Engineering ABET accreditation in 2001 and 2007. In 2004-2005, McKnight served as Interim Chair of the Electrical and Computer Engineering Department, and in 2008-2009 served as Acting Vice Provost for Research.Prof. Michael E. Pelletier, Northern Essex Community CollegeDr. Paula G. Leventman, Northeastern University Paula Goldman Leventman has been Diversity Coordinator and Internal Evaluator for the NSF-funded Center for Subsurface Sensing and Imaging Systems (CenSSIS) from 2000 to 2011. She was Assistant Dean of engineering for women’s projects at Northeastern University from 1982-2004. Leventman was Principal Investigator of the NSF-funded Multiple Pathways toward Gender Equity in the U.S. IT Work- force, 2001-2005
parallel programming or object-oriented design. It is also well known that engineering students are more likely to pursue andcomplete CS degrees if they perform well in their freshman programming courses. Consequently,the importance of stimulating long-term CS interest at the K-12 level cannot be understated.K-12 CS programs that dwell on the high-level benefits of a CS career can sometimesoverwhelm new students. Typically, these programs will introduce students to recent researchprojects or high-end products in the market. While these methods inspire interest in CS, they canalso be discouraging when students realize their introductory work (e.g. basic programming) isso far away from the advanced projects that were introduced.Alternatively
3 President of Computer Graphics Center 4 President of Pedagogic Council of University of MinhoAbstractTechnical skill is associated with understanding and proficiency in a particular type of activity,especially those that are involved in methods, processes and procedures. As an example, one cantake the training of the engineer, who - mostly - is focused moreover, on calculations,simulations and projects, characterizing it as an individual, above all, objective. Since the humanability can be understood as the ability of individuals to interact with others to form similar onethat respects his fellow and nature this individual is aware of his/her own attitudes, opinions
AC 2012-3584: A FACULTY ADVISER’S PERSPECTIVE ON DEVELOP-ING AN SAE BAJA PROGRAMDr. Robert A. Marlor, Northern Michigan University Robert Marlor is an Associate Professor in the Engineering Technology Department at Northern Michigan University. He received a Ph.D. in civil-structural engineering from Michigan Technological University n 2003. He is the Faculty Adviser for the NMU SAE Baja team. His research interests include load duration behavior of wood connections, project-based learning in engineering mechanics, and teaching design through SAE Student Design Competitions. Page 25.42.1
AC 2012-5531: AEROSPACE MANUFACTURING MODULES FOR EX-ISTING MANUFACTURING PROGRAMSProf. Bradley C. Harriger, Purdue University, West LafayetteProf. Sergey Dubikovsky, Purdue University, West Lafayette Sergey Dubikovsky is Assistant Professor at Purdue University in the Aviation Technology Department. He teaches advanced aircraft materials and processes and advanced manufacturing and design process courses. His research focus is in immersive learning, problem and project-based learning, international engineering education, globalization, lean Six Sigma, and threaded and specialized fasteners. He worked previously in industry as a Design, Product, and Project Engineer. He has undergraduate and graduate degrees in
;M University. She received her B.S. and M.S. from Beijing Polytechnic University in 1996 and 1999 respectively, both in electrical engineering. She received her Ph.D. degree in computer engineering from Mississippi State University, Starkville, Miss., in 2003. She has published several journal and conference articles in the field of wavelets, image processing, and video coding. Her research interests include data compression, signal classification, image and video processing. She has funded research projects from NSF and ARO. Cui has memberships with IEEE, ASEE, and HKN honor society. Page 25.271.1
Member Council (CMC) Special Interest Group (SIG) on International Engineering Education and is currently Co-chair of that SIG. Jacobs is presently in his second term on both the ASEE CMC Executive Committee and the ASEE Projects Board and is the Secretary/Treasurer of the ASEE CMC. He also serves on the ASEE Journal of Engineering Education Advisory Board and was a contributor to ASEE’s ”Advancing the Scholarship of Engineering Education: A Year of Dialogue.” Jacobs was previously a member of the ASEE International Strategic Planning Task Force, the Interna- tional Federation of Engineering Education Societies (IFEES) Executive Committee, and General Motors’ Partners for the Advancement of Collaborative Engineering
, Convolution and Fourier Transform (math preparation) Lab 2, Projection and Projection Slice Theorem (tomography) Lab 3, Frequency domain reconstruction – interpolation methods (x-ray CT, MRI) Lab 4, Filtered back projection – filtering, noise effects (x-ray CT) Lab 5, X-ray attenuation coefficient and survival probability (x-ray) Page 25.1396.2 Lab 6, NMR signals – precessions, relaxation, basic sequences (MRI) Lab 7, Brain activation detection in fMRI (image analysis)In the undergraduate Bio-Medical Engineering (BME) program at Stevens Institute ofTechnology, "Medical Imaging" is offered each year in the Fall
