Cislunar Space Beginner's GuideCislunar Space Beginner's Guide
  • Satellite Orbit Simulation
  • Historical Inquiry
Cislunar Glossary
Resources & Tools
Blue Team Research
Space News
AI Q&A
Forum
Home
Gitee
GitHub
  • 简体中文
  • English
  • Satellite Orbit Simulation
  • Historical Inquiry
Cislunar Glossary
Resources & Tools
Blue Team Research
Space News
AI Q&A
Forum
Home
Gitee
GitHub
  • 简体中文
  • English
  • Site map

    • Home (overview)
    • Intro · what is cislunar space
    • Orbits · spacecraft trajectories
    • Frontiers · directions & labs
    • Glossary · terms & definitions
    • Tools · data & code
    • News · space industry archive
    • Topic · blue-team research
  • Cislunar glossary (terms & definitions)

    • Cislunar Space Glossary
    • Fundamentals

      • Allan Deviation (ADEV)
      • Dual One-Way Ranging (DOWR)
      • Einstein Equivalence Principle (EEP)
      • Gravitational Redshift
      • High Altitude Airship (HAA)
      • Near-space
      • Passive Hydrogen Maser (PHM)
      • Stratospheric Airship
      • /en/glossary/fundamentals/absolute-range/
      • /en/glossary/fundamentals/aerodynamic-coefficient/
      • /en/glossary/fundamentals/aerodynamic-moment/
      • /en/glossary/fundamentals/aerospace-vehicle/
      • /en/glossary/fundamentals/ballistic-coefficient/
      • /en/glossary/fundamentals/bi-elliptic-transfer/
      • /en/glossary/fundamentals/body-frame/
      • /en/glossary/fundamentals/celestial-coordinate-system/
      • /en/glossary/fundamentals/celestial-sphere/
      • /en/glossary/fundamentals/characteristic-velocity/
      • /en/glossary/fundamentals/coverage-angle/
      • /en/glossary/fundamentals/earth-ellipsoid/
      • /en/glossary/fundamentals/earth-oblateness-perturbation/
      • /en/glossary/fundamentals/ecef-frame/
      • /en/glossary/fundamentals/energy-parameter/
      • /en/glossary/fundamentals/finite-thrust-maneuver/
      • /en/glossary/fundamentals/free-flight-phase/
      • /en/glossary/fundamentals/free-flight-trajectory/
      • /en/glossary/fundamentals/frozen-orbit/
      • /en/glossary/fundamentals/gaussian-perturbation-equations/
      • /en/glossary/fundamentals/geocentric-inertial-frame/
      • /en/glossary/fundamentals/gps-time/
      • /en/glossary/fundamentals/gravitational-potential/
      • /en/glossary/fundamentals/gravity-turn/
      • /en/glossary/fundamentals/gravity-vs-gravitation/
      • /en/glossary/fundamentals/hit-equation/
      • /en/glossary/fundamentals/hohmann-transfer/
      • /en/glossary/fundamentals/inertial-navigation-system/
      • /en/glossary/fundamentals/instantaneous-balance/
      • /en/glossary/fundamentals/isru/
      • /en/glossary/fundamentals/julian-date/
      • /en/glossary/fundamentals/kepler-equation/
      • /en/glossary/fundamentals/kompsat/
      • /en/glossary/fundamentals/lagrangian-perturbation-equations/
      • /en/glossary/fundamentals/launch-azimuth/
      • /en/glossary/fundamentals/launch-window/
      • /en/glossary/fundamentals/lift-to-drag-ratio/
      • /en/glossary/fundamentals/load-factor/
      • /en/glossary/fundamentals/longitudinal-lateral-motion/
      • /en/glossary/fundamentals/lunar-lander/
      • /en/glossary/fundamentals/minimum-energy-trajectory/
      • /en/glossary/fundamentals/newton-iteration-method/
      • /en/glossary/fundamentals/nutation/
      • /en/glossary/fundamentals/optimal-velocity-inclination/
      • /en/glossary/fundamentals/orbit-capture/
      • /en/glossary/fundamentals/orbit-insertion-conditions/
      • /en/glossary/fundamentals/orbital-elements/
      • /en/glossary/fundamentals/orbital-equation/
      • /en/glossary/fundamentals/orbital-maneuver/
      • /en/glossary/fundamentals/orbital-phase/
      • /en/glossary/fundamentals/orbital-transfer-vehicle/
      • /en/glossary/fundamentals/perturbation-motion/
      • /en/glossary/fundamentals/phasing-orbit/
      • /en/glossary/fundamentals/pitch-program/
      • /en/glossary/fundamentals/powered-phase/
      • /en/glossary/fundamentals/precession/
      • /en/glossary/fundamentals/pressure-center/
      • /en/glossary/fundamentals/range-error-coefficient/
      • /en/glossary/fundamentals/reentry-corridor/
      • /en/glossary/fundamentals/reentry-phase/
      • /en/glossary/fundamentals/repeat-ground-track-orbit/
      • /en/glossary/fundamentals/reusable-launch-vehicle/
      • /en/glossary/fundamentals/satellite-ring/
      • /en/glossary/fundamentals/sequential-quadratic-programming/
      • /en/glossary/fundamentals/skip-reentry/
      • /en/glossary/fundamentals/solar-exposure-factor/
      • /en/glossary/fundamentals/specific-angular-momentum/
      • /en/glossary/fundamentals/specific-impulse/
      • /en/glossary/fundamentals/stagnation-heat-flux/
      • /en/glossary/fundamentals/standard-atmosphere/
      • /en/glossary/fundamentals/subsatellite-track/
      • /en/glossary/fundamentals/sun-synchronous-orbit/
      • /en/glossary/fundamentals/thrust-to-weight-ratio/
      • /en/glossary/fundamentals/thrust/
      • /en/glossary/fundamentals/total-angle-of-attack/
      • /en/glossary/fundamentals/trajectory-equation/
      • /en/glossary/fundamentals/trajectory-optimization/
      • /en/glossary/fundamentals/trim-angle-of-attack/
      • /en/glossary/fundamentals/true-anomaly/
      • /en/glossary/fundamentals/tsiolkovsky-equation/
      • /en/glossary/fundamentals/turning-program/
      • /en/glossary/fundamentals/two-body-problem/
      • /en/glossary/fundamentals/utc/
      • /en/glossary/fundamentals/variation-of-parameters/
      • /en/glossary/fundamentals/velocity-frame/
      • /en/glossary/fundamentals/velocity-inclination-angle/
      • /en/glossary/fundamentals/vis-viva-equation/
      • /en/glossary/fundamentals/vleo/
      • /en/glossary/fundamentals/walker-constellation/
      • /en/glossary/fundamentals/zero-angle-of-attack-reentry/
    • Dynamics & Math

