依题意,有y>0, y">0, y(1)=1, y'(1)=0
P(a,y(a))处曲率K=y"/(1+y'^2)^(3/2)
法线: y=-1/y'(a)*(x-a)+y(a)
Q点:y=0, x=a+y(a)y'(a)
PQ=[(y(a)y'(a))^2+y(a)^2]^(1/2)=y(1+y'^2)^(1/2)
由K=1/PQ
得:y"=(1+y'^2)/y
令p=y',则y"=pdp/dy, 方程化为:
pdp/dy=(1+p^2)/y
d(p^2)/(1+p^2)=2dy/y
ln(1+p^2)=2lny+c1
1+p^2=cy^2
代入y(1)=1, y'(1)=0, 得:1+0=c,得:c=1
故dy/dx=p=√(y^2-1)
dy/√(y^2-1)=dx
令y = secu, √(y^2-1) =tanu ,dy = secu tanu du
代入得:secu du=dx
积分:ln|secu+tanu|=x+C1
secu+tanu=Ce^x
y+√(y^2-1)=Ce^x
代入y(1)=1,得:1+0=Ce,得:C=1/e
所以曲线为:y+√(y^2-1)=e^(x-1)
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