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Showing 1 to 15 of 16 results Save | Export
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Mads Paludan Goddiksen – Science & Education, 2025
Developing an adequate understanding of the nature of science includes developing an understanding of the uses and importance of models in science. General accounts of science aimed at university students, however, tend to neglect this aspect. A noticeable exception is the simple model of the key elements of a scientific result presented by Giere,…
Descriptors: College Students, Models, Comprehension, Scientific Principles
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Amy J. Hopper; Angus M. Brown – Advances in Physiology Education, 2024
In this article we analyze the classic Hodgkin and Keynes 1955 paper describing investigations of the independence principle, with the expectation that there is much students and educators can learn from such exercises, most notably how the authors applied their diverse skill set to tackling the numerous obstacles that the study presented. The…
Descriptors: Science Education, Physiology, Scientific Principles, Scientific Concepts
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Avsar Erumit, Banu; Yuksel, Tugba – International Journal of Science and Mathematics Education, 2023
Raising scientifically literate citizens has been the main concern of the science education community. Socioscientific issues (SSIs) provide a context to facilitate individuals to expand their epistemic understanding and develop scientific reasoning skills such as evidence-based argumentation and consensus building. In this qualitative research,…
Descriptors: Scientific Literacy, Science and Society, Science Education, Science Process Skills
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Xu, Lihua; Ferguson, Joseph; Tytler, Russell – International Journal of Science and Mathematics Education, 2021
There is increasing recognition of the multimodal representational nature of science discovery practices and the roles of multiple and multimodal representations in students' meaning making in science (Lemke, 1998; Tytler, Prain, Hubber, & Waldrip, 2013; Tang, "International Journal of Science Education," 38(13), 2069-2095, 2016).…
Descriptors: Science Process Skills, Thinking Skills, Abstract Reasoning, Semiotics
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Dale, Keith; Dale, Stephen G. – Teaching Science, 2018
The Australian Curriculum (n.d.) describes chemistry as having three interrelated strands, Science Inquiry Skills, Science as a Human Endeavour and Science Understanding. It also states "... the three strands of the Australian Curriculum: Science should be taught in an integrated way". This article will explore a model for integrating…
Descriptors: Foreign Countries, Science Instruction, Secondary School Science, Chemistry
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Bruxvoort, Crystal; Jadrich, James – Science Teacher, 2016
Science students should undertake engineering design projects and carry out scientific investigations, as recommended by the "Next Generation Science Standards" (NGSS Lead States 2013). However, studies show that students misconstrue the goals of science and engineering and are uncertain about their respective practices (Gilbert and Wade…
Descriptors: STEM Education, Science Instruction, Equipment, Engineering
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Hargadon, Kristian M. – Biochemistry and Molecular Biology Education, 2016
The flow of genetic information from DNA to RNA to protein, otherwise known as the "central dogma" of biology, is one of the most basic and overarching concepts in the biological sciences. Nevertheless, numerous studies have reported student misconceptions at the undergraduate level of this fundamental process of gene expression. This…
Descriptors: Genetics, Models, Teaching Models, Teaching Methods
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Yacoubian, Hagop A. – Canadian Journal of Science, Mathematics and Technology Education, 2015
In this article, I introduce a framework for guiding future citizens to think critically about nature of science (NOS) and "with" NOS as they engage in socioscientific decision making. The framework, referred to as the critical thinking--nature of science (CT-NOS) framework, explicates and targets both NOS as a learning objective and NOS…
Descriptors: Science Education, Critical Thinking, Scientific Principles, Science and Society
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Svendsen, Bodil – International Journal of Science Education, 2015
This article focuses on teacher professional development (TPD) in natural science through the 5E model as mediating artifact. The study was conducted in an upper secondary school, grounded in a school-based intervention research project. My contribution to the field of research on TPD is founded on the hypothesis that teachers would be best…
Descriptors: Science Teachers, Natural Sciences, Faculty Development, Secondary School Teachers
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Cervetti, Gina; Barber, Jacqueline – Science and Children, 2009
How can you connect, supplement, and extend students' firsthand investigations? Look toward your bookshelves for a clue. Books and other textual materials can serve the following roles in support of scientific inquiry: providing context, modeling, supporting firsthand inquiry, supporting secondhand inquiry, and delivering content. Each of these…
Descriptors: Scientific Principles, Science Instruction, Inquiry, Teaching Methods
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Kenyon, Lisa; Schwarz, Christina; Hug, Barbara – Science and Children, 2008
When students are engaged in scientific modeling, they are able to notice patterns and develop and revise representations that become useful models to predict and explain--making their own scientific knowledge stronger, helping them to think critically, and helping them know more about the nature of science. To illustrate, this article describes a…
Descriptors: Scientific Principles, Models, Science Instruction, Elementary School Science
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Spektor-Levy, Ornit; Eylon, Bat-Sheva; Scherz, Zahava – International Journal of Science and Mathematics Education, 2009
This study explores the impact of "Scientific Communication" (SC) skills instruction on students' performances in scientific literacy assessment tasks. We present a general model for skills instruction, characterized by explicit and spiral instruction, integration into content learning, practice in several scientific topics, and application of…
Descriptors: Program Effectiveness, Communication Skills, Models, Grade 7
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Zuzovsky, Ruth; Tamir, Pinchas – International Journal of Science Education, 1999
Uses data from the Third International Mathematics and Science Study (TIMSS) to determine the extent of Israeli students' ability to give scientific explanations of events in earth, life, and physical science. Finds student explanations to be generally simple, often incomplete, and often consisting only of descriptive or teleological explanations.…
Descriptors: Elementary Secondary Education, Foreign Countries, Logical Thinking, Models
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Kali, Yael; Linn, Marcia C. – Elementary School Journal, 2008
Research has shown that technology-enhanced visualizations can improve inquiry learning in science when they are designed to support knowledge integration. Visualizations play an especially important role in supporting science learning at elementary and middle school levels because they can make unseen and complex processes visible. We identify 4…
Descriptors: Elementary School Science, Science Instruction, Visualization, Computer Uses in Education
National Aquarium in Baltimore, MD. Dept. of Education. – 1997
"Living in Water" is a classroom-based, scientific study of water, aquatic environments, and the plants and animals that live in water. The lessons in this curriculum integrate basic physical, biological, and earth sciences, and mathematics. The integration of language arts is also considered essential to its success. These lessons do not require…
Descriptors: Biological Sciences, Biology, Classification, Earth Science
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