- F INBIBLIOGRAPHICAL INFORMATION1. Gallow, De, “What is Problem Based Learning?” Instructional Resource Center, The William and Flora HewlettGrant.” http://www.pbl.uci.edu/whatispbl.html, 2006.2. Scardamalia, M., and Bereiter C. “Student communities for the advancement of knowledge,” Communicationsof the ACM Volume 39 No. 4 pp. 36 – 37, 19963. Mehta, Y. and Najafi, F “Teaching Methodology of Flexible Pavement Materials and Pavement Systems,”Journal of SMET Education, 2003a.4. Mehta, Y. A, Orlins, J. and Lubelski, D. “Innovative Teaching Methods for Surveying and EngineeringGraphics,” Proceedings of Mi-Atlantic Conference, Kean University, NJ 2003b.5. Mehta, Y. A. “Innovative Techniques To Teach Civil Engineering Materials Laboratory
issues, it makes sense to provide them with a conceptual-basedtechnology education. This paper covers the major premise of our efforts, the way it is planned,the way we include all majors in the college, and the way we work together to make it happen.This is a collegewide effort that includes all levels from the dean and the dean’s office to theindividual departments, as well as some of our graduate and undergraduate students. The bigchallenge is how to teach the classes—i.e., who the audience is. This paper shows the detailedplanning, implementation, and early results and challenges of our first course developments andimplementations. The paper provides examples of classes, the material that we cover in the firstclass for non-majors, and the
Manufacturing Engineering. This course series provided students with anopportunity to work on an open-ended design project that required skill sets spanning numerousdepartments rather than just a single department. The teaching staff consisted of three professorsfrom three separate engineering departments. For the 2008-2009 Academic year, the facultycame from the departments of Biomedical Engineering Materials Engineering, and MechanicalEngineering. The faculty considered the importance having an interdisciplinary set of instructorsas well as a team-teaching approach to best model to the students the strength inherent in theseapproaches. Page
Paper ID #16713System Engineering Education for All Engineers - A Capstone Design Ap-proachDr. Armand Joseph Chaput, Department of Aerospace Engineering and Engineering Mechanics University ofTexas at Austin Dr. Armand J. Chaput is a Senior Lecturer in the Department of Aerospace Engineering and Engineering Mechanics at the University of Texas (UT) at Austin and Director of the Air System Laboratory. He teaches Aircraft Design with a focus on Systems Engineering and Unmanned Air Systems (UAS). Dr. Chaput is a retired Senior Technical Fellow - Air System Design and Integration from Lockheed Martin Aeronautics Company where he
Paper ID #8653Integrated 2D Design in the Curriculum: Effectiveness of Early Cross-SubjectEngineering ChallengesProf. Kevin Otto, Singapore University of Technology and Design Dr. Otto is an Associate Professor in the Engineering Product Development Pillar at the Singapore Uni- versity of Technology and Design. He teaches the design courses as well as disciplinary courses including thermodynamics, and is very interested in multidisciplinary education.Mr. Bradley Adam Camburn, University of Texas, Austin, and Singapore University of Technology & Design BSME Carnegie Mellon 2008 MSME University of Texas at Austin 2010 PhD
of mathematics andengineering science, accompanied by laboratory and workshop experiences. The formative yearsshould be devoted to individual learning, followed by team activities and peer group interactions,and then immersion in creativity and innovation in the workplace, e.g. research participation.Some global trends are evident in engineering education over the past two decades: Page 23.1174.31. Global adoption6,7,8,9 of the ABET2000 model of self-assessment processes as the basis for accreditation of undergraduate programs, where showing “improvement” replaces standards.2. Uncritical adoption of the US K-12 model of teaching
Paper ID #10530An Update to a Multidisciplinary Hydroelectric Generation Design ProjectDr. David M. Feinauer P.E., Norwich University Dr. Feinauer is a Lecturer in the Electrical and Computer Engineering Department at Norwich University and he coordinates the freshman engineering experience for students of Norwich’s David Crawford School of Engineering. He holds a Ph.D. and a B.S. in Electrical Engineering from the University of Kentucky.Dr. Michael W. Prairie, Norwich University Dr. Prairie is an Assistant Professor of Electrical and Computer Engineering at Norwich University in Vermont where he teaches electrical
traditional segmentation of scientific and technological programs, ___organizes its curriculum around problem areas in strategic sectors, not academic disciplines.Instruction often takes place through teaching teams, and most courses target technological topicareas, such as environmental issues, energy economics and policy, and biotechnology in industryand agriculture. More traditionally organized programs might find the transition to an AFV-typeprogram more challenging, given that alternative fuels don’t fall neatly into any single academicdiscipline. Even so, most engineering programs that feature practical work experience shouldprepare students adequately to handle the complexities of shop and laboratory work in alternativefuels.A third advantage
