神马作文网x根号2-17x=60
来源:学生作业帮助网 编辑:作业帮 时间:2024/11/10 08:59:28
首先须满足2x-1>=0,即x>=1/2方程右边mx>=0,所以也有m>=0方程两边平方,因[x+√(2x-1)][x-√(2x-1)]=x^2-2x+1=(x-1)^2,得:2x+2|x-1|=m^
X-1>=0X>=12X-3>=0X>=3/23X-5>=0X>=5/34X-7>=0X>=7/45X-6>=0X>=6/5综合得X>=7/4观察可得X=2
y=根号(x-8)+根号(8-x)+18,x-8≥0,8-x≥0x=8,y=18[(x+y)/(根号x+根号y)]-2xy/(x根号y-y根号x)=26/(2√2+3√2)-288/(8*3√2-18
根据根号x大于零,根号x-2大于零得x大于等于零x大于等于二,大大取大,选B.
根号内必须大于等于0故有x-1≥0且1-x≥0即x≥1且x≤1所以x=1将x=1代回去得y=3然后将x,y代入所求式即可你的所求式表述不是很清楚,所以没办法帮你求了
x+根号x+根号(x+2)+根号(x^2+2x)=根号x(根号x+1)+根号(x+2)(根号x+1)=(根号x+1)(根号x+根号(x+2))=3两边同时乘以(根号(x+2)-根号x)得(根号x+1)
根号3X=根号2【x+1】【x-1】3X=2(X^2-1)2X^2-3X-2=0(X-2)(2X+1)=0X1=2X2=-1/2(不合题意,舍去)
1、x-2≥02-x≥0∴x=2不关于原点对称非奇非偶2、1-x^2≥0x^2-1≥0∴x=1或-1f(x)-f(-x)=0且f(x)+f(-x)=0所以既奇又偶3、x≠0f(x)+f(-x)=0∴奇
(根号y/根号x-根号y)-(根号y/根号x+根号y)={根号y(根号x+根号y)}/(x-y)-{根号y(根号x-根号y)}/(x-y)=(y+y)/(x-y)因为x=2y所以原式=2y/y=2
原式=[(√x-√y)²+(√x+√y)²]/(√x+√y)(√x-√y)=(x+y-2√xy+x+y+2√xy)/(x-y)=2(x+y)/(x-y)=2(2+√3)/(2-√3
√x+√(x+7)+2√(x^2+7x)=35-2x√x+√(x+7)+2√(x(x+7))=35-2x2x+2√(x(x+7))+(√x+√(x+7))=35x+2√x√(x+7)+(x+7)+(√
((x-y)/(√x+√y))-(x+y-2√xy)/(√x-√y),分母有理化,第一个式子分母乘以√x-√y,又(x+y-2√xy)=(√x-√y)(√x-√y),所以原式等于√x-√y-(√x-√
答案为1.直接展开啊
原式=√y/(√2y-√y)-√y/(√2y+√y)=√y/[√y(√2-1)]-√y/[√y(√2+1)]=1/(√2-1)-1/(√2+1)=(√2+1)/(√2+1)(√2-1)-(√2-1)/
[x+2√(x-1)]=[√(x-1)+1]^2[x-2√(x-1)]=[√(x-1)-1]^2x-1>=0x>=1y=√[x+2√(x-1)]+√[x-2√(x-1)]=√(x-1)+1+|√(x-
因为根号(-x^2)有意义,则x=0所以答案为1-4+0+2=-1