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Millar, Robin; And Others – Physics Education, 1990
Children's ideas about radiation and radioactivity are reviewed and several common areas of misunderstanding are identified. An approach to teaching the topic at the secondary school level which seeks to specifically address known difficulties is outlined. (CW)
Descriptors: Cognitive Structures, High Schools, Misconceptions, Physics
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Mullet, Etienne; Montcouquiol, Anne – International Journal of Science Education, 1988
Describes an application of methodology based on the Information Integration Theory to study intuitive mastery by 13-14 year-olds of Archimedes' Effect in physics. (Author/YP)
Descriptors: Cognitive Structures, Foreign Countries, Misconceptions, Physics
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Fu, Yunling – Physics Education, 1990
Discussed is a common error made by students in judging the distribution of the magnetic field of a circular loop along its diameter. Qualitative and quantitative explanations of the magnetic field distribution are presented. (CW)
Descriptors: Cognitive Structures, College Science, Electricity, High Schools
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Shipstone, D. M.; And Others – International Journal of Science Education, 1988
Describes a study of the understanding of basic electrical concepts shown by 15-17 year-old students in England, France, Netherlands, Sweden, and West Germany. Reports substantially the same pattern of learning difficulties across countries. Provides sample items. (Author/YP)
Descriptors: Cognitive Structures, Electricity, Foreign Countries, Physics
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Sadanand, Nanjundiah; Kess, Joseph – Physics Teacher, 1990
Described are the results of a conceptual physics survey given to a small group of high school physics students with the goal of identifying common misconceptions held by students. Three common misconceptions were identified and are discussed in detail. (CW)
Descriptors: Cognitive Structures, High Schools, Mechanics (Physics), Misconceptions
Brown, David E. – 1988
This paper analyzes the misconceptions high school students have about force and suggests that the misunderstanding of Newton's third law is the key to these misconceptions. Clinical interview and diagnostic test data (N=104) indicates that many students have a naive view of force as an acquired or innate property of single objects rather than…
Descriptors: Cognitive Structures, Concept Formation, Force, Interviews
Peer reviewed Peer reviewed
Mohapatra, J. K. – Journal of Research in Science Teaching, 1988
Identifies an induced incorrect generalization as a generative cause for the formation of misconception. Analyzes students' protocol of an exploratory learning experiment about the laws of reflection of light. Suggests recommendations for textbook, teaching, and practical work. (Author/YP)
Descriptors: Cognitive Structures, Concept Formation, Generalization, Misconceptions
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Griffiths, Alan K.; And Others – Journal of Research in Science Teaching, 1988
Investigates the remediation of misconceptions through application of Gagne's hierarchical learning theory. Uses stoichiometry, food levels, and conservation of mechanical energy as the target concepts. Reports that there was no treatment effect in analysis of covariance using pretest scores as a covariant. (YP)
Descriptors: Biology, Chemistry, Cognitive Structures, High Schools
Peer reviewed Peer reviewed
Gauld, Colin F. – International Journal of Science Education, 1988
Discusses the rationality of students' alternative frameworks by considering the role played by their beliefs, their understanding of other views, and the reasons for justification or rejection. Investigates the way in which 14-year-old boys see the effects of classroom learning experience on their ideas. (Author/YP)
Descriptors: Beliefs, Cognitive Structures, Concept Teaching, Electricity
MacDonald, Dougal – 1989
This study explored the usefulness of an approach to science instruction which specifically considered children's spontaneous conceptions about natural phenomena. The aim of the instruction was the development of conceptual understanding. The instructional approach involved diagnosing children's spontaneous conceptions, making them aware of their…
Descriptors: Cognitive Structures, Concept Formation, Elementary School Science, Foreign Countries
Steinberg, Melvin S. – Scientific Reasoning Research Institute Newsletter, 1988
Cites the misconceptions that students beginning the study of electric circuits often have about electricity. Explains the use of capacitors with circuits of batteries and light bulbs to introduce electrostatic forces and help to alleviate the problem of misconceptions. (RT)
Descriptors: Cognitive Structures, College Science, Concept Formation, Electricity
Clement, John; Brown, David – 1984
In this paper examples of the role of analogical reasoning in expert problem solving are presented. These are intended to show that using an analogy can change an expert's understanding of a problem situation by changing the conceptual model he or she uses to think about the situation. This suggests that using a good analogy may allow students to…
Descriptors: Analogy, Cognitive Structures, College Science, Concept Formation
Murray, Tom; Woolf, Beverly – 1986
This paper is based on the idea that designing a knowledge representation for an intelligent physics computer tutoring system depends, in part, on the target behavior anticipated from the student. In addition, the document distinguishes between qualitative and quantitative competence in physics. These competencies are illustrated through questions…
Descriptors: Cognitive Processes, Cognitive Structures, College Science, Higher Education
Jones, Gail – 1990
This study compared the effects of cooperative learning groups to traditional instruction in remediating students' misconceptions about temperature. Students from grades 3, 4, and 5 in two rural elementary schools participated in the study. Students completed a pretest, a cognitive conflict laboratory activity and a posttest that measured…
Descriptors: Cognitive Dissonance, Cognitive Processes, Cognitive Structures, Concept Teaching
Clement, John; And Others – 1989
Three purposes of this study were to: (1) propose some organizing theoretical and observational definitions of the anchor construct; (2) present some initial findings from a diagnostic test designed to uncover anchors for high school physics instruction; and (3) provoke an initial discussion of the new methodological issues that arise in this…
Descriptors: Cognitive Structures, Concept Formation, Concept Teaching, Diagnostic Tests
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