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  • 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/
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      • /en/glossary/fundamentals/free-flight-phase/
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      • /en/glossary/fundamentals/isru/
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      • /en/glossary/fundamentals/kepler-equation/
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      • /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/
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      • /en/glossary/fundamentals/vis-viva-equation/
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      • /en/glossary/fundamentals/walker-constellation/
      • /en/glossary/fundamentals/zero-angle-of-attack-reentry/
    • Dynamics & Math

      • A* Search Algorithm (A* Search)
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      • 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
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      • Equinoctial Orbital Elements (Equinoctial Orbital Elements)
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      • 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
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      • 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/
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      • /en/glossary/dynamics/pursuit-evasion-game/
      • /en/glossary/dynamics/q-law/
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      • /en/glossary/dynamics/regularization/
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      • /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
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      • Trajectory Planning
      • X-ray Pulsar Navigation
      • /en/glossary/navigation/autonomous-navigation/
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      • /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)
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    • Programs & missions

      • Artemis Program
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    • Other

      • Actuator Error
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      • Cislunar Space (地月空间)
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      • Low Earth Orbit / LEO (低地球轨道)
      • Low-Rank Adaptation (LoRA)
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      • 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/
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    • Organizations

      • Anduril Industries
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      • /en/glossary/organizations/danuri/
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      • /en/glossary/doctrine/asat/
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      • /en/glossary/observation/illumination-constraint/
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Clohessy-Wiltshire (CW) Equation

Author: CislunarSpace

Site: https://cislunarspace.cn

Definition

The Clohessy-Wiltshire (CW) equation, also known as the Hill-Clohessy-Wiltshire (HCW) equation, is a set of linearized dynamical equations describing the relative motion of a chaser spacecraft with respect to a target spacecraft in a near-circular reference orbit. Expressed in the target's Local Vertical Local Horizontal (LVLH) coordinate frame, the equations decompose relative motion into radial, along-track, and cross-track components.

The equations originate from Hill's (1878) work on Earth-Moon relative motion and were applied to spacecraft rendezvous by Clohessy and Wiltshire (1960), becoming a cornerstone of relative orbital dynamics.

Mathematical Form

In the LVLH frame, with relative position (x,y,z)(x, y, z)(x,y,z) and velocity (x˙,y˙,z˙)(\dot{x}, \dot{y}, \dot{z})(x˙,y˙​,z˙), and reference orbit mean motion n=μ/a3n = \sqrt{\mu / a^3}n=μ/a3​, the CW equations in matrix form are:

(x¨y¨z¨)=(3n20000000−n2)(xyz)+(02n0−2n00000)(x˙y˙z˙)\begin{pmatrix} \ddot{x} \\ \ddot{y} \\ \ddot{z} \end{pmatrix} = \begin{pmatrix} 3n^2 & 0 & 0 \\ 0 & 0 & 0 \\ 0 & 0 & -n^2 \end{pmatrix} \begin{pmatrix} x \\ y \\ z \end{pmatrix} + \begin{pmatrix} 0 & 2n & 0 \\ -2n & 0 & 0 \\ 0 & 0 & 0 \end{pmatrix} \begin{pmatrix} \dot{x} \\ \dot{y} \\ \dot{z} \end{pmatrix} ​x¨y¨​z¨​​=​3n200​000​00−n2​​​xyz​​+​0−2n0​2n00​000​​​x˙y˙​z˙​​

Expanded scalar form:

  • Radial (x): x¨−3n2x−2ny˙=0\ddot{x} - 3n^2 x - 2n\dot{y} = 0x¨−3n2x−2ny˙​=0
  • Along-track (y): y¨+2nx˙=0\ddot{y} + 2n\dot{x} = 0y¨​+2nx˙=0
  • Cross-track (z): z¨+n2z=0\ddot{z} + n^2 z = 0z¨+n2z=0

Assumptions

The derivation of the CW equations relies on:

  • Near-circular reference orbit: The target spacecraft is in a circular or near-circular orbit (eccentricity e≈0e \approx 0e≈0)
  • Small relative distance: The separation between chaser and target is much smaller than the reference orbit radius (ρ≪a\rho \ll aρ≪a)
  • Two-body gravity field: Only the central body's gravity is considered; perturbations (drag, SRP, third-body) are neglected
  • Linearization: The nonlinear relative equations are Taylor-expanded to first order, dropping higher-order terms

Due to the linearization, CW equations are accurate only when ρ/a<0.01\rho / a < 0.01ρ/a<0.01. For large-scale relative motion in cislunar space, more precise nonlinear models are required.

