implementation of an assessment plan toevaluate the effectiveness of this tool in promoting higher order thinking skills. The NorthwestRegional Educational Laboratory is providing support for the project evaluation and assessment.A five-member advisory committee consists of engineers and statisticians from academia(Oregon State University, University of Oregon) and industry (LSI Logic, Intel, WaferTech).The VirtualCVD Learning Platform is available now for use in approved courses. Instructorswho are interested in adopting this software into their curriculum can go to the following webpage for information: http://che.oregonstate.edu/research/VirtualCVDMotivationProficiency with statistical methodologies such as Design of Experiments (DOE) is
skills.Course Design and GoalsOlin’s introductory materials science is a project-based course that combines new pedagogicalpractices with modern laboratory facilities. The introductory materials science course employs aproject-based approach and emphasizes hands-on experimentation. The course’s strong linkagesto everyday stuff – products such as sporting goods, tools, and toys – as well as cutting edgematerials and processes are highly appealing to Olin’s undergraduate engineering students.The course is designed to provide significant opportunities for student self-direction.Several key elements of the course give students practice in controlling their own learningprocess. The course features open-ended projects with self-designed experiments, self
is an example of what waslooked for when partnering.Though successful precollege programs differ in their organization, length, and programelements, they do possess similar attributes and features.6 In general these include mathematicsand science preparation, hands-on laboratory experimentation, guest speakers, journal writing,exposure to the engineering workplace through field trips, and others. The TexPREP program isdiscussed from the standpoint of its serving as a model for a successful precollege program.The goals for El Paso TexPREP program are the following: • To acquaint student participants with professional opportunities in engineering; • To reinforce the mathematics preparation of these students at high school and college
through the stimulation and motivationof students [1]. Accordingly, it makes sense that those selected to teach undergraduatestudents should be trained properly for this function. Unfortunately, while mostcandidates applying for openings have little teaching experience, the institutions that arelooking to hire prospective faculty expect their candidates to be “teaching ready”[2].Adding to this problem is that the teaching experience that graduate students receive isquite different across the nation. For example, some graduate students are just used tograde homework and examinations, while others run homework recitations and a thirdgroup handles the laboratory. All of these experiences are quite unique and, at somelevel, a newly-hired faculty
year-long design course. This courseplays the critical role of keeping students engaged in engineering while giving them experiencesthat have been shown to promote retention (see discussion below under “Utilization of BestPractices”).Each year of the curriculum has themes that we plan to emphasize. These are shown in Figure 2.In the first two years, we emphasize engineering basics and systems thinking. Two courses inthe sophomore year have been added to promote these themes and two existing laboratories wereadjusted. The two sophomore-level courses are Materials Selection for the Life Cycle, andNanotechnology, Biology, Ethics and Society. Both courses emphasize systems thinking, thefirst in the design process, the second through articulating
and logic copying everything from the board. from electronic screen.Progression towards iterative learningTable 3 summarizes progress that I have made towards enabling students to use iteration inlearning engineering. In the early 1990s, dynamic digital imaging capabilities became accessibleon personal computers, especially the Apple Macintosh, with reasonable levels of coding effort.By integrating these into course assignments4, students could use images of real flows,conveying physical insight on dynamic phenomena. Laboratory experiments incorporated workwith digital video. This found use in teaching static deflection modes, structural dynamics, andfluid dynamics. Solutions of differential equations could be linked
both undergraduate and graduate level Mechanical Vibrations and Multimedia Engineering Analysis, and undergraduate level thermodynamics, Measurement Systems, Engineering Mechanics and Introduction to Engineering. One of Professor Orabi's most recent projects involves the development of Learning Modules on the web. These modules provide information, not only about particular course material, but also about more general topics relevant to engineering. He is also working on Computer-Aided Experimentations using LABVIEW. Professor Orabi has received a number of research awards from the State of Connecticut and Untied Technologies. He has established two Laboratories: the Materials Testing
