基于数字技术的辐射类无损检测专家培训

V. Kuvshinnikov, E. Kovshov
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The results of software implementation of mathematical models of physical and physicochemical processes of ionizing radiation, attenuation and absorption of penetrating radiation within the scope of digital twin of radiographic image generation as a result of simulation of the technological process of radiation type of nondestructive testing are presented.Results. Performed practical implementation of didactic materials in the form of hardware and software VR-simulator as part of digital educational environment to solve the problems of training, retraining, preparation for certification of personnel and providing admission of specialists to work on radiation type of nondestructive testing at facilities. Physical and technological aspects are analyzed, modeling, algorithmization and software implementation of VR-simulator are performed. A comprehensive approach to the creation of a learning environment with the use of digital technologies is presented. Considered are the main components, their goals and objectives. The structure of a practical lesson and illustrations of the training process in a virtual environment are given. The results of approbation of training programs with integration of classes in VR-simulator of industrial radiography have shown that the total time of practice of trainees increases by 40-55% with simultaneous reduction of per capita radiographic laboratory load by more than 25%. The main directions of development and scaling of software and hardware solution using VR-technologies are given.Conclusion. The developed and tested hardware-software solution together with the results of scientific research suggests the possibility of application and development directions of the digital educational system with VR-environment. The proposed approach application will allow to reduce environmental and biomedical risks by reducing the requirements to safety of training with the use of software and hardware solution. 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引用次数: 0

摘要

研究目的是开发包括虚拟现实技术在内的应用软件,通过减少放射实验室的人均负荷,同时保持实践培训量、获得的能力和形成的相关专业技能,增加接受过辐射类无损检测培训的专家人数。确定了结构材料和制造产品无损检测专家培训过程虚拟化的前提条件。考虑了与无损检测辐射类型教育周期实践部分有关的工业射线照相模拟器需求的主要因素。通过分析,确定了可虚拟实现的实践培训的最重要方面。在模拟无损检测辐射类型的技术过程中,在射线图像生成的数字孪生范围内,电离辐射的物理和物理化学过程、穿透辐射的衰减和吸收的数学模型的软件实施结果得到了展示。作为数字教育环境的一部分,以硬件和软件 VR 模拟器的形式实际实施了教学材料,以解决培训、再培训、人员认证准备和接纳专家在设施中从事辐射型无损检测工作的问题。对 VR 模拟器的物理和技术方面进行了分析、建模、算法和软件实施。介绍了利用数字技术创建学习环境的综合方法。考虑了主要组成部分、目标和目的。介绍了实践课程的结构和虚拟环境中的培训过程。在工业放射学 VR 模拟器中整合课程的培训计划获得批准的结果表明,学员的总实践时间增加了 40-55%,同时人均放射学实验室负荷减少了 25%以上。结论。经过开发和测试的软硬件解决方案以及科学研究的结果表明,使用 VR 环境的数字教育系统的应用和发展方向是可行的。建议的应用方法将通过使用软件和硬件解决方案降低对培训安全的要求,从而减少环境和生物医学风险。在软件工具和数学模型(包括人工智能方法)应用的基础上,实现测试任务生成和知识控制程序的自动化,将有助于缩短培训时间,并有助于进一步增加无损检测各种类型和方法的受训专家人数。在统一模块化方法、软件库和软硬件接口的基础上,随着软硬件解决方案(工业射线照相模拟器)功能的扩展和发展,虚拟模拟器简化了专家培训和知识控制过程的组织。数字虚拟环境(VR 环境)开发的实用价值体现在根据 GOST R 56542-2019 "无损检测。类型和方法分类"。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Specialists Training for the Radiation Type of Non-Destructive Testing Based on Digital Technologies
The purpose of research is the development of application software, including VR-technologies, to increase the number of trained specialists in radiation type of nondestructive testing by reducing the per capita load on radiographic laboratories while maintaining the amount of practical training, acquired competencies and formed relevant professional skills.Methods. Prerequisites for virtualization of the process of training specialists in nondestructive testing of structural materials and fabricated products are defined. The main factors of demand for industrial radiography simulator in relation to the practical part of the educational cycle on radiation type of nondestructive testing are considered. As a result of the analysis the most significant aspects of practical training, available for their virtual realization, are singled out. The results of software implementation of mathematical models of physical and physicochemical processes of ionizing radiation, attenuation and absorption of penetrating radiation within the scope of digital twin of radiographic image generation as a result of simulation of the technological process of radiation type of nondestructive testing are presented.Results. Performed practical implementation of didactic materials in the form of hardware and software VR-simulator as part of digital educational environment to solve the problems of training, retraining, preparation for certification of personnel and providing admission of specialists to work on radiation type of nondestructive testing at facilities. Physical and technological aspects are analyzed, modeling, algorithmization and software implementation of VR-simulator are performed. A comprehensive approach to the creation of a learning environment with the use of digital technologies is presented. Considered are the main components, their goals and objectives. The structure of a practical lesson and illustrations of the training process in a virtual environment are given. The results of approbation of training programs with integration of classes in VR-simulator of industrial radiography have shown that the total time of practice of trainees increases by 40-55% with simultaneous reduction of per capita radiographic laboratory load by more than 25%. The main directions of development and scaling of software and hardware solution using VR-technologies are given.Conclusion. The developed and tested hardware-software solution together with the results of scientific research suggests the possibility of application and development directions of the digital educational system with VR-environment. The proposed approach application will allow to reduce environmental and biomedical risks by reducing the requirements to safety of training with the use of software and hardware solution. Automation of testing task generation and knowledge control procedures on the basis of software tools and mathematical models application, including methods of artificial intelligence, will allow to achieve training term reduction and will contribute to further increase in the number of trained specialists in various types and methods of nondestructive testing. With the functional capabilities expansion and evolutionary development of hardware-software solution (industrial radiography simulator) on the basis of unified modular approach, software libraries and hardware-software interfaces, virtual simulator simplifies organization of the process of specialists training and knowledge control. Practical value of the digital virtual environment (VR-environment) development is revealed due to the transfer and scaling of the obtained hardware-software solution to other types and methods of nondestructive testing according to GOST R 56542-2019 " Non-destructive testing. Classification of types and method".
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