is that of problem solver, or rescuer, such that engineers need only “design theirway out” of any problems we face as a global society. Rather than a reactionary focus, engineersmust be proactive and contemplative and emphasize sustainability as a top design constraint tobe considered thoughtfully in terms of people, nature, and future generations. A focus onsustainability must be as heavily weighted as cost, aesthetics, ease of use, etc. But, if we are toget there, we must first change the culture of engineering education.Currently, engineering education treats sustainability as one of many design constraints thatlikely receives consideration in a classroom module, typically in a capstone design class. Onelesson is hardly enough to instill
space in one historic building, the Machine Tool Laboratory,offering a common location for students to gather. In addition to the shop, students enjoy acomputer classroom, a capstone project workshop, a laboratory/classroom, and two additionallaboratory spaces. Three faculty members have offices in the building, including the machinetool laboratory instructor who also serves as building manager. One of our primary goals in thepast ten years has been to continuously improve the space so that it presents a professional Page 25.1076.7manufacturing environment. These improvements have included interior and exterior painting,and new floor finishes
, network engi- neering, fiber optic communications, technology and society, and project management. He also advises students on their senior design projects. He is author of ”The Telecommunications Fact Book, 2E,” ”Nan- otechnology: Ethical and Social Implication,” and co-author of ”Technology and Society: Crossroads to the 21st Century,” ”Technology and Society: A Bridge to the 21st Century,” and ”Technology and Society: Issues for the 21st Century and Beyond.” He is a member of ASEE and a Senior Member of IEEE.Dr. Aram Agajanian, DeVry University, Chicago Aram Agajanian is a Senior Professor at DeVry University in Chicago. He holds a B.S. in electrical en- gineering from the University of Rochester, a M.S. in
particular emphasis on the behavior of these molecules in ”non-native” environments such as those often found in biotechnology. His research efforts have earned him the NSF CAREER Award and the Young Faculty Award from the Defense Advanced Research Projects Agency (DARPA). As part of his research efforts, Knotts creates outreach programs to help teachers improve K-12 STEM education.Dr. W. Vincent Wilding, Brigham Young UniversityDr. William G. Pitt, Brigham Young University William G. Pitt received a Ph.D. in chemical engineering in 1987 from the University of Wisconsin, Madison. He obtained a faculty position at Brigham Young University in the Chemical Engineering Department, where he has served since 1987. He is
created to monitor internship programs andensure proper depth and breadth of experience for new engineers.14 Industry should providefeedback to academia on how well prepared graduates are as they enter internship programs. Byusing feedback from the industry perspective, faculty can drive the right curriculumimprovements that best prepare engineers to meet the demands of professional practice.The Perspective of Students on their Preparation for Professional PracticeBielefeldt’s recent study at CU investigated how civil engineering students perceived theeducational outcome requirements in the BOK2.15 The project had three main goals: 1) Introduce the BOK2 to first year civil engineering students and determine what information they perceived
AC 2012-3046: AN APPROACH TO USING UNDERGRADUATE STUDENTTEAMS TO DEVELOP UNDERGRADUATE LABORATORY EXPERIENCESLt. Col. Kevin A. Gibbons Ret., U.S. Air Force Academy, NexOne, Inc., and CAStLE Kevin Gibbons is a Senior Scientist for NexOne, Inc., in the Center for Aircraft Structural Life Extension (CAStLE) located at the USAF Academy in Colorado Springs. He taught in the AF Academy Department of Engineering Mechanics for four years, where he earned his Assistant Professorship and served as the Director of the Applied Mechanics Laboratory. He currently works as an advisor for a senior capstone research team and mentor to multiple mechanical instrumentation project teams. He earned a B.S. in mechanical engineering with
conduct robust and innovative technical education research, and providing educational opportunities on sustainable assessment processes for program continuous improvement worldwide. She is Principal Investigator of a NSF-funded validity study of her direct method for teaching and measur- ing the ABET engineering professional skills and is adjunct associate professor in the School of Electrical Engineering and Computer Science at Washington State University where she co-teaches the senior design capstone sequence. During her more than 21 years as a higher education administrator and professional educator, Dr. Ater Kranov has led university-wide assessment initiatives, coordinated regional and professional
