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Kaps, A.; Stallmach, F. – Physics Teacher, 2022
In physics lessons at secondary school and experimental physics courses at universities, the magnetic field inside a current-carrying solenoid is considered quantitatively. The corresponding equations and theories are supported by measuring the magnetic flux density inside the solenoid with a Hall probe. It has already been shown that smartphones…
Descriptors: Science Instruction, Physics, Secondary School Science, College Science
Forringer, Edward Russell – Physics Teacher, 2022
In a 1993 book review, E. Pearlstein asks, "Why don't textbook authors begin their discussion of magnetism by talking about magnets? That's what students have experience with." A similar question can be asked, "Why don't professors have students measure the force between permanent magnets in introductory physics labs?" The…
Descriptors: Science Education, Physics, Magnets, Measurement
Bodensiek, Oliver; Sonntag, Dörte; Wendorff, Nils; Albuquerque, Georgia; Magnor, Marcus – Physics Teacher, 2019
Since the emergence of augmented reality (AR), it has been a constant subject of educational research, as it can improve conceptual understanding and generally promote learning. In addition, a motivational effect and improved interaction and collaboration through AR were observed. Recently, AR technologies have taken a major leap forward in…
Descriptors: Physics, Science Instruction, Measurement, Visualization
Tillotson, Wilson Andrew; McCaskey, Timothy; Nasser, Luis – Physics Teacher, 2017
We have developed a laboratory exercise designed to help students translate between different field representations. It starts with students qualitatively mapping field lines for various bar magnet configurations and continues with a Hall probe experiment in which students execute a series of scaffolded tasks, culminating in the prediction and…
Descriptors: Physics, Science Instruction, Teaching Methods, Science Experiments
Baird, William H.; Padgett, Clifford W.; Secrest, Jeffery A. – Physics Education, 2015
Google Earth has made a wealth of aerial imagery available online at no cost to users. We examine some of the potential uses of that data in illustrating basic physics and astronomy, such as finding the local magnetic declination, using landmarks such as the Washington Monument and Luxor Obelisk as gnomons, and showing how airport runways get…
Descriptors: Science Instruction, Educational Technology, Technology Uses in Education, Astronomy
Bain, Gordon A.; Berry, John F. – Journal of Chemical Education, 2008
Measured magnetic susceptibilities of paramagnetic substances must typically be corrected for their underlying diamagnetism. This correction is often accomplished by using tabulated values for the diamagnetism of atoms, ions, or whole molecules. These tabulated values can be problematic since many sources contain incomplete and conflicting data.…
Descriptors: Chemistry, Laboratory Experiments, Magnets, Scientific Concepts
Peer reviewedEdge, R. D., Ed. – Physics Teacher, 1981
Describes experiments, including the measurement of the magnetic moment of a magnet, using noncalibrated materials. Results of these experiments can be checked using calibrated equipment. (SK)
Descriptors: College Science, Higher Education, Magnets, Measurement

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