system. Specificationand installation of the hydroelectric system, replacing an again incumbent and upgrading a watercollection system. Specification and installation of 4.3kW photovoltaic panels and controller.Interconnection to fossil fuel / biofuel generator. Inverter and energy storage description. Gridinterconnection to load, including all electrical interconnection, construction of an appropriatepower house, and buried cabling to nine-cabin and research laboratory load. This project wasmanaged as a teaching opportunity in accordance with a successful model proposed by Klein et.al. Professor and students presented the keys to the caretaker on 23 July 2010.IntroductionAn integrated electric power system has been designed for and installed in
AC 2011-1957: USE OF FLUENT SOFTWARE IN A FIRST-YEAR ENGI-NEERING MICROFLUIDIC DESIGN COURSEBarbara Elizabeth Carruthers, The Ohio State University Barbara E. Carruthers is a Mechanical Engineering graduate student at The Ohio State University and a Graduate Teaching Assistant for the OSU Fundamentals of Engineering for Honors (FEH) Program. Ms. Carruthers with graduate with her M.S.M.E. from Ohio State in 2012.Paul Alan Clingan, The Ohio State University - EEIC Lecturer - First Year Engineering Program Engineering Education and Innovation Center The Ohio State University MS - Chemical Engineering - Bucknell University - 1988 BS - Chemical Engineering - Buck- nell University - 1986
.Did these transatlantic exchange students believe that the teaching styles encountered abroad were more effective in supporting learning than those at home? 4.What changes in style (at home and “study abroad” institution) do they believe could be adopted as a result of their experience?In the case of theme two, as an output of the semi-structured interviews, five important“course related” variables emerged as being of interest and worth exploring further. Thesevariables were: a. The amount of course related “homework” typically employed. b.The amount of “self directed learning” undertaken. c. The extent of the credit weighting for “continuous assessment”. d.The degree of enforcement of attendance at lectures and laboratories. e. The
which can briefly be described as a study of the fundamental concepts,devices, and applications of electronic components and controllers utilized on industrialequipment. Laboratory sessions focus on instrumentation, programming, downloading,and wiring discrete input / output devices.Specific Course Competencies of the course include the ability to: 1. Identify major applications of programmable logic controllers in industry, transportation, construction, and environmental control. 2. Identify, discuss, and describe the purpose and function of the primary components utilized in open and closed loop process control systems. To assist in this outcome, each student will develop an
AC 2011-283: HERDING CATS: WEAVING COHERENT APPLICATIONTHREADS THROUGH A MECHANICAL ENGINEERING CURRICULUMTO FACILITATE COURSE-TO-COURSE CONNECTIVITY AND IMPROVEMATERIAL RETENTIONDonald Wroblewski, Boston University Don Wroblewski is an Associate Professor in the Mechanical Engineering Department at Boston Univer- sity, and has been the Associate Chair of Undergraduate Aerospace Studies since 1998. He is a two-time winner of the department award for Excellence in Teaching and one of two inaugural winners of the College of Engineering’s Innovative Engineering Education Fellow award. He has been active in both curriculum and course innovations. He has developed 7 new courses including an on-line Mechanics course and
team of educational and learning technology professionals (e.g. GeorgiaTech’s Center for the Enhancement of Teaching and Learning (CETL) and the Stanford Centerfor Teaching and Learning (CTL)). Some, like CETL, were more formal organizations within theinstitution, while others, like the Dartmouth Center for the Advancement of Learning (DCAL)and the MIT Teaching and Learning Laboratory (TLL), were similar to research centers. Theresearch model couples dedicated staff with representatives from other departments withinthe institution, drawing from the faculty, the library, and academic computing. Both modelsprovided good examples of staffing structures and service profiles.The “learning commons” model that brings together academic support
. Medical implant analysis for structure- function-performance is performed to optimize device design. Biomechanical characterization of tissues is performed to assess clinical treatments and to develop constitutive relationships. Laboratory techniques for structural characterization include SEM, TEM, FEM, SAXS, USAXS, XPS, DSC, GPC, FTIR, AFM, confocal microscopy, wear testing, fatigue testing, fracture mechanics analysis, and nanoindentation. Re- search supported by NIH, NSF, ONR, DARPA, OREF and the medical device industry. Pedagogical experience includes curriculum development in mechanical engineering and bioengineering. Teaching experience includes undergraduate courses on Mechanical Behavior and Processing of
