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Culp, Brian – Quest, 2016
This article presents a rationale for the infusion of social justice into kinesiology programs for the purpose of reducing inequities in society. Specifically, the current climate for social justice is considered and discussed using examples from an university-inspired service-learning initiative, law, and politics. Of note are the following areas…
Descriptors: Social Justice, Higher Education, Kinetics, Human Body
Rall, James D.; Abdul-Razzaq, Wathiq – Contemporary Issues in Education Research, 2012
An introductory physics experiment has been developed to address the issues seen in conventional physics lab classes including assumption verification, technological dependencies, and real world motivation for the experiment. The experiment has little technology dependence and compares the acceleration due to gravity by using position versus time…
Descriptors: Introductory Courses, Physics, Science Instruction, Science Experiments
Simonson, Shawn R.; Shadle, Susan E. – Journal of STEM Education: Innovations and Research, 2013
Process Oriented Guided Inquiry Learning (POGIL) uses specially designed activities and cooperative learning to teach content and to actively engage students in inquiry, analytical thinking and teamwork. It has been used extensively in Chemistry education, but the use of POGIL is not well documented in other physical and biological sciences. This…
Descriptors: Educational Strategies, Cooperative Learning, Teaching Methods, Biological Sciences
Grunwald, Sandra K.; Krueger, Katherine J. – Biochemistry and Molecular Biology Education, 2008
Laboratory exercises, which utilize alkaline phosphatase as a model enzyme, have been developed and used extensively in undergraduate biochemistry courses to illustrate enzyme steady-state kinetics. A bioinformatics laboratory exercise for the biochemistry laboratory, which complements the traditional alkaline phosphatase kinetics exercise, was…
Descriptors: Kinetics, Chemistry, Science Experiments, Biochemistry
Peer reviewedHall, L.; Goberdhansingh, A. – Journal of Chemical Education, 1988
Describes a simple redox reaction that occurs between potassium permanganate and oxalic acid that can be used to prepare an interesting disappearing ink for demonstrating kinetics for introductory chemistry. Discusses laboratory procedures and factors that influence disappearance times. (CW)
Descriptors: Chemical Reactions, Chemistry, College Science, Demonstrations (Educational)
Peer reviewedKruglak, Haym – Journal of Chemical Education, 1988
Reports an experimental procedure for studying Einstein's theory of Brownian movement using commercially available latex microspheres and a video camera. Describes how students can monitor sphere motions and determine Avogadro's number. Uses a black and white video camera, microscope, and TV. (ML)
Descriptors: Chemistry, College Science, Higher Education, Instructional Materials
Peer reviewedPogliani, Lionello; Berberan-Santos, Mario N. – Journal of Chemical Education, 1996
Describes the inflation rate problem and offers an interesting analogy with chemical kinetics. Presents and solves the car devaluation problem as a normal chemical kinetic problem where the order of the rate law and the value of the rate constant are derived. (JRH)
Descriptors: Chemical Reactions, Chemistry, Foreign Countries, Higher Education
Peer reviewedBaierlein, Ralph – American Journal of Physics, 1978
Introduces a pictorial, intuitive approach that allows the teaching of thermodynamics equilibrium in an introductory college physics course. (GA)
Descriptors: College Science, Heat, Higher Education, Instruction
Peer reviewedBarnsley, E. A. – Biochemical Education, 1990
The Briggs-Haldane assumption is used as the basis for the development of a kinetic model for enzyme catalysis. An alternative definition of the steady state and examples of realistic mechanisms are provided. (KR)
Descriptors: Biochemistry, Chemical Reactions, College Science, Enzymes
Peer reviewedShindell, Dav M.; And Others – Journal of Chemical Education, 1978
Describes four cases for which simulation techniques can be used to analyze the kinetics of the chemical system. Included are series first-order and enzyme kinetics. (MA)
Descriptors: Chemistry, College Science, Higher Education, Kinetics
Peer reviewedSplittgerber, Allan G. – Journal of Chemical Education, 1983
Presented is a possible approach to the classroom treatment of enzyme kinetics at the two-substrate level. Areas discussed include single substrate cases, two substrate cases, Cleland's rules, dead end inhibition, inhibitor complexing with more than one enzyme form, and product inhibition. (JN)
Descriptors: Biochemistry, Chemical Equilibrium, Chemistry, College Science
Peer reviewedWiseman, Frank L., Jr. – Journal of Chemical Education, 1979
This paper reports an experiment in the teaching of the kinetic molecular theory to nonscience majors by the inquiry method. It allows the student to develop an essentially correct view of gases, liquids, and solids on the atomic or molecular level, and illustrates how one can draw conclusions about the molecular level by simple visual…
Descriptors: Chemistry, College Science, Educational Research, Higher Education
Peer reviewedHarsch, Gunther – Journal of Chemical Education, 1984
Proposes an approach to chemical kinetics and mechanism using statistical games, illustrating its use in monomolecular, catalytic, autocatalytic, consecutive, and equilibrium reactions. Major features of the games are also outlined and discussed. (JN)
Descriptors: Chemical Equilibrium, Chemical Reactions, Chemistry, College Science
Peer reviewedJournal of Chemical Education, 1983
Various aspects of chemical equilibrium were discussed in six papers presented at the Seventh Biennial Conference on Chemical Education (Stillwater, Oklahoma 1982). These include student problems in understanding hydrolysis, helping students discover/uncover topics, equilibrium demonstrations, instructional strategies, and flaws to kinetic…
Descriptors: Chemical Equilibrium, Chemistry, College Science, Demonstrations (Educational)
Peer reviewedSilverstein, Todd P. – Journal of Chemical Education, 1995
Describes a simple and graphic demonstration of molecular motion that utilizes a hot plate, a beaker, tap water, India ink, and a Pasteur pipette with a rubber bulb. Provides tips on guiding students to an understanding of molecular motion using this demonstration. (DDR)
Descriptors: Chemistry, Demonstrations (Science), Discussion (Teaching Technique), Higher Education

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