y=根号x,y=2-x

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y=根号x,y=2-x
已知y=根号(x-8)+根号(8-x)+18,求代数式[(x+y)/(根号x+根号y)]-2xy/(x根号y-y根号x)

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

(1/2)已知实数x,y,a满足:根号(x+y-8)+根号(8-x-y)=根号(3x-y-a)+根号(x-2y+a+3)

原方程有意义则x+y-8≥0,8-x-y≥0,则8≥x+y≥8,则x+y=8则原方程为0=根号(3x-y-a)+根号(x-2y+a+3),则3x-y-a=0,x-2y+a+3=0又x+y=8联立解得x

已知实数x.y满足根号x+y-8+根号8-x-y=根号3x-y-a+根号x-2y+a+3

1.由题目有x+y-8>=08-x-y>=0所以x+y=82.由1知道√3x-y-a+√x-2y+a+3=0所以3x-y-a=0x-2y+a+3=0又x+y=8求出x=3y=5a=4很明显可以组成直角

已知2/x+2/y=根号24,求 x/y(x-y) - y/x(x-y)的值

2/x+2/y=根号24(2y+2x)/xy=2√6x+y=xy√6x/y(x-y)-y/x(x-y)=1/(x-y)[(x/y-y/x)]=1/(x-y)[(x²-y²)/xy]

已知2/x 2/y=根号24,求 x/y(x-y) - y/x(x-y)的值

你的题目有点问题我这样做了x/{y(x-y)}-y/{x(x-y)}=(x平方-y平方)/{xy(x-y)}=(x+y)/xy2/x+2/y=2(x+y)/xy=根号24

设x>1,y>0,若x^y+x^-y=2根号2,则x^y-x^-y等于

Dx^y+x^-y=2根号2===>(x^y+x^-y)^2=8===>x^2y+x^-2y+2=8===>x^2y+x^-2y=6(x^y-x^-y)^2=x^2y+x^-2y-2=6-2=4==>

已知y=根号1-x+根号x-1+3,求根号x+根号y分之x+2根号xy+y+根号x-根号y分之一的值

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

已知4x2+9y-4x-6y+2=0 求根号y/根号x+根号y - 根号y/根号x-根号y

因为4x^2+9y^2-4x-6y+2=0,所以4x^2-4x+19y^2-6y+1=0,(2x-1)^2+(3y-1)^2=0所以2x-1=0,3y-1=0,所以x=1/2.y=1/3所以根号y/(

已知实数x.y满足根号(x+y-8)+根号(8-x-y)=根号(3x-y-4)+根号(x-2y+7),求x,y

根号(x+y-8)+根号(8-x-y)=根号(3x-y-4)+根号(x-2y+7),根据二次根式有意义得:X+Y-8≥0,8-X-Y≥0,∴X+Y≥8,X+Y≤8,∴X+Y=8,左边为0,右边两个非负

(x+y)/(根号下x+根号下y)+2xy/(x根号下y+y根号下x)=______.

结果为根号下x+根号下y解2xy/(x根号下y+y根号下x)分母提公因式根号下xy然后前后两式分母都含根号下x+根号下y合并后约分得根号下x+根号下y

已知x =2y 化简(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)-(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

代数式求值.已知x=2,y=根号3,求 (根号x-根号y)/(根号x+根号y)+(根号x+根号y)/(根号x-根号y)

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

已知x、y为实数,且根号x²=根号3-根号2,根号y平方=根号2,x+y≠根号3,求x-y

|x|=根号3-根号2|y|=根号2当x,y同时为正时x=根号3-根号2y=根号2x+y=根号3题意x+y≠根号3所以不可能同时为正.当x正,y为负时x=根号3-根号2y=-根号2x+y=根号3-2根

{(x-y)/(根号x+根号y)}-(x+y-2倍根号xy)/(根号x-根号y)=?

((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-√

已知当x=8,y=18,求(x+y)/(根号x-根号y)-(2xy)/(x根号y-y根号x)

原式=(x+y)/(√x-√y)-(2xy)/(x√y-y√x)=(x+y)/(√x-√y)-(2xy)/[√(xy)(√x-√y)]=(x+y)/(√x-√y)-2√(xy)/(√x-√y)]=[(

已知x=2y,化简根号y/(根号x-根号y)-根号y/(根号x+根号y)

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 y a满足根号下x+y-8+根号下8-x-y=根号下3x-y-a+根号下x-2y+a+3

可以,而且还是经典的勾股三角呢先告诉你答案x=3,y=5,a=4理由:要使等号左边有意义,则x+y-8≥0且8-x-y≥0因此可以得到x+y=8-------------(1)且原式等号左边为0因此等