      • A* Search Algorithm (A* Search)
      • A2PPO (Attention-Augmented Proximal Policy Optimization)
      • Action-Angle Variables
      • Backstepping Sliding Mode Control
      • Backward Stability Set
      • Bang-bang Control (Bang-bang Control)
      • Barycentric Synodic Coordinate System
      • Batch Deployment (Batch Deployment)
      • Bicircular Four-Body Problem
      • Birkhoff-Gustavson Normal Form
      • Buoyancy-weight Imbalance
      • Capture Set
      • Central Manifold
      • Chaos Effect
      • Clohessy-Wiltshire (CW) Equation
      • Co-state Normalization (Co-state Normalization)
      • Coasting Arc (Coasting Arc)
      • Continuation Method (Parameter Continuation)
      • Continuation (延拓)
      • Cooperative Agent (CA)
      • CR3BP with Low-Thrust (CR3BP-LT)
      • Circular Restricted Three-Body Problem (CR3BP)
      • Curriculum Learning
      • Deep Reinforcement Learning
      • Differential Correction (微分修正)
      • Differential Evolution (DE) Algorithm
      • Differential Games (Differential Games)
      • Direct Collocation
      • Dynamic Programming (Dynamic Programming)
      • Dynamic Target Method
      • Ephemeris Model
      • Equinoctial Orbital Elements (Equinoctial Orbital Elements)
      • Fuzzy Backstepping Control
      • Generalized Advantage Estimation (GAE)
      • Gaussian Process Regression
      • Geocentric Rotating Coordinate System (GRC)
      • Heteroclinic Orbit Transfer (Heteroclinic Orbit Transfer)
      • Hill Three-Body Problem
      • Homotopy Method (Homotopy Method)
      • Improved Baseline Control-Point Method (Improved Baseline Control-Point Method)
      • Impulsive Maneuver (脉冲机动)
      • Initial Value Optimization
      • Invariant Manifold (Invariant Manifold)
      • J2000 Geocentric Equatorial Coordinate System (J2000 Geocentric Equatorial Coordinate System)
      • Jacobi Constant (Jacobi Integral)
      • K-Means Clustering (K-Means Clustering)
      • K-Medoids Clustering (K-Medoids Clustering)
      • KD-Tree (KD-Tree)
      • Libration Point (Equilibrium Point)
      • Libration Point Spacecraft Body Coordinate System (Libration Point Spacecraft Body Coordinate System)
      • Libration Point Spacecraft Orbital Coordinate System (Libration Point Spacecraft Orbital Coordinate System)
      • Lindstedt-Poincare Method (Lindstedt-Poincare Method)
      • L2-centered Rotating Coordinate System (L2-centered Rotating Coordinate System, LRC)
      • Low-Thrust Transfer MDP Formulation
      • Mass Discontinuity (Mass Discontinuity)
      • Monodromy Matrix
      • Newton-Euler Equations
      • Particle Swarm Optimization
      • Patch Point (Splicing Point)
      • Patched Method (拼接法)
      • Poincaré Map (庞加莱图)
      • Poincaré Section
      • Quasi-Bicircular Problem (QBCP)
      • Quasi-Bicircular Four-Body Problem
      • Regional Station-keeping Control
      • Seven-node Model
      • Shooting Method
      • Six-DOF Motion Equations
      • Sliding Mode Control
      • Solar Radiation Pressure (SRP)
      • Stability Index
      • Stability Set
      • State Transition Matrix (STM)
      • Static Lift
      • Strobe Map
      • Targeting Method
      • Thermo-mechanical Coupling Model
      • Thermodynamic Model
      • Two-Level Differential Correction Method
      • Two-node Model
      • Variational Mode Decomposition
      • Zero-Velocity Surface
      • /en/glossary/dynamics/ddpg/
      • /en/glossary/dynamics/hcpso/
      • /en/glossary/dynamics/mo-mcts/
      • /en/glossary/dynamics/nsga-ii/
      • /en/glossary/dynamics/pareto-optimal/
      • /en/glossary/dynamics/pontryagin-principle/
      • /en/glossary/dynamics/pseudo-arclength-continuation/
      • /en/glossary/dynamics/pursuit-evasion-game/
      • /en/glossary/dynamics/q-law/
      • /en/glossary/dynamics/reachable-set/
      • /en/glossary/dynamics/reduced-order-dynamics/
      • /en/glossary/dynamics/regularization/
      • /en/glossary/dynamics/rlepeso/
      • /en/glossary/dynamics/saddle-point-strategy/
      • /en/glossary/dynamics/state-dependent-tsp/
      • /en/glossary/dynamics/two-dominant-invariant-manifold/
      • /en/glossary/dynamics/zero-effort-miss/
    • Mission orbits

