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Book Dynamics and Control of Lorentz Augmented Spacecraft Relative Motion

Download or read book Dynamics and Control of Lorentz Augmented Spacecraft Relative Motion written by Ye Yan and published by Springer. This book was released on 2016-10-25 with total page 155 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book develops a dynamical model of the orbital motion of Lorentz spacecraft in both unperturbed and J2-perturbed environments. It explicitly discusses three kinds of typical space missions involving relative orbital control: spacecraft hovering, rendezvous, and formation flying. Subsequently, it puts forward designs for both open-loop and closed-loop control schemes propelled or augmented by the geomagnetic Lorentz force. These control schemes are entirely novel and represent a significantly departure from previous approaches.

Book Spacecraft Dynamics and Control

Download or read book Spacecraft Dynamics and Control written by Anton H. de Ruiter and published by John Wiley & Sons. This book was released on 2012-12-05 with total page 562 pages. Available in PDF, EPUB and Kindle. Book excerpt: Provides the basics of spacecraft orbital dynamics plus attitude dynamics and control, using vectrix notation Spacecraft Dynamics and Control: An Introduction presents the fundamentals of classical control in the context of spacecraft attitude control. This approach is particularly beneficial for the training of students in both of the subjects of classical control as well as its application to spacecraft attitude control. By using a physical system (a spacecraft) that the reader can visualize (rather than arbitrary transfer functions), it is easier to grasp the motivation for why topics in control theory are important, as well as the theory behind them. The entire treatment of both orbital and attitude dynamics makes use of vectrix notation, which is a tool that allows the user to write down any vector equation of motion without consideration of a reference frame. This is particularly suited to the treatment of multiple reference frames. Vectrix notation also makes a very clear distinction between a physical vector and its coordinate representation in a reference frame. This is very important in spacecraft dynamics and control problems, where often multiple coordinate representations are used (in different reference frames) for the same physical vector. Provides an accessible, practical aid for teaching and self-study with a layout enabling a fundamental understanding of the subject Fills a gap in the existing literature by providing an analytical toolbox offering the reader a lasting, rigorous methodology for approaching vector mechanics, a key element vital to new graduates and practicing engineers alike Delivers an outstanding resource for aerospace engineering students, and all those involved in the technical aspects of design and engineering in the space sector Contains numerous illustrations to accompany the written text. Problems are included to apply and extend the material in each chapter Essential reading for graduate level aerospace engineering students, aerospace professionals, researchers and engineers.

Book Low Energy Flight  Orbital Dynamics and Mission Trajectory Design

Download or read book Low Energy Flight Orbital Dynamics and Mission Trajectory Design written by Jianping Yuan and published by Springer. This book was released on 2019-03-19 with total page 209 pages. Available in PDF, EPUB and Kindle. Book excerpt: The book focuses on the orbital dynamics and mission trajectory (transfer or target trajectory) design of low-energy flight in the context of modern astrodynamics. It investigates various topics that either offer new methods for solving classical problems or address emerging problems that have yet to be studied, including low-thrust transfer trajectory design using the virtual gravity field method; transfer in the three-body system using invariant manifolds; formation flying under space-borne artificial magnetic fields; and the orbital dynamics of highly irregular asteroids. It also features an extensive study of the orbital dynamics in the vicinity of contact binary asteroids, including the 1:1 ground-track resonance, the equilibrium points and their stability, and the third-order analytical solution of orbital motion in the vicinity of the non-collinear equilibrium point. Given its breadth of coverage, the book offers a valuable reference guide for all engineers and researchers interested in the potential applications of low-energy space missions.

Book Fundamental Spacecraft Dynamics and Control

Download or read book Fundamental Spacecraft Dynamics and Control written by Weiduo Hu and published by John Wiley & Sons. This book was released on 2015-11-02 with total page 301 pages. Available in PDF, EPUB and Kindle. Book excerpt: An extensive text reference includes around an asteroid – a new and important topic Covers the most updated contents in spacecraft dynamics and control, both in theory and application Introduces the application to motion around asteroids – a new and important topic Written by a very experienced researcher in this area

