Kepler's Equation Solver

Solution of Kepler's equation
by Newton-Raphson Method

Here you can solve the Kepler's equation M = E-eSin(E) for an elliptical orbit. Given mean anomaly M and eccentricity e , you can solve for eccentric anomaly E. The ranges for e and M are [0,1] and [0,PI]. If M<0 , you can solve for E with |M| and associate a negative sign to the resulting solution.

Eccentricity 'e' of Orbit(in the range [0,1])
Mean anomaly M in degrees(in the range [0,180])
Epsilon

Eccentric Anomaly E in degrees:
Enter your comments/suggestions in the user book
Report all bugs to Sheela V.Belur at sbelur@capaccess.org

Solution of Kepler's equation by Newton-Raphson Method

Eccentricity 'e' of Orbit(in the range [0,1]) Mean anomaly M in degrees(in the range [0,180]) Epsilon .00001 .000001 .0000001 .00000001 Eccentric Anomaly E in degrees:

Enter your comments/suggestions in the user book Report all bugs to Sheela V.Belur at sbelur@capaccess.org

Solution of Kepler's equation
by Newton-Raphson Method

Eccentricity 'e' of Orbit(in the range [0,1])
Mean anomaly M in degrees(in the range [0,180])
Epsilon

Eccentric Anomaly E in degrees:

Enter your comments/suggestions in the user book
Report all bugs to Sheela V.Belur at sbelur@capaccess.org