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प्रश्न
Find the area of the ellipse `x^2/a^2 + y^2/b^2 = 1`.
Hence write area of `x^2/25 + y^2/16 = 1`.
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उत्तर
Equation of ellipse `x^2/a^2 + y^2/b^2 = 1`
The area of the ellipse is 4 times the area of region OPQO, as shown in the figure. For the region, the limits of integration are x = 0 and x = a.
From the equation ellipse,
`x^2/a^2 + y^2/b^2 = 1`
∴ `y^2/b^2 = 1 - x^2/a^2`
∴ `y^2 = b^2.((a^2 - x^2)/a^2)`
∴ `y = b/a. sqrt(a^2 - x^2)` ...(∵ in 1st quadrant y > 0)
We know,
A = `4int_(x = 0)^a y. dx`
= `4 int_0^a b/a. sqrt(a^2 - x^2). dx`
= `(4b)/a [x/2 sqrt(a^2 - x^2) + a^2/2 sin^-1 x/a]_0^a`
= `(4b)/a [{a/a sqrt(a^2 - a^2) + a^2/2 sin^(-1) a/a} - {0/a sqrt(a^2 - 0^2) + a^2/2 sin^(-1) 0/a}]`
= `(4b)/a [(a^2/2. π/2) - 0]`
A = πab sq. units. ...(1)
Now,
`x^2/25 + y^2/16 = 1`
∴ `x^2/5^2 + y^2/4^2 = 1`
Comparing `x^2/5^2 + y^2/4^2 = 1` with `x^2/a^2 + y^2/b^2 = 1`, we get, a = 5 b = 4
∴ Area of `x^2/25 + y^2/16 = 1` is 20π sq. units. ...[From (1)]