Page 25.961.1 c American Society for Engineering Education, 2012 MULTIPROCESSOR EMBEDDED SYSTEM DESIGN A COURSE WITH HARDWARE – SOFTWARE INTEGRATIONAbstractThe paper expounds the content of the course and further explores the context with which thecourse is delivered that finally turns over the ownership of the subject material to the learnerin the form of final projects. The pedagogy of the course delivery is based on “InteractiveLearning model”. The course is conducted in a lab or studio like settings, that integrates bothlecture and laboratory work in the same settings. The paper elaborates the benefits derivedthrough the pedagogical approaches of keeping the learner actively engaged in all aspects
influence the downstream design and testing processes. Materials, methods,and tools are outlined, including the use of servomotors and microcontroller-basedcontrol systems. Students in the Engineering Technology program are required to workwith this robotic experiment as part of a laboratory session in the “MET 205 Roboticsand Mechatronics” class. The project provides students with such robot design experienceand enables them to improve their robotic skills by using wireless microcontrollers forperforming different robotic applications.Introduction This paper presents the design of a cell phone-controlled walking robot forteaching and research integrated with the emerging fields of bionics through an NSFproject involving undergraduate and
AC 2012-4072: DEVELOPMENT OF A CRYSTAL SPATIAL VISUALIZA-TION SURVEY FOR INTRODUCTORY MATERIALS CLASSESProf. Stephen J. Krause, Arizona State University Stephen J. Krause is professor in the School of Materials in the Fulton School of Engineering at Arizona State University. He teaches in the areas of bridging engineering and education, capstone design, and introductory materials engineering. His research interests are evaluating conceptual knowledge, miscon- ceptions and their repair, and conceptual change. He has co-developed a Materials Concept Inventory for assessing conceptual knowledge of students in introductory materials engineering classes. He is currently conducting research on misconceptions and
AC 2012-4041: TECHNOLOGY IMPACT: FROM UTOPIA TO WASTE-LANDDr. Robert A. Heard, Carnegie Mellon University Robert Heard is Associate Teaching Professor in the Department of Materials Science and Engineering. Past experience includes 17 years in industry and the past seven years teaching at Carnegie Mellon with particular emphasis on the engineering-based courses, including materials selection and capstone design courses. Page 25.1268.1 c American Society for Engineering Education, 2012 Technology Impact – From Utopia to WastelandAbstract A course entitled
objectives: to provide students withincreased access to technical knowledge and to facilitate communication between differentstakeholders on projects. Our experience on the use of social networks has encompassed avariety of platforms including Facebook, Twitter, and Google+. We have used the platforms ona diverse set of courses in computer science, including courses on data structures, softwarearchitectures, web services, and the senior design/senior capstone where we have providedstudents with learning experiences that are not only relevant in the classroom but also closelymodel workplace activities. Based on our experience, we have categorized the strengths andweaknesses of using different social networks by looking at generic activities that
them the autonomy to choosetheir own project formulations and strategies, which in turn increases their motivation. Some ofthe past students projects include designing and building of wind tunnel models, 3-D aerospacemodels, variable pitch thrust measurement apparatus, flight simulation frame, water tunnel etc.All of these products become part of the aerospace laboratory to be used by future students.Project based learning at the individual course level is familiar in engineering education. It isused almost universally in capstone design and laboratory courses. There has been growingfrequency of project based learning approach in first year engineering courses and courses thatengage students in consulting projects [5, 7]. Because of its
AC 2012-3341: UNDERSTANDING THE EVOLVING RELATIONSHIP BE-TWEEN CHINA AND LATIN AMERICA BY EXAMINING ENGINEER-ING EDUCATION TIESJennifer A. Acevedo-Barga, University of Washington Jennifer A. Acevedo-Barga is currently in the process of earning her undergraduate degree from the Uni- versity of Washington. She is pursuing a double major in human-centered design and engineering (HCDE) and psychology.Prof. Charles Pezeshki, Washington State University Charles Pezeshki is the Director of the Industrial Design Clinic, a large performance-based industrial outreach program providing deliverable-based capstone experiences to WSU MME students.Mr. RunLu Li, WASEDA University Charles Li is a special Chinese student who grew up
AC 2012-3519: STRATEGIES AND TOOLS FOR ENGAGING AND AS-SESSING STUDENTS WITH CYBER LEARNING BY INTERACTIVE FRE-QUENT FORMATIVE FEEDBACK (CLIFF) IN CORE MATERIALS CLASSESProf. Stephen J. Krause, Arizona State University Stephen J. Krause is professor in the School of Materials in the Fulton School of Engineering at Ari- zona State University. He teaches in the areas of bridging engineering and education, capstone design, and introductory materials engineering. His research interests include evaluating conceptual knowledge, misconceptions and their repair, and conceptual change. He has co-developed a Materials Concept In- ventory for assessing conceptual knowledge of students in introductory materials engineering classes
