cho a,b,c >0 CM \(\left(a^2+bc\right)\left(b^2+ac\right)\left(c^2+ab\right)>=abc\left(a+b\right)\left(b+c\right)\left(a+c\right)\)
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Cho a,b,c>0 thỏa mãn \(\left(ab\right)^2+\left(bc\right)^2+\left(ac\right)^2\ge\left(abc\right)^2\)
Chứng minh rằng \(\frac{\left(ab\right)^2}{\left(a^2+b^2\right)c^3}+\frac{\left(bc\right)^2}{\left(b^2+c^2\right)a^3}+\frac{\left(ac\right)^2}{\left(a^2+c^2\right)b^3}\ge\frac{\sqrt{3}}{2}\)
Afrac{a^2+bc}{b+ac}+frac{b^2+ca}{c+ab}+frac{c^2+ab}{a+bc}frac{3left(a^2+bcright)}{left(a+b+cright)b+3ac}+frac{3left(b^2+caright)}{left(a+b+cright)c+3ab}+frac{3left(c^2+abright)}{left(a+b+cright)a+3bc}gefrac{3left(a^2+bcright)}{left(a^2+bcright)+left(b^2+caright)+left(c^2+abright)}+frac{3left(b^2+caright)}{left(a^2+bcright)+left(b^2+caright)+left(c^2+abright)}+frac{3left(c^2+abright)}{left(a^2+bcright)+left(b^2+caright)+left(c^2+abright)}3
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\(A=\frac{a^2+bc}{b+ac}+\frac{b^2+ca}{c+ab}+\frac{c^2+ab}{a+bc}\)
\(=\frac{3\left(a^2+bc\right)}{\left(a+b+c\right)b+3ac}+\frac{3\left(b^2+ca\right)}{\left(a+b+c\right)c+3ab}+\frac{3\left(c^2+ab\right)}{\left(a+b+c\right)a+3bc}\)
\(\ge\frac{3\left(a^2+bc\right)}{\left(a^2+bc\right)+\left(b^2+ca\right)+\left(c^2+ab\right)}+\frac{3\left(b^2+ca\right)}{\left(a^2+bc\right)+\left(b^2+ca\right)+\left(c^2+ab\right)}+\frac{3\left(c^2+ab\right)}{\left(a^2+bc\right)+\left(b^2+ca\right)+\left(c^2+ab\right)}=3\)
left(a+b+cright)^3-a^3-b^3-c^3left[left(a+bright)+cright]^3-a^3-b^3-c^3left(a+bright)^3+3left(a+bright)^2c+3left(a+bright)c^2+c^3-a^3-b^3-c^3a^3+3a^2b+3ab^2+b^3+3cleft(a^2+2ab+b^2right)+3ac^2+3bc^2-a^3-b^33a^2b+3ab^2+3a^2c+6abc+3b^2c+3ac^2+3bc^23left(a^2b+ab^2+a^2c+ac^2+b^2c+bc^2+2abcright)3left[left(a^2b+ab^2right)+left(a^2c+abcright)+left(ac^2+bc^2right)+left(b^2c+abcright)right]3left[ableft(a+bright)+acleft(a+bright)+c^2left(a+bright)+bcleft(a+bright)right]3left(a+bright)left(ab+ac+c^2+bcrigh...
