associate professor in the Sociology Department. c American Society for Engineering Education, 2018 Assessment of a Global Engineering Outreach CourseIntroduction.Since the establishment of Engineers Without Borders in 20021, opportunities for students athigher learning institutions to participate in global development projects has been enhanced. In2007, a multi-disciplinary course for engineering and technology students was established atBrigham Young University where students could work on global problems, researching not onlytechnical but economic and socio-cultural issues. The two-semester Global EngineeringOutreach (GEO) course has involved students who were selected following an applicationprocess
studied professional Production Engineering at Malawi Polytechnic, Bach- elors in Industrial Engineering at Nelson Mandela Metropolitan University (NMMU) in South Africa and Masters in manufacturing at Swinburne University of Technology (SUT) in Australia.Mr. Joseph Chikaphonya Phiri, University of Malawi, The Polytechnic A staff associate at The Malawi Polytechnic, a constituent college of The University of Malawi, under the Electrical Engineering department. Coordinator of final year projects in the department and an enthusiast of Innovation.Dr. Matthew Wettergreen, Rice University Matthew Wettergreen is a Lecturer in Engineering at the Oshman Engineering Design Kitchen at Rice University. He is also the Assistant
Control and Earthquake Engineering. Dr. Pong has been the Director of the School of Engineering at SFSU with 20 full-time faculty and over 25 part-time faculty since 2009.Dr. Zhaoshuo Jiang P.E., San Francisco State University Zhaoshuo Jiang graduated from the University of Connecticut with a Ph.D. degree in Civil Engineering. Before joining San Francisco State University as an assistant professor, he worked as a structural engi- neering professional at Skidmore, Owings & Merrill (SOM) LLP. As a licensed professional engineer in the states of Connecticut and California, Dr. Jiang has been involved in the design of a variety of low- rise and high-rise projects. His current research interests mainly focus on Smart
, self-taught “device descriptions” and “quick lessons”, students submit project proposals and developan IoT-based project. Student projects include a Google calendar-based alarm clock where theuser must solve a challenge before silencing the alarm. Other projects included smart parking,home security, plant care, and a web-based automated brewing system. At the end of the semester,students showcase their projects to faculty, staff, and other students.The IoT lab module was created to improve interest, motivation, diversity, and retention of stu-dents in ECE. Interest and motivation are tracked by University-wide Student Rating of Teaching(SRT) surveys. The results show a greater than one standard deviation improvement in studentsurvey scores
Paper ID #241582018 ASEE Zone IV Conference: Boulder, Colorado Mar 25Incorporating Motion Capture Technology in Undergraduate EngineeringDynamicsMs. Katherine Mavrommati, California Polytechnic State University I am a senior Biomedical Engineering major and have been working at the Human Motion Biomechanics Lab at Cal Poly for the past two years. As a research assistant I work on several projects including calculating knee contact forces during different types of exercise and creating educational modules that incorporate our motion tracking technology in various classes. The classes range from kinesiology to dynamics to
) under the Louis Stokes Alliance for MinorityParticipation (LS-AMP) project. These students had completed their second year at thecommunity college, and plan on pursuing a bachelor’s degree in an engineering discipline. Thecourse started with project-based teaching of fundamentals of electrical circuits, electronics, andinstrumentation followed by introduction to mechanical design. It concluded with design projectsusing the skills that students learned from the aforementioned subjects. The projects aimed atpromoting active learning, research, problem solving, and understanding the design process. Thepilot course was used to evaluate the instructional materials to be utilized later in developing anew junior level course in the computer
design courses, particularly atthe freshman and senior level, but often struggle to incorporate it into the more technical coursessophomore and junior years. This work presents a framework to help fill this gap in theintegration of EML into the entire degree program.This framework seeks to facilitate the transformation of technical projects into EMLopportunities that allow the full content of the course to be covered while increasing students’exposure to, and understanding of, entrepreneurial thinking. It has been implemented in a systemdynamics course for junior mechanical engineering students at Ohio Northern University duringthe fall semesters of 2016 and 2017. Pre- and post-project surveys are used to assess the project’seffectiveness both