Paper ID #15881Exploring Innovation, Psychological Safety, Communication, and KnowledgeApplication in a Multidisciplinary Capstone Design CourseMrs. Narges Balouchestani-Asli, University of Toronto Narges Balouchestani-Asli is an M.A.Sc. Candidate with the Institute for Multidisciplinary Design and Innovation (UT-IMDI) at the University of Toronto. She is also part of the Collaborative Program in Engineering Education at the University of Toronto. She holds an Honors Bachelor in Mechanical Engi- neering from the University of Toronto. During her studies at the University of Toronto she was involved as a Teaching Assistance
Development from the Tech- nological Institute of Merida. His areas of interest are innovation practices in organizations, ICT and knowledge management.Dr. Jennifer Jill Kidd, Old Dominion University Dr. Jennifer Kidd is a Senior Lecturer in the Department of Teaching and Learning at Old Dominion Uni- versity. Her research interests include engineering education, computational thinking, student-authored digital content, classroom assessment, especially peer review, and diversity issues. She currently has sup- port from the National Science Foundation for two projects related to engineering education for preservice teachers.Dr. Stacie I Ringleb, Old Dominion University Stacie Ringleb is an associate professor in the
were tied to introducing a freshman introduction-to-engineering course that at the timewas novel and building a teaching improvement program with a particular emphasis on assistingteaching assistants and new faculty. Our efforts have developed in parallel with and have beenbuilt upon the work of others. For example, Froyd, Penberthy and Watson have drawn thedistinction on the differences between academic change processes and good educationalexperiments5. Fornier-Bonilla et al. articulated the organizational impacts and resistances tochange in their on-going efforts in engineering at Texas A&M University6. The CCSSI Phase Ireport provides a comprehensive list of more recent relevant literature3.While our college has always been intent on
graduating, Caleb joined the United States Marine Corps and served as a Reconnaissance Ma- rine at 3rd Reconnaissance Battallion in Okinawa, Japan from 2006 to 2010. Following his enlistment in the Marine Corps, he worked as a weapons and tactics instructor for M¨obius Industries, in Okinawa, teach- ing Marines and sailors prior to unit deployments. Caleb and his family returned to the United States in January of 2015, when he enrolled at The University of Texas at Tyler and declared mechanical engineer- ing as his major. Currently, he works as a tutor in the University tutoring center for Several engineering courses and is also an undergraduate research assistant in the Mechanical Engineering department.Dr. Chung-Hyun Goh
and engineering projects. She also co-directs the Welcome Project (welcomeproject.valpo.edu), a first-person story collection about identity and inclusion.Dr. Jeffrey Dale Will, Valparaiso University Will completed his B.S.E.E., M.S.E.E., and Ph.D. degrees from the University of Illinois at Urbana- Champaign and has been a full-time faculty member in the Electrical and Computer Engineering De- partment at Valparaiso University since August of 2001. He teaches courses in senior design, computer architecture, digital signal processing, freshman topics, and circuits laboratories and is heavily involved in working with students in undergraduate research. Will is also a 2013 recipient of the Illinois-Indiana ASEE
solutions. This process ensures that students take ownership of their project as anengaged team. It allows students to strengthen their problem-solving and collaboration skills.The interdisciplinary teaching team models the teamwork skills the students are learning. Theaim is to promote interdisciplinary learning, foster teamwork, and improve student engagement.Other course objectives are to develop students’ creative problem solving, empathetic designpractices, communication skills, prototyping skills, and ethical reasoning. Students are expectedto become proficient at the empathetic design process as well as interdisciplinary communicationand teamwork. Creative problem solving, ethical reasoning, and realization of a product throughprototyping
affiliated with CAMRA as a principal investigator. Her lab conducts both computational risk modeling research and fundamental research. Her current work and future interests lie at the intersection of chemical and microbial stressors where under- standing trade-offs, benefits and risks deviate from existing risk paradigms and require new data, tools and frameworks. Her future research goals include applications of risk-based decision making to water infrastructure management, and emerging hazards such as antibiotic resistance. She is managing editor and a developer of the QMRAwiki, an interactive, online tool for the QMRA community. Dr. Mitchell has also been involved in developing and teaching training workshops in QMRA