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\(\left(a+b+c\right)^3-a^3-b^3-c^3\)
\(=\left[\left(a+b\right)+c\right]^3-a^3-b^3-c^3\)
\(=\left(a+b\right)^3+3\left(a+b\right)^2c+3\left(a+b\right)c^2+c^3-a^3-b^3-c^3\)
\(=a^3+3a^2b+3ab^2+b^3+3c\left(a^2+2ab+b^2\right)+3ac^2+3bc^2-a^3-b^3\)
\(=3a^2b+3ab^2+3a^2c+6abc+3b^2c+3ac^2+3bc^2\)
\(=3\left(a^2b+ab^2+a^2c+ac^2+b^2c+bc^2+2abc\right)\)
\(=3\left[\left(a^2b+ab^2\right)+\left(a^2c+abc\right)+\left(ac^2+bc^2\right)+\left(b^2c+abc\right)\right]\)
\(=3\left[ab\left(a+b\right)+ac\left(a+b\right)+c^2\left(a+b\right)+bc\left(a+b\right)\right]\)
\(=3\left(a+b\right)\left(ab+ac+c^2+bc\right)\)
\(=3\left(a+b\right)\left[a\left(b+c\right)+c\left(b+c\right)\right]\)
\(=3\left(a+b\right)\left(b+c\right)\left(c+b\right)\)
Châu ơi!đăng làm j z
Cho a,b,c >0 Chứng minh rằng :
\(\frac{c\left(a^2+b^2\right)^2}{b^3\left(ab+c^2\right)}+\frac{b\left(c^2+a^2\right)^2}{a^3\left(ac+b^2\right)}+\frac{a\left(b^2+c^2\right)^2}{c^3\left(bc+a^2\right)}\ge\frac{2\left(a^2b+b^2c+c^2a\right)}{abc}\)
mk mới hk lp 6 , bài này bó tay ko giải đc
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cho a,b,c là các số thực dương.cmr
\(\dfrac{bc}{\left(a+b\right)\left(a+c\right)}+\dfrac{ac}{\left(b+c\right)\left(b+a\right)}+\dfrac{ab}{\left(c+a\right)\left(c+b\right)}\ge\dfrac{2\left(a^2+b^2+c^2\right)+ab+bc+ca}{2\left(a^2+b^2+c^2\right)+2\left(ab+bc+ca\right)}\)
cho a,b,c.>0 thoả mãn ab+bc+ac=1. CMR
\(\left(1+a\right)^2\left(1+b\right)^2\left(1+c\right)^2+\left(1-a\right)^2\left(1-b\right)^2\left(1-c\right)^2\ge8\sqrt{3}abc\)
Cho a,b,c >0 CMR : \(\frac{c\left(ab+1\right)^2}{b^2\left(bc+1\right)}+\frac{a\left(bc+1\right)^2}{c^2\left(ac+1\right)}+\frac{b\left(ac+1\right)^2}{a^2\left(ab+1\right)}\ge6\)
Đặt \(A=\frac{c\left(ab+1\right)^2}{b^2\left(bc+1\right)}+\frac{a\left(bc+1\right)^2}{c^2\left(ca+1\right)}+\frac{b\left(ca+1\right)^2}{a^2\left(ab+1\right)}\) và \(x=ab+1;\) \(y=bc+1;\) \(z=ca+1\) \(\left(\text{*}\right)\)
Khi đó, với các giá trị tương ứng trên thì biểu thức \(A\) trở thành: \(A=\frac{cx^2}{b^2y}+\frac{ay^2}{c^2z}+\frac{bz^2}{a^2x}\)
Áp dụng bất đẳng thức Cauchy cho bộ ba phân số không âm của biểu thức trên (do \(a,b,c>0\)), ta có:
\(A=\frac{cx^2}{b^2y}+\frac{ay^2}{c^2z}+\frac{bz^2}{a^2x}\ge3\sqrt[3]{\frac{cx^2}{b^2y}.\frac{ay^2}{c^2z}.\frac{bz^2}{a^2z}}=3\sqrt[3]{\frac{xyz}{abc}}\) \(\left(\text{**}\right)\)
Mặt khác, do \(ab+1\ge2\sqrt{ab}\) (bất đẳng thức AM-GM cho hai số \(a,b\) luôn dương)
nên \(x\ge2\sqrt{ab}\) \(\left(1\right)\) (theo cách đặt ở \(\left(\text{*}\right)\))
Hoàn toàn tương tự với vòng hoán vị \(a\) \(\rightarrow\) \(b\) \(\rightarrow\) \(c\) và với chú ý cách đặt ở \(\left(\text{*}\right)\), ta cũng có:
