#dy/dx = sqrt(x/y)# ?
2 Answers
Explanation:
We have the differential equation:
#dy/dx=sqrtx/y#
Use separation of variables to get
#ycolor(white).dy=sqrtxcolor(white).dx#
Now integrate both sides:
#intycolor(white).dy=intx^(1//2)color(white).dx#
#1/2y^2=1/(3//2)x^(3//2)+C#
#1/2y^2=2/3x^(3//2)+C#
#y^2=4/3x^(3//2)+C#
(I'll just keep writing
#y=pmsqrt(4/3x^(3//2)+C)#
# y^(3/2) = x^(3/2) + C #
Explanation:
We have:
# dy/dx = sqrt(x/y) #
We can collect terms:
# dy/dx = sqrt(x)/sqrt(y) #
# sqrt(y) \ dy/dx = sqrt(x) #
Which is a Separable DE, so we can "separate the variables" to get
# int \ sqrt(y) \ dy = int \ sqrt(x) \ dx #
Now we can integrate:
# (y^(3/2))/(3/2) = (x^(3/2))/(3/2) + c #
Leading to the General Solution:
# y^(3/2) = x^(3/2) + C #
