Abstract

The article presents and describes Cohen’s class time-frequency distributions which are expedient to use as a mathematical tool that allows to create a convenient – in terms of information content and semantic clarity – visual-graphical representation of the opera ting modes of various technological processes including processes of ferrous metallurgy. It was noted that a controlling process is usually implemented without simultaneous visual monitoring of each scalar (one-dimensional) coordinate that is under control, but the presence of such monitoring is an important condition for the computer-aided controlling of the dynamics of non-stationary technological processes. To eliminate this drawback, it was proposed to perform synchronous monitoring using the multidimensional Cohen’s class time-frequency distributions, when each measurement scalar signal is specifically represented through one of these distributions, for example, the Wigner-Ville distribution. An expression is given for the generalized distribution of Cohen’s class with a distribution kernel and an ambiguity function. This function allows receiving distributions of various types from the maternal function. The most typical representatives of time-frequency distributions forming this class are given with their available kernels. The possibility of appearance of interference elements, which make it difficult to identify the controlled modes, on a signal distribution map is proved. Case of the formation of virtual elements within the Wigner-Ville distribution representing a two-component one-dimensional signal is considered. Te conditions are explained for the emergence of parasitic elements on the distribution map, obtained, for example, during realizing the process of multi-component feeding the bulk blast furnace charge materials in the production of sintering mixture. An analytical expression is obtained for the Wigner distribution, which displays a multi-component scalar signal and contains the information (useful) and virtual (parasitic) parts of the time-frequency distribution. A link between the number of bulk material feeders available in the feeding devices unit and the number of parasitic (virtual) elements in the Wigner distribution was determined. Using the dosing process as an example, the effect of the noise components propagation in the Wigner distribution is demonstrated. An example is given to illustrate the penetration of noise into the Wigner distribution and appearance of the virtual concentration in it when displaying a signal waveform with a noisy pause and two sections with different frequencies. An expression for the Wigner distribution in the form of a comb function is obtained. The conclusion was made about the parameters of the distribution periodicity and the required sampling frequency of measurement signals.

Highlights

  • The article presents and describes Cohen’s class time-frequency distributions which are expedient to use as a mathematical tool that allows to create a convenient – in terms of information content and semantic clarity – visual-graphical representation of the opera­ting modes of various technological processes including processes of ferrous metallurgy

  • It was noted that a controlling process is usually implemented without simultaneous visual monitoring of each scalar coordinate that is under control, but the presence of such monitoring is an important condition for the computer-aided controlling of the dynamics of non-stationary technological processes

  • The conditions are explained for the emergence of parasitic elements on the distribution map, obtained, for example, during realizing the process of multi-component feeding the bulk blast furnace charge materials in the production of sintering mixture

Read more

Summary

ТЕХНОЛОГИЧЕСКИХ ПРОЦЕССОВ

Федосенков Б.А.4, д.т.н., профессор кафедры «Информационные и автоматизированные производственные системы». Для устранения этого недостатка предложено выполнять синхронный мониторинг с использованием многомерных время-частотных распределений класса Коэна, когда каждый измерительный скалярный сигнал специфически отображается посредством одного из таких распределений, например распределения Вигнера-Вилле. Приводится выражение для обобщенного распределения класса Коэна с наличием ядра распределения и функции неоднозначности. Ключевые слова: время-частотные распределения класса Коэна, распределение Вигнера-Вилле, ядро распределения, функция неоднозначности, интерференционные (виртуальные) элементы распределения, процессы черной металлургии, дозаторы непрерывного действия, сигнал дозирования, мультикомпонентный сигнал. Для устранения этого недостатка предлагается выполнять синхронный мониторинг [1] с использованием многомерных время-частотных распределений класса Коэна [2, 3], когда каждый измерительный скалярный сигнал специфически отображается посредством одного из таких распределений, например распределения Вигнера-Вилле. Время-частотные распределения и их ядра в составе (1) Time-frequency distributions and their kernels in composition (1)

Фазонормированный синус
Пример проникновения шума в распределение Вигнера
An example illustrating noise penetration into the Wigner distribution
БИБЛИОГРАФИЧЕСКИЙ СПИСОК
Full Text
Published version (Free)

Talk to us

Join us for a 30 min session where you can share your feedback and ask us any queries you have

Schedule a call