作业帮∫∫√(4-x^2-y^2)
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写清楚点点比如说前面是X/X还是X/(X-Y)打上括号分段这样才能清楚的做
你得先把积分区域画出来,然后看图改变积分顺序.积分区域是y=x,y=√x,和y=2围成的区域.所以原式=∫(1,2)dy∫(y,y∧2)sin(πx/2y)dx=(4π8)/π∧3
(x-y)(z+y-x+y+2y)÷4y=(x-y)(z-x+4y)÷4y{(x+y)(x-y)-(x-y)的2次方+2y(x-y)}除以4y=(x-y)(x+y-x+y+2y)÷4y=(x-y)(4
(2x+y)(2x-3y)+x(2y+y)=(2y+y)(2x-3y+x)=(2y+y)(3x-3y)=3(2y+y)(x-y)2a(x-y)-4b(x-y)=2(x-y)(a-2b)
(x^2-y^2)/(x+y)-(4x(x-y)+y^2)/(2x-y)=(x-y)(x+y)/(x+y)-(4x^2-4xy+y^2)/(2x-y)=(x-y)-(2x-y)^2/(2x-y)=(x
绝对值和开根号都是大于等于0的,他两相加等于0说明都是0,分别算就行了,xy都是0
(x²-4x+4)+(y²-2y+1)=0→(x-2)²+(y-1)²=0→x=2,y=1原式=(√2+1)/2
x=rcosθy=rsinθ∫∫(D)arctany/xdxdy=∫∫(D')arctan(sinθ/cosθ)rdrdθ其中D':1
4x^2+y^2-4xy-4(x^2-xy+2xy-2y^2)展开化简吧!
4x(y-x)-y²=4xy-4x²-y²=-(4x²-4xy+y²)=-(2x-y)²很高兴为您解答,【the1990】团队为您答题.请点
1)(2x+5y)(2x-5y)(-4x^2-25y^2)=-(4x^2-25y^2)(4x^2+25y^2)=-(16x^4-625y^4)=625y^4-16x^42)[(x+y)(x-y)-(x
(2x-y)²-4(x-y)(x+y)=(4x²-4xy+y²)-4(x²-y²)=4x²-4xy+y²-4x²+4y&
因为√x(√x+2√y)=√y(6√x+5√y),所以x+2√(xy)=6√(xy)+5y,所以x-4√(xy)-5y=0,所以(√x+√y)(√x-5√y)=0,所以√x+√y=0或√x-5√y=0
直接用常规积分解比较繁琐,而且涉及到特殊形式积分,改为(r,θ)坐标,即∫∫4r^2drdθ,其中θ积分限为(0,2π),r为(0,1),这样积分得8/3πr^3|(0,1),结果为8/3π
利用格林公式:∮cP(x,y)dx+Q(x,y)dy=∫∫D(dQ/dx-dP/dy)dxdy首先需要构造封闭曲线.∫(x沿半圆周y=√2x-x^2从2积到0)(e^xsiny-y)dx+(e^xco
“4y^2/x-y”应该是“4y^2/x-2y”吧x+2y+4y^2/x-2y+4x^2y/4y^2-x^2=(x+2y)+4y^2/(x-2y)+4x^2y/(2y-x)(2y+x)=(x+2y)+
x=rcost,y=rsint,代入方程得r^2
x^2+y^2=x+y化成标准式(x-1/2)^2+(y-1/2)^2=1/2x=1/2+rcosαy=1/2+rsinαα∈[0,2π]r∈[0,√2/2]∫∫(x+y)dxdy=∫∫(1+rcos
原式等于2x^2-xy+6xy-3y^2-8x+4y=2x^2+5xy-3y^2-8x+4y