AC 2011-198: CREATING A CULTURE OF SUCCESS FOR WOMEN INSTEM - THE ADVANCEING FACULTY PROGRAM AT LOUISIANA TECHUNIVERSITYJenna P. Carpenter, Louisiana Tech University Dr. Jenna P. Carpenter is Associate Dean for Administration and Strategic Initiatives, Wayne and Juanita Spinks Professor of Mathematics, and Director of the Office for Women in Science and Engineering in the College of Engineering and Science at Louisiana Tech University. She is also PI for Louisiana Tech’s NSF ADVANCE project. She serves on the Board of Directors for the Women in Engineering ProActive Network and was co-developer of the WEPAN Knowledge Center Project. She is the Chair of the Steering Committee for the National Academy of Engineering’s
technology Ph D M.E., 1956, Carnegie Institute of Technology Page 22.33.1 c American Society for Engineering Education, 2011 Linking Cultures: An Industrial Project-Based Design Course for U.S. and Chinese Students in ChinaBackground Globalization of the engineering enterprise has not only impacted its practice but also theeducation of its practitioners in ways previously unimagined. Virtually every engineeringprogram in the country has implemented new activities and programmatic changes to assistgraduates develop the skills, knowledge and experience to function
AC 2011-2506: GIZMO FESTIVAL: K-8 OUTREACH AS A DESIGN/BUILDFOR ENGINEERING STUDENTSMargot A Vigeant, Bucknell University Margot is an associate professor of chemical engineering and associate dean of engineering at Bucknell University.Lori Smolleck, Bucknell University Page 22.746.1 c American Society for Engineering Education, 2011 Gizmo Festival: K-8 Outreach as a Design/ Build for Engineering StudentsAbstractThe Gizmo Project is completed by first-year engineering students as the final exercise intheir introductory course: ENGR 100 – Exploring Engineering. The project also servesas a
c American Society for Engineering Education, 2011 Providing International Experience through Studying Abroad for Engineering Technology StudentsIn 2004 we began an investigation to provide international experience for engineeringtechnology students at Indiana University Purdue University Fort Wayne (IPFW) thatwas currently not available. The original plan was to have a small group of students go toKuala Lumpur, Malaysia for six weeks to study with Malaysian students in a projectorientated course. This was planned for the summer of 2005. The project was actuallycompleted for the first time during 2006, and repeated again in 2007. A group of fourstudents from the Electrical and Computer Engineering Technology
setting and in one-on-one and small group sessions.Forming the foundation for engineering students’ research skills is a structured library instructionprogram during their freshman year. But between their freshman and senior years there is noclass required for all engineering students that integrates formal library instruction. For thisreason, by the time they arrive at their senior design projects, students have often forgotten theirresearch skills. Additionally, the library’s electronic resources collection is constantly becomingmore exhaustive, leading to ever increasing challenges in instructing students in informationskills. During the three or four years between receiving formal library instruction, studentssimply fall behind.Drexel’s
objectives for a Materials Engineering course were established using principles ofcourse design from Fink [1]. In Fink’s taxonomy, six different types of course objectives arepossible. The different types include that of Foundational Knowledge, Application, Integration,Human Dimensions, Caring and Learning How to Learn. According to Fink’s model for coursedesign, a course should also include a Rich Learning Experience [1], or project, which addressesmore than one course objective. The paper will discuss the changes that were made to the courseand the approach to course re-design to allow for new course objectives. Assessment data forseveral of the objectives from two sections of the course will be presented. The course includesan audio podcast
AC 2011-1270: INTEGRATION OF SYSTEMS ENGINEERING TRAIN-ING MODULES INTO CAPSTONE COURSES ACROSS COLLEGE OFENGINEERING DEPARTMENTSDean Walton Pichette, Wayne State University DEAN PICHETTE Senior Lecturer Department of Industrial & Systems Engineering TEACHING INTERESTS Systems Engineering, Project/Program Management, Engineering Economics & Lifecycle Costing, Introduction to Design PROFESSIONAL PREPARATION 1995 MS Electronics and Computer Control Systems. Wayne State University, Detroit, MI 1990 MBA Business Administration, Michigan State University, East Lansing, MI 1972 BS Electrical Engineering, Michigan State University, East Lansing, MI PROFESSIONAL EXPERIENCE 2007 Present Wayne State University
whatactivities current practicing engineers are engaged in and what tools they use in the workplace.How those activities have changed over time will provide insight into how to properly trainstudents to be lifelong learners. To assist with this effort, this work undertook a survey of arepresentative group of practicing engineers. The link for a web-based survey was sent to achapter of the Society of Manufacturing Engineers. In addition to demographic and employerinformation, details regarding work-related activities and how those activities have changed overtime was requested. Additional information regarding the tools used by the respondingpracticing engineers was also collected.Survey results show design, manufacturing engineering, and project
