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Question

In the following figure : BD=18, DC=24, AC=50, A=x, BCD=y and ABC=900=BDC, then the value of
2cot2y2cosec2y+3 is

186450.jpg

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Solution

In the given figure, ABC=BDC=90
In BDC,
BC2=BD2+CD2 (Pythagoras Theorem)
BC2=182+242
BC=30
In ABC,
AC2=AB2+BC2
502=AB2+302
AB2=1600
AB=40
Now, 2cot2y2cosec2y+3
= 2((CDBD)2(BCBD)2)+3
= 2((2418)2(3018)2)+3
= 2(324324)+3
=1

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