b: B=căn 49a^2+3a

=|7a|+3a

=7a+3a(a>=0)

=10a

c: C=căn16a^4+6a^2

=4a^2+6a^2

=10a^2

d: \(D=3\cdot3\cdot\sqrt{a^6}-6a^3=6\cdot\left|a^3\right|-6a^3\)

TH1: a>=0

D=6a^3-6a^3=0

TH2: a<0

D=-6a^3-6a^3=-12a^3

e: \(E=3\sqrt{9a^6}-6a^3\)

\(=3\cdot\sqrt{\left(3a^3\right)^2}-6a^3\)

=3*3a^3-6a^3(a>=0)

=3a^3

f: \(F=\sqrt{16a^{10}}+6a^5\)

\(=\sqrt{\left(4a^5\right)^2}+6a^5\)

=-4a^5+6a^5(a<=0)

=2a^5

\(\sqrt{a^2+6a+9}+\sqrt{a^2-6a+9}=\sqrt{\left(a+3\right)^2}+\sqrt{\left(a-3\right)^2}\)

\(=\left|a+3\right|+\left|a-3\right|\)

Vì \(-3\le a\le3\)\(\Rightarrow\left|a+3\right|=a+3\)và \(\left|a-3\right|=-\left(a-3\right)=-a+3\)

\(\Rightarrow\sqrt{a^2+6a+9}+\sqrt{a^2-6a+9}=\left(a+3\right)+\left(-a+3\right)=6\)

Áp dụng BĐT Mincopxki:

\(P\ge\sqrt{\left(a+b+c\right)^2+2\left(a+b+c\right)^2}=\sqrt{3}\)

Dấu "=" xảy ra khi \(a=b=c=\dfrac{1}{3}\)

Lại có do \(a;b;c\ge0\) nên:

\(a^2+2b^2\le a^2+2\sqrt{2}ab+2b^2=\left(a+\sqrt{2}b\right)^2\)

\(\Rightarrow\sqrt{a^2+2b^2}\le a+\sqrt{2}b\)

Tương tự và cộng lại:

\(\Rightarrow P\le\left(\sqrt{2}+1\right)\left(a+b+c\right)=\sqrt{2}+1\)

Dấu "=" xảy ra tại \(\left(a;b;c\right)=\left(1;0;0\right)\) và các hoán vị

thầy chỉ cho em hiểu rõ hơn dòng 4 với ạ 

1)Để căn có nghĩa \(\Leftrightarrow\dfrac{-a}{3}\ge0\Leftrightarrow a\le0\)

Vậy...

2)Để căn có nghĩa \(\Leftrightarrow\left\{{}\begin{matrix}\dfrac{a^2+1}{1-3a}\ge0\\1-3a\ne0\end{matrix}\right.\)\(\Leftrightarrow\left\{{}\begin{matrix}1-3a>0\left(vìa^2+1>0\right)\\1-3a\ne0\end{matrix}\right.\)

\(\Leftrightarrow1-3a>0\Leftrightarrow3a< 1\Leftrightarrow a< \dfrac{1}{3}\)

Vậy...

3)Để căn có nghĩa 

\(\Leftrightarrow a^2-6a+10\ge0\Leftrightarrow\left(a^2-6a+9\right)+1\ge0\Leftrightarrow\left(a-3\right)^2+1\ge0\left(lđ;\forall a\right)\)

Vậy căn luôn có nghĩa với mọi a

4)Để căn có nghĩa \(\Leftrightarrow\left\{{}\begin{matrix}\dfrac{a-1}{a+2}\ge0\\a+2\ne0\end{matrix}\right.\) \(\Leftrightarrow\left\{{}\begin{matrix}\left[{}\begin{matrix}\left\{{}\begin{matrix}a-1\ge0\\a+2>0\end{matrix}\right.\\\left\{{}\begin{matrix}a-1\le0\\a+2< 0\end{matrix}\right.\end{matrix}\right.\\a+2\ne0\end{matrix}\right.\)\(\Leftrightarrow\left[{}\begin{matrix}\left\{{}\begin{matrix}a\ge1\\a>-2\end{matrix}\right.\\\left\{{}\begin{matrix}a\le1\\a< -2\end{matrix}\right.\end{matrix}\right.\)\(\Leftrightarrow\left[{}\begin{matrix}a\ge1\\a< -2\end{matrix}\right.\)

Vậy...

\(6a+3b+2c=abc\Leftrightarrow\dfrac{2}{ab}+\dfrac{3}{ac}+\dfrac{6}{bc}=1\)

Đặt \(\left(\dfrac{1}{a};\dfrac{2}{b};\dfrac{3}{c}\right)=\left(x;y;z\right)\Rightarrow xy+yz+zx=1\)

\(Q=\dfrac{1}{\sqrt{\dfrac{1}{x^2}+1}}+\dfrac{2}{\sqrt{\dfrac{4}{y^2}+4}}+\dfrac{3}{\sqrt{\dfrac{9}{z^2}+9}}=\dfrac{x}{\sqrt{x^2+1}}+\dfrac{y}{\sqrt{y^2+1}}+\dfrac{z}{\sqrt{z^2+1}}\)

\(Q=\dfrac{x}{\sqrt{x^2+xy+yz+zx}}+\dfrac{y}{\sqrt{y^2+xy+yz+zx}}+\dfrac{z}{\sqrt{z^2+xy+yz+zx}}\)

\(Q=\dfrac{x}{\sqrt{\left(x+y\right)\left(x+z\right)}}+\dfrac{y}{\sqrt{\left(x+y\right)\left(y+z\right)}}+\dfrac{z}{\sqrt{\left(x+z\right)\left(y+z\right)}}\)

\(Q\le\dfrac{1}{2}\left(\dfrac{x}{x+y}+\dfrac{x}{x+z}+\dfrac{y}{x+y}+\dfrac{y}{y+z}+\dfrac{z}{x+z}+\dfrac{z}{y+z}\right)=\dfrac{3}{2}\)

\(Q_{max}=\dfrac{3}{2}\) khi \(x=y=z=\dfrac{1}{\sqrt{3}}\) hay \(\left(a;b;c\right)=\left(\sqrt{3};2\sqrt{3};3\sqrt{3}\right)\)

\(\sqrt{3+\frac{\sqrt{13}+1}{2}}=\sqrt{\frac{7+\sqrt{13}}{2}}=\sqrt{\frac{14+2\sqrt{13}}{4}}=\sqrt{\left(\frac{\sqrt{13}+1}{2}\right)^2}\)

=\(\frac{\sqrt{13}+1}{2}\)

cứ như thế ta có kết quả là\(\frac{\sqrt{13}+1}{2}\)

\(A=\sqrt{a^2+6a+9}+\sqrt{a^2-6a+9}\\ =\sqrt{\left(a+3\right)^2}+\sqrt{\left(a-3\right)^2}\\ \\ =a+3+3-a\\ =6\)

\(B=\sqrt{a+2\sqrt{a-1}}+\sqrt{a-2\sqrt{a-1}}\\ =\sqrt{\left(a-1\right)+2\sqrt{a-1}+1}+\sqrt{\left(a-1\right)-2\sqrt{a-1}+1}\\ =\sqrt{\left(\sqrt{a-1}+1\right)^2}+\sqrt{\left(\sqrt{a-1}-1\right)^2}\\ =\sqrt{a-1}+1+1-\sqrt{a-1}\\ =2\)