\(\left|\overrightarrow{OA}-\overrightarrow{CB}\right|=\left|\overrightarrow{OA}+\overrightarrow{BC}\right|=\left|\overrightarrow{OA}+\overrightarrow{AD}\right|=\left|\overrightarrow{OD}\right|=OD=\dfrac{1}{2}BD=\dfrac{a\sqrt{2}}{2}\)

\(\left|\overrightarrow{AB}+\overrightarrow{DC}\right|=\left|\overrightarrow{AB}+\overrightarrow{AB}\right|=2\left|\overrightarrow{AB}\right|=2AB=2a\)

\(\left|\overrightarrow{CD}-\overrightarrow{DA}\right|=\left|\overrightarrow{CD}+\overrightarrow{AD}\right|=\left|\overrightarrow{BA}+\overrightarrow{AD}\right|=\left|\overrightarrow{BD}\right|=BD=a\sqrt{2}\)

a, \(AC=\dfrac{AB}{sin45^o}=\dfrac{a}{\dfrac{\sqrt{2}}{2}}=a\sqrt{2}\)

\(\overrightarrow{AB}.\overrightarrow{AC}=AB.AC.cos\widehat{BAC}=a.a\sqrt{2}.cos45^o=a^2\)

b, \(\left(\overrightarrow{AB}+\overrightarrow{AD}\right)\left(\overrightarrow{BD}+\overrightarrow{BC}\right)=\overrightarrow{AC}\left(\overrightarrow{BD}+\overrightarrow{BC}\right)\)

\(=\overrightarrow{AC}.\overrightarrow{BD}+\overrightarrow{AC}.\overrightarrow{BC}\)

\(=AC.BD.cos90^o+AC.AD.cos45^o\)

\(=a\sqrt{2}.a\sqrt{2}.0+a\sqrt{2}.a.\dfrac{\sqrt{2}}{2}=a^2\)

c, \(\overrightarrow{AB}.\overrightarrow{BD}=AB.BD.cos135^o=-a.a\sqrt{2}.\dfrac{\sqrt{2}}{2}=-a^2\)

d, \(\left(\overrightarrow{AC}-\overrightarrow{AB}\right)\left(2\overrightarrow{AD}-\overrightarrow{AB}\right)=\overrightarrow{BC}.\left(\overrightarrow{AD}+\overrightarrow{BD}\right)\)

\(=\overrightarrow{BC}.\overrightarrow{AD}+\overrightarrow{BC}.\overrightarrow{BD}\)

\(=AD^2+BC.BD.cos45^o\)

\(=a^2+a.a\sqrt{2}.\dfrac{\sqrt{2}}{2}=2a^2\)

e, \(\left(\overrightarrow{AB}+\overrightarrow{AC}+\overrightarrow{AD}\right)\left(\overrightarrow{DA}+\overrightarrow{DB}+\overrightarrow{DC}\right)\)

\(=\left(\overrightarrow{AC}+\overrightarrow{AC}\right)\left(\overrightarrow{DB}+\overrightarrow{DB}\right)\)

\(=4.\overrightarrow{AC}.\overrightarrow{DB}=4.AC.DB.cos90^o=0\)

\(cos\left(\overrightarrow{AC};\overrightarrow{BA}\right)=cos\left(\overrightarrow{AC};\overrightarrow{AB'}\right)=cos\widehat{CAB'}=cos135^o\)\(=\dfrac{\sqrt{2}}{2}\).
\(sin\left(\overrightarrow{AC};\overrightarrow{BD}\right)=sin90^o=1\) do \(AC\perp BD\).
\(cos\left(\overrightarrow{AB};\overrightarrow{CD}\right)=cos180^o=-1\) do hai véc tơ \(\overrightarrow{AB};\overrightarrow{CD}\) ngược hướng.

 

Tham khảo:

A. Ta có: \(\left( {\overrightarrow {AB} ,\overrightarrow {BD} } \right) = \left( {\overrightarrow {BE} ,\overrightarrow {BD} } \right) = {135^o} \ne {45^o}.\) Vậy A sai.

B. Ta có: \(\left( {\overrightarrow {AC} ,\overrightarrow {BC} } \right) = \left( {\overrightarrow {CF} ,\overrightarrow {CG} } \right) = {45^o}\) và  \(\overrightarrow {AC} .\overrightarrow {BC}  = AC.BC.\cos {45^o} = a\sqrt 2 .a.\frac{{\sqrt 2 }}{2} = {a^2}.\)

Vậy B đúng.

