If tan-1((x√3/2K-x)) and B=tan-1((2x-K/K√3)), then the value of A - B is

Question

If tan-1((x√3/2K-x)) and B=tan-1((2x-K/K√3)), then the value of A - B is (A) 0º (B) 45º (C) 60º (D) 30º

Tardigrade Admin · Accepted Answer

tan(A-B)=(tan A - tan B/1+tan A tan B) =((√3x/2K-x)-(2x-K/√3K)/1+(√3x)2K-x (2x-K)√3K =(3Kx-(2x-K)(2K-x)/(2K-x)√3K+√3x(2x-K)) =(3Kx-(4Kx-2x2-2K2+Kx)/2√3K2-√3Kx+2√3x2- √3Kx) =(2x2-2Kx+2K2/2√3x2-2√3Kx+2√3k2)=(1/√3)=tan 30/Âº) ∴ A-B=30Âº

Q. If $t a n^{- 1} (\frac{x 3}{2 K - x}) an d B = t a n^{- 1} (\frac{2 x - K}{K 3})$ , then the value of $A - B$ is

$0^{º}$

$4 5^{º}$

$6 0^{º}$

$3 0^{º}$

Q. If tan−1(2K−xx3​​)andB=tan−1(K3​2x−K​), then the value of A−B is

0º

45º

60º

30º

tan(A−B)=1+tanAtanBtanA−tanB​ =1+2K−x3​x​3​K2x−K​2K−x3​x​−3​K2x−K​​ =(2K−x)3​K+3x​(2x−K)3Kx−(2x−K)(2K−x)​ =23​K2−3​Kx+23​x2−3​Kx3Kx−(4Kx−2x2−2K2+Kx)​ =23​x2−23​Kx+23​k22x2−2Kx+2K2​=3​1​=tan30º ∴A−B=30º

Q. If $t a n^{- 1} (\frac{x 3}{2 K - x}) an d B = t a n^{- 1} (\frac{2 x - K}{K 3})$ , then the value of $A - B$ is

$0^{º}$

$4 5^{º}$

$6 0^{º}$

$3 0^{º}$