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研究生: 楊瑜君
Yang, Yu-Chun
論文名稱: 概念取代教學對國中生浮力單元概念學習與概念改變之影響
A Study of Teaching with Concept Substitution on Junior High School Students’ Learning and Conceptual Change on Buoyancy
指導教授: 顏妙璇
Yen, Miao-Hsuan
學位類別: 碩士
Master
系所名稱: 科學教育研究所
Graduate Institute of Science Education
論文出版年: 2017
畢業學年度: 105
語文別: 中文
論文頁數: 59
中文關鍵詞: 概念取代概念改變浮力
英文關鍵詞: Concept Substitution, Conceptual Change, Buoyancy
DOI URL: https://doi.org/10.6345/NTNU202202374
論文種類: 學術論文
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  • 本研究以「概念取代理論」為基礎,發展浮力概念取代教學。探討概念取代教學與傳統式教學在浮力單元迷思概念改變之情形。本研究採用準實驗研究法,研究對象為兩班國中九年級學生,分別為實驗組19人,實行概念取代教學;對照組21人,施以傳統式教學,並收集浮力概念診斷測驗前後測、浮力概念應用後測以及浮力概念延宕後測等資料,以了解學生浮力概念的學習成效與迷思概念改變情形。以下為本研究的結果:
    1. 實驗組與對照組概念改變皆有成效,然實驗組之概念改變成效顯著優於對照組,但在正確概念學習成效上無顯著差別。代表概念取代教學主要幫助的是概念改變的部分。
    2. 實驗組的應用測驗顯著優於對照組。代表學生經過概念取代教學後對浮力概念有較佳的解釋能力。
    3. 延宕後測整體而言兩組沒有顯著差異,但實驗組在概念取代題型的得分上高於對照組,雖未達顯著差異,仍有優於對照組的趨勢。
    概念取代教學可以有效的幫助學生產生概念改變,並使學生在概念應用上有較好的學習成效,依本研究結果,對未來教師教學與教科書編寫及研究方向提出建議。

    Based on the theory of “concept substitution,” a teaching module about buoyancy was developed. The effects of concept substitution and traditional teaching modules on conceptual change about buoyancy were investigated. Two classes of ninth graders participated in this study with the quasi-experimental design. The concept substitution teaching module was implemented in one of the classes (the experimental group, N = 19) while the traditional teaching module was administered in the other class (the comparison group, N = 21). The diagnostic pre- and post-tests, applied post-test, and delayed post-test were conducted as indices for learning outcome and conceptual change. The results of the present study are presented as follows.
    1. The effects of conceptual change were significant for both groups, with a greater effect for the experimental than the comparison group. However, there was no difference in the learning effect of correct concepts. These results suggest that the concept substitution teaching module was mainly beneficial for reducing misconceptions.
    2. The performance of the applied post-test was significantly better in the experimental than the comparison group, suggesting that students increased their ability to explain buoyancy phenomena after receiving the concept substitution teaching module.
    3. There was no significant difference between the two groups in the delayed post-test. However, there was a trend that the experimental group had slightly better performance on items related to the concept substitution teaching module than the comparison group.
    To conclude, concept substitution can effectively induce conceptual change and facilitate application of the learned concepts. The results of the present study suggest a future direction for further research and modification of teaching modules and textbooks.

    摘 要 i Abstract ii 目 次 iii 表 次 iv 第一章  緒論 1 第一節 研究背景與研究動機 1 第二節 研究目的與研究問題 2 第三節 名詞解釋 3 第二章  文獻探討 4 第一節 概念改變 4 第二節 概念取代教學法 14 第三節 浮力迷思概念相關研究 16 第三章  研究方法 20 第一節 研究設計與實驗流程 20 第二節 研究對象 20 第三節 研究流程 21 第四節 研究工具 22 第五節 資料分析 30 第四章  研究結果與討論 32 第一節 概念取代教學對學生學習浮力概念成效之影響 32 第二節 概念取代教學對學生浮力概念應用後測之影響 36 第三節 概念取代教學對學生浮力概念維持效果 36 第四節 概念取代教學對學生浮力迷思概念改變狀況 39 第五章  結論與建議 41 第一節 研究結果摘要 41 第二節 研究結論與建議 44 參考文獻 45 附錄一 浮力概念診斷測驗 50 附錄二 浮力概念應用後測 52 附錄三 浮力概念延宕後測 54 附錄四 浮力教學詳案 56

