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研究生: 蘇毅中
Su, Yi-Chung
論文名稱: 高中學生在不同層級及不同表徵的物理解題取向
Senior high school students’ problem solving approaches when solving problems at different levels and with different representations
指導教授: 吳心楷
Wu, Hsin-Kai
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: 2016
畢業學年度: 104
語文別: 中文
論文頁數: 132
中文關鍵詞: 物理解題表徵空間能力迷思概念
英文關鍵詞: physics, problem solving, representation, spatial ability, misconceptions
DOI URL: https://doi.org/10.6345/NTNU202203558
論文種類: 學術論文
相關次數: 點閱:97下載:18
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  • 本研究旨探討高中學生面對不同層級與不同表徵的物理試題其解題取向及表現。研究資料來源為自行設計的物理測驗試題和空間能力測驗。物理測驗試題為計算題,物理測驗試卷為兩種層級(高層級與低層級)與兩種表徵(文字與圖片)的試題交叉構成,共四種版本。依學生對試題的解題內容分為兩類取向:運動學取向與能量守恆取向。研究對象為大台北地區兩間學校的高二學生,共6個班級150人,試卷於班級內隨機分配,學生依空間能力測驗分為高、低空間能力兩組。
    研究結果顯示,學生面對低層級的試題,傾向使用運動學取向解題,且使用運動學解題較易得到分數;而面對高層級的試題,學生傾向使用能量守恆取向解題,且以此取向較易得到分數。當學生面對不同表徵的試題,其解題取向皆以運動學取向解題為主。而不同空間能力的學生沒有特定的解題取向傾向。學生在物理解題時常見的錯誤可分為「與物理概念有關」、「與物理概念無關」兩大類,可細分為9項,其中「忽略系統完整受力」、「物理公式錯誤」此兩項在所有錯誤類型中佔所占比例最高,此兩類屬於與物理概念有關的錯誤類型。
    本研究顯示學生對於物體運動的相關物理試題,大多數情況顯示學生傾向使用運動學進行解題。然而學生不論使用何種解題取向,須協助學生物理系統的分析與物理量的使用。

    This study aims at investigating high school students’s problem-solving approaches when they solved physics problems at different levels and with different representations. Research sources were a self-designed physics problem-solving test and spatial ability tests. The physics test included open-ended questions and was designed in four versions by two levels (high-level and low-level) and two representations (text and diagram). According to the students' answers to the questions, two problem-solving approaches were identified: kinematic and energy conservation. A total of 150 students from six physics classes of two senior high schools in the Taipei area participanted in the study. The students were then divided into the high and low spatial ability groups by their scores of the spatial ability test.
    The results showed that when solving the low-level questions students tended to use the kinematics approach and performed better than those who used the energy approach. On the other hand, when facing the high-level questions, students tended to take the energy approach which was more effective than the other approach. Additionally, problem representations did not affect students’ problem-solving approach and for either one of the representations, a majority of students used the kinematic approach. The levels of spatial ability also did not influence students’ problem-solving approaches. Finally, the common errors students made in physics problem-solving could be categorized into 9 types. Among them, two of the most frequent ones were “ignoring the forces of the system” and “using wrong physical equations” and associated with students’ understandings of physics concepts.
    This study suggests that Taiwanese high school students tend to take the kinematic approach when they face physic problems related to the movement of objects. However, no matter which approach is used by students, attention needs to be paid to how students analyze the forces of the system and whether they correctly use physics equations

    第壹章 緒論 1 第一節 研究背景與動機 1 第二節 研究目的與問題 3 第三節 研究重要性 3 第四節 名詞釋義 4 第貳章 文獻探討 5 第一節 問題的定義與問題解決 5 第二節 表徵與問題解決 10 第三節 空間能力與問題解決 14 第四節 物理解題錯誤的相關研究 17 第參章 研究方法 19 第一節 研究設計與流程 19 第二節 研究對象 20 第三節 物理解題測驗設計與呈現方式 20 第四節 資料蒐集 27 第五節 資料分析 32 第肆章 研究結果 35 第一節 不同層級及不同表徵的物理問題之解題分析 35 第二節 不同空間能力的學生之解題分析 49 第三節 常見的錯誤類型 60 第伍章 結論與討論 79 第一節 結論 79 第二節 討論 80 第三節 研究限制與建議 85 參考文獻 89 附錄 95 附錄一 空間能力之分佈情形 95 附錄二 物理測驗A題本 96 附錄三 物理測驗B題本 100 附錄四 物理測驗C題本 104 附錄五 物理測驗D題本 109 附錄六 學生在層級1各試題,不同表徵的試題與不同解題取向之卡方檢定 116 附錄七 學生在層級1各試題,不同表徵的試題與不同解題取向的表現之雙因子變異數分析 120 附錄八 學生在層級2各試題,不同表徵的試題與不同解題取向之卡方檢定 125 附錄九 學生在層級2各試題,不同表徵的試題與不同解題取向的表現之雙因子變異數分析 128

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