Submitted:
17 October 2025
Posted:
20 October 2025
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Materials and Methods
| Indices | |
| M | Pieces in kg (m=1,...,M) |
| i | Product type (i=1,...,I) |
| j | HT dyeing machines (j=1,...,J) |
| C | Planning cycles (c=1,...C) |
| Sets | |
| m ∈ M | Set of all tissues |
| i ∈ I | Set of all products |
| j ∈ J | Set of all HT dyeing machines |
| c ∈ C | Set of all cycles |
| Parameters | |
| Production forecast for mesh m | |
| Electricity cost to process product i on machine j | |
| Water cost to process product i on machine j | |
| Maximum capacity to process product i on machine j | |
| Minimum capacity to process product i on machine j | |
| Maximum daily production limit for product i | |
| Minimum daily production limit for product i | |
| Processing time (in hours) per batch of product i | |
| Continuous variables | |
| Total dyeing cost (objective variable) | |
| mass (kg) of product type i processed on machine j in cycle c | |
| mass (kg) of mesh m available at the beginning of cycle c | |
| mass (kg) of mesh m actually processed in cycle c | |
| Total mass of product type i processed in cycle c | |
| Total mass of product type i processed in all cycles | |
| Total cost related to machine j in all cycles | |
| Total cost of electricity | |
| Total cost of water | |
| Number of batches required to process product i | |
| Total time (h) required to process product i | |
| Binary variable | |
| It is equal to 1 if product i is processed on machine j in cycle c, and equal to 0 otherwise |
3. Case Study
4. Conclusions
Author Contributions
Acknowledgments
References
- Ahmetović, E., Ibrić, N., Kravanja, Z. and Grossmann, I.E., 2015. Water and energy integration: A comprehensive literature review of non-isothermal water network synthesis. Computers and Chemical Engineering, 82, pp.144-171. 144–171. [CrossRef]
- ANEEL - Agência Nacional de Energia Elétrica, 2023. Reajuste tarifário da COPEL 2024. Processo nº 48500.010990/2023-17. Disponível em: https://www2.aneel.gov.br/cedoc/reh20243336ti.pdf [Acesso em: 10 jul. 2024].
- Çifçi, D.İ., 2023. Fe-Mn-textile waste synthesis for COD and color removal from textile wastewater by UV/S2O82− oxidation. International Journal of Environmental Science and Technology, v. 20, p. 7313–7324. [CrossRef]
- Clark, M. (ed.), 2011. Handbook of Textile and Industrial Dyeing: Principles, Processes and Types of Dyes. v. 1. Cambridge: Woodhead Publishing.
- El Hachemi, N. , Saddoune, M., El Hallaoui, I. and Rousseau, L.-M., 2013. Production scheduling and routing problem in the textile industry. In: Industrial Engineering and Systems Management (IESM), Proceedings of 2013 International Conference On, pp.1-4.
- Estévez, S., Mosca Angelucci, D., Moreira, M.T. and Tomei, M.C., 2024. Techno-environmental and economic assessment of color removal strategies from textile wastewater. Science of the Total Environment, 913, 169721. [CrossRef]
- Gao, S. et al., 2024. Dyeing scheduling optimization in a multi-machine system with resource constraints. Journal of Physics: Conference Series, v. 2853, p. 012058. [CrossRef]
- Hansen, É., Rodrigues, M.A.S., Aragão, M.E. and De Aquim, P.M., 2018. Water and wastewater minimization in a petrochemical industry through mathematical programming. Journal of Cleaner Production, 172, pp.1814-1822. [CrossRef]
- Hashim, M. et al., 2022. Modeling supply chain sustainability-related risks and vulnerability: insights from the textile sector of Pakistan. Autex Research Journal, v. 22, p. 123–134. [CrossRef]
- Hussain, T. and Wahab, A., 2018. A critical review of the current water conservation practices in textile wet processing. Journal of Cleaner Production, 198, pp.806-819. [CrossRef]
- IEMI – Inteligência de Mercado, 2023. Relatório Setorial da Indústria Têxtil Brasileira – Brasil Têxtil 2023. v.23. São Paulo: IEMI, ABIT, Senai CETIQT.
