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Sapple, Paul; Reilly, Lee M. – School Science Review, 2013
Demonstrating that a moving magnet can induce an electromagnetic force by causing an electric current in a conducting material can be shown by a number of methods. A common method is dropping a magnet down a copper pipe and showing that the rate of fall is much slower than expected owing to the induced electric current in the copper pipe. This…
Descriptors: Science Instruction, Magnets, Energy, Scientific Concepts
Wood, Deborah; Sebranek, John – Physics Teacher, 2013
In April 1820, Hans Christian Ørsted noticed that the needle of a nearby compass deflected briefly from magnetic north each time the electric current of the battery he was using for an unrelated experiment was turned on or off. Upon further investigation, he showed that an electric current flowing through a wire produces a magnetic field. In 1831…
Descriptors: Magnets, Electronics, Science Experiments, Science Instruction
Reich, Gary – Physics Teacher, 2013
In introductory texts Ampere's law is generally introduced in the steady-current form ?B · dl = µ[subscript 0]I, and it is later extended to a more general form involving the so-called displacement current I[subscript d], ?B · dl = µ[subscript 0](I + I[subscript d]) · (1). Here the line integral is to be taken along a closed…
Descriptors: Scientific Principles, Energy, Magnets, Science Instruction
Guidote, Armando M., Jr.; Pacot, Giselle Mae M.; Cabacungan, Paul M. – Journal of Chemical Education, 2015
Magnetic stirrers and hot plates are key components of science laboratories. However, these are not readily available in many developing countries due to their high cost. This article describes the design of a low-cost magnetic stirrer with hot plate from recycled materials. Some of the materials used are neodymium magnets and CPU fans from…
Descriptors: Science Instruction, Magnets, Science Laboratories, Developing Nations
Prentice, A.; Fatuzzo, M.; Toepker, T. – Physics Teacher, 2015
By describing the motion of a charged particle in the well-known nonuniform field of a current-carrying long straight wire, a variety of teaching/learning opportunities are described: 1) Brief review of a standard problem; 2) Vector analysis; 3) Dimensionless variables; 4) Coupled differential equations; 5) Numerical solutions.
Descriptors: Magnets, Motion, Physics, Learning Activities
Ladino, L. A.; Rondón, S. H.; Orduz, P. – Physics Education, 2015
This paper focuses on the use of software developed by the authors that allows the visualization of the motion of a charged particle under the influence of magnetic and electric fields in 3D, at a level suitable for introductory physics courses. The software offers the possibility of studying a great number of physical situations that can…
Descriptors: Science Instruction, Motion, Physics, Computer Software
Najiya Maryam, K. M. – Physics Education, 2014
If we drop a magnet through a coil, an emf is induced in the coil according to Faraday's law of electromagnetic induction. Here, such an experiment is done using expEYES kit. The plot of emf versus time has a specific shape with two peaks. A theoretical analysis of this graph is discussed here for both short and long cylindrical magnets.…
Descriptors: Science Instruction, Science Experiments, Magnets, Motion
Corridoni, Tommaso; D'Anna, Michele; Fuchs, Hans – Physics Teacher, 2014
The damped oscillator is discussed in every high school textbook or introductory physics course, and a large number of papers are devoted to it in physics didactics journals. Papers typically focus on kinematic and dynamic aspects and less often on energy. Among the latter, some are devoted to the peculiar decreasing behavior of energy…
Descriptors: Science Instruction, Secondary School Science, Science Experiments, Energy
Garcia, David R. – MIT Press, 2018
The issues and arguments surrounding school choice are sometimes hijacked to make political points about government control, democratic ideals, the public good, and privatization. In this volume in the MIT Press Essential Knowledge series, David Garcia avoids partisan arguments to offer an accessible, objective, and comprehensive guide to school…
Descriptors: School Choice, Home Schooling, Private Schools, Magnet Schools
Ochs, David S.; Miller, Ruth Douglas – IEEE Transactions on Education, 2015
Power electronics and renewable energy are two important topics for today's power engineering students. In many cases, the two topics are inextricably intertwined. As the renewable energy sector grows, the need for engineers qualified to design such systems grows as well. In order to train such engineers, new courses are needed that highlight the…
Descriptors: Electronics, Energy, Engineering Education, Sustainability
Woolsey, Lauren – Journal of Astronomy & Earth Sciences Education, 2015
The paper presents an interactive module created through the Wolfram Demonstrations Project that visualizes the Zeeman effect for the small magnetic field strengths present in the interstellar medium. The paper provides an overview of spectral lines and a few examples of strong and weak Zeeman splitting before discussing the module in depth.…
Descriptors: Science Instruction, Learning Modules, Magnets, Scientific Concepts
Bates, Alan – Physics Teacher, 2015
Instruments or digital meters with data values visible on a seven-segment display can easily be found in the physics lab. Examples include multimeters, sound level meters, Geiger-Müller counters and electromagnetic field meters, where the display is used to show numerical data. Such instruments, without the ability to connect to computers or data…
Descriptors: Science Instruction, Science Laboratories, Physics, Laboratory Equipment
Abdul-Razzaq, Wathiq; Biller, R. Dale; Wilson, Thomas H. – Physics Education, 2015
There is no doubt that integrated concepts inspire students and take learning to a new level. As we fly, we fly through the magnetic field of the Earth. We used the concepts involved in flying to develop an exercise that bonds geology, physics and life sciences.
Descriptors: Science Instruction, Scientific Concepts, Magnets, Physics
Michaelis, Max M. – Physics Education, 2014
After a brief history of the Levitron, the first horizontal axis Levitron is reported. Because it is easy to operate, it lends itself to educational physics experiments and analogies. Precession and nutation are visualized by reflecting the beam from a laser pointer off the "spignet". Precession is fundamental to nuclear magnetic…
Descriptors: Science Instruction, Lasers, Magnets, Scientific Principles
Pathare, Shirish R.; Huli, Saurabhee; Lahane, Rohan; Sawant, Sumedh – Physics Teacher, 2014
Dropping a magnet into a conductive pipe (made up of copper or brass or aluminum) is a very popular demonstration in many physics classrooms and laboratories. In this paper we present an inexpensive timer that can be used to measure the terminal velocity of the magnet falling through a conducting pipe. The timer assembly consists of Hall effect…
Descriptors: Magnets, Motion, Measurement Equipment, Measurement Techniques

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