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A PHYSICS LESSON DESIGNED ACCORDING TO 7E MODEL WITH THE HELP OF INSTRUCTIONAL TECHNOLOGY (LESSON PLAN)

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Abstract (2. Language): 
Students enter the classrooms with a preexisting knowledge of science concepts. These science concepts sometimes show inconsistency with the accepted ones by the scientists and called as misconceptions. Studies applied science field have to get possession of abilities that not only detect these misconceptions also help to solve these problems. Hence, instructional methods that correct students‘ misconceptions become important. In this sense, a material related to the physics course is designed according to 7E model with the help of instructional technology.
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REFERENCES

References: 

Abraham, M. R., Williamson, V. M. and Westbrook, S. L. (1994). A cross-age study of the understanding of five chemistry concepts. Journal of Research in Science Teaching, 31, 147-165. Aguirre, J. and Erickson, G. (1984). Students‘ conceptions about the vector characteristics of three physics concepts. Journal of Research in Science Teaching, 21(5), 439-457. Airasian, Peter W. and Mary E. Walsh (1997), Cautions for Classroom Constructivists, Phi Delta Kappan, Vol.78 No.6, pp.444-449. Arnaudin, M. N., and Mintzes, J. J. (1985). Students‘ alternative conceptions of the human circulatory system: a cross- age study. Science Education, 69(5), 721-733. Balcı, S. (2004). A Science Lesson Designed According to 5E Model with the Help of Instructional Technology. IV. International Educational Technologies Conference, 24-25-26 November 2004, Sakarya University, Sakarya – Turkey. Bar, V., and Travis, A. (1991). Children‘s views concerning phase changes. Journal of Research in Science Teaching, 28, 363-382. Barman, C. (1997). The learning cycle revisited: A modification of an effective teaching model. Monograph 6. Washington, DC: Council for Elementary Science International.
112
Driver, R. and Easly, J. (1978). Pupil and paradigms: A review of the literature related to concept development in adolescent science students. Studies in Science Education, 5, 61- 84. Erickson, G. L. (1979). Children‘s conceptions of heat and temperature phenomena. Science Education, 63, 211-230. Fisher, M. K. (1985). A misconception in biology: Amino acids and translation. Journal of Research in Science Teaching, 22(1), 53-62. Fredette, N. H., and Lockhead, J. (1980). Students‘ conceptions of simple circuits. The Physics Teacher, March,194- 198. Gadanidis, George (1994), Deconstructing Constructivism, The Mathematics Teacher, Vol.87 No.2 Feb, pp.91-97. Gilbert, T.K., Osborne, R.T., and Fensham, P.T. (1982). Children‘s science and its consequences for teaching. Science Education, 66(4), 623-633. Helm, M. (1980), Misconceptions in physics amongst South African students. Physics Education, Vol. 15, pp.92-105. Huddle, P.A., White, M. D. and Rogers, F. (2000). Using a teaching model to correct known misconceptions in electrochemistry. Journal of Chemical Education. 77(1), 104- 110. Jaramillo, J., A. (1996), Vygotsky's Sociocultural Theory and Contributions to the Development of Constructivist Curricula, Education, Vol.117 No.1 Fall, pp.133-140. Kamii, Constance and Janice K. Ewing (1996), Basing Teaching on Piaget's Constructivism, Childhood Education, Vol.72 No.5, pp.260-264. Karplus, R., and H.D. Thier. (1967). A New Look at Elementary School Science. Chicago: Rand McNally. Lawson, A.E. (1995). Science Teaching and the Development of Thinking. Belmont, Calif.: Wadsworth. Lawson, A.E., Abraham, M.R., and Renner, J.W. (1989). A theory of instruction: Using the learning cycle to teach science concepts and thinking skills. National Association for Research in Science Teaching (Monograph 1). Lin H. and Cheng H. (2000). The assessments of students‘ and teachers‘ understanding of gas laws. Journal of Chemical Education. 77(2), 235- 238. Marques, L. and Thomson, D. (1997). Miscocneptions and conceptual changes concerning continental drift and plate tectonics among Portuguese students aged 16-17. Research in Science and Technological Education. 15(2), 195-222. Mintzes, J. J. (1984). Naïve theories in biology: Children‘s concepts of the human body. School Science and Mathematics, 84(7), 548-555.
113
Nussbaum, J. and Novak, J. D. (1976). An assessment of children‘s concepts of the earth utilizing structured interviews. Science Education, 60(4), 535-550. Osborne, R.J. (1983). Towards Modifying Children‘s Ideas about Electric Current. Research in Science and Technological Education, 1, 73-82. Perkins, D. (1999), The Many Faces of Constructivism, Educational Leadership, Vol.57 No.3 November, pp.6-11. Roblyer, M.D., Jack Edwards and Mary Ann Havriluk (1996), Learning Theories and Integration Models, Ch.3 in Integrating Educational Technology into Teaching, Prentice Hall, , pp.54-79. Renner, J. W., Abraham, M. R., Grzybowski, E. B., and Marek, E. A. (1990). Understandings and misunderstandings of eigth graders of four physics concepts found in textbooks. Journal of Research in Science Teaching, 27, 35-54.
Scott, W. B., Risley, J. S. (1999). Using Physlets to Teach Electrostatics. Department of Physics, North Carolina State University, Raleigh, NC 27695 Wolfgang Christian. Department of Physics, Davidson College, Davidson, NC 28036 Published in The Physics Teacher, v 57 pp. 276-281. Retrieved April 1, 2005 from http://physics.wku.edu/~bonham/Publications/PT_article.pdf Smith, E. L. and Anderson C. W. (1984). Plants as producers: A case study of elementary science teaching. Journal of Research in Science Teaching, 21(7), 685-698. Westbrook, S. L. and Marek, E. A. (1991). A cross- age study of student understanding of the concept of diffusion. Journal of Research in Science Teaching, 28(8), 649- 660.
Zahorik, J.A. (1997), Encouraging - and Challenging - Students' Understandings, Educational Leadership, Vol.54 No.6 Mar., pp.30-32.

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