scardizzle
Salve!
Could someone walk me through the solution to this question? Im having a little trouble understanding what the hell i'm supposed to show.
Thanks in advance
Thanks in advance
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Q7 of SGS 1999 Trial (1 Viewer)
- Thread starter scardizzle
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untouchablecuz
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t2=a(a+2r) → a2+2ra-t2=0
a=(r2+t2)-r disregarding the negative root since a>0
(PA+PB)/2=(a+2r+a)/2=a+r=√(r2+t2)=t√(r2/t2+1) > t since r2/t2+1>1
√(PA x PB)=√(a(a+2r))=√(t2)=t
.'. (PA+PB)/2>√(PA x PB)
for b)
i'm not too sure, is it x2+y2=(AB)2
LOL
a=(r2+t2)-r disregarding the negative root since a>0
(PA+PB)/2=(a+2r+a)/2=a+r=√(r2+t2)=t√(r2/t2+1) > t since r2/t2+1>1
√(PA x PB)=√(a(a+2r))=√(t2)=t
.'. (PA+PB)/2>√(PA x PB)
for b)
i'm not too sure, is it x2+y2=(AB)2
LOL
scardizzle
Salve!
Thanks for the replies guys still confused about part 2 though..
Here's what the solutions say:
t^2 = a(a + 2x) so t is constant, so locus is the circle centre p radius t
anyone care to explain? I have no idea how they came to that conclusion from just looking at the above equation
also another q i dont understand (-_-)
sorry about constantly asking questions
Here's what the solutions say:
t^2 = a(a + 2x) so t is constant, so locus is the circle centre p radius t
anyone care to explain? I have no idea how they came to that conclusion from just looking at the above equation
also another q i dont understand (-_-)
sorry about constantly asking questions
Last edited:
untouchablecuz
Active Member
- Joined
- Mar 25, 2008
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- Male
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- 2009
i shall complete the rest later, english is calling