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Trigonometric Values (1 Viewer)

FDownes

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Hmm.. My calculations for this question seem to end up coming out all wrong. Could someone please show me theirs so I can see what I'm doing incorrectly? The question is;

Use the trapezoidal rule with 4 subintervals to find, correct to 3 decimal places, an approximation to the volume of the solid formed by rotating the curve y = sin x about the x-axis from x = 0.2 to x = 0.6
 
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FDownes

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I skipped the last question, but now I have a new problem;

Show that sinx cosx = 1/2 sin2x, and hence or otherwise find the exact value of 0pi/8 sin2x cos2x.

The first half of this question is easy, it's the second half that's giving me probelms. Could someone please show me their working?
 

Mark576

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sinx.cosx = 1/2sin2x
sin2x.cos2x = 1/4sin22x
sin22x = 1/2 - 1/2cos4x

That should help you.
 

FDownes

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Ah, I see what my problem was. I was assuming sin<sup>2</sup>x.cos<sup>2</sup>x = 1/2sin<sup>2</sup>2x, not sin<sup>2</sup>x.cos<sup>2</sup>x = 1/4sin<sup>2</sup>2x.

Thank ye kindly good sir.

EDIT: Ack! I'm so close to getting the answer, but by my working I end up with (pi - 4)/64 where it should be (pi - 2)/64, at least, according to the textbook...

Here's my working;

0pi/8 1/4 sin<sup>2</sup>2x
1/4 0pi/8 sin<sup>2</sup>2x
1/4 [x/2 - 1/4sin4x]0pi/8
1/4 [(pi/8)/2 - 1/4sin4(pi/8) - (0)/2 + 1/4sin4(0)]
1/4 [pi/16 - 1/4]
pi/64 - 1/16
(pi - 4)/64
 
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Mark576

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FDownes said:
Ah, I see what my problem was. I was assuming sin<sup>2</sup>x.cos<sup>2</sup>x = 1/2sin<sup>2</sup>2x, not sin<sup>2</sup>x.cos<sup>2</sup>x = 1/4sin<sup>2</sup>2x.

Thank ye kindly good sir.

EDIT: Ack! I'm so close to getting the answer, but by my working I end up with (pi - 4)/64 where it should be (pi - 2)/64, at least, according to the textbook...

Here's my working;

0pi/8 1/4 sin<sup>2</sup>2x
1/4 0pi/8 sin<sup>2</sup>2x
1/4 [x/2 - 1/4sin4x]0pi/8
1/4 [(pi/8)/2 - 1/8sin4(pi/8) - (0)/2 + 1/4sin4(0)]
1/4 [pi/16 - 1/8]
pi/64 - 1/32
(pi - 2)/64
Fixed.
 

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