Open Access Paper
30 June 2022 Hands on vs. VR lectures in times of the pandemic
Stefano Gampe, Dan Curticapean
Author Affiliations +
Proceedings Volume 12297, Sixteenth Conference on Education and Training in Optics and Photonics: ETOP 2021; 122970R (2022) https://doi.org/10.1117/12.2635528
Event: Sixteenth Conference on Education and Training in Optics and Photonics: ETOP 2021, 2021, Online Only
Abstract
The implementation of physical and optical experiments in a VR environment will be presented. A comparison between the hands on and the digital VR experiments will be analyzed and presented.

1.

Hands On vs. VR

A change from face-to-face teaching to digital distance learning has never been more urgent than in the last two years due to corona pandemic. Thereby, we converted some experiments from the physics and optics labs into a digital respectively VR environment. A promising experiment for this implementation was measurement of specific charge (e/m) of electron Fig. 1. By setting the accelerating voltage U and current I in the coil of the magnetic field B, the specific charge (1) can be measured by reading the diameter d of the electron beam. In order to provide a versatile performance of the experiment, a corresponding application was developed. The calculated value is quite close to the theoretical value 1,759 · 00209_psisdg12297_122970r_page_1_1.jpg

Fig. 1:

Physical experiment: Specific charge (e/m) of electron. Photography by Dan Curticapean

00209_psisdg12297_122970r_page_1_2.jpg
00209_psisdg12297_122970r_page_1_3.jpg

where the magnetic field of the Helmholtz coils (2) is given by:

00209_psisdg12297_122970r_page_1_4.jpg

2.

VR Environment

One of the crucial questions to be answered is how to design the VR experiments so that they also achieve the higher levels of Bloom’s taxonomy [1] - [3]. We start with a simple measurement experiment in the electrical engineering.

The simple measurement with a digital multimeter is to be supplemented and later replaced by a VR multimeter in a first step (Fig. 1). This allows students to test and compare the two multimeter in advance and perform some individual measurements according to the K3 (Application) level of knowledge. In a next step the authors extend the VR environment and simulate a VR laboratory implicating the use of the VR multimeter (Fig 2Fig. 3). By expanding the VR environment with additional measuring devices and electrical components, the experimental possibilities are significantly expanded, thus creating a big variety of new options. Higher educational levels can be achieved easily.

Fig. 1.

Real- vs. VR simulated measurement device

00209_psisdg12297_122970r_page_2_1.jpg

Fig. 2.

Laboratory VR environment

00209_psisdg12297_122970r_page_2_2.jpg

Fig. 3.

VR experimental setup environment

00209_psisdg12297_122970r_page_2_3.jpg

An additional example from optics respectively colorimetry is shown in Fig. 4.

Fig. 4:

Colorimetric experiment: a) real measure set-up;

b) VR measurement environment

00209_psisdg12297_122970r_page_2_4.jpg00209_psisdg12297_122970r_page_2_5.jpg

3.

3.

References

[1] 

Benjamin S. Bloom, Taxonomie von Lernzielen im kognitiven Bereich, Weinheim und Basel, 4. Auflage (1972). Google Scholar

[2] 

Max D. Engelhart, Edward J. Furst, Walker H. Hill, Benjamin S. Bloom, Taxonomie von Lernzielen im kognitiven Bereich, Beltz Verlag, ISBN-10: 3407182961, (2001). Google Scholar

[3] 

Lorin W. Anderson, David R. Krathwohl (Hrsg.), A Taxonomy for Learning, Teaching, and Assessing. A Revision of Bloom’s Taxonomy of Educational Objectives, Addison-Wesley, New York (2001). Google Scholar
© (2022) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Stefano Gampe and Dan Curticapean "Hands on vs. VR lectures in times of the pandemic", Proc. SPIE 12297, Sixteenth Conference on Education and Training in Optics and Photonics: ETOP 2021, 122970R (30 June 2022); https://doi.org/10.1117/12.2635528
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KEYWORDS
Education and training

Environmental sensing

Magnetism

Measurement devices

Photonics

Electron beams

Optical signal processing

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