AC 2011-1079: ASSESSMENT OF A LABORATORY ORIENTED STUDYCURRICULUMMysore Narayanan, Miami University DR. MYSORE NARAYANAN obtained his Ph.D. from the University of Liverpool, England in the area of Electrical and Electronic Engineering. He joined Miami University in 1980 and teaches a wide variety of electrical, electronic and mechanical engineering courses. He has been invited to contribute articles to several encyclopedias and has published and presented dozens of papers at local, regional , national and international conferences. He has also designed, developed, organized and chaired several conferences for Miami University and conference sessions for a variety of organizations. He is a senior member of IEEE
AC 2011-1505: INNOVATIVE SHAKE TABLE LABORATORY INSTRUC-TION: IMPLEMENTATION AND ASSESSMENT OF STUDENT LEARN-INGAlyn Marie Turner, University of Wisconsin-Madison Alyn Turner is a graduate student in the Department of Sociology at the University of Wisconsin-Madison. Her research interests are in education policy evaluations, social stratification and inequality, and sociol- ogy of education.Sandra Shaw Courter, University of Wisconsin, Madison Sandra Shaw Courter is co-PI for ”Deployment and Integration of Shake Tables Using the NEES Cyber- infrastructure.” She is Professor Emeritus in the Department of Engineering Professional Development and Wendt Commons: Teaching and Learning Services. Her area of research is
AC 2011-2062: SPIRAL LABORATORIES IN THE FIRST-YEAR MECHAN-ICAL ENGINEERING CURRICULUMDebra J. Mascaro, University of Utah Debra J. Mascaro is the Director of Undergraduate Studies in Mechanical Engineering at the University of Utah. She holds a B.A. in Physics from Gustavus Adolphus College in St. Peter, MN and a Ph.D. in Materials Science and Engineering from the Massachusetts Institute of Technology. She teaches freshman design and senior-/graduate-level classes in microscale engineering and organic electronics.Stacy J. Morris Bamberg, University of Utah Stacy J. Morris Bamberg is an assistant professor of Mechanical Engineering at the University of Utah. She received her S.B. and S.M. in Mechanical Engineering
AC 2011-2530: LAB@HOME: REMOTE LABORATORY EVOLUTION INTHE CLOUD COMPUTING ERAHamadou Saliah-Hassane, University of Quebec in Montreal Professor Saliah-Hassane is a senior researcher at the Inter-university Research Center (LICEF), and member of the Ordre des ingnieurs du Qubec (OIQ); of the IEEE (Member of the Administrative Com- mittee of IEEE Education Society (- 2010), Communication Society and Computer Society); of the American Society for Engineering Education (ASEE). He teaches informatics and computer networks at Tl-universit, a Distance Education University of University of Quebec in Montreal (UQAM). Profes- sor Saliah-Hassane has a PhD in Computer Aided Analysis and Design from the Electrical and Computer
. Page 22.428.1 c American Society for Engineering Education, 2011 Design Aspects of a Database for Remote Laboratory ManagementAbstract This paper describes the design of a database which is used to manage the remote laboratoryRLAB. RLAB allows users from all over the world to access a set of real world physical models,to perform experiments by interactively working with them in a realtime environment, and todownload the resulting data to their own computer system for further processing. The onlyrequirement for the user's computer is an internet browser. RLAB was originally developed at Cologne University of Applied Sciences (CUAS) inGermany; it uses NI LabVIEW to perform the interfacing to the real world
AC 2011-2037: A REMOTE LABORATORY FOR ROBOTICS ACCURACYAND RELIABILITY STUDIESRichard Chiou, Drexel University Dr. Richard Chiou’s background is in mechanical engineering with an emphasis on manufacturing. Dr. Chiou is currently an associate professor in the Goodwin School of Technology and Professional Studies at Drexel University. His areas of research include machining, mechatronics, and internet based robotics and automation. He has secured many research and education grants from the NSF, the SME Education Foundation, and industries.Robin Kizirian, Drexel University Robin Kizirian completed his M.S. degree in Computer Engineering at Drexel University in Philadelphia and his B.S. degree in Computer
and 2007, respectively. From 1993 to 1997, he worked for Telefnica of Argentina for four years designing and planning telephony outside plant net- works. Then he worked for five years for Lucent Technologies Power Systems (later Tyco Electronics Power Systems) as a Technical Support Engineer and Sales Technical Consultant in Latin America. For three years, he was also a part-time instructor in charge of ITBA’s telecommunications laboratory. He is currently and Assistant Professor at the Department of Electrical and Computer Engineering at The University of Texas at Austin and his research interests include power electronics, distributed generation, renewable and alternative energy, and analysis of the impact of
