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Kyla Adams; Anastasia Lonshakova; David Blair; David Treagust; Tejinder Kaur – Teaching Science, 2024
Quantum science is in the news daily and engages students' interest and curiosity. A fundamental quantum science concept that underpins medical imaging, quantum computing and many future technologies is quantum spin. Quantum spin can explain many physical phenomena that are in the lower secondary school curriculum, such as magnetism and light,…
Descriptors: Quantum Mechanics, Science Instruction, Physics, Science Activities
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Behroozi. F. – Physics Teacher, 2021
The stately fall of magnets through conducting pipes is a favorite classroom and laboratory activity used in teaching electromagnetic induction, Lenz's law, eddy currents, electromagnetic braking, and even Newton's third law. When a neodymium magnet is used, the terminal velocity is reached in just a few milliseconds as the induced eddy currents…
Descriptors: Magnets, Science Activities, Motion, Equations (Mathematics)
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Mills, Allan – Physics Education, 2012
The operation of the puzzling "forever spin" top is explained. This toy makes an intriguing basis for discussion of the physical principles involved. (Contains 8 figures and 1 footnote.)
Descriptors: Science Instruction, Physics, Motion, Scientific Principles
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Kholmetskii, Alexander L.; Missevitch, Oleg V.; Yarman, T. – European Journal of Physics, 2011
We analyse the force acting on a moving dipole due to an external electromagnetic field and show that the expression derived in Vekstein (1997 "Eur. J. Phys." 18 113) is erroneous and suggest the correct equation for the description of this force. We also discuss the physical meaning of the relativistic transformation of current for a closed…
Descriptors: Physics, Magnets, Energy, Motion
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Ladera, Celso L.; Donoso, Guillermo – European Journal of Physics, 2011
A short conducting pipe that hangs from a weak spring is forced to oscillate by the magnetic field of a surrounding coaxial coil that has been excited by a low-frequency current source in the presence of an additional static magnetic field. Induced oscillating currents appear in the pipe. The pipe motion becomes damped by the dragging forces…
Descriptors: Science Activities, Student Projects, Motion, College Science
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Molina-Bolivar, J. A.; Abella-Palacios, A. J. – European Journal of Physics, 2012
The aim of this paper is to introduce a simple and low-cost experimental setup that can be used to study the eddy current brake, which considers the motion of a sliding magnet on an inclined conducting plane in terms of basic physical principles. We present a set of quantitative experiments performed to study the influence of the geometrical and…
Descriptors: Physics, Science Instruction, College Science, Undergraduate Students
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Wong, Darren; Lee, Paul; Foong, See Kit – Physics Education, 2010
We investigate the electromagnetic induction phenomenon for a "falling," "oscillating" and "swinging" magnet and a coil, with the help of a datalogger. For each situation, we discuss the salient aspects of the phenomenon, with the aid of diagrams, and relate the motion of the magnet to its mathematical and graphical representations. Using various…
Descriptors: Thinking Skills, Energy, Magnets, Science Instruction
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Piccioni, R. G. – Physics Teacher, 2007
Too often, students in introductory courses are left with the impression that Einstein's special theory of relativity comes into play only when the relative speed of two objects is an appreciable fraction of the speed of light ("c"). In fact, relativistic length contraction, along with Coulomb's law, accounts quantitatively for the force on a…
Descriptors: Physics, Magnets, Scientific Principles, Science Instruction
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Barry, Reno – Physics Teacher, 2008
Electric Motorboat Drag Racing is a culminating high school physics project designed to apply and bring to life many content standards for physics. Students need to be given several weeks at home to design and build their model-sized electric motorboats for the 5-meter drag racing competition down rain gutters. In the process, they are discussing…
Descriptors: Physics, Hands on Science, Science Activities, Student Motivation
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Wright, John J.; Van Der Beken, Stephen – American Journal of Physics, 1972
Descriptors: College Science, Electricity, Instructional Materials, Laboratory Experiments
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Tompson, C. W.; Wragg, J. L. – Physics Teacher, 1991
A quantitative application of magnetic braking performed with an air track is described. The experimental measurement of the position of the glider as a function of time is calculated. (KR)
Descriptors: Electricity, Graphs, Higher Education, Introductory Courses
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Brueningsen, Christopher A. – Physics Teacher, 1993
Studies magnetic oscillation using an air track. Ceramic magnets are attached to the cart and also are used as dampeners in place of the springs. The resulting oscillations are fairly sinusoidal and is a good example of simple harmonic motion. (MVL)
Descriptors: Computer Uses in Education, Magnets, Mechanics (Physics), Motion
Crismond, David; And Others – 1994
Technology for Science is a National Science Foundation funded program that is developing and testing curriculum units for teacher materials built around a series of design-oriented science problems called "challenges," mainly for ninth-grade general and physical science classes. Technology for science challenges have a clear connection…
Descriptors: Electricity, Grade 9, Hands on Science, Heat
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Rossing, Thomas D.; Hull, John R. – Physics Teacher, 1991
Discusses the principles of magnetic levitation presented in the physics classroom and applied to transportation systems. Topics discussed include three classroom demonstrations to illustrate magnetic levitation, the concept of eddy currents, lift and drag forces on a moving magnet, magnetic levitation vehicles, levitation with permanent magnets…
Descriptors: Electricity, High Schools, Kinetics, Magnets
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Kirkup, L. – Physics Education, 1986
Describes the implementation of a trajectory-plotting program for a microcomputer; shows how it may be used to demonstrate the focusing effect of a simple electrostatic lens. The computer program is listed and diagrams are included that show comparisons of trajectories of negative charges in the vicinity of positive charges. (TW)
Descriptors: College Science, Computer Assisted Instruction, Computer Uses in Education, Courseware
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