actively being integrated into several core engineeringcourses (25.108 Introduction to Mechanical Engineering, 22.202 Mechanical Engineering De-sign Lab I and 22.423 Senior Capstone Design).2.0 CNC Platform SelectionThis section presents a brief survey of desktop CNC machine platforms and the associated sup-port hardware necessary to implement a safe and meaningful CNC machining laboratory experi-ence. Platform selection in this first phase of the project is also described.2.1 Desktop CNC MachinesA broad range of commercial desktop CNC machines are now readily available in assembledand/or kit form. Numerous desktop CNC machine specifications were considered for student usewithin engineering curricula and include: overall dimensions, design
Rowan and TSU have an important laboratory component (e.g., 2.5hour laboratory period every week for the Digital I course at Rowan), where our games aredeployed as a replacement to the traditional lab experiments. The overarching goal of thesegames is to provide an attractive and motivating environment for students to tackle engineeringdesign in general, and to impart essential reading and reasoning strategies to promote improvedproblem-solving skills, in particular. More specifically, the broad objectives of the games are to:1. Improve students’ active reading and thinking of ECE concepts by exposing them to a selection of metacognitive reading strategies through carefully designed game activities demonstrating ECE principles.2
these disciplines in integrative ways. The parallels were highlighted with the rise ofacoustical research in the 19th century, which led to the creation of laboratory-generated soundsfor experimental purposes [2]. These sounds, neatly described with mathematical formulas,allowed a systematic exploration of human acoustic perception. To study hearing, scientists tookto using sounds like electronically generated sinusoids, acoustically resonating tuning forks, andelectronic sirens [2]. This line of scientific inquiry on the effects of music and sound continues tointerest psychologists and neuroscientists in their studies on musical acoustics and itsrelationship with human memory, emotion, and language, among others [3], [4], [5]. Similarly,this
, 2022, pp. 1-6.[3] A. A. da Conceic'ão et al., "Internet of Things Environment Automation: A Smart LabPractical Approach," 2022 2nd International Conference on Information Technology andEducation (ICIT&E), Malang, Indonesia, 2022, pp. 01-06.[4] J. Agrawal, O. Farook, Z. Anderson, and D. Walker, “Internet of Things (IoT) Laboratory,”2019 ASEE Annual Conference and Exposition, Tampa, Florida, June 2019.[5] S. Rowland, M. Eckels, and R. Sundaram, “Laboratory Instruction and Delivery of a PilotIoT Course,” 2021 ASEE North Central Section Conference, University of Toledo, Ohio. March2021. https://peer.asee.org/36345[6] L. McLauchlan, D. Hicks, M. Mehrubeoglu and H. Bhimavarapu, “Enabling Remote StudentLearning of Technologies,” 2023 ASEE Annual
LouisvilleAbstractThe NSF Research Experiences for Teachers (RET) Site in Manufacturing Simulation and Automation has recentlycompleted its third year, continuing its mission to enhance STEM education for high school teachers and communitycollege faculty. Hosted by the University of Louisville, the RET program offers an immersive, six-week researchexperience that equips educators with the latest advancements in manufacturing technology and pedagogicalstrategies. During this transformative program, participants engage in hands-on research projects focused onmanufacturing simulation, automation, and integration of digital twins into manufacturing processes. Educatorswork in state-of-the-art laboratories alongside faculty and students, gaining practical insights
the integration of science and engineering inK-12 classrooms [8]. The foci of energy and engineering also lend themselves to authenticresearch experiences and high-impact teacher PD activities at MSU.MEERC RET Site DescriptionThree overarching goals of the MEERC RET Site: Culturally Inclusive Energy andEngineering Education for Rural and Reservation Elementary Schools include: (1)promoting inclusive engineering identity formation among diverse rural and reservation students,by (2) increasing elementary teacher self-efficacy in culturally inclusive energy and engineeringeducation via (3) enhancing a collaborative ecosystem among regional elementary schools,industry, national laboratories, non-profit organizations and academia that supports
StudentLearning - Internet of Things Applications and Exercises,” 2023 IEEE Frontiers in EducationConference (FIE), College Station, TX, USA, Oct. 18-21, 2023, pp. 1-8 .[8] J. Agrawal, O. Farook, Z. Anderson, and D. Walker, “Internet of Things (IoT) Laboratory,”126th ASEE Annual Conference and Exposition, Tampa, Florida, June 2019.[9] S. Rowland, M. Eckels, and R. Sundaram, “Laboratory Instruction and Delivery of a PilotIoT Course,” 2021 ASEE North Central Section Conference, University of Toledo, Ohio. March2021. https://peer.asee.org/36345[10] L. Othmane, H. Gantenbein, H. Yasar, S. Curzi, A. Valani, A. Prabhakar, and R. Cuddy,“Tutorial: Threat Modeling of Cloud-based Solutions,” 2022 IEEE Secure DevelopmentConference (SecDev), pp. 5-6, 2022.[11] R
