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Good Evening. I am having a problem with a step in the calculation of the following integral:

$$\int_{0}^x \frac{dt}{\sin^2 t +\cos t} =\int_{0}^x \frac{dt}{-\cos^2 t +\cos t+1} =-\int_{0}^x \frac{dt}{\cos^2 t -\cos t-1} $$

Let $X=\cos t$

$$X^2-X-1=0 \Leftrightarrow X=\frac{1-\sqrt{5}}{2} \mbox{and } X=\frac{1+\sqrt{5}}{2}$$

$$\frac{1}{X^2-X-1}=\frac{\frac{\sqrt{5}}{5}}{X-(\frac{1+\sqrt{5}}{2})}-\frac{\frac{\sqrt{5}}{5}}{X-(\frac{1-\sqrt{5}}{2})}$$

Therefore: $$-\int_{0}^x \frac{dt}{\cos^2 t -\cos t-1}= -\int_{0}^x \frac{\frac{\sqrt{5}}{5}}{\cos t-(\frac{1+\sqrt{5}}{2})}dt + \int_{0}^x \frac{\frac{\sqrt{5}}{5}}{\cos t-(\frac{1-\sqrt{5}}{2})}dt$$

I am having trouble calculating the two last integrals. Please help

Thank you in advance.

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    trigonometric substitution2012-11-06

1 Answers 1

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The $\tan(t/2)$ method is one way to go (though a bit cumbersome). Let $y = \tan(t/2)$. We get that $$dy = \sec^2(t/2) \dfrac{dt}2 \implies dt = \dfrac{2 dy}{1+y^2}$$ Also, recall that $$\sin(t) = \dfrac{2y}{1+y^2} \,\,\,\text{ and }\,\,\, \cos(t) = \dfrac{1-y^2}{1+y^2}$$

Then we get that $$I = \int \dfrac{dt}{\sin^2(t) + \cos(t)} = \int \dfrac{2dy}{\dfrac{4y^2}{1+y^2} + 1-y^2} = \int \dfrac{2(1+y^2) dy}{1+4y^2 - y^4}$$ I leave the rest to you since you should be able to finish it by splitting into appropriate partial fractions.

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    I will try using this method. But can you just tell me how to finish using my method ?2012-11-06
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    @user43418 The same substitution $y = \tan(t/2)$ can be used to evaluate your two integrals of the form $a/(\cos(t) - b)$2012-11-06
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    Can you help me calculate the final integral: $\int \dfrac{2(1+y^2) dy}{1+4y^2 - y^4}$ = $-2\int \dfrac{1+y^2}{y^4-4y^2-1}dy$ = $-2(\int \dfrac{\frac{1}{2}-\frac{3\sqrt{5}}{10}}{y^2- (2-\sqrt{5})}+\int \dfrac{\frac{3\sqrt{5}}{10}+\frac{1}{2}}{y^2-(2+\sqrt{5})})dy$2012-11-07
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    I am unable to integrate the final expression. Can somebody help me ?2012-11-07