1. Current waste management scenarios across different countries try to adopt the
proposed conceptual framework to improve the textile manufacturing technique.
2. Adopt the new technology for the development of better textile products, simultaneously to reduce waste effluents.
3. The decision-making approach is also one of the major criteria to implement as
early as possible in a different part of the textile sectors.
4. A standard feasible approach may be required to develop an effective utilization
of recycled wastewater as well as raw materials in the same textile processing
applications or different sector applications.
5. The proposed ten criteria can also play a significant role in obtaining sustainable
management policy and manufactures as well as improve the socioeconomic
conditions.
References
Annual report, Ministry of Textiles (2017) Indian Textile Journal, Department of Industrial Policy
and Promotion, Press Information Bureau, Union Budget
Aragonés-Beltrán P, Mendoza-Roca JA, Bes-Piá A, García-Melón M, Parra-Ruiz E (2009) Application of multicriteria decision analysis to jar-test results for chemicals selection in the physical–
chemical treatment of textile wastewater. J Hazard Mater 164(1):288–295
Austgulen MH (2016) Environmentally sustainable textile consumption—what characterizes the
political textile consumers? J Consum Policy 39(4):441–466
Aydiner C, Sen U, Koseoglu-Imer DY, Dogan EC (2016) Hierarchical prioritization of innovative
treatment systems for sustainable dairy wastewater management. J Clean Prod 112:4605–4617
Babaei AA, Kakavandi B, Rafiee M, Kalantarhormizi F, Purkaram I, Ahmadi E, Esmaeili S (2017)
Comparative treatment of textile wastewater by adsorption, Fenton, UV-Fenton and US-Fenton
using magnetic nanoparticles-functionalized carbon (MNPs@ C). JIndus Eng Chem
56:163–174
Beltrán PA, Mendoza-Roca JA, Bes-Piá A, García-Melón M, Parra-Ruiz E (2009) Application of
multicriteria decision analysis to jar-test results for chemicals selection in the physical-chemical
treatment of textile wastewater. J Hazard Mater 15:288–295
Bilińska L, Gmurek M, Ledakowicz S (2017) Textile wastewater treatment by AOPs for brine
reuse. Process Safe Environ Prot 109:420–428
Bossle MB, de Barcellos MD, Vieira LM, Sauvée L (2016) The drivers for adoption of
eco-innovation. J Clean Prod 113:861–872
Cebeci U (2009) Fuzzy AHP-based decision support system for selecting ERP systems in textile
industry by using balanced scorecard. Expert Syst Appl 36(5):8900–8909
Çelikbilek Y, Tüysüz F (2016) An integrated grey based multi-criteria decision making approach
for the evaluation of renewable energy sources. Energy 115:1246–1258
Cheng CC, Yang CL, Sheu C (2014) The link between eco-innovation and business performance: a
Taiwanese industry context. J Clean Prod 64:81–90
Cinperi NC, Ozturk E, Yigit NO, Kitis M (2019) Treatment of woolen textile wastewater using
membrane bioreactor, nanofiltration and reverse osmosis for reuse in production processes. J
Clean Prod 223:837–848
Cohn M (2000) The WTO: a New World government dedicated to the principle that property
interests are more sacred than human rights. Guild Prac 57:134
Corsten M, Worrell E, Rouw M, Van Duin A (2013) The potential contribution of sustainable waste
management to energy use and greenhouse gas emission reduction in the Netherlands. Resour
Conserv Recycl 77:13–21
12 An Overview of Sustainability of Textile Wastewater Management in Textile. . .
299
Précédent

- 304/336

Suivant