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- Systems Engineering Division Technical Session 1
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H. Bryan Riley, Clemson University
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Systems Engineering
Paper ID #34926Design and Manufacturability of Medical Ventilators from the Perspectiveof a Global Automotive FootprintDr. H. Bryan Riley, Clemson University H. Bryan Riley Ph.D., joined Clemson University in July 2019 and currently teaches controls and man- ufacturing processes courses. He has taught courses in signal processing, electrical communication sys- tems, EE capstone design, electric machines, adaptive signal processing, and hybrid and electric vehicles. Riley, who spent his early career in the automotive industry, has managed multi-disciplined and global en- gineering teams responsible for introducing advanced
- Conference Session
- Systems Engineering Division Technical Session 2
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Marsha Lovett, Carnegie Mellon University; Mark David Bedillion, Carnegie Mellon University; Cassandra M. Birrenkott, South Dakota School of Mines and Technology; Karim Heinz Muci-Kuchler, South Dakota School of Mines and Technology; Laura Ochs Pottmeyer, Carnegie Mellon University
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Systems Engineering
graduate level, has over 50 publications, is co-author of one book, and has done consulting for industry in Mexico and the US. He can be reached at Karim.Muci@sdsmt.edu.Dr. Laura Ochs Pottmeyer, Carnegie Mellon University Laura Pottmeyer is a Data Science Research Associate at Carnegie Mellon University’s Eberly Center for Teaching Excellence and Educational Innovation. She consults with faculty members and graduate students on implementing educational research projects. She assists with study design, data collection, and data analysis. Laura’s training includes a Ph.D. in Science Education and M.Ed. in Educational Psychology from the University of Virginia, where she studied the impact of engineering design integrated
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- Systems Engineering Division Technical Session 1
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Tahsin Mahmud Chowdhury, Virginia Polytechnic Institute and State University; Sreyoshi Bhaduri, McGraw Hill ; Homero Murzi, Virginia Polytechnic Institute and State University
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Systems Engineering
senior design or capstone projects,” ASEE Annual. Conf. Expo. Conf. Proc., vol. 2018-June, no. July, 2018.[20] S. Gillespie and A. Maccalman, “A Case Study in Developing an Integrated Data and Model Management System for the Development of a Complex Engineered System,” in 2018 IEEE Technology and Engineering Management Conference, 2018.[21] K. Laitinen and M. Valo, “Meanings of communication technology in virtual team meetings: Framing technology-related interaction,” Int. J. Hum. Comput. Stud., vol. 111, pp. 12–22, 2018.[22] R. Khan, C. Whitcomb, and C. White, “Self-efficacy analysis of student learning in systems engineering,” ASME Int. Mech. Eng. Congr. Expo. Proc., vol. 5, 2016.[23] E
- Conference Session
- Systems Engineering Division Technical Session 2
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- 2021 ASEE Virtual Annual Conference Content Access
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Cassandra M. Birrenkott, South Dakota School of Mines and Technology; Karim Heinz Muci-Kuchler, South Dakota School of Mines and Technology; Mark David Bedillion, Carnegie Mellon University; Marsha Lovett, Carnegie Mellon University; Laura Ochs Pottmeyer, Carnegie Mellon University
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Systems Engineering
articles in this area, co-authored the book How Learning Works: 7 Research-Based Principles for Smart Teaching, and developed several innovative, educational technologies, including StatTutor and the Learning Dashboard.Dr. Laura Ochs Pottmeyer, Carnegie Mellon University Laura Pottmeyer is a Data Science Research Associate at Carnegie Mellon University’s Eberly Center for Teaching Excellence and Educational Innovation. She consults with faculty members and graduate students on implementing educational research projects. She assists with study design, data collection, and data analysis. Laura’s training includes a Ph.D. in Science Education and M.Ed. in Educational Psychology from the University of Virginia, where she
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- Systems Engineering Division Technical Session 1
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Jon Sticklen, Michigan Technological University; Natalie Green, Michigan Technological University
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Systems Engineering
sophomore course that examined global engineering interests and exposed students to constant training-by-doing in oral communication and a cooperative teaming approach for problem solving which led to greater student aptitude in teaming environments in general. In addition, a new junior-level course was designed that was grounded in systems approaches to problem-solving that featured modeling with STELLA™(ISEE SYSTEMS.com) in a context of a progression of mini-projects to tackle ever-moredifficult systems. The third direct class was a senior capstone project class that is typical for mostengineering disciplines. The twist in this program was that the sponsors for the capstone projectswere drawn from
- Conference Session
- Systems Engineering Division Technical Session 1
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- 2021 ASEE Virtual Annual Conference Content Access
- Authors
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Mark David Bedillion, Carnegie Mellon University; Karim Heinz Muci-Kuchler, South Dakota School of Mines and Technology; Cassandra M. Birrenkott, South Dakota School of Mines and Technology; Marsha Lovett, Carnegie Mellon University; Laura Ochs Pottmeyer, Carnegie Mellon University
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Systems Engineering
need to infuse fundamental systems engineering topics / conceptsthroughout conventional engineering curricula.Teaching systems engineering to undergraduate students is difficult for several reasons, amongthem students’ lack of experience in interacting with diverse stakeholders and preference for thewell-defined problems common in engineering curricula 1,2 . In the mechanical engineeringdiscipline there have been efforts to incorporate systems thinking activities in courses rangingfrom the freshman level 3 to the senior capstone course 4 , including several by the authors 5,6,7,8 .The work in this paper targets freshman students, and hence is most closely related to 7,8,3 . Itdiffers from prior efforts by taking a flipped classroom approach