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Using a Low Cost Indentation Apparatus for the Study of Mechanical Properties of Thermoinsulating Materials and its Utilization in the Laboratory Practice of Students

Published online by Cambridge University Press:  31 January 2011

Charilaos A. Tsihouridis
Affiliation:
hatsihour@uth.gr, University of Thessaly, School of Special Education, Volos, Greece
Hariton M. Polatoglou
Affiliation:
hariton@physics.auth.gr, Aristotle University Thessaloniki, Physics, Thessaloniki, Greece
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Abstract

In the present work we describe an experimental apparatus of very low cost , aiming at the experimental study of the mechanical properties of solid materials, using the method of indentation. The measurements allow, through a simple analysis, the quantitative determination of the materials' hardness and bulk modulus. A very important class of commonly used materials, namely thermoinsulating materials, is proposed for a case study. The method can furthermore be used to demonstrate the elastic and the plastic behavior of materials. The educational exploitation of the specific apparatus at a technical high school class in Larissa (Greece) and at a university physics students' laboratory practice on the subject of mechanical properties of materials are also described. The responses of the students on the whole process, and specifically on observations related to the pedagogical-educational aspects (active participation, challenge of interest, easiness of measurements, easiness of processing experimental data), as well as related to metrological aspects (uncertainty of measurements), were very positive and are also presented and discussed.

Type
Research Article
Copyright
Copyright © Materials Research Society 2010

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References

1 Hofstein, A. and Lunetta, V. N. Sc. Educ. 88(1), 2854, (2003).Google Scholar
2 Roth, W. M. Res. in Sc. Teach. 31, 197223, (1994).Google Scholar
3 Tobin, K. G. Sch. Sc. and Math. 90, 403418, (1990).Google Scholar
4 Baird, J. R. in The Student Laboratory And The Science Curriculum, edited by Hegarty-Hazel, E. (London: Routledge, 1990), pp. 183200.Google Scholar
5 Hodson, D. Stud. in Sc. Educ. 22, 85142, (1993).Google Scholar
6 Lazarowitz, R. and Tamir, P. in Handbook Of Research On Science Teaching And Learning, edited by Gabel, D. L. (New York: Macmillan, 1994), pp. 94130.Google Scholar
7 Tsihouridis, Ch., Vavougios, D., and Ioannidis, D.S. Proceedings of 12th International Conference on Interactive Computer Aided Learning / ICL2009, (M, Auer. (Eds.), Villach, Austria, 2009, Kassel University Press ISBN 978-3-89958-481-3), pp. 795811.Google Scholar
8 Cox, A. J. and Junkin, W. F. Phys. Educ. 37(1), 3744, (2002)Google Scholar
9 Gere, JM and Timoshenko, S. P. Mechanics of materials, 4th ed. (Stanley Thornes Publishers, 1999).Google Scholar
10 Tabor, D., The Hardness of Metals (Oxford University Press, 1951).Google Scholar
11 Eisenstadt, M. M. Introduction to Mechanical Properties of Materials, (MacMillan, 1971).Google Scholar
12 Stachurski, Z.H., Mater. For. 30, 118124, (2006).Google Scholar
13 Moffat, W. G. Courtney, T. H. and Wulff, J. The Structure and Properties of Materials, (Vol. 3, John Wiley & Sons, 1967).Google Scholar
14 Chandler, H. Hardness Testing, 2nd ed. (ASM International, 1999).Google Scholar
15 Hibbeler, R. Mechanics of Materials, (Prentice Hall, New Jersey, 1997).Google Scholar
16 Higdon, A. Ohlsen, S. Stiles, W. Weese, J. and Riley, W. Mechanics of Materials, (John Wiley and Sons, 1978).Google Scholar