- Khandegar, V. and Saroha, A.K., 2013. Electrocoagulation for the treatment of textile industry effluent - A review. Journal of Environmental Management, 128, pp.949-963. [CrossRef]
- Klemeš, J.J., Varbanov, P.S. and Kravanja, Z., 2013. Recent developments in Process Integration. Chemical Engineering Research and Design, 91(10), pp.2037-2053. [CrossRef]
- Ozturk, E., Koseoglu, H., Karaboyacı, M., Yigit, N.O., Yetis, U. and Kitis, M., 2016. Sustainable textile production: cleaner production assessment/eco-efficiency analysis study in a textile mill. Journal of Cleaner Production, 138, pp.248-263. [CrossRef]
- Ozturk, E., Cimperi, N.C. and Kitis, M., 2020. Environmental Science and Pollution Research, 27(36), pp.45358-45373. [CrossRef]
- Pinto, N.M.C. and Leão, M.M.D., 2005. Produção mais Limpa na indústria têxtil de acabamento de malhas: uso da água. In: Congresso Brasileiro de Engenharia Sanitária e Ambiental, 23., 2005. Anais. Campo Grande: ABES. Disponível em: http://www.bvsde.paho.org/bvsacd/abes23/II-408.pdf [Acesso em: 25 mar. 2022].
- Roos, S. et al., 2019. An inventory framework for inclusion of textile chemicals in life cycle assessment. The International Journal of Life Cycle Assessment, 24, pp.838-847. [CrossRef]
- SABESP - Companhia de Saneamento Básico do Estado de São Paulo, 2023. Comunicado – 5/23: Tarifas e condições para fornecimento de água e coleta de esgotos no Município de Lins a partir de 26 de janeiro de 2024. 28 de dezembro de 2023. Disponível em: https://www.sabesp.com.br/assets/pdf/servicos/para-voce/comunicado_5_23.pdf.
- Saravanan, S., Chakraborty, P.S., Nallusamy, S. and Kumar, V., 2023. A proposed model for productivity improvement by implementation of lean manufacturing techniques in a textile industry. International Journal of Mechanical Engineering, 10(8), pp.31-48. [CrossRef]
- Sung, C. e Maravelias, C.T., 2008. A mixed-integer programming formulation for the general capacitated lot-sizing problem. Computers and Chemical Engineering, v. 32, n. 1-2, p. 244–259. [CrossRef]
- Villas Boas, B.E., Camargo, V.C.B. e Morabito, R., 2021. Modeling and MIP-heuristics for the general lotsizing and scheduling problem with process configuration selection. Pesquisa Operacional, v. 41, n. spe, p. 1–29. [CrossRef]
- Wagner, H. and Whitin, T., 1958. Dynamic version of the economic lot size model. Management Science, 5, pp.89-96. [CrossRef]
- Zhang, S. et al., 2023. Environmental assessment of fabric wet processing from gate-to-gate perspective: comparative study of weaving and materials. Science of the Total Environment, v. 857. [CrossRef]
- Zhou, L., Xu, K., Cheng, X., Xu, Y. and Jia, Q., 2017. Study on optimizing production scheduling for water-saving in textile dyeing industry. Journal of Cleaner Production, 141, pp.721-727. [CrossRef]


| Machine | Mass (kg) |
Power (kW/h) |
|
| Minimum | Maximum | ||
| HT1 - HT2 | 20 | 25 | 6.84 |
| HT3 - HT6 | 120 | 150 | 12.45 |
| HT7 - HT11 | 240 | 300 | 22.78 |
| HT12 - HT15 | 360 | 450 | 32.77 |
| HT16 | 480 | 600 | 42.36 |
| Machine | Cotton | Polyester | Polyamide |
| HT1 - HT2 | R$1.50 | R$0.94 | R$1.12 |
| HT3 - HT6 | R$0.46 | R$0.28 | R$0.34 |
| HT7 - HT11 | R$0.42 | R$0.26 | R$0.31 |
| HT12 - HT15 | R$0.40 | R$0.25 | R$0.30 |
| HT16 | R$0.39 | R$0.24 | R$0.29 |
| Tissue | total mass (kg) | % of the production | Number of lots | Total time (h) |
| Cotton | 45,900 | 42.1% | 11 | 88 |
| Polyester | 30,100 | 27.6% | 7 | 35 |
| Polyamide | 33,000 | 30.3% | 8 | 48 |
| Total | 109,000 | 100% | 26 | 171 |
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