Ph.D. at Michigan State University in 1997 and continued to serve there as a Visiting Assistant Professor until 2004 when he accepted an Associate Professor position at the Virginia Military Institute (VMI) in Lexington, Va. He currently serves as a Professor of Mechanical Engineering at VMI.Ryan Taylor, Virginia Military Institute Page 22.1076.1 c American Society for Engineering Education, 2011 Modeling Rockets in Instrumentation LabAbstractA final project for an instrumentation laboratory course was developed involving the predictionof the maximum altitude of a model
AC 2011-84: TEACHING FLOWNET CONCEPTS TO ENGINEERING UN-DERGRADUATES USING ELECTRICAL ANALOGY OF GROUNDWA-TER FLOWMurthy Kasi, North Dakota State University Murthy Kasi is currently an Environmental Engineering doctoral candidate in the Department of Civil Engineering and an Instructor in the Fluid Mechanics laboratory for undergraduates at North Dakota State University, Fargo, North Dakota, USA. He obtained his Bachelors degree in Civil Engineering from Andhra University, India, and Masters in Environmental Engineering from South Dakota State University, Brookings, SD, USA. Areas of concentration of his doctoral research are groundwater bioremediation, wastewater treatment, and water quality modeling. He has been
. Also described are the merits and impact of these reference designs to our students intheir engineering education. These reference designs promote hands-on experience. They can beeasily adopted into laboratory and experimental courses. They are suitable for engineeringcurricula that emphasize on hands-on experience.I. IntroductionThis paper describes a collection of practical reference designs for adoption into microcontroller-based class projects. These reference designs are applicable to our microcontroller applications Page 22.1230.2and capstone design courses. All these courses are at the senior level. The microcontroller unit(MCU) in these
AC 2011-792: THIRTY YEARS OF RUBE GOLDBERG PROJECTS: ASTUDENT-DRIVEN LEARNING LABORATORY FOR INNOVATIONR. William Graff, LeTourneau University R. William Graff is a professor in the school of Engineering and Engineering Technology at LeTourneau University, where he has taught since 1975. He received his B.S., M.S., and Ph.D. degrees from Purdue University in electrical engineering. Prior to joining the faculty at LeTourneau, he was assistant professor of electrical engineering at Drexel University for six years, and then at Wilkes College for two years. His professional interests include antennas, microwaves, plasmas, teaching, and ethics.Paul R. Leiffer, LeTourneau University PAUL R. LEIFFER, PhD, PE Paul R
modeling and verification of automated processes ina robotics and mechatronics course. Experimental case studies are derived from topics of interestto train manufacturing engineers for performing virtual simulations on PLC modeling systems.The virtual design process is split into three main sub-processes that are recommended to beperformed in a hierarchical fashion. These design process structures include the component 3Dmodeling stage, logical I/O modeling stage, and the cell 3D modeling stage. Both the virtual andphysical models provide equivalent results. Course instructions are based on active learning.Tutorials and laboratories assist students in comprehending the simulation methods. The courseis taught with the computer-aided simulation
. Page 22.1063.1 c American Society for Engineering Education, 2011 Microwave Plasma Cleaner Design for Semiconductor Fabrication and Materials Processing Laboratory Use AbstractThis paper describes a microwave plasma cleaner designed and built for use in integrated circuitfabrication and materials processing laboratories. It is a much less expensive alternative to RFplasma cleaners because of the fact that very inexpensive and readily available householdmicrowave oven is utilized to generate the microwave power to produce the plasma in theprocess chamber. The process chamber is an inverted Pyrex bowl placed on a metal base plateand is evacuated by a
Experimentation (ME310) and EngineeringExperimentation (ME311). Engineering Experimentation is an advanced laboratory coursewith the specific goal to enhance the students’ abilities in experimental design and analysis topartially satisfy the ABET’s learning outcome. Experimental design relies on principles ofcombinatorial mathematics such as combination, permutation, factorial, blocking, Latin square,etc. The analysis of experiments uses theories from statistics such as hypothesis, t-test, ANOVA,etc.It is often hard for the students to manually design experimental layouts if they do not havesufficient combinatorial mathematics background. The theories of statistical analysis arerelatively easy for students to grasp, but the calculations can be
