Vector A is of length 2 cm and is inclined at 60- above the x -axis in the first quadrant- Vector B is of length 2 cm and inclined at 60- below the x-axis in the fourth quadrant- The difference A - B is a vector of magnitude cm

Let us assume, R = A B = (A cos60 î + Asin60 ĵ) (Bcos60 î Bsin 60 ĵ) ∵ |A| = |B| = 2 cm So, R = (A sin 60 + B sin60)ĵ = 2√(3)ĵ Hence 2√(3) cm along + y a ...

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Byju's Answer

Standard XIII

Physics

Addition and Subtraction in Unit Vector Notation

Vector A is o...

Question

Vector $\to A$ is of length 2 cm and is inclined at $60^{\circ}$ above the x -axis in the first quadrant. Vector $\to B$ is of length 2 cm and inclined at $60^{\circ}$ below the x-axis in the fourth quadrant. The difference $\to A - \to B$ is a vector of magnitude (cm)

2 cm along + y - axis

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2 \sqrt{3}

cm along + y - axis

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1 cm along - x- axis

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2 cm along - x - axis

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Solution

The correct option is B $2 \sqrt{3}$ cm along + y - axis
Let us assume,
$\to R = \to A - \to B$
$= (A cos 60^i + A sin 60^j) - (B cos 60^i - B sin 60^j)$
$∵ | \to A | = | \to B | = 2 c m$
So, $R = (A sin 60 + B sin 60)^j = 2 \sqrt{3}^j$
Hence $2 \sqrt{3} c m$ along + y -axis

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Vector →A is of length 2 cm and is inclined at 60∘ above the x -axis in the first quadrant. Vector →B is of length 2 cm and inclined at 60∘ below the x-axis in the fourth quadrant. The difference →A−→B is a vector of magnitude (cm)

The correct option is B 2√3 cm along + y - axisLet us assume, →R=→A−→B =(Acos60^i+Asin60^j)−(Bcos60^i−Bsin60^j) ∵|→A|=|→B|=2 cm So, R=(Asin60+Bsin60)^j=2√3^j Hence 2√3 cm along + y -axis

Vector $\to A$ is of length 2 cm and is inclined at $60^{\circ}$ above the x -axis in the first quadrant. Vector $\to B$ is of length 2 cm and inclined at $60^{\circ}$ below the x-axis in the fourth quadrant. The difference $\to A - \to B$ is a vector of magnitude (cm)

The correct option is B $2 \sqrt{3}$ cm along + y - axis
Let us assume,
$\to R = \to A - \to B$
$= (A cos 60^i + A sin 60^j) - (B cos 60^i - B sin 60^j)$
$∵ | \to A | = | \to B | = 2 c m$
So, $R = (A sin 60 + B sin 60)^j = 2 \sqrt{3}^j$
Hence $2 \sqrt{3} c m$ along + y -axis