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प्रश्न
What are the values of x for which the angle between the vectors? `2x^2hati + 3xhatj + hatk` and `hati - 2hatj + x^2hatk` are obtuse?
बेरीज
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उत्तर
Given, `veca = 2x^2hati + 3xhatj + hatk` and `vecb = hati - 2hatj + x^2hatk`
Angle between `veca` and `vecb` is obtuse.
⇒ cos θ < 0
cos θ = `(veca.vecb)/(|veca||vecb|)`
`|veca||vecb| > 0`
∴ `veca . vecb < 0`
⇒ `veca.vecb`
= (2x2) (1) + (3x) (−2) + (1) (x2)
= 2x2 – 6x + x2
= 3x2 − 6x
= 3x (x – 2)
3x (x − 2) < 0
Divide by 3 (positive, inequality unchanged):
x (x − 2) < 0
Now x (x − 2) is negative between its roots x = 0 and x = 2.
0 < x < 2
x ∈ (0, 2)
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