Cho hình vuông ABCD có cạnh bằng 6 cm
Tính tích vô hướng \(\overrightarrow{AC.}\overrightarrow{BD}\)
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Ta có: \(AC = BD = \sqrt {A{B^2} + B{C^2}} = \sqrt {{a^2} + {a^2}} = a\sqrt 2 \)
+) \(AB \bot AD \Rightarrow \overrightarrow {AB} \bot \overrightarrow {AD} \Rightarrow \overrightarrow {AB} .\overrightarrow {AD} = 0\)
+) \(\overrightarrow {AB} .\overrightarrow {AC} = \left| {\overrightarrow {AB} } \right|.\left| {\overrightarrow {AC} } \right|.\cos \left( {\overrightarrow {AB} ,\overrightarrow {AC} } \right) = a.a\sqrt 2.\cos 45^\circ = a^2\)
+) \(\overrightarrow {AC} .\overrightarrow {CB} = \left| {\overrightarrow {AC} } \right|.\left| {\overrightarrow {CB} } \right|.\cos \left( {\overrightarrow {AC} ,\overrightarrow {CB} } \right) = a\sqrt 2 .a.\cos 135^\circ = - {a^2}\)
+) \(AC \bot BD \Rightarrow \overrightarrow {AC} \bot \overrightarrow {BD} \Rightarrow \overrightarrow {AC} .\overrightarrow {BD} = 0\)
Chú ý
\(\overrightarrow {a} \bot \overrightarrow {b} \Leftrightarrow \overrightarrow {a} .\overrightarrow {b} = 0\)
a) Ta có: \(AC = \sqrt {A{B^2} + A{D^2}} = \sqrt {2{a^2}} = a\sqrt 2 \)
\( \Rightarrow \overrightarrow {AB} .\overrightarrow {AC} = a.a\sqrt 2 .\cos \widehat {BAC} = {a^2}\sqrt 2 \cos {45^o} = {a^2}.\)
b) Dễ thấy: \(AC \bot BD \Rightarrow (\overrightarrow {AC} ,\overrightarrow {BD} ) = {90^o}\)
\( \Rightarrow \overrightarrow {AC} .\overrightarrow {BD} = AC.BD.\cos {90^o} = AC.BD.0 = 0.\)
\(AC=\sqrt{AB^2+BC^2}=a\sqrt{5}\)
\(BD=\sqrt{AD^2+AB^2}=a\sqrt{2}\)
\(\overrightarrow{AC}.\overrightarrow{BD}=\left(\overrightarrow{AB}+\overrightarrow{BC}\right)\left(\overrightarrow{BA}+\overrightarrow{AD}\right)\)
\(=-\overrightarrow{AB}^2+\overrightarrow{AB}.\overrightarrow{AD}+\overrightarrow{BC}.\overrightarrow{BA}+\overrightarrow{BC}.\overrightarrow{AD}\)
\(=-\overrightarrow{AB}^2+\overrightarrow{AD}.2\overrightarrow{AD}=-\overrightarrow{AB}^2+2\overrightarrow{AD}^2\)
\(=-a^2+2a^2=a^2\)
\(cos\left(\overrightarrow{AC};\overrightarrow{BD}\right)=\dfrac{\overrightarrow{AC}.\overrightarrow{BD}}{AC.BD}=\dfrac{a^2}{a\sqrt{2}.a\sqrt{5}}=\dfrac{1}{\sqrt{10}}\)
a) \(\overrightarrow {BD} = \overrightarrow {AD} - \overrightarrow {AB} ;\;\overrightarrow {AC} = \overrightarrow {AB} + \overrightarrow {AD} .\)
b) \(\overrightarrow {AB} .\overrightarrow {AD} = 4.6.\cos \widehat {BAD} = 24.\cos {60^o} = 12.\)
\(\begin{array}{l}\overrightarrow {AB} .\overrightarrow {AC} = \overrightarrow {AB} (\overrightarrow {AB} + \overrightarrow {AD} ) = {\overrightarrow {AB} ^2} + \overrightarrow {AB} .\overrightarrow {AD} = {4^2} + 12 = 28.\\\overrightarrow {BD} .\overrightarrow {AC} = (\overrightarrow {AD} - \overrightarrow {AB} )(\overrightarrow {AB} + \overrightarrow {AD} ) = {\overrightarrow {AD} ^2} - {\overrightarrow {AB} ^2} = {6^2} - {4^2} = 20.\end{array}\)
c) Áp dụng định lí cosin cho tam giác ABD ta có:
\(\begin{array}{l}\quad \;B{D^2} = A{B^2} + A{D^2} - 2.AB.AD.\cos A\\ \Leftrightarrow B{D^2} = {4^2} + {6^2} - 2.4.6.\cos {60^o} = 28\\ \Leftrightarrow BD = 2\sqrt 7 .\end{array}\)
