MHT CET · Maths · Vector Algebra
For any non - zero vectors \(\bar{a}\) and \(\overline{\mathrm{b}},\left[\begin{array}{lll}\overline{\mathrm{b}} & \overline{\mathrm{a}} \times \overline{\mathrm{b}} & \overline{\mathrm{a}}\end{array}\right]=\)
- A \(|\overline{\mathrm{a}} \times \overline{\mathrm{b}}|\)
- B \(|\overline{\mathrm{a}} \times \overline{\mathrm{b}}|^{2}\)
- C 0
- D \(\overline{\mathrm{a}} \times \overline{\mathrm{b}}\)
Answer & Solution
Correct Answer
(B) \(|\overline{\mathrm{a}} \times \overline{\mathrm{b}}|^{2}\)
Step-by-step Solution
Detailed explanation
(B)
\(\left[\begin{array}{lll}\bar{b} & \bar{a} \times \bar{b} & \bar{a}\end{array}\right]=\bar{b} \cdot[(\bar{a} \times \bar{b}) \times \bar{a}]\)
\(=-\bar{b}\left[\begin{array}{l}\bar{a} \times(\bar{a} \times \bar{b})\end{array}\right]\)
\(=-\bar{b}[(\mathrm{a} \cdot \mathrm{b}) \cdot \mathrm{a}-(\mathrm{a} \cdot \mathrm{a}) \cdot \mathrm{b}]=0\)
\(\left[\begin{array}{lll}\bar{b} & \bar{a} \times \bar{b} & \bar{a}\end{array}\right]=\bar{b} \cdot[(\bar{a} \times \bar{b}) \times \bar{a}]\)
\(=-\bar{b}\left[\begin{array}{l}\bar{a} \times(\bar{a} \times \bar{b})\end{array}\right]\)
\(=-\bar{b}[(\mathrm{a} \cdot \mathrm{b}) \cdot \mathrm{a}-(\mathrm{a} \cdot \mathrm{a}) \cdot \mathrm{b}]=0\)
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