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Dynamics and Control of Autonomous Space Vehicles and Robotics

English

By (author): Ranjan Vepa

Presenting the established principles underpinning space robotics (conservation of momentum and energy, stability) with a thorough and modern approach, chapters build from general physical foundations through an extensive treatment of kinematics of multi-body systems, and then to conservation principles in dynamics. The latter part of the book focuses on real-life applications related to space systems. Drawing upon years of practical experience and using numerous solved examples, illustrative applications and MATLAB, the author includes: an explanation of basic space mechanics and the dynamics of space vehicles; a rigorous treatment of conservation and variational principles in dynamics and in control theory that can be applied to a range of space vehicles and robotic systems; and a systematic presentation of the application of dynamics and control theory to real spacecraft systems. See more
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A01=Ranjan VepaAge Group_UncategorizedAuthor_Ranjan Vepaautomatic-updateCategory1=Non-FictionCategory=TJFM1Category=TRPCOP=United KingdomDelivery_Delivery within 10-20 working daysLanguage_EnglishPA=In stockPrice_€100 and abovePS=Activesoftlaunch
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Product Details
  • Weight: 890g
  • Dimensions: 178 x 253mm
  • Publication Date: 02 May 2019
  • Publisher: Cambridge University Press
  • Publication City/Country: United Kingdom
  • Language: English
  • ISBN13: 9781108422840

About Ranjan Vepa

Ranjan Vepa is currently a Senior Lecturer at Queen Mary University of London. He is the author of five books on biomimetic robotics dynamics of smart structures dynamic modelling simulation and control of energy generation flight dynamics simulation and control of aircraft and on nonlinear control of robots and UAVs. His research interests include applications in space robotics electric aircraft and autonomous vehicles. He teaches advanced courses on robotics aeroelasticity advanced flight control and simulation and on spacecraft design manoeuvring and orbital mechanics.

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