大师作文网求微分方程 xy=y x^2
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∵x+y=4,xy=3,∴原式=x2+y2xy=(x+y)2−2xyxy=16−63=103.
dy/dx=(1+y^2)/(xy)[y/(1+y^2)]dy=dx/x两边积分得1/2[ln(1+y^2)]+c1=ln|x|+c2,c1,c2为任意常数两边都以e为底数得1+y^2=cx^2,c为
∵(y^2+xy^2)dx+(x^2-yx^2)dy=0==>y²(1+x)dx+x²(1-y)dy=0==>[(y-1)/y²]dy=[(1+x)/x²]dx
先求dy/dx+2xy=0的解:dy/y=-2xdx,--->lny=-x^2+C=-ln(e^(x^2))+lnC=ln(C*e^(-x^2)),即y=C*e^(-x^2).然后令y=C(x)*e^
=xy-3xy+2xy-xy=-xy
原式=[(x+y)2(x-y)(x+y)+-4xy(x-y)(x+y)]×(x+3y)(x-3y)(x+3y)(x-y)=x-3yx+y,由已知得(3x-2y)(x+y)=0,因为x+y≠0,所以3x
分离变量经济数学团队为你解答,有不清楚请追问.请及时评价.再问:图片看不见啊再答:我再发一次再答:
因为y=3xy+x,所以x-y=-3xy,当x-y=-3xy时,2x+3xy−2yx−2xy−y=2(x−y)+3xy(x−y)−2xy=2(−3xy)+3xy−3xy−2xy=35.
1/ydy=2xdx两边积分∫1/ydy=∫2xdxln|y|=x^2+C',y=±e^C'e^(x^2)=Ce^(x^2)
∵x-y=4xy,∴2x+3xy-2yx-2xy-y=2(x-y)+3xyx-y-2xy=8xy+3xy4xy-2xy=112.故答案为:112.
两边对x求导得y'x^2+2xy+2y^3+4xy^2y'=0解出来y'就可以了再问:4xy^2y'为什么是4xy再答:搞错了,应该是6xy^2y'再问:yx^2+2xy^3+3=-18上点(1,-2
3xy-3xy-xy+2yx=-xy+2xy=xy
2x2-xy-3y2=0,(2x-3y)(x+y)=0,解得:2x-3y=0或x+y=0(分母为0,舍去),解得:x=3y2,则x−yx+y=3y2−y3y2+y=y5y=15.
dy/dx=(1+y^2)/[xy(1+x^2)]y/(1+y^2)dy=dx/[x(1+x^2)]2y/(1+y^2)dy=2xdx[x^2(1+x^2)]d(y^2)/(1+y^2)=d(x^2)
再问:亲。还有几道提问的帮忙看看吧。谢谢再问:帮忙看一下好吗。谢谢。求下列可分离变量的微分方程的通xy'-ylny=0
楼上说的对但用分离变量法会更容易理解dy/dx=2x(2-y)dy/(2-y)=2xdx两边积分得:-ln|2-y|=x^2+c1y=2+ce^(-x^2)
再问:多谢!!!
令f(x)=x*y'f'=y'+xy''xf'=xy'+x^2y''=1f'=1/xf=lnx+c1xy'=lnx+c1y'=lnx(1/x)+c1/xy=1/2*(lnx)^2+c1*lnx+c2再
即(10x+y)*(10y+x)=2268101xy+10x²+10y²=2268因为后面的10x²+10y²只可能是整十的数,所以2268中的个位8要靠101