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Lingefjärd, Thomas; Ahmet, Guner – Physics Teacher, 2022
The subject of mathematics is important for many other subjects, including physics. The questions we ask in physics often need a mathematical translation to be graphically interpreted and transformed. Students learn physics when interacting with physical questions; questions from physics also give insights and discoveries in mathematical problems.…
Descriptors: Science Instruction, Teaching Methods, Physics, Computer Oriented Programs
Larnder, Chris I. – Physics Teacher, 2021
Today's students are increasingly immersed in a landscape of screens and handheld digital devices through which a good deal of their interactions with the world around them are mediated. Physics educators, meanwhile, continue to rely on traditional human interactions with the physical world, such as sliding down a ramp or throwing a baseball, in…
Descriptors: Physics, Science Instruction, Teaching Methods, Computer Peripherals
Shakur, Asif; Valliant, Benjamin – Physics Teacher, 2020
The use of smartphones in experimental physics is by now widely accepted and documented. PASCO scientific's smart cart, in combination with student-owned smartphones and free apps, has opened up a new universe of low-cost experiments that have traditionally required cumbersome and expensive equipment. In this paper we demonstrate the simplicity,…
Descriptors: Science Instruction, Physics, Telecommunications, Handheld Devices
Lincoln, James – Physics Teacher, 2018
There are already several articles describing ways to teach physics using smartphone apps, but what are some experiments you can perform immediately without downloading any additional software? In the spirit of increasing the amount of hands-on activities each of us is doing, and to give us backup activities when you have a few extra minutes of…
Descriptors: Telecommunications, Handheld Devices, Physics, Science Instruction
Florea, Catalin – Physics Teacher, 2019
In almost any given day, one will stumble upon sounds that are out of the ordinary, distinct enough to capture one's attention. Ordinary sounds in a home are represented by the white-noise-like background created by speaking, moving around, household appliances running, and so forth. The out of the ordinary is the sparkling sound of a knife blade…
Descriptors: Telecommunications, Handheld Devices, Acoustics, Science Instruction
Thoms, Lars-Jochen; Colicchia, Giuseppe; Girwidz, Raimund – Physics Teacher, 2018
Smartphones have evolved into all-purpose computing machines with exceptional capabilities. They are becoming increasingly powerful, with modern audio "codec" (coder/decoder) chips that provide recorded audio of high quality. Smartphone developers now offer many sound applications (apps) using both the devices' built-in microphone and…
Descriptors: Telecommunications, Handheld Devices, Science Instruction, Computer Oriented Programs
Ruiz, Michael J. – Physics Teacher, 2018
The frequency ratios for the just diatonic scale are obtained by identifying musical intervals corresponding to Lissajous figures. The demonstration integrates the engineering physics of Lissajous patterns with the recognition of musical intervals through simple ear training. A free HTML5 app has been developed for this class activity and the…
Descriptors: Music, Physics, Science Instruction, Computer Oriented Programs
Hawley, Scott H.; McClain, Robert E., Jr. – Physics Teacher, 2018
When Yang-Hann Kim received the Rossing Prize in Acoustics Education at the 2015 meeting of the Acoustical Society of America, he stressed the importance of offering visual depictions of sound fields when teaching acoustics. Often visualization methods require specialized equipment such as microphone arrays or scanning apparatus. We present a…
Descriptors: Physics, Acoustics, Visualization, Telecommunications
Hergemöller, Timo; Laumann, Daniel – Physics Teacher, 2017
Today smartphones and tablets do not merely pervade our daily life, but also play a major role in STEM education in general, and in experimental investigations in particular. Enabling teachers and students to make use of these new techniques in physics lessons requires supplying capable and affordable applications. Our article presents the…
Descriptors: Handheld Devices, Telecommunications, Visual Aids, Laboratory Equipment
Ruiz, Frances; Ruiz, Michael J. – Physics Teacher, 2015
Color addition and subtraction apps in HTML5 have been developed for students as an online hands-on experience so that they can more easily master principles introduced through traditional classroom demonstrations. The evolution of the additive RGB color model is traced through the early IBM color adapters so that students can proceed step by step…
Descriptors: Color, Hands on Science, Scientific Concepts, Mathematical Concepts
Carvalho, Paulo Simeão; Hahn, Marcelo – Physics Teacher, 2016
The result of additive colors is always fascinating to young students. When we teach this topic to 14- to 16-year-old students, they do not usually notice we use maximum light quantities of red (R), green (G), and blue (B) to obtain yellow, magenta, and cyan colors in order to build the well-known additive color diagram of Fig. 1. But how about…
Descriptors: Science Experiments, Teaching Methods, Hands on Science, Color
Oss, Stefano; Rosi, Tommaso – Physics Teacher, 2015
We have developed an app for iOS-based smart-phones/tablets that allows a 3-D, complex phase-based colorful visualization of hydrogen atom wave functions. Several important features of the quantum behavior of atomic orbitals can easily be made evident, thus making this app a useful companion in introductory modern physics classes. There are many…
Descriptors: Computer Oriented Programs, Handheld Devices, Visual Aids, Science Instruction
Hechter, Richard P. – Physics Teacher, 2013
With the increased availability of modern technology and handheld probeware for classrooms, the iPad and the Video Physics application developed by Vernier are used to capture and analyze the motion of an ice hockey puck within secondary-level physics education. Students collect, analyze, and generate digital modes of representation of physics…
Descriptors: Physics, Science Instruction, Handheld Devices, Computer Oriented Programs

Milsop, Marilyn P. – Physics Teacher, 1981
Suggests approaches to teaching computer programing and applications to physics instruction. Indicates that the necessity of breaking a problem down into a programable entity ensures that the student will learn programing, logical sequential thinking, as well as physics content. (JN)
Descriptors: Computer Oriented Programs, Computer Programs, Microcomputers, Physics

McGuire, George – Physics Teacher, 1978
Describes fourteen different BASIC computer programs to aid teaching secondary physics. (SL)
Descriptors: Computer Assisted Instruction, Computer Oriented Programs, Computer Programs, Physics
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