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Today's sunrise/sunset calculation for 39.040759 °N, 77.04876 °W.Note: I am not using the appropriate number of significant figures to calculate sunrise, sunset, and solar noon. While it may appear that my calculations are accurate to one second, they actually have a precision of closer to 3 minutes (mostly due to approximation). Also, this calculation does not take into account the effect of air temperature, altitude, etc. Together, these may affect the time by 5 minutes or more. Find today's Julian date (days since Jan 1, 2000 + 2451545): Julian date: 2455265Now, calculate Jtransit at longitude 77.04876, start with n:
n* = (Jdate - 2451545 - 0.0009) - (lw/360)
n = round(n*) n* = (2455265 - 2451545 - 0.0009) - (77.04876/360) = 3719.7850756667 n = round(3719.7850756667) = 3720 Now J*:
J* = 2451545 + 0.0009 + (lw/360) + n
J* = 2451545 + 0.0009 + (77.04876/360) + 3720 = 2455265.2149243 Using J*, calculate M (mean anomaly) and then use that to calculate C and λ:
M = [357.5291 + 0.98560028 * (J* - 2451545)] mod 360
M = [357.5291 + 0.98560028 * (2455265.2149243 - 2451545)] mod 360 = 4024.1739710829 mod 360 = 64.173971082933 We need to calculate the equation of center, C:
C = (1.9148 * sin(M)) + (0.0200 * sin(2 * M)) + (0.0003 * sin(3 * M))
C = 1.9148 * sin(64.173971082933) + 0.0200 * sin(2 * 64.173971082933) + 0.0003 * sin(3 * 64.173971082933) = 1.7391717149522 We need λ which is the ecliptical longitude of the sun:
λ = (M + 102.9372 + C + 180) mod 360
λ = (64.173971082933 + 102.9372 + 1.7391717149522 + 180) mod 360 = 348.85034279789 mod 360 = 348.85034279789 Finally, calculate Jtransit:
Jtransit = J* + (0.0053 * sin(M)) - (0.0069 * sin(2 * λ))
Jtransit = 2455265.2149243 + (0.0053 * sin(64.173971082933)) - (0.0069 * sin(2 * 348.85034279789)) = 2455265.2223131 Now, to get an even more accurate number, recursively recalculate M using Jtransit until it stops changing. Notice how close the approximation was.
I1: M = 64.181253498592, C = 1.7392744584796, λ = 348.85772795707, Jtransit = 2455265.2223118
I2: M = 64.181252165325, C = 1.7392744396719, λ = 348.857726605, Jtransit = 2455265.2223118 I3: M = 64.181252165784, C = 1.7392744396784, λ = 348.85772660546, Jtransit = 2455265.2223118 I4: M = 64.181252165784, C = 1.7392744396784, λ = 348.85772660546, Jtransit = 2455265.2223118 Ok, translate this into something we understand. i.e. When is Solar Noon?
Jtransit =
2455265.2223118 = 03/09/2010 at 12:20:07 -0500
Alrighty, now calculate how long the sun is in the sky at latitude 39.040759: Now we need to calculate δ which is the declination of the sun:
δ = arcsin( sin(λ) * sin(23.45) )
δ = arcsin(sin(348.85772660546) * sin(23.45)) = -4.4105117045377 Now we can go about calculating H (Hour angle):
H = arccos( [sin(-0.83) - sin(ln) * sin(δ)] / [cos(ln) * cos(δ)] )
H = arccos((sin(-0.83) - sin(39.040759) * sin(-4.4105117045377))/(cos(39.040759) * cos(-4.4105117045377))) = 87.487115710637 Just as above, calculate J*, but this time using hour-angle:
J** = 2451545 + 0.0009 + ((H + lw)/360) + n
J** = 2451545 + 0.0009 + ((87.487115710637 + 77.04876)/360) + 3720 = 2455265.4579441 We can use M from above because it really doesn't change that much over the course of a day, calculate Jset in the same way:
Jset = J** + (0.0053 * sin(M)) - (0.0069 * sin(2 * λ))
Jset = 2455265.4579441 + (0.0053 * sin(64.181252165784)) - (0.0069 * sin(2 * 348.85772660546)) = 2455265.4653316 Now I'm going to cheat and calculate Jrise:
Jrise = Jtransit - (Jset - Jtransit)
Jrise = 2455265.2223118 - (2455265.4653316 - 2455265.2223118) = 2455264.979292 Using the same idea, figure out when sunrise and sunset are:
Jrise =
2455264.979292 = 03/09/2010 at 06:30:10 -0500
Jset = 2455265.4653316 = 03/09/2010 at 18:10:04 -0500 A couple anomalies occur. At high latitudes, you will sometimes get H = 0. This means that either the sun does not rise (in the winter) or the sun does not set (in the summer) on that day. |