Book Optimal Impulsive Control of Spacecraft Relative Motion

Download or read book Optimal Impulsive Control of Spacecraft Relative Motion written by Michelle Elyse Chernick and published by . This book was released on 2021 with total page pages. Available in PDF, EPUB and Kindle. Book excerpt: Distributed space systems, or the collective usage of two or more interacting spacecraft, open the door to more complex mission applications, ultimately leading to rapid evolution in fields such as astronomy and astrophysics, planetary science, and heliophysics. In many applications, DSS bring an added layer of fault-tolerance because tasks and payloads can be shared among the spacecraft. This division of both workload and components enables the design of simple on-board systems and ensures that a mission's success is not dependent on a single spacecraft. In other mission applications, DSS increase mission coverage and flexibility, which provides more functionality than a single, monolithic spacecraft alone. However, with these benefits of using DSS comes the inherent challenge of controlling the spacecraft relative orbital motion. This dissertation focuses on the class of spacecraft relative orbit control problems that seek to minimize the delta-v cost of impulsive control actions while achieving a desired relative state in fixed time. The result is an autonomous, robust, and efficient impulsive maneuver planning architecture to solve the relative orbit control problem in a closed orbit of arbitrary eccentricity. The six-dimensional (6D) optimization problem is posed in relative orbit elements (ROE) space, a state representation composed of combinations of the classical orbital elements, which describes the motion of a spacecraft in the DSS relative to a real or virtual reference orbit. Parameterizing the relative motion using the ROE yields insight into relative motion geometry and allows for the straightforward inclusion of orbital perturbations in linear time-variant form. Consequently, the choice of state representation enables solving the control problem in closed-form, leading to delta-v optimal, predictable maneuver schemes for computationally efficient algorithmic implementation in spaceborne processors. The relative motion control architecture put forth in this dissertation makes extensive use of reachable set theory to translate the cost-minimization problem into a geometric minimum length path-planning problem. Reachable set theory is a tool typically used to evaluate achievable states given a control action. When applied to the orbit reconfiguration problem, it greatly simplifies the optimization process without loss of generality. In fact, this dissertation exploits several properties of the reachable sets to prove that the cost of an entire reconfiguration is driven by one 2D projected plane. This geometric intuition is the key to formulating a general methodology to derive the closed-form reachable delta-v minimum. The reachable delta-v minimum is a new metric to quantify the reachability and assess the optimality of a maneuver scheme. An equivalently general methodology follows, which describes how to compute maneuver schemes that achieve a prescribed reconfiguration and meet this new optimality criterion. Though the methodology applies to any Linear Time-Varying (LTV) system, this dissertation applies the methodology to the ROE state representation to derive new globally optimal maneuver schemes in closed orbits of arbitrary eccentricity. The problem is further simplified through the use of a modified ROE state representation, in which the elements are redefined such that relative orbital motion within the reference orbit plane (in-plane) and out of the reference orbit plane (out-of-plane) decouples in any closed orbit regime. The maneuver planning algorithms here are robust to orbit regime and employ combinations of maneuvers in the radial, tangential, and normal directions to achieve an optimal reconfiguration solution, in-plane and out-of-plane alike. However, this dissertation also shows how quantifiably sub-optimal solutions can be generated by relaxing constraints in the general methodology when the optimal solutions are unreachable. For example, restricting the maneuvers to occur only in the tangential direction yields entirely analytic expressions for quantifiably sub-optimal maneuver schemes in eccentric reference orbits. The analytic tangential-only sub-optimal solution requires only a minimal delta-v penalty over the optimal and to be orders of magnitude more computationally efficient. This is just one example of how the general solution methodology can be modified to derive quantifiably sub-optimal solutions with high performance and computational feasibility. Uncertainty in the dynamics model, state knowledge, and maneuver execution can propagate into significant errors in the ROE achieved at the end of a reconfiguration. Therefore, to prepare the control software for on-board implementation, this dissertation analyzes the effects of different error sources on the reachable sets. The analysis focuses on developing both a qualitative understanding of how errors alter the relative motion geometry and a quantitative assessment to mathematically determine the effect that each error has on achieving the desired end state. The analysis, which uses a geometric method based on the non-diagonal covariance matrix of each uncertainty source, shows that errors in maneuver timing and the reference satellite's initial absolute state are negligible. However, errors in the initial relative state and the maneuver magnitudes can propagate significantly and must be mitigated. The culmination of the research presented in this dissertation is the development of the dedicated Guidance, Navigation, and Control (GNC) payload onboard the Demonstration with Nanosatellites of Autonomous Rendezvous and Formation-Flying (DWARF) mission. The DWARF mission is a collaborative development effort between the Stanford Space Rendezvous Laboratory, Gauss S.R.L., and King Abdulaziz City for Science and Technology. The mission seeks to demonstrate novel and state-of-the-art relative navigation and control technology in a sun-synchronous Low Earth Orbit using a pair of identical, autonomous, 3U CubeSats with commercial-off-the-shelf hardware and a cold-gas propulsion system. The many lessons learned during the DWARF mission will facilitate new, more complex, DSS technology such as virtual telescopes, on-orbit servicing, and space structure assembly. This dissertation focuses specifically on the design, implementation, and integration of the control subsystem of the GNC payload, which aims to demonstrate safe, robust, and autonomous formation acquisition, keeping, and reconfiguration at separations between 100 meters and 100 kilometers. This dissertation details the algorithmic implementation of the control subsystem as a regularly called finite state machine that manages on-orbit activity such as optimal maneuver scheme generation, data handling, and error and uncertainty mitigation. Also, to alleviate the inaccuracies that can accumulate from the errors mentioned previously, the DWARF software continuously replans the maneuvers analytically, using a diminishing horizon model predictive control. The functionality and performance of the DWARF prototype flight software are rigorously validated in a high-fidelity software-in-the-loop simulation environment for mission scenarios in near-circular and eccentric orbits. The DWARF simulation environment includes a full-force perturbation model, realistic navigation uncertainty, and maneuver execution errors. It additionally includes a Global Navigation Satellite System (GNSS) signal simulator to emulate on-board navigation with realistic uncertainty, as well as realistic maneuver execution and timing errors. The maneuver schemes are stress-tested further by varying the spacecraft ballistic properties and the orbit geometry to evaluate solution performance in highly-perturbed environments across multiple orbit regimes.

