Extension One Revising Game (1 Viewer)

addikaye03

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S= S {inf} = (a/(1-r))

S-S{n}
= (a/(1-r)) - (a(r^n-1)/r-1)
= (a/(1-r)) - (a(1-r^n)/r-1)
= (ar^n)/(1-r)

S-S{n} < 0.0001
(ar^n/1-r) < 0.0001
(6(1/2)^n/(0.5)) < 0.0001
(1/2)^n < (0.0001/12)
n < ln(0.0001/12)/ln(1/2)
n < 16.87...
Thus, n is 16.

I don't think my answer is right though.
i) is correct, thats the easy part. ii) basically correct, the number has to follow that : 12( 1/2)^n< 10^-4 and 2^n>120000...do you understand what i mean? Well done nontheless though.
 

shaon0

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i) is correct, thats the easy part. ii) basically correct, the number has to follow that : 12( 1/2)^n< 10^-4 and 2^n>120000...do you understand what i mean? Well done nontheless though.
Sorry, I may have assumed something that i wasn't meant to.
 

kurt.physics

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y'=[3x+4]/(2rt(x+2)

u'=3x+4 v'=2(x+2)^1/2

u''=3 v''=(x+2)^-1/2 (1)

y''=v'u''+u'v''

[Typed it straight up on computer, thats why i had to do so many steps]

EDIT: Did i get it wrong?:S
Um, first you have a fraction, that is [3x+4]/[2rt(x+2)], then you use the product rule, where you are supposed to use the quotient rule.
 

addikaye03

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I often do that as well - yields the same answer so xD
i think im noob, gurmies lol

Question: If P(x)=ax^5+bx^4+cx^3+dx^2+ex+f, Write down P(-x)=-P(x).
i)If P(x) is an Even polynomial, show that a=c=e=0
ii) If P(x) is an Odd polynomial, show that b=d=f=0

Hence, state general results for the coefficients of odd and even powers of x when a polynomial is even or odd.

[Pretty unique little Q i thought]
 

kurt.physics

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i think im noob, gurmies lol

Question: If P(x)=ax^5+bx^4+cx^3+dx^2+ex+f, Write down P(-x)=-P(x).
i)If P(x) is an Even polynomial, show that a=c=e=0
ii) If P(x) is an Odd polynomial, show that b=d=f=0

Hence, state general results for the coefficients of odd and even powers of x when a polynomial is even or odd.

[Pretty unique little Q i thought]



























































 

addikaye03

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Thanks. I dont have any questions... but yes it would be awesome if you could post another ;)
no worries man

Question (Projectile): A golf ball is hit from a point O with an initial velocity V m/s so that it rises with an angle of 30* ( *=degrees) to the horizontal. Taking g=10ms/s show that x=1/2(Vrt(3t)), y=-5t^2+1/2(Vt)

a) in its decent, its clears a wall 11.25m high, and takes 4.5 sec from moment of projection to clear the wall. Calculate

i)value of V

ii) greatest hieght reached by ball

iii)horizontal distance from the wall to the point of impact of the ball with the ground

[that ought to keep you lot busy]
 

gurmies

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(A)



(B)



(C)



EDIT: Read question wrong, have to subtract that from wall distance - cbb to change now with LAGGY BoS
 
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addikaye03

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(A)



(B)



(C)



EDIT: Read question wrong, have to subtract that from wall distance - cbb to change now with LAGGY BoS
For other hes just means subtract the distance from wall to origin of projection ie. x=25rt3-225rt3/2=25rt3/2
<DIR></DIR>Well done nevertheless Gurmies!
 

addikaye03

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Question:

A deck of cards consists of a 4 groups each of 6 cards. Each group with a different colour and the cards number 1 to 6.

a) How many distinct 5-card subsets are possible from the deck If:
i)3 cards are marked with integer '5' and 2 are marked with '6'
ii)5 cards are all the same colour
iii) exactly 4 of the cards has the same integer on it
iv) the sum of the digits is greater than 27


[I found this difficult to think bout at first but once you think bout it right, its easy as]
 
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Timothy.Siu

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Question:

A deck of cards consists of a 4 groups each of 6 cards. Each group with a different colour and the cards number 1 to 6.

a) How many distinct 5-card subsets are possible from the deck If:
i)3 cards are marked with integer '5' and 2 are marked with '6'
ii)5 cards are all the same colour
iii) exactly 4 of the cards has the same integer on it
iv) the sum of the digits is greater than 72


[I found this difficult to think bout at first but once you think bout it right, its easy as]
i)4C3 x 4C2
ii)6C5x4
iii)4C4x6x20?
iv)0?
 

azen

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Help me with these questions ><" Thank you~ ^^

A cricket ball leaves the bowler's hand 2 metres above the ground with a velocity of 30m/s at an angle of 5 degrees below the horizontal. The equations of motion for the ball are

Acceleration (x double dot)=0, y DOUBLE DOT=-10

Take the origin to be the point where the ball leaves the bowler's hand.
i) Using caculusm prove that the coordinates of the ball at time t are given by
x=30tcos(5degrees), y=-30tsin(5degrees)-5t^2

ii) Find the time at which the ball strikes the ground
iii)caculate the angle at which the ball strikes the ground
 

addikaye03

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Help me with these questions ><" Thank you~ ^^

A cricket ball leaves the bowler's hand 2 metres above the ground with a velocity of 30m/s at an angle of 5 degrees below the horizontal. The equations of motion for the ball are

Acceleration (x double dot)=0, y DOUBLE DOT=-10

Take the origin to be the point where the ball leaves the bowler's hand.
i) Using caculusm prove that the coordinates of the ball at time t are given by
x=30tcos(5degrees), y=-30tsin(5degrees)-5t^2

ii) Find the time at which the ball strikes the ground
iii)caculate the angle at which the ball strikes the ground
this Q has been answered like a billion times on here, have a look round...

new Q anyone?
 

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