
In this lesson, the content of the lesson is basically explained, and the contents section is expressed in detail.
Explanation of the concept of analogy, detailing the analogy relations of electrical-mechanical-hydraulic systems are explained in this section.
Explanation of mass, spring and damper parameters through Basic Physics Laws and Energy Conservation Laws is explained in this course.
In this course, the relationship between Pendulum and DC Motor System and M, C, K parameters is explained.
The derivation and explanation of the electrical parameters of the Pendulum and DC Motor System are explained.
Obtaining real-valued dynamic equations depending on the material and shape properties selected is examined in this lecture.
In this section, state-space representation method are explained in detail that the expression of the obtained dynamic system equations.
The mathematical expressions described in the Theoretical Modeling Technique section are described how to obtain system dynamics by obtaining time responses on Matlab / Simulink software.
You can download the Matlab / Simulink model and presentation materials of the course from the attached file.
In this course, how to create system dynamics models, which are one of the basic areas of mechatronic systems and which are actively used in mathematical modeling applications, are explained. The use of analogy models and its relationship with energy principles in an active form are given in this course.
The problem of transforming theory into practice or transferring the theory to a simulation environment, which is one of the biggest problems of engineering students, will be tried to be overcome with MATLAB applications. The SIMULINK interface has been actively preferred in the Matlab application. In this program, it is aimed to model the systems in real time / iterative and to get time responses. In addition, the input values given to the system and the effect of these values on the result are discussed.
In order to realize the system modeling, especially the equations of motion have been tried to be implemented by Transfer Function and State-Space Model. The main purpose of the system modeling applications given on the frequency base is to obtain the characteristics of linear systems and to create an interface for the development of tools to be used in control problems. In the State-Space model, it is shown how the system can be modeled even in a nonlinear state. The active use of "Matlab Function" expressions in MATLAB/SIMULINK program especially for Script Application is one of the contents of this course.
In addition, as another problem, how the system parameters that need to be transferred to real life are equated in theory and turned into design parameters is one of the active outputs of this course. It is aimed to clarify the designs in a time-dependent model, especially with the understanding of Pendulum and DC Motor Systems and obtaining the material selection / design parameters in 3-Dimensional space.
I hope our lesson will be useful for you :)