Book Journal of Guidance  Control  and Dynamics

Download or read book Journal of Guidance Control and Dynamics written by and published by . This book was released on 2009 with total page 954 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Book Spacecraft Dynamics and Control

Download or read book Spacecraft Dynamics and Control written by Yongchun Xie and published by Springer Nature. This book was released on 2021-07-13 with total page 422 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book presents up-to-date concepts and design methods relating to space dynamics and control, including spacecraft attitude control, orbit control, and guidance, navigation, and control (GNC), summarizing the research advances in control theory and methods and engineering practice from Beijing Institute of Control Engineering over the years. The control schemes and systems based on these achievements have been successfully applied to remote sensing satellites, communication satellites, navigation satellites, new technology test satellites, Shenzhou manned spacecraft, Tianzhou freight spacecraft, Tiangong 1/2 space laboratories, Chang'e lunar explorers, and many other missions. Further, the research serves as a guide for follow-up engineering developments in manned lunar engineering, deep space exploration, and on-orbit service missions.

Book Control of Spacecraft and Aircraft

Download or read book Control of Spacecraft and Aircraft written by Arthur Earl Bryson and published by Princeton University Press. This book was released on 1994-06-05 with total page 405 pages. Available in PDF, EPUB and Kindle. Book excerpt: Here a leading researcher provides a comprehensive treatment of the design of automatic control logic for spacecraft and aircraft. In this book Arthur Bryson describes the linear-quadratic-regulator (LQR) method of feedback control synthesis, which coordinates multiple controls, producing graceful maneuvers comparable to those of an expert pilot. The first half of the work is about attitude control of rigid and flexible spacecraft using momentum wheels, spin, fixed thrusters, and gimbaled engines. Guidance for nearly circular orbits is discussed. The second half is about aircraft attitude and flight path control. This section discusses autopilot designs for cruise, climb-descent, coordinated turns, and automatic landing. One chapter deals with controlling helicopters near hover, and another offers an introduction to the stabilization of aeroelastic instabilities. Throughout the book there is a strong emphasis on the mathematical modeling necessary for designing a good feedback control system. The appendixes summarize analysis of linear dynamic systems, synthesis of analog and digital feedback control, simulation, and modeling of flexible vehicles.

Book Lorentz Augmented Orbit Dynamics and Mission Design

Download or read book Lorentz Augmented Orbit Dynamics and Mission Design written by Brett Jordan Streetman and published by . This book was released on 2008 with total page 163 pages. Available in PDF, EPUB and Kindle. Book excerpt: The possible role of LAOs in spacecraft formation flight is explored. The dynamics of a simple relative orbit system are derived, with their stability and controllability examined. A sample formation maneuver is presented.