Analytical Solution

The CW equations admit closed-form analytical solutions. Given initial state (x0,y0,z0,x˙0,y˙0,z˙0)(x_0, y_0, z_0, \dot{x}_0, \dot{y}_0, \dot{z}_0)(x0​,y0​,z0​,x˙0​,y˙​0​,z˙0​):

x(t)=x˙0nsin⁡(nt)−(2y˙0n+3x0)cos⁡(nt)+(2y˙0n+4x0)x(t) = \frac{\dot{x}_0}{n}\sin(nt) - \left(\frac{2\dot{y}_0}{n} + 3x_0\right)\cos(nt) + \left(\frac{2\dot{y}_0}{n} + 4x_0\right) x(t)=nx˙0​​sin(nt)−(n2y˙​0​​+3x0​)cos(nt)+(n2y˙​0​​+4x0​)

y(t)=2x˙0ncos⁡(nt)+2(2y˙0n+3x0)sin⁡(nt)−(3y˙0+6nx0)t+(y0−2x˙0n)y(t) = \frac{2\dot{x}_0}{n}\cos(nt) + 2\left(\frac{2\dot{y}_0}{n} + 3x_0\right)\sin(nt) - (3\dot{y}_0 + 6nx_0)t + \left(y_0 - \frac{2\dot{x}_0}{n}\right) y(t)=n2x˙0​​cos(nt)+2(n2y˙​0​​+3x0​)sin(nt)−(3y˙​0​+6nx0​)t+(y0​−n2x˙0​​)

z(t)=z˙0nsin⁡(nt)+z0cos⁡(nt)z(t) = \frac{\dot{z}_0}{n}\sin(nt) + z_0\cos(nt) z(t)=nz˙0​​sin(nt)+z0​cos(nt)

The cross-track motion (z) is an independent harmonic oscillation, decoupled from the in-plane motion. The in-plane motion (x-y plane) contains periodic terms and a secular drift term (proportional to ttt), meaning uncontrolled relative motion is generally unstable.

Applications

CW equations are widely used in spacecraft engineering:

  • Rendezvous and docking: Designing transfer trajectories from far-range approach to final docking, foundational for space station logistics
  • Formation flying: Designing relative orbit configurations and control strategies for satellite formations
  • Proximity operations: Relative motion planning for debris removal, on-orbit servicing
  • Spacecraft intention recognition: Comparing observed relative motion data against CW-predicted trajectory patterns to infer noncooperative target motion intentions (e.g., approach, flyby, rendezvous)
  • Collision risk assessment: Propagating covelliances to compute collision probabilities

Relation to CR3BP

Both CW equations and the Circular Restricted Three-Body Problem (CR3BP) describe relative motion, but they apply in different regimes:

FeatureCW EquationsCR3BP
Gravitational bodiesTwo-body (central body + reference spacecraft)Three-body (two primaries + massless particle)
Orbit typeRelative motion near a circular orbitPeriodic/quasi-periodic orbits near libration points
LinearizationYesNonlinear (can be linearized near equilibrium points)
Typical applicationsRendezvous, formation flyingDRO, NRHO, Halo orbit design

In cislunar missions, CW equations are used for relative motion analysis near space stations (e.g., Tianzhou cargo spacecraft rendezvous with the space station), while CR3BP is used for larger-scale orbit design (e.g., DRO formations, NRHO missions).

Related Concepts

  • Circular Restricted Three-Body Problem (CR3BP)
  • Spacecraft Intention Recognition
  • Noncooperative Target

References

  • Clohessy W H, Wiltshire R S. Terminal guidance system for satellite rendezvous[J]. Journal of the Aerospace Sciences, 1960, 27(9): 653-658.
  • Hill G W. Researches in the lunar theory[J]. American Journal of Mathematics, 1878, 1(1): 5-26.
  • Curtis H D. Orbital Mechanics for Engineering Students[M]. 4th ed. Butterworth-Heinemann, 2020.
  • Jing H, Sun Q, Dang Z, Wang H. Intention Recognition of Space Noncooperative Targets Using Large Language Models. Space Sci. Technol. 2025;5:0271.
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Last Updated: 4/29/26, 11:30 AM
Contributors: Hermes Agent, Cron Job
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