CONCEPTIONS OF PRIMARY SCHOOL STUDENTS WITH MILD EDUCATIONAL NEEDS ABOUT THE CONCEPTUAL AREA OF HEAT

Vera Eirini Chandra, Michael Skoumios

Abstract


Although students' conceptions of science concepts have been extensively investigated, research examining the conceptions of students with mild special education needs is limited. This study aims to investigate the conceptions of primary school students with mild special educational needs about heat, temperature, thermal equilibrium, and thermal conductivity. Semi-structured interviews were used as a data collection tool and were applied to five 12-year-old students with mild special educational needs. The analysis of the students' responses revealed that they use conceptions about heat, temperature, thermal equilibrium, and thermal conductivity that are different from school knowledge. The findings of this work may be applied in both research and educational contexts.

 

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conceptions, primary school students, mild special educational needs, heat, temperature

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References


Aiello-Nicosia M L, Sperandeo-Mineo R M, 2000. Educational reconstruction of the physics content to be taught and pre-service teacher training: a case study. International Journal of Science Education 22(10): 1085–1097 doi:10.1080/095006900429457

Appleton K, 1984. Children’s ideas about hot and cold. Learning in Science Project (Primary), Science Education Research Unit (Hamilton, New Zealand, Waikato University). ERIC Document Reproduction Service No. ED 252 407. Retrieved from https://eric.ed.gov/?id=ED252407

Appleton K, 1985. Children’s ideas about temperature. Research in Science Education 15(1): 122–126 doi:10.1007/bf02356533

Arnold M, Millar R, 1996. Learning the scientific “story”: A case study in the teaching and learning of elementary thermodynamics. Science Education 80(3): 249–281 doi:10.1002/(sici)1098-237x(199606)80:3%3C249::aid-sce1%3E3.0.co;2-e

Briggs H, Brook A, 1984. Students’ ideas of heat. Paper presented at the SSCR Conference on Learning, Doing and Understanding in Science, University of Leeds.

Bruce W, Kopnicek R, 1990. Teaching for conceptual change: confronting children’s experience. Phi Delta Kappan, May: 680–684. Retrieved from https://edci670in2015.wordpress.com/wp-content/uploads/2015/01/watson_konicek_1990.pdf

Chi MTH, Kristensen K, Roscoe R, 2012. Misunderstanding emergent causal mechanisms in natural selection. In: Rosengren KS, Evans EM, Brem S, Sinatra GM (eds), Evolution challenges: Integrating research and practice in teaching and learning about evolution. Oxford University Press, New York, pp 145–173

Driver R, Russell T, 1982. An investigation of the ideas of heat, temperature and change of state of children aged between 8 and 14 years. Centre for Studies and Mathematics Education, University of Leeds

Driver R, Guesne E, Tiberghien A, 1985. Children’s ideas in science. Open University Press. Retrieved from https://archive.org/details/childrensideasin0000unse

Ellse M, 1988. Transferring not transforming energy. School Science Review 69(248): 427–437. Retrieved from https://www.academia.edu/65465322/Transferring_Not_Transforming_Energy

Engel E, 1982. The development of understanding of selected aspects of pressure, heat and evolution in pupils aged between 12–16 years. PhD Thesis, University of Leeds. Retrieved from https://etheses.whiterose.ac.uk/id/eprint/26093/1/255480.pdf

Engel Clough E, Driver R, 1985. Secondary students' conceptions of the conduction of heat: bringing together personal and scientific views. Physics Education 20: 175–182 doi:10.1088/0031-9120/20/4/309

Erickson G, 1979. Children’s conceptions of heat and temperature. Science Education 63(2): 221–230 doi:10.1002/sce.3730630210

Erickson G L, 1980. Children’s viewpoints of heat: A second look. Science Education 64(3): 323–336 doi:10.1002/sce.3730640307

Erickson G L, Tiberghien A, 1985. Heat and temperature. In: Driver R, Guesne E, Tiberghien A (eds), Children's Ideas in Science. Open University Press. Retrieved from https://archive.org/details/childrensideasin0000unse

Frenkel P, Strauss S, 1985. The development of the concept of temperature when assessed via three developmental models. Working paper No. 46, Tel-Aviv University (Israel), Unit on Human Development and Education. ERIC Document Reproduction Service No. ED 267 968. Retrieved from https://eric.ed.gov/?ff1=pubSpeeches%2FMeeting+Papers&q=both&ff2=pubDissertations%2FTheses+-+Doctoral+Dissertations&id=ED267968

Harrison A, Grayson D, Treagust D, 1999. Investigating a grade 11 student's evolving conceptions of heat and temperature. Journal of Research in Science Teaching 36(1): 55–87 doi:10.1002/(sici)1098-2736(199901)36:1%3C55::aid-tea5%3E3.0.co;2-p

Harrison G, 1994. Investigation into conduction in solids. School Science Review 75(273): 95–96

