📝 题目
9.已知向量 $a=2 i-3 j+k, b=i-j+3 k$ 和 $c=i-2 j$ ,计算: (1)$(\boldsymbol{a} \cdot \boldsymbol{b}) \boldsymbol{c}-(\boldsymbol{a} \cdot \boldsymbol{c}) \boldsymbol{b}$ ; (2)$(a+b) \times(b+c)$ ; (3)$(\boldsymbol{a} \times \boldsymbol{b}) \cdot \boldsymbol{c}$ .
💡 答案与解析
[AI解答]
[AI解答]
**题目**:已知向量 $$ \boldsymbol{a}=2\boldsymbol{i}-3\boldsymbol{j}+\boldsymbol{k},\quad \boldsymbol{b}=\boldsymbol{i}-\boldsymbol{j}+3\boldsymbol{k},\quad \boldsymbol{c}=\boldsymbol{i}-2\boldsymbol{j} $$ 计算以下各式。
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### (1)$(\boldsymbol{a} \cdot \boldsymbol{b}) \boldsymbol{c} - (\boldsymbol{a} \cdot \boldsymbol{c}) \boldsymbol{b}$
**步骤**: 先计算点积:
$$ \boldsymbol{a} \cdot \boldsymbol{b} = (2)(1) + (-3)(-1) + (1)(3) = 2 + 3 + 3 = 8 $$
$$ \boldsymbol{a} \cdot \boldsymbol{c} = (2)(1) + (-3)(-2) + (1)(0) = 2 + 6 + 0 = 8 $$
于是:
$$ (\boldsymbol{a} \cdot \boldsymbol{b}) \boldsymbol{c} = 8 \cdot ( \boldsymbol{i} - 2\boldsymbol{j} ) = 8\boldsymbol{i} - 16\boldsymbol{j} $$
$$ (\boldsymbol{a} \cdot \boldsymbol{c}) \boldsymbol{b} = 8 \cdot ( \boldsymbol{i} - \boldsymbol{j} + 3\boldsymbol{k} ) = 8\boldsymbol{i} - 8\boldsymbol{j} + 24\boldsymbol{k} $$
相减得:
$$ (8\boldsymbol{i} - 16\boldsymbol{j}) - (8\boldsymbol{i} - 8\boldsymbol{j} + 24\boldsymbol{k}) = (8-8)\boldsymbol{i} + (-16+8)\boldsymbol{j} + (0-24)\boldsymbol{k} = 0\boldsymbol{i} - 8\boldsymbol{j} - 24\boldsymbol{k} $$
所以:
$$ \boxed{-8\boldsymbol{j} - 24\boldsymbol{k}} $$
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### (2)$(\boldsymbol{a}+\boldsymbol{b}) \times (\boldsymbol{b}+\boldsymbol{c})$
**步骤**: 先计算和向量:
$$ \boldsymbol{a}+\boldsymbol{b} = (2+1)\boldsymbol{i} + (-3-1)\boldsymbol{j} + (1+3)\boldsymbol{k} = 3\boldsymbol{i} -4\boldsymbol{j} +4\boldsymbol{k} $$
$$ \boldsymbol{b}+\boldsymbol{c} = (1+1)\boldsymbol{i} + (-1-2)\boldsymbol{j} + (3+0)\boldsymbol{k} = 2\boldsymbol{i} -3\boldsymbol{j} +3\boldsymbol{k} $$
计算叉积:
$$ (\boldsymbol{a}+\boldsymbol{b}) \times (\boldsymbol{b}+\boldsymbol{c}) = \begin{vmatrix} \boldsymbol{i} & \boldsymbol{j} & \boldsymbol{k} \\ 3 & -4 & 4 \\ 2 & -3 & 3 \end{vmatrix} $$
按第一行展开:
$$ = \boldsymbol{i} \begin{vmatrix} -4 & 4 \\ -3 & 3 \end{vmatrix} - \boldsymbol{j} \begin{vmatrix} 3 & 4 \\ 2 & 3 \end{vmatrix} + \boldsymbol{k} \begin{vmatrix} 3 & -4 \\ 2 & -3 \end{vmatrix} $$
计算各行列式:
$$ \begin{vmatrix} -4 & 4 \\ -3 & 3 \end{vmatrix} = (-4)(3) - (4)(-3) = -12 + 12 = 0 $$
$$ \begin{vmatrix} 3 & 4 \\ 2 & 3 \end{vmatrix} = (3)(3) - (4)(2) = 9 - 8 = 1 $$
$$ \begin{vmatrix} 3 & -4 \\ 2 & -3 \end{vmatrix} = (3)(-3) - (-4)(2) = -9 + 8 = -1 $$
因此:
$$ = 0\,\boldsymbol{i} - 1\,\boldsymbol{j} + (-1)\,\boldsymbol{k} = -\boldsymbol{j} - \boldsymbol{k} $$
所以:
$$ \boxed{-\boldsymbol{j} - \boldsymbol{k}} $$
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### (3)$(\boldsymbol{a} \times \boldsymbol{b}) \cdot \boldsymbol{c}$
**步骤**: 先计算 $\boldsymbol{a} \times \boldsymbol{b}$:
$$ \boldsymbol{a} \times \boldsymbol{b} = \begin{vmatrix} \boldsymbol{i} & \boldsymbol{j} & \boldsymbol{k} \\ 2 & -3 & 1 \\ 1 & -1 & 3 \end{vmatrix} $$
展开:
$$ = \boldsymbol{i} \begin{vmatrix} -3 & 1 \\ -1 & 3 \end{vmatrix} - \boldsymbol{j} \begin{vmatrix} 2 & 1 \\ 1 & 3 \end{vmatrix} + \boldsymbol{k} \begin{vmatrix} 2 & -3 \\ 1 & -1 \end{vmatrix} $$
计算:
$$ \begin{vmatrix} -3 & 1 \\ -1 & 3 \end{vmatrix} = (-3)(3) - (1)(-1) = -9 + 1 = -8 $$
$$ \begin{vmatrix} 2 & 1 \\ 1 & 3 \end{vmatrix} = (2)(3) - (1)(1) = 6 - 1 = 5 $$
$$ \begin{vmatrix} 2 & -3 \\ 1 & -1 \end{vmatrix} = (2)(-1) - (-3)(1) = -2 + 3 = 1 $$
所以:
$$ \boldsymbol{a} \times \boldsymbol{b} = -8\boldsymbol{i} - 5\boldsymbol{j} + 1\boldsymbol{k} $$
再与 $\boldsymbol{c} = \boldsymbol{i} - 2\boldsymbol{j}$ 做点积:
$$ (\boldsymbol{a} \times \boldsymbol{b}) \cdot \boldsymbol{c} = (-8)(1) + (-5)(-2) + (1)(0) = -8 + 10 + 0 = 2 $$
所以:
$$ \boxed{2} $$
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**最终答案**: (1)$-8\boldsymbol{j} - 24\boldsymbol{k}$ (2)$-\boldsymbol{j} - \boldsymbol{k}$ (3)$2$