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Mathematics Extension 1 Marathon HSC 09 (2 Viewers)

iMAN2

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Similar to the Mathematics Thread started by ForrestGump at here.

How To Play:
The first person asks a Mathmatics Ext 1 question (maybe one you've had trouble with). The next person answers it then posts another question for the next person then so on.

Tip:
If you feel an area is your weakness then try asking a question on this area to see others responses to it which may help you in your understanding.

1st Question: (2 Marks)
Let where
Show that f(x) has exactly one zero when
 
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hermand

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peopleeeeeee. you need to ask questions back. i'm bored. give me something to do! haha.
 

AlexJB

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@untouchablecuz: dont have pen+paper, doing phys review. tried doing your q, and failed first time on ms word. takes too long, ill try later with paper. answer me this though. i get it down to y-y1=m(x-x1), when x=0, y=0, hence y1 = mx1. Am I meant to solve for m?

---

^^^
I'm not that great with these kind of proofs :/



That an acceptable proof?
 

Aerath

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^^^
I'm not that great with these kind of proofs :/



That an acceptable proof?
Correct.

Since you didn't post a question....

Sketch y = 4x^2 / (x^2 -9)
 

untouchablecuz

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@untouchablecuz: dont have pen+paper, doing phys review. tried doing your q, and failed first time on ms word. takes too long, ill try later with paper. answer me this though. i get it down to y-y1=m(x-x1), when x=0, y=0, hence y1 = mx1. Am I meant to solve for m?
let the point x=a be where the tangent(s) intersect with the curve

at x=a, dy/dx=3a2-4a [1]

if the tangents pass through (0, 0), they are of the form y=mx

at x=a, dy/dx=m [2]

[1] and [2] are equal, since the gradient at x=a of the curve is equal to that of the line

.'. 3a2-4a=m [3]

on the curve,

when x=a, y=a3-2a2+1 [4]

on the line,

when x=a, y=ma [5]

[4] and [5] are equal

.'. ma=a3-2a2+1 [6]

sub [3] in [6]

a(3a2-4a)=a3-2a2+1

2a3-2a2-1=0

according to an online cubic solver, a~1.297156508177424

sub into the equation of the cubic and y~-0.1826150067

sub into [5]

m=-0.1407810126

.'. the equation of the tangent is y=-0.1407810126x

realistically, they'll give you an equation that factors nicely
 

hermand

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i didddddddd
i am deadset blind. sorry, my bad.

Q. A particle moves in a straight line and its position at time 't' is given by;
i. Express in the form where is in radians.
ii. The particle is undergoing simple harmonic motion. Find the amplitude and the centre of the motion.
iii. When does the particle first reach its maximum speed after time t=0?
 
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jet

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After hermand's question is done:

 

xFusion

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R=2

(ii) amplitude=2, center of motion=5
iii) particle reaches maximum speed when x=5

 
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addikaye03

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New question:

Find the values of r and n if in the expansion (1+x)^n in ascending powers of x, the (r+1)-th coefficient is twice the r-th and (r+10)-th coefficient is twice the (r+11)-th.

What is the greatest coefficient in this expansion?
 

-Onlooker-

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New question:

Find the values of r and n if in the expansion (1+x)^n in ascending powers of x, the (r+1)-th coefficient is twice the r-th and (r+10)-th coefficient is twice the (r+11)-th.

What is the greatest coefficient in this expansion?

Ok im supposed to answer but im not going to (dont know how to work the latex crap )

But just wanted to say : These questions are like Harder 3unti Q's , super awesome, I might add :)
 

jet

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I had a question above. No one's answered it yet.
 

scardizzle

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New question:

Find the values of r and n if in the expansion (1+x)^n in ascending powers of x, the (r+1)-th coefficient is twice the r-th and (r+10)-th coefficient is twice the (r+11)-th.

What is the greatest coefficient in this expansion?
is n = 29 and r= 9?
 

untouchablecuz

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i tried yesterday and today, i cant get that goddam upper bound on the angle

its probably something simple :mad:
 

eoklm11

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New question:

Find the values of r and n if in the expansion (1+x)^n in ascending powers of x, the (r+1)-th coefficient is twice the r-th and (r+10)-th coefficient is twice the (r+11)-th.

What is the greatest coefficient in this expansion?


given

Tr+1 = 2Tr

Tr+1/Tr = 2 ,

Simlilarly
Tr+11/ Tk+10 = 2

There fore
Tr+1/Tk = Tr+11/ Tk+10

now Tr+1/ Tr = (n-r)x/(r+1)

from Tr+1= x^(r+1)(n!)/(r+1)!(n-r-1)! = x.x^r(n!)/(r+1)r!(n-r-1)!

and Tr= x^r(n!)/r!(n-r)!= x^r(n!)/r!(n-r-1)(n-r)!

Similarly Tr+1/ Tr = (n-r-10)x/(r+11)

Thus
(n-r)x/(r+1) =(n-r-10)x/(r+11)
\......................................

idk i'm stuffed someone help me?:S
 
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