Quick differentiation question (1 Viewer)

LoveHateSchool · Sep 30, 2012

I'm trying to differentiate V=5.4(2sinθ + sinθcosθ) .
And then deriving that derivative.

Can someone please step me through, I'm brain fried and failing at it and the rest of the Q will be easy after this.

Timske · Sep 30, 2012

Answer is , 10.8cosx + 5.4cos2x
v = 5.4(2sinx+cosxsinx) , expand
v = 10.8sinx + 5.4sinxcosx , we know sinxcosx = 1/2sin2x
v = 10.8sinx + 5.4/2sin2x
differentiate d/dx sinx = cosx and d/dx sin2x=2cos2x

dv/dx = 10.8cosx + 5.4/2*2*cos2x

LoveHateSchool · Sep 30, 2012

Timske said:
Answer is , 10.8cosx + 5.4cos2x
v = 5.4(2sinx+cosxsinx) , expand
v = 10.8sinx + 5.4sinxcosx , we know sinxcosx = 1/2sin2x
v = 10.8sinx + 5.4/2sin2x
differentiate d/dx sinx = cosx and d/dx sin2x=2cos2x

dv/dx = 10.8cosx + 5.4/2*2*cos2x

Thank you so much, just two quick Qs.
1) How do we know sinθcosθ is 1/2sin2x ?
2) For the answer to be 5.4(2cosθ + 2cos^2θ-1), did they just factorize it? I'm still messing it up

Timske · Sep 30, 2012

1) well sin2x= 2sinxcosx therefore 1/2sin2x = 1/2*2sinxcosx = sinxcos
2) The answer is 10.8cosx+5.4cos2x, factorise 5.4 out -> 5.4(2cosx+cos2x) , applying the identity cos2x = 2cos^2x - 1 -> 5.4(2cosx + 2cos^2x-1)

enoilgam · Sep 30, 2012

Timske said:
1) well sin2x= 2sinxcosx therefore 1/2sin2x = 1/2*2sinxcosx = sinxcos
2) The answer is 10.8cosx+5.4cos2x, factorise 5.4 out -> 5.4(2cosx+cos2x) , applying the identity cos2x = 2cos^2x - 1 -> 5.4(2cosx + 2cos^2x-1)

Its been a while since I have done this, but isnt that a 3 unit thing?

Shadowdude · Sep 30, 2012

enoilgam said:
Its been a while since I have done this, but isnt that a 3 unit thing?

Yeah it is.

Amundies · Sep 30, 2012

Yeah, those are 3U trig identities.

Timske · Sep 30, 2012

LoveHateSchool said:
Thank you so much, just two quick Qs.
1) How do we know sinθcosθ is 1/2sin2x ?
2) For the answer to be 5.4(2cosθ + 2cos^2θ-1), did they just factorize it? I'm still messing it up

Get that without 3u identities

nightweaver066 · Sep 30, 2012

$V = 5.4(2sin\theta + sin\theta cos\theta)$

$V' = 5.4(2cos\theta + (sin\theta \times -sin\theta + cos\theta \times cos\theta)$

$= 5.4(2cos\theta - sin^2\theta + cos^2\theta)$

$V'' = 5.4(-2sin\theta - (2sin\theta cos\theta - 2cos\theta \times (-sin\theta))$

$= 5.4(-2sin\theta -2sin\theta cos\theta - 2sin\theta cos\theta)$

$= -10.4(sin\theta + 2sin\theta cos\theta)$

I must be half asleep. Already much discussion in this thread..

LoveHateSchool · Sep 30, 2012

Thank you so much for all the discussion guys, and nightweaver you worked solution is fantastic, I can step my way through it and see where I was screwing up now <3

Come at me · Sep 30, 2012

Use product rule to diff sin . cos (u cant use 3u identities in 2u)

Quick differentiation question (1 Viewer)

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