Let veca= hati+2 hatj+λ hatk, vecb=3 hati-5 hatj-λ hatk, veca ⋅ vecc=7,2 vecb ⋅ vecc+43=0, veca × vecc= vecb × vecc. Then | veca ⋅ vecb| is equal to

Question

Let veca= hati+2 hatj+λ hatk, vecb=3 hati-5 hatj-λ hatk, veca ⋅ vecc=7,2 vecb ⋅ vecc+43=0, veca × vecc= vecb × vecc. Then | veca ⋅ vecb| is equal to (A)  (B)  (C)  (D)

Tardigrade Admin · Accepted Answer

vec a = hat i +2 hat j +λ hat k , vec b =3 hat i -5 hat j -λ hat k , vec a ⋅ vec c =7 vec a × vec c - vec b × vec c = vec0 ( vec a - vec b ) × vec c =0 ⇒( vec a - vec b ) text is paralleled to vec c vec a - vec b =μ vec c text , where μ text is a scalar -2 hat i +7 hat j +2 λ hat k =μ ⋅ c Now vec a ⋅ vec c =7 gives 2 λ2+12=7 μ And vecb ⋅ vecc=-(43/2) gives 4 λ2+82=43 μ μ=2 and λ2=1 | vec a ⋅ vec b |=8

Q. Let a=i^+2j^​+λk^,b=3i^−5j^​−λk^,a⋅c=7,2b⋅c+43=0,a×c=b×c. Then ∣a⋅b∣ is equal to

a=i^+2j^​+λk^,b=3i^−5j^​−λk^,a⋅c=7 a×c−b×c=0 (a−b)×c=0⇒(a−b) is paralleled to c a−b=μc, where μ is a scalar −2i^+7j^​+2λk^=μ⋅c Now a⋅c=7 gives 2λ2+12=7μ And b⋅c=−243​ gives 4λ2+82=43μ μ=2 and λ2=1 ∣a⋅b∣=8

Q. Let $a = \hat{i} + 2 \hat{j} + λ \hat{k}, b = 3 \hat{i} - 5 \hat{j} - λ \hat{k}, a \cdot c = 7, 2 b \cdot c + 43 = 0, a \times c = b \times c$ . Then $∣ a \cdot b ∣$ is equal to