If (1/(20-a)(40-a))+(1/(40-a)(60-a))+ ldots ldots+(1/(180-a)(200-a))=(1/256), then the maximum value of a is :

Question

If (1/(20-a)(40-a))+(1/(40-a)(60-a))+ ldots ldots+(1/(180-a)(200-a))=(1/256), then the maximum value of a is : (A) 198 (B) 202 (C) 212 (D) 218

Tardigrade Admin · Accepted Answer

By splitting (1/20)[((1/20-a)-(1/40-a))+((1/40-a)-(1/60-a)). .+ ldots+((1/180-a)-(1/200-a))] ⇒ (1/20)((1/20-a)-(1/200-a))=(1/256) (20-a)(200-a)=256 × 9 a2-220 a+1696=0 a=8,212 Hence maximum value of a is 212 .

Q. If (20−a)(40−a)1​+(40−a)(60−a)1​+ ……+(180−a)(200−a)1​=2561​, then the maximum value of a is :

198

202

212

218

By splitting 201​[(20−a1​−40−a1​)+(40−a1​−60−a1​) +…+(180−a1​−200−a1​)] ⇒201​(20−a1​−200−a1​)=2561​ (20−a)(200−a)=256×9 a2−220a+1696=0 a=8,212 Hence maximum value of a is 212 .

Q. If $\frac{1}{( 20 - a ) ( 40 - a )} + \frac{1}{( 40 - a ) ( 60 - a )} +$ $\dots\dots + \frac{1}{( 180 - a ) ( 200 - a )} = \frac{1}{256}$ , then the maximum value of $a$ is :