大师作文网球面x方 y方 z方=4与抛物面x方 y方=3z所围成的面积
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即y=3x/2z=2x代入原式=(5x²+9x²/2-4x²)/(2x²-27x²/4-4x²)=(11x²/2)/(-35x&#
因为3x方+xy-2y方=0,即(x+y)(3x-2y)=0,而x+y≠0,所以3x-2y=0原式=[(x+y)^2-4xy]/[(x+3y)(x-y)/(x+3y)(x-3y)=(x-3y)/(x+
(x+y+z)^3-x^3-y^3-z^3=(x+y+z)^3-x^3-(y^3+z^3)=(x+y+z-x)[(x+y+z)^2+x(x+y+z)+x^2]-(y+z)(y^2-yz+z^2)=(y
令x/2=y/3=z/4=kx=2ky=3kz=4k(xy+yz+zx)/(5x^2+3y^2+z^2)=(2k*3k+3k*4k+4k*2k)/[5*(2k)^2+3*(3k)^2+(4k^2)]=
请采纳,谢谢!
y^2≥0,又y^2=4x,因此4x≥0x≥0y^2=4x代入z=x^2+y^2/2+3z=x^2+y^2/2+3=x^2+2x+3=(x+1)^2+2当x=0时,z有最小值=1^2+2=3
再答:再答:有不懂之处请追问,望采纳。
先转化到2个未知数用另外一个未知数表示,然后代入求值4x-3y-6z=0x+2y-7z=0解得x=3zy=2z(2x²+3y²+6z²)/(x²+5y²
x^3+y^3+z^3-3xyz=(x+y+z)(x^2+y^2+z^2-xy-yz-zx)=(x+y+z)[(x-y)^2+(y-z)^2+(z-x)^2]/2≥0x^3+y^3+z^3≥3xyz
1.(x-3)方-9+(y+2)方-4+12=0即(x-3)方+(y+2)方=1,是以圆心在(3,-2),半径为1的圆2.(x-7)方-49+(y-1)方-1+14=0即(x-7)方+(y-1)方=3
x²y³z∧M=x²y³z∧4∴M=4
(X+Y+Z)²=X²+Y²+Z²+2(XY+YZ+XZ)X²+Y²+Z²=10²-2×8=84
再问:最后一道题是加2的2n次方再答:那n就等于1嘛:)再问:到底是??把过程再发一下呗?谢谢再答:
z方=2x方y方
x^2-4x(y+z)^2+4(y+z)^2=[x-2(y+z)]^2=(x-2y-2z)^2
3x-4y=z,2x+y=8z,解得:x=3z,y=2zxy+yz分之x二次方+y二次方-z二次方=(x^2+y^2-z^2)/(xy+yz)=(9z^2+4z^2-z^2)/(6z^2+2z^2)=
x^2+y^2+z^2-2x+4y+6z+14=0x^2-2x+1+y^2+4y+4+z^2+6z+9=0(x-1)^2+(y+2)^2+(z+3)^2=0x=1y=-2z=-3
z=2-(x^2+y^2)z'x=-2xz'y=-2ydS=√(1+4x^2+4y^2)dxdy,∑在xoy平面的投影x^2+y^2=2A=∫∫√(1+4x^2+4y^2)dxdy(下面用极坐标=∫(
有10件产品,其中8件正品,2件次品,甲乙先后各取一件,求甲先抽到正品条件下,已抽到正品的概率?这个有答案吗?