. ©American Society for Engineering Education, 2025Mentoring You Supports My Development as a Professional Engineer: How Peer Mentors Benefit from Mentoring PeersIntroductionPeer mentoring programs have become common on college campuses. Frequently, peer mentorsare hired to work in writing centers or math learning centers to tutor students on learning andcompleting assignments. Peer mentors have also been integrated into courses such as with theLearning Assistant (Barrasso & Spilios, 2021) and Supplemental Instruction (Dawson et al.,2014) programs. It is also common for peer mentors to be involved in laboratory courses such aschemistry (Damkaci et al., 2017) and physics (Rehse et al., 2020). More recently, peer mentorsare
semi-structured interviews were conducted withparticipants, including undergraduate researchers on the PURE project with and withoutdisabilities. The objective of each interview is to understand individual factors that contribute tochanges in identities and career interest measured in the surveys. Additionally, the interviewsaimed to assess student perceptions of the research project and its influence on career choice.Example questions include “What influences your choice of research project and laboratory?”and “How did you use aspects of your identity in developing engineering solutions?” Probequestions elicit rich descriptions that support data quality. To understand the context under whichthe research took place, mentoring strategies for
. D. Jones et al, "An analysis of motivation constructs with first‐year engineering students:Relationships among expectancies, values, achievement, and career plans," J Eng Educ, vol. 99,(4), pp. 319-336, 2010.[2] V. G. Renumol, D. Janakiram and S. Jayaprakash, "Identification of cognitive processes ofeffective and ineffective students during computer programming," ACM Transactions onComputing Education (TOCE), vol. 10, (3), pp. 1-21, 2010.[3] S. Bergin and R. Reilly, "Predicting introductory programming performance: A multi-institutional multivariate study," Computer Science Education, vol. 16, (4), pp. 303-323, 2006.[4] M. Thuné and A. Eckerdal, "Analysis of Students’ learning of computer programming in acomputer laboratory context," Null
Coca-Cola Bot- tling Company Consolidated, Abbott Laboratories, and Burlington Industries. She is a national member of ATD and has twice presented at the ATD International Conference and Exposition. Dr. Hughes is a Langevin Certified Master Trainer, Harvard Management Development Fellow, and a Darden School of Business Minority Executive Education Scholar. She has a PhD in Career and Technical Education from Virginia Tech, Master of Textiles in Textile Technology Management from NC State University, B.A. in Chemistry from Clemson University, and MBA in Management from University of Arkansas.Dr. Karen A. High, Clemson University Dr. Karen High holds an academic appointment in the Engineering Science and Education
research experience in the areas of Integrated optoelectronics, Optics, Microelectronics, and Electromagnetics. He has worked as a Research and Design Engineer at Motorola and Bell laboratories. Also, he worked at NASA Langley Research Center as a NASA faculty fellow for the Nondestructive Evaluation Sciences Branch where he performed research in the area of optical fiber sensing for real time health monitoring of aerospace vehicles. In addition, Prof. Geddis was a Research Engineer at the Georgia Tech Research Institute where he fabricated scalable multiplexed ion traps for American c Society for Engineering Education, 2020
Paper ID #29762Understanding Context: Propagation and Effectiveness of the ConceptWarehouse in Mechanical Engineering at Five Diverse Institutions andBeyond – Results from Year 1Dr. Brian P. Self, California Polytechnic State University, San Luis Obispo Brian Self obtained his B.S. and M.S. degrees in Engineering Mechanics from Virginia Tech, and his Ph.D. in Bioengineering from the University of Utah. He worked in the Air Force Research Laboratories before teaching at the U.S. Air Force Academy for seven years. Brian has taught in the Mechanical Engineering Department at Cal Poly, San Luis Obispo since 2006. During the
titled Data Mining–Driven Design (EDSGN 561). As part of the Engineering Design Program’s ”Summers by Design” (SBD) program, Dr. Tucker supervises students from Penn State during the summer semester in a two-week engineering design program at the ´ Ecole Centrale de Nantes in Nantes, France. Dr. Tucker is the director of the Design Analysis Technology Advancement (D.A.T.A) Laboratory. His research interests are in formalizing system design processes under the paradigm of knowledge discovery, optimization, data mining, and informatics. His research interests include applications in complex sys- tems design and operation, product portfolio/family design, and sustainable system design optimization in the areas
Paper ID #14801Teaching Practices Inventory for Engineering EducationDr. Sheng-Jen ”Tony” Hsieh, Texas A&M University Dr. Sheng-Jen (”Tony”) Hsieh is a Professor in the Dwight Look College of Engineering at Texas A&M University. He holds a joint appointment with the Department of Engineering Technology and the De- partment of Mechanical Engineering. His research interests include engineering education, cognitive task analysis, automation, robotics and control, intelligent manufacturing system design, and micro/nano manufacturing. He is also the Director of the Rockwell Automation laboratory at Texas A&M