engineering, is also Director of Michigan Tech’s D80 Center. D80 has the mission to develop contribution-based learning, research, and service opportunities for all students and staff to partner with the poorest 80% of humanity, together creating solutions that matter. As Director of several international programs at the undergraduate and graduate levels, Paterson, his colleagues, and his students have conducted numerous community-inspired research and design projects. Paterson is an educational innovator, recently adding courses for first-year students, Great Ideas, and graduate students, Discover Design Delight. At the intersection of these two fields, Pa- terson leads several national initiatives for learning
, project-based design courses. She has also studied and published on other aspects of the student experience, including studies of persistence and migration (why students stay in engineering or choose to leave), as well as differences in the engineering experience between male and female students. In 2010, she received an NSF CAREER Award in support of her research on engineering education. Page 25.417.1 c American Society for Engineering Education, 2012 Developing a Small-Footprint Bioengineering ProgramAbstractThe field of bioengineering is rapidly changing and expanding to
by 2010 [4].The problem presented by these new facts is not new but has becoame more pressing with thedevelopment of a global economy. So, how do we help the teachers find new ideas and newmethods that will attract and excite students to learn difficult subjects such as Math and Science?How do we empower them to take initiative and develop new projects and lesson plans that willhelp students accept and overcome the modern world’s technical challenges?In the 1950s, a famous French mathematician, Hadamard [5], found a massive disconnectbetween how we teach math and science and how mathematicians and scientists actually work.He concluded that what the intellectual tools mathematicians and scientistsy used to accomplishtheir work was more
knowledge and conceptual knowledge can be challenging. Ideally,teachers would be able to trace thinking through the design rationale as the design proceeds, notjust retrospectively or from static project artifacts. They would also be able to use technology tosupplement teaching documentation and communication. The use of technology and culturaltechnology methods of communication has potential to impact assessment in K-12 engineeringeducation. Seventy-five percent of teens have cell phones2 and over 50% of teenagers 17 andyounger have access to the Internet outside of school and send email or text messages at leastonce a week. Twitter and other text-messaging tools help to motivate and encourage students todo more writing and encourage interactions
FPGAsAbstractState-of-the-art Field Programmable Gate Arrays (FPGAs) can now implement designs withmillions of logic gates at speeds and power dissipation that rival custom integrated circuitdesigns for many applications, but at a fraction of the development cost. This paper will discussrecent experiences on working with undergraduate researchers in the area of FPGA design at theUniversity of Texas at Tyler. Criteria for the selection of appropriate research projects will begiven. Issues such as methods for supervision, motivation, and funding will also be discussed.Assessment of using undergraduate student researchers in the area of FPGA design are carriedout through faculty observations, generation of conference paper submissions and posterpresentations
underrepresented groups of undergraduate engineering studentsto pursue an engineering career path, academic or otherwise.In this paper, we describe a pilot of an on-going, multiple-year research project, carried out byundergraduate female students incorporating research and education in computer science andengineering (CS&E). Many-core processors are becoming increasingly popular ingeneral-purpose computing. While most researchers agree that this requires introduction ofparallelism to mainstream CS&E practice, and hence education, parallel programming difficultiesremain obstacles that are yet to be overcome. For concreteness, the research project involves acertain many-core framework, called eXplicit Multi-Threading (XMT). The XMT
industries. The discussion will also identify how the “need” for thistype of project based curriculum became obvious. Four prerequisite courses are brieflydescribed before focusing on the project based capstone course. These four coursesprovide the students with the technical skill sets needed to succeed in the senior levelcapstone course. Accomplishments and outcomes from the student perspective, theUniversity perspective, and the industry perspective will also be shared.Our advancing world of computer integration, process control, industrial automation, andtelecommunications requires technical problem solvers and knowledgeable decisionmakers. “The activities of problem solving and decision making are closelyintertwined”,1 and both skills can