AC 2011-2443: INCORPORATING ENTREPRENEURSHIP INTO MECHAN-ICAL ENGINEERING AUTOMOTIVE COURSES: TWO CASE STUDIESGregory W. Davis, Kettering University Dr. Gregory W. Davis is a Professor of Mechanical Engineering at Kettering University, formerly known as GMI Engineering & Management Institute. Acting in this capacity, he teaches courses in the Auto- motive and Thermal Science disciplines. He also serves a Director of the Advanced Engine Research Laboratory, where he conducts research in alternative fuels and engines. Currently, Greg serves as the faculty advisor for one of the largest Student Chapters of the Society of Automotive Engineers(SAE) and the Clean Snowmobile Challenge Project. Greg is also active on
prototyping equipment (e.g.Stratasys FDM technology) or use of a service bureau, custom blocks can also be included inthese prototypes. This introduces students to Design for Manufacture and Assembly concepts asthese custom blocks must be designed with appropriate wall thicknesses and stiffening, and withappropriate clearances and fits to assemble to standard blocks. The ability to do this adds to theappeal that LEGO® has for many students who are well familiar with their use. Experiencesfrom implementing a LEGO® based CAD project in a freshman course that teaches EngineeringDesign and Graphics will be used to underscore the benefits of using this approach.IntroductionCAD instruction is a required part of the curriculums of many engineering and
AC 2011-951: MODULAR CURRICULUM DEVELOPMENT FOR MECHA-TRONICS TECHNICIANSBranislav Rosul, College of Dupage Dr. Rosul completed his Bachelors of Science in Mechanical Engineering in February of 1984 majoring in Control Systems. Soon after he started to work as an Instrumentation Engineer in Teleoptic, Belgrade where he stayed for three years working on the Instrumentation Design and as a Project Engineer. During that time he worked on instrumentation and technology development of various industrial processes, from food to petrochemical and still industry. Academically, he continued on toward the Master of Science in Electrical Engineering at University of Belgrade. After completing his course work at the Belgrade
experiences and results in developing and delivering two coreElectrical and Computer Engineering (ECE) courses with laboratory components completelyonline using an internet based distance learning delivery system and the Mobile Studiotechnology and pedagogy. The challenge in offering ECE courses online is the fact they have avery intensive hands-on component, such as design and laboratory experiments, that requirestudents to use expensive laboratory equipment to complete and demonstrate their projects. Thisimplied that until now, institutions offering ECE laboratory courses had to have students attendthe laboratory courses on their campuses. Our ECE department is in the process of redesigningand delivering all 200-level and 300-level electrical
project-based learning and service-based pedagogies their potential impacts on student learning and how these impacts may be evaluated and assessed.Kurt Paterson, Michigan Technological University Kurt Paterson is on the environmental engineering faculty, where he currently serves as Director of Michi- gan Tech’s D80 Center (www.d80.mtu.edu), a consortium of 20 research, education, and service programs dedicated to creating appropriate solutions with the poorest 80% of humanity. His research, teaching and service interests focus on appropriate technology solutions that improve public health, international project-based service learning, and engineering education reform. Prof. Paterson teaches courses on cre
, 2011 Implementation of an Integrated Product Development (IPD) Competition in a Rural Dominican Community: Lessons Learned AbstractThis paper describes the challenges in the development and execution of a product design anddevelopment competition for a rural community by a small engineering student team. Theservice-learning project was conducted by a four-person team, relying on the collaboration of acommunity partner organization in the Dominican Republic, and a small group of graduatestudent advisors. The goals of the project were to a) identify critical needs in the community touse as a theme in the competition, b) encourage team-building within the community, c) developmodules for
the mass market potential of the latter offers the way toadvance the former, while the technical excellence of the former offers the way to make thelatter successful in the mass market. This is the combination of opportunity and challengemotivating the project behind this paper. The thoughtful reader is reminded that innovationsin engineering education sometimes have to go beyond classroom teaching, and that archivalpublications should reference, rather than repeat, material already presented in prior papers.Hence, for such items as detailed course outlines, student comments, etc., references toprevious papers are given to published work. The pedagogical aspects are in relatingknowledge and learning across disciplines and skills. They require
