bboyelement
Member
- Joined
- May 3, 2005
- Messages
- 242
- Gender
- Male
- HSC
- 2006
help me with this question please
-
Looking for HSC notes and resources? Check out our Notes & Resources page
HSC Revision Thread 2006 (1 Viewer)
- Thread starter Riviet
- Start date
- Status
shimmerz_777
Member
- Joined
- Sep 19, 2005
- Messages
- 130
- Gender
- Male
- HSC
- 2006
yea that question doesnt make sense to me either, i had a look at the answers posted, but even with the first bit its still confusing, i keep ending up with1 as the answer. like bar l1wl is how i see that, which just = 1? what am i missing or not getting. ill check over the answer againbboyelement said:
shimmerz_777
Member
- Joined
- Sep 19, 2005
- Messages
- 130
- Gender
- Male
- HSC
- 2006
1Trebla said:
let ST = x, PS=b RS=a (althought typo says e in answer)
by alternate angles on parallel lines,
BST=STP=@ (@ = pheta)
tan@= b/x
x=bcot@
volume of water V= ((b^2)cot@)/2
when it is turned, V=ah
((b^2)cot@)/2 = ah
((b^2)cot@)/2a = h, as required.
shimmerz_777
Member
- Joined
- Sep 19, 2005
- Messages
- 130
- Gender
- Male
- HSC
- 2006
7i)
consider triangles MPV, WPM and VWP
PV=PW=s (radii of same circle)
hence VWP is iscololese
(similiar proof for OVW reveals that OVPW is a kite)
diagonals of a kite intersect at right angles, if that isnt a general proof u can use angle sum of triangles to prove that PMV=90
ii)OT^2 = OU^2 + TU^2 (pythagaras in OPV)
PT^2= TU^2 +PU^2 (pythagaras in PTV)
hence OT^2 - PT^2 = OU^2 - PU^2
OM^2= r^2 - MW^2 pythagaras.....
PM^2 = s^2- MW^2 pythagaras....
OM^2 - PM^2 = r^2 - S^2
iii) when the point T is moved onto the line WV, the point U lies on point M
hence M=U, substituting M for U
OU^2 – PU^2 = OM^2 – PM^2 = r^2 – s^2
Hence now
OT^2 – PT^2 = r^2 – s^2
havent got the last question though...
consider triangles MPV, WPM and VWP
PV=PW=s (radii of same circle)
hence VWP is iscololese
(similiar proof for OVW reveals that OVPW is a kite)
diagonals of a kite intersect at right angles, if that isnt a general proof u can use angle sum of triangles to prove that PMV=90
ii)OT^2 = OU^2 + TU^2 (pythagaras in OPV)
PT^2= TU^2 +PU^2 (pythagaras in PTV)
hence OT^2 - PT^2 = OU^2 - PU^2
OM^2= r^2 - MW^2 pythagaras.....
PM^2 = s^2- MW^2 pythagaras....
OM^2 - PM^2 = r^2 - S^2
iii) when the point T is moved onto the line WV, the point U lies on point M
hence M=U, substituting M for U
OU^2 – PU^2 = OM^2 – PM^2 = r^2 – s^2
Hence now
OT^2 – PT^2 = r^2 – s^2
havent got the last question though...
k my methods pretty fastshimmerz_777 said:
draw vectors of unity 5 with mod 1
use tip to tail then ull find that vector from P1 - P0 is w-1
so to find mod of w-1 let w = cis2pie/5 cos its roots of unity remember each root rotated by cis 2pie/5
then mod is square root of{ (cos2pie/5-1)^2 + sin^2 2pie/5}
use pythag, double angle and ull get the answer
similar for part ii u can draw more vectors, find more mod and times em together ....
its an alternative if u forgot cos rule like me
toadstooltown
1337 }{4><
- Joined
- May 1, 2005
- Messages
- 137
- Gender
- Undisclosed
- HSC
- N/A
These ones are a bit weird in the way you have to approach them. You know it's one of them when the coëfficients 'rise and fall' but aren't a binomial expansion.
