. Page 22.1031.1 c American Society for Engineering Education, 2011Making a College-Level Multidisciplinary Design Program Effective and Understanding the Outcomes Page 22.1031.2abstractThe University of Michigan’s College of Engineering (CoE) has committed to a significantMultidisciplinary Design (MD) Program complementing the bachelor degree programs. Thisenables students from across degree programs and even outside of the CoE to collaborate onprojects. This is currently being done by flexibly addressing instructional and practicum needsthrough a series of short seminars, semester and multi-semester long project work, and a minor.Participation by
projects in a collaborative environment. Yet, anoverwhelming majority of programs do not provide students with the chance to workcooperatively across disciplinary lines. Those that do typically only allow for interactionbetween groups within the same overarching discipline such as Mechanical or ElectricalEngineering. Ideally, the capstone experience is meant to foreshadow the type of interaction andwork that a student will engage in, easing their transition into the work environment followinggraduation. In industry, engineers are expected to work collaboratively with experts in severaltechnical and non-technical domains. Subsequently, capstone classes are lacking the ability toprepare undergraduate students for membership on the interdisciplinary
VILLIERS is an Assistant Professor of Civil Engineering at Florida Gulf Coast University. He received his Ph.D. in Civil Engineering with a concentration in Materials and Construction from the University of Florida in 2004. Previously Dr. Villiers was an Assistant Professor at The City College of New York. Prior to this position, he was employed by the Florida Department of Transportation (FDOT) as a research engineer. Dr. Villiers also was employed by The University of Florida and worked on several projects sponsored by the FDOT and the Federal Highway Administration. Page 12.319.1© American
; hydropower; fuel cells;biofuels; geothermal; and ocean, wave, and tidal energy. In all of the topics, the class coversenough of the engineering fundamentals to allow for mini-design projects in each technology.The classroom periods use an active learning methodology. The classes are structured such thatthe students work together in multi-disciplinary teams where each student is able to bring theexpertise of their major to understanding the technology. For example, the background ofmechanical engineers combined with electrical engineers will allow a team to begin to grasp thebasic fundamentals of fluid flow and power generation needed to understand how a hydropowerplant operates.A significant assignment in the class is a community-based service
AC 2007-693: USING THE ENGINEERING DESIGN PROCESS TO RE-ENVISIONMULTIDISCIPLINARY EDUCATIONAL EXPERIENCES FOR ENGINEERINGSTUDENTSDurward Sobek, Montana State University Durward K. Sobek II is an Associate Professor of Mechanical and Industrial Engineering at Montana State University. He holds Ph.D. and M.S. degrees in Industrial and Operations Engineering from the University of Michigan, and an A.B. degree in Engineering Sciences from Dartmouth College. His current focus areas include new product development, engineering design education, and health care delivery systems.Carolyn Plumb, Montana State University Carolyn Plumb is the Director of Educational Innovation and Strategic Projects in the
director of Architectural Engineering Program at Illinois Institute of Technology (IIT). He was re- sponsible for developing the current architectural engineering undergraduate and master’s programs at the Illinois Institute of Technology (IIT). During his stay at IIT, he taught fundamental engineering courses, such as thermodynamics and heat transfer, as well as design courses, such as HVAC, energy, plumbing, fire protection and lighting. Also, he supervise many courses in the frame of interprofessional projects program (IPRO). In few months, Dr. Megri will defend his ”Habilitation” (HDR) degree at Pierre and Marie Curie Univer- sity - Paris VI, Sorbonne Universities
Justice at Temple University. Her main areas of research include critical infrastructure resilience and protection, cyber and cyber-physical security, infrastructure planning and policy, and global security and international affairs.Dr. Saroj K Biswas, Temple University Saroj Biswas is a Professor of Electrical and Computer Engineering at Temple University specializing in electrical machines and power systems, multimedia tutoring, and control and optimization of dynamic systems. He has been the principle investigator of a project for the development of an intelligent tutoring shell that allows instructors create their own web-based tutoring system. His current research focuses on security of cyber-physical systems
Houston, Texas; at Ericsson/Sony Ericsson in Research Triangle Park, North Carolina; and at BPM Technology in Greenville, South Carolina. Dr. Conrad is a Senior Member of the IEEE and a Certified Project Management Professional (PMP). He is also a member of ASEE, Eta Kappa Nu, the Project Management Institute, and the IEEE Computer Society. He is the author of numerous books, book chapters, journal articles, and conference papers in the areas of robotics, parallel processing, artificial intelligence, and engineering education. Page 13.371.1© American Society for Engineering Education, 2008DESIGN OF
