Put
\[\begin{array}{l} x = \tan \theta \Rightarrow dx = \sec^2 \theta \, d\theta \end{array}\]\[\Rightarrow I = \int_{0}^{\frac{\pi}{3}} \frac{15 \tan^3 \theta \cdot \sec^2 \theta \, d\theta}{\sqrt{1 + \tan^2 \theta + \sqrt{\sec^6 \theta}}}\]\[\Rightarrow I = \int_{0}^{\frac{\pi}{3}} \frac{15 \tan^2 \theta \sec^2 \theta \, d\theta}{\sec \theta \sqrt{1 + \sec \theta}}\]\[\Rightarrow I = \int_{0}^{\frac{\pi}{3}} \frac{15 (\sec^2 \theta - 1) \sec \theta \tan \theta \, d\theta}{\sqrt{1 + \sec \theta}}\]Now put \(1 + \sec \theta = t^2\)
\[\Rightarrow \sec \theta \tan \theta \, d\theta = 2t \, dt\]\[\Rightarrow I = \int_{\sqrt{2}}^{\sqrt{3}} \frac{15 \left( (t^2 - 1)^2 - 1 \right) 2t \, dt}{t}\]\[\Rightarrow I = 30 \int_{\sqrt{2}}^{\sqrt{3}} \left( t^4 - 2t^2 + 1 - 1 \right) dt\]\[\Rightarrow I = 30 \int_{\sqrt{2}}^{\sqrt{3}} \left( t^4 - 2t^2 \right) dt\]\[\Rightarrow I = 30 \left( \frac{t^5}{5} - \frac{2t^3}{3} \right)_{\sqrt{2}}^{\sqrt{3}}\]\[= 30 \left[ \left( \frac{9}{5} \sqrt{3} - 2 \sqrt{3} \right) - \left( \frac{4 \sqrt{2}}{5} - \frac{4 \sqrt{2}}{3} \right) \right]\]\[= (54 \sqrt{3} - 60 \sqrt{3}) - (24 \sqrt{2} - 40 \sqrt{2})\]\[= 16 \sqrt{2} - 6 \sqrt{3}\]\[\therefore \alpha = 16 \text{ and } \beta = -6\]\[\alpha + \beta = 10\]If \[ \int (\sin x)^{-\frac{11}{2}} (\cos x)^{-\frac{5}{2}} \, dx \] is equal to \[ -\frac{p_1}{q_1}(\cot x)^{\frac{9}{2}} -\frac{p_2}{q_2}(\cot x)^{\frac{5}{2}} -\frac{p_3}{q_3}(\cot x)^{\frac{1}{2}} +\frac{p_4}{q_4}(\cot x)^{-\frac{3}{2}} + C, \] where \( p_i, q_i \) are positive integers with \( \gcd(p_i,q_i)=1 \) for \( i=1,2,3,4 \), then the value of \[ \frac{15\,p_1 p_2 p_3 p_4}{q_1 q_2 q_3 q_4} \] is ___________.
What will be the equilibrium constant of the given reaction carried out in a \(5 \,L\) vessel and having equilibrium amounts of \(A_2\) and \(A\) as \(0.5\) mole and \(2 \times 10^{-6}\) mole respectively?
The reaction : \(A_2 \rightleftharpoons 2A\)
A black body is at a temperature of 2880 K. The energy of radiation emitted by this body with wavelength between 499 nm and 500 nm is U1, between 999 nm and 1000 nm is U2 and between 1499 nm and 1500 nm is U3. The Wien's constant, b = 2.88×106 nm-K. Then,
The number of formulas used to decompose the given improper rational functions is given below. By using the given expressions, we can quickly write the integrand as a sum of proper rational functions.

For examples,