, Unaffiliated Debra Gilbuena has an M.BA, an M.S, and four years of industrial experience including a position in sensor development. Sensor development is also an area in which she holds a patent. She has engineering Page 26.1258.1 education research focused on student learning in virtual laboratories and the diffusion of educational interventions and practices.Mr. Gavin Tierney, University of Washington c American Society for Engineering Education, 2015 Paper ID #11529Gavin Tierney is a Ph.D
educators who are willing to use our cyber security and cryptographylabs.In the future work, we plan on adopting large-scale cyber security lab modules through theintegration of the Global Environment for Network Innovations (GENI) and the currentlydeveloped lab modules, where GENI is a real-world, at-scale, programmable, and virtualnetworking-enabled laboratory for experiments in a variety of computer science and engineeringareas such as cyber security and networking. GENI testbed is sponsored by the National ScienceFoundation (NSF) [1], [2], and [3]. Student Performance Improvement over Semesters 105 Spring 18 Spring 19 100 95
research and laboratory skills [8, 12, 16, 17] result in an improved understandingand interest for the discipline. However, in spite of a number of studies showing that earlyengagement offers the greatest benefits [9, 10, 18], the vast majority (91%) of REU participants arejuniors and seniors, as highlighted in a recent extensive evaluation of REU programs by SRIInternational [9]. The report recommends a shift in this balance through greater engagement of Page 23.487.2lower division students, as there is a strong correlation between longer research participation andpositive benefits for students, including improved student retention and
Built Environ- ment at Arizona State University (ASU). Kristen’s work focuses on integrating energy efficiency measures into building design, construction, and operations processes. Specifically, she is interested in novel design processes that financially and technically facilitate energy-efficient buildings. Her work also explores how principles of lean manufacturing facilitate energy-efficiency in the commercial building industry. Another research interest of Kristen’s is engineering education, where she explores how project- and experience-based learning foster better understanding of engineering and management principles. Prior to joining ASU, Kristen was at the Lawrence Berkeley National Laboratory (LBNL) as a
advanced battery systems for hybrid electric vehicles. Yeh is also experienced in developing formal degree programs and profes- sional development programs for incumbent engineers, community college instructors, and high school science and technology teachers. He is the PI and Co-PI of several federal- and state-funded projects for course, curriculum, and laboratory development in advanced automotive technology.Dr. Gene Yeau-Jian Liao, Wayne State University Y. Gene Liao is currently Director of the Electric Transportation Technology program and Associate Pro- fessor of engineering technology at Wayne State University. He received a B.S. in mechanical engineering from National Central University, Taiwan, a M.S. in
). Finally, a contact database from previous Letters of Reference for REU applicants was created. These faculty members are contacted directly and asked to consider their current students for the REU program and to encourage them to apply.Diversity of participants:As a result of our recruitment efforts and value based on attracting applicants from historicallyunderrepresented groups for the purpose of increasing diversity in STEM, our participantsrepresent a diverse and inclusive community. Having a diverse group of participants each yearenhances the learning experience for all student participants, helps to build an inclusive researchenvironment for our laboratories, and provides an opportunity for mentors to work with anincreasingly
and served in several ad- ministrative roles within higher education; secured over $5.5M funding and support for STEM education research; and led several program development efforts, including: a childcare facility at a federal research laboratory, STEM K-12 teacher training programs, a Molecular Biology/Biotechnology master’s degree program at a small internationally-focused teaching institution, as well as a first-year engineering program and a B.S. Engineering Technology degree program at an R1 research institution. She has been recognized for her teaching, advising, and service, and as an Exemplary Faculty Member for Excellence in Diversity, Equity, and Inclusion.Dr. David A. Wyrick PE, CPEM, West Virginia
Paper ID #34076Toward a Quantitative Engagement Monitor for STEM EducationDr. Aly A. Farag, University of Louisville Aly Farag, Fellow, IEEE and IAPR: received B.S. in EE from Cairo Univ. M.S. in Bioengineering from the Ohio State and the Univ. of Michigan, and PhD in EE from Purdue. He is a Prof. of ECE at the Univ. of Louisville, and director of the Computer Vision & Image Processing Laboratory, focusing on research and teaching in computer vision, biometrics and biomedical imaging. He introduced over 13 new courses into the ECE curriculum, authored over 400 papers, edited two volumes on deformable models and a
