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प्रश्न
Find the area of the region included between the parabola y2 = x and the line x + y = 2.
Find the area enclosed by the parabola y2 = x and the line y + x = 2.
उत्तर १
We have,
\[y^2 = x\] and \[x + y = 2\]
To find the intersecting points of the curves ,we solve both the equations.
\[y^2 + y - 2 = 0\]
\[ \Rightarrow \left( y + 2 \right)\left( y - 1 \right) = 0\]
\[ \Rightarrow y = - 2\text{ or }y = 1\]
\[ \therefore x = 4 \text{ or }1\]
\[\text{ Consider a horizantal strip of length }\left| x_2 - x_1 \right|\text{ and width }dy\text{ where }P\left( x_2 , y \right)\text{ lies on straight line and Q}\left( x_1 , y \right)\text{ lies on the parabola }. \]
\[\text{ Area of approximating rectangle }= \left| x_2 - x_1 \right| dy ,\text{ and it moves from }y = - 2\text{ to }y = 1\]
\[\text{ Required area = area }\left(\text{ OADO }\right) = \int_{- 2}^1 \left| x_2 - x_1 \right| dy\]
\[ = \int_{- 2}^1 \left| x_2 - x_1 \right| dy .............\left\{ \because \left| x_2 - x_1 \right| = x_2 - x_1 as x_2 > x_1 \right\}\]
\[ = \int_{- 2}^1 \left\{ \left( 2 - y \right) - y^2 dy \right\}\]
\[ = \left[ 2y - \frac{y^2}{2} - \frac{y^3}{3} \right]_{- 2}^1 \]
\[ = \left[ 2 - \frac{1}{2} - \frac{1}{3} \right] - \left[ - 4 - 2 + \frac{8}{3} \right]\]
\[ = 2 - \frac{1}{2} - \frac{1}{3} + 6 - \frac{8}{3}\]
\[ = \frac{9}{2}\text{ sq units }\]
\[\text{ Area enclosed by the line and given parabola }= \frac{9}{2}\text{ sq units }\]
उत्तर २
y2 = x,
x + y = 2
i.e. x = 2 – y
Solving the equations:
y2 = 2 – y,
i.e. y2 + y – 2 = 0
i.e. (y + 2)(y – 1) = 0
∴ y = 1, – 2
∴ x = 1, 4 (respectively)
Points of intersection of parabola and line
= (1, 1) and (4, – 2)
Also the line cuts X-axis at (2, 0)
Area above X-axis
= `int_0^1 sqrt(x) dx + int_1^2(2 - x)dx`
= `2/3[x^(3/2)]_0^1 + [2x - x^2/2]_1^2`
= `2/3 + (4 - 2) - (2 - 1/2)`
= `2/3 + 2 - 3/2`
= `(4 + 12 - 9)/6`
= `7/6` ...(1)
Area below X-axis
= `|int_0^4 sqrt(x) dx| - |int_2^4(2 - x)dx|`
= `2/3[x^(3/2)]_0^4 - [2x - x^2/2]_2^4`
= `2/3(8) - |[(8 - 8) - (4 - 2)]|`
= `16/3 - |(-2)|`
= `16/3 - 2`
= `10/3` ...(2)
From (1) and (2)
Required area = `7/6 + 10/3`
= `(7 + 20)/6`
= `27/6`
= `9/2` sq. units
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