Solve (x^2-yz)p+(y^2-zx)q=z^2-xy
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Here p=∂z∂x and q=∂z∂y Lagrange's equations are dxx2−yz=dyy2−zx=dzz2−xy Let the general solution be ϕ(C1,C2)=0 By Choosing multipliers ...
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Answer:
ere p=∂z∂x and q=∂z∂y
Lagrange's equations are dxx2−yz=dyy2−zx=dzz2−xy
Let the general solution be ϕ(C1,C2)=0
By Choosing multipliers x,y,z and 1,1,1 we get C1 as below.
xdx+ydy+zdzx3+y3+z3−3xyz=dx+dy+dzx2+y2+z2−xy−yz−zx
xdx+ydy+zdz(x+y+z)(x2+y2+z2−xy−yz−zx)=dx+dy+dzx2+y2+z2−xy−yz−zx
xdx+ydy+zdzx+y+z=dx+dy+dz
xdx+ydy+zdz=(x+y+z)d(x+y+z)
x22+y22+z22=(x+y+z)22+C
x2+y2+z2−(x+y+z)2=C1
Now I am not able to find C2. The answer given in the textbook is (x−y)(xy+yz+zx)+y−z=0
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