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Three Dimensional Geometry

Long Answer Type

221. Find the equation of the plane through the points (1, –1, 2) (2, –2, 2) and perpendicular to the plane 6 x – 2 y + 2 z = 9.

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222. Find the equation of the plane passing through the points (2, 3, – 4), (1, –1, 3) and parallel to x-axis.

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223. Find the equation of the plane passing through the points (3, 4, 1), (0, 1, 0) and parallel to the line

fraction numerator straight x plus 3 over denominator 2 end fraction space equals fraction numerator straight y minus 3 over denominator 7 end fraction space equals space fraction numerator straight z minus 2 over denominator 5 end fraction.

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224. Find the equation of the plane which passes through the points (0, 0, 0) and (3, –1, 2) and is parallel to the line

fraction numerator straight x minus 4 over denominator 1 end fraction space equals space fraction numerator straight y plus 3 over denominator negative 4 end fraction space equals space fraction numerator straight z plus 1 over denominator 7 end fraction.

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225. Find the equation of the plane passing through the points (2, 1, 0), (3, 2, 2) and parallel to the line

fraction numerator straight x minus 1 over denominator 2 end fraction space equals space fraction numerator straight y minus 2 over denominator 3 end fraction space equals space fraction numerator straight z minus 3 over denominator 1 end fraction.

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226. Find the equation of the plane passing through (1, 1, – 1) and perpendicular to planes x + 2 y + 3 z – 7 = 0, 2 x –3 y + 4 z = 0.

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227. Find the equation of the plane passing through the point (–1, –1, 2) and perpendicular to the planes 3x + 2 y – 3 z = 1 and 5 x – 4 y + z = 5.

The equation of any plane through (– 1, – 1, 2) is
a (x + 1) + b (y + 1) + c (z – 2) = 0    ....(1)
∴ it is perpendicular to the planes
3 x + 2 y – 3 z = 1 and 5 x – 4 y + z = 5
∴ 3 a + 2 b – 3 c = 0    ....(2)
and 5a – 4 b + c = 0    ...(3)
Solving (2) and (3), we get,
$fraction numerator straight a over denominator 2 minus 12 end fraction space equals space fraction numerator straight b over denominator negative 15 minus 3 end fraction space equals space fraction numerator straight c over denominator negative 12 minus 10 end fraction$

$therefore space space space space space fraction numerator straight a over denominator negative 10 end fraction space equals space fraction numerator straight b over denominator negative 18 end fraction space equals space fraction numerator straight c over denominator negative 22 end fraction therefore space space space space space space space space space space straight a over 5 space equals space straight b over 9 space equals space fraction numerator straight c over denominator negative 22 end fraction therefore space space space space space space space space space space space space space space straight a space equals space 5 space straight k comma space space space straight b space equals space 9 space straight k comma space space space straight c space equals space 11 space straight k$

Putting values of a, b, c in (1), we get,
5 k (x + 1) + 9 k (y + 1) + 11 k (z – 2) = 0
or 5 (x + 1) + 9 (y + 1) + 11 (z – 2) = 0
∴ 5x + 9 y + 11 z – 8 = 0 which is required equation of plane.

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228. Find the equation of the plane passing through the point (–1, –1, 2) and perpendicular to the planes 2x + 3 y – 2 z = 5 and x + 2 y – 3 z = 8.

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229. From a point P(1, 2, 4), a perpendicular is drawn on the plane 2x + y – 2z + 3 = 0. Find the equation, the length and coordinates of the foot of the perpendicular.

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230.

Find the coordinates of the image of the point (1, 3, 4) in the plane 2x – y +z + 3 = 0.

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