已知x1,x2是一元二次方程(a-6)x² 2ax a=0的两个
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利用两根和、两根积公式得x1+x2=-2/3,x1x2=-6/3=-2x1*x1+x1x2+x2*x2=x1*x1+2x1x2+x2*x2-x1x2=(x1+x2)^2-x1x2=(-2/3)^2+2
∵一元二次方程x2-4x+1=0的两个实数根是x1、x2,∴x1+x2=4,x1•x2=1,∴(x1+x2)2÷(1x1+1x2)=42÷x1+x2x1x2=42÷4=4.
2x1²+4x2²-6x2+2011=2x1²+2x2²+2x2²-6x2+2011=2(x1²+x2²)+2(x2²-
x1+x2=6∴x1²×x2²=115+x1+x2=115+6=121(x1×x2)²=121x1·x2=±11∴k=±11∵把k=11代入判别式:b²-4ac
由△=36-4k≥0得k≤9,∵x12x22-x1-x2=115,x12x22-(x1+x2)=115,k2-6=115,k2=121,解得k=-11,或k=11(不合题意舍去),得x12+x22=(
x1+x2=—b/a,x1乘x2=c/a先把式子代入x1乘x2+2(x1+x2)>0得(1-3m)/2+2>0解得m<5/3由于一元二次方程2x^2-2x+1-3m=0有实数根所以判别式≥0,4-4*
2x2-2x+3=02((x-1/2)^2+5/4)=0无解
x1+x2=4x1x2=1所以1/x1+1/x2=(x1+x2)/x1x2所以原式=(x1+x2)²*x1x2/(x1+x2)=x1x2(x1+x2)=1*4=4
△=b^2-4acx1=(-b+√△)/2a,x2=(-b-√△)/2ax1+x2=(-b+√△)/2a+(-b-√△)/2a=-2b/2a=-b/ax1x2=(-b+√△)/2a*(-b-√△)/2
解1由题知x1+x2=5/2,x1x2=1故x1^2x2+x1x2^2=x1x2(x1+x2)=1×(5/2)=5/2由x2/x1+x1/x2=x2^2/x1x2+x1^2/x1x2=(x2^2+x1
(1)根据题意得△=(-2)2-4×2×(m+1)≥0,解得m≤-12;(2)根据题意得x1+x2=1,x1x2=m+12,∵7+4x1x2>x12+x22,∴7+4x1x2>(x1+x2)2-2x1
∵方程2x2-2x+1-3m=0有两个实数根,∴△=4-8(1-3m)≥0,解得m≥16.由根与系数的关系,得x1+x2=1,x1•x2=1−3m2.∵x1•x2+2(x1+x2)>0,∴1−3m2+
解题思路:利用一元二次方程根与系数的关系求解。解题过程:最终答案:略
因为x1、x2是方程2X^2-2x+3m-1=0的根所以x1+x2=-(-2/2)=1x1*x2=(3m-1)/2又x1*x2/(x1+x2-4)
(1)∵x1,x2是方程x2-6x+k=0的两个根,∴x1+x2=6,x1x2=k,∵x12x22-x1-x2=115,∴k2-6=115,解得k1=11,k2=-11,当k1=11时,△=36-4k
友韦达定理可得x1+x2=-5/2,x1x2=-3/2(1)(x1-x2)^2=x1^2-2x1x2+x2^2=(x1+x2)^2-4x1x2=25/4+6=49/4所以|x1-x2|=7/2(2)1
(x1-1)(x2-1)=x1*x2-(x1+x2)+1因为x1+x2=-1/ax1*x2=1/a代入x1*x2-(x1+x2)+1整理得2/a+1