ü This course utilizes a combination of lectures, interspersed with associated hands-on lab exercises (aircraft and rotorcraft) to be completed by the students on their own computers using a 2-month trial of the CIFER® Pro version, provided with the course, at the discretion of the software distributor. Course notes and student software for hands-on exercises will be available for download.
ü Based on the instructor’s AIAA textbook Aircraft and Rotorcraft System Identification: Engineering Methods With Flight Test Examples, 2nd Edition.
ü All students will receive an AIAA Certificate of Completion at the end of the course
OVERVIEW
This comprehensive
course reviews the fundamental methods of Piloted and UAV aircraft and
rotorcraft system identification for determining flight dynamics and control
models from test data with Hands-on Training using CIFER®. The
course illustrates the benefits of the broad application of system
identification throughout the flight vehicle development process and provides
the attendees with intensive hands-on training of the CIFER®
interactive system identification software suite using flight-test data and
extensive Lab exercises. Each lecture reviews the next step in the system
identification process, covering key principles, flight-test methods and
typical flight-test results. Then, the student uses the intuitive CIFER®
software to conduct this step in a structured Lab Exercise using flight-test
data. By the end of the 4-day course, the student will have completed the
entire identification process of extracting and verifying a flight dynamics
model of a rotorcraft or fixed-wing aircraft from flight-test data using CIFER®.
New lecture material covers special considerations and typical system
identification results for multi-copter, eVTOL/UAM configurations, how system
identification results can be used to validate and update physics-based flight
simulation models, and “model stitching” that combines identified point models
and trim data into an accurate full-flight envelope simulation. Students
receive access to on-line course notes, a copy of the course text authored
by the instructor, and access to the CIFER® software. The many
examples from recent piloted and UAV aircraft programs illustrate the
effectiveness of this technology for rapidly solving difficult integration
problems. The course will review key methods and computational tools but will
not be overly mathematical in content.
The key objectives of this course are to: (1) review the fundamental methods of Piloted and UAV aircraft and rotorcraft system identification methods with Hands-on Training using CIFER® and illustrate the benefits of the broad application of system ID throughout the flight vehicle development process; (2) provide the attendees with an intensive hands-on training of the CIFER® system identification, using flight test data and 10 extensive Lab exercises. Students will work on comprehensive laboratory assignments using a demo copy of the CIFER® software provided to course participants. This requires the student to have a PC laptop running either Windows 10 or Windows 11, or a Mac laptop running macOS 10.14 (Mojave), macOS 10.15 (Catalina), macOS 11 (Big Sur), macOS 12 (Monterey), or macOS 13 (Ventura).
(Course recorded live in December 2023)
KEY TOPICS
- Overview of system identification methods and applications
- Flight testing and instrumentation for handling-qualities and piloted/UAV control system development
- System ID of piloted and UAV aircraft and rotorcraft dynamics and control from flight test data
- Special aspects for system ID of multi-copter eVTOL/UAM configurations
- Model stitching to build accurate full flight envelope nonlinear model from system ID point models
- Use of system identification results for physics-based simulation model fidelity analysis and improvement
- Hands-on training in system identification training using CIFER®
- Over the 4-day course students work 10 comprehensive labs on model identification and verification using flight-test data
- See detailed outline below
The course is intended for practicing engineers and students interested in learning the principles and applications of system identification for piloted and UAV aircraft and rotorcraft. The course assumes some basic knowledge of the concepts of dynamics, frequency-responses, transfer functions, and state-space representations. The course is not highly mathematical and no experience with other tools is a prerequisite.
MATERIALS
- 16+ Hours of Recorded Lectures: Stream the 16+ hours of video recordings anytime, 24/7.
- Course Materials: Download over 300 pages of course slides, ten hands-on CIFER® lab exercises, and additional references immediately.
- CIFER® Software: A 2-month Professional version of the CIFER® software will be provided for use. To receive the CIFER® software, students should register with their institutional email address (e.g., company, research lab, academic) and not a personal email. The software administrator will only distribute the CIFER® software to students' institutional email addresses for the students to install and validate. Please note that access to the software is at the discretion of the software distributor, and may be subject to international release limitations. Please submit your institutional email and country of origin to apply for access. Please email Lisa Le, Education Specialist, with your registration confirmation and submit your institutional email address and country of origin to request the software.
