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Journal articles on the topic 'Life of engineering'

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1

Mittal, Sonam, and Reena Saini. "Process Life Cycle of Usability Engineering." International Journal of Scientific Research 2, no. 9 (2012): 74–76. http://dx.doi.org/10.15373/22778179/sep2013/26.

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2

Evanko, Daniel. "Engineering life." Nature Methods 2, no. 9 (2005): 640. http://dx.doi.org/10.1038/nmeth0905-640.

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3

Osterle, Hubert. "Life engineering." Electronic Markets 30, no. 1 (2020): 49–52. http://dx.doi.org/10.1007/s12525-019-00388-1.

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4

Coenen, Christopher. "Engineering Life." NanoEthics 13, no. 3 (2019): 151–53. http://dx.doi.org/10.1007/s11569-019-00360-5.

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5

Bhave, Swati Y. "Life Partner Expectations: Young Female Engineering Students." Indian Journal of Youth & Adolescent Health 10, no. 4 (2023): 1–7. http://dx.doi.org/10.24321/2349.2880.202310.

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6

Thilmany, Jean. "Life, Meet Engineering." Mechanical Engineering 127, no. 07 (2005): 26–29. http://dx.doi.org/10.1115/1.2005-jul-1.

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This article focuses on the fact that as biosciences and engineering that continue to blend and merge, the technologies and methods used by professionals in both fields have come to overlap as well. There are plenty of mechanical engineers already engaged in developing devices and in other biomedical roles. Advances in the life sciences require that mechanical engineers get on board to help solve complicated biological problems. A mechanical engineer working on a CAD system cannot readily replicate the intricacies of the human body digitally. A bone designed on a BioCAD system needs to have it
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7

Kara, Sami. "Life cycle engineering: Applying life cycle knowledge to engineering solutions." CIRP Journal of Manufacturing Science and Technology 1, no. 4 (2009): 213. http://dx.doi.org/10.1016/j.cirpj.2009.07.001.

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8

Moreira, Júnior Apparício Ramalho. "Integration management – adaptive life cycle approach in solar plant construction project – experience report." Núcleo do Conhecimento 01, no. 09 (2021): 58–92. https://doi.org/10.32749/nucleodoconhecimento.com.br/engineering-mechanical-engineering/integration-management.

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The objective of this experience report was to present the solutions used in the Management Process of the Construction and Assembly project of a Solar Photovoltaic Plant in utilitarian scale, in complex, uncertain and conflicting contexts. As a leading issue, it is intended to demonstrate that new approaches adopted in the project reported here – distinct from the traditional model and practices – allowed the mitigation of the main problems common to construction projects, including divergences between executive project and field activity, delays in delivery and deadlines initially contracted
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9

Metzger, Stefan. "Life Engineering: „Dialog Luzern“." Informatik Spektrum 44, no. 4 (2021): 292–96. http://dx.doi.org/10.1007/s00287-021-01387-3.

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10

Ng, H. K. Tony. "Life Cycle Reliability Engineering." Technometrics 50, no. 1 (2008): 94–95. http://dx.doi.org/10.1198/tech.2008.s538.

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11

Oesterle, Hubert. "Business oder Life Engineering?" HMD Praxis der Wirtschaftsinformatik 51, no. 6 (2014): 744–61. http://dx.doi.org/10.1365/s40702-014-0097-x.

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12

Dudley, Amelia. "Experiencing Real-Life Engineering." Imagine 4, no. 3 (1997): 10–11. http://dx.doi.org/10.1353/imag.2003.0051.

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13

Firth, Nigel L. "Engineering a longer life." Nature 398, no. 6722 (1999): 19. http://dx.doi.org/10.1038/17901.

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14

Ellingwood, Bruce R. "Life-cycle civil engineering." Structure and Infrastructure Engineering 6, no. 3 (2010): 393–94. http://dx.doi.org/10.1080/15732470902940285.

