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HSC 2016 MX1 Marathon (archive) (1 Viewer)

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DatAtarLyfe

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Re: HSC 2016 3U Marathon

Unles I'm misreading something, the answer should be equal to 4a = 12 because a equals 3 in this case.
Yep that was my answer. However the answers they provided said the answer was 6. Generally i can tell if the answers are wrong or if im wrong, but i didnt know what they did so i couldnt tell
 

leehuan

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Re: HSC 2016 3U Marathon

View attachment 33145
Lee your way makes sense, and its what i thought of as well when the answers went for a amplitude approach. But idk why the answers did 2a when clearly it takes 4 times the amplitude to reach the starting position again

Edit: Part iii
The distance between both the endpoints is 2a. So if they doubled 2a, they got 4a.

The amplitude is just the distance from an endpoint to the equilibrium
 
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DatAtarLyfe

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HSC 2016 3U Marathon

The distance between the endpoints is 2a. So if they doubled 2a, they got 4a.

The amplitude is just the distance from an endpoint to the equilibrium
Lee i know how to get the answer. Im confused as to what they did.
They didnt do 4a, they just did 2a

Edit: they didnt double 2a, they doubled a
 

InteGrand

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Re: HSC 2016 3U Marathon

It's possible that the question intended to ask what's the distance travelled from one end to the other? Anyway, as asked (distance in a full cycle), the answer has to be 4A, where A is the amplitude.
 

leehuan

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Re: HSC 2016 3U Marathon

Lee i know how to get the answer. Im confused as to what they did.
They didnt do 4a, they just did 2a

Edit: they didnt double 2a, they doubled a
But I thought you said they found the distance between the endpoints and then doubled it?

If they only found the distance between the endpoints and left it there then they're wrong and you have to refer to InteGrand's suggested alternate question
 

DatAtarLyfe

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HSC 2016 3U Marathon

Nup, i said they only found the distance between the endpoints (which is equivalent to doubling the amp). I doubled the distance between the endpoints (which is equivalent to quadrupling the amp)

K then, ill assume they are wrong. Smh, got me so upset, stupid answers
 

si2136

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Re: HSC 2016 3U Marathon

View attachment 33157

OP is the radius of the circle, which is 14.9 metres.

OP = OQ

Let X be the intersection between Chord PQ.

OX = 5.1 metres (given)

Triangle OQX is congruent to Triangle OPX.

Therefore, (14.9)^2 = (5.1)^2 + (x)^2

Therefore x = 14.

14 is half of the chord. Therefore the chord PQ is 28 metres.
 

davidgoes4wce

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Re: HSC 2016 3U Marathon

Two particles A and B are moving along a horizontal line with their distances X(A) and X(B) to the right of the origin O at time t given by
X(A) = 4te^(-t) and X(B) = -4(t^2)(e^-t). The particles are joined by a piece of elastic, whose midpoint M has position X(M) at time t.

When are A and B furthest apart?
Ans: t = 0.5(1+root 5)

ive tried adding X(A) and X(B) and then differentiating it to find the max tp and i dont seem to get the answer. Thx














 
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leehuan

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Re: HSC 2016 3U Marathon

Instructive question.

 
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