- No part of these materials may be reproduced, distributed, or transmitted, unless for course participants. All rights reserved.
- Recommended Text: It is recommended to separately purchase the instructor’s AIAA textbook Aircraft and Rotorcraft System Identification: Engineering Methods With Flight Test Examples, 2nd Edition.
CERTIFICATE: Receive an AIAA Course Completion Certificate upon viewing all course recordings. Please contact Lisa Le for a certificate.
- AIAA Member Price: $995 USD
- Non-Member Price: $1,195 USD
- AIAA Student Member Price: $595 USD
COURSE OUTLINE
- Overview of system identification methods and applications
- What is system identification and what are the advantages of frequency-domain methods?
- What are the key payoffs of incorporating system ID in the development cycle
- “How will it help and what will it do for your program?”
- Frequency-response identification
- Transfer-function and Multi-input/multi-output (state-space) aircraft dynamic models
- Key elements of system identification (each topic will have a student lab exercise using CIFER®)
- Testing techniques
- Piloted/UAV flight testing for handling-qualities and control system development
- Dos and don’ts of piloted frequency-sweep testing
- Instrumentation requirements and data consistency analysis
- Frequency-response identification
- FFTs and Chirp-Z transform
- Use of Coherence function for data evaluation
- Simulation fidelity evaluation and handling-qualities analysis
- Effects of flight control feedback on identification
- Assessing bias errors introduced under closed-loop test conditions
- Multi-input identification
- Matrix solution to frequency-response identification
- Post-processing for system identification of aircraft with redundant/correlated control surfaces
- Optimal windowing
- Effect and selection of window size
- Numerical optimization for combining windows
- Transfer function modeling
- Lower-order equivalent system concepts
- Handling-qualities applications
- State-space modeling
- Physical and canonical models
- Applications to a wide variety of aircraft and rotorcraft
- UAV fixed-wing aircraft, multi-copters, and large UAV helicopter results
- Time-domain verification
- Assessing the predictive capability of identified models
- Higher-order modeling of aircraft structural dynamics and rotorcraft rotor/inflow dynamics
- Model Stitching to build an accurate full flight envelope nonlinear model from system ID point models
- Using system identification results to improve the fidelity of physics-based simulation models
- Key concepts and example applications: piloted and UAV aircraft and rotorcraft; multi-copter, eVTOL/UAM configurations; and small fixed-wing UAVs.
INSTRUCTOR
Dr. Mark B. Tischler heads “Tischler Aeronautics,” with a focus on providing Engineering Support in Rotorcraft and Aircraft Flight Dynamics and Control. He retired in January 2021
as an Army Senior Technologist (ST) with the US Army Technology Development Directorate – Moffett Field, CA. His over 40-year career includes experience in aerospace industry and government. For 25 years, he led the US Army Flight Control Technology group that conducts handling qualities, flight dynamics and control research on a wide range of fixed-wing and rotary-wing aircraft and unmanned air vehicles (UAVs). Dr. Tischler headed the development of widely used tools for dynamics and control analysis and has been involved in numerous flight-test projects. He has published extensively in this field and is the author of Aircraft and Rotorcraft System Identification: Engineering Methods With Flight Test Examples, 2nd Edition (AIAA 2012), Practical Methods for Aircraft and Rotorcraft Flight Control Design: An Optimization-Based Approach (AIAA 2017), and Advances in Aircraft Flight Control (Ed) (AIAA and Taylor & Francis, 1996). Dr. Tischler has received many major awards for his work over the years. He has the rare distinction of twice receiving the Presidential Rank Award for Distinguished Senior Professional (2009, 2018), the highest recognition presented to public officials. Dr. Tischler received the Department of the Army Distinguished Civilian Service Medal in 2021, the highest award that may be bestowed by the Secretary of the Army for extraordinary contributions as a Senior Research Scientist. Classroom hours / CEUs: 16 classroom hours / 1.6 CEU/PDH
Contact: Please contact Lisa Le or Customer Service if you have questions about the course or group discounts (for 5+ participants).
Title | Credit(s) | |
---|---|---|
1 | ||
2 | ||
3 | ||
4 | ||
5 | ||
6 |