Paper ID #23052Work in Progress: Exploring the STEM Education and Learning Impactsof Socially-relevant Making through the Challenge Problem of Making Pros-thetics for KidsMr. Jeffrey Craig Powell, UNC Charlotte Jeff Powell is a graduate student at UNC-Charlotte studying Biological Sciences. He is a graduate of UNC-Chapel Hill’s Biomedical Engineering program. As a student at UNC-CH, Jeff started The Helping Hand Project, a 501c3 non-profit and student volunteer group which supports children with upper limb differences. This includes using 3D-printers to create prosthetic devices for children. The non-profit includes chapters
concentration.In the fall semester of 2016, we heard a “call” from the community of Mount Vernon, Ohio. Itwas a need expressed to us - the Ariel Foundation Park Learning Trails project needed help fromour engineering students to conduct a study of the history of a century-old bridge and createeducational materials for the community. We gladly took it on as a class project since studentswere studying finite element methods and learning a new software – ANSYS. We were rewardedfor it - students loved this service project as it created a link between abstract engineering theoryand everyday objects they could touch and see. Along the process they learned what they neededto learn - the CAE tool. It was a win-win situation. In the following sections, we will
-Across-the-Curriculum: Year One of Developing an Ethics Curriculum in an Undergraduate Biological Engineering ProgramAbstractThis paper reports the first two phases of an on-going, multi-year project that seeks tocreate an integrated ethics curriculum for undergraduate Biological Engineering (BE)majors at a large, public university. Our objective is to create an exemplar process thatencourages engineering faculty members to contribute to, and develop ownership of, theethics curriculum. Literature in engineering education research has called attention to faculty buy-inas one of the key indicators of successful educational innovation. Scholars of ethicseducation also note engineering faculty’s attitude
Missouri University Science & Technology in Civil Engineering in 1999, and a PhD in Civil Engineering from Lehigh University in 2004. He is a registered Professional Engineer in Michigan.Mr. Michael O’Connor P.E., New York University With five decades of construction and project management experience as a civil engineer, split equally between the public and private sectors involving projects with a total value of several hundred billion (US$s); my goal has always been to deliver solutions that are customer focused and performance that adds value. c American Society for Engineering Education, 2018 The Civil Engineering Body of Knowledge: Supporting ASCE’s Grand
Paper ID #22177Work in Progress: Building a Functional Cardiograph Over Four SemestersDr. Gail Baura, Loyola University Chicago Dr. Gail Baura is a Professor and Director of Engineering Science at Loyola University Chicago. While creating the curriculum for this new program, she embedded multi-semester projects to increase student engagement and performance. Previously, she was a Professor of Medical Devices at Keck Graduate In- stitute of Applied Life Sciences, which is one of the Claremont Colleges. She received her BS Electrical Engineering degree from Loyola Marymount University, her MS Electrical Engineering and MS
by Providing a Failure Risk Free Environment and Experiential Learning OpportunitiesAbstractIn second year civil engineering, students participate in a horizontally integrated bridge designproject to increase their exposure to engineering application and prepare for their fourth-year design project. To compliment this project, a two-day event called CivE Days wasimplemented. This event freed students from classes and deadlines and allowed themto completely immerse themselves in a simulated bridge design project. The set-up of the event issplit into four stages: preliminary design, bridge construction, bridge testing and projectreflection. Learning takes place through a combination of experiential learning
the courseand the students’ projects and presentations that have resulted from its offering.I. INTRODUCTION AND BACKGROUNDAlmost two decades ago, the US National Academy of Engineering developed a list of the 20most significant and greatest engineering achievements of the 20th century which have had themost impact on the lives of people. Electrification, as supported by the electrical power grid, wasfirst on the list (compared to the Airplane, Telephone, and Internet which ranked 3rd, 9th, and13th respectively) [1]. Our century-old power grid is the largest interconnected machine onEarth, so massively complex and inextricably linked to human involvement and endeavor that it 1has alternatively
to design, build, and test alphaprototypes that are student-generated ideas. Students propose ideas that are electro-mechanicalin nature; they are grouped into teams; and they go through the product development cycle of asubset of the project ideas. Not only has this course become an outstanding opportunity to assesseach program at a common point, it has served as a key feeder to the senior capstone project, atwo-semester sequence that is industry sponsored. Projects that have been implemented inENGR 350 have been wide-ranging in nature, such as a motor-driven fishing reel for anglerswith the use of one arm; an inexpensive water-filtration system for countries with waterchallenges; a self-propelled longboard (skateboard) with braking
