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Peer reviewedRamkrishna, D.; And Others – Chemical Engineering Education, 1989
This is a summary of a seminar for changing the undergraduate chemical engineering curriculum in India. Identifies and describes biotechnology, materials for structural and microelectronic catalysis, and new separation processes as emerging areas. Evaluates the current curriculum, including basic science, engineering lore, chemical engineering,…
Descriptors: Chemical Engineering, College Science, Curriculum Development, Curriculum Guides
Peer reviewedLee, William E., III – Chemical Engineering Education, 1991
Describes an undergraduate course in chemical engineering that details the technology of immobilized enzymes and cells. Includes the course rationale and purpose; the course outline when offered as an engineering elective in the biotechnology area; and discussion of appropriate text, selected real-world applications, and laboratory presentations.…
Descriptors: Chemical Engineering, Course Content, Course Descriptions, Curriculum Development
Joseph J. Biernacki – Chemical Engineering Education, 2005
The ABET Engineering Criteria Program Outcomes and Assessment presents faculty, department heads, and college administrators with the challenge to actually demonstrate that their graduates have a broad range of abilities. This challenge has precipitated an unprecedented outcomes-based movement in engineering education. One possible course-level…
Descriptors: Engineering Education, Chemical Engineering, College Curriculum, College Outcomes Assessment
Ewing, Ben B.; and others – J Eng Educ, 1969
Descriptors: Curriculum Development, Engineering Education, Graduate Study
Minder, Thomas – J Eng Educ, 1970
Engineering libraries and information courses should be better utilized so that engineering literature ceases to stand apart from lectures, laboratory and practice. (IR)
Descriptors: Curriculum Development, Engineering Education, Higher Education
Lum, Lydia – Black Issues in Higher Education, 2005
This article provides an overview of the accomplishments of Assistant Professor of Biomedical Engineering at the New Jersey Institute of Technology, Treena Livingston Arinzeh. It describes her exemplary work on stem cell research; her educational roots; and her work helping develop undergraduate and graduate curricula for the fledgling biomedical…
Descriptors: Engineering, Biomedicine, Curriculum Development, Educational Background
Klopfer, Eric; Scheintaub, Hal; Huang, Wendy; Wendel, Daniel; Roque, Ricarose – E-Learning, 2009
StarLogo The Next Generation (TNG) enables secondary school students and teachers to model decentralized systems through agent-based programming. TNG's inclusion of a three-dimensional graphical environment provides the capacity to create games and simulation models with a first-person perspective. The authors theorize that student learning of…
Descriptors: Curriculum Development, Creative Thinking, Secondary School Students, Pilot Projects
Schon, James F. – Engineering Education, 1977
The lack of consistency and uniformity throughout California concerning program and course objectives, titles and content, prompted the study reported in this article. Community colleges statewide were included in the study. Curricular characteristics of engineering technology and industrial technology programs were recommended and definitions…
Descriptors: Community Colleges, Curriculum Development, Curriculum Evaluation, Curriculum Problems
Peer reviewedMartinez, Enrico N.; Gomez, Roman – Chemical Engineering Education, 1982
Presents a brief history of the chemical industry in Mexico and discusses various aspects of curriculum development in chemical engineering in the past. Offers guidelines for current curriculum development and describes the program (including objectives and curriculum) in chemical engineering at UAM-I (Universidad Autonoma…
Descriptors: Chemical Engineering, Chemical Industry, College Curriculum, Curriculum Development
Peer reviewedCulberson, Oran L. – Chemical Engineering Education, 1979
Described is a doctorate level elective course in chemical engineering economics offered at the University of Tennessee. Students, working in pairs as a project team, must apply their knowledge of basic economics to the solution of a research question or problem. (BT)
Descriptors: Curriculum Development, Doctoral Degrees, Economics, Engineering
Peer reviewedFrank, Curtis W. – Chemical Engineering Education, 1979
Described is a series of four graduate level courses in polymer science, offered or currently in preparation, at Stanford University. Course descriptions and a list of required and recommended texts are included. Detailed course outlines for two of the courses are presented. (BT)
Descriptors: College Science, Curriculum Development, Engineering, Engineering Education
National Science Foundation, Washington, DC. Directorate for Education and Human Resources. – 1995
The Advanced Technological Education (ATE) program specifically addresses the education of science and engineering technicians. In 1994, the National Science Foundation, through the ATE program, awarded 58 grants to improve the quality of advanced technological education in science and engineering technology fields. This document contains…
Descriptors: Curriculum Development, Educational Planning, Engineering Education, Engineering Technicians
Kimbler, D. L. – Technological Horizons in Education, 1984
The impact of robotics in education is discussed in terms of academic assistance to industry in robotics as well as academic problems in handling the demands put upon it. Some potential solutions that can have lasting impact on educational systems are proposed. (JN)
Descriptors: College Science, Computer Oriented Programs, Curriculum Development, Engineering
Woods, Donald R.; Crowe, Cameron M. – Engineering Education, 1984
A professor entered a four-year engineering program together with student volunteers to obtain information on their problem-solving skills. This information as well as information on student characteristics and characteristics of freshmen and sophomore years are discussed in terms of curriculum modification, available resources, and needed changes…
Descriptors: Curriculum Development, Educational Research, Engineering, Engineering Education
Barr, Ronald E.; And Others – Engineering Education, 1984
Discusses computer graphics and computer-aided design in the freshman engineering program at the University of Texas at Austin. Procedure uses interactive modules that do not require any programing skills. An annotated test of modules used and suggested approaches that might be useful at other schools are included. (BC)
Descriptors: Computer Graphics, Computer Programs, Computers, Course Descriptions

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