Áp dụng định lí cosin cho tam giác ABC ta có:
\(\begin{array}{l}\quad \;A{C^2} = A{B^2} + B{C^2} - 2.AB.BC.\cos B\\ \Leftrightarrow A{C^2} = {4^2} + {6^2} - 2.4.6.\cos {120^o} = 76\\ \Leftrightarrow AC = 2\sqrt {19} .\end{array}\)
a: AB=BC=CD=DA=6a
\(AC=BD=\sqrt{\left(6a\right)^2+\left(6a\right)^2}=6a\sqrt{2}\)
\(\left|\overrightarrow{AB}-\overrightarrow{AC}\right|=\left|\overrightarrow{CA}+\overrightarrow{AB}\right|=CB=6a\)
\(\left|\overrightarrow{BC}+\overrightarrow{BD}\right|=\sqrt{BC^2+BD^2+2\cdot BC\cdot BD\cdot cos45}\)
\(=\sqrt{36a^2+72a^2+\sqrt{2}\cdot6a\cdot6a\sqrt{2}}\)
\(=6a\sqrt{5}\)
b: \(\overrightarrow{AB}\cdot\overrightarrow{AC}=AB\cdot AC\cdot cos\left(\overrightarrow{AB},\overrightarrow{AC}\right)=6a\cdot6a\sqrt{2}\cdot\dfrac{\sqrt{2}}{2}\)
\(=36a^2\)
\(\overrightarrow{AC}.\overrightarrow{BD}=\left(\overrightarrow{AD}+\overrightarrow{DC}\right)\left(\overrightarrow{BA}+\overrightarrow{AD}\right)\)
\(=\overrightarrow{AD}.\overrightarrow{BA}+\overrightarrow{AD}^2+\overrightarrow{DC}.\overrightarrow{BA}+\overrightarrow{DC}.\overrightarrow{AD}\)
\(=\overrightarrow{AD}^2-\overrightarrow{AB}.\overrightarrow{DC}=a^2-a.2a=-a^2\)
+) Ta có: \(AB \bot AC \Rightarrow \overrightarrow {AB} \bot \overrightarrow {AC} \Rightarrow \overrightarrow {AB} .\overrightarrow {AC} = 0\)
+) \(\overrightarrow {AC} .\overrightarrow {BC} = \left| {\overrightarrow {AC} } \right|.\left| {\overline {BC} } \right|.\cos \left( {\overrightarrow {AC} ,\overrightarrow {BC} } \right)\)
Ta có: \(BC = \sqrt {A{B^2} + A{C^2}} = \sqrt 2 \Leftrightarrow \sqrt {2A{C^2}} = \sqrt 2 \)\( \Rightarrow AC = 1\)
\( \Rightarrow \overrightarrow {AC} .\overrightarrow {BC} = 1.\sqrt 2 .\cos \left( {45^\circ } \right) = 1\)
+) \(\overrightarrow {BA} .\overrightarrow {BC} = \left| {\overrightarrow {BA} } \right|.\left| {\overrightarrow {BC} } \right|.\cos \left( {\overrightarrow {BA} ,\overrightarrow {BC} } \right) = 1.\sqrt 2 .\cos \left( {45^\circ } \right) = 1\)
\(BM=2MA\Rightarrow\overrightarrow{AM}=\dfrac{1}{3}\overrightarrow{AB}\); \(AN=3NC\Rightarrow\overrightarrow{AN}=\dfrac{3}{4}\overrightarrow{AC}=\dfrac{3}{4}\overrightarrow{AB}+\dfrac{3}{4}\overrightarrow{AD}\)
Do đó:
\(\overrightarrow{MN}.\overrightarrow{DN}=\left(\overrightarrow{MA}+\overrightarrow{AN}\right)\left(\overrightarrow{DA}+\overrightarrow{AN}\right)\)
\(=\left(-\dfrac{1}{3}\overrightarrow{AB}+\dfrac{3}{4}\overrightarrow{AB}+\dfrac{3}{4}\overrightarrow{AD}\right)\left(-\overrightarrow{AD}+\dfrac{3}{4}\overrightarrow{AB}+\dfrac{3}{4}\overrightarrow{AD}\right)\)
\(=\left(\dfrac{5}{12}\overrightarrow{AB}+\dfrac{3}{4}\overrightarrow{AD}\right)\left(\dfrac{3}{4}\overrightarrow{AB}-\dfrac{1}{4}\overrightarrow{AD}\right)\)
\(=\dfrac{5}{16}AB^2-\dfrac{3}{16}AD^2=\dfrac{1}{8}AB^2=\dfrac{1}{8}\) (chú ý rằng \(\overrightarrow{AB}.\overrightarrow{AD}=0\) và \(AB=AD=1\))
ABCD là hình vuông
=>AC\(\perp\)BD
=>\(\overrightarrow{AC}\cdot\overrightarrow{BD}=0\)