Jersey Institute of Technology. He has served as coordinator of activities at NJIT for the Gateway Engineering Education Coalition and as a member of the Coalition’s Governing Board. He previously chaired NJIT’s Excellence in Teaching Awards Committee and is past chair of the University Master Teacher Committee. Page 22.1078.1 c American Society for Engineering Education, 2011 Moodle as a Course Management System – It isn’t just for Distance LearningAbstractMoodle, WebCT, Blackboard and Sakai are examples of course management systems that havebeen
AC 2011-2818: THE ROLE OF THE COLLEGE OF TECHNOLOGY INTHE NUCLEAR INDUSTRYJoseph F. Kmec, Purdue University Joseph F. Kmec is currently Associate Professor in Mechanical Engineering Technology at Purdue Uni- versity, West Lafayette, IN. His teaching areas of concentration are energy-based and include Applied Thermodynamics, Internal Combustion Engines, Motorsports, and Power Plant Systems. His recent activ- ities involving student projects include engine simulation, power plant performance analysis, and nuclear technology. He may be reached at: kmecjf@purdue.edu.Dr. Bryan J Hubbard, Purdue University, West Lafayette Bryan Hubbard is an Assistant Professor in the Building Construction and Management (BCM) Program
goals became to apply and develop engineering designacross the curriculum. Starting by an introduction to engineering course in the first semester, ourcurriculum consists of design embedded courses each semester. However, that brings a challengeto us, engineering educators, to prevent this emphasis from shadowing the subject material ofeach course. Design work should not be a separate entity, but a contributory tool which can beused to support the teaching of the courses’ fundamentals1. Upper division courses are easier toincorporate design projects due to the knowledge levels and skills of the students. On the otherside, creating good design projects for lower division courses are more difficult because thestudents don’t have the analytical
beautiful friendship) whenyou share the seed of knowledge.References:1. Davis SF, McEntire JC, Sarakatsannis J. Fostering an interest in science in a typically underrepresentedpopulation. Journal of Food Science Education. 2007;6:14-16.2. Niemann MA, Miller ML, Davis T. The University of Alabama at Birmingham Center for CommunityOutReach development summer science institute program: A 3-yr laboratory research experience for inner-city secondary-level students. Cell Biology Education. 2004;3:162-180.3. Sticht TG, McDonald BA, Erickson PR, San Diego Consortium for Workforce Education and, LifelongLearning. Passports to paradise: The struggle to teach and to learn on the margins of adult education. 1998.Available from:http://search.ebscohost.com
-structure interaction during earthquakes. Due to the scope of the project, graduatestudents are serving as the primary mentors to the undergraduates as they complete their researchappointments.In this paper, we describe our strategies and experiences in recruiting, training, advising, andmentoring undergraduate student researchers for this laboratory-based research project. We alsodiscuss the methods used to prepare the graduate students for their roles as research mentors.As part of this project, the principal investigators worked with the graduate students to provideadvice and training on topics such as teamwork, project management, communication, feedback,and student learning, which has helped to foster effective mentor-mentee relationships.We
AC 2011-1464: PUTTING BELLS & WHISTLES ON DSP TOOLKIT OFLABVIEWMurat Tanyel, Geneva College Murat Tanyel is a professor of engineering at Geneva College. He teaches upper level electrical engineer- ing courses. Prior to teaching at Geneva College, Dr. Tanyel taught at Dordt College in Sioux Center, IA. He started his career at Drexel University where he worked for the Enhanced Educational Experience for Engineering Students (E4) project, setting up and teaching laboratory and hands-on computer exper- iments for engineering freshmen and sophomores. For one semester, he was also a visiting professor at the United Arab Emirates University in Al-Ain, UAE where he helped set up an innovative introductory
System for Large Load6. Fuel Cell Inverter Based4. Student AssessmentTable 1 Questionnaire for the evaluation of the Project-based Power Electronics courseQ1 Are the courses challenging and interesting?Q2 Have you learnt more than what you expected with the course?Q3 Is the team project useful to you?Q5 What was the level of “hands-on” feeling experienced the laboratory exercises?Q6 Please, provide an overall evaluation of the courseThe Power Electronics and Senior Project Design courses, using the new teaching and learningapproach was first time offered in theFall 2008 quarter, and 2009-2010 academic yearrespectively at the main campus of our university. It was offered in Winter 2009 quarter at one ofthe partner college. At the end of
, Michigan, and the Master of Science and Ph.D. degrees in Chem- ical Engineering focusing on Electrochemical Engineering, both from the University of Michigan, in Ann Arbor. He teaches a number of alternative energy courses and is leading LTU’s efforts to establish a full energy engineering program that addresses both alternative and renewable energy systems, as well as energy conservation and optimization of traditional energy systems. He also is the Director of the Alternative Energy program at Lawrence Tech. Page 22.100.1 c American Society for Engineering Education, 2011 A