Engineering (M.S. 1985 & PhD 1987 in Civil Engineering, University of Illinois). He has led and worked in many projects in structural and agricultural engineering and materials. He has published over 160 papers in refereed journals and proceedings of international congresses. He has gained a great deal of experience and demonstrated efficient management skills as being coordinator of 3 LLP projects and 16 EU research projects. He has published 25 papers in the field of Agricultural and Biosystems Engineering studies in Europe (http://www.erabee.aua.gr/).Prof. Francisco Ayuga, BIPREE Research group, Universidad Politcnica de Madrid Catedrtico (Professor) since 2002, previously Profesor Titular (Associate Professor) since
methodologies that willbenefit them as they encounter open-ended problems that can be conveniently answered using afew equations. A course developed at the University of Michigan exposed upperclassmenundergraduates in a wide range of engineering majors to a vast array of ideas to develop theircreativity, to enhance their problem solving abilities and to make them aware of issues they willmost likely confront in the workplace. The use of real-world examples, guest lectures fromindustry and a course project allowed students to directly apply the problem solving heuristicdiscussed in lecture and recognize that these concepts are not solely academic and can be used intheir daily lives. Initial feedback from the students has indicated that the students have
AC 2011-766: TRAINING CIVIL ENGINEERS TO COMMUNICATE EF-FECTIVELYMaria Dawn Blevins, University of Utah Department of Communication PhD Student CLEAR Consultant for University of Utah School of Engi- neering Page 22.1539.1 c American Society for Engineering Education, 2011 Training Civil Engineers to Communicate Effectively in the Public Participation Processintroduction Civil engineers are responsible for designing many of the public works projectssponsored by local, state, and federal agencies. They make sure all technical requirementsof the project are
process, and supporting transfer students at theuniversity.Transfer students at the Ira A. Fulton School of Engineering at Arizona State Universityare supported by a Motivated Engineering Transfer Student (METS) Center wherestudents can network, study, socialize, and receive informal mentoring. In addition,transfer students can enroll in an Academic Success Class for one credit and attendadditional workshops which are held in the Center. Scholarship for over 30 qualifiedtransfer students are provided each year through an NSF S-STEM Scholarship Program.An experimental scholarship program, for transfer students who do not qualify for NSFS-STEM scholarships, was also evaluated. An emphasis in this project was placed oninvolving women and
factors of real-life applications.This approach is vital for reinforcing basic principles (Newton’s Laws in Mechanics, First andSecond Laws in Thermodynamics, etc.). But, by itself, it ignores the interconnectivity of theseconcepts and how they are interwoven in the fabric of real engineering problems—i.e., system-level engineering. This big-picture view is often covered in capstone design courses, butcapstone design projects themselves cover a broad spectrum of applications, and don’t guaranteethat all students leave with the same exposure to system-level integration and interactions.In addition, the development of engineering science core concepts relies upon pre-requisite pathsthat allow advanced topics to be built upon more basic concepts
AC 2011-2384: INCORPORATING VARIOUS LEARNING STYLES IN AGEOTECHNICAL ENGINEERING LABORATORYJames L. Hanson, California Polytechnic State University Professor, Civil and Environmental Engineering DepartmentDavid J. Elton, Ph.D., P.E., S.M., Auburn University Dr. Elton is a professor of Civil Engineering at Auburn University. He has taught geotechnical courses for over 25 years.Kirk Vandersall, Arroyo Research Services Managing Director of Arroyo Research Services. Vandersall has over 20 years of experience in leading evaluations and policy studies at the federal, state and local levels, and providing a range of profes- sional services for education organizations. STEM-related work includes current projects funded by
and Teaching Assistant, Department of Civil, Construction, and Environmental Engineering, Iowa State University, Ames, Iowa 1/99 8/00 Project Engineer, MWH-Boda Environmental Engineering Group, Beijing, China 7/92 1/99 Structural Engineer, Wuzhou Engineering Services, Beijing, ChinaG. Bruce Gehrig, University of North Carolina, Charlotte Associate Chair and Associate Professor Civil Engineering Technology and Construction Management Program Department of Engineering Technology University of North Carolina at Charlotte Page 22.818.1 c American Society for Engineering Education, 2011Implementing