, and design - field team interaction.Mariana Watanabe, Purdue University Mariana Watanabe is an undergraduate in Civil Engineering specializing in Architectural Engineering at Purdue University, main Campus. During her time at Purdue, she has done research in the Applied Energy Laboratory for the ”Biowall for Improved Indoor Air Quality” project, has participated as team captain in two DOE Net-Zero Energy Building Design Competitions (Race to Zero Competition), and was elected president of the ASHRAE Purdue Student Branch in 2017. Mariana’s interests span the fields of sustainable engineering, high performance buildings and STEM outreach for girls. c American Society for Engineering
InstitutionI. Project BackgroundThis paper discusses the creation and first offerings of a multidisciplinary senior design projectcourse sequence at a regional Hispanic-Serving Institution (HSI). The courses, MultidisciplinaryEngineering Design I and II (GEEN 4301 and 4302), were created as part of supporting activitiesfor an NSF-STEM grant entitled: “Javelina Engineers STEM Scholarships (JESS): Building thePathway for Baccalaureate to Masters Degrees,” or the JESS Program.The over-arching JESS Program goal was to identify academically talented undergraduatestudents across all disciplines offered by the Frank H. Dotterweich College of Engineering(COE) at Texas A&M University-Kingsville (TAMUK) and retain these students throughcompletion of the
provided feedback about the designs tothe professor solely for the evaluation of the course.In addition to detailing the outcomes of the project, this paper discusses the merits anddrawbacks of short timeframe multi-disciplinary teaching collaborations along withrecommendations for further development.I. IntroductionA. Industrial design and usabilityIndustrial design is a user-centered discipline and has developed many tools in its rich historyto enhance usability by helping designers to make better design decisions [1]. This could bein the form of interviews, discussions, focus group studies, or co-design [2]. In one way oranother, the user is typically involved in the process. Specifically, for a project to besuccessful, one must fully
programming, mobile robotics, controlling actuators, using sensors), Mechanical Design (design projects, load and failure analysis, manufacturing) and Software (computer simulation, Windows programming, serial and wireless communications). From 2007 to 2010, Dr Sam Cubero worked at the University of Southern Queensland, teaching subjects such as mechatronics, robotics and machine vision, PBL design projects, stress analysis (solid mechanics), engineering graphics, and supervising final year engineering projects. In 2010, Dr Sam Cubero moved to Abu Dhabi UAE (United Arab Emirates) and currently works there as an Assistant Professor in the General Studies Department, Arts and Sciences Program. He has lectured in areas such
information related to a pilot study on the effects of to Endocrine DisruptingChemicals (EDCs) exposure on pregnancy, which was conducted by the Health Center and theSchool of Public Health.Interdisciplinary in nature, the project brought together biostatisticians, medical doctors, andcomputer and information scientists (CIS). On the medical side, the team was trying to assesshuman health risks from exposures to Endocrine Disrupting Chemicals, measuring both theexposure level and its ramifications in pregnant women of the Rio Grande Valley. To aid in theprocess from a computational and engineering point of view, a professor and two computerscience and engineering majors were put in charge of taking the requirements and specificationsfrom the medical
Jerome Clements, Jacksonville University Dr. Lee Ann J. Clements is the Associate Provost for Accreditation at Jacksonville University. Prior to serving in this role she served for twelve years as the Chair the Division of Science and Mathematics. She received her B.A. in Biology from the University of Virginia, her M.S. and PhD from the University of South Carolina in Marine Science. Her research projects have included investigating the role of metallic pollutants in altering development, the effects of environmental variability on skeletal regeneration, and the effects of ocean acidification on marine organisms. She is also involved in projects that help commu- nicate science to the general public and is one of the
AC 2011-1827: ASSESSING TEAMWORK AND BEST EDUCATIONALPRACTICES IN DIVERSE MULTIDISCIPLINARY PROGRAMSScott P. Schaffer, Purdue University Scott P. Schaffer is an associate professor in the Learning Design and Technology program at Purdue University where he teaches courses related to design, assessment & evaluation, and learning theory. His research focuses on team learning and the design of informal learning spaces.Margaret Huyck, Illinois Institute of Technology Professor Emeritus; Principle Investigator on NSF project involving four universities engaged in develop- ing measures for teamwork and ethical awareness, and identifying best educational practices for develop- ing those competencies among undergraduate
