Optimizing a vehicle trans-atmospheric motion using Pontryagin’s maximum principle


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Abstract

The task of optimizing trans-atmospheric motion of a flight vehicle in order to maximize its final velocity with prescribed finite values of the height and flight path angle is considered. The angle of attack acts as control in passive motion of a vehicle. Previously, the sequential linearization method was used to solve this optimization task. It is shown that at great altitudes the control programs are slightly different depending on the chosen initial approximation.  Therefore, the aim of this work is to determine the optimum control program on the basis of a “strict” solution of the optimization task using the Pontryagin’s maximum principle. Solving the problem of optimizing trans-atmospheric motion of a flight vehicle is illustrated by passive climb of the sub-hypersonic vehicle MPV (the first stage of the aerospace system RASCAL designed in the USA). The coefficient of lift (angle of attack) increases in the greater part of the trajectory to provide the prescribed finite values of height and path inclination and then decreases to provide maximum final velocity. The correctness of the obtained solutions of the optimization task using the maximum principle is confirmed by the zero Hamiltonian value in the optimum trajectory. The results of vehicle motion simulation with optimal control and various initial conditions of motion and the vehicle mass are discussed. The results obtained show that the solutions of the optimization task under consideration using the maximum principle and the sequential linearization principle are in close agreement.

About the authors

V. L. Balakin

Samara National Research University

Author for correspondence.
Email: balakin@ssau.ru

Doctor of Science (Engineering), Professor

Adviser to the University Administartion

Russian Federation

S. A. Ishkov

Samara National Research University

Email: ishkov@ssau.ru

Doctor of Science (Engineering), Professor

Professor of the Department of Space Engineering

Russian Federation

A. A. Khramov

Samara National Research University

Email: khramov@ssau.ru

Candidate of Science (Engineering)

Lecturer of the Department of Space Engineering

Russian Federation

References

  1. Young D.A., Olds J.R. Responsive Access Small Cargo Affordable Launch (RASCAL) Independent Performance Evaluation // A Collection of Technical Papers – 13th AIAA/CIRA International Space Planes and Hypersonic Systems and Technologies Conference. 2005. V. 1. P. 346-368. doi: 10.2514/6.2005-3241
  2. Urschel P.H., Cox T.H. Launch Condition Deviations of Reusable Launch Vehicle Simulations in Exo-Atmospheric Zoom Climbs // AIAA Atmospheric Flight Mechanics Conference and Exhibit. 2003. doi: 10.2514/6.2003-5544
  3. Young D. Responsive Access Small Cargo Affordable Launch (RASCAL) Independent Performance Evaluation. Available at: https://www.yumpu.com/en/document/view/11944862/responsive-access-small-cargo-affordable-launch-rascal-.
  4. Balakin V.L., Ishkov S.A., Khramov A.A. Optimization of space vehicle trans-atmospheric motion by using the method of sequential linearization. Vestnik of Samara University. Aerospace and Mechanical Engineering. 2017. V. 16, no. 3. P. 17-26. doi: 10.18287/2541-7533-2017-16-3-17-26
  5. Fedorenko R.P. Priblizhennoe reshenie zadach optimal'nogo upravleniya [Approximate solution of optimal control problems]. Moscow: Nauka Publ., 1978. 488 p.
  6. Pontryagin L.S., Boltyanskiy V.G., Gamkrelidze R.V., Mishchenko E.F. Matematicheskaya teoriya optimal'nykh protsessov [Mathematical theory of optimal processes]. Moscow: Nauka Publ., 1976. 392 p.
  7. Yaroshevskiy V.A. Vkhod v atmosferu kosmicheskikh letatel'nykh apparatov [Spacecraft atmospheric re-entry]. Moscow: Nauka Publ., 1988. 336 p.
  8. GOST 4401-81. Standard atmosphere. Parameters. Moscow: Izdatel'stvo Standartov Publ., 1981. 180 p.
  9. Salmin V.V., Ishkov S.A., Starinova O.L. Metody resheniya variatsionnykh zadach mekhaniki kosmicheskogo poleta s maloy tyagoy [Methods of solving variational problems of low-thrust mission mechanics]. Samara: Samarskiy Nauchnyy Tsentr RAN Publ., 2006. 162 p.

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