science from Wayne State University. He also has completed all computer science courses and passed the proficiency exam of the Ph.D. program at Wayne State University. In addition to his academic experience, El-Bathy has more than 25 years of experience in industry, working in areas including software develop- ment, database design, and computer networking design, implementing projects across many technology platforms, DBMS, network topologies, and programming languages. As a practitioner of information technology, he reached the pinnacle of his career and held a Vice President position of the Department of Information Services for a $1.6 billion financial institution, providing leadership in applying and aligning
University, and B.S. in electrical engineering from Suffolk University.Dr. Sean P. Brophy, Purdue University, West LafayetteDr. Ruth A. Streveler Page 25.1006.1 c American Society for Engineering Education, 2012 Online Learning Communities for DesignAbstractWeb 2.0 tools can enhance a team’s knowledge development through socialcollaboration. Integration of web 2.0 collaborative tools, such as web blogs, wikis,podcasting, social bookmarking, and social networking sites can be especially useful insupporting collaborative and project-based learning. Our goal in this study is to gain abetter
computer-aided draftsman at Powerex, Inc., a project engineering at Stanko Products, a Process Engineer at Ami-Doduco, Inc., and a Project Engineer and Team Leader at Classic Industries, Inc., in Latrobe, Penn. Nitterright’s employment at Behrend commenced in 1999.Robert Michael, Pennsylvania State University, Behrend Robert J. Michael, P.E. and Senior Lecturer for the School of Engineering at Penn State, Behrend, ob- tained his B.S. degree from Akron University, where he graduated summa cum laude, and his M.S. degree from Case Western University. Michael is currently working towards his doctorate in mechanical and aerospace engineering at Case Western Reserve. He joined the faculty at Penn State, Behrend, in the fall
countries. Capstone design is a good startingplace for faculty collaboration and synchronization, because it reflects and assembles allthe features of the curricula in different educational systems across a large number ofcountries.The authors have many years of combined teaching experience in two differenteducational systems and have launched collaborative and synchronous teaching of acapstone design course in the United States and China since 2010. The same designtopics have been offered to student teams in the two collaborating schools. Based on thestudents’ learning experience and performance in the finished projects, the majordifferences in the two systems are significant. For example, American students putmore effort into creativity, team
. Joseph A. Morgan, Texas A&M University Joseph A. Morgan has more than 20 years of military and industry experience in electronics and telecom- munications systems engineering. He joined the Engineering Technology and Industrial Distribution De- partment in 1989 and has served as the Program Director of the Electronics and Telecommunications programs and as the Associate Department Head for Operations. He received his B.S. degree in electrical engineering (1975) from California State University, Sacramento, and his M.S. (1980) and D.E. (1983) de- grees in industrial engineering from Texas A&M University. His education and research interests include project management, innovation and entrepreneurship, and
Professor of engineering at John Brown University in northwest Arkansas. Prior to coming to John Brown University, he spent 10 years at Taylor University in central Indiana. Prior to that appointment, he received his Ph.D. from Washington State University in materials science and engineering. Holmes enjoys teaching a wide variety of classes and involving students at all levels of un- dergraduate study in team-based design projects and project-based learning. Contact: wholmes@jbu.edu.Dr. Kevin Hunter Macfarlan, John Brown University Kevin Hunter Macfarlan is a professor, Engineering Division. Page 25.1152.1
for Engineering Education, 2012 Integration of System Thinking, Engineering Reasoning and Decision Making Skills in Design of Thermal Systems CourseAbstract Design of thermal system is in essence a Capstone design class for thermal andenergy systems. One of the major difficulties encountered by instructors in theseCapstone design courses is that many senior students do not have adequate preparation inapplying design skills such as critical thinking, engineering reasoning, and decisionmaking to successfully complete their design project. In this paper, the process ofintegrating system thinking, engineering reasoning and decision making skills intoDesign of Thermal Systems course is