single course, tointegration of leadership concepts into technical course offerings and other unique expectationsof students to take on leadership projects at their school and report on the experience. It isdifficult to see a generalized theme, but one might assume that a primary focus of the leadershipofferings is based on a belief that a graduating student can lead from any level in his/herorganization. Emphasis is placed on students exploring their own leadership abilities and theways in which they influence group outcomes: interpersonal skills, judgment, moral courage,innovation, sustainability, global collaboration and emotional intelligence appear as key topics,as does the notion of the interrelatedness of ethics and sustainability in a
. He was a lecturer and Director of the Design Studio at Yale University for four years, and then returned to his alma matter, UC, San Diego, in 1999. He is now a tenured lecturer and Director of the Design Center in the Department of Mechanical and Aerospace Engineering. He teaches hands- on design courses, including an introductory design class, a mechatronics class, and a capstone design class. His interests in design education include increasing student motivation, teamwork, and integration of theory into design projects. Page 25.91.1 c American Society for Engineering Education
provide a working knowledge of nanotechnology in generaland the physics and chemistry employed in nanofiber production specifically.Additionally several modes of assessment were used through out the activity. Inparticular, an attitudes inventory was administered pre and post activity to evaluatechange in perceptions about pursuing STEM careers. Summative assessments were usedto gage student’s learning and performance based assessments were used to enhancestudent’s internalization of the subject matter. The students demonstrated an improvedunderstanding of nanotechnology across the board and girls performed better than theboys on the summative assessment. As a capstone on the project the students producedposters to communicate their findings to
framework has beenestablished, fluid properties and reaction conditions associated with a typical PCR process areintroduced and students are asked to evaluate reactor geometries suitable for thermocycling. Thissection culminates with a hands-on lab where students apply a 3D computational fluid dynamics(CFD) model we have developed using STAR CCM+ software to evaluate a series of reactordesigns by performing flow and heat transfer analysis, estimation of thermal residence times, andquantification of reaction product yields. IFinally, the physics and biochemistry fundamentals introduced in the previous two coursecomponents are combined in a hands-on design project. Students construct reactor geometriesbased on their calculations and use them to first
) machining, which aims at developing the Advanced Virtual Manufacturing Laboratory for Training, Education, and Research (AVML), an innovative e-learning tool for educating students and training the next generation workforce in sophisticated technology and its un- derlying theory. The core technology is being used to develop online courses that incorporate both lecture and lab components. El-Mounayri teaches capstone design and has mentored several projects for industry and other sponsors. He has been very active in undergraduate research. Among the multidisciplinary un- dergraduate research projects he mentored, two consisted of assessing the usability and pedagogical value of the AVML tool. His teaching and mentoring
pushbutton switches, limit switches, and both inductive and capacitive proximity devices.The kit also includes typical industrial outputs including lights, buzzers, motors, andsolenoid activated pneumatic directional control valves.The PLC modules and I/O devices used in this junior level course were specified at thesame voltage and have been designed for patch-cord assembly. This allows the studentsto focus on the job of learning the software and interfacing the I/O devices without thedanger of injuring themselves or the components. In the senior level capstone course,this safety net is not present and more time is spent on these concepts.After the PLC overview, we proceeded to the programming software. Many feel that thebest method for teaching
, Research, Training, Education, and Remediation for Teamwork,” American Society for Engineering Education 2010 Annual Conference. Layton, R.A., M.L. Loughry, M.W. Ohland, and G.D. Ricco, “Design and Validation of a Web-Based System for Assigning Members to Teams Using Instructor-Specified Criteria,” Advances in Engineering Education, 2(1), Spring 2010, pp. 1-28. Zhang, B., and M.W. Ohland, “How to Assign Individualized Scores on a Group Project: an Empirical Evaluation,” Applied Measurement in Education, 22(3), 2009. Meyers, K., S. Silliman, M. Ohland, “Comparison of Two Peer Evaluation Instruments for Project Teams,” Proceedings of the American Society of Engineering Education Annual Conference, Pittsburgh, PA, June 2008
