Câu hỏi của Nguyễn Nhã Hiếu

Question

Cho x,y,z dương thỏa mãn

$\dfrac{16}{x+24}+\dfrac{25}{y+16}+\dfrac{9}{z+4}$ ≤1

Tìm min $x+y+z+\dfrac{1}{x+y+z}$

nguyễn viết hoàng · Accepted Answer

mình k ghi lại đề nữa ta có

$1\ge\dfrac{4^2}{x+24}+\dfrac{5^2}{y+16}+\dfrac{3^2}{z+4}\ge\dfrac{\left(4+5+3\right)^2}{x+y+z+24+16+4}=\dfrac{12^2}{x+y+z+44}$

=>x+y+z+44>=12^2=144=> x+y+z=100

đặt x+y+z=a(a>=100)

$x+y+z+\dfrac{1}{x+y+z}=a+\dfrac{1}{a}=\dfrac{a}{10000}+\dfrac{1}{a}+\dfrac{9999a}{10000}\ge\dfrac{2}{100}+\dfrac{9999a}{10000}$

do a>=100 nên

$a+\dfrac{1}{a}\ge\dfrac{2}{100}+\dfrac{9999}{100}=\dfrac{10001}{100}$ khi a= 100 hay x+y+z=100Câu trả lời: mình k ghi lại đề nữa ta có

$1\ge\dfrac{4^2}{x+24}+\dfrac{5^2}{y+16}+\dfrac{3^2}{z+4}\ge\dfrac{\left(4+5+3\right)^2}{x+y+z+24+16+4}=\dfrac{12^2}{x+y+z+44}$

=>x+y+z+44>=12^2=144=> x+y+z=100

đặt x+y+z=a(a>=100)

$x+y+z+\dfrac{1}{x+y+z}=a+\dfrac{1}{a}=\dfrac{a}{10000}+\dfrac{1}{a}+\dfrac{9999a}{10000}\ge\dfrac{2}{100}+\dfrac{9999a}{10000}$

do a>=100 nên

$a+\dfrac{1}{a}\ge\dfrac{2}{100}+\dfrac{9999}{100}=\dfrac{10001}{100}$ khi a= 100 hay x+y+z=100

Violympic toán 9