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Lan Yang; Leheng Huang; Xianqiu Wu; Jianwen Xiong; Lei Bao; Yang Xiao – Physical Review Physics Education Research, 2024
In physics education, a number of studies have developed assessments of teachers' knowledge of student understanding (KSU) of specific physics concepts with modified versions of existing concept inventories, in which teachers were asked to predict the popular incorrect answers from students. The results provide useful but indirect information to…
Descriptors: Preservice Teachers, Knowledge Level, Science Education, Scientific Concepts
Lin, Jiabei; Xing, Yuting; Hu, Yudi; Zhang, Jian; Bao, Lei; Luo, Kaiqing; Yu, Keke; Xiao, Yang – Physical Review Physics Education Research, 2023
Students hold a variety of initial (mis)conceptions that are inconsistent with scientific knowledge and hinder their physics learning. The initial (mis)conceptions could coexist with the scientific ones, even after a conceptual change. Inhibitory control may help overcome initial (mis)conceptions. This study investigated if and how inhibitory…
Descriptors: Misconceptions, Physics, Majors (Students), Science Education
Ozdemir, Ertugrul – Journal of Science Learning, 2022
Before taking formal science education, learners usually construct preconceptions based on their daily life experiences, many of which are scientifically unacceptable misconceptions. In formal science learning, new concepts often contradict these misconceptions. To correct a misconception, it is first needed to create dissatisfaction about it by…
Descriptors: Animation, Cartoons, Cognitive Processes, Electronic Learning
Aslan, Ferhat; Buyuk, Ugur – European Journal of Educational Sciences, 2021
The purpose of this work is to examine the issue of pre-service science teachers' (PSST) Geogebra applications on misconceptions about projectile motion (PM) and the permanence of learning concepts. In this study, quantitative research method was used as scientific research method, and semi-experimental design with pre-test, post-test control…
Descriptors: Misconceptions, Concept Formation, Physics, Motion
Wells, James; Henderson, Rachel; Traxler, Adrienne; Miller, Paul; Stewart, John – Physical Review Physics Education Research, 2020
Investigating student learning and understanding of conceptual physics is a primary research area within physics education research. Multiple quantitative methods have been employed to analyze commonly used mechanics conceptual inventories: the Force Concept Inventory (FCI) and the Force and Motion Conceptual Evaluation (FMCE). Recently,…
Descriptors: Physics, Science Education, Educational Research, Scientific Concepts
Al-Rsa'i, Mohammad S.; Khoshman, Jebreel M.; Abu Tayeh, Khalid – Journal of Turkish Science Education, 2020
The objective of this study was to investigate the physics student-teachers misconceptions in force and motion concepts in Jordanian universities by using the Force Concept Inventory (FCI) test and to identify the cause of misconceptions related to these concepts. Also, the FCI has been used to detect whether misconceptions vary according to…
Descriptors: Preservice Teachers, Undergraduate Students, Late Adolescents, Science Education
Khandagale, V. S.; Chavan, Rajendra – Online Submission, 2017
Physics is a science that deals with matter and energy, and their interaction. The subject matter of Physics includes mechanics, heat, light, optics, electricity, magnetism, radiation, gravitation, atom structure etc. Physics concepts are included in the science textbook form primary level of education. Some Physics abstract concepts are difficult…
Descriptors: Foreign Countries, Secondary School Students, Scientific Attitudes, Misconceptions
Lemmer, Miriam – Africa Education Review, 2018
Science teaching and learning require knowledge about how learning takes place (cognition) and how learners interact with their surroundings (affective and sociocultural factors). The study reported on focussed on learning for understanding of Newton's second law of motion from a cognitive perspective that takes social factors into account. A…
Descriptors: Science Education, Physics, Scientific Principles, Motion
Gates, Joshua – Physics Teacher, 2014
Newton's second law is one of the cornerstones of the introductory physics curriculum, but it can still trouble a large number of students well after its introduction, hobbling their ability to apply the concept to problem solving and to related concepts, such as momentum, circular motion, and orbits. While there are several possibilities for…
Descriptors: Science Experiments, Scientific Principles, Scientific Concepts, Science Education
Hast, Michael; Howe, Christine – Journal of Science Education and Technology, 2013
Previous research indicates children reason in different ways about horizontal motion and motion in fall. At the same time, their understanding of motion down inclines appears to result from an interaction between horizontal and vertical motion understanding. However, this interaction is still poorly understood. Understanding of speed change may…
Descriptors: Scientific Concepts, Science Education, Elementary School Science, Age Differences
Wee, Loo Kang; Chew, Charles; Goh, Giam Hwee; Tan, Samuel; Lee, Tat Leong – Physics Education, 2012
This article reports on the use of Tracker as a pedagogical tool in the effective learning and teaching of projectile motion in physics. When a computer model building learning process is supported and driven by video analysis data, this free Open Source Physics tool can provide opportunities for students to engage in active enquiry-based…
Descriptors: Physics, Teaching Methods, Video Technology, Misconceptions
Eastwell, Peter – Science Education Review, 2007
Bernoulli's principle is being misunderstood and consequently misused. This paper clarifies the issues involved, hypothesises as to how this unfortunate situation has arisen, provides sound explanations for many everyday phenomena involving moving air, and makes associated recommendations for teaching the effects of moving fluids.
Descriptors: Misconceptions, Scientific Concepts, Scientific Principles, Demonstrations (Educational)

Eryilmaz, Ali – Journal of Research in Science Teaching, 2002
Investigates the effects of conceptual assignments and conceptual change discussions on high school students' achievement and misconceptions about force and motion. Analyzes pretest and posttest data from the Force Misconception and Force Achievement Tests (FMFAT). Discusses the effects on the conceptual change discussion on reducing…
Descriptors: Concept Formation, Force, Learning Processes, Misconceptions

Roach, Linda E. – Science Teacher, 1992
Suggests techniques to help eliminate students' misconceptions involving Newton's Third Law. Approaches suggested include teaching physics from a historical perspective, using computer programs with simulations, rewording the law, drawing free-body diagrams, and using demonstrations and examples. (PR)
Descriptors: Force, Mechanics (Physics), Misconceptions, Motion

Rowlands, Stuart; Graham, Ted; Berry, John – International Journal of Mathematical Education in Science and Technology, 1998
Reports on a small-scale investigation of student understanding of moments of forces to provide some indication as to the nature of intuitive ideas in this area. Results of the investigation suggest three stumbling blocks in the conceptual understanding of moment of forces. (Author/ASK)
Descriptors: Concept Formation, Force, Mechanics (Physics), Misconceptions