\(y\ge2\sqrt{bc}\) \(\left(2\right)\) và \(z\ge2\sqrt{ca}\) \(\left(3\right)\)
Nhân từng vế \(\left(1\right);\) \(\left(2\right)\) và \(\left(3\right)\), ta được \(xyz\ge2\sqrt{ab}.2\sqrt{bc}.2\sqrt{ca}=8abc\)
Do đó, \(3\sqrt[3]{\frac{xyz}{abc}}\ge3\sqrt[3]{\frac{8abc}{abc}}=3\sqrt[3]{8}=6\) \(\left(\text{***}\right)\)
Từ \(\left(\text{**}\right)\) và \(\left(\text{***}\right)\) suy ra được \(A\ge6\), tức \(\frac{c\left(ab+1\right)^2}{b^2\left(bc+1\right)}+\frac{a\left(bc+1\right)^2}{c^2\left(ca+1\right)}+\frac{b\left(ca+1\right)^2}{a^2\left(ab+1\right)}\ge6\) (điều phải chứng minh)
Dấu \("="\) xảy ra \(\Leftrightarrow\) \(a=b=c=1\)
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frac{1}{a}+frac{1}{b}+frac{1}{c}-frac{9}{a+b+c}0frac{bc}{abc}+frac{ac}{bca}+frac{ab}{cab}-frac{9abc}{left(a+b+cright)abc}0left(A+b+cright)bc+left(a+b+cright)ac+left(a+b+cright)ab-9abc0b^2c+c^2b+abc+a^2c+c^2a+abc+a^2b+b^2a+abc-9abc0b^2c+c^2b+a^2c+c^2a+a^2b+b^2a-6abc0cleft(b^2+a^2right)+bleft(c^2+a^2right)+aleft(c^2+b^2right)-6abc0cleft(b^2+a^2-2abright)+bleft(c^2-2ac+a^2right)+aleft(c^2+2cb+b^2right)0cleft(b-aright)^2+bleft(c-aright)^2+aleft(c-bright)^20
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\(\frac{1}{a}+\frac{1}{b}+\frac{1}{c}-\frac{9}{a+b+c}=0\)
\(\frac{bc}{abc}+\frac{ac}{bca}+\frac{ab}{cab}-\frac{9abc}{\left(a+b+c\right)abc}=0\)
\(\left(A+b+c\right)bc+\left(a+b+c\right)ac+\left(a+b+c\right)ab-9abc=0\)
\(b^2c+c^2b+abc+a^2c+c^2a+abc+a^2b+b^2a+abc-9abc=0\)
\(b^2c+c^2b+a^2c+c^2a+a^2b+b^2a-6abc=0\)
\(c\left(b^2+a^2\right)+b\left(c^2+a^2\right)+a\left(c^2+b^2\right)-6abc=0\)
\(c\left(b^2+a^2-2ab\right)+b\left(c^2-2ac+a^2\right)+a\left(c^2+2cb+b^2\right)=0\)
\(c\left(b-a\right)^2+b\left(c-a\right)^2+a\left(c-b\right)^2=0\)
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65. Phân tích đa thức thành nhân tửa) ableft(a+bright)-bcleft(b+cright)+acleft(a-cright)b) aleft(b^2+c^2right)+bleft(c^2+a^2right)+cleft(a^2+b^2right)+2abcc) left(a+bright)left(a^2-b^2right)+left(b+cright)left(b^2+c^2right)+left(c+aright)left(c^2+a^2right)d) a^3left(b-cright)+b^3left(c-aright)+c^3left(a-bright)e) a^3left(c-b^2right)+b^3left(a-c^2right)+c^3left(b-a^2right)+abcleft(abc-1right)
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65. Phân tích đa thức thành nhân tử
a) \(ab\left(a+b\right)-bc\left(b+c\right)+ac\left(a-c\right)\)
b) \(a\left(b^2+c^2\right)+b\left(c^2+a^2\right)+c\left(a^2+b^2\right)+2abc\)
c) \(\left(a+b\right)\left(a^2-b^2\right)+\left(b+c\right)\left(b^2+c^2\right)+\left(c+a\right)\left(c^2+a^2\right)\)
d) \(a^3\left(b-c\right)+b^3\left(c-a\right)+c^3\left(a-b\right)\)
e) \(a^3\left(c-b^2\right)+b^3\left(a-c^2\right)+c^3\left(b-a^2\right)+abc\left(abc-1\right)\)