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Peer reviewedBunker, C. A. – Physics Education, 1986
Explains the use of an accelerometer in investigations confirming Newton's second law. Provides diagrams and descriptions of the apparatus. (ML)
Descriptors: Acceleration (Physics), Demonstrations (Educational), Laboratory Equipment, Motion
Peer reviewedLinskey, Mark E.; And Others – Journal of Medical Education, 1987
A course to familiarize medical students with the principles of good medical research study design and analysis focuses on three types of studies: clinical trials, laboratory science, and epidemiology and biostatistics. (MSE)
Descriptors: Course Organization, Epidemiology, Experiments, Higher Education
Bruce, A. Wayne – Collegiate Microcomputer, 1986
Describes reasons for developing combined text and computer assisted instruction (CAI) teaching programs for delivery of continuing education to laboratory professionals, and mechanisms used for developing a CAI program on method evaluation in the clinical laboratory. Results of an evaluation of the software's cost effectiveness and instructional…
Descriptors: Behavioral Objectives, Computer Assisted Instruction, Cost Effectiveness, Courseware
Peer reviewedJones, Lawrence; Graham, Ian – Journal of Biological Education, 1986
Reviews the main principles of interfacing and discusses the software developed to perform kinetic data capture and analysis with a BBC microcomputer linked to a recording spectrophotometer. Focuses on the steps in software development. Includes results of a lactate dehydrogenase assay. (ML)
Descriptors: Biology, College Science, Computer Uses in Education, Courseware
Peer reviewedBeasley, Warren – Science Education, 1985
Analyzes three approaches (physical, mental, combined practice) to improving freshman chemistry psychomotor laboratory skills. Although no significant differences were found between treatments, there were significant differences when each was compared to the control sections. Mental practice appears to offer an efficient methods for reinforcement…
Descriptors: Chemistry, College Science, Higher Education, Laboratory Procedures
Ohles, John F. – Technological Horizons in Education, 1985
As a form of warning to educators who might mistake novelty for value, a nationally recognized expert compares the present influx of microcomputers into academia, with similar and now historic moves by motion pictures, educational radio and television, language laboratories, and teaching machines. (JN)
Descriptors: Educational Innovation, Educational Technology, Educational Television, Educational Trends
Peer reviewedSherard, Wade H. – Arithmetic Teacher, 1985
A class of preservice teachers was divided into teams to research geometry, measurement, probability, and statistics topics and ascertain ways each can be taught to children. Activities are set up so other students can work with them. References and materials are listed. (MNS)
Descriptors: Elementary Education, Elementary School Mathematics, Learning Activities, Learning Laboratories
Peer reviewedBisschop, F. De; Segaert, O. – Physics Education, 1986
Proposes an analog circuit for use in sedimentation analysis of finely divided solid materials. Discusses a method of particle size distribution analysis and provides schematics of the circuit with list of components as well as a discussion about the operation of the circuit. (JM)
Descriptors: College Science, Electric Circuits, Electronic Equipment, Electronics
Advanced Placement Chemistry: A Feasible, Alternative Approach to Advanced Placement Chemistry Labs.
Peer reviewedBergmeier, Brian D. – Journal of Chemical Education, 1984
Discusses two factors to consider when initiating advanced placement (AP) chemistry, namely, the quality of those teaching the program and the time necessary to teach the relevant concepts. Suggests offering laboratory sessions during evening hours as an alternative to traditional daytime arrangements for laboratory blocks. (JN)
Descriptors: Advanced Placement Programs, Chemistry, Scheduling, Science Curriculum
Peer reviewedKroll, LeRoy – Journal of Chemical Education, 1985
An organic chemistry laboratory has been designed around independent laboratory projects that are done by groups, thus exposing students not only to a research experience but also to one that is more realistic and like the one they will be in as professional chemistry chemists. Instructional strategies used are described. (JN)
Descriptors: College Science, Higher Education, Organic Chemistry, Science Education
Peer reviewedDessy, Raymond E., Ed. – Analytical Chemistry, 1985
Discusses new solid-state transducers, arrays of nonspecific detectors, hardware and firmware computational elements, and other devices that are transforming modern analytical chemistry. Examples in which microelectroic sensors are used to solve 14 problems are included. (JN)
Descriptors: Chemical Analysis, Chemistry, College Science, Computer Oriented Programs
Peer reviewedBuck, M. – Journal of Biological Education, 1985
A hair dryer, plastic funnel, and microscope slide can be used for predicting pollen counts on a day-to-day basis. Materials, methods for assembly, collection technique, meteorological influences, and daily patterns are discussed. Data collected using the apparatus suggest that airborne grass products other than pollen also affect hay fever…
Descriptors: Biology, Botany, College Science, Ecology
Peer reviewedRenfrew, Malcolm M., Ed. – Journal of Chemical Education, 1984
Presents an appendix to the Committee on Professional Training (CPT) of the Division of Chemical Health and Safety of the American Chemical Society. The information is applicable to chemical health and safety policies and practices within the chemistry department of an academic institution. Includes lists of references with safety information. (JN)
Descriptors: Chemistry, College Science, Higher Education, Laboratory Safety
Peer reviewedLarson, Garrett; And Others – American Biology Teacher, 1984
Describes current methods for the synthesis of DNA. Also describes the use of DNA as a highly specific molecular probe and as an agent for the mutation of genes. (DH)
Descriptors: Biochemistry, Biology, Chemical Reactions, College Science
Peer reviewedLamb, William G. – Science Teacher, 1984
Discusses the rationale for using photochemistry to merge descriptive chemistry and molecular orbital theory in first-year chemistry courses. Includes procedures and safety information for various activities, demonstrations, and experiments involving photochemical reactions. (DH)
Descriptors: Chemistry, Demonstrations (Educational), High Schools, Laboratory Procedures


