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- Thread starter k4t5UM0t0
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JasonNg1025
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If it's the limit one, I punched it in my calculator and got 3.1415926535.. so I put in pi..
Can people also please post their answers to guessing the velocity of the raindrop hitting the ground? And also.. how did you do it
I just randomly put 6m/s
Can people also please post their answers to guessing the velocity of the raindrop hitting the ground? And also.. how did you do it
I just randomly put 6m/s
Last edited:
omg how can i forget to put a number like n=1000 into the equationJasonNg1025 said:If it's the limit one, I punched it in my calculator and got 3.1415926535.. so I put in pi..
Can people also please post their answers to guessing the velocity of the raindrop hitting the ground? And also.. how did you do it
I just randomly put 6m/s
G
gaoOO
Guest
hm, vladimirv and I both got pi^2/2
sin pi/2n -> pi/2n
sin pi/2n -> pi/2n
Hikari Clover
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回复: Re: Answers
man,it cant be pi.....
did u forget to put square ?
i got pi^2/2....
man,it cant be pi.....
did u forget to put square ?
i got pi^2/2....
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Re: 回复: Re: Answers
For the rain drop, using
v^2 = 49 (1 - e^[-2x/5])
as x -> infinity
e^[-2x/5] -> 0
So v^2 -> 49
v -> 7
EDIT: I also got 0 for the last question.
Because -
As n -> Infinity
sin(pi/2n) -> 0
therefore 2(nsin(pi/2n)^2 -> 0
Think about it logically... Why would a infinitely sided polygon be restricted to perimeter of pi/2 or something like that?
For the rain drop, using
v^2 = 49 (1 - e^[-2x/5])
as x -> infinity
e^[-2x/5] -> 0
So v^2 -> 49
v -> 7
EDIT: I also got 0 for the last question.
Because -
As n -> Infinity
sin(pi/2n) -> 0
therefore 2(nsin(pi/2n)^2 -> 0
Think about it logically... Why would a infinitely sided polygon be restricted to perimeter of pi/2 or something like that?
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5di was kind of annoying...
Basically, BCP and BAP are similar coz they have equal sides/angles whatever.
And for a 4 sided polygon each interior angle is (n-2)180/5 degrees = 3pi/5
Therefore Angle BAP = 3pi/5 but bap and ead are pi/5 therefore angle cad = pi/5.
Also, Side AC = AP+PC
And cos (pi/5) = AP/1
So AP = u
Similarly, PC = u
And so AC = 2u
Similarly, AD = 2u
Using the cos rule,
CD^2 = AC^2 + AD^2 - 2(AC)(AD)Cos (CAD)
CD=1
1 = (2u)^2 + (2u)^2 - 2(2u)(2u)u
1= 8u^2 - 8u^3
Rearraging
8u^3-8u^2+1 = 0
As required.
Basically, BCP and BAP are similar coz they have equal sides/angles whatever.
And for a 4 sided polygon each interior angle is (n-2)180/5 degrees = 3pi/5
Therefore Angle BAP = 3pi/5 but bap and ead are pi/5 therefore angle cad = pi/5.
Also, Side AC = AP+PC
And cos (pi/5) = AP/1
So AP = u
Similarly, PC = u
And so AC = 2u
Similarly, AD = 2u
Using the cos rule,
CD^2 = AC^2 + AD^2 - 2(AC)(AD)Cos (CAD)
CD=1
1 = (2u)^2 + (2u)^2 - 2(2u)(2u)u
1= 8u^2 - 8u^3
Rearraging
8u^3-8u^2+1 = 0
As required.
G
gaoOO
Guest
Re: 回复: Re: Answers
lim n--> infinity of 2 (sin pi/2n)^2
as n approaches infinity, pi/2n approaches zero. But lim x--> 0 of sin x = x
therefore it is equal to 2 (pi/2n)^2
= pi^2/2
well my solution is on the other thread, but logically p/q can't equal zero because p doesn't ever equal zero.Golbez said:
lim n--> infinity of 2 (sin pi/2n)^2
as n approaches infinity, pi/2n approaches zero. But lim x--> 0 of sin x = x
therefore it is equal to 2 (pi/2n)^2
= pi^2/2
well along the lines of what gaoOO said,
if you think logically,
as n approaches infinity
n x sin(pi/2n) = really big number x really small number
so you're forgetting the 'really big number'
so you can't just assume it goes to zero
if you think logically,
as n approaches infinity
n x sin(pi/2n) = really big number x really small number
so you're forgetting the 'really big number'
so you can't just assume it goes to zero