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HSC 2015 MX2 Marathon (archive) (6 Viewers)

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InteGrand

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Re: HSC 2015 4U Marathon

And of course the physical interpretation is that k represents (something proportional to) some sort of resistance force (air resistance), and as that goes to 0, the ball dropped under gravity has its motion approach that of no resistance.
 

Sy123

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Re: HSC 2015 4U Marathon







 
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glittergal96

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Re: HSC 2015 4U Marathon

And of course the physical interpretation is that k represents (something proportional to) some sort of resistance force (air resistance), and as that goes to 0, the ball dropped under gravity has its motion approach that of no resistance.
Yep :).
 
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Re: HSC 2015 4U Marathon

Just wondering if this is remotely correct:



from this -1/z = -r (1+ isqrt 3) [where r is modulus of -1/z]
rz = 1/ (1+ isqrt3)
r(x+ iy) = (1- isqrt3)/4
but since we know that x =1 can we assume that r = 1/4 and hence y = sqrt 3 ?
thus z = 1- sqrt 3
 

InteGrand

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Re: HSC 2015 4U Marathon

Just wondering if this is remotely correct:



from this -1/z = -r (1+ isqrt 3) [where r is modulus of -1/z]
rz = 1/ (1+ isqrt3)
r(x+ iy) = (1- isqrt3)/4
but since we know that x =1 can we assume that r = 1/4 and hence y = sqrt 3 ?
thus z = 1- sqrt 3
This isn't correct. The second line of the working is an incorrect conclusion from the first line; something we could conclude from the first line is that -1/z = r.cis(-2pi/3), where r is the modulus of -1/z (which is the reciprocal of the modulus of z).
 
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Re: HSC 2015 4U Marathon

This isn't correct. The second line of the working is an incorrect conclusion from the first line; something we could conclude from the first line is that -1/z = r.cis(-2pi/3), where r is the modulus of -1/z (which is the reciprocal of the modulus of z).
Ahh cool, so from -1/z = r.cis(-2pi/3), you could get
-1/z = r.[cos(-2pi/3) + isin(-2pi/3)]
which would net you -1/z = -[r(1+ sqrt3)]/2
and re-arrange to get rz =2/(1+ sqrt 3)


Is that and using that fact that we know x= 1 to find r and y correct?
Thank you so much btw!!
 
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Ekman

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Re: HSC 2015 4U Marathon

Next Question (relatively easy one):

 
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