MedVision ad

Differentiatiation Q (1 Viewer)

shaon0

...
Joined
Mar 26, 2008
Messages
2,029
Location
Guess
Gender
Male
HSC
2009
Differentiation Q

Can someone help me differentiate:
P= I/[RI+(1-RI)e^-kt]
 
Last edited:

vds700

Member
Joined
Nov 9, 2007
Messages
861
Location
Sydney
Gender
Male
HSC
2008
Re: Differentiation Q

shaon0 said:
Can someone help me differentiate:
P= I/[RI+(1-RI)e^-kt]
P = I . [RI+(1-RI)e^-kt]^-1

using the chain rule,

dP/dt =I . -[RI+(1-RI)e^-kt]^-2 .(-k)(1-RI)e^-kt
=kI(1-RI)e^-kt/[RI+(1-RI)e^-kt]^2
 
Last edited:

shaon0

...
Joined
Mar 26, 2008
Messages
2,029
Location
Guess
Gender
Male
HSC
2009
Re: Differentiation Q

vds700 said:
P = [RI+(1-RI)e^-kt]^-1

using the chain rule,

dP/dt = -[RI+(1-RI)e^-kt]^-2 .(-k)(1-RI)e^-kt
its an I not a 1 above the [RI+(1-RI)e^-kt]
 

Fortian09

Member
Joined
May 19, 2008
Messages
120
Gender
Male
HSC
2009
Re: Differentiation Q

Hmm I'm having trouble with a differentiation problem

the question is

g(t) = (4t2+7)2(2t3+1)4

Find the derivative.

I can get the first bit using chain rule but i cant get the rest..
 

tommykins

i am number -e^i*pi
Joined
Feb 18, 2007
Messages
5,730
Gender
Male
HSC
2008
Re: Differentiation Q

fuck sake. the computer is annoying.

 
Last edited:

cinDii

New Member
Joined
Oct 14, 2008
Messages
7
Location
Hornsby,Sydney
Gender
Female
HSC
2008
Re: Differentiation Q

are you jus differentiating that?
just go 'first (section) differentiate second (section) + second (section) differentiate first (section) i think the answer is..
g'(t) = 24t^2(2t^3+1)^3(4t^2+7)^2 + 16t(2t^3+1)^4(4t^2+7)
hope thats right and tht helps ><
 

Fortian09

Member
Joined
May 19, 2008
Messages
120
Gender
Male
HSC
2009
Re: Differentiation Q

I have no idea why but both answers are wrong for some reason
 

tommykins

i am number -e^i*pi
Joined
Feb 18, 2007
Messages
5,730
Gender
Male
HSC
2008
Re: Differentiation Q

Nope, my answer is correct. I even graphed it.
 

Fortian09

Member
Joined
May 19, 2008
Messages
120
Gender
Male
HSC
2009
Re: Differentiation Q

Ahh well
man i havent been on this for ages

ummm
I have this question

x2 + xy2 = 12; (1,3) and ur meant to find the eqns of the tangent and normal to the given curve at hte indicated point

but this question is wierd
I tested the curve by subbing in the point of x=1 but then the point ends up lying on the outside of the curve not the point where the tangent occurs
any answers?
 

independantz

Member
Joined
Apr 4, 2007
Messages
409
Gender
Male
HSC
2008
Re: Differentiation Q

Fortian09 said:
Ahh well
man i havent been on this for ages

ummm
I have this question

x2 + xy2 = 12; (1,3) and ur meant to find the eqns of the tangent and normal to the given curve at hte indicated point

but this question is wierd
I tested the curve by subbing in the point of x=1 but then the point ends up lying on the outside of the curve not the point where the tangent occurs
any answers?
Yeah the point does not lie on the curve ??? Probably a dodgy question.
 

Fortian09

Member
Joined
May 19, 2008
Messages
120
Gender
Male
HSC
2009
Re: Differentiation Q

well it's apparently still solvable...
like the point lies on the line of the tangent but isnt actually touching the curve...
so hmmm
iono
it should be solvable i jsut dunno how
 

Trebla

Administrator
Administrator
Joined
Feb 16, 2005
Messages
8,385
Gender
Male
HSC
2006
Fortian09 said:
U sure because i tried switching it around and i didnt get the answer either so now wat?
Um...
LHS = x² + xy² sub (3,1)
= 9 + 3.1
= 12
= RHS
so it lies on the curve :p
So rearranging gives:
12 - x² = xy²
y² = 12/x - x
y = √(12/x - x) (take positive root as y is positive at point (3,1))
Differentiate and you should be able to find equations of tangent and normal
Alternatively you can use implicit differentiation which is an Extension 2 method.
 
Last edited:

duy.le

Member
Joined
Feb 15, 2007
Messages
137
Gender
Male
HSC
2008
hey tommikins how did u go in 3/4 u? i didnt see any posts by u
 

tommykins

i am number -e^i*pi
Joined
Feb 18, 2007
Messages
5,730
Gender
Male
HSC
2008
i reckon i did pretty well, should be band 6 in both of them.
 

shaon0

...
Joined
Mar 26, 2008
Messages
2,029
Location
Guess
Gender
Male
HSC
2009
tommykins said:
i reckon i did pretty well, should be band 6 in both of them.
hey tommykins, long time no see. How has the HSC been going?
 

tommykins

i am number -e^i*pi
Joined
Feb 18, 2007
Messages
5,730
Gender
Male
HSC
2008
not too bad, i totally ripped up physics today :)

english will be the decider for 95uai hahah
 

Users Who Are Viewing This Thread (Users: 0, Guests: 1)

Top