Mechatronic control system for high-temperature synthesis of materials based on intelligent measuring modules

Alexey V. Dolmatov
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Abstract

The subject of researcs: The article is devoted to the measuring complex for the experimental study of the SHS phenomenon. The purpose of the development was to simultaneously observe microheterogeneous processes and macrokinetics of high-temperature synthesis. Methods and objects of research: Embedded computing platforms with support for artificial intelligence tools are used to organize high-speed multi-zone registration of thermal imaging and spectral data. Results of research: Within the framework of the complex, a group of intelligent modules with autonomous data analysis in real time has been developed. The pyrometric module of the complex reveals structural phase transitions in the process of high-temperature synthesis of materials and measures characteristic temperatures. The thermal imaging module determines the position of the SHS wave front and plots the material and temperature phase distributions on the sample surface. The mechatronic module predicts the location of a new observation area, based on the measured parameters of the SHS process, and moves the optical control means there when the combustion wave leaves the current registration area. The interaction of intelligent modules of the mechatronic system is implemented through messages in a wireless network, and their synchronization via the NTP protocol has an error of about 40 s.
基于智能测量模块的材料高温合成机电控制系统
研究课题:本文主要研究了用于SHS现象实验研究的测量复合体。开发的目的是同时观察高温合成的微观非均相过程和宏观动力学。研究方法和研究对象:利用支持人工智能工具的嵌入式计算平台,组织热成像和光谱数据的高速多区配准。研究成果:在综合体框架内,开发了一组具有实时自主数据分析功能的智能模块。该配合物的热测模块揭示了材料高温合成过程中的结构相变,并测量了特征温度。热成像模块确定SHS波前的位置,绘制样品表面的材料和温度相位分布。机电模块根据SHS过程的测量参数预测新观测区域的位置,并在燃烧波离开当前配准区域时将光学控制装置移动到新观测区域。机电一体化系统各智能模块之间的交互是通过无线网络中的消息实现的,通过NTP协议进行同步的误差约为40 s。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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