Files
astro/basic/orbit_observation.go
T
b612 9ee2163cc7 feat: 新增月掩与日月食地理绘图并提升观测计算精度
- 新增月掩恒星和行星:支持搜索、掩甚点、全球掩带及固定地点轨迹计算
- 支持恒星星表坐标转换、有限盘面行星接触事件和月掩 SVG 输出
- 新增日月食及月掩全球投影图、时间标记和 GeoJSON 地理数据接口
- 扩展日食中心线、南北界及偏食足迹采样,支持极区投影
- 修正站心时角、月出月落、月球视半径、折射和恒星自行计算
- 优化内外行星事件搜索、边界选择、极端输入处理和计算稳定性
2026-08-06 12:00:56 +08:00

152 lines
6.5 KiB
Go

package basic
import (
"math"
. "b612.me/astro/tools"
)
func orbitTopocentricObservation(jde, observerLon, observerLat, observerHeight, timezone float64, elements OrbitElements) (ra, dec, distance float64) {
utcJde := jde - timezone/24.0
return OrbitApparentTopocentricEquatorial(TD2UT(utcJde, true), observerLon, observerLat, observerHeight, elements)
}
// OrbitHeight 返回轨道目标在观测者所在地的视高度角,单位度。
func OrbitHeight(jde, observerLon, observerLat, timezone, observerHeight float64, elements OrbitElements) float64 {
ra, dec, _ := orbitTopocentricObservation(jde, observerLon, observerLat, observerHeight, timezone, elements)
st := Limit360(ApparentSiderealTime(jde-timezone/24.0)*15 + observerLon)
hourAngle := Limit360(st - ra)
sinHeight := Sin(observerLat)*Sin(dec) + Cos(dec)*Cos(observerLat)*Cos(hourAngle)
return ArcSin(sinHeight)
}
// OrbitAzimuth 返回轨道目标在观测者所在地的视方位角,按正北为 0°、向东增加。
func OrbitAzimuth(jde, observerLon, observerLat, timezone, observerHeight float64, elements OrbitElements) float64 {
ra, dec, _ := orbitTopocentricObservation(jde, observerLon, observerLat, observerHeight, timezone, elements)
st := Limit360(ApparentSiderealTime(jde-timezone/24.0)*15 + observerLon)
hourAngle := Limit360(st - ra)
tanAzimuth := Sin(hourAngle) / (Cos(hourAngle)*Sin(observerLat) - Tan(dec)*Cos(observerLat))
azimuth := ArcTan(tanAzimuth)
if azimuth < 0 {
if hourAngle/15 < 12 {
return azimuth + 360
}
return azimuth + 180
}
if hourAngle/15 < 12 {
return azimuth + 180
}
return azimuth
}
// OrbitHourAngle 返回轨道目标的站心视时角,单位度。
func OrbitHourAngle(jde, observerLon, observerLat, timezone, observerHeight float64, elements OrbitElements) float64 {
ra, _, _ := orbitTopocentricObservation(jde, observerLon, observerLat, observerHeight, timezone, elements)
st := Limit360(ApparentSiderealTime(jde-timezone/24.0)*15 + observerLon)
hourAngle := st - ra
if hourAngle < 0 {
hourAngle += 360
}
return hourAngle
}
// OrbitCulminationTime 返回轨道目标的中天时刻,输入输出均沿用本仓库现有观测函数的 JD 语义。
func OrbitCulminationTime(jde, observerLon, observerLat, timezone, observerHeight float64, elements OrbitElements) float64 {
if !isFiniteFloat(jde) || !isFiniteFloat(observerLon) || !isFiniteFloat(observerLat) || !isFiniteFloat(timezone) || !isFiniteFloat(observerHeight) {
return math.NaN()
}
jde = math.Floor(jde) + 0.5
estimateJD := jde + Limit360(360-OrbitHourAngle(jde, observerLon, observerLat, timezone, observerHeight, elements))/15.0/24.0*0.99726851851851851851
normalizedHourAngle := func(jde float64) float64 {
currentHourAngle := OrbitHourAngle(jde, observerLon, observerLat, timezone, observerHeight, elements)
if currentHourAngle < 180 {
currentHourAngle += 360
}
return currentHourAngle
}
var ok bool
estimateJD, ok = eventNewtonRefine(estimateJD, 0.00001, func(prevJD float64) float64 {
hourAngleDelta := normalizedHourAngle(prevJD) - 360
hourAngleSlope := (normalizedHourAngle(prevJD+0.000005) - normalizedHourAngle(prevJD-0.000005)) / 0.00001
