Spacecraft Dynamics and Control

- The Embedded Model Control Approach

  • Format
  • Bog, paperback
  • Engelsk

Beskrivelse

Spacecraft Dynamics and Control: The Embedded Model Control Approach provides a uniform and systematic way of approaching space engineering control problems from the standpoint of model-based control, using state-space equations as the key paradigm for simulation, design and implementation. The book introduces the Embedded Model Control methodology for the design and implementation of attitude and orbit control systems. The logic architecture is organized around the embedded model of the spacecraft and its surrounding environment. The model is compelled to include disturbance dynamics as a repository of the uncertainty that the control law must reject to meet attitude and orbit requirements within the uncertainty class. The source of the real-time uncertainty estimation/prediction is the model error signal, as it encodes the residual discrepancies between spacecraft measurements and model output. The embedded model and the uncertainty estimation feedback (noise estimator in the book) constitute the state predictor feeding the control law. Asymptotic pole placement (exploiting the asymptotes of closed-loop transfer functions) is the way to design and tune feedback loops around the embedded model (state predictor, control law, reference generator). The design versus the uncertainty class is driven by analytic stability and performance inequalities. The method is applied to several attitude and orbit control problems.

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  • Vægt1620 g
  • coffee cup img
    10 cm
    book img
    19,1 cm
    23,5 cm

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    Triad Quest Audience Stability Hybridization Authorship Aerodynamics Propulsion systems Space environment Abbreviations Kepler's equation Lyapunov stability Topics Two-body problem Magnetometers Gyroscope Controllability Random processes Observability Kalman Filter Stochastic model Orbital dynamics State Feedback Parametric Uncertainty Electromagnetic radiation Rotation Matrix Accelerometer Sensor Modeling Periodic systems Dynamic systems Reaction Wheels Linear algebra Hierarchical control Spacecraft attitude control Notations Active nutation damping Aerodynamic stability Angular rate determination Attitude sensors attitude determination Attitude dynamics and control with reaction wheels Attitude accuracy Attitude Dynamics Attitude matrix kinematics Attitude state predictor Book objectives Attitude representations Attitude requirements Control law Causal Uncertainty Conversions between representations Closed-loop stability drag-free control Error equation linearization ESOQ Euler Angles Euler's equation of rotation Force actuators Gravity gradient stabilization Gauss planetary equations Control Modes Control Moment Gyros Hill�Clohessy�Wiltshire equations and control GOCE mission Gravity gradient torques Embedded model control Error quaternion kinematics Lagrangian equilibrium points Euler angle kinematics Internal forces/torques Exchange momentum actuators Lissajous orbit Magnetic torquers Magnetic torques Orbital stability Halo orbit Gravity forces restricted three-body problem Problem of Wahba Quaternion predictor Quaternion kinematics Spacecraft detumbling State predictor Static determination spacecraft sensors Lagrange planetary equations Torque-free rigid body attitude Star tracker Perturbing forces and torques Neglected dynamics Reference orbit quaternion Orbit propagation Orbit transfer and hyperbolic flyby Perturbed orbits Separation theorem Space and time coordinates Thrusters Quaternion Sun and Earth sensors Torque actuators

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