-question.html
 
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leehuan

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Re: HSC 2016 3U Marathon

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leehuan

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Re: HSC 2016 3U Marathon

Just a tip, I would write du = cos(x) dx instead. But keep everything else except for your little accident the same. This is because you maintain the variables in the integral the same if you just directly substituted.
Apologies for writing a double absolute value sign. Its 11:25pm and I had a long day of work :sleep:
Np :p
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Note: arcsin just means sine inverse, aka sin^-1
 

integral95

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Re: HSC 2016 3U Marathon

Just a tip, I would write du = cos(x) dx instead. But keep everything else except for your little accident the same. This is because you maintain the variables in the integral the same if you just directly substituted.


Np :p
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Note: arcsin just means sine inverse, aka sin^-1
Using the identity


We add those 2 expressions together to get



Then you can use the double angle formulas to get that
 

leehuan

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Re: HSC 2016 3U Marathon

Using the identity


We add those 2 expressions together to get



Then you can use the double angle formulas to get that
*Compound
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leehuan

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Re: HSC 2016 3U Marathon

I believe the maths behind them is actually legit tbh :p you just pick him a lot
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Drsoccerball

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Re: HSC 2016 3U Marathon

I think we should give the 2016'ers a chance...
 

dan964

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Re: HSC 2016 3U Marathon



From the centre point, divide 360 degrees by 12= 30 degrees. From the centre we can treat each triangle as an isosceles triangle so the interior angles are 75 degrees . The sum of an angle of a triangle is = 75+75+30=180 degrees.

The exterior angle is equal to : 180-150= 30 degrees
There happens to be a simpler method, remembering that the exterior angle sum of any regular polygon is 360.
Divide that by 12, to get 30 degrees which is the answer.
 

leehuan

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Re: HSC 2016 3U Marathon

Trying to keep questions at an easy level to promote activity from the 2016ers tbh...
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InteGrand

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Re: HSC 2016 3U Marathon

Trying to keep questions at an easy level to promote activity from the 2016ers tbh...
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This is the definition of tan (or the most common one anyway).
 

leehuan

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Re: HSC 2016 3U Marathon

True (I think) but when the trigonometric ratios are introduced to the Yr 9 student they're introduced with aid of SOH-CAH-TOA and only for the right-angled triangle.
 
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