exploration of science, technology, engineeringand mathematics (STEM) education principles, devices, and systems that have historically beenrestricted to expensive laboratory facilities. (For background on the need for and efficacy of thehands-on activities made possible by the Mobile Studio, please see references 1-9, 16, and 17.)While designed to provide the functionality of a typical electronics lab, it can be set up toperform a large variety of functions, measurements, system control, etc. through the use ofspecial purpose hardware and software, with many programming languages available for writingthe software.The project is now in refinement and beginning levels of dissemination. The Mobile Studio hasbeen used to teach courses in electrical
generation is more design-oriented, while the coverage of fuel cellpower generation is limited to fuel cell working principles, electrical characteristics, andapplications. As described in the previous section, the course also includes student term paperpresentations and projects. A summary of the topics covered in the course is given in Table 1.The course topics covered are discussed in the following subsections. The course structure,content and instructional approach, discussed in the next section of the paper are in part based onthe experience gained by one of the authors, when he was involved in the design, developmentand teaching of similar courses, as well as in the design, test and implement of the courseassociated laboratory and experiments
of Northern Virginia respectively. He holds a Bachelor of Science Degree in Mechanical Engineering from Huazhong University of Science and Technology in Wuhan, China. He has extensive experiences in teaching mathematics, engineering and robotics. Before his teach assignment at BCCC, he worked as a researcher and an engineer in power generation, energy and environmental protection fields. Page 22.452.1 c American Society for Engineering Education, 2011 Developing a Robotics Technology Curriculum at an Urban Community CollegeAbstract It is well recognized
been working to build a VoIP telephone system in thetelecommunication laboratories – a new “VoIP initiative” 2. The idea is to use simple strategiesto adapt undergraduate laboratories on computer networks to the teaching of VoIP protocols.New laboratory experiments were created to introduce our junior-level undergraduate students to Page 22.21.3VoIP protocols, such as the session initiation protocol (SIP) and the real-time transport protocol(RTP).However, industry support is essential to the success of this VoIP initiative and the creation ofnew laboratories, in terms of industry - donating equipment, - funding student workers and
Engineering project investigating persistence of women in engineering undergraduate programs. Dr. Lord’s industrial experience includes AT&T Bell Laboratories, General Motors Laboratories, NASA Goddard Space Flight Center, and SPAWAR Systems Center. She served as the President of the IEEE Education Society in 2009 and 2010.Candice Stefanou, Bucknell University Candice is an Associate Professor of Education at Bucknell University. Her teaching interests are in applied measurement and assessment and educational psychology. Her research interests are in motivation and classroom environments.Dr. Michael J. Prince, Bucknell UniversityJohn Chen, California Polytechnic State University John Chen is an Associate Professor
facilities. In addition, there is a developingavailability of integrated and scaled systems to allow for teaching of energy systems concepts tomitigate cost and space requirements. Other means of cost mitigation include • Using local utilities as a resource for students to see/experience hardware systems; • Developing non-proprietary software for real-time simulation; • Developing regional facilities among a number of universities with virtual laboratory capabilities for remote access; • Developing shared “common space” for all departments interested in energy systems engineering.Industry Needs: ResearchDue to technological innovations, deregulation and other related issues, the electrical energyindustry is undergoing
,content-integrating and interrelating and so on (Rieley & Crossley, 2000; Cole et al, 2000;Tan & Thoen, 2000; Bradley et al, 2007) . So, the teaching approach requires faculty tobelieve and affirm that every student can learn and model good practices that increaselearning. However, the traditional teaching approach cannot develop Higher Order CognitiveSkills (HOCS) and problem-solving skills that are needed in the work (Broussard et al., 2007;Mbarika, 2003). The mission of the Laboratory for Innovative Technology and Engineering Education(LITEE), created at Auburn University, is to bring real-world issues into classrooms, usingmultimedia case studies that illustrate in detail how an industrial problem is analyzed and asolution found