2006-1487: REDUCING THE DEVELOPMENT COSTS FOR ACTIVE ANDINTERACTIVE LEARNING OBJECTS THROUGH WEB-BASEDCOLLABORATIVE AUTHORINGElliot Diaz, Polytechnic University of Puerto Rico Elliot Diaz Research Assistant within the eLearning Research Laboratory at the Polytechnic University of Puerto Rico, where he is pursuing a Master in Computer Engineering. Elliot holds a BS in Computer Science.Carlos Pacheco, Polytechnic University of Puerto Rico Carlos Pacheco is a programmer with the Connect To Learn Project which is developing web-based authoring for the collaborative authoring of learning objects. He completed a BS in Computer Engineering summa cum laude at the Polytechnic University of Puerto
Professional Engineer in California, and has held numerous positions in the ASEE Energy Conversion and Conservation Division.Owe Petersen, Milwaukee School of Engineering Dr. Petersen is Department Chair and Professor of Electrical Engineering and Computer Science at the Milwaukee School of Engineering (MSOE). He is a former Member of Technical Staff at AT&T Bell Laboratories and received his Ph.D. degrees from the University of Pennsylvania in 1971. He is a Senior Member of the IEEE and an ABET EAC program evaluator in Electrical Engineering. Page 11.366.1© American Society for Engineering Education, 2006
Member of Tau Beta Pi, and a Life Senior Member of IEEE. His research activities include organizational process improvement and unmanned aerial vehicles.Allan Arb, U.S. Air Force Academy PhD, received his BSEE from the U.S. Air Force Academy in 1991. Upon graduation, he was stationed in San Antonio, TX where he conducted research and analysis on various military and commercial radar and weapon systems. He graduated from the Air Force Institute of Technology (AFIT) with an MSEE in 1996 and a Ph.D. from AFIT in 2001. He has spent time in the Directed Energy Directorate of the Air Force Research Laboratory, and is currently an Assistant Professor in the Department of Electrical and Computer
Gerstenfeld and Amy Zeng, she recently received a grant from the National Science Foundation to develop a laboratory for an introductory lean supply chain design course. Her work has appeared in Operations Research, the Business Process Management Journal, the Case Research Journal and Water Resources Research. She is a member of the Institute of Industrial Engineers (IIE), the Institute for Operations Research Management Science (INFORMS), the Production and Operations Management Society (POMS), and the American Society for Engineering Education (ASEE).Diane Strong, Worcester Polytechnic Institute Diane M. Strong is an Associate Professor in the Department of Management at Worcester
interface for the module for Brownian particle motions in cross flows.Module III, Experimental The course sequence includes several experimental modules. One mainexperiment is the measurement in the aerosol wind tunnel with the use of Particle ImageVelocimeter (PIV). The aerosol wind tunnel is located in the Turbulence and MultiphaseFlow Laboratory at Clarkson University. The laser used was a 120mJ Nd:YaG laserwith a 20° adjustable width sheet generator. In this experiment, the sheet width was 0.5 Page 11.981.4mm. The digital camera that was used was a Kodak ES1.0 MegaPlus camera. The 3camera
. Teamwork is very important in order to succeed at engineering design.3. Becoming an engineer demands dedication.Among the highest rated (mean = 4 for very useful) parts of the Bridges workshops andprofessional development were: • What engineers do • Steps in the design process • Tours of engineering design firms • Students’ perspective on engineering • Communication skills in engineering • Engineering sciences • Engineering laboratory exercises • Engineering design results • Women in engineering • International design.Among the most low rated (mean = 3 for useful; not very low at all) workshop components are: • Principles of statics • Design process in industry • Principles of kinematics, dynamics • Gears and
discussed his interest in the BugHunter payload and why he needs mosquito populationsamples for his research on biogeography, and Dr. Nilles introduced the participants to potentialbiological pathogens that could use an airborne detector flown as a UAV payload to protectagainst bioterrorism. Two NASA experts were also brought to campus to meet the students. Dr.Adam Steltzner, Flight Systems Chief Engineer with the Jet Propulsion Laboratory in Pasadena,California, talked about his experiences in helping to design and build JPL’s twin rovers, Spiritand Opportunity. Dr. Steltzner discussed the rovers’ development, testing, and recent trip to theRed Planet. In the “Marsapalooza” tour sponsored by JPL in 2004, he talked to over 10,000 K-12students, and
areconverted to PowerPoint presentations and more problem-based case studies that support criticalthinking, interactive learning, and team/peer instruction are added. The Engineering Technologycurriculum has many problem-based courses and laboratory exercises that can be used to supportactive and collaborative learning while using the wireless tablet PC.The wireless capability of the tablets allows for the quick conversion of a regular classroom to acomputer lab. All that is required is the wireless tablets and an access point connected to theInternet if Internet access is desired. The instructor can use the tablet PC and projector to makepresentations. Using the pen input, the instructor can easily annotate PowerPoint slides duringthe presentation
