Author:
Zheng Pengfei,Yang Junkai,Lou Jingjing,Wang Bo
Abstract
AbstractAiming at the practical teaching of intelligent manufacturing majors faced with lack of equipment, tense teachers and other problems such as high equipment investment, high material loss, high teaching risk, difficult to implement internship, difficult to observe production, difficult to reproduce the results, and so on, we take the electrical automation technology, mechatronics technology and industrial robotics technology majors of intelligent manufacturing majors as an example, and design and establish a virtual simulation teaching platform for intelligent manufacturing majors by using the cloud computing platform, edge computing technology, and terminal equipment synergy. The platform includes six major virtual simulation modules, including virtual simulation of electrician electronics and PLC control, virtual and real combination of typical production lines of intelligent manufacturing, dual-axis collaborative robotics workstation, digital twin simulation, virtual disassembly of industrial robots, virtual simulation of magnetic yoke axis flexible production line. The platform covers the virtual simulation teaching content of basic principle experiments, advanced application experiments, and advanced integration experiments in intelligent manufacturing majors. In order to test the effectiveness of this virtual simulation platform for practical teaching in engineering, this paper organizes a teaching practice activity involving 246 students from two parallel classes of three different majors. Through a one-year teaching application, we analyzed the data on the grades of 7 core courses involved in three majors in one academic year, the proportion of participation in competitions and innovative activities, the number of awards and certificates of professional qualifications, and the subjective questionnaires of the testers. The analysis shows that the learners who adopt the virtual simulation teaching platform proposed in this paper for practical teaching are better than the learners under the traditional teaching method in terms of academic performance, proportion of participation in competitions and innovative activities, and proportion of awards and certificates by more than 13%, 37%, 36%, 27% and 22%, respectively. Therefore, the virtual simulation teaching platform of intelligent manufacturing established in this paper has obvious superiority in solving the problem of "three highs and three difficulties" existing in the practical teaching of engineering, and according to the questionnaire feedback from the testers, the platform can effectively alleviate the shortage of practical training equipment, stimulate the interest in learning, and help to broaden and improve the knowledge system of the learners.
Funder
the Special Project of Scientific Research and Development Center of Higher Education Institutions, Ministry of Education of the People's Republic of China
Publisher
Springer Science and Business Media LLC
Reference38 articles.
1. Krishnamoorthy, S. Online resources for teaching chemistry experiments virtually. Afr. J. Chem. Educ. 12(1), 71–81 (2022).
2. Chen, D., Kong, X. & Wei, Q. Design and development of psychological virtual simulation experiment teaching system. Com-put. Appl. Eng. Educ. 29, 481–490 (2021).
3. Kruger, K., Wolff, K. & Cairncross, K. Real, virtual, or simulated: Approaches to emergency remote learning in engineering. Comput. Appl. Eng. Educ. 30, 93–105 (2022).
4. Elkhatat, A. M. & Al-Muhtaseb, S. A. Virtual mimic of lab experiment using the computer-based Aspen plus sensitivity analysis tool to boost the attainment of experiment’s learning outcomes and mitigate potential pandemic confinements. Comput. Appl. Eng. Educ. 1, 1–16 (2022).
5. Nadeem, M., Lal, M., Cen, J. & Sharsheer, M. AR4FSM: Mobile augmented reality application in engineering education for finite-state machine understanding. Educ. Sci. 12, 555 (2022).
Cited by
1 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献