\(\Delta'=\left(m-3\right)^2-\left(-6m-7\right)=m^2+16>0\)

Vậy pt có 2 nghiệm pb 

Theo Vi et \(\left\{{}\begin{matrix}x_1+x_2=2\left(m-3\right)\\x_1x_2=-6m-7\end{matrix}\right.\)

\(C=4\left(m-3\right)^2+8\left(-6m-7\right)\)

\(=4m^2-24m+36-48m-56=4m^2-72m-20\)

\(=4\left(m^2-18m+81-81\right)-20=4\left(m-9\right)^2-344\ge-344\)

Dấu ''='' xảy ra khi m = 9 

đã hết đâu bn

còn nhỏ nhất = bao nhiêu khi nào nx mà

\(x^2-2\left(m+1\right)x+3\left(m+1\right)-3=0\)

\(x^2-2nx+3n+3=\left(x-n\right)^2-\left(n^2-3n+3\right)=0\)\(\left(x-n\right)^2=\left(n-\frac{3}{2}\right)^2+\frac{3}{4}=\frac{\left(2n-3\right)^2+3}{4}>0\forall n\) vậy luôn tồn tại hai nghiệm

\(\orbr{\begin{cases}x_1=\frac{n-\sqrt{\left(2n-3\right)^2+3}}{2}\\x_2=\frac{n+\sqrt{\left(2n-3\right)^2+3}}{2}\end{cases}}\)

a) \(\frac{x_1}{x_2}=\frac{4x_1-x_2}{x_1}\Leftrightarrow\frac{x_1^2-4x_1x_2+x_2^2}{x_1x_2}=0\)

\(x_1x_2=n^2-\frac{\left(2n-3\right)^2+3}{4}=\frac{4n^2-4n^2+12n-9-3}{4}=3n-3\)

với n=1 hay m=0 : Biểu thức cần C/m không tồn tại => xem lại đề

\(\Delta=4m^2-4m+1-4\left(2m-2\right)=4m^2-12m+9=\left(2m-3\right)^2\ge0\)

Do đó pt luôn có nghiệm

Theo định lí Vi-ét:

\(\left\{{}\begin{matrix}x_1+x_2=2m-1\\x_1x_2=2m-2\end{matrix}\right.\)

Lại có: \(A=x_1^2+x_2^2=\left(x_1+x_2\right)^2-2x_1x_2\)

\(A=\left(2m-1\right)^2-2\left(2m-2\right)\)           

\(A=4m^2-4m+1-4m+4\)

\(A=4m^2-8m+5\)

\(A=4\left(m-1\right)^2+1\ge1\)

Dấu "=" xảy ra \(\Leftrightarrow\) m=1

Tick hộ nha 😘

pt có nghiệm \(< =>\Delta\ge0\)

\(< =>[-\left(2m-1\right)]^2-4\left(2m-2\right)\ge0\)

\(< =>4m^2-4m+1-8m+8\ge0\)

\(< =>4m^2-12m+9\ge0\)

\(< =>4\left(m^2-3m+\dfrac{9}{4}\right)\ge0\)

\(=>m^2-2.\dfrac{3}{2}m+\dfrac{9}{4}\ge0< =>\left(m-\dfrac{2}{3}\right)^2\ge0\)(luôn đúng)

=>pt luôn có 2 nghiệm 

theo vi ét \(=>\left\{{}\begin{matrix}x1+x2=2m-1\\x1x2=2m-2\end{matrix}\right.\)

\(A=\left(x1+x2\right)^2-2x1x2=\left(2m-1\right)^2-2\left(2m-2\right)\)

\(A=4m^2-4m+1-4m+4=4m^2+5\ge5\)

dấu"=" xảy ra<=>m=0

a: \(\text{Δ}=\left[-\left(m+3\right)\right]^2-4\cdot2\cdot m\)

\(=\left(m+3\right)^2-8m\)

\(=m^2-2m+9=\left(m-1\right)^2+8>0\forall m\)

=>Phương trình (1) luôn có hai nghiệm phân biệt

b: Theo Vi-et, ta có:

\(\left\{{}\begin{matrix}x_1+x_2=-\dfrac{b}{a}=\dfrac{m+3}{2}\\x_1\cdot x_2=\dfrac{c}{a}=\dfrac{m}{2}\end{matrix}\right.\)

\(A=\left|x_1-x_2\right|=\sqrt{\left(x_1-x_2\right)^2}\)

\(=\sqrt{\left(x_1+x_2\right)^2-4x_1x_2}\)

\(=\sqrt{\dfrac{1}{4}\left(m+3\right)^2-4\cdot\dfrac{m}{2}}\)

\(=\sqrt{\dfrac{1}{4}\left(m^2+6m+9\right)-2m}\)

\(=\sqrt{\dfrac{1}{4}m^2+\dfrac{3}{2}m+\dfrac{9}{4}-2m}\)

\(=\sqrt{\dfrac{1}{4}m^2-\dfrac{1}{2}m+\dfrac{9}{4}}\)

\(=\sqrt{\dfrac{1}{4}\left(m^2-2m+9\right)}\)

\(=\sqrt{\dfrac{1}{4}\left(m^2-2m+1+8\right)}\)

\(=\sqrt{\dfrac{1}{4}\left(m-1\right)^2+2}>=\sqrt{2}\)

Dấu '=' xảy ra khi m-1=0

=>m=1

\(\left\{{}\begin{matrix}x_1+x_2=\dfrac{20a-11}{2012}\\x_1x_2=-1\end{matrix}\right.\)