exposure to, and retention of, systems engineering principles improveslearning outcomes in an multidisciplinary graduate level course is assessed. Students enrolled in ahybrid electric vehicle powertrains course were exposed to systems engineering principlesthrough a dedicated lecture focused on team coordination and management of complexengineering systems in the context of the team-based course capstone project. Students wereencouraged to employ systems engineering principles across all aspects of the course (e.g.homework completion and exam preparation) with student collaboration a requirement for theproject. Student surveys were completed immediately following the introductory lecture, whichquantify students’ self-assessed increase in system
sections. In addition, details of theorder to address this deficiency, synthesized design evolution of this course as well as the description of thechallenges are integrated into a first-year engineering current curriculum are described in [3].design course through a sudden design change whilemaintaining tight deadlines. The effectiveness of this In Introduction to Engineering Design at Wentworth Instituteapproach is assessed by evaluating the quality of student of Technology, all first-year engineering students work indesign notes before and after the project-switch exercise. teams of 3 to 4 students to develop a solution to a societalStudent feedback is also solicited to allow for self- need
Paper ID #23976A Four-step Method for Capstone Design Teams to Gather Relevant andWell-defined Product RequirementsDr. Rachana Ashok Gupta, North Carolina State University Dr. Rachana A Gupta is currently a Teaching Associate professor and Associate Director of ECE Senior Design Program at NCSU. She teaches and mentors several senior design students on industry-sponsored projects (On average 12 / semester) to successful completion of an end product. These projects include all aspects of System Engineering: concept design, product design and design trade-offs, prototyping and testing (circuit design, PCB, mechanical
Paper ID #23607To Map or to Model: Evaluating Dynamism in Organically Evolving FacultyDevelopmentDr. Lori C. Bland, George Mason University Lori C. Bland, Ph.D. teaches courses in educational assessment, program evaluation, and data-driven decision-making. Bland received her Ph.D. in Educational Psychology from the University of Virginia. Her current work focuses on evaluating programs in higher education, STEM education, and gifted ed- ucation, assessing learning and professional outcomes in formal and informal learning environments in higher education and the workforce; with a focus on project- and problem-based
, project management, strategic planning, preconstruction, and sustaining the built environment. At Purdue, Benhart also leads the Healthcare Construction Management program and works with the first ASHE (American Society of Healthcare Engineering) student chapter. His position allows him to further develop construction education in the built environment and be an in- dustry advocate for the next generation of builders. He is also very involved in field supervision training programs, both at Purdue and on the national level. He focuses on the sustainability of our industry by mentoring the retiring baby boomers with new foremen and superintendents. Benhart also has an exten- sive resume in industry. His previous position
function of component design, economics, and renewable energy resource conditions. She received her PhD & MS in Mechanical Engineering from Georgia Tech in 2003 and 2001, respectively, and obtained a BSME from Penn State in 1999.Dr. Stephanie Cutler, Pennsylvania State University Stephanie Cutler has a Ph.D. in Engineering Education from Virginia Tech. Her dissertation explored faculty adoption of research-based instructional strategies in the statics classroom. Currently, Dr. Cutler works as an assessment and instructional support specialist with the Leonhard Center for the Enhance- ment of Engineering Education at Penn State. She aids in the educational assessment of faculty-led projects while also supporting
of IT or the technical side. All students taking thecourse are required to have a basic introduction to Java. The course is completely online, andstudent-teacher interaction comes primarily from Q&A discussion boards (Piazza) and one liveQ&A session per week (WebEx). The course revolves around a semester-long project in whichstudents develop a mini e-commerce web application complete with the design andimplementation of the web interface, the database, and the application business logic.In this paper, we talk about how the course evolved when the developer joined the educator toteach the course. We focus on six important facets of the experience: (1) the initial conditionsthat allowed the collaboration to be successful, (2) the
