Vectors C and D have magnitudes of 3 and 4 units respectively- What is the angle between the directions of C and D if the magnitude of vector product C-D is x and y respectively-x 0 y 12 unitsi 0 ii-2 iii-3 iv -4

Cross product magnitude is given by |R⃗|=|C⃗×D⃗|=|C| |D| sin θ where θ is the angle between C⃗ and D⃗ ∴ R=12 sin θ (as |C|=3 and |D|=4) ⇒ ifR=0,θ=0 and if R ...

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Byju's Answer

Standard XII

Physics

Vector Components

Vectors C and...

Question

Vectors $\to C$ and $\to D$ have magnitudes of 3 and 4 units respectively. What is the angle between the directions of $\to C$ and $\to D$ if the magnitude of vector product $\to C \times \to D$ is x and y respectively?

(x) 0 (y) 12 units

(i) 0 (ii) $\frac{π}{2}$ (iii) $\frac{π}{3}$ (iv) $\frac{π}{4}$

(x) - (iv); (y) - (iii)

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(x) - (i); (y) - (ii)

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(x) - (ii); (y) - (i)

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(x) - (i); (y) - (iv)

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Solution

The correct option is B
(x) - (i); (y) - (ii)

Cross product magnitude is given by
$| \to R | = | \to C \times \to D | = | C | | D | s i n θ$
where $θ$ is the angle between $\to C$ and $\to D$
$∴$ R=12 sin $θ$ (as |C|=3 and |D|=4)
$\Rightarrow i f R = 0, θ = 0 a n d i f R = 12, s i n θ = 1 \Rightarrow θ = 90^{\circ} o r \frac{π}{2}$

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Vectors →C and →D have magnitudes of 3 and 4 units respectively. What is the angle between the directions of →C and →D if the magnitude of vector product →C×→D is x and y respectively? (x) 0 (y) 12 units (i) 0 (ii)π2 (iii)π3 (iv) π4

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