23 3.96 0.69 integral calculus avg 4.04 st dev 0.14 3 12 6 2 23 3.30 0.80 I feel that I am prepared for MECE 3369 (mechanics of solids) and MECE 3336 (dynamics)As noted above, course surveys such as the ones already described in this document are notsufficient to demonstrate learning. Once it has been determined which Outcomes are to beassessed in which course, the next step is to determine exactly what type of assignments will beused to directly assess student learning related to these designated outcomes. Possibilitiesinclude specific homework assignments or problems, projects, laboratory
question then arises: Issuch a design the most effective at having the audience retain the main assertion of theslide? According to Robert Perry of Hughes Aircraft and Larry Gottlieb [2] of LawrenceLivermore National Laboratory, the answer is “no.” Since the 1960s, Perry has argued fora succinct sentence headline on presentation slides. Following Perry’s lead, Gottlieb hascome to the same conclusion at Lawrence Livermore Laboratory. Although the sentence-headline design is the standard at Lawrence Livermore Laboratory, the design is seldomused outside of that laboratory. In The Craft of Scientific Presentations, Alley [3]presented an argument for using succinct sentence headlines. More recently, Jean-lucDoumont [4] and Cliff Atkinson [5
feedbacksurvey, “One thing I would like to suggest is that all of the students here are not studyingengineering. So don’t assume we are all the same.” Table 1 shows the disciplines from which therecent semesters’ students came from.Students are also quite different in their prior knowledge of manufacturing. In a mid-termfeedback survey, one student wrote “You may have presented the material too easily to us. We(students) generally need a little more in depth.” In the same feedback survey, other studentsrequested that “Don’t move quite so fast.” Some students have years of working experience inmanufacturing environment, while some have never been on any manufacturing floor. There is alab course, “Manufacturing processes laboratory” (IMSE 251), associated
imaging. Currently, he is a Visiting Scholar to the Communication Research Laboratory, McMaster University in Hamilton, Ontario, Canada, working on research and development of “Smart Imaging Systems for Biomedical Applications” such the Endoscopic Capsule.Khaled Nigim, University of Waterloo Khaled Nigim is a registered professional engineer in Ontario, Canada, senior member of the IEEE, has a Ph.D. in Electrical Engineering from the University of Leicester, England UK and a B.Sc. in Electrical Engineering from Zagazig University of Cairo, Egypt. He is currently the coordinator of the Master of Engineering professional development graduate program offered on-line at the University of
connected to BUS 2 contributed 2, 470amperes. FIGURE 4 Three-phase Short Circuit Analysis of Power SystemInclusion in the Power System CurriculumThe PowerWorld simulator tool was incorporated into the Power Systems 1 curriculum severaldifferent ways which included classroom demonstrations, take home quizzes, and small groupprojects. Many sample load flow and short circuit analysis problems were demonstrated to theclasss during the laboratory period accompanying the course. The students were required tocomplete several assignments using the simulation tool on their own personal computers. Oneparticular assignment consisted of calculating the load flow solution of a simple 3 bus networkby hand. Then, it was required to use the
teams, student response from question 6 above.Criterion 4. ProgramCharacteristics Mathematics The level and focus 17. My mathematical skills for solving technical problems 4.50 4.00 4.55 4.33 4.40 4.31 4.30 4.29 4.41of the mathematics content must provide students with the skills to can be rated as:solve technical problems appropriate to the discipline and the programobjectives.Criterion 4. Program Characteristics Technical Content b. Laboratory 18. My competence in the use of analytical and 4.83 4.60 4.27 4.50 5.00 4.38 4.10 4.57 4.48activities must develop student competence in the use of analytical and measurement equipment common to the discipline can bemeasurement equipment common to the discipline and appropriate to rated
, andprioritizing them appropriately.ExperimentalBiomechanics "Virtual Laboratory" Modules The primaryuse of this module is in an undergraduate Biomechanics class.The student level can be anywhere from sophomore throughsenior, provided that the students know basic aspects of staticand dynamics, as well as the use of spreadsheets and simpledata analysis tools.Free Body Diagram AssistantA web-based free body diagram assistant was developed toassist students with the construction of free body diagrams inbiomechanics. This is an interactive tool that allows students toplace vectors and couples on a 2-D drawing of an isolated body.Human Knee Joint Mechanics The primary learning objectiveof the module is to describe both the anatomy and functionalanatomy
as a Renewable Energy Source. 2004. Royal Commission on Environmental Pollution. www.rcep.org.uk/bioreport.htm Biomass Program. 2006. U.S. Department of Energy. http://www.eere.energy.gov/biomass/ Biomass Program: Biomass Publications. 2005. US Department of Energy. http://www.eere.energy.gov/biomass/publications.html#feed Biomass Program: Feedstock Composition Glossary. 2005. US Department of Energy. http://www.eere.energy.gov/biomass/feedstock_glossary.html Biomass Program Multi-Year Technical Plan. 2003. US Department of Energy. http://www.bioproducts-bioenergy.gov/pdfs/MYTP%20FY%202002%20v13.pdf Biomass Research. What is a Biorefinery? National Renewable Energy Laboratory. www.nrel.gov/biomass
