Mathemerize

Solution : The value of sin 15 degrees is \(\sqrt{3} – 1\over 2\sqrt{2}\). Proof : We will write sin 15 as sin (45 – 30). By using formula sin (A – B) = sin A cos B – cos A sin B, sin (45 – 30) = sin 45 cos 30 – cos 45 sin …

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Solution : The value of cos 75 degrees is \(\sqrt{3} – 1\over 2\sqrt{2}\). Proof : We will write cos 75 as cos (45 + 30). By using formula cos (A + B) = cos A cos B – sin A sin B, cos (45 + 30) = cos 45 cos 30 – sin 45 sin …

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Solution : The value of sin 75 degrees is \(\sqrt{3} + 1\over 2\sqrt{2}\). Proof : We will write sin 75 as sin (45 + 30). By using formula sin (A + B) = sin A cos B + cos A sin B, sin (45 + 30) = sin 45 cos 30 + cos 45 sin …

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Solution : In right angled triangle ABC, \(cosec \theta\) = \(AC\over BC\)  \(\implies\)   \(cosec^2 \theta\) = \(AC^2\over BC^2\) \(cot \theta\) = \(AB\over BC\)  \(\implies\)   \(cot^2 \theta\) = \(AB^2\over BC^2\) \(\implies\) 1 + \(cot^2 \theta\) = 1 + \(AB^2\over BC^2\)  = \(BC^2 + AB^2\over BC^2\) = \(AC^2\over BC^2\) [ By Pythagoras theorem,  \(AC^2\) = \(BC^2 + …

Prove that 1 + \(cot^2 \theta\) = \(cosec^2 \theta\). Read More »

Solution : In right angled triangle ABC, \(sec \theta\) = \(AC\over AB\)  \(\implies\)   \(sec^2 \theta\) = \(AC^2\over AB^2\) \(tan \theta\) = \(BC\over AB\)  \(\implies\)   \(tan^2 \theta\) = \(BC^2\over AB^2\) \(\implies\) 1 + \(tan^2 \theta\) = 1 + \(BC^2\over AB^2\)  = \(AB^2 + BC^2\over AB^2\) = \(AC^2\over AB^2\) [ By Pythagoras theorem,  \(AC^2\) = \(BC^2 + …

Prove that 1 + \(tan^2 \theta\) = \(sec^2 \theta\). Read More »

Solution : In right angled triangle ABC, \(sin \theta\) = \(BC\over AC\)  \(\implies\)   \(sin^2 \theta\) = \(BC^2\over AC^2\) \(cos \theta\) = \(AB\over AC\)  \(\implies\)   \(cos^2 \theta\) = \(AB^2\over AC^2\) On adding, \(sin^2 \theta\) + \(cos^2 \theta\) = \(BC^2\over AC^2\) + \(AB^2\over AC^2\) \(sin^2 \theta\) + \(cos^2 \theta\) = \(BC^2 + AB^2\over AC^2\) = \(AC^2\over AC^2\) …

Prove that \(sin^2 \theta\) + \(cos^2 \theta\) = 1. Read More »