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15

Ishii, K. "Life-Cycle Engineering Design." Journal of Mechanical Design 117, B (1995): 42–47. http://dx.doi.org/10.1115/1.2836469.

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Life-cycle engineering seeks to incorporate various product life-cycle values into the early stages of design. These values include functional performance, manufacturability, serviceability, and environmental impact. We start with a survey of life-cycle engineering research focusing on methodologies and tools. Further, the paper addresses critical research issues in life-cycle design tools: design representation and measures for life-cycle evaluation. The paper describes our design representation scheme based on a semantic network that is effective for evaluating the structural layout. Evaluat
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16

Ishii, K. "Life-Cycle Engineering Design." Journal of Vibration and Acoustics 117, B (1995): 42–47. http://dx.doi.org/10.1115/1.2838675.

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Life-cycle engineering seeks to incorporate various product life-cycle values into the early stages of design. These values include functional performance, manufacturability, serviceability, and environmental impact. We start with a survey of life-cycle engineering research focusing on methodologies and tools. Further, the paper addresses critical research issues in life-cycle design tools: design representation and measures for life-cycle evaluation. The paper describes our design representation scheme based on a semantic network that is effective for evaluating the structural layout. Evaluat
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17

Roy, Rajkumar, Andy Shaw, John A. Erkoyuncu, and Louis Redding. "Through-Life Engineering Services." Measurement and Control 46, no. 6 (2013): 172–75. http://dx.doi.org/10.1177/0020294013492283.

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18

Meeker, William. "Life Cycle Reliability Engineering." Journal of Quality Technology 40, no. 3 (2008): 345–48. http://dx.doi.org/10.1080/00224065.2008.11917739.

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19

Blanchard, Ben. "System Life Cycle Engineering." INSIGHT 8, no. 2 (2006): 9–10. http://dx.doi.org/10.1002/inst.2006829.

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20

Bley, Thomas, An-Ping Zeng, Atanas Pavlov, Kenneth F. Reardon, and Man Bock Gu. "Engineering in Life SciencesEditors." Engineering in Life Sciences 14, no. 1 (2014): 2–3. http://dx.doi.org/10.1002/elsc.201470014.

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21

Wang, Yingluo. "Engineering Methodology Based on Engineering Life Period." Journal of Engineering Studies 08, no. 05 (2016): 472–79. http://dx.doi.org/10.3724/sp.j.1224.2016.00472.

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22

Leiden, Alexander, Peter-Jochen Brand, Felipe Cerdas, Sebastian Thiede, and Christoph Herrmann. "Transferring life cycle engineering to surface engineering." Procedia CIRP 90 (2020): 557–62. http://dx.doi.org/10.1016/j.procir.2020.02.132.

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23

KAWADA, Yasutake, Kazuhiro YAMAMOTO, Shinichi FUKUSHIGE, and Yasushi UMEDA. "D22 Integrated Design Environment for Life Cycle Design(Life cycle engineering and environmentally conscious manufacturing)." Proceedings of International Conference on Leading Edge Manufacturing in 21st century : LEM21 2009.5 (2009): 507–10. http://dx.doi.org/10.1299/jsmelem.2009.5.507.

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24

Zhu, Xiaorui, and Jiaotou Lin. "Engineering Makes Our Life Better [Women in Engineering]." IEEE Robotics & Automation Magazine 20, no. 4 (2013): 161–62. http://dx.doi.org/10.1109/mra.2013.2283187.

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25

Davidson, J. F. "Life and Times in Engineering and Chemical Engineering." Annual Review of Chemical and Biomolecular Engineering 11, no. 1 (2020): 23–34. http://dx.doi.org/10.1146/annurev-chembioeng-011420-125935.

