Kẻ đường cao AH

Áp dụng PTG: \(BC=\sqrt{AB^2+AC^2}=10\left(cm\right)\)

Áp dụng HTL: \(BH=\dfrac{AB^2}{BC}=\dfrac{18}{5}\left(cm\right);AH=\dfrac{AB\cdot AC}{BC}=\dfrac{24}{5}\left(cm\right)\)

Vì AD là p/g nên \(\dfrac{BD}{DC}=\dfrac{AB}{AC}=\dfrac{3}{4}\Rightarrow BD=\dfrac{3}{4}DC\)

Mà \(BD+DC=BC=10\Rightarrow\dfrac{7}{4}DC=10\Rightarrow DC=\dfrac{40}{7}\left(cm\right)\)

\(\Rightarrow BD=\dfrac{30}{7}\left(cm\right)\)

\(\Rightarrow HD=BD-BH=\dfrac{30}{7}-\dfrac{18}{5}=\dfrac{24}{35}\)

Áp dụng PTG: \(AD=\sqrt{AH^2+HD^2}=\sqrt{\left(\dfrac{24}{35}\right)^2+\left(\dfrac{24}{5}\right)^2}=\dfrac{24\sqrt{2}}{7}\approx4,85\left(cm\right)\)

Bài 11:
a: \(\sqrt{18}+3\sqrt{50}-\sqrt{98}\)

\(=3\sqrt{2}+15\sqrt{2}-7\sqrt{2}\)

\(=11\sqrt{2}\)

c: \(\sqrt{20}+\sqrt{80}-\sqrt{45}\)

\(=2\sqrt{5}+4\sqrt{5}-3\sqrt{5}\)

\(=3\sqrt{5}\)

Trình bày dễ hiểu, đừng làm tắt ạ!

1. Turn on (please+Vo)

2. Turned / off (was chia qk)

3. Look for

4. Got up (because S+ had+V3/ed, S+V2/ed)

5. Ran into( hai hd lien tiep)

6. Goes on (after S+V2/ed, S+Vht)

Đề bài là: Tính cos2x 

Cảm ơn mn nhiều ạ!

`sin3x sinx+sin(x-π/3) cos (x-π/6)=0`

`<=> 1/2 (cos2x - cos4x) + 1/2(-sin π/6 + sin (2x-π/2)=0`

`<=> cos2x-cos4x-1/2+ sin(2x-π/2)=0`

`<=>cos2x-cos4x-1/2+ sin2x .cos π/2 - cos2x. sinπ/2=0`

`<=> cos2x - cos4x - cos2x = 1/2`

`<=> cos4x = cos(2π)/3`

`<=>` \(\left[{}\begin{matrix}4x=\dfrac{2\text{π}}{3}+k2\text{π}\\4x=\dfrac{-2\text{π}}{3}+k2\text{π}\end{matrix}\right.\)

`<=>` \(\left[{}\begin{matrix}x=\dfrac{\text{π}}{6}+k\dfrac{\text{π}}{2}\\x=-\dfrac{\text{π}}{6}+k\dfrac{\text{π}}{2}\end{matrix}\right.\)

E tk nha:

Bài 5: 

Xét ΔBAC có 

FG//AC

nên \(\dfrac{FG}{AC}=\dfrac{BG}{BC}=\dfrac{1}{2}\)

hay AC=16(m)