semestercourse is structured to have two hours of lecture and two hours of laboratory per week. Coursecredit is split evenly between computer aided design content (CAD) and the capstone designproject. The CAD portion of the course is project driven covering topics in solid modeling,drafting, finite element analysis, assembly modeling and rapid prototyping. Approximately athird of this time is spent on design projects using finite element analysis. The specific analysesrequired include rods and beams, frames, linear elastic solids and heat transfer. The last threeprojects are team assignments. The finite element lecture content has changed from year to yearranging from a miniature finite element course to a just-in-time delivery model. The
implications of these findings?Conceptual FrameworkThe conceptual framework utilized to guide the research is built off previous research. Theexpectation is that multiple factors affect ones overall perception of climate. Classroomexperiences, laboratory experiences, relationships with faculty, degree of professionaldevelopment, and work/family balance are all factors which impact climate. Climate then has Page 11.480.3effects on the retention of students, but especially women students. This paper focuses in onclassroom experiences and faculty relationships since those are the most obvious way in whichthe context of education is different for
2006-1686: LEARNING-BY-DOING AND COMMUNICATIONS WITHIN APROCESS CONTROL CLASSJim Henry, University of Tennessee-Chattanooga JIM HENRY (e-mail jim-henry@utc.edu) Dr. Henry is a professor in the area of chemical and environmental engineering at the University of Tennessee at Chattanooga. He received his Ph.D. from Princeton University. He has been teaching engineering for 37 years. He is interested in laboratory development for improved learning.Richard Zollars, Washington State University DICK ZOLLARS (e-mail rzollars@che.wsu.edu) Dr. Zollars is a professor in, and director of, the School of Chemical Engineering and Bioengineering at Washington State University. He
representatives during thedinner meetings of the American Nuclear Society – Eastern Carolina Section. Opportunities tointeract with industry representatives at career sessions occur in conjunction with the MinorityCareer Fair and the College of Engineering Career Fair. Due to our location and relationship withutilities, major vendors and national laboratories, representatives also visit the departmentdirectly to recruit for summer internships and full-time positions. Service activities assist with retention as well. For example, student ambassadors assistthe Director of Outreach Programs with school visits, departmental tours, science fairs,Engineers’ Week programming and university/engineering open houses. It provides anopportunity for students
2006-64: TEACHING LEAN MANUFACTURING CONCEPTS USING PHYSICALSIMULATIONS WITHIN ENGINEERING TECHNOLOGY PROGRAMAlok Verma, Old Dominion University Alok K. Verma is Ray Ferrari Professor and, Director of the Automated Manufacturing Laboratory at Old Dominion University. He also serves as the Chief Technologist of the Lean Institute and MET Program Director at ODU. Alok received his B.S. in Aeronautical Engineering, MS in Engineering Mechanics and PhD in Mechanical Engineering. Alok is a licensed professional engineer in the state of Virginia, a certified manufacturing engineer and has certification in Lean Manufacturing and Six Sigma. His publications are in the areas of Lean Manufacturing
science and engineering.The program includes presentations at high schools, invited speakers, field trips, hands-on laboratory activities, and science and technology exhibits1 [7]. Specifically, theprogram involves attracting 11th grade students to attend a two-week Science andTechnology workshop. At this level, students are ready to make decisions that affectthem for the rest of their lives; selecting the college they wish to attend and choosing thefield of study they wish to pursue.The workshop is designed to introduce students to job opportunities in the food industryand agriculture, expose them to college life, involve them in hands-on activities, andencourage them to pursue science and engineering careers. One of our goals is to makethe
successfulenterprises on the campus. Although, this would not necessarily be an undesirable outcome, thegoal of the program is more in the realm of building a firm foundation. That being said, start-upsprovide the laboratory for a variety of learning experiences, which is difficult to simulate in theclassroom. We will discuss the aspect of nurturing start-ups later in the body of this paper.The Marketing Plan for the Certificate Program to the StudentsThe Certificate Program was marketed initially by writing and printing a brochure that succinctlydescribed the requirements and benefits of the program. The program was then presented througha variety of means. The program was primarily marketed by “word of mouth”. Briefpresentations were given to students