      • Apolune (远月点)
      • Ballistic Capture Orbit
      • Cycler Trajectory
      • DRO Constellation
      • Distant Retrograde Orbit (DRO)
      • Earth-Moon L1/L2 Halo Orbit (EML1/EML2 Halo)
      • Free-Return Trajectory (自由返回轨道)
      • Full Lunar Surface Coverage Orbit
      • Halo Orbit (Halo 轨道)
      • Lissajous Orbit (Lissajous 轨道)
      • Low-Energy Transfer Orbit
      • Lyapunov Orbit (Lyapunov 轨道)
      • Multi-Revolution Halo Orbit
      • Near-Rectilinear Halo Orbit (NRHO)
      • Orbit Identification
      • Orbit Keeping (Station-Keeping)
      • Parking Orbit (停泊轨道)
      • Perilune (近月点)
      • Prograde (顺行)
      • Quasi-Periodic Orbit
      • Resonance Orbit
      • Retrograde (逆行)
      • Transfer Orbit (转移轨道)
      • /en/glossary/orbits/axial-orbit/
      • /en/glossary/orbits/butterfly-orbit/
      • /en/glossary/orbits/dpo/
      • /en/glossary/orbits/horseshoe-orbit/
      • /en/glossary/orbits/hub-and-spoke/
      • /en/glossary/orbits/lopo/
      • /en/glossary/orbits/polynomial-constraint-stationkeeping/
      • /en/glossary/orbits/primary-impulse-transfer/
      • /en/glossary/orbits/vertical-orbit/
    • Navigation