    中文部分
    王貴春、黃萬居(1999)。師院生對氧化還原之迷思概念研究。科學教育研究與發展季刊,15,19-38。
    吳昆勇(2002)。阿基米得原理與引導式發現教學法對學生學習浮力概念的影響。未出版的學位論文,國立台灣師範大學科學教育研究所,臺北市。
    周孟勳(2011)。以POE策略設計推理活動探究國小五年級學生之推理思考及其拋射體概念。未出版的學位論文,國立臺中教育大學科學應用與推廣研究所,臺中市。
    洪瑞英(1996)。高中生的「化學平衡」概念之研究。未出版的學位論文,國立高雄師範大學科學教育研究所。
    許嘉玲(1997)。浮力學習之概念改變。未出版的學位論文,國立台灣師範大學科學教育研究所。
    曹永彬(2009)。以POE 策略探究國小三年級學童之磁力概念與推理過程。未出版的學位論文,國立臺中教育大學。
    陳明鈺(2007)。國中生循環系統概念改變之研究-雙重情境學習模式(DSLM)之影響。未出版的學位論文,國立臺灣師範大學生命科學研究所,臺北市。
    張賴妙理、鄭湧經(2000)。運用診斷測驗探究國一學生對光合作用的另有概念。第十六屆科學教育學術研討會,臺北市。
    黃理仁(2013)。以PODE教學策略探討國小四年級學生學習浮力概念成效之研究。未出版的學位論文,國立臺北教育大學自然科學教育學系學位論文。
    黃湘武、黃寶鈿(1987)。學生推理能力與概念發展之研究。認知與學習研討會專集。台北市:行政院國家科學委員會。
    郭重吉(1989)。利用晤談方式探查國中學生對重要物理概念的另有架構。第五屆科學教育學術研討會。
    劉子鍵、林怡均(2011)。發展二階段診斷工具探討學生之統計迷思概念:以「相關」為例。教育心理學報,42(3),379-399。
    劉俊庚(2002)。迷思概念與概念改變教學策略之文獻分析-以概念構圖和後設分析模式探討其意涵與影響。未出版的學位論文,國立臺灣師範大學科學教育研究所,臺北市。
    蘇育任(1997)。職前及在職國民小學教師的天氣概念及其相關迷思概念之探究。科學教育學刊,7(2),p157-176。

