Câu hỏi của Phạm Thị Hường - Toán lớp 8 - Học toán với OnlineMath

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\(\left(1+\dfrac{b}{a}\right)\left(1+\dfrac{c}{b}\right)\left(1+\dfrac{a}{c}\right)=8\)

\(\Leftrightarrow\left(a+b\right)\left(a+c\right)\left(b+c\right)=8abc\)

Áp dụng BĐT Cô-si cho 2 số không âm:

\(\left(a+b\right)\left(a+c\right)\left(b+c\right)\ge2\sqrt{ab}.2\sqrt{bc}.2\sqrt{ac}=8abc\)

Dấu "=" xảy ra <=> a = b = c

Vậy, △ABC là tam giác đều (đpcm)

Áp dụng bất đẳng thức Cô si ta có:

\(VT=\left(1+\dfrac{b}{a}\right)\left(1+\dfrac{c}{b}\right)\left(1+\dfrac{a}{c}\right)\ge2\sqrt{\dfrac{b}{a}}\cdot2\sqrt{\dfrac{c}{b}}\cdot2\sqrt{\dfrac{a}{c}}=8\sqrt{\dfrac{abc}{abc}}=8=VP\)

Dấu "=" xảy ra khi a = b = c

Mà VT = VP => a = b = c

=> tam giác ABC đều

\(\left(1+\dfrac{b}{a}\right)\left(1+\dfrac{c}{b}\right)\left(1+\dfrac{a}{c}\right)=8\)

\(\Leftrightarrow\left(\dfrac{a}{a}+\dfrac{b}{a}\right)\left(\dfrac{b}{b}+\dfrac{c}{b}\right)\left(\dfrac{c}{c}+\dfrac{a}{c}\right)=8\)

\(\Leftrightarrow\dfrac{a+b}{a}.\dfrac{b+c}{b}.\dfrac{c+a}{c}=8\)

\(\Leftrightarrow\dfrac{\left(a+b\right)\left(b+c\right)\left(c+a\right)}{abc}=8\)

\(\Leftrightarrow\left(a+b\right)\left(b+c\right)\left(c+a\right)=8abc\)

Với mọi \(a,b,c>0\) ta có :

+) \(\left(a+b\right)^2\ge4ab\) Dấu bằng xảy ra \(\Leftrightarrow a=b\)

+) \(\left(b+c\right)^2\ge4bc\) Dấu bằng xảy ra \(\Leftrightarrow b=c\)

+) \(\left(c+a\right)^2\ge4ca\) Dấu bằng xảy ra \(\Leftrightarrow c=a\)

\(\Leftrightarrow\left(a+b\right)^2.\left(b+c\right)^2.\left(c+a\right)^2\ge64a^2b^2c^2\)

\(\Leftrightarrow\left(a+b\right)\left(b+c\right)\left(c+a\right)\ge8abc\)

Dấu "=" xảy ra \(\Leftrightarrow a=b=c\Leftrightarrow\Delta ABC\) đều \(\left(đpcm\right)\)

AM-GM 1 dòng

\(a^3+b^3+c^3=3abc\\ \Rightarrow a^3+b^3+c^3-3abc=0\\ \Rightarrow\left(a+b+c\right)\left(a^2+b^2+c^2-ab-bc-ac\right)=0\\ \Rightarrow\left[{}\begin{matrix}a+b+c=0\\a^2+b^2+c^2-ab-bc-ac=0\end{matrix}\right.\)

\(\Rightarrow a^2+b^2+c^2=ab+bc+ac\left(a+b+c\ne0\right)\\ \Rightarrow2a^2+2b^2+2c^2=2ab+2bc+2ac\\ \Rightarrow\left(a-b\right)^2+\left(b-c\right)^2+\left(a-c\right)^2=0\\ \Rightarrow a=b=c\\ \Rightarrow B=\dfrac{2}{a}.\dfrac{2}{b}.\dfrac{2}{c}=\dfrac{8}{abc}\)

Lời giải:

\(\text{VT}=\frac{1}{a(a-b)(a-c)}+\frac{1}{b(b-c)(b-a)}+\frac{1}{c(c-a)(c-b)}\)

\(=\frac{bc(c-b)}{abc(a-b)(b-c)(c-a)}+\frac{ac(a-c)}{abc(a-b)(b-c)(c-a)}+\frac{ab(b-a)}{abc(a-b)(b-c)(c-a)}\)

\(=\frac{bc(c-b)+ac(a-c)+ab(b-a)}{abc(a-b)(b-c)(c-a)}\) (1)

Xét \(bc(c-b)+ac(a-c)+ab(b-a)=bc(c-b)-ac[(c-b)+(b-a)]+ab(b-a)\)

\(=(c-b)(bc-ac)+(b-a)(ab-ac)=c(c-b)(b-a)+a(b-a)(b-c)\)

\(=(c-b)(b-a)(c-a)=(a-b)(b-c)(c-a)\) (2)

Từ \((1),(2)\Rightarrow \text{VT}=\frac{(a-b)(b-c)(c-a)}{abc(a-b)(b-c)(c-a)}=\frac{1}{abc}\)

Ta có đpcm.

Bằng nhau

a=b=c=1 suy ra Tam giác ABC là tam giác đều vì có độ dài 3 canh = nhau .

Ta có:

\(\dfrac{1}{a^3\left(b+c\right)}+\dfrac{1}{b^3\left(c+a\right)}+\dfrac{1}{c^3\left(a+b\right)}\ge\dfrac{3}{2}\)

\(\dfrac{1^2}{a^3\left(b+c\right)}+\dfrac{1^2}{b^3\left(c+a\right)}+\dfrac{1^2}{c^3\left(a+b\right)}\ge\dfrac{3}{2}\)

\(\dfrac{a^2b^2c^2}{a^3\left(b+c\right)}+\dfrac{a^2b^2c^2}{b^3\left(c+a\right)}+\dfrac{a^2b^2c^2}{c^3\left(a+b\right)}\ge\dfrac{3}{2}\)

\(\dfrac{b^2c^2}{a\left(c+b\right)}+\dfrac{a^2c^2}{b\left(c+a\right)}+\dfrac{a^2b^2}{c\left(a+b\right)}\ge\dfrac{3}{2}\)

Áp dụng BĐT Svacxo ta có:

\(\dfrac{b^2c^2}{a\left(b+c\right)}+\dfrac{a^2c^2}{b\left(c+a\right)}+\dfrac{a^2b^2}{c\left(a+b\right)}\ge\dfrac{\left(ab+bc+ca\right)^2}{a\left(b+c\right)+b\left(a+c\right)+c\left(a+b\right)}\) \(\dfrac{b^2c^2}{a\left(b+c\right)}+\dfrac{a^2c^2}{b\left(c+a\right)}+\dfrac{a^2b^2}{c\left(a+b\right)}\ge\dfrac{\left(ab+bc+ca\right)}{2}\) (1)

Chứng minh: \(\dfrac{ab+bc+ca}{2}\ge\dfrac{3}{2}\Leftrightarrow ab+bc+ca\ge3\)

Áp dụng BĐT Cosi ta có:

\(ab+bc+ca\ge3\sqrt[3]{ab.bc.ca}\)

\(ab+bc+ca\ge3\) (2)

Từ (1) và (2)

=> ĐPCM