      • Altitude Regulation
      • Cislunar Spatiotemporal Reference
      • Earth-Moon Hybrid Navigation
      • Earth GNSS Weak Signal Navigation
      • Inter-Satellite Link Navigation
      • LiAISON Navigation
      • LunaNet (Lunar Network)
      • Lunar Navigation Constellation
      • Moonlight Initiative
      • Tiandu-1
      • Trajectory Planning
      • X-ray Pulsar Navigation
      • /en/glossary/navigation/autonomous-navigation/
      • /en/glossary/navigation/extended-kalman-filter/
      • /en/glossary/navigation/gagan/
      • /en/glossary/navigation/irnss/
      • /en/glossary/navigation/observability/
      • /en/glossary/navigation/orbit-identification/
      • /en/glossary/navigation/pnt/
      • /en/glossary/navigation/sem-autonomous-navigation/
    • Lunar minerals

      • Changeite-Ce (Cerium Changeite)
      • Changeite-Mg (Magnesium Changeite)
    • Programs & missions

      • Artemis Program
      • LuGRE Experiment
    • Other

      • Actuator Error
      • Chain-of-Thought (CoT) Prompting
      • Cislunar Navigation Prospects
      • Cislunar Space (地月空间)
      • EXOSIMS
      • Floquet Mode Method
      • Impulse Thrust
      • Insertion Error
      • Low Earth Orbit / LEO (低地球轨道)
      • Low-Rank Adaptation (LoRA)
      • Lunar Gravity Assist / LGA (月球借力)
      • Navigation Error
      • Noncooperative Target
      • Nuclear Thermal Propulsion (NTP)
      • Orbit Insertion (入轨)
      • Period-Doubling Bifurcation
      • Longitudinal Coupling Vibration (POGO)
      • Powered Lunar Flyby / PLF (有动力月球借力)
      • Prompt Tuning (P-tuning)
      • Reflection Coefficient (C_R)
      • Solar Constant (S₀)
      • Space Traffic Management (STM)
      • Spacecraft Intention Recognition
      • Starshade
      • Weak Stability Boundary / WSB (弱稳定边界)
      • /en/glossary/other/gslv/
      • /en/glossary/other/insat/
      • /en/glossary/other/orbital-residence-platform/
      • /en/glossary/other/pslv/
      • /en/glossary/other/pursuit-evasion-defense/
    • Organizations

      • Anduril Industries
      • Booz Allen Hamilton
      • General Dynamics Mission Systems
      • GITAI USA
      • Lockheed Martin
      • Northrop Grumman
      • Quindar
      • Raytheon Missiles & Defense
      • Sci-Tec
      • SpaceX
      • True Anomaly
      • Turion Space
      • /en/glossary/organizations/danuri/
      • /en/glossary/organizations/isro/
      • /en/glossary/organizations/kasa/
      • /en/glossary/organizations/sriharikota/
      • /en/glossary/organizations/true-anomaly-company/
    • Military space doctrine

      • Cislunar Space Situational Awareness
      • Competitive Endurance
      • Component Field Commands
      • Commander, Space Forces (COMSPACEFOR)
      • Counterspace Operations
      • DOTMLPF-P Framework
      • Force Design
      • Force Development
      • Force Employment
      • Force Generation
      • Golden Dome
      • Mission Command
      • Mission Delta (MD)
      • Operational Test and Training Infrastructure (OTTI)
      • Resilient/Disaggregated Architecture
      • Space Domain Awareness (SDA)
      • Space Mission Task Force (SMTF)
      • Space Superiority
      • Space Force Generation Process (SPAFORGEN)
      • System Delta (SYD)
      • /en/glossary/doctrine/asat/
      • /en/glossary/doctrine/civil-military-integration/
      • /en/glossary/doctrine/directed-energy-weapon/
      • /en/glossary/doctrine/distributed-architecture/
      • /en/glossary/doctrine/kinetic-weapon/
      • /en/glossary/doctrine/persistent-detection-corridor/
      • /en/glossary/doctrine/resilience-map/
    • Observation techniques