academic institutions feel that it is important tointegrate engineering because many modern systems are developed with integrated engineeringteams. In 2005 the National Academy of Engineering in “Educating the Engineer of 2020,”stated many benefits and merits of co-teaching, just in time teaching, and multi-disciplinaryteaching.1 Recent program outcomes criteria published by ABET have included in its list of a-kcriteria, a requirement for engineering programs to demonstrate that students have “an ability tofunction on multidisciplinary teams.”2 Even discipline specific organizations have identified theneed for their disciplines to cross boundaries. In the “2028 Vision for Mechanical Engineering,’ASME directs attention to the complexity of advanced
Chemistry, just to name a few of the departments.As part of the strategic planning initiative, the authors and several other faculty teaching inenergy and environmental areas from across the university proposed a new university institutewhich would encompass areas of energy, environment, and sustainability. The proposal receivedvery high regard among the administration, and thus, the NIU Institute for Environment, Energy,and Sustainability was officially developed. The goals of the institute were to develop newmajors in a cross-disciplinary structure. In addition, the center also sought to create a cross-disciplinary structure for the faculty too. Faculty from across the university with teaching andscholarship interests in areas covered by the
educators to understandthe importance, management and the potential benefits of this framework. In addition, a sense ofcollaboration between the educators and the organization where the service is to be rendered isrequired to enable the success of this frame work.What is service learning (SL)?McPherson7 (2005) asserted that “Service learning is a method of teaching through whichstudents apply their academic skills and knowledge to address real-life needs in their owncommunities.” Bradford² (2005) defined service learning as an educational method by whichparticipants learn and develop through active participation in service that is conducted in andmeets the needs of a community. Eyler & Giles4 (1999) highlighted the importance of servicelearning
defined in its mission statement. With an enrollment of over 1750 engineeringstudents, the engineering college is one of the largest undergraduate-only engineering programsin the United States.The engineering college has a long-standing reputation for excellent teaching, small class sizes,and extensive faculty-student contact and laboratory experiences. The vision of our College ofEngineering, Mathematics, and Science is to be “recognized as a leader in undergraduate …education in engineering, mathematics and science.” The College is further committed to“encourag(ing) departments to investigate opportunities for new programs which meet the needsof a changing society.”With this in mind, the fields of microsystems and nanotechnology were seen as
they complement any teaching style thereby reach- ing all learning styles. She earned her doctorate in Mechanical Engineering from North Carolina State University specializing in thermal sciences where her dissertation research spanned three colleges and focused on Engineering Education. Her passions include but are not limited to Engineering Education, Energy Engineering and Conservation, and K-20 STEM Outreach. Prior to matriculating at NCSU, she worked at the North Carolina Solar Center developing a passion for wind and solar energy research while learning renewable energy policy. She combined these passions with K-20 STEM Outreach while a Na- tional Science Foundation Fellow with the GK-12 Outreach Program at
the Electrical and Computer Engineering De- partment at Valparaiso University since August of 2001. He teaches courses in senior design, computer architecture, digital signal processing, freshman topics, and circuits laboratories and is heavily involved in working with students in undergraduate research. Will is also a 2013 recipient of the Illinois-Indiana ASEE Section Outstanding Teacher Award and the 2014 ASEE National Outstanding Teaching Award. Upon coming to Valparaiso University, Will established the Scientific Visualization Laboratory (SVL), a facility dedicated to the use of Virtual Reality (VR) for undergraduate education. Working exclusively with undergraduate students, Will developed VR hardware and
including the multi-disciplinary project team members, the industry partners, the Users and external vendors. In the EDIC, he teaches and supervises undergraduate engineering students who engage in multidisciplinary projects. Eng Keng has a Bachelor of Engineering (Mechanical) from Nanyang Tech- nological University, and a Master of Science (Management of Technology) from National University of Singapore.Ms. Ameek Kaur, National University of Singapore Ameek Kaur is an Instructor in the Engineering Design and Innovation Centre (EDIC) of National Uni- versity of Singapore. Her current work involves training and facilitating the multidisciplinary engineering teams through their innovation projects. Prior to this, she has