of work and power; electrical, mechanical, and chemical energy;and practical issues of batteries, fuel cells, and robot performance.LecturesThe course began with an introductory lecture giving the big picture followed by six weeks oflectures focused on practical knowledge required for the laboratories and programming. Thesecond half of the class largely consisted of guest lectures as the students prepared for theirdesign competition. Page 22.271.4Labs, Problem Sets & ProjectsThe hands-on interdisciplinary laboratory experience formed the core of the class. The first sixweeks involved tightly-defined labs in which students
of adevice they designed or developed in order to prove a physical phenomenon in a research setting,etc. Hence, it comes as no surprise that ABET has embraced this criterion for close to a decade.Introduction to Thermodynamics requires that students learn basic, yet complicated concepts,such as determining properties of pure substances, calculating heat and work exchanged during aprocess, and the first and second law of thermodynamics, before they can tackle complexapplications, such as thermodynamic cycles or combustion systems. These basic concepts areconducive to simple, conceptually oriented laboratory assignments that parallel the classroominstruction. Those laboratory assignments are an ideal place to implement design of
. Lab material quantity is reasonable.During the end of term evaluation, 92.9% I can synthesize nanoparticles.students indicated that the course wastaught well. Some of the comments Figure 6 Mid-semester Students’ Evaluation of the Lab Component.regarding the lab component were: Instructor used lab activities as an effective way to stimulate thinking about subject matter outside of the scope of the lab itself. The laboratory exercises coincided with the lecture portion.ConclusionsA lab component was developed and delivered for an interdisciplinary class of engineeringstudents as part of an introduction to nanotechnology
AC 2011-541: A METAL CASTING LABORATORY EXERCISE: COL-LABORATION BETWEEN THE ENGINEERING AND ART DEPARTMENTSAT TEXAS A&M UNIVERSITY - CORPUS CHRISTIP. A. Simionescu, Texas A&M University Corpus Christi Dr. Simionescu is an Assistant Professor in the Engineering Program of the Texas A&M University Corpus Christi. He received his B.Sc. from Polytechnic University of Bucharest in Romania in 1992, a doctoral degree from the same university in 1999 and a Ph.D. degree from Auburn University in 2004. His research interests include mechanical design, CAD and computer graphics. He has authored 18 journal papers and has been granted 7 patents.Mehrube Mehrubeoglu, Texas A&M University-Corpus Christi Dr
Society for Engineering Education, 2011 A Relevant, Automotive-Themed Experiment that Teaches Fundamental Flow Rate Concepts and Experimental UncertaintyAbstractIt is a common experience, in undergraduate laboratories, that the students perceive the simplebench-top experiments to be boring or irrelevant to real engineering and societal problems.Without relevance, many students feel disconnected from the lab experience, lose interest inwhat they are doing and do not think while they are in the lab. If students do not think about theactual measurement, the measurement errors and how the measurements relate to an engineeringmodel or to the information that they are trying to gain, then the lab experience has failed.Described in
AC 2011-1392: TEMPERATURE ALARM LABORATORY DESIGN PROJECTFOR A CIRCUIT ANALYSIS COURSE IN A GENERAL ENGINEERINGCURRICULUMLoren Limberis, East Carolina University Dr. Limberis joined the Engineering faculty at ECU in August 2006. He earned his B.S. in electrical engineering and Ph.D. in bioengineering from the University of Utah. Dr. Limberis taught for several years as an Assistant Professor at The College of New Jersey and was a research analyst with Southwest Research Institute prior to his academic career. His research interests focus on designing techniques to utilize nature’s highly complex and sophisticated biological systems to develop biohybrid devices for use in biotechnology applications.Jason Yao, East
AC 2011-1400: CONNECTING THEORY AND PRACTICE: LABORATORY-BASED EXPLORATIONS OF THE NAE GRAND CHALLENGESLisa Huettel, Duke University Lisa G. Huettel received the B.S. degree in engineering science from Harvard University, Cambridge, MA, in 1994 and the M.S. and Ph.D. degrees in electrical engineering from Duke University, Durham, NC, in 1996 and 1999, respectively. She is currently an Associate Professor of the Practice in the Department of Electrical and Computer Engineering at Duke University, where she also serves as the Director of Undergraduate Studies. Her interests include engineering education and applications of statistical signal processing
