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Leff, Harvey S. – Physics Teacher, 1990
Presents ideas on how common household light bulbs can be used to develop interest in learning physics. Focuses on supermarket data taking and analyses, filament temperatures, detective work with three-way bulbs, and lifetime statistics. (YP)
Descriptors: College Science, Electricity, Higher Education, Laboratory Experiments
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Sandin, T. R. – Physics Teacher, 1990
Defines and discusses jerk, the time rate of change of the acceleration. Presents some cases of jerk with mathematical expressions. Provides questions and problems for classroom use. Lists seven references. (YP)
Descriptors: Acceleration (Physics), College Science, Higher Education, Laboratory Experiments
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Collings, Peter J.; Greenslade, Thomas B., Jr. – Physics Teacher, 1989
Reports experiences during a two-year period in introducing the computer to the laboratory and students to the computer as a laboratory instrument. Describes a working philosophy, data acquisition system, and experiments. Summarizes the laboratory procedures of nine experiments, covering mechanics, heat, electromagnetism, and optics. (YP)
Descriptors: College Science, Computer Assisted Instruction, Computer Interfaces, Computer Software
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Goh, N. K.; And Others – Journal of Chemical Education, 1989
Provided is a model to depict how the development of process skills can be systematically achieved and in turn determine the students' achievement in science practicals. Modified laboratory instruction is compared with conventional laboratory instruction. The results of field testing on 164 ninth grade subjects are described. (MVL)
Descriptors: Chemistry, Grade 9, Instructional Effectiveness, Laboratories
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Kirksey, H. Graden; Jones, Richard F. – Journal of Chemical Education, 1988
Shows how video recordings of the Brownian motion of tiny particles may be made. Describes a classroom demonstration and cites a reported experiment designed to show the random nature of Brownian motion. Suggests a student experiment to discover the distance a tiny particle travels as a function of time. (MVL)
Descriptors: Chemical Nomenclature, Chemistry, College Science, Inorganic Chemistry
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Todd, David; Pickering, Miles – Journal of Chemical Education, 1988
Notes that laboratory work should be more oriented towards puzzle solving rather than technique or illustration. Offers three organic laboratory puzzles which can be solved by melting point alone. Involves lab work at the 100-200-mg scale but still uses conventional glassware. (MVL)
Descriptors: Chemical Analysis, Chemical Reactions, Chemistry, College Science
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Minch, Michael J. – Journal of Chemical Education, 1989
Discusses a three-week summer college honors course for talented high school juniors with three exams, lab six days a week, a research paper, field trips, and student panel discussions. Presents an overview of the course. Describes the lab which uses "E. coli" for DNA recombination. (MVL)
Descriptors: Academically Gifted, Biochemistry, Chemistry, College Science
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Sharp, John D., Sr.; Smailes, Deborah L. – American Biology Teacher, 1989
Explains an activity that allows students to visualize antigen-antibody type reactions and learn about antibodies and antigens without performing blood typing tests. Provides directions for students and a comparison chart of a blood typing simulation with procedure which is based on the reactions of certain ionic solutions when mixed. (RT)
Descriptors: Biological Sciences, Biology, College Science, Demonstrations (Educational)
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Kandel, Marjorie – Journal of Chemical Education, 1988
Discusses the problems of grading an organic laboratory course. Proposes that the grade should be based as: products--30 percent of the grade; notebooks--30 percent of the grade; exams and final report--40 percent of the grade. Gives an exception policy for special considerations. (MVL)
Descriptors: Academic Achievement, Chemistry, College Science, Evaluation
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Vergragt, Philip J. – Social Studies of Science, 1988
Investigates the choice processes within innovation processes in industrial research laboratories. Develops a conceptual framework for the analysis of the processes through two case studies. Discusses the potential of the framework both for enriching the analysis and for enhancing social influences over industrial research. (Author/YP)
Descriptors: Foreign Countries, Industry, Laboratories, Research
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Kruglak, 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
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Randall, Walter C.; Burkholder, Timothy – Advances in Physiology Education, 1990
The results of actual student participation, with organized group discussions, which show that laboratory teaching remains the premiere mechanism for teaching and learning organ-system physiology are discussed. Laboratories using a pithed frog, a turtle heart, an anesthetized rabbit, and noninvasive recordings from students during exercise are…
Descriptors: Anatomy, Cardiovascular System, College Science, Dissection
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Brownridge, James D.; And Others – Physics Teacher, 1990
A phenomenological explanation of this effect is provided. Suggestions for the inclusion of pyroelectric effects into a unit on electrostatics are given. (CW)
Descriptors: College Science, Demonstrations (Educational), Electricity, Higher Education
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Hodson, Derek – Interchange, 1993
Examines whether teachers' views about the nature of science and scientific inquiry are reflected in their choice and design of learning experiences (particularly laboratory activities) and, therefore, are significant influences on students' understanding of science. (SM)
Descriptors: Curriculum Design, Educational Philosophy, Knowledge Level, Laboratory Experiments
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Robinson, William R. – Journal of Chemical Education, 1998
Argues that visual images can act as conceptual pegs for concepts or complicated procedures and help students perform better in the cognitive, affective, and manipulative domains of the laboratory. Conclusion was based on a study of chemistry laboratory students (N=83). (DDR)
Descriptors: Chemical Reactions, Chemistry, Concept Formation, Data Collection
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