substantial body of research into the PBL methods,many engineering faculty continue to come to the model reluctantly. In an effort to give moreweight to the benefits of PBL teaching within the Dalhousie University experience, DalhousieUniversity is eager to assess and evaluate the impact of PBL additions to the curriculum..Motivated by new accreditation rules that will take effect in 2012, the first group of studentsentering Dalhousie University engineering program will encounter a core PBL design course ineach semester of their first two years, as well as a capstone design project in their final year.Thus, we are moving from a “bookend” design experience—having PBL courses in the first andfinal years of the program—to a three-year PBL design
controls R&D and manufacturing. She has used her indus- try background to foster industrial partnerships at the University, and to develop courses and supervise students in projects that support educational robotics.Mr. Jose M. Santos, University of Nebraska-Lincoln Mr. Santos is an undergraduate student at the University of Nebraska-Lincoln (Omaha Campus) where he’s currently earning a double-major in Computer Engineering and Mathematics. He also holds a Bach- elor’s Science degree in Electronics Engineering Technology (EET) from DeVry Institute of Technology (now DeVry University). He is the creator and lead software architect of the CEENBoT-API (Application Programming Interface) presently in use in various
National Academy of Engineering‟s (NAE) 2004 report, TheEngineer of 20201, several aspects of the future of engineering have been undeniable. The worldpopulation is changing in mostly known ways and changing with it are the kinds of stakeholderneeds typically addressed by engineers. Government studies project population worldwide toincrease from 6 billion currently to 9 or 10 billion within the lifetimes of today‟s beginningengineers1 and this massive increase will bring with it more than the challenges of sheer volume.The demographic diversity of the global population is changing just as radically. To give oneexample, according to a US Census Bureau study, “If current trends continue . . . the percentageof whites will decline from the 2000 value
formal settings and the workplace. Page 22.1724.1 c American Society for Engineering Education, 2011 “Wearing that hard hat and those boots and being there with all the dust”: Students’ conceptions of becoming a Civil Engineer.This paper reports on a phenomenographic study describing how students conceive of civilengineering through their engagement with six projects on a first year introductoryengineering course. In the simplest of four phenomenographic categories students don’tengage with becoming an engineer at all. They tend to see the course
design courses. He has conducted research, with peer-reviewed publications, in biomedical engineering in the areas of biomechanics, bioelectricity, and biomedical imaging, since 1992. Other research interests include renewable energy, optical fiber communications, and project-based multidisciplinary and interdisciplinary education. Page 22.912.1 c American Society for Engineering Education, 2011 Integrating Online Learning in Interdisciplinary Electromechanical and Electromechanical/Biomedical Design Courses AbstractThe following paper
. Page 22.1447.1 c American Society for Engineering Education, 2011 The Effect of Previous Team Experiences on Students’ Perceptions of Interdisciplinary Engineering ProblemsAbstractWith a growing number of interdisciplinary engineering programs and courses, researchers arebeginning to characterize interdisciplinary learning objectives, student development in theseprograms and courses, and the dynamics of interdisciplinary engineering teamwork. Focusing onstudents at the very beginning of the major coursework, this study examined second-yearstudents‟ perceptions of interdisciplinary engineering project teams. In addition, the studyattempted to define the conditions which give rise
California at San Francisco, School of Medicine, San Francisco, CA, 2001-present Adjunct Professor of Orthopaedic Surgery, 2001- present Research is focused on structureproperty relationships in orthopedic tissues, biomaterials and medical polymers. Current projects include the assessment of fatigue fracture mechanisms and tribological per- formance of orthopedic biomaterials, as well as characterization of tissues and associated devices. Surface modifications using plasma chemistry are used to optimize polymers for medical applications. Attention is focused on wear, fatigue, fracture and multiaxial loading. Retrievals of orthopedic implants are char- acterized to model in vivo degradation and physiological loading
American Society for Engineering Education, 2011 Undergraduate Capstone Design: Inductively EnhancedAbstractThe Department of Civil and Mechanical Engineering at the United States Military Academy atWest Point, New York requires its graduates to complete an integrative, year-long capstonedesign during their senior year. One of the capstone projects available to the mechanicalengineering students in the department’s aerospace sub-discipline requires the design,construction, testing, and demonstration of a small, highly autonomous Uninhabited AerialVehicle (UAV) for a Department of Defense client. This particular project was added to the listof available capstone options in the fall of 2005