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Kolodiy, George Oleh – Journal of Computers in Mathematics and Science Teaching, 1988
Presents the LOGO computer language as a source to experience and investigate scientific laws. Discusses aspects and uses of LOGO. Lists two LOGO programs, one to simulate a gravitational field and the other projectile motion. (MVL)
Descriptors: Computer Graphics, Computer Simulation, Instructional Materials, Mechanics (Physics)
Vacha, T. H. – 1984
The Rockwell AIM 65 is recommended for use in physics laboratories. Among advantages cited are that the basic board can be purchased customized; for example, it can be purchased with or without a printer, power supply, extra memory, and other items. In addition, the computer is basically designed to control equipment and take data from peripheral…
Descriptors: Acceleration (Physics), College Science, Computer Oriented Programs, Computer Software
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Physics Education, 1985
Presents: (1) method for tuning sonometers with a VELA and sensing device; (2) computer simulation of two-dimensional gas diffusion; (3) inexpensive procedure for digitizing with better than 0.5mm precision (with program listing); and (4) a simple optical diffraction analogue apparatus for use with the laser. (DH)
Descriptors: College Science, Diffusion (Physics), Higher Education, Lasers
Jacobs, Steve – 2000
This CD-ROM is designed to spark the interest of students with science activities and demonstrations similar to "Jake's Attic" and "Mr. Wizard." This first volume of the "Whelmers" collection engages students in science process thinking. The activities are meant to "whelm" the students, not overwhelm them.…
Descriptors: Academic Standards, Chemistry, Density (Matter), Elementary Secondary Education
2000
This high school physics computer software resource is a systems and control simulator that covers the topics of electricity, electronics, mechanics, and programming. Circuits can easily be simulated on the screen and electronic and mechanical components can be combined. In addition to those provided in Crocodile Technology, a student can create…
Descriptors: Computer Assisted Instruction, Computer Simulation, Demonstrations (Science), Electricity
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Nemirovsky, Ricardo; Tinker, Robert – Journal of Computers in Mathematics and Science Teaching, 1993
Describes software, hardware, and devices that were designed to provide students with an environment to experiment with basic ideas of mechanics, including nonlinear dynamics. Examines the behavior of a Lorenzian water wheel by comparing experimental data with theoretical results obtained from computer-based sensors. (MDH)
Descriptors: Chaos Theory, Computer Assisted Instruction, Computer Simulation, Computer Software
2000
This CD-ROM consists of simulation software that allows students to conduct countless experiments using 20 Java simulators and curriculum units that explore light and color, forces and motion, sound and waves, static electricity and magnetism, current electricity, the nature of matter, and a unit on underpinnings. Setups can be designed by the…
Descriptors: Acoustics, Computer Simulation, Curriculum Development, Electricity
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De Jong, Marvin L. – Physics Teacher, 1992
Studies the simple dynamical system of the pendulum and the chaotic behavior that occurs when the pendulum is both damped and driven. Provides an algorithm and BASIC program for the numerical solution to the differential equations encountered in the discussion. (MDH)
Descriptors: Algorithms, Chaos Theory, Computer Assisted Instruction, Differential Equations
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Moore, Guy S. M. – Physics Education, 1988
Introduced is a unique generation method of Fourier series requiring simple mathematical skills and using computer programs. Discusses Fourier synthesis by microcomputer, and Fourier analysis with simple equipment. Shown are a circuit diagram, computer programs, monitor displays and tables of data. (YP)
Descriptors: Acoustics, College Science, Computer Graphics, Computer Software
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Calle, Carlos I.; Wright, Lavonia F. – Journal of Computers in Mathematics and Science Teaching, 1989
Lists a program for a simulation of Rutherford's gold foil experiment in BASIC for both Apple II and IBM compatible computers. Compares Rutherford's model of the atom with Thompson's plum pudding model of the atom. (MVL)
Descriptors: Atomic Structure, Atomic Theory, College Science, Computer Graphics
Barron, Marcelline A. – 1986
This document contains the listings for 46 computer programs which are designed to teach various concepts in chemistry and physics. Significant time was spent in writing programs in which students would input chemical and physical data from their laboratory experiments. No significant time was spent writing drill and practice programs other than…
Descriptors: Chemistry, Computer Software, High Schools, Physics
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Levin, Sidney – Journal of Computers in Mathematics and Science Teaching, 1984
Presents the listing (TRS-80) for a computer program which derives the relativistic equation (employing as a model the concept of a moving clock which emits photons at regular intervals) and calculates transformations of time, mass, and length with increasing velocities (Einstein-Lorentz transformations). (JN)
Descriptors: College Science, Computer Software, High Schools, Higher Education
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Hoffman, Dale T. – Physics Teacher, 1991
Discusses a misconception about the cycloid that asserts the final point on the path of shortest time in the "Brachistochrone" problem is at the lowest point on the cycloid. Uses a BASIC program for Newton's method to determine the correct least-time cycloid. (MDH)
Descriptors: High Schools, Mathematical Formulas, Mathematical Models, Misconceptions
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School Science Review, 1984
Presents 26 activities, experiments, demonstrations, games, and computer programs for biology, chemistry, and physics. Background information, laboratory procedures, equipment lists, and instructional strategies are given. Topics include eye measurements, nutrition, soil test tube rack, population dynamics, angular momentum, transition metals,…
Descriptors: Biology, Chemistry, Computer Software, Demonstrations (Educational)
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Dean, P. J.; Murkett, A. J. – Physics Education, 1985
Describes how color graphics are built up on microcomputer displays and how a range of colors can be produced. Discusses the logic of color formation, noting that adding/subtracting color can be conveniently demonstrated. Color generating techniques in physics (resistor color coding and continuous spectrum production) are given with program…
Descriptors: College Science, Color, Computer Graphics, Computer Software
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