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John Davidson was widely recognized as the founding father of fluidization in chemical engineering. He was a great thinker and had a tremendous ability to distill complicated problems into much simpler concepts. Much of his thinking was set out, along with that of his coauthor David Harrison, in their book Fluidised Particles, first published in 1963, a book that is still used today. John was still coming into his office in Cambridge until the very last weeks of his life, where he continued to work with final-year undergraduates and graduate students. Fluidization, and two-phase flows, continu
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26

A Dwivedi, Atul, Prathamesh V Bagare, Ajay Dwivedi, and Sachin Gupta. "Engineering Economics and Life Cycle Cost Analysis of Green Building." International Journal of Scientific Engineering and Research 4, no. 11 (2016): 28–33. https://doi.org/10.70729/ijser151062.

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27

Pagel, Peter, Hubert Österle, Sara D’Onofrio, and Edy Portmann. "Interview zu Human Life Engineering." Informatik Spektrum 44, no. 4 (2021): 233–37. http://dx.doi.org/10.1007/s00287-021-01377-5.

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28

TAKAHASHI, Koji. "Control Engineering and Social Life." Journal of The Institute of Electrical Engineers of Japan 128, no. 7 (2008): 415–18. http://dx.doi.org/10.1541/ieejjournal.128.415.

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29

Honkonen, Risto. "Engineering education in life contexts." YOUNG 6, no. 3 (1998): 50–68. http://dx.doi.org/10.1177/110330889800600305.

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30

Fryer, T. "Life on Mars [Aerospace Engineering]." Engineering & Technology 13, no. 1 (2018): 42–46. http://dx.doi.org/10.1049/et.2018.0103.

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31

Allison, Michael. "Life as an Engineering Expatriate." Measurement and Control 32, no. 5 (1999): 136–38. http://dx.doi.org/10.1177/002029409903200502.

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32

Alting, Leo. "Life Cycle Engineering and Design." CIRP Annals 44, no. 2 (1995): 569–80. http://dx.doi.org/10.1016/s0007-8506(07)60504-6.

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33

Bardo, Bill. "Through-Life Engineering: An Introduction." Measurement and Control 46, no. 6 (2013): 171. http://dx.doi.org/10.1177/0020294013492282.

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34

Baitz, Martin, Rüdiger Hoffmann, and Manfred Russ. "Life cycle engineering im Automobilbau." Umweltwissenschaften und Schadstoff-Forschung 14, no. 2 (2002): 110–15. http://dx.doi.org/10.1065/uwsf2001.11.072.

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35

Wilson, J. L., S. J. Wagaman, D. A. Veshosky, C. G. Shi, P. Adury, and C. R. Beidleman. "Life-Cycle Engineering of Bridges." Computer-Aided Civil and Infrastructure Engineering 12, no. 6 (1997): 445–52. http://dx.doi.org/10.1111/0885-9507.00076.

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36

Nielsen, J. "The usability engineering life cycle." Computer 25, no. 3 (1992): 12–22. http://dx.doi.org/10.1109/2.121503.

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37

Smith, John C. "Engineering the Quality of Life." Clean Technologies and Environmental Policy 4, no. 1 (2002): 6–7. http://dx.doi.org/10.1007/s10098-002-0154-y.

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38

Bley, Thomas, Atanas Pavlov, Kenneth F. Reardon, and An-Ping Zeng. "Engineering in Life Sciences Editors." Engineering in Life Sciences 12, no. 1 (2012): 3. http://dx.doi.org/10.1002/elsc.201290002.

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39

Bley, Thomas, An-Ping Zeng, Atanas Pavlov, and Kenneth F. Reardon. "Engineering in Life Sciences Editors." Engineering in Life Sciences 13, no. 5 (2013): NA. http://dx.doi.org/10.1002/elsc.201370053.

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40

Kara, Sami, Christoph Herrmann, and Michael Hauschild. "Operationalization of life cycle engineering." Resources, Conservation and Recycling 190 (March 2023): 106836. http://dx.doi.org/10.1016/j.resconrec.2022.106836.

