Visualization of physical fields with augmented reality in teaching

被引:0
作者
Mayrhofer, Dominik [1 ]
Ebner, Lucas Alexander [1 ]
Hagenbuchner, Clemens [1 ]
Museljic, Eniz [1 ]
Baumgartner, Paul [1 ]
Kaltenbacher, Manfred [1 ]
机构
[1] Graz Univ Technol, Inst Fundamentals & Theory Elect Engn, A-8010 Graz, Austria
来源
2023 24TH INTERNATIONAL CONFERENCE ON THE COMPUTATION OF ELECTROMAGNETIC FIELDS, COMPUMAG | 2023年
关键词
Augmented reality; Teaching; Data visualization; Finite Element Method; Digital twins;
D O I
10.1109/COMPUMAG56388.2023.10411781
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Understanding physical effects occurring, for example, in the electromagnetic field, can be challenging. To ease the learning experience, it is beneficial to visualize and encourage interaction with the physical field. Augmented Reality (AR) can serve as a tool to visualize naturally invisible fields to help students understand physical effects. In this paper, we present a workflow to incorporate field results stemming from a FEM tool or simple analytical solutions into an augmented reality (AR) experience. We focus on providing a simple framework for educators to integrate this tool into school or university teaching. We present a workflow to process simulation results for AR and provide source material through a template and a guide so that educators can quickly translate their projects into (augmented) reality. The basis for this project is the game engine Unity, which can be used free of charge for educators. Combined with other free or open-source programs for visualization and preparation like openCFS and Paraview, this setup can be used freely by anybody for education.
引用
收藏
页数:4
相关论文
共 15 条
  • [1] Interactive Toolbox for the Visualization of Typical Antenna Attributes
    Baumgartner, Paul
    Bauernfeind, Thomas
    Preis, Kurt
    Biro, Oszkar
    [J]. IEEE TRANSACTIONS ON MAGNETICS, 2017, 53 (06)
  • [2] Applications of augmented reality-based natural interactive learning in magnetic field instruction
    Cai, Su
    Chiang, Feng-Kuang
    Sun, Yuchen
    Lin, Chenglong
    Lee, Joey J.
    [J]. INTERACTIVE LEARNING ENVIRONMENTS, 2017, 25 (06) : 778 - 791
  • [3] A review of using Augmented Reality in Education from 2011 to 2016
    Chen, Peng
    Liu, Xiaolin
    Cheng, Wei
    Huang, Ronghuai
    [J]. INNOVATIONS IN SMART LEARNING, 2017, : 13 - 18
  • [4] The Past, Present, and Future o f Virtual and Augmented Reality Research: A Network and Cluster Analysis of the Literature
    Cipresso, Pietro
    Chicchi Giglioli, Irene Alice
    Alcaniz Raya, Mariano
    Riva, Giuseppe
    [J]. FRONTIERS IN PSYCHOLOGY, 2018, 9
  • [5] Dunser A., 2012, P 24 AUSTR COMPUTER, P107, DOI [10.1145/2414536.2414554, DOI 10.1145/2414536.2414554]
  • [6] Augmented reality and digital twin system for interaction with construction machinery
    Hasan, Syed Mobeen
    Lee, Kyuhyup
    Moon, Daeyoon
    Kwon, Soonwook
    Jinwoo, Song
    Lee, Seojoon
    [J]. JOURNAL OF ASIAN ARCHITECTURE AND BUILDING ENGINEERING, 2022, 21 (02) : 564 - 575
  • [7] Kaltenbacher M, 2022, openCFS
  • [8] Learning with augmented reality: Impact of dimensionality and spatial abilities
    Krueger, Jule M.
    Palzer, Kevin
    Bodemer, Daniel
    [J]. COMPUTERS AND EDUCATION OPEN, 2022, 3
  • [9] Li W., 2017, Multimodal Technologies and Interaction, V1, P41
  • [10] A Computer Aided Education System Based on Augmented Reality by Immersion to 3-D Magnetic Field
    Matsutomo, Shinya
    Manabe, Tomohisa
    Cingoski, Vlatko
    Noguchi, So
    [J]. IEEE TRANSACTIONS ON MAGNETICS, 2017, 53 (06)