seniorlevel Highway Design course – this is not a required course for the other majors within thedepartment. Many students in the department, primarily from among the CE majors, take one ormore senior-level electives in transportation engineering. Further, transportation is a requiredelement in every capstone design project in the Department’s degree programs. Until the Spring2011 semester, the Principles of Transportation Engineering course was a 2-credit course, andthe Highway Engineering course was a 4-credit course. In order to address programmaticbreadth and depth issues for all students in the department, the Transportation Engineeringcourse and Highway Design Course were both modified to become 3-credit courses beginning inFall 2011. These
the course and itscontent; and the remainder seeks to bring out the most innovative and effective approaches toteaching the course in use by instructors. Additionally, a limited historical comparison is madebetween the selected survey results and surveys on the same course conducted in 1972, 1990,and 1999.IntroductionThis survey represents the continuation of a series of surveys of undergraduate curricular topicsbegun in 1957 by the AIChE Education Projects Committee and more recently resumed by theAIChE Education Division. This paper presents the results for the third in the series of surveysconducted by the Education Division.Survey BackgroundThe Material and Energy Balance course (MEB) is the topic of the 2010 survey. Theaforementioned
AC 2012-4817: TEACHING STUDENTS TO BE TECHNOLOGY INNOVA-TORS: EXAMINING APPROACHES AND IDENTIFYING COMPETEN-CIESDr. Nathalie Duval-Couetil, Purdue University, West Lafayette Nathalie Duval-Couetil is the Director of the Certificate in Entrepreneurship and Innovation Program, Associate Director of the Burton D. Morgan Center, and an Associate Professor in the Department of Technology Leadership and Innovation at Purdue University. She is responsible for the launch and de- velopment of the university’s multidisciplinary undergraduate entrepreneurship program, which has in- volved more than 3,500 students from all majors since 2005. As part of the program, she has established entrepreneurship capstone, global
in order to become fully familiarized with real-world concreteproblems. Within the core curriculum, courses such as Construction Materials, Fundamentals ofConcrete and Concrete Construction Methods rely on lectures and structured laboratoryexercises to deliver well-defined technical contents, on the other hand, courses such as SeniorConcrete Lab and Capstone, which focus on problem solving rely on the project based approach.The Concrete Problems: Diagnosis, Prevention and Dispute Resolution course faces a unique Page 25.292.2pedagogical challenge as students are not only required to obtain specific technical contents, butalso develop the
AC 2012-4445: ANSWERING THE CALL FOR INNOVATION: THREEFACULTY DEVELOPMENT MODELS TO ENHANCE INNOVATION ANDENTREPRENEURSHIP EDUCATION IN ENGINEERINGDr. Angela M. Shartrand, National Collegiate Inventors & Innovators Alliance (NCIIA) Angela Shartrand oversees NCIIA’s internal and external research and evaluation initiatives as the Re- search and Evaluation Manager at the NCIIA. She leads research and evaluation projects in areas closely aligned with NCIIA’s mission, developing research collaborations with faculty instructors, researchers, and program directors who are actively engaged in technology entrepreneurship and innovation. She re- cently joined the Epicenter Research and Evaluation team and is in the process
, Northeastern University; and 1981-1989 Associate Director for Finance and Administration, Center for Electromagnetics Research (CER), Northeastern University. Pub- lications/Papers: Reenergizing and Reengaging Students Interest through CAPSULE; A Novel and Evolu- tionary Method on Educating Teachers to Promote STEM Careers Jessica Chin, Abe Zeid, Claire Duggan, Sagar Kamarthi (IEEE ISEC 2011); and ”Implementing the Capstone Experience Concept for Teacher Professional Development” Jessica Chin, Abe Zeid, Claire Duggan, Sagar Kamarthi (ASEE 2011). Rel- evant Presentations: ”K-12 Partnerships” (Department of Homeland Security/Centers of Excellence An- nual Meeting 2009); ”Building and Sustaining K-12 Educational Partnerships
-driven6. This emphasis on engineeringdesign in either an introductory or capstone courses is seen in numerous engineering programsacross the country. In addition, this strategy is seen in pre-collegiate education as well. Forexample, the popular high school engineering program Project Lead the Way14 begins with acourse in which students learn and engage in the engineering design process.Recently engineering education has gradually shifted away from treating the science ofengineering and engineering design as different domains and, instead, to integrate them15. In fact, Page 25.1191.2in a synthesis of the state if K-12 engineering education, the
development of empirical testing methods using similitude-based approaches. This approach provides significant potential for increasing the efficiency of the design process through a reduction in required full-scale testing and an expansion of the projected performance profiles using empirically-based prediction techniques. Wood’s research also includes the development of robotic ground and air vehicle systems using innovative conceptual design techniques for current technology implementations, as well as futuristic projections, applied in the framework of a senior capstone design course. Page 25.752.2