for Engineering Education, 2018 Making Sense of Gender Differences in the Ways Engineering Students Experience Innovation: An Abductive AnalysisIntroductionThe different experiences and outcomes for male and female students in engineering have longbeen a focus of engineering education research. In the spaces of engineering design andinnovation, researchers have explored differences in the ways male and female students approachconceptual design tasks1, their unique experiences working on a variety of engineering designprojects2,3, differences in propensity for engineering creativity4, and the innovative outcomes ofstudent projects from gender homogenous and heterogeneous teams5,6.Collectively, these and other studies suggest
how team dynamics affect undergraduate women’s confidence levels in engineering.Dr. Malinda S. Zarske, University of Colorado, Boulder Malinda Zarske is a faculty member with the Engineering Plus program at the University of Colorado Boulder. She teaches undergraduate product design and core courses through Engineering Plus as well as STEM education courses for pre-service teachers through the CU Teach Engineering program. Her primary research interests include the impacts of project-based service-learning on student identity - es- pecially women and nontraditional demographic groups in engineering - as well as pathways and retention to and through K-12 and undergraduate engineering, teacher education, and
oc- cupational therapy, management, adaptive technology and adult physical disabilities. These reflect her interest in the history, philosophy and current research in the profession. Her work experience incorpo- rated interprofessional collaboration which she believes has positively influenced practical application in the classroom. This experience has also contributed to her interest in interprofessional education (IPE) as a component of student curriculum and expanded to assistive technology where occupational therapy and engineering students collaborate on project designs. Her interest and research in IPE has led to local, na- tional and international presentations related to this subject matter. She has
which several of the student authors have been involved. Dr. Beyerlein has been active in research projects involving engine testing, engine heat release modeling, design of curricula for active , design pedagogy, and assessment of professional skills.Dr. Matthew John Swenson P.E., University of Idaho, Moscow After graduating from Oregon State University with a B.S. in Mechanical Engineering in 1999, I im- mediately pursued a career in industry, quickly excelling and continuously accepting roles of increasing responsibility. The first five years, I worked at GK Machine, Inc., a small company south of Portland, designing customized agricultural equipment. Next, I worked at Hyster-Yale Material Handling, most re
Paper ID #24464Art for All Design CollaborationDr. Cecelia M. Wigal, University of Tennessee at Chattanooga Wigal, Cecelia M.: BSEE, Ohio Northern University, 1985; MSEE, Illinois Institute of Technology, 1991; Ph.D., Northwestern University, 1998. Employment History: Sundstrand Corporation, Project Engineer 1985-1998; University of Tennessee at Chattanooga (UTC), Assist, Assoc, Full Professor, 1999 - present. Assist , Assoc Dean UTC College of Engineering and Computer Science, 2009-2014. Dr. Wigal’s pri- mary areas of interest and expertise include complex process and system analysis in industry and service systems
University-Main Campus, West Lafayette (College of Engineering)Nusaybah Abu-Mulaweh, Purdue University Nusaybah Abu-Mulaweh is a Continuing Lecturer in the Engineering Projects In Community Service (EPICS) Program at Purdue University in West Lafayette, Indiana. She received her Bachelors of Science in Computer Engineering from Purdue University Fort Wayne, and received her Master of Science in Electrical and Computer Engineering from Purdue University in West Lafayette, Indiana. She is currently pursuing her PhD in Engineering Education at Purdue University in West Lafayette, Indiana. c American Society for Engineering Education, 2018 Engagement in Practice: Scaling Community-Based Design
otheraspects. Integration of renewable resources with the grid is also associated with a new economicmodel. Move to Transactive Energy requires novel approaches in power systems design andoperation, especially on a distribution level.Another important aspect of penetration of renewables is the effect on protective relays settings,especially at the distribution level. Investigation of effects of renewable distributed generationand possible solutions require pilot projects and testbeds.The purpose of the project was to design and implement a testbed to study the TransactiveEnergy concept, to investigate the impact of Distributed Generation (DG) on the microgrid andintegrate protective devices. Physical modeling of the microgrid with DG resources
Paper ID #23252The Internet of Things Prototyping Platform Under the Design ThinkingMethodologyProf. Victor Taratukhin, SAP America Victor Taratukhin received his Ph.D. in Engineering Design in 1998 and Ph.D. in Computing Sciences and Engineering in 2002. Victor was a Lecturer in Decision Engineering and Module Leader (IT for Product Realization) at Cranfield University, UK (2001-2004), SAP University Alliances Program Director (2004- 2012). He is Next-Gen Network Global Projects and Regional Director for Silicon Valley and US West at SAP America, Inc., Managing Director, Competence Center ERP at European Research Center