Industry 4.0 technologies assessment: A sustainability perspective

International Journal of Production Economics - Tập 229 - Trang 107776 - 2020
Chunguang Bai1, Patrick Dallasega2, Guido Orzes2, Joseph Sarkis3,4
1School of Management and Economics, University of Electronic Science and Technology of China, No. 2006, Xiyuan Ave, West Hi-Tech Zone, 611731, Chengdu, PR China
2Faculty of Science and Technology, Free University of Bozen-Bolzano, Piazza Università, 5, 39100 Bolzano, Italy
3Foisie Business School, Worcester Polytechnic Institute, 100 Institute Road, Worcester, MA 01609-2280, USA
4The Humlog Institute, Hanken School of Economics, Helsinki, Finland

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Annunziato, 2015, 5G vision: NGMN-5G initiative, 1

Awasthi, 2016, Green supplier development program selection using NGT and VIKOR under fuzzy environment, Comput. Ind. Eng., 91, 100, 10.1016/j.cie.2015.11.011

Beltrami M., & Orzes G., 2019. Industry 4.0 and sustainability: a systematic literature review, In: Decision Sciences in a Connected World. Proceedings of the 10th Annual EDSI Conference.

Bai, 2013, Green information technology strategic justification and evaluation, Inf. Syst. Front, 15, 831, 10.1007/s10796-013-9425-x

Bai, 2017, Improving green flexibility through advanced manufacturing technology investment: modeling the decision process, Int. J. Prod. Econ., 188, 86, 10.1016/j.ijpe.2017.03.013

Bai, 2019, Integrating and extending data and decision tools for Sustainable third-party reverse logistics provider selection, Comput. Oper. Res., 110, 188, 10.1016/j.cor.2018.06.005

Bai, 2020, A supply chain transparency and sustainability technology appraisal model for blockchain technology, Int. J. Prod. Res., 1

Bai, 2017, An implementation path for green information technology systems in the Ghanaian mining industry, J. Clean. Prod., 164, 1105, 10.1016/j.jclepro.2017.05.151

Byrum

Cocco, 2017, Banking on blockchain: costs savings thanks to the blockchain technology, Future Internet, 9, 25, 10.3390/fi9030025

Dalenogare, 2018, The expected contribution of Industry 4.0 technologies for industrial performance, Int. J. Prod. Econ., 204, 383, 10.1016/j.ijpe.2018.08.019

de Sousa Jabbour, 2018, When titans meet–Can industry 4.0 revolutionise the environmentally-sustainable manufacturing wave? The role of critical success factors, Technol. Forecast. Soc. Change, 132, 18, 10.1016/j.techfore.2018.01.017

Dremel, 2018, Understanding the value and organizational implications of big data analytics: the case of AUDI AG, J. Inf. Technol. Teach. Cases, 8, 126, 10.1057/s41266-018-0036-8

Elkington, 1998, Partnerships from cannibals with forks: the triple bottom line of 21st‐century business, Environ. Qual. Manag., 8, 37, 10.1002/tqem.3310080106

Erdogan, 2018, Selecting the best strategy for industry 4.0 applications with a case study, 109

Frank, 2019, Industry 4.0 technologies: implementation patterns in manufacturing companies, Int. J. Prod. Econ., 210, 15, 10.1016/j.ijpe.2019.01.004

Gabriel, 2016, Industry 4.0 and sustainability impacts: critical discussion of sustainability aspects with a special focus on future of work and ecological consequences, Ann. Fac. Eng. Hunedoara, 14, 131

Gibson, 2014, vol. 17

Griggs, 2013, Policy: sustainable development goals for people and planet, Nature, 495, 305, 10.1038/495305a

Grigoras, 2018, June). ICT based smart management solution to realize water and energy savings through energy efficiency measures in water distribution systems, 1

Hajjdiab, 2018, A food wastage reduction mobile application, 152

Hofmann, 2017, Industry 4.0 and the current status as well as future prospects on logistics, Comput. Ind., 89, 23, 10.1016/j.compind.2017.04.002

Ibarra, 2018, Business model innovation through Industry 4.0: a review, Procedia Manuf., 22, 4, 10.1016/j.promfg.2018.03.002

Isaias, 2015, Outlining the issues of cloud computing ans sustainability opportunities and risks in European organizations: a SEM study, J. Electron. Commer. Org., 13, 1, 10.4018/JECO.2015100101

Jeschke, 2017, Industrial internet of things and cyber manufacturing systems, 3

Kagermann, 2011

Kamble, 2018, Sustainable Industry 4.0 framework: a systematic literature review identifying the current trends and future perspectives, Process Saf. Environ. Protect., 117, 408, 10.1016/j.psep.2018.05.009

Kamble, 2018, Analysis of the driving and dependence power of barriers to adopt industry 4.0 in Indian manufacturing industry, Comput. Ind., 101, 107, 10.1016/j.compind.2018.06.004

Kiel, 2017, Sustainable industrial value creation: benefits and challenges of industry 4.0, Int. J. Innovat. Manag., 21, 1740015, 10.1142/S1363919617400151

Kim, 2019, Analyzing online car reviews using text mining, Sustainability, 11, 1611, 10.3390/su11061611

Lanis, 2012, Corporate social responsibility and tax aggressiveness: a test of legitimacy theory. Accounting, Audit. Account. J., 26, 75, 10.1108/09513571311285621