    英文部分
    Alvermann, D., & Hague, S. (1989). Comprehension of counterintuitive science text: Effects of prior knowledge and text structure. Journal of Educational Research, 82, 197-202.
    B.J. Guzzetti, T.E. Snyder, G.V. (1992). GlassPromoting conceptual change in science: Can texts be used effectively? Journal of Reading, 35,642-649
    Brown, D.E., & Clement, J. (1989). Overcoming misconceptions via analogical reasoning: Abstract transfer versus explanatory model construction. Instructional Science, 18, 237-261.
    Brown, D. E (1992). Using examples and analogies to remediate misconceptions in physics: factors influencing conceptual change. Journal of Research in Science Teaching, 29(1), 17-34.
    Baker, L. and Brown, A. L. (Eds.). (1984). Metacognitive skills and reading. In The handbook of reading research. New York: Longman.
    Chi, M.T.H. (1992). Conceptual change within and across ontological categories: Implications for learning and discovery in science.
    Chinn, C. A., & Brewer, W. F. (1993). The role of anomalous data in knowledge acquisition: A theoretical framework and implications for science instruction. Review of Educational Research, 63, 1-49.
    Champagne, A., Klopfer, L. and Anderson, J. (1980). Factors influencing learning of classical mechanics. American Journal of Physics, 48. 1074-1079.
    Clement, J. (1982). Students’ preconceptions in introductory mechanics. American Journal of Physics, 50, 66–71.
    Duit, R., Jung, W., & von Rhöneck, C. (1985). Aspects of understanding electricity. Kiel, Germany: Schmidt, & Klaunig.
    Driver, R. 1989. Students' conceptions and the learning of science. International Journal of Science Education, 11, 481-490.
    Driver, R. (1984). Children's learning in science project, Leeds: Centre for Studies in Science and Mathematics Education, University of Leeds.
    D. E. Brown .(1992). Teaching electricity with capacitors and causal models: preliminary results from diagnostic and tutoring study data examining the CASTLE Project. Paper presented at NARST annual meeting, Boston, MA.
    Eaton, J. F. & Anderson, C. W. (1983). Student's Misconceptions Interfere with Learning: Case Studies of Fifth‐grade Students, Research Series No. 128 Washington: National Institute of Education.
    Fey, J. T. (1989). Technology and Mathematics Education: A survey of recent developments and important problems, Educational Studies in Mathematics 20, 237-272.
    Grayson, D. (1994). Concept substitution: an instructional strategy for promoting conceptual change. Research in Science Education, 24, 102-111.
    Grayson, D. J. (2004) "Concept Substitution: A Teaching Strategy for Helping Students Disentangle Related Physics Concepts," American Journal of Physics, 72(8), 1126.
    Gentner, D., Brem, S., Ferguson, R. W., Markman, A. B., Levidow, B. B., Wolff, P., & Forbus, K.D. (1997). Analogical reasoning and conce-ptual change: A case study of Johannes Kepler. The Journal of the Learning Sciences, 6, 13-40.
    Guzzetti, B. J., Snyder, T. E., Glass, G. V., and Gamas, W. S. (1993). Promoting conceptual change in science: A comparative meta-analysis of instructional interventions from reading education and science education.Reading Res. Quart. 28: 116-161.
    Guzzetti, B., Williams, W., Skeels, S., & Wu, S. (1997). Influence of text structure on learning counterintuitive physics concepts. Journal of Research in Science Teaching, 34, 701-719.
    Hynd, C., McWhorter, J., Phares, V., & Suttles, C. (1994). The role of instructional variables in conceptual change in high school physics topics. Journal of Research in Science Teaching, 31, 933-946.
    Johsua, S., & Dupin, J.J. (1987). Taking into account student conceptions in instructional strategy: An example in physics. Cognition and Instruction, 4, 117-135.
    Lin, S. W. (2004). Development and application of a two-tier diagnostic test for high school students’understanding of flowering plant growth and development. International Journal of Science and Mathematics Education, 2(2), 175-199.
    McNamara, D. S. (2001). Reading both high and low coherence texts: Effects of text sequence and prior knowledge.Canadian Journal of Experimental Psychology,55,51-62.
    Nussbaum, J. and Novick, S. (1982). Alternative frameworks, conceptual conflict and accommodation: toward a principled teaching strategy. Instructional Science, 11, 183-200.
    Novak, J.D. and Gowin, D.B. (1984). Learning How to Learn, Cambridge University Press, Cambridge, UK.
    Piaget, J. (1973). To understand is to invent. New York: Grossman.
    Posner, G. J., Strike, K. A., Hewson, P. W., & Gertzog, W. A. (1982). Accommodation of a scientific conception: Toward a theory of conceptual change.Science Education, 66, 211-227.
    Stepans J (1996) Targeting students’ science misconceptions: physical science concepts using the conceptual change model. Idea Factory, Riverview
    Shipstone, D. (1985). Electricity in simple circuits. In Driver, R. Guesne, E. & Tiberghien, A. (Eds.), Children’s Ideas in Science. Open University Press, Milton Keynes, 33-51.
    She, H.C. (2002). Concepts of a higher hierarchical level require more dual situated learning events for conceptual change: a study of air pressure and buoyancy. International Journal of Science Education, 24(9), 981-996.
    Treagust, D. F. (1988). Development and use if diagnostic tests to evaluate students` misconceptions in science. International Journal of Science Education, 10(2), 159-169.
    Tan, K. C. G., Goh, N. K., Chia, L. S., & Treagust, D. F. (2002). Development and application of a two-tier multiple choice diagnostic instrument to assess high school students' understanding of inorganic chemistry qualitative analysis. Journal of Research in Science Teaching, 39(4), 283-301.
    Tan, K. C. G., Goh, N. K., Chia, L. S., & Treagust, D. F. (2002). Development and application of a two-tier multiple choice diagnostic instrument to assess high school students' understanding of inorganic chemistry qualitative analysis. Journal of Research in Science Teaching, 39(4), 283-301.
    Treagust, D.F., Dutt, R. and Fraser, B.J.,(Eds.). (1996). Improving Teaching and Learning in Science and Mathematics, Hillsdale, NJ: Lawrence Erlbaum.
    Tan, K. C. D.,Goh, N. K.,Chia, L. S.,Treagust, D. F.(2002).Development and application of a two-tier multiple choice diagnostic instrument to assess high school students` understanding of inorganic chemistry qualitative analysis.Journal of Research in Science Teaching,39(4),283-301.
    T.S. Kuhn. (1962). The structure of scientific revolution, University of Chicago Press, Chicago
    White, R.,Gunstone, R.(1992).Probing understanding.London:The Falmer Press.
    Yore, L.D., & Denning, D. (1989). Implementing change in secondary science reading and textbooks useage: A desired image, a current profile, and a plan for change. Paper presented at the Annual Meeting of the National Association for Research in Science Teaching (62nd, San Francisco, CA, March 30-April 1, 1989).

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