20. Find the position vector of the mid-point of the vector joining the points P (2, 3, 4) and Q. (4, 1, – 2).

4 Views|Posted 8 months ago

Asked by Shiksha User

1 Answer

Sort by:

Answered by

Vishal Baghel | Contributor-Level 10

8 months ago

The Position vector of mid-point R of the vector joining point P (2,3,4) and Q (4,1, -2) is given by;

$\begin{array}{l} \vec{O R} = \frac{(2 \hat{i} + 3 \hat{j} + 4 \hat{k}) + (4 \hat{i} + \hat{j} - \hat{2 k})}{2} \\ = \frac{(2 + 4) \hat{i} + (3 + 1) \hat{j} + (4 - 2) \hat{k}}{2} \\ = \frac{6 \hat{i} + 4 \hat{j} + 2 \hat{k}}{2} = \frac{6 \hat{i}}{2} + \frac{4 \hat{j}}{2} + \frac{2 \hat{k}}{2} \\ = 3 \hat{i} + 2 \hat{j} + k \end{array}$

Upvote

Similar Questions for you

Let the vectors a,b,c be such that |a|=2, |b|=4 and |c|=4. If the projection of b on a is equal to the projection of c on a and b is perpendicular to c, then the value of |a+b-c| is

Vishal Baghel

6.00
b·a = c·a
|a+b-c|² = |a|²+|b|²+|c|²+2(a·b - b·c - a·c)
= 4+16+16+2(a·b - 0 - a·b) = 36
⇒ |a+b-c| = 6

If (a + 3b) is perpendicular to (7a - 5b) and (a - 4b) is perpendicular to (7a - 2b), then the angle between a and b (in degrees) is…….

Alok Kumar Singh

(a+3b). (7a-5b) = 7|a|² - 5ab + 21ab - 15|b|² = 7|a|²+16ab-15|b|²=0.
(a-4b). (7a-2b) = 7|a|² - 2ab - 28ab + 8|b|² = 7|a|²-30ab+8|b|²=0.
Subtracting: 46ab - 23|b|² = 0 ⇒ 2ab = |b|².
Substituting: 7|a|² + 8|b|² - 15|b|² = 0 ⇒ 7|a|² = 7|b|² ⇒ |a|=|b|.
cosθ = ab/ (|a|b|) = ab/|b|² = (1/2)|b|²/|b|² = 1/2.
θ

Vishal Baghel

a×b=c ⇒ a.c=0, b.c=0.
|c|² = |a|²|b|² - (a.b)² = (3)|b|² - 1. |c|=√2. So |b|²=1, |b|=1.
Projection of b on a×c.
a×c = a× (a×b) = (a.b)a - (a.a)b = a - 3b.
|a-3b|² = |a|²+9|b|²-6 (a.b) = 3+9-6 = 6.
l = |b. (a-3b)|/|a-3b| = | (a.b)-3|b|²|/√6 = |1

Alok Kumar Singh

|a × b|² + |a . b|² = |a|²|b|²
8² + (a . b)² = 2² * 5²
64 + (a . b)² = 100
(a . b)² = 36
a . b = 6 (since angle seems acute from options, but could be -6).

Let a = i + j + 2k and b = -i + 2j + 3k. Then the vector product (a + b) × ((a × ((a - b) × b)) × b) is equal to:


Vishal Baghel

a = i + j + 2k
b = -i + 2j + 3k
a + b = 3j + 5k
a . b = -1 + 2 + 6 = 7
a × b = |i, j, k; 1, 2; -1, 2, 3| = -i - 5j + 3k
(a - b) × b) = (a × b) - (b × b) =