\(P=\dfrac{3}{2}\left(x_1-x_2\right)^2+2\left(\dfrac{x_1-x_2}{2}-\dfrac{x_1-x_2}{x_1x_2}\right)^2\)

\(=\dfrac{3}{2}\left(x_1-x_2\right)^2+2\left(x_1-x_2\right)^2\left(\dfrac{1}{2}-\dfrac{1}{x_1x_2}\right)^2\)

\(=\dfrac{3}{2}\left(x_1-x_2\right)^2+2\left(x_1-x_2\right)^2\left(\dfrac{1}{2}+1\right)^2\)

\(=6\left(x_1-x_2\right)^2=6\left(x_1+x_2\right)^2-24x_1x_2\)

\(=6\left(\dfrac{20a-11}{2012}\right)^2+24\ge24\)

Dấu "=" xảy ra khi \(a=\dfrac{11}{20}\)

Đăng lại lớp đi chụy :)

Ấn nhầm kk

\(\text{Δ}=\left(2m-2\right)^2-4\left(m-5\right)\)

=4m^2-8m+4-4m+20

=4m^2-12m+24

=4m^2-12m+9+15

=(2m-3)^2+15>0

=>PT luôn có hai nghiệm

A=(x1+x2)^2-2x1x2

=(2m-2)^2-2(m-5)

=4m^2-8m+4-2m+10

=4m^2-10m+14

=4(m^2-5/2m+7/2)

=4(m^2-2*m*5/4+25/16+31/16)

=4(m-5/4)^2+31/4>=31/4

Dấu = xảy ra khi m=5/4

Ty

a, Khi m=2, phương trình trở thành:

\(2x^2-5x+2=0\)

\(\Leftrightarrow\left(2x-1\right)\left(x-2\right)=0\)

\(\Leftrightarrow\left[{}\begin{matrix}x=\dfrac{1}{2}\\x=2\end{matrix}\right.\)

Vậy với m=2, phương trình có nghiệm \(x=\dfrac{1}{2};x=2\)

b, \(\Delta=\left(m+3\right)^2-8m=m^2-2m+9=\left(m-1\right)^2+8>0,\forall m\)

\(\Rightarrow\) Phương trình đã cho có nghiệm với mọi m

Theo định lí Vi-et: \(\left\{{}\begin{matrix}x_1+x_2=\dfrac{m+3}{2}\\x_1x_2=\dfrac{m}{2}\end{matrix}\right.\)

\(\Leftrightarrow\left\{{}\begin{matrix}x_1^2+x_2^2+2x_1x_2=\dfrac{m^2+6m+9}{4}\\4x_1x_2=2m\end{matrix}\right.\)

\(\Rightarrow\left(x_1-x_2\right)^2=\dfrac{m^2-2m+9}{4}\)

\(\Rightarrow A=\left|x_1-x_2\right|=\dfrac{\sqrt{m^2-2m+9}}{2}=\dfrac{\sqrt{\left(m-1\right)^2+8}}{2}\ge\sqrt{2}\)

\(\Rightarrow minA=\sqrt{2}\Leftrightarrow m=1\)

 pt: \(2x^2-\left(m+3\right)x+m=0\left(1\right)\)

a, khi m=2 ta có: \(2x^2-5x+2=0\)(2)

\(\Delta=\left(-5\right)^2-4.2.2=9>0\)

vậy pt(2) có 2 nghiệm phan biệt \(x3=\dfrac{5+\sqrt{9}}{2.2}=2\)

\(x4=\dfrac{5-\sqrt{9}}{2.2}=0,5\)

b,từ pt(1) có \(\Delta=\left[-\left(m+3\right)\right]^2-4m.2=m^2+6m+9-8m\)

\(=m^2-2m+9=\left(m-1\right)^2+8>0\left(\forall m\right)\)

vậy \(\forall m\) pt(1) luôn có 2 nghiệm phân biệt x1,x2

điều kiện để pt(1) có 2 nghiệm phân biệt không âm khi

\(\left\{{}\begin{matrix}\Delta>0\\S>0\\P>0\end{matrix}\right.< =>\left\{{}\begin{matrix}\Delta>0\left(cmt\right)\\x1+x2>0\\x1.x2>0\end{matrix}\right.< =>\left\{{}\begin{matrix}\dfrac{m+3}{2}>0\\\dfrac{m}{2} >0\end{matrix}\right.\)\(< =>\left\{{}\begin{matrix}m>-3\\m>0\end{matrix}\right.\)

\(< =>m>0\)

theo vi ét =>\(\left\{{}\begin{matrix}x1+x2=\dfrac{m+3}{2}\\x1.x2=\dfrac{m}{2}\end{matrix}\right.\)

\(=>A=\left|x1-x2\right|\)

\(=>A=\sqrt{\left(x1-x2\right)^2}=\sqrt{\left(x1+x2\right)^2-4x1x2}\)

\(A=\sqrt{\left(\dfrac{m+3}{2}\right)^2-4\dfrac{m}{2}}=\sqrt{\dfrac{m^2+6m+9-8m}{4}}\)

\(A=\sqrt{\dfrac{\left(m-1\right)^2+8}{4}}=\dfrac{1}{2}\sqrt{\left(m-1\right)^2+8}\)\(\ge\sqrt{2}\)=>Min A=\(\sqrt{2}\)

dấu = xảy ra <=>m=1(TM)