AC 2012-5195: USING ONLINE OPEN-INNOVATION CHALLENGES TOINTRODUCE DESIGN IN FIRST-YEAR ENGINEERING COURSESDr. Andrew Trivett, University of Prince Edward IslandProf. Stephen Champion, University of Prince Edward Island Page 25.1434.1 c American Society for Engineering Education, 2012 Using Online Open-Innovation Challenges to introduce Design in First-Year engineering coursesIntroductionProject-based courses in first-year provide the first exposure to design in many engineeringprograms in North America, and around the world. The first project a student encounters cancolor their view of the profession for
stronger technical background. Work on this project is continuing with additionalcourses at the participating universities, and with additional university partners. This additionaldata will allow the researchers to investigate whether these patterns continue to hold.IntroductionA number of studies have assessed the value of including failure case studies in the civilengineering curriculum. It has been argued that failure case studies should be integrated into theengineering curriculum, early enough in order for young professionals to connect with theproblems encountered by engineers and perhaps trigger interest, excitement, and relevance of theprofession. In other words, exposing students to factors that result to failure and disaster canhelp them
concentrations thatrequire one or more of the courses that use the simulation approach: OrganizationalManagement, Project Management, Project/Organization Management, Technical InnovationManagement, and Quality Management. The simulation approach courses are also electives forthe Master of Science in Systems Engineering.Project ManagementThe first course in which the student encounters this simulation is entitled Introduction to ProjectManagement. In this course, the students learn about planning, organizing, and monitoring aproject. The scenarios involve the sequences of activities involved in bringing a new project intoAVI. Each student takes on the role of the manager of this new project and learns about all theactivities and interactions with others
AC 2012-4471: UTILIZING THE ENGINEERING DESIGN PROCESS TOCREATE A FRAMEWORK FOR CURRICULA DESIGNMs. Krystal S. Corbett, Louisiana Tech UniversityDr. Heath Tims, Louisiana Tech UniversityProf. Galen E. Turner III, Louisiana Tech UniversityDr. James D. Nelson, Louisiana Tech University Page 25.1454.1 c American Society for Engineering Education, 2012 Utilizing the Engineering Design Process to Create a Framework for Curricula DesignAbstract Project-based…inquiry-driven…student-centered…all keywords found when reading literatureabout techniques used in the engineering classroom. It is clear there is
faculty in architectural engineering and construction science and management at Kansas State University in Jan. 2008. She received her B.S.A..E from K-State in 2001 and com- pleted her M.S.A.E. from K-State in 2010 related to curriculum development in architectural engineering and construction science with regards to building information modeling. Vogt is currently pursuing her Ph.D. in electrical and computer engineering with an emphasis in engineering education/outreach under the supervision of Dr. Noel Schulz. During 2001-2008, Vogt was employed full-time with Affiliated Engineers, Inc., a national engineering consulting firm in Madison, Wis. where she held several roles, including project manager, project engineer
College of Engineering at the University of Michigan. She has a Ph.D. in old english philology and Anglo-Latin from the Centre for Medieval Studies in the University of Toronto and an M.A. in linguistics from the University of Texas. Before joining the staff of the Program in Technical Communication, she worked as a Research Scientist on the University of Michigan’s Middle English Dictionary Project and as an Assistant Professor of En- glish at Indiana State University. She is interested in rhetorical grammar and in the special concerns of engineering students writing in English as a second language. Page
. Page 25.1346.2 c American Society for Engineering Education, 2012 The Software and Systems Engineering Masters Program at Texas Tech University: A Computer Science and Industrial Engineering Collaborative Effort1. IntroductionIn several recent reports, software engineering has been identified as one of the best occupationsin the job market1. Software engineering is a knowledge-intensive occupation, requiringcomputing professionals with skills that span from requirements elicitation, to software designand implementation, as well as testing, verification, and validation. Software engineers must alsohave project management and teaming skills coupled with sensitivity to the
AC 2012-3714: LESSONS LEARNED FROM STARTING AN SAE BAJAPROGRAM IN A SMALL LIBERAL ARTS COLLEGEDr. David Che, Geneva College David Che has been an Associate Professor of mechanical engineering at Geneva College, Beaver Falls, Penn., since 2008. He currently is also the Director of the Pinkerton Center for Technology Development at Geneva College. He received his B.S.E in precision engineering from Harbin Institute of Technol- ogy, P. R. China, his M.S in mechanical engineering from Ohio State University, Columbus, Ohio, and Ph.D in mechanical engineering from University of Michigan, Ann Arbor, Mich. He worked as a se- nior research/project engineer at General Motors Corporation from 1997-2005. He also served as