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41

Chopra, Paras, and Akhil Kamma. "Engineering Life through Synthetic Biology." In Silico Biology: Journal of Biological Systems Modeling and Multi-Scale Simulation 6, no. 5 (2006): 401–10. https://doi.org/10.3233/isb-00253.

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Synthetic Biology is a field involving synthesis of novel biological systems which are not generally found in nature. It has brought a new paradigm in science as it has enabled scientists to create life from the scratch, hence helping better understand the principles of biology. The viability of living organisms that use unnatural molecules is also being explored. Unconventional projects such as DNA playing tic-tac-toe, bacterial photographic film, etc. are taking biology to its extremes. The field holds a promise for mass production of cheap drugs and programming bacteria to seek-and-destroy
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42

Penciuc, Diana, Julien Le Duigou, Joanna Daaboul, Flore Vallet, and Benoît Eynard. "Product life cycle management approach for integration of engineering design and life cycle engineering." Artificial Intelligence for Engineering Design, Analysis and Manufacturing 30, no. 4 (2016): 379–89. http://dx.doi.org/10.1017/s0890060416000366.

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AbstractOptimized lightweight manufacturing of parts is crucial for automotive and aeronautical industries in order to stay competitive and to reduce costs and fuel consumption. Hence, aluminum becomes an unquestionable material choice regarding these challenges. Nevertheless, using only virgin aluminum is not satisfactory because its extraction requires high use of energy and effort, and its manufacturing has high environmental impact. For these reasons, the use of recycled aluminum alloys is recommended considering their properties meet the expected technical and environmental added values.
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43

Götze, U., P. Peças, A. Schmidt, et al. "Life Cycle Engineering and Management – Fostering the Management-orientation of Life Cycle Engineering Activities." Procedia CIRP 61 (2017): 134–39. http://dx.doi.org/10.1016/j.procir.2016.11.240.

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44

UMEDA, Yasushi, Shozo TAKATA, and Mitsutaka MATSUMOTO. "Technical Committee for Life Cycle Engineering: Life Cycle Engineering in the Era of Circular Economy." Journal of the Japan Society for Precision Engineering 85, no. 10 (2019): 817–20. http://dx.doi.org/10.2493/jjspe.85.817.

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45

Züst, R., G. Caduff, and B. Schumacher. "Life-Cycle Modelling as an Instrument for Life-Cycle Engineering." CIRP Annals 46, no. 1 (1997): 351–54. http://dx.doi.org/10.1016/s0007-8506(07)60841-5.

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46

Lawrence, Maria, Li-Ling Yang, May Briggs, Alicia Hession, Anita Koussa, and Lisa Wagoner. "Breathing life into engineering: A lesson study life science lesson." Science Activities: Classroom Projects and Curriculum Ideas 53, no. 4 (2016): 137–46. http://dx.doi.org/10.1080/00368121.2016.1211079.

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47

Li, Kaimeng, Jun Liang, Hengli Zhang, Jing Gao, Qingjun Wang, and Zhenzhong Wang. "Engineering Life Bodies: Life Cycle, Ecological Support and Health Diagnosis." Journal of Engineering Studies 17, no. 1 (2025): 7–18. https://doi.org/10.3724/j.issn.1674-4969.20250009.

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48

Burkhart, Mathias, and Jan C. Aurich. "Life Cycle Engineering mit Additive Manufacturing." ZWF Zeitschrift für wirtschaftlichen Fabrikbetrieb 109, no. 9 (2014): 612–15. http://dx.doi.org/10.3139/104.111195.

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49

SHIBATA, Takayuki. "Where Precision Engineering Meets Life Sciences." Journal of the Japan Society for Precision Engineering 84, no. 11 (2018): 887–91. http://dx.doi.org/10.2493/jjspe.84.887.

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50

Dusek, R. Valentine, David Suzuki, and Peter Knudtson. "Genethics: The Ethics of Engineering Life." Journal of Public Health Policy 14, no. 3 (1993): 371. http://dx.doi.org/10.2307/3343049.

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