Multi-Phase Vertical Take-Off and Landing Trajectory Optimization with Feasible Initial Guesses

Author:

Lu Zhidong1,Hong Haichao2ORCID,Holzapfel Florian1ORCID

Affiliation:

1. Institute of Flight System Dynamics, Technical University of Munich, 85748 Garching, Germany

2. School of Aeronautics and Astronautics, Shanghai Jiao Tong University, Shanghai 200240, China

Abstract

The advancement of electric vertical take-off and landing (eVTOL) aircraft has expanded the horizon of urban air mobility. However, the challenge of generating precise vertical take-off and landing (VTOL) trajectories that comply with airworthiness requirements remains. This paper presents an approach for optimizing VTOL trajectories considering six degrees of freedom (6DOF) dynamics and operational constraints. Multi-phase optimal control problems are formulated to address specific constraints in various flight stages. The incremental nonlinear dynamic inversion (INDI) controller is employed to execute the flight mission in each phase. Controlled flight simulations yield dynamically feasible trajectories that serve as initial guesses for generating sub-optimal trajectories within individual phases. A feasible and sub-optimal initial guess for the holistic multi-phase problem is established by concatenating these single-phase trajectories. Focusing on a tilt-wing eVTOL aircraft, this paper computes VTOL trajectories leveraging the proposed initial guess generation procedure. These trajectories account for complex flight dynamics, align with various operation constraints, and minimize electric energy consumption.

Funder

China Scholarship Council

Publisher

MDPI AG

Subject

Aerospace Engineering

Reference32 articles.

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3. European Union Aviation Safety Agency (2023, November 01). Second Publication of Proposed Means of Compliance with the Special Condition VTOL, Available online: www.easa.europa.eu/en/downloads/137443/en.

4. European Union Aviation Safety Agency (2023, November 01). Vertiports Prototype Technical Specifications for the Design of VFR Vertiports for Operation with Manned VTOL-Capable Aircraft Certified in the Enhanced Category, Available online: www.easa.europa.eu/en/downloads/136259/en.

5. Civil Aviation Administration of China (2023, November 01). Special Conditions for EHang EH216-S Unmanned Aircraft System: SC-21-002, Available online: www.caac.gov.cn/XXGK/XXGK/BZGF/ZYTJHHM/202202/t20220222_211914.html.

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