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Sum hard questions (1 Viewer)
- Thread starter GaganDeep
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bboyelement
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- May 3, 2005
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- 2006
for F draw up your diagram according to the description.
vector PR = z1 - z3
vector PQ = z1 - z2
using pythagoras.
PR2 + PQ2 = a2
z12 - 2z1z3 + z32 + z12 - 2z1z2 + z22 = a2
but we know that vector PQ = vector PR x i (as your are turning 90 degrees)
therefore PR2 + (i PR)2
= PR2 - PR2 = 0
therefore a = 0
and from the equation above you should get the answer by moving it to the other side and adding z1
vector PR = z1 - z3
vector PQ = z1 - z2
using pythagoras.
PR2 + PQ2 = a2
z12 - 2z1z3 + z32 + z12 - 2z1z2 + z22 = a2
but we know that vector PQ = vector PR x i (as your are turning 90 degrees)
therefore PR2 + (i PR)2
= PR2 - PR2 = 0
therefore a = 0
and from the equation above you should get the answer by moving it to the other side and adding z1
Last edited:
gamecw
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- 2006
For the ellipse question
let P be (2cos@, rt3sin@)
equation of normal at P: y=-2/rt3.tan@.x - [(4-3)/rt3]sin@
let C be the pt of intersection of normal n X axis
Solve for C get: x= [(4-3)/2]cos@
now use that to prove PS/PS'=CS/CS' (shud have done that in previous part?)
Now finally:
let ^PCS=q (an angle)
^PCS'=180-q
use sine rule sin(p)/PS=sin(^CPS)/CS and sin(180-p)/PS'=sin(^CPS')/CS'
since sin(p)=sin(180-p) and PS/PS'=CS/CS', derive ^CPS=^CPS'
let P be (2cos@, rt3sin@)
equation of normal at P: y=-2/rt3.tan@.x - [(4-3)/rt3]sin@
let C be the pt of intersection of normal n X axis
Solve for C get: x= [(4-3)/2]cos@
now use that to prove PS/PS'=CS/CS' (shud have done that in previous part?)
Now finally:
let ^PCS=q (an angle)
^PCS'=180-q
use sine rule sin(p)/PS=sin(^CPS)/CS and sin(180-p)/PS'=sin(^CPS')/CS'
since sin(p)=sin(180-p) and PS/PS'=CS/CS', derive ^CPS=^CPS'