      • Astrometry
      • Background Star Elimination
      • Cislunar Moving Objects
      • Continuous Coverage (CP)
      • Earth Albedo
      • Ephemeris Correlation
      • Hot Pixel
      • Image Registration
      • Image Stacking
      • Lunar Glare Zone
      • Quasi-zero Wind Layer
      • Segmentation Map
      • Shift-and-Add (SAA)
      • Sidereal Tracking
      • Signal-to-Noise Ratio (SNR)
      • Solar Radiation
      • Source Extraction
      • Synthetic Tracking
      • Zonal Wind
      • /en/glossary/observation/illumination-constraint/
      • /en/glossary/observation/pointing-constraint/
    • Satellite Communication & TT&C

      • All-Time Seamless Communication
      • BeiDou Satellite System
      • Constellation Networking
      • Inter-Satellite Link (ISL)
      • Laser-Microwave Communication
      • Microwave Link

Orbit Identification

Source: Qiao et al. (2025) "Orbital parameter characterization and objects cataloging for Earth-Moon collinear libration points"

Website: https://cislunarspace.cn

Definition

Orbit Identification is a core problem in cislunar space situational awareness: given a sequence of observed spacecraft states over a period of time, identifying the reference orbit — the periodic or quasi-periodic orbit in the CR3BP model — that the spacecraft is executing.

The essence of this problem is: in the standard orbit catalog established by CR3BP, finding the reference orbit that best matches the observed actual motion, thereby obtaining the physical characteristics (period, amplitude, etc.) of the spacecraft for space object cataloging, collision warning, and space traffic management.

Inverse Relationship with Orbit Design

Orbit identification and orbit design are inverse processes:

ProcessInputOutput
Orbit DesignPhysical parameters of reference orbit (period, amplitude, etc.)Actual orbit under ephemeris model (numerical integration)
Orbit IdentificationObserved actual orbital state sequenceCorresponding CR3BP reference orbit and its physical parameters

In orbit design, the reference orbit is first obtained in CR3BP, then refined in the ephemeris model using multiple shooting and differential correction methods to obtain the true orbit satisfying the actual gravitational environment.

In orbit identification, the direction is reversed: starting from the actual orbital state sequence, extract physically interpretable parameters (period, amplitude, etc.) to find the corresponding reference orbit.

Limitations of Traditional Methods

The most direct orbit identification method is numerical integration and comparison: select specific state vectors, integrate to obtain a complete orbit, and compare with observations. However, in cislunar space, this method faces fundamental difficulties:

1. Observation Errors

For non-cooperative targets, orbital states come from radar/optical tracking and contain noise errors.

2. Dynamical Model Uncertainty

Unmodeled factors during integration: perturbations (solar radiation pressure, lunar non-spherical gravity, other celestial bodies) and unknown orbital maneuvers of non-cooperative spacecraft.

3. Chaos Sensitivity

CR3BP itself is a non-integrable chaotic system; initial errors cause numerical integration to diverge rapidly. Qiao et al. (2025)'s numerical experiments show: when position error exceeds 10 km and velocity error exceeds 0.1 m/s, integrated trajectories diverge rapidly, making initial Halo orbit identification impossible.

Characteristic Parameter-Based Identification Method

Qiao et al. (2025) propose a six-dimensional characteristic parameter-based orbit identification method that effectively avoids numerical integration divergence:

Core Idea

  1. Convert 6D state (X,Y,Z,X˙,Y˙,Z˙)(X, Y, Z, \dot{X}, \dot{Y}, \dot{Z})(X,Y,Z,X˙,Y˙,Z˙) to 6D characteristic parameters [q1,p1,I2,θ2,I3,θ3][q_1, p_1, I_2, \theta_2, I_3, \theta_3][q1​,p1​,I2​,θ2​,I3​,θ3​]
  2. Characteristic parameters have clear physical meaning, directly related to orbit period and amplitude
  3. On the Poincaré section diagram, reference orbits have a one-to-one correspondence with section coordinates [I2(0),I3(0)][I_2^{(0)}, I_3^{(0)}][I2(0)​,I3(0)​]
  4. Use optimization to search on the section diagram to find the reference orbit minimizing the mean square error (MSE) between actual and reference orbits

Optimization Model

Given observation sequence [t1,t2,...,tn][t_1, t_2, ..., t_n][t1​,t2​,...,tn​] with states [X1,X2,...,Xn][X_1, X_2, ..., X_n][X1​,X2​,...,Xn​], define MSE:

MSE=1n∑i=1n[(I2(i)−φI2(σ0;t0,ti))2+(I3(i)−φI3(σ0;t0,ti))2]\text{MSE} = \frac{1}{n}\sum_{i=1}^{n}\left[(I_2^{(i)} - \varphi_{I_2}(\sigma_0; t_0, t_i))^2 + (I_3^{(i)} - \varphi_{I_3}(\sigma_0; t_0, t_i))^2\right] MSE=n1​i=1∑n​[(I2(i)​−φI2​​(σ0​;t0​,ti​))2+(I3(i)​−φI3​​(σ0​;t0​,ti​))2]

where φ\varphiφ is the integral flow function of the central manifold canonical equations.

Optimization problem:

min⁡MSEx=[I2(0),I3(0),t0]\min_{\text{MSE}} \quad x = [I_2^{(0)}, I_3^{(0)}, t_0] MSEmin​x=[I2(0)​,I3(0)​,t0​]

s.t.∣Ij(0)−Ij∗∣≤Imax⁡,j=2,3\text{s.t.} \quad |I_j^{(0)} - I_j^*| \leq I_{\max}, \quad j=2,3 s.t.∣Ij(0)​−Ij∗​∣≤Imax​,j=2,3

t0∈[0,Tmax⁡]\quad t_0 \in [0, T_{\max}] t0​∈[0,Tmax​]

Bayesian Optimization

Since the MSE function is a black-box optimization problem (high computational cost, no explicit derivatives), Qiao et al. (2025) use Bayesian optimization, finding the global optimum within 30 function evaluations, highly efficient.

Sensitivity Analysis

Qiao et al. (2025) systematically analyze two factors affecting orbit identification:

1. Observation Arc Length

Arc LengthIdentification Result Characteristics
Short arc (1 hour)Results dispersed, mainly along equal-energy contours; represents "osculating orbit"
Long arc (1 month)Results converge to reference orbit; represents "mean orbit"

This parallels the concepts of osculating elements and mean elements in the two-body problem.

2. Observation Errors (State Deviations)

Robustness to state errors:

  • Position error < 100 km and velocity error < 1 m/s: identification result fluctuations are small
  • 100 km position error and 1 m/s velocity error have equivalent impact on robustness
  • This points to a direction for future cislunar orbit determination technology: greater emphasis should be placed on improving velocity measurement accuracy

Significance

This method provides a non-iteration-through-long-numerical-integration approach to orbit identification in cislunar space, effective even for non-cooperative targets under low-precision observation conditions. Combined with the Poincaré section distribution map, it can quickly determine which orbit family (Northern Halo, Southern Halo, Lissajous, etc.) a target belongs to and its physical parameters.

Related Concepts

  • Central Manifold
  • Poincaré Section
  • Action-Angle Variables
  • Birkhoff-Gustavson Normal Form
  • Circular Restricted Three-Body Problem (CR3BP)
  • Cislunar Space Situational Awareness
  • Reference Orbit
  • Non-cooperative Target

References

  • Qiao C, Long X, Yang L, et al. Orbital parameter characterization and objects cataloging for Earth-Moon collinear libration points[J]. Chinese Journal of Aeronautics, 2025. doi: 10.1016/j.cja.2025.103869.
  • Wang X, Jin Y C, Schmitt S, et al. Recent advances in Bayesian optimization[J]. ACM Comput Surv, 2023, 55(13s): 1-36.
Improve this page
Last Updated: 4/29/26, 11:30 AM
Contributors: ouyangjiahong, Hermes Agent, Cron Job
Prev
Near-Rectilinear Halo Orbit (NRHO)
Next
Orbit Keeping (Station-Keeping)
地月空间入门指南
Cislunar Space Beginner's GuideYour guide to cislunar space
View on GitHub

Navigate

  • Home
  • About
  • Space News
  • Glossary

Content

  • Cislunar Orbits
  • Research
  • Resources
  • Blue Team

English

  • Home
  • About
  • Space News
  • Glossary

Follow Us

© 2026 Cislunar Space Beginner's Guide  |  湘ICP备2026006405号-1
Related:智慧学习助手 UStudy航天任务工具箱 ATK
支持我
鼓励和赞赏我感谢您的支持