descriptors, but expansive enough that itcould be easily interpreted and applicable across STEM disciplines. Furthermore, through manydetailed discussions with the PCT before and during classroom implementation, the appearanceand structure of the rubrics were optimized in order to be used efficiently as an assessment toolin classrooms.We have established that each rubric can distinguish among different levels of evidence for thetargeted process skills, and that each category of the rubric assesses different aspects of the skill.Figure 3 illustrates the use of the problem solving rubric to assess student laboratory reports in ananalytical chemistry laboratory course. The results indicate that each category measures a rangeof student achievement and
- eral agencies including the National Science Foundation, the U.S. Department of Energy, the Department of the Interior, Department of Transportation, the Department of Education, and the Los Alamos National Laboratory, as well as industry organizations and partners, such as the National Masonry Concrete Associ- ation and Nucor. She serves as the director of the National Science Foundation-funded Tigers ADVANCE project, which focuses on improving the status of women and minority faculty at Clemson. In addition, Dr. Atamturktur is the director of the National Science Foundation-funded National Research Traineeship project at Clemson, with funding for over 30 doctoral students and a goal of initiating a new degree pro
- gineering and a Courtesy Professor of Biomedical Engineering and Mechanical Engineering. Since Oct. 2007, he joined the University of Illinois at Urbana-Champaign and was the Abel Bliss Professor of En- gineering, and Professor of Electrical and Computer Engineering & Bioengineering. He was the Director of the Micro and Nanotechnology Laboratory (mntl.illinois.edu), a campus-wide clean room facility from Oct 2007 to Aug 2013 and the Co-Director of the campus-wide Center for Nanoscale Science and Tech- nology (www.cnst.illinois.edu), a ”collaboratory” aimed at facilitating center grants and large initiatives around campus in the area of nanotechnology. Since Aug 2013, he has been the head of the Bioengineer- ing
. He is a Fellow of the IEEE and Member of Washington State Academy of Sciences.Dr. Robert G. Olsen, Washington State University Prof. Olsen received the BS degree in electrical engineering from Rutgers University, New Brunswick, NJ in 1968 and the MS and Ph.D. degrees in electrical engineering from the University of Colorado, Boulder, CO in 1970 and 1974 respectively. While in Boulder, he worked for Westinghouse Georesearch Laboratory. He has been a member of the electrical engineering faculty at Washington State University since 1973 and holds the rank of professor. Between 2003 and 2013, he served as the Associate Dean for Undergraduate Programs and Student Services at Washington State University. He has been an
Miller Excellence in Teaching Award in 2016, the NSERC Postdoctoral Fellowship in 2011, and the Dennis Woodford prize for his M.Sc. thesis in 2007. He was a Connaught Scholar at the University of Toronto.Dr. Robert G. Olsen, Washington State University Prof. Olsen received the BS degree in electrical engineering from Rutgers University, New Brunswick, NJ in 1968 and the MS and Ph.D. degrees in electrical engineering from the University of Colorado, Boulder, CO in 1970 and 1974 respectively. While in Boulder, he worked for Westinghouse Georesearch Laboratory. He has been a member of the electrical engineering faculty at Washington State University since 1973 and holds the rank of professor. Between 2003 and 2013, he
over the Internet, computer-based learning increasingly happen in students’ personalspaces (e.g., homes, apartments), as opposed to public learning spaces (e.g., laboratories,libraries). In these personal spaces, it is difficult for students to get help from classmates orteaching assistants (TAs) when encountering problems. As a result, collaborative learning isdifficult and rare. This is especially true for urban universities such as Georgia State Universitywhere a significant portion of students are part-time students and/or commute. To address thisissue, we intend to broaden the concept of “virtual computer lab” to include general computer-based learning happening in “virtual space,” which is any location where people can meet
an Associate Professor of Electrical and Computer Engineering at Rose-Hulman Institute of Technology. She teaches courses in circuits, electromagnetics, and medical imaging. Before joining academia in 2006, she was at the Computed Tomography Laboratory at GE’s Global Research Center for 8 years. She worked on several technology development projects in the area of X-ray CT for medical and industrial imaging. She is a named inventor on 9 patents. She has been active in the recruitment and retention of women and minorities in engineering and currently PI for an NSF-STEM grant to improve diversity at Rose-Hulman.Dr. Kathleen Meehan, Virginia Tech Kathleen Meehan earned her B.S. in electrical engineering from Manhattan