Find \(\frac{dy}{dx}\), if x=sin⁡3t and y=t^2 tan⁡2t.(a) \(\frac{3t(tan⁡2t+tsec^2 2t)}{4 cos⁡3t}\)(b) \(\frac{(tan⁡2t+tsec^2 2t)}{3 cos⁡3t}\)(c) \(\frac{-2t(tan⁡2t+tsec^2 2t)}{3 cos⁡3t}\)(d) \(\frac{2t(tan⁡2t+tsec^2 2t)}{3 cos⁡3t}\)I have been asked this question in examination.My question is from Derivatives of Functions in Parametric Forms topic in chapter Continuity and Differentiability of Mathematics – Class 12

Find \(\frac{dy}{dx}\), if x=sin⁡3t and y=t^2 tan⁡2t.(a) \(\frac{3

1.	Find \(\frac{dy}{dx}\), if x=sin⁡3t and y=t^2 tan⁡2t.(a) \(\frac{3t(tan⁡2t+tsec^2 2t)}{4 cos⁡3t}\)(b) \(\frac{(tan⁡2t+tsec^2 2t)}{3 cos⁡3t}\)(c) \(\frac{-2t(tan⁡2t+tsec^2 2t)}{3 cos⁡3t}\)(d) \(\frac{2t(tan⁡2t+tsec^2 2t)}{3 cos⁡3t}\)I have been asked this question in examination.My question is from Derivatives of Functions in Parametric Forms topic in chapter Continuity and Differentiability of Mathematics – Class 12
Answer» Right OPTION is (d) \(\frac{2T(tan⁡2t+tsec^2 2t)}{3 cos⁡3t}\) To EXPLAIN I would say: GIVEN that, x=sin⁡3t and y=t^2 tan⁡2t \(\frac{dx}{dt}\)=3 cos⁡3t By using u.v rule, we get \(\frac{DY}{dt}\)=\(\frac{d}{dx} \,(t^2) \,tan⁡2t+\frac{d}{dx} \,(tan⁡2t)\) t^2 \(\frac{dy}{dt}\)=2t tan⁡2t+2t^2 sec^2⁡2t \(\frac{dy}{dx}\)=\(\frac{dy}{dt}.\frac{dt}{dx}=\frac{(2t \,tan⁡2t+2t^2 \,sec^2⁡2t)}{3 \,cos⁡3t}\) ∴\(\frac{dy}{dx}=\frac{2t(tan⁡2t+tsec^2 \,2t)}{3 \,cos⁡3t}\)

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