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Question
Unit vectors →a,→b,→c are coplanar. A unit vector →d is perpendicular to them. If (→a×→b)×(→c×→d)=16^i−13^j+13^k and the angle between →a and →b is 30o, then →c is/are :
Unit vectors →a,→b,→c are coplanar. A unit vector →d is perpendicular to them. If (→a×→b)×(→c×→d)=16^i−13^j+13^k and the angle between →a and →b is 30o, then →c is/are :
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Solution
The correct option is B ±(−^i+2^j−2^k3)
(→a×→b)×(→c×→d)=[→a→b→d]→c−[→a→b→c]→dSince →a,→b,→c are coplanar so [→a→b→c]=0∴(→a×→b)×(→c×→d)=[→a→b→d]→c
Now, [→a→b→d]=(→a×→b).→d=|→a×→b|.|→d|.cos0o[∵→d is perpendicular to both→a&→bso parallel to →a×→b]=|→a×→b|.|→d|=|→a|.|→b|.sin30o.|→d|[∵ angle between→a&→bis30o]=1.1.12.(±1).1[all are unit modulus]=12.(±1)=±12∴(→a×→b)×(→c×→d)=(±)12→c=16^i−13^j+13^k⇒→c=±2.(16^i−13^j+13^k)=±(13^i−23^j+23^k)=±(^i−2^j+2^k3)
(→a×→b)×(→c×→d)=[→a→b→d]→c−[→a→b→c]→d
Since →a,→b,→c are coplanar so
[→a→b→c]=0
∴(→a×→b)×(→c×→d)=[→a→b→d]→c
Now, [→a→b→d]=(→a×→b).→d=|→a×→b|.|→d|.cos0o[∵→d is perpendicular to both→a&→bso parallel to →a×→b]=|→a×→b|.|→d|=|→a|.|→b|.sin30o.|→d|[∵ angle between→a&→bis30o]=1.1.12.(±1).1[all are unit modulus]=12.(±1)=±12
∴(→a×→b)×(→c×→d)=(±)12→c=16^i−13^j+13^k
⇒→c=±2.(16^i−13^j+13^k)=±(13^i−23^j+23^k)=±(^i−2^j+2^k3)
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