Modeling the Dynamics of a Heavy-Duty Mobile Robot Based on Gauss's Principle of Least Constraint

سال انتشار: 1404
نوع سند: مقاله ژورنالی
زبان: انگلیسی
مشاهده: 78

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شناسه ملی سند علمی:

JR_JACM-11-4_007

تاریخ نمایه سازی: 1 تیر 1405

چکیده مقاله:

This paper presents a novel approach to model the dynamics of a heavy-duty mobile robot using Gauss’s principle of least constraint. Unlike traditional Lagrangian methods, which often lead to complex systems of differential and algebraic equations, Gauss's principle simplifies the dynamic equations by reducing the problem to an algebraic form. This method efficiently determines the accelerations of the robot, which is crucial for real-time control and optimization. The mobile robot in question features a universal platform with four wheels and two DC servomotors, driving the rear wheels. We account for both static and dynamic characteristics of the motors and introduce a methodology for modeling the forces and moments of friction on the wheels. The derived equations of motion are solved using adaptive Runge-Kutta-Fehlberg integration methods. This approach provides a powerful tool for analyzing and controlling the robot’s dynamics, offering significant advantages for large-scale industrial and transportation applications. The results are validated through simulations using high-performance computing techniques.

کلیدواژه ها:

Mobile robot ، Gauss's principle of least constraint ، heavy-duty robot ، dynamics modeling ، friction forces

نویسندگان

Amandyk Tuleshov

Laboratory of Intelligent Robotic Systems, Joldasbekov Institute of Mechanics and Engineering, ۲۸ Shevchenko st., Almaty, ۰۵۰۰۱۰, Kazakhstan

Assylbek Ozhiken

Laboratory of Intelligent Robotic Systems, Joldasbekov Institute of Mechanics and Engineering, ۲۸ Shevchenko st., Almaty, ۰۵۰۰۱۰, Kazakhstan

Kassymbek Ozhikenov

Department of Robotics and Technical Means of Automation, Satbayev University, ۲۲ Satbayev st., Almaty, ۰۵۰۰۱۳, Kazakhstan

Moldir Kuatova

Laboratory of Intelligent Robotic Systems, Joldasbekov Institute of Mechanics and Engineering, ۲۸ Shevchenko st., Almaty, ۰۵۰۰۱۰, Kazakhstan

Gulama-Garip Alisher Ibrayev

Laboratory of Intelligent Robotic Systems, Joldasbekov Institute of Mechanics and Engineering, ۲۸ Shevchenko st., Almaty, ۰۵۰۰۱۰, Kazakhstan

Igor Gritsenko

Laboratory of Intelligent Robotic Systems, Joldasbekov Institute of Mechanics and Engineering, ۲۸ Shevchenko st., Almaty, ۰۵۰۰۱۰, Kazakhstan

Daniyar Kerimkulov

Laboratory of Intelligent Robotic Systems, Joldasbekov Institute of Mechanics and Engineering, ۲۸ Shevchenko st., Almaty, ۰۵۰۰۱۰, Kazakhstan

Assiya Boltaboyeva

Department of Artificial Intelligence and Big Data, Al-Farabi Kazakh National University, ۷۱ Al Farabi ave., Almaty, ۰۵۰۰۱۰, Kazakhstan

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