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tanq +cotq=4 then the value of …

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tanq +cotq=4 then the value of the tan^4q+ cot^4q=

    • Posted by Amit Chaudhary 5 years, 3 months ago

    CBSE > Class 10 > Mathematics
    • 2 answers

    Tejaswini Chandok 5 years, 3 months ago

    Given Equation is tanA + cotA = 4. On squaring both sides, we get = > (tanA + cotA)^2 = (4)^2 = > tan^2A + cot^2A + 2tanAcotA = 16 = > tan^2A + cot^2A + 2 * tanA * (1/tanA) = 16 = > tan^2A + cot^2A + 2 = 16 = > tan^2A + cot^2A = 16 - 2 = > tan^2A + cot^2A = 14. On squaring both sides, we get = > (tan^2A + cot^2A)^2 = (14)^2 = > tan^4A + cot^4A + 2 * tan^4A * cot^4a = 196 = > tan^4A + cot^4A + 2 * tan^4A * (1/tan^4A) = 196 = > tan^4A + cot^4A + 2 = 196 = > tan^4A + cot^4A = 196 - 2 = > tan^4A + cot^4A = 194.

    1Thank You

    Vansh Gupta 5 years, 3 months ago

    Given Equation is tanA + cotA = 4. On squaring both sides, we get = > (tanA + cotA)^2 = (4)^2 = > tan^2A + cot^2A + 2tanAcotA = 16 = > tan^2A + cot^2A + 2 * tanA * (1/tanA) = 16 = > tan^2A + cot^2A + 2 = 16 = > tan^2A + cot^2A = 16 - 2 = > tan^2A + cot^2A = 14. On squaring both sides, we get = > (tan^2A + cot^2A)^2 = (14)^2 = > tan^4A + cot^4A + 2 * tan^4A * cot^4a = 196 = > tan^4A + cot^4A + 2 * tan^4A * (1/tan^4A) = 196 = > tan^4A + cot^4A + 2 = 196 = > tan^4A + cot^4A = 196 - 2 = > tan^4A + cot^4A = 194.

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