Jara-Guerrero S, 1993. Misconceptions on heat and temperature. In: Proceedings of the Third International Seminar on Misconceptions and Educational Strategies in Science and Mathematics. Misconceptions Trust, Ithaca, NY. Retrieved from https://mlrg.org/proc3pdfs/Jara-Guerrero_Heat.pdf

Katsidimas MA, Lavidas K, Kornelaki AC, Kaliampos G, 2023. An investigation on alternative ideas on thermal phenomena of pupils with and without learning difficulties. Sn Social Sciences 3(1): 15. Retrieved from https://link.springer.com/article/10.1007/s43545-022-00603-5

Kesidou S, Duit R, 1993. Students’ conceptions of law of thermodynamics—An interpretative study. Journal of Research in Science Teaching 30(1): 85–106 doi:10.1002/tea.3660300107

Kotsis K, Kaliampos G, Kornelaki A, 2023. A Critical Analysis of the Democratic Argument for Teaching Science: The Case of Cell Phones. The European Educational Researcher 6(2): 3–17 doi:10.31757/euer.621

Lewis E L, 1991. The process of scientific knowledge acquisition among middle school students learning thermodynamics. PhD Thesis, University of California, Berkeley, CA

Lewis E, Linn M, 1994. Heat energy and temperature concepts of adolescents, adults, and experts: implications for curricular improvements. Journal of Research in Science Teaching 31(6): 657–677 doi:10.1002/tea.3660310607

Magnusson S, Krajcik J, 1993. Teacher knowledge and representation of content in instruction about heat energy and temperature. Paper presented at the Annual Meeting of the National Association for Research in Science Teaching, Atlanta, GA. Retrieved from https://eric.ed.gov/?id=ED387313

Newell A, Ross K, 1996. Children’s conceptions of thermal conduction—or the story of a woolen hat. School Science Review 78(282): 33–38

Pfundt H, Duit R, 2004. Bibliography: Students’ and teachers’ conceptions and science education. IPN. Retrieved from https://archiv.leibniz-ipn.de/stcse/

Rozier S, Viennot L, 1991. Students’ reasonings in thermodynamics. International Journal of Science Education 13(2): 159–170 doi:10.1080/0950069910130203

Salame I I, Fadipe O, Akter S, 2025. Examining difficulties, challenges, and alternative conceptions students exhibit while learning about heat and temperature concepts. Interdisciplinary Journal of Environmental and Science Education 21(2): e2510. doi:10.29333/ijese/15997

Stavy R, Berkovitz B, 1980. Cognitive conflict as a basis for teaching qualitative aspects of the concept of temperature. Science Education 64(5): 679–692 doi:10.1002/sce.3730640514

Stollar-Bolinger TL, 2008. The perspectives of general education teachers at the elementary level concerning the Response to Intervention-Student Support Team process. PhD Thesis, ProQuest

Stylianidou F, 1997. Children’s learning about energy and processes of change. School Science Review 79(286): 91–97

Summers M K, 1983. Teaching heat: An analysis of misconceptions. School Science Review 64: 670–676. Retrieved from https://eric.ed.gov/?id=EJ283122

Taber K S, 2017. Reflecting the nature of science in science education. In: Taber K S, Akpan B (Eds), Science Education: An International Course Companion, Rotterdam, Sense Publishers, pp 23–37. doi:10.1007/978-94-6300-749-8_2

Thomaz M, Malaquias I, Valente M, Antunes M, 1995. An attempt to overcome alternative conceptions related to heat and temperature. Physics Education 30(1): 19–26 doi:10.1088/0031-9120/30/1/004

Tiberghien A, 1985. Heat and Temperature, part B. In: Driver R, Guesne E, Tiberghien A (eds), Children's Ideas in Science. pp 52–84. Open University Press

Viennot L, 1979. Spontaneous reasoning in elementary dynamics. European Journal of Science Education 1(2): 205–221 doi:10.1080/0140528790010209

Vosniadou S, Kempner WF, 1993. Mental models of heat. Paper presented at the Biennial Meeting of the Society for Research in Child Development, New Orleans, LA

Warren J W, 1983. Energy and its carriers: a critical analysis. Physics Education 18: 209–212. Retrieved from https://iopscience.iop.org/article/10.1088/0031-9120/18/5/306/pdf

Watts D M, Gilbert J K, 1985. Appraising the understanding of science concepts: heat. Department of Educational Studies, University of Surrey, Guildford

Wiser M, 1986. The differentiation of heat and temperature: History of science and novice-expert shift. In: Strauss S (Ed), Ontogeny, Phylogeny and Historical Development, Norwood, NJ, Ablex Publishing Company, pp 1–48. Retrieved from https://www.bloomsbury.com/us/ontogeny-phylogeny-and-historical-development-9780893913847/

Wiser M, 1988. The differentiation of heat and temperature: History of science and novice-expert shift. In: Strauss S (Ed), Ontogeny, Phylogeny and Historical Development, Norwood, NJ, Ablex, pp 28–48. Retrieved from https://www.bloomsbury.com/us/ontogeny-phylogeny-and-historical-development-9780893913847/




DOI: http://dx.doi.org/10.46827/ejes.v12i10.6206

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