Chọn B

C. Dễ thấy \(AC \bot BD\) nên \(\overrightarrow {AC} .\overrightarrow {BD}  = 0 \ne {a^2}\sqrt 2.\) Vậy C sai.

D. Ta có: \(\left( {\overrightarrow {BA} .\overrightarrow {BD} } \right) = {45^o}\) \( \Rightarrow \overrightarrow {BA} .\overrightarrow {BD}  = BA.BD.\cos {45^o} = a.a\sqrt 2 .\frac{{\sqrt 2 }}{2} = {a^2} \ne  - {a^2}.\) Vậy D sai.

a)       \(\begin{array}{l}\overrightarrow a  = \left( {\overrightarrow {AC}  + \overrightarrow {BD} } \right) + \overrightarrow {CB}  = \left( {\overrightarrow {AC}  + \overrightarrow {CB} } \right) + \overrightarrow {BD} \\ = \overrightarrow {AB}  + \overrightarrow {BD}  = \overrightarrow {AD}\\  \Rightarrow |{\overrightarrow a}|= \left| {\overrightarrow {AD} } \right| = AD = 1\end{array}\)

b)       \(\begin{array}{l}\overrightarrow a  = \overrightarrow {AB}  + \overrightarrow {AD}  + \overrightarrow {BC}  + \overrightarrow {DA}  = \left( {\overrightarrow {AB}  + \overrightarrow {BC} } \right) + \left( {\overrightarrow {AD}  + \overrightarrow {DA} } \right)\\ = \overrightarrow {AC}  + \overrightarrow {AA}  = \overrightarrow {AC}  + \overrightarrow 0  = \overrightarrow {AC} \end{array}\)

\(AC = \sqrt {A{B^2} + B{C^2}}  = \sqrt {{1^2} + {1^2}}  = \sqrt 2 \)

\(\Rightarrow |{\overrightarrow a}|= \left| {\overrightarrow {AC} } \right| = \sqrt 2 \)

1.

Đặt \(P=\left|\overrightarrow{AD}+3\overrightarrow{AB}\right|\Rightarrow P^2=AD^2+9AB^2+6\overrightarrow{AD}.\overrightarrow{AB}\)

\(=AD^2+9AB^2=10AB^2=10a^2\)

\(\Rightarrow P=a\sqrt{10}\)

2.

Tam giác ABC đều nên AM là trung tuyến đồng thời là đường cao \(\Rightarrow AM\perp BM\)

\(AM=\dfrac{a\sqrt{3}}{2}\) ; \(BM=\dfrac{a}{2}\)

\(T=\left|\overrightarrow{MA}+2\overrightarrow{MB}+\overrightarrow{MB}+\overrightarrow{MC}\right|=\left|\overrightarrow{MA}+2\overrightarrow{MB}\right|\)

\(\Rightarrow T^2=MA^2+4MB^2+4\overrightarrow{MA}.\overrightarrow{MB}=MA^2+4MB^2\)

\(=\left(\dfrac{a\sqrt{3}}{2}\right)^2+4\left(\dfrac{a}{2}\right)^2=\dfrac{7a^2}{4}\Rightarrow T=\dfrac{a\sqrt{7}}{2}\)

3.

\(T=\left|\overrightarrow{AB}+\overrightarrow{CG}\right|=\left|\overrightarrow{AB}+\dfrac{1}{3}\overrightarrow{CA}+\dfrac{1}{3}\overrightarrow{CB}\right|=\left|\overrightarrow{AB}+\dfrac{1}{3}\overrightarrow{CA}+\dfrac{1}{3}\overrightarrow{CA}+\dfrac{1}{3}\overrightarrow{AB}\right|\)

\(=\left|\dfrac{4}{3}\overrightarrow{AB}-\dfrac{2}{3}\overrightarrow{AC}\right|\Rightarrow T^2=\dfrac{16}{9}AB^2+\dfrac{4}{9}AC^2-\dfrac{16}{9}\overrightarrow{AB}.\overrightarrow{AC}\)

\(=\dfrac{20}{9}AB^2-\dfrac{16}{9}AB^2.cos60^0=\dfrac{20}{9}a^2-\dfrac{16}{9}a^2.\dfrac{1}{2}=\dfrac{4}{3}a^2\)

\(\Rightarrow T=\dfrac{2a}{\sqrt{3}}\)

Ta có: (vectơ AB + vectơ AD) + vectơ AC

           = vectơ AC + vectơ AC
           = 2 vectơAC

=> | vectơ AB + vectơ AC + vectơ AD| = 2 vectơAC = 2a căn 2

chỗ cuối sao lại bằng 2a căn 2 vậy?

Do ABCD là hình vuông nên AC vuông góc BD

Do đó:

\(P=\left(\overrightarrow{AB}+\overrightarrow{AC}\right)\left(\overrightarrow{BC}+\overrightarrow{BA}+\overrightarrow{BD}\right)=\left(\overrightarrow{AB}+\overrightarrow{AC}\right).2\overrightarrow{BD}\)

\(=2\overrightarrow{AB}.\overrightarrow{BD}+2\overrightarrow{AC}.\overrightarrow{BD}=2\overrightarrow{AB}.\overrightarrow{BC}=2a.a.cos135^0=-a^2\sqrt{2}\)