Book Impulsive Systems with Delays

Download or read book Impulsive Systems with Delays written by Xiaodi Li and published by Springer Nature. This book was released on 2021-10-15 with total page 449 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book systematically presents the most recent progress in stability and control of impulsive systems with delays. Impulsive systems have recently attracted continued high research interests because they provide a natural framework for mathematical modeling of many real-world processes. It focuses not only on impulsive delayed systems, but also impulsive systems with delayed impulses and impulsive systems with event-triggered mechanism, including their Lyapunov stability, finite-time stability and input-to-state stability synthesis. Special attention is paid to the bilateral effects of the delayed impulses, where comprehensive stability properties are discussed in the framework of time-dependent and state-dependent delays. New original work with event-triggered impulsive control and its applications in multi-agent systems and collective dynamics are also provided. This book will be of use to specialists who are interested in the theory of impulsive differential equations and impulsive control theory, as well as high technology specialists who work in the fields of complex networks and applied mathematics. Also, instructors teaching graduate courses and graduate students will find this book a valuable source of nonlinear system theory.

Book Modern Spacecraft Dynamics and Control

Download or read book Modern Spacecraft Dynamics and Control written by Marshall H. Kaplan and published by . This book was released on 1976-10-19 with total page 438 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Book Spacecraft Dynamics and Control

Download or read book Spacecraft Dynamics and Control written by Marcel J. Sidi and published by Cambridge University Press. This book was released on 1997 with total page 434 pages. Available in PDF, EPUB and Kindle. Book excerpt: This 1997 book explains basic theory of spacecraft dynamics and control and the practical aspects of controlling a satellite.

Book Dynamics and Control of Flexible Space Vehicles

Download or read book Dynamics and Control of Flexible Space Vehicles written by Peter W. Likins and published by . This book was released on 1969 with total page 96 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Book Space Vehicle Dynamics and Control

Download or read book Space Vehicle Dynamics and Control written by Bong Wie and published by AIAA (American Institute of Aeronautics & Astronautics). This book was released on 1998 with total page 688 pages. Available in PDF, EPUB and Kindle. Book excerpt: A textbook that incorporates the latest methods used for the analysis of spacecraft orbital, attitude, and structural dynamics and control. Spacecraft dynamics is treated as a dynamic system with emphasis on practical applications, typical examples of which are the analysis and redesign of the pointing control system of the Hubble Space Telescope and the analysis of an active vibrations control for the COFS (Control of Flexible Structures) Mast Flight System. In addition to the three subjects mentioned above, dynamic systems modeling, analysis, and control are also discussed. Annotation copyrighted by Book News, Inc., Portland, OR

Book Optimal Lorentz augmented Spacecraft Formation Flying in Elliptic Orbits

Download or read book Optimal Lorentz augmented Spacecraft Formation Flying in Elliptic Orbits written by and published by . This book was released on 2015 with total page pages. Available in PDF, EPUB and Kindle. Book excerpt:

Book Spacecraft Dynamics and Control

Download or read book Spacecraft Dynamics and Control written by Enrico Canuto and published by Butterworth-Heinemann. This book was released on 2018-03-10 with total page 0 pages. Available in PDF, EPUB and Kindle. Book excerpt: 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.

Book Flexible Spacecraft Dynamics  Control and Guidance

Download or read book Flexible Spacecraft Dynamics Control and Guidance written by Leonardo Mazzini and published by Springer. This book was released on 2016-08-23 with total page 363 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book is an up-to-date compendium on spacecraft attitude and orbit control (AOC) that offers a systematic and complete treatment of the subject with the aim of imparting the theoretical and practical knowledge that is required by designers, engineers, and researchers. After an introduction on the kinematics of the flexible and agile space vehicles, the modern architecture and functions of an AOC system are described and the main AOC modes reviewed with possible design solutions and examples. The dynamics of the flexible body in space are then considered using an original Lagrangian approach suitable for the control applications of large space flexible structures. Subsequent chapters address optimal control theory, attitude control methods, and orbit control applications, including the optimal orbital transfer with finite and infinite thrust. The theory is integrated with a description of current propulsion systems, with the focus especially on the new electric propulsion systems and state of the art sensors and actuators.