-
Looking for HSC notes and resources? Check out our Notes & Resources page
Integration Q's (1 Viewer)
- Thread starter mtsmahia
- Start date
1)
A= pi.(2)^2/4 [Area of a quarter of a circle as sqrt(4-x^2) is a semicircle but area is only defined as 1st quadrant]
=pi
2) S {x=-a to x=a} x^3 dx = (1/4) [x^4] {x=-a to x=a}
A = (1/4) (a^4+(-a)^4)
= (1/4) (a^4+a^4)
= a^4/2
A= pi.(2)^2/4 [Area of a quarter of a circle as sqrt(4-x^2) is a semicircle but area is only defined as 1st quadrant]
=pi
2) S {x=-a to x=a} x^3 dx = (1/4) [x^4] {x=-a to x=a}
A = (1/4) (a^4+(-a)^4)
= (1/4) (a^4+a^4)
= a^4/2
Last edited:
addikaye03
The A-Team
f(-x)=-(x^3)=-f(x). Therefore rotational symmetry about origin, hence A=0.
biopia
WestSyd-UNSW3x/week
- Joined
- Nov 12, 2008
- Messages
- 341
- Gender
- Male
- HSC
- 2009
These are two important rules to learn as apart of the integration topic.
Get used to recognising that a formula in that form is a semicircle.
y=√4-x²
y²=4-x²
x²+y²=4
If you get used to 'seeing' that relationship, then you won't have to traditionally integrate (which I am sure yo know is a pain because of that square root sign hehe)
The second is a rule that you can be asked to prove. It's not that hard as long as you know you will end up with an integral of 0 at the end. It only ever works like this if the function is odd and the limits are the same magnitude but have the opposite sign.
Get used to recognising that a formula in that form is a semicircle.
y=√4-x²
y²=4-x²
x²+y²=4
If you get used to 'seeing' that relationship, then you won't have to traditionally integrate (which I am sure yo know is a pain because of that square root sign hehe)
The second is a rule that you can be asked to prove. It's not that hard as long as you know you will end up with an integral of 0 at the end. It only ever works like this if the function is odd and the limits are the same magnitude but have the opposite sign.
Last edited:
hello-there
Member
- Joined
- Jan 20, 2010
- Messages
- 117
- Gender
- Male
- HSC
- 2010
Q1) A of circle = pi.r^2
the graph is a semi circle x-int at x=2,-2
thus, A in 1st quad=a quater of a full circle
A=pi.2^2 /0.24
Q2)An alt. method.
Since the limits are at a & -a therefore the integral of an odd function with limits a and -a is 0
also the integral of an even function " ........................" is the same as 2x the integral of the even function with limits 0 to a OR -a to 0.
the graph is a semi circle x-int at x=2,-2
thus, A in 1st quad=a quater of a full circle
A=pi.2^2 /0.24
Q2)An alt. method.
Since the limits are at a & -a therefore the integral of an odd function with limits a and -a is 0
also the integral of an even function " ........................" is the same as 2x the integral of the even function with limits 0 to a OR -a to 0.
hscishard
Active Member
Wow, Wow, Wow, he did ask for the AREA didn't he? So that means using the the integral of odd functions with bounds +a and -a = 0 doesn't work. We use the 2 times Integral x^3, bounds being +a and 0.
: D sorry if im an ignorant bastard that doesn't know his maths if im wrong. We learn from mistakes, don't we?
: D sorry if im an ignorant bastard that doesn't know his maths if im wrong. We learn from mistakes, don't we?
oh damn, yeah sorry.
addikaye03
The A-Team
I apologise also, how clumsy. Well integrate from a->0 + 0->-a
Looks like we both made the same mistake lol
biopia
WestSyd-UNSW3x/week
- Joined
- Nov 12, 2008
- Messages
- 341
- Gender
- Male
- HSC
- 2009
Same lol...
hscishard
Active Member
Beaten by a Year 11 student 
. Now im just showing off.
So..Integral of 2 times x^3 bounds a and 0
= x^4 / 4.
= 2 times A^4 / 4 - 0
= a^4/2
I think thats right
. Now im just showing off.So..Integral of 2 times x^3 bounds a and 0
= x^4 / 4.
= 2 times A^4 / 4 - 0
= a^4/2
I think thats right