Volume about the x axis problem (1 Viewer)

js992 · Mar 4, 2010

The area in the first quadrant under y=1 and above y=2-2/x is rotated about the x axis. Find the volume formed.

Chapter 12E Q14 Cambridge year 11 3U

I keep getting the answer wrong and am not sure if i'm doing it right or not.
$\pi\int_{1}^{2} (1)^2-(2-\frac{2}{x})^2 dx$
$\pi\int_{1}^{2} 3-\frac{4}{x^2}+\frac{4}{x}$
2
$=\pi\left [ 8lnx+\frac{4}{x}-3x \right ]$ 1
$= (8ln2 +2 -6)-(8ln1+4-3)$
$=8ln2 - 5$

The answer is 8 ln 2 - 4 -__-

Drongoski · Mar 4, 2010

$\100dpi V\ =\ \int_{0}^{1}2\pi y\ \times \ \left ( \frac{y}{2-y}\ -\ 0 \right )\ dy\\ \\ =\ \ 4\pi \int_{0}^{1}\ \frac{y}{2-y}\ dy\ \ =\ \ 4\pi \int_{0}^{1}\left ( \frac{2}{2-y}\ - \ 1\right )\ dy\\ \\ =\ \ 4\pi \left [ -2ln\left | 2-y \right |-y \right ]^{1}_{0}\ \ =\ \ 4\pi (2ln2\ -\ 1)\ \ unit^{3}$

Easier if you formulate solution via cylindrical shells.

You misquoted the book's answer.

life92 · Mar 4, 2010

js992 said:
The area in the first quadrant under y=1 and above y=2-2/x is rotated about the x axis. Find the volume formed.

Chapter 12E Q14 Cambridge year 11 3U

I keep getting the answer wrong and am not sure if i'm doing it right or not.
$\pi\int_{1}^{2} (1)^2-(2-\frac{2}{x})^2 dx$
$\pi\int_{1}^{2} 3-\frac{4}{x^2}+\frac{4}{x}$
2
$=\pi\left [ 8lnx+\frac{4}{x}-3x \right ]$ 1
$= (8ln2 +2 -6)-(8ln1+4-3)$
$=8ln2 - 5$

The answer is 8 ln 2 - 4 -__-

This is actually obviously very close to the answer.
Btw you are missing a pi XD

But anyway, as you can see, you integrated from 1=>2, however, if you look at a diagram, there is still a space underneath y=1 in the first quadrant.
This is the missing volume that you are leaving out behind, which you can simply find by finding the area of the cylinder.

It has radius 1 (from y=0 to y=1) and height 1 (from x=0 to x=1), so therefore the volume of this cylinder is pi

Now the answer you got is pi (8ln2 - 5), and if you add pi, then you get pi(8ln2-4), which is the correct answer.

Hope that helps !

frenzal_dude · Mar 4, 2010

So are the limits from x=2 to x=0? I tried subbing those in, x=2 is fine, but you can't sub in x=0 because ln0 and 1/0 = error.

I tried just pretending they = 0, and I got the right answer. But is this the right way to do it?

frenzal_dude · Mar 4, 2010

js992 said:
The area in the first quadrant under y=1 and above y=2-2/x is rotated about the x axis. Find the volume formed.

Chapter 12E Q14 Cambridge year 11 3U

I keep getting the answer wrong and am not sure if i'm doing it right or not.
$\pi\int_{1}^{2} (1)^2-(2-\frac{2}{x})^2 dx$
$\pi\int_{1}^{2} 3-\frac{4}{x^2}+\frac{4}{x}$
2
$=\pi\left [ 8lnx+\frac{4}{x}-3x \right ]$ 1
$= (8ln2 +2 -6)-(8ln1+4-3)$
$=8ln2 - 5$

The answer is 8 ln 2 - 4 -__-

In your integral, how did you get 3-(4/x^2) + 4/x?

Doesn't 1^2 - (2-2/x)^2 = -3 + 8/x - 4/(x^2)?

Volume about the x axis problem (1 Viewer)

js992

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Drongoski

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life92

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frenzal_dude

UTS Student

frenzal_dude

UTS Student

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