Liao, 2017, Past, present and future of Industry 4.0-a systematic literature review and research agenda proposal, Int. J. Prod. Res., 55, 3609, 10.1080/00207543.2017.1308576

Lin, 2017, A cross-strait comparison of innovation policy under industry 4.0 and sustainability development transition, Sustainability, 9, 786, 10.3390/su9050786

Lu, 2017, Industry 4.0: a survey on technologies, applications and open research issues, J. Ind. Inf. Integrat., 6, 1

Luthra, 2018, Evaluating challenges to Industry 4.0 initiatives for supply chain sustainability in emerging economies, Process Saf. Environ. Protect., 117, 168, 10.1016/j.psep.2018.04.018

Lyons, 2018, Getting smart about urban mobility–aligning the paradigms of smart and sustainable, Transport. Res. Pol. Pract., 115, 4, 10.1016/j.tra.2016.12.001

2018

Morrar, 2017, The fourth industrial revolution (Industry 4.0): A social innovation perspective, Technol. Innovat. Manag. Rev., 7, 12, 10.22215/timreview/1117

Müller, 2018, What drives the implementation of Industry 4.0? The role of opportunities and challenges in the context of sustainability, Sustainability, 10, 247, 10.3390/su10010247

Munro, 2003, On the theory of reference-dependent preferences, J. Econ. Behav. Organ., 50, 407, 10.1016/S0167-2681(02)00033-1

Opricovic, 2004, Compromise solution by MCDM methods: A comparative analysis of VIKOR and TOPSIS, Eur. J. Oper. Res., 156, 445, 10.1016/S0377-2217(03)00020-1

Park, 2010, Creating integrated business and environmental value within the context of China's circular economy and ecological modernization, J. Clean. Prod., 18, 1494, 10.1016/j.jclepro.2010.06.001

Posada, 2015, Visual computing as a key enabling technology for industrie 4.0 and industrial internet, IEEE Comput. Graph. Appl., 35, 26, 10.1109/MCG.2015.45

Prelec, 2000, 67

Robert, 2005, What is sustainable development? Goals, indicators, values, and practice, Environment, 47, 8

Rojko, 2017, Industry 4.0 concept: background and overview, Int. J. Interact. Mobile Technol. (iJIM), 11, 77, 10.3991/ijim.v11i5.7072

Rüßmann, 2015, Industry 4.0: the future of productivity and growth in manufacturing industries, Boston Consulting Group, 9, 54

Saberi, 2019, Blockchain technology and its relationships to sustainable supply chain management, Int. J. Prod. Res., 57, 2117, 10.1080/00207543.2018.1533261

Sambo, 2019, Hydroponic solutions for soilless production systems: issues and opportunities in a smart agriculture perspective, Front. Plant Sci., 10, 923, 10.3389/fpls.2019.00923

Sarkis, 2018, Environmental sustainability and production: taking the road less travelled, Int. J. Prod. Res., 56, 743, 10.1080/00207543.2017.1365182

Schniederjans, 2016, Cloud computing and its impact on economic and environmental performance: a transaction cost economics perspective, Decis. Support Syst., 86, 73, 10.1016/j.dss.2016.03.009

Shrouf, 2014, Smart factories in Industry 4.0: a review of the concept and of energy management approached in production based on the Internet of Things paradigm, 697

Spaiser, 2017, The sustainable development oxymoron: quantifying and modelling the incompatibility of sustainable development goals, Int. J. Sustain. Dev. World Ecol., 24, 457, 10.1080/13504509.2016.1235624

Stock, 2016, Opportunities of sustainable manufacturing in industry 4.0, Procedia Cirp, 40, 536, 10.1016/j.procir.2016.01.129

Torra, 2009, On hesitant fuzzy sets and decision, 1378

Tseng, 2018, Circular economy meets industry 4.0: can big data drive industrial symbiosis?, Resour. Conserv. Recycl., 131, 146, 10.1016/j.resconrec.2017.12.028

Tversky, 1992, Advances in prospect theory: cumulative representation of uncertainty, J. Risk Uncertain., 5, 297, 10.1007/BF00122574

Wan, 2015, January). Industrie 4.0: enabling technologies, 135

Wang, 2017, Industry 4.0: a way from mass customization to mass personalization production, Adv. Manuf., 5, 311, 10.1007/s40436-017-0204-7

1987

Wei, 2012, Hesitant fuzzy prioritized operators and their application to multiple attribute decision making, Knowl. Base Syst., 31, 176, 10.1016/j.knosys.2012.03.011

Witkowski, 2017, Internet of things, big data, industry 4.0–innovative solutions in logistics and supply chains management, Procedia Eng., 182, 763, 10.1016/j.proeng.2017.03.197

2018

Xu, 2011, Distance and similarity measures for hesitant fuzzy sets, Inf. Sci., 181, 2128, 10.1016/j.ins.2011.01.028

Xu, 2018, Industry 4.0: state of the art and future trends, Int. J. Prod. Res., 56, 2941, 10.1080/00207543.2018.1444806

Zhang, 2019, Application of blockchain technology in incentivizing efficient use of rural wastes: a case study on yitong system, Energy Procedia, 158, 6707, 10.1016/j.egypro.2019.01.018