Cho các số dương a;b;c thỏa mãn $a+b+c\leq$3. Chứng minh rằng:
$\frac{1}{a^{2}+b^{2}+c^{2}}+\frac{2009}{ab+bc+ca}\geq670$
hk..luc dau de saj..mjk ms sua laj –  trilac2013 15-06-14 09:34 PM
đề k sai đâu –  ♥♥♥ Panda Sơkiu Panda Mập ♥♥♥ 15-06-14 09:31 PM
đúng đấy –  ♥♥♥ Panda Sơkiu Panda Mập ♥♥♥ 15-06-14 09:28 PM
Đề sai rồi, a=1, b=1, c=1 thì VT = 2/3 sao lớn hơn 670 được –  diendien_01 14-06-14 10:46 PM
Ta có: $9\ge (a+b+c)^2\ge 3(ab+bc+ca)\implies ab+bc+ca\le 3$. Nên:  
$VT=\dfrac{1}{a^2+b^2+c^2}+\dfrac{1}{ab+bc+ca}+\dfrac{1}{ab+bc+ca}+\dfrac{2007}{ab+bc+ca} \\ \ge \dfrac{9}{(a+b+c)^2}+\dfrac{2007}{ab+bc+ca}\ge \dfrac{9}{3^2}+\dfrac{2007}{3}=670. \blacksquare$

đề thi vào trường chuyên Trần Phú Hải Phòng năm $2009$


em xem tại đây nhé.

http://zuni.vn/hoi-dap-chi-tiet/43596
em nhan V va vote up cho chi nhe –  ♥♥♥ Panda Sơkiu Panda Mập ♥♥♥ 15-06-14 09:33 PM

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