Bottomley, North Carolina State University Laura Bottomley received a B.S. in Electrical Engineering in 1984 and an M.S. in Electrical Engineering in 1985 from Virginia Tech. She received her Ph D. in Electrical and Computer Engineering from North Carolina State University in 1992. Dr. Bottomley worked at AT&T Bell Laboratories as a member of technical staff in Transmission Sys- tems from 1985 to 1987, during which time she worked in ISDN standards, including representing Bell Labs on an ANSI standards committee for physical layer ISDN standards. She received an Exceptional Contribution Award for her work during this time. After receiving her Ph D., Dr. Bottomley worked as a faculty member at Duke University and
Real Time Communication Systems With PCsAbstractCommunication system classes have been traditionally taught with a lecture-only format.However, the proliferation of new concepts and algorithms in communication systems makes itincreasingly hard for students to master them only through mathematical derivations.Furthermore, without a hands-on demonstration of how the algorithm is used in real-lifeapplications, students without strong mathematical skills can become frustrated and generate aretention problem in EET/CET/EE programs. To overcome this problem, the theory taught inlecture has been complemented with laboratory experiments and class projects. However, manytraditional communication systems’ laboratory experiments are related to various
and Assistant Department Head of the Department of Engi- neering Education at Virginia Tech. He is the Director of the multi-University NSF I/UCRC Center for e-Design, the Director of the Frith Freshman Design Laboratory and the Co-Director of the Engineering First-year Program. His research areas are design and design education. Dr. Goff has won numerous University teaching awards for his innovative and interactive teaching. He is passionately committed to bringing research and industry projects into the class room as well as spreading fun and creating engage- ment in all levels of Engineering Education
AC 2011-203: A DISTANCE LEARNING HYBRID PRODUCT LIFECY-CLE MANAGEMENT (PLM) CERTIFICATE PROGRAM IN TECHNOL-OGYNathan W. Hartman, Purdue University, Computer Graphics Technology Nathan Hartman is an Associate Professor and Assistant Department Head in the Department of Computer Graphics Technology at Purdue University. He is also Co-Director of the Purdue University PLM Center of Excellence. His current applied research interests include the use of constraint-based CAD tools in the design process, the process and methodology for model-based definition and the model-based enterprise, geometry automation, and data interoperability and re-use. He currently teaches or has taught courses in 3D modeling, virtual
journals. She is a member of IEEE, IEEE Education Society and IEEE Power & Energy Society. Cur- rently, Dr. Huq teaches Electronics, VLSI System Design, Advanced Solid State Device courses. Page 22.928.1 c American Society for Engineering Education, 2011 Integration of Nano Scale Electronics Devices into Undergraduate Course CurriculaAbstractAs deep-sub-micron and beyond technology emerges; integration of nano scale devices intoundergraduate curricula becomes more important than ever. This paper addresses issuesrelated to increasing impact of the nano electronics on
learners.Unfortunately, almost all engineering and science instruction has been historically deductive innature (i.e. – lecture).Some of the characteristics of inductive learning identified by Prince and Felder4 are listedbelow: • Includes one or more of ‘inquiry learning’, ‘problem-based learning’, ‘project-based learning’, ‘case-based teaching’, ‘just-in-time learning’, ‘discovery learning’ • Is learner-centered, constructivist in philosophy, involves active learning, and is collaborative • Is never purely inductive – there are still deductive components • Filters new information through a person’s ‘schemata’ – the sum of prior experiences (knowledge, belief, preconception, prejudice, fear, etc.) Why develop an additional
,interdisciplinary interaction, design, and depth. Every student completes a structured set ofcourses that form a foundation in written and oral communication, mathematics, chemistry,physics, and engineering fundamentals. Special emphasis is placed on learning the basic toolsand techniques of engineering. Interdisciplinary interaction is introduced and emphasizedthrough interdisciplinary design projects, team experiences, and laboratory exercises that beginthe freshmen year. Depth is provided through theory and hands on experience (laboratories) inone of nine disciplines – chemical, civil, computer, electrical, environmental, industrial,mechanical and UTeach (education).Four of the engineering disciplines are structured as discipline specific programs
The course suitable for integrating the DSSC research results is a required seniorundergraduate course, Solar Cells and Modules for all students majoring in the BS degreeconcentration, Alternative Energy Technologies and as an elective for students from othermajors. During fall semester 2010, the students in the class participated in characterizingthe cells in the laboratory. In the lecture class theoretical discussion of the solar cell I-Vcharacteristics and internal resistance influence on the I-V curve were covered. TheDSSC’s I-V characterization was performed using an equivalent circuit model that isshown in the Figure 5. The series and shunt resistances of the cell are primarycontributors for the internal resistance. The Figure 6