AC 2011-192: A LABORATORY PROJECT INTRODUCING BASIC MI-CROPROCESSOR HARDWARE AND SOFTWARE FOR AN INTRODUC-TORY UNDERGRADUATE ECE CLASS FOR NON-MAJORSBrennan T. Ashton, Worcester Polytechnic Institute Sophomore in Electrical and Computer Engineering at Worcester Polytechnic Institute.Paul Malmsten, Worcester Polytechnic InstituteGautam Vallabha, MathWorks Gautam K. Vallabha received the B.S. (1995) degree in Electrical and Computer Engineering from Carnegie Mellon University, Pittsburgh, U.S.A, and the Ph.D. (2003) degree in Complex Systems and Brain Sci- ences from Florida Atlantic University, Boca Raton, U.S.A. From 2003 to 2007, he was a postdoctoral researcher at the Center for the Neural Basis of Cognition at
educating engineering students in this new and emergent technology of electricdrivetrains.In response to the need of a trained and educated workforce in vehicle electrification, severaluniversities and colleges recently have developed projects, courses, and degree programs fortraining students and automotive engineers and technicians in electric-drive vehicle technology[5-10]. Developing new education and training for electric-drive vehicles requires carefulplanning of support laboratory, equipment and facilities. Existing courses in power electronicsand electrical machines can be expanded and their laboratory resources leveraged with moderatecost. However, the costs will increase if the instruction includes hands-on experience withelectric-drive
design of electronic circuitsare included in the course. The course also offers a laboratory component that introducesstudents to simulation/modeling CAD tools such as PSpice and Mathematica’s toolbox AnalogInsydes for the design and analysis of electronic circuits. By the middle of the semester studentsare assigned into groups to complete a midterm project where they build, test, and present theirwork. Several mini-projects are assigned throughout the semester. The prerequisite for thiscourse is Circuit Analysis. The assessment for the course is as follows: 20% Laboratory, 10%Home Work, 10% Quizzes/Presentation, 30% Midterm Exam, 30% Final Exam. The majority ofthe students are from the electrical engineering program since this is a core
AC 2011-1530: MODEL-ELICITING ACTIVITIES IN A MECHANICALENGINEERING EXPERIMENTAL METHODS COURSEJohn Ridgely, California Polytechnic State University John Ridgely is an associate professor of mechanical engineering at California Polytechnic State Univer- sity in San Luis Obispo.Brian P. Self, California Polytechnic State University Brian Self is a Professor in the Mechanical Engineering Department at California Polytechnic State Uni- versity in San Luis Obispo. Prior to joining the faculty at Cal Poly in 2006, he taught for seven years at the United States Air Force Academy and worked for four years in the Air Force Research Laboratories. Research interests include active learning and engineering education
Paper ID #574Hands-On Design Projects in a Sophomore Mechanical Engineering CourseYasser M. Al Hamidi, Texas A&M University, Qatar Yasser Al-Hamidi is currently working as a Technical Laboratory Coordinator in the Mechanical En- gineering Program at Texas A&M University, Qatar. He is specialized in instrumentation, control and automation. He worked as a Lab Engineer in the College of Engineering, University of Sharjah before joining TAMUQ. His other experiences include Laboratory Supervisor/Network Administrator at Ajman University of Science and Technology (Al Ain Campus), Maintenance Engineer at AGRINCO and
AC 2011-2159: BRINGING CURRENT RESEARCH TO THE CLASSROOMUSING LINKED COLUMN FRAMED SYSTEM IN AN UNDERGRADU-ATE STRUCTURES LABRupa Purasinghe, California State University, Los Angeles Professor of Civil Engineering at California State University at Los Angeles, a predominantly an un- dergraduate institution. He teaches courses in computer aided analysis and design and capstone design project course.He is a co-PI for a NSF/NEES funded research project on Linked Column Framed system.Peter Dusicka, Portland State University Associate Professor Dusicka focuses his teaching and research on infrastructure engineering. He is the director of iSTAR (infraStructure Testing and Applied Research) Laboratory where he leads a team of
so long.With this backdrop, Congress signed the National Defense Education Act into law in 1958 whichauthorized DoD to increase the flow of talent into science and engineering, fund enrollment inhigher education, and enhance public understanding of science and technology. 2 For the past 52years, DoD has used this authorization to help the United States advance science, engineeringand technology through various efforts and programs. DoD has continued to encourage it‟smany Commands and Laboratories to support Science, Technology, Engineering andMathematics (STEM) initiatives at local, regional, and national levels. Scientists and engineersat DoD laboratories and military installations have proactively supported local STEM initiativessuch as