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प्रश्न
Find the position vector of point P such that OP is inclined to the X-axis at 45° and to the Y-axis at 60° and OP = 12 units.
योग
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उत्तर
Let l, m, n be the direction cosines of OP.
Since OP is inclined to X-axis at 45° and to Y-axis at 60°, we get
`l = cos45^@ = 1/(sqrt2) and m = cos60^@ = 1/2`
Now, l2 + m2 + n2 = 1
∴ `(1/(sqrt2))^2 + (1/2)^2 + n^2 = 1`
∴ `1/2 + 1/4 + n^2 = 1`
∴ `n^2 = 1 - 3/4`
∴ `n^2 = 1/4`
∴ `n = pm1/2`
Let `barr` be the position vector of the point P w.r.t. the origin.
Then `barr = bar(OP) = |barr| hatr`, where `|barr|` = OP = 12
∴ `barr = 12(lhati + mhatj + nhatk) = 12(1/(sqrt2)hati + 1/2 hatj pm 1/2 hatk)`
Hence, `barr = 6sqrt(2hati) + 6hatj pm 6hatk`.
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