Paper ID #7433Adapted Physical Activity Design Projects: A Collaboration Between Kinesi-ology and EngineeringDr. Brian P. Self, California Polytechnic State University Dr Self has taught in the Mechanical Engineering Department at Cal Poly, San Luis Obispo since 2006. Prior to that, he worked in the Air Force Research Laboratories before teaching at the U.S. Air Force Academy for seven years. During the 2011-2012 academic year he participated in a professor exchange, teaching at the Munich University of Applied Sciences. His engineering education activities include collaborating on the Dynamics Concept Inventory
-128. 8. Yalvac B., Smith H. D., Hirsch P., & Birol G. (2006). Teaching writing in a laboratory- based engineering course with a “How People Learn” framework, New Directions for Teaching and Learning, 108, 59-73. 9. Hardy M., King M., Bigelow R. (2010). Analysis of Operator Responses to Mitigate Temperature Rise in Electrical Auxiliary Building, ICONE18-30119. Page 22.65.14
models to pattern recognition, computer vision, and image processing. The first section introduces physical mathematical models which, in the second section of the course, are re-visited to allow for model-based design.In part (1), a new tact is taken for teaching the historical development of mathematics and physicsthat shapes the scientific view of the world today. Lectures seek to emphasize the rationale behindscientific thought through the variety of personalities that have defined it best characterized by thephrase : All science was new at some point. Specific classical topics include celestial mechanicsand thermodynamics which are introduced using excerpts from original works of the scientiststhat defined and revolutionized our
. She has been teaching robotics with Lego Mindstorm to ME freshmen for several years. She is actively involved in community services of offering robotics workshops to middle- and high-school girls. Her research interests are dynamics and system modeling, geometry modeling, project based engineering design, and robotics in manufacturing. c American Society for Engineering Education, 2017 Different Lab Formats in Introduction to Engineering CourseAbstractMany incoming freshmen are ambiguous about which engineering major they are interested in.Exposing them to different engineering labs in freshman year will help them have a clearunderstanding about different majors.The objective of this
Communications (1979) (High Honors), Post- graduate Diploma in Electronics and Communications (1981) (High Honors) and M.Sc. in Microwave Communication Systems (1983) (High Honors) from the University of Mosul, Mosul, Iraq. From May 1983 to October 1987 he was working with the Electromagnetic Wave Propagation Department, Space and Astronomy Research Center, Scientific Research Council, Baghdad, Iraq. On December, 1987, he joined the Radiating Systems Research Laboratory, Electrical and Computer Engineering Department, University of New Brunswick, Fredericton, NB, Canada where he obtained his Ph.D. (1992) in Computa- tional Electromagnetics, Wireless Communications, and the Global Positioning System. For his various
AC 2009-743: MERI: MULTIDISCIPLINARY EDUCATIONAL ROBOTICSINITIATIVECarlotta Berry, Rose-Hulman Institute of TechnologyMatthew Boutell, Rose-Hulman Institute of TechnologySteve Chenoweth, Rose-Hulman Institute of TechnologyDavid Fisher, Rose-Hulman Institute of Technology Page 14.877.1© American Society for Engineering Education, 2009 MERI: Multidisciplinary Educational Robotics InitiativeAbstractThis paper will describe the implementation of an innovative multidisciplinary roboticscertificate program at a small teaching institution in the Midwestern United States. TheMultidisciplinary Educational Robotics Initiative (MERI) is a product of a collaborative effortbetween
. "Integrated Teaching of Experimental and Communication Skills toUndergraduate Aerospace Engineering Students," Journal of Engineering Education, vol. 86, no. 3, 1997, pp. 255--262.9. Joe Linhoff , Amber Settle, Motivating and evaluating game development capstone projects, Proceedings of the4th International Conference on Foundations of Digital Games, April 26-30, 2009, Orlando, Florida10. Ian Parberry , Timothy Roden , Max B. Kazemzadeh, Experience with an industry-driven capstone course ongame programming: extended abstract, Proceedings of the 36th SIGCSE technical symposium on Computer scienceeducation, February 23-27, 2005, St. Louis, Missouri, USA11. Robert W. Sumner , Nils Thuerey , Markus Gross, The ETH game programming laboratory: a capstone
engineering pedagogy. He has not only published articles on engineering education but has also led several workshops on using instructional methodologies that make classroom instruction more engaging and effective.Dr. Eric G Meyer, Lawrence Technological University Dr. Meyer directs the Experimental Biomechanics Laboratory (EBL) at LTU with the goal of advanc- ing experimental biomechanics understanding. Dr. Meyer teaches Introduction to Biomechanics, Tissue Mechanics, Engineering Applications in Orthopedics, and Foundations of Medical Imaging. He has been an active member of the engineering faculty committee that has redesigned the Foundations of Engi- neering Design Projects course that is required for all freshmen in