, Arts and Social Sciences and the School of Architecture + Planning beganleading efforts jointly with engineering faculty to develop short modules. There were 25 suchmodules implemented starting Fall 2018, Spring 2019 and Fall 2019, specifically in Ethics,Creative Thinking, Critical Thinking, and Self-learning. We describe how those moduleswere developed and piloted, how their efficacy was assessed, what were the lessons learnedfrom their implementation, and implications for the future. One of the key findings is that theWays of Thinking should be more integrated into the students’ project work in NEET. Weconclude by describing our plans for further integration of the Ways of Thinking into NEET,including their rigorous assessment to optimally
Multidisciplinary Team AssessmentAbstractDuring a semester long course entailing a multidisciplinary team project, students in computerengineering, electrical engineering, and mechanical engineering were required to work togetherto design, build, and test a solar car. It is the hypothesis of the faculty that students who havemore multidisciplinary interaction in the design and implementation of the project will produce abetter project. To evaluate this hypothesis, the authors have designed a new assessmentinstrument to effectively assess the level of multidisciplinary teamwork and the students’ abilityto function on a multidisciplinary team. While there are some existing instruments available, fewhave documented reliability and validity1. For this reason
engineering students participating in virtual team projects was used in theanalysis. Results from the analysis are presented suggesting a statistically significant impact ofthe intervention on self-management skills when comparing randomly assigned teams with andwithout the intervention. The intervention is designed to be scalable so that it can be embeddedinto existing project-based courses. Our findings have important implications for thedevelopment of teamwork skills in engineering courses and provide evidence of a successfulstrategy that can be integrated into the existing engineering curriculum.KeywordsVirtual teams, team effectiveness, information and communication technologies, engineeringeducation, collaborative learningIntroductionThe
components are not necessarilyunique to service-learning, but taken as a whole, they are what makes service-learning.1. Service – A service is provided to an underserved area or people. In engineering, it may involve direct contact with people through educational programs for children or the elderly or project work, such as a solar power system for a remote village in the Andes Mountains or research and data analysis such as environmental data.2. Academic content – Service-learning is a means to learn engineering principles and content more effectively. In service-learning, the service is directly linked to course studies to help Page
robotics certificate will help withrecruitment efforts3. In addition, faculty and students enrolled in the certificate program willparticipate in K-12 outreach such as mentoring middle school and high school robotics programs.Students in the program will also demonstrate their robotics projects to tour groups, increasingvisibility and attracting students to our institution. In fact, the final project robotics competitionfor one of the early courses in the robotics curriculum has already been featured on the campusweb site and in the local newspaper. Additionally, faculty with an expertise in robotics will beattracted to a school with a visible, established robotics education program and research.Multidisciplinary TeamworkRobots are mechanical
. She has expertise in integer, fixed, and floating-point hardware system design, signal processing, controls, and atmospheric radiative transfer modelling.Dr. Jack Bringardner, NYU’s Tandon School of Engineering Jack Bringardner is the Assistant Dean for Academic and Curricular Affairs at NYU Tandon School of Engineering. He is also an Assistant Professor in the General Engineering Department and Civil Engineer- ing Department where he teaches the First-Year Engineering Program course Introduction to Engineering and Design. He is the Director of Vertically Integrated Projects at NYU. His Vertically Integrated Projects course is on Smart Cities Technology with a focus on transportation. His primary focus is developing
fruition. Mi- tra was Executive Director, Academic Media Production Services (AMPS), MIT; Senior Vice-President, Knowledge Solutions Business, NIIT (USA), Inc.; the first Chief, Distance Learning Programs Unit, BITS, Pilani, India, and; founder-member, Council of Governors, Pan-Himalayan Grassroots Develop- ment Foundation, Kumaon, India. He has served on the NERCOMP Board of Trustees, USA, was a founder-Board member, Sakai Project Board, USA and co-chaired the Advisory Board, Royal Roads University, Victoria, Canada. Mitra participated in the formulation of the Government of India’s Na- tional Policy on Education 1986; this led to his being one of the authors of a book titled, ”Challenge and Response - Towards a