3x^4-11x³+14x²-11x+3
x²(3x²-11x+14-11/x+3/x²)
x²[3(x²+1/x²) -11(x+1/x) +14]
x²[3({x+1/x}²-2) -11(x+1/x) +14] - completing the square to make a quadratic
x²[3(x+1/x)²-11(x+1/x)+8]
x+1/x = [11±5]/6 - from quadratic formula
x+1/x = 8/3, 1
So,
x²(x+1/x-8/3)(x+1/x-1)
x²(3x+3/x-8)(x+1/x-1) - as we note the leading coëfficient
(3x²+3-8x)(x²+1-x) - multiplying each bracket by x
x = (4±sqrt7)/3, (1±isqrt3)/2 , x over C- from solving each quadratic
P(x)=3(x²-x+1)(x-4/3-sqrt7/3)(x-4/3+sqrt7/3) factorised over R. (NB sqrt7/3 = (sqrt7)/3)
If you sub the reals in at least you get 0, can't be bothered checking the Im answers. Let me know if I've made a mistake.
3x^4-11x³+14x²-11x+3
x²(3x²-11x+14-11/x+3/x²)
x²[3(x²+1/x²) -11(x+1/x) +14]
x²[3({x+1/x}²-2) -11(x+1/x) +14] - completing the square to make a quadratic
x²[3(x+1/x)²-11(x+1/x)+8]
x+1/x = [11±5]/6 - from quadratic formula
x+1/x = 8/3, 1
So,
x²(x+1/x-8/3)(x+1/x-1)
x²(3x+3/x-8)(x+1/x-1) - as we note the leading coëfficient
(3x²+3-8x)(x²+1-x) - multiplying each bracket by x
x = (4±sqrt7)/3, (1±isqrt3)/2 , x over C- from solving each quadratic
P(x)=3(x²-x+1)(x-4/3-sqrt7/3)(x-4/3+sqrt7/3) factorised over R. (NB sqrt7/3 = (sqrt7)/3)
If you sub the reals in at least you get 0, can't be bothered checking the Im answers. Let me know if I've made a mistake.
gamecw
Member
- Joined
- May 5, 2006
- Messages
- 242
- Gender
- Male
- HSC
- 2006
thankstoadstooltown said:These ones are a bit weird in the way you have to approach them. You know it's one of them when the coëfficients 'rise and fall' but aren't a binomial expansion.
3x^4-11x³+14x²-11x+3
x²(3x²-11x+14-11/x+3/x²)
x²[3(x²+1/x²) -11(x+1/x) +14]
x²[3({x+1/x}²-2) -11(x+1/x) +14] - completing the square to make a quadratic
x²[3(x+1/x)²-11(x+1/x)+8]
x+1/x = [11±5]/6 - from quadratic formula
x+1/x = 8/3, 1
So,
x²(x+1/x-8/3)(x+1/x-1)
x²(3x+3/x-8)(x+1/x-1) - as we note the leading coëfficient
(3x²+3-8x)(x²+1-x) - multiplying each bracket by x
x = (4±sqrt7)/3, (1±isqrt3)/2 , x over C- from solving each quadratic
P(x)=3(x²-x+1)(x-4/3-sqrt7/3)(x-4/3+sqrt7/3) factorised over R. (NB sqrt7/3 = (sqrt7)/3)
If you sub the reals in at least you get 0, can't be bothered checking the Im answers. Let me know if I've made a mistake.
toadstooltown
1337 }{4><
- Joined
- May 1, 2005
- Messages
- 137
- Gender
- Undisclosed
- HSC
- N/A
Nah, first time I came across one of those I spent half an hour blindly guessing roots untill I finally gave up and asked my teacher. It was frustrating so wouldn't wanna leave someone else equally as frustrated right before the exam!
- Status