Question ID: #475
If the components of $\vec{a}=\alpha\hat{i}+\beta\hat{j}+\gamma\hat{k}$ along and perpendicular to $\vec{b}=3\hat{i}+\hat{j}-\hat{k}$ respectively, are $\frac{16}{11}(3\hat{i}+\hat{j}-\hat{k})$ and $\frac{1}{11}(-4\hat{i}-5\hat{j}-17\hat{k})$, then $\alpha^{2}+\beta^{2}+\gamma^{2}$ is equal to :
- (1) 23
- (2) 18
- (3) 16
- (4) 26
Solution:
Let $\vec{a}_{\parallel}$ be the component of $\vec{a}$ along $\vec{b}$ and $\vec{a}_{\perp}$ be the component of $\vec{a}$ perpendicular to $\vec{b}$.
Given:
$$\vec{a}_{\parallel} = \frac{16}{11}(3\hat{i}+\hat{j}-\hat{k})$$
$$\vec{a}_{\perp} = \frac{1}{11}(-4\hat{i}-5\hat{j}-17\hat{k})$$
We know that any vector can be written as the sum of its parallel and perpendicular components:
$$\vec{a} = \vec{a}_{\parallel} + \vec{a}_{\perp}$$
Substituting the given values:
$$\vec{a} = \left[ \frac{16}{11}(3\hat{i}+\hat{j}-\hat{k}) \right] + \left[ \frac{1}{11}(-4\hat{i}-5\hat{j}-17\hat{k}) \right]$$
$$\vec{a} = \frac{1}{11} \left[ (48\hat{i} + 16\hat{j} – 16\hat{k}) + (-4\hat{i} – 5\hat{j} – 17\hat{k}) \right]$$
$$\vec{a} = \frac{1}{11} \left[ (48-4)\hat{i} + (16-5)\hat{j} + (-16-17)\hat{k} \right]$$
$$\vec{a} = \frac{1}{11} \left[ 44\hat{i} + 11\hat{j} – 33\hat{k} \right]$$
$$\vec{a} = 4\hat{i} + \hat{j} – 3\hat{k}$$
Comparing this with $\vec{a} = \alpha\hat{i} + \beta\hat{j} + \gamma\hat{k}$, we get:
$\alpha = 4, \beta = 1, \gamma = -3$
Now, we calculate $\alpha^2 + \beta^2 + \gamma^2$:
$$\alpha^2 + \beta^2 + \gamma^2 = (4)^2 + (1)^2 + (-3)^2$$
$$= 16 + 1 + 9 = 26$$
Ans. (4)
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