in multiple projects, including the Development of a Model for The Metal Laser Powder Bed Fusion Additive Manufacturing Process. Dr. Ahmed Cherif Megri was the chair of the NCAT CAM’s Education subcommittee. He contributed to the outreach CAM since 2015. He is currently, responsible for the outreach program for the STEAM’s research project.Dr. Sameer Hamoush P.E., North Carolina A&T State University Professor and Chair of Civil and Architectural Engineering DepartmentDr. Rachid Belmasrour, Southern University at New Orleans Dr. Belmasrour holds a Ph.D. from University of New Orleans in Mathematics, and he obtained his M.S degree in Mathematical Informatics from University of Versailles Saint Quentin, France
inmultidisciplinary engineering design problems. Modern-world engineering problems are oftendescribed as no longer solely within a single discipline. For example, traditional mechanicalengineering designs often now involve software, controls, electronics and perhaps biology, etc.One primary difficulty in posing multidisciplinary design problems in the undergraduatecurriculum is that within the student body of a course there is variety in the past courses andexperiences. An instructor can only expect students to have taken the pre-requisite courses,which thereby limits the range of multiple disciplines that a project can cover. Further,instructors from these other disciplines are typically not available during the course project forlearning and consulting on
recipient of the Fulton Outstanding Lecturer Award. She focuses on designing the curriculum and teaching in the freshman engineering program. She is also involved in the NAE Grand Challenge Scholars Program, the ASU ProMod project, the Engi- neering Projects in Community Service program, the Engineering Futures program, the Global Freshman Academy, and the ASU Kern Project. Dr. Zhu also designs and teaches courses in mechanical engineer- ing at ASU, including Mechanics of Materials, Mechanical Design, Mechanism Analysis and Design, Finite Element Analysis, etc. She was part of a team that designed a largely team and activity based online Introduction to Engineering course, as well as a team that developed a unique MOOC
Programs at the Batten College of Engineering & Technology.Edwin Merino, Old Dominion UniversityJayson Carl Alberto Kreger c American Society for Engineering Education, 2019 Work-in-Progress: A Multidisciplinary Approach for Undergraduate Research in Augmented Reality SystemsAbstractThis Work-in-Progress paper presents a multidisciplinary undergraduate research project todevelop an augmented reality system for the U.S. Marine Corps weapon maintenance andoperation. The project utilizes low-cost, market-leading AR hardware and software to developan interactive AR application for maintenance and operation of M16A4 rifle. The ARapplication contains interactive presentation and visualization of
AC 2007-2527: MULTIDISCIPLINARY EXPERIENCES FOR UNDERGRADUATEENGINEERING STUDENTSFred DePiero, California Polytechnic State University Dr. Fred DePiero received his B.S. and M.S. degrees in Electrical Engineering from Michigan State University in 1985 and 1987. He then worked as a Development Associate at Oak Ridge National Laboratory until 1993. While there he was involved in a variety of real-time image processing projects including a high-compression video transmission system for remote driving and several laser-based ranging systems. Fred began working on his Ph.D. at the University of Tennessee while still at ORNL, and completed it in May 1996. His research interests include
of climate change.Given this transdisciplinary systems approach, the college has programmatically encouraged andsupported the development of new green engineering curriculum and projects inside the college,and collaborated with Silicon Valley companies, many of which are at the forefront of greentechnologies. This is described in Section 2. The college has spearheaded a university-widecurriculum that brings together faculty and students from all seven colleges of the university indeveloping project-based interdisciplinary solutions; this is described in Section 3. Furthermore,to underscore the need for a transnational approach, the college has led the production of a globalgreen documentary, showcasing the collaborative efforts of people in
AC 2010-583: R2D2 AS A MOTIVATOR IN ENGINEERING EDUCATIONBrian Peterson, United States Air Force AcademyPatrick Sweeney, United States Air Force AcademyDelbert Christman, United States Air Force Academy Page 15.1010.1© American Society for Engineering Education, 2010 R2D2 as a Motivator in Engineering EducationThe use of robotic system applications continues to grow as a learning tool in electrical andcomputer engineering, but basic designs and projects have been well investigated and advancesin the field are becoming increasingly complex. Many new and interesting systems are beyondthe scope of what undergraduates can tackle as a capstone project. As a result
laboratory facilities development for the program. Dr. Looft’s research interests have evolved from the analysis and modeling of tactile neural responses to now being focused on student capstone projects, systems engineering programs, and global education. Outside of the academic world, Dr. Looft is an avid sailplane enthusiast, pilot and flight instructor, and is a lifelong fitness enthusiast. Page 15.370.1© American Society for Engineering Education, 2010 Designing Robotic Systems: Preparation for an Interdisciplinary Capstone ExperienceAbstractThe Robotics Engineering (RBE