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Question

If α=3sin1(611) and β=3cos1(49), where the inverse trigonometric functions take only the principal values, then the correct option(s) is/are

A
cosβ>0
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B
sinβ<0
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C
cos(α+β)>0
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D
cosα<0
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Solution

The correct option is D cosα<0
Here, α=3sin1(611) and β=3cos1(49)
As, 611>12sin1(611)>sin1(12)=π6α=3sin1(611)>π2cosα<0
Now,
β=3cos1(49)
As, 49<12cos1(49)>cos1(12)=π3β=3cos1(49)>πcosβ<0 and sinβ<0
Now, α+β is slightly greater than 3π2
cos(α+β)>0


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