• Congratulations to the Class of 2024 on your results!
    Let us know how you went here
    Got a question about your uni preferences? Ask us here

Trigonometric Values (1 Viewer)

FDownes

Member
Joined
Jul 15, 2007
Messages
197
Gender
Male
HSC
2008
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
 
Last edited:

FDownes

Member
Joined
Jul 15, 2007
Messages
197
Gender
Male
HSC
2008
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

Feel good ...
Joined
Jul 6, 2006
Messages
515
Gender
Male
HSC
2008
sinx.cosx = 1/2sin2x
sin2x.cos2x = 1/4sin22x
sin22x = 1/2 - 1/2cos4x

That should help you.
 

FDownes

Member
Joined
Jul 15, 2007
Messages
197
Gender
Male
HSC
2008
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
 
Last edited:

Mark576

Feel good ...
Joined
Jul 6, 2006
Messages
515
Gender
Male
HSC
2008
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.
 

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

Top