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Showing 1 to 15 of 23 results Save | Export
Devard, Sirjana – ProQuest LLC, 2022
Sixth-grade science students at Gauger-Cobbs Middle School in Newark, DE, had misconceptions about how heat energy moves in the hydrosphere through conduction, convection, and radiation. As a result, students struggled to develop and connect ideas that correctly and completely explained heat transfer in the hydrosphere at the end of the lesson…
Descriptors: Formative Evaluation, Heat, Thermodynamics, Misconceptions
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Grimes, Zachary T.; Boury, Nancy M.; Wasendorf, Chloe; McCombs, Audrey L.; Reid, Joshua W.; James, Olena; Couch, Brock; Armstrong, Patrick I.; Seipelt-Thiemann, Rebecca L. – American Biology Teacher, 2022
Genetics plays an increasing role in modern life as evidenced by the development of revolutionary techniques such as CRISPR-based genome editing and the rise of personalized genome services. However, genetics is difficult to learn; known issues include its abstract nature, different scales, and technical language. Pedigree analysis is a…
Descriptors: Student Attitudes, Biology, Science Instruction, Student Centered Learning
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Keeley, Page – Science and Children, 2020
Since the release of "A Framework for K-12 Science Education" in 2012, there has been a significant shift toward the use of science and engineering practices that mirror the way scientists do their work (NRC 2012). The "Framework" states, "A focus on practices (in the plural) avoids the mistaken impression that there is…
Descriptors: Formative Evaluation, STEM Education, Misconceptions, Scientific Concepts
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Dani, Danielle; Hallman-Thrasher, Allyson; Litchfield, Erin – Science Teacher, 2018
One way to probe students' misconceptions about science during instruction is by using formative assessments. Described as assessments "for" learning rather than assessments "of" learning (Black and Wiliam 1998), they provide teachers with information about student understanding during instruction. Examples of formative…
Descriptors: Cues, Writing (Composition), Teaching Methods, Scientific Concepts
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Duran, Emilio; Worch, Eric; Boros, Amy; Keeley, Page – Science and Children, 2017
One of the most powerful strategies to support next generation science instruction is the use of instructional models. The Biological Sciences Curriculum Study 5E (Engage, Explore, Explain, Elaborate, and Evaluate) instructional model is arguably the most widely used version of a learning cycle in today's classrooms. The use of the 5Es as an…
Descriptors: Science Instruction, Models, Biology, Science Curriculum
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Hondrich, Annika Lena; Hertel, Silke; Adl-Amini, Katja; Klieme, Eckhard – Assessment in Education: Principles, Policy & Practice, 2016
The implementation of formative assessment strategies is challenging for teachers. We evaluated teachers' implementation fidelity of a curriculum-embedded formative assessment programme for primary school science education, investigating both material-supported, direct application and subsequent transfer. Furthermore, the relationship between…
Descriptors: Elementary School Science, Formative Evaluation, Program Implementation, Fidelity
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Davenport, K. D.; Milks, Kirstin Jane; Van Tassell, Rebecca – American Biology Teacher, 2015
Analyzing evolutionary relationships requires that students have a thorough understanding of evidence and of how scientists use evidence to develop these relationships. In this lesson sequence, students work in groups to process many different lines of evidence of evolutionary relationships between ungulates, then construct a scientific argument…
Descriptors: Science Instruction, Evaluation, Misconceptions, Scientific Concepts
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Hutchison, Paul – Science and Children, 2013
Children understand the natural world in ways that make sense to them before they learn any science in school. This column provides ideas and techniques to enhance science teaching. This month's issue helps students connect scientifically correct ideas to what makes sense to them.
Descriptors: Science Instruction, Scientific Concepts, Relevance (Education), Misconceptions
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Keeley, Page – Science and Children, 2012
Almost every child has experienced the sniffly, stuffy, and achy congestion of the common cold. In addition, many have encountered the "old wives tales" that forge a link between personal actions and coming down with this common respiratory infection. Much of this health folklore has been passed down from generation to generation (e.g., getting a…
Descriptors: Educational Strategies, Communicable Diseases, Student Attitudes, Folk Culture
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Prilliman, Stephen G. – Journal of Chemical Education, 2014
The College Board's recently revised curriculum for advanced placement (AP) chemistry places a strong emphasis on conceptual understanding, including representations of particle phenomena. This change in emphasis is informed by years of research showing that students could perform algorithmic calculations but not explain those calculations…
Descriptors: Science Instruction, Secondary School Science, High Schools, College Science
Naah, Basil M. – ProQuest LLC, 2012
Students who harbor misconceptions often find chemistry difficult to understand. To improve teaching about the dissolving process, first semester introductory chemistry students were asked to complete a free-response questionnaire on writing balanced equations for dissolving ionic compounds in water. To corroborate errors and misconceptions…
Descriptors: Cognitive Processes, Chemistry, Equations (Mathematics), Misconceptions
Brower, Derek John – ProQuest LLC, 2012
Just as elementary students enter the science classroom with prior knowledge and experiences, so do preservice elementary teachers who enter the science methods classroom. Elementary science methods instructors recognize the challenges associated with preparing teachers for the science classroom. Two of these challenges include overcoming limited…
Descriptors: Formative Evaluation, Preservice Teachers, Science Instruction, Methods Courses
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Frissell, Virginia – Science and Children, 2010
Introducing a mystery object is an easy strategy to implement and allows teachers to pre-assess students' knowledge about local natural resources. Misconceptions can be noted as teachers record initial inquiries and wonderings on charts. Using the constructivist approach, students can explore and construct their learning as they continue to use…
Descriptors: Constructivism (Learning), Natural Resources, Misconceptions, Teaching Methods
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Lee, Young-Jin – Journal of Educational Technology Systems, 2011
In the last decades, many education researchers have been trying to use computerized learning environments to enhance student learning. Without proper instructional supports and guidance, however, students often failed to acquire knowledge from computer-based learning activities. The objective of this study was to demonstrate how research-based…
Descriptors: Learning Activities, Formative Evaluation, Physics, Misconceptions
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Kern, Cindy; Crippen Kent J. – Science Teacher, 2008
Students' understanding of science develops through everyday experiences. As a result, they come to the science classroom with their own notions of how the world works. As teachers, we often must help students overcome their prior naive notions and move them toward a more scientific understanding. This process, known as conceptual change, is…
Descriptors: Concept Mapping, Student Needs, Metacognition, Science Instruction
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