return hourAngleDelta / hourAngleSlope
})
if !ok {
return math.NaN()
}
return estimateJD
}
// OrbitRiseTime 返回轨道目标在给定当地日期的升起时刻。
func OrbitRiseTime(jde, observerLon, observerLat, timezone, aeroCorrection, observerHeight float64, elements OrbitElements) (float64, error) {
return orbitRiseDown(jde, observerLon, observerLat, timezone, aeroCorrection, observerHeight, elements, true)
}
// OrbitSetTime 返回轨道目标在给定当地日期的落下时刻。
func OrbitSetTime(jde, observerLon, observerLat, timezone, aeroCorrection, observerHeight float64, elements OrbitElements) (float64, error) {
return orbitRiseDown(jde, observerLon, observerLat, timezone, aeroCorrection, observerHeight, elements, false)
}
func orbitRiseDown(jde, observerLon, observerLat, timezone, aeroCorrection, observerHeight float64, elements OrbitElements, isRise bool) (float64, error) {
if !isFiniteFloat(jde) || !isFiniteFloat(observerLon) || !isFiniteFloat(observerLat) || !isFiniteFloat(timezone) || !isFiniteFloat(aeroCorrection) || !isFiniteFloat(observerHeight) {
return 0, ErrInvalidObservationInput
}
localTimezone := math.Round(observerLon / 15)
targetAltitude := StandardAltitudePlanet(aeroCorrection, observerHeight, observerLat)
culminationJD := OrbitCulminationTime(jde, observerLon, observerLat, localTimezone, observerHeight, elements)
if !isFiniteFloat(culminationJD) {
return 0, ErrInvalidObservationInput
}
culminationHeight := OrbitHeight(culminationJD, observerLon, observerLat, localTimezone, observerHeight, elements)
previousHeight := OrbitHeight(culminationJD-0.5, observerLon, observerLat, localTimezone, observerHeight, elements)
if !isFiniteFloat(culminationHeight) || !isFiniteFloat(previousHeight) {
return 0, ErrInvalidObservationInput
}
if culminationHeight < targetAltitude {
return 0, ErrNeverRise
}
if previousHeight > targetAltitude {
return 0, ErrNeverSet
}
_, dec, _ := orbitTopocentricObservation(culminationJD, observerLon, observerLat, observerHeight, localTimezone, elements)
cosHourAngle := (Sin(targetAltitude) - Sin(dec)*Sin(observerLat)) / (Cos(dec) * Cos(observerLat))
if !isFiniteFloat(dec) || !isFiniteFloat(cosHourAngle) {
return 0, ErrInvalidObservationInput
}
var eventJD float64
if math.Abs(cosHourAngle) <= 1 {
hourOffset := ArcCos(cosHourAngle) / 15
if isRise {
eventJD = culminationJD - hourOffset/24 - 25.0/24.0/60.0
} else {
eventJD = culminationJD + hourOffset/24 - 25.0/24.0/60.0
}
} else {
eventJD = culminationJD
steps := 0
for OrbitHeight(eventJD, observerLon, observerLat, localTimezone, observerHeight, elements) > targetAltitude {
steps++
if isRise {
eventJD -= 15.0 / 60.0 / 24.0
} else {
eventJD += 15.0 / 60.0 / 24.0
}
if steps > 48 {
break
}
}
}
estimateJD, ok := eventNewtonRefine(eventJD, 0.00001, func(prevJD float64) float64 {
altitudeDelta := OrbitHeight(prevJD, observerLon, observerLat, localTimezone, observerHeight, elements) - targetAltitude
altitudeSlope := (OrbitHeight(prevJD+0.000005, observerLon, observerLat, localTimezone, observerHeight, elements) - OrbitHeight(prevJD-0.000005, observerLon, observerLat, localTimezone, observerHeight, elements)) / 0.00001
return altitudeDelta / altitudeSlope
})
if !ok {
return 0, ErrInvalidObservationInput
}
return estimateJD - localTimezone/24 + timezone/24, nil
}