Let the eccentricity of an ellipse (x2/a2)+(y2/b2)=1, a b, be (1/4). If this ellipse passes through the point (-4 √(2/5), 3), then a 2+ b 2 is equal to :

Question

Let the eccentricity of an ellipse (x2/a2)+(y2/b2)=1, a >b, be (1/4). If this ellipse passes through the point (-4 √(2/5), 3), then a 2+ b 2 is equal to : (A) 29 (B) 31 (C) 32 (D) 34

Tardigrade Admin · Accepted Answer

(x2/a2)+(y2/b2)=1 a > b e2=1-(b2/a2) (1/16)=1-(b2/a2) (b2/a2)=1-(1/16)=(15/16) ⇒ b2=(15/16) a2 (x2/a2)+(y2/b2)=1 (16 × (2/5)/a2)+(9/b2)=1 (32/5 a2)+(9/b2)=1 (32/5 a2)+(9/(15)16 a2)=1 (80/5 a2)=1 16= a 2 b2=15

Q. Let the eccentricity of an ellipse a2x2​+b2y2​=1,a>b, be 41​. If this ellipse passes through the point (−452​​,3), then a2+b2 is equal to :

29

31

32

34

a2x2​+b2y2​=1a>b e2=1−a2b2​ 161​=1−a2b2​ a2b2​=1−161​=1615​ ⇒b2=1615​a2 a2x2​+b2y2​=1 a216×52​​+b29​=1 5a232​+b29​=1 5a232​+1615​a29​=1 5a280​=1 16=a2 b2=15

Q. Let the eccentricity of an ellipse $\frac{x ^{2}}{a ^{2}} + \frac{y ^{2}}{b ^{2}} = 1, a > b$ , be $\frac{1}{4}$ . If this ellipse passes through the point $(- 4 \frac{2}{5}, 3)$ , then $a^{2} + b^{2}$ is equal to :