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Evaluation of Environmental Performance of Chrome-Free Tanning Techniques of Paiche Skins (Arapaima gigas)

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Języki publikacji
EN
Abstrakty
EN
The leather production from paiche skins (Arapaima gigas) has recently grown in Peru, as this allows adding value and earnings from this Amazonian aquaculture waste. The development of this process requires that the tanning techniques could preserve environment as these are meant to take place in Amazonian zones. The present study evaluated the environmental performance of two chrome-free tanning techniques of paiche skins compared with traditional chrome tanning technique, developed at pilot scale by CITEccal Lima. The evaluation was carried out using environmental performance indicators (EPI), analyzed and compared using the grey clustering method, identifying coefficients (σ) respecting to the stablished classes in the study (λ1 – good, λ2 – regular, λ3 – deficient). As result, the two chrome-free tanning techniques showed a better environmental performance than the traditional chrome tanning technique (σ – 0.54, class λ2). The optimized tanning technique applying phenolic compounds had the best environmental performance (σ – 0.98, class λ1), and its values for each environmental performance indicator per 1000 kg of initial processed paiche skin were: 30.0 m3 for water consumption, 815.0 kg of chemical products applied, 2022.7 kWh for energy consumption, 105.5 kg of solid wastes; and from wastewater characterization: 2780.9 mg/L for BOD, 11682.9 mg/L for COD and non-detectable chromium. On the basis of these results, its transfer is recommended, including a wastewater treatment system and environmental management measures implementation.
Rocznik
Strony
11--24
Opis fizyczny
Bibliogr. 38 poz., rys., tab.
Twórcy
  • Faculty of Environmental Engineering of the National University of Engineering, Túpac Amaru Ave. 210, 15333, Lima, Peru
  • Productive Innovation and Technological Transfer Center of Leather, Footwear and Related Industries (CITEccal Lima), Technological Institute of Production, Caquetá Ave. 1300, Rimac, 15094, Lima, Peru
  • Productive Innovation and Technological Transfer Center of Leather, Footwear and Related Industries (CITEccal Lima), Technological Institute of Production, Caquetá Ave. 1300, Rimac, 15094, Lima, Peru
Bibliografia
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  • 2. Apte, A.D., Tare, V., Bose, P. 2006. Extent of oxidation of Cr(III) to Cr(VI) under various conditions pertaining to natural environment. Journal of Hazardous Materials, 128(2–3), 164–174. https://doi.org/10.1016/j.jhazmat.2005.07.057
  • 3. Aragón Guzmán, M., Alzate Tejada, A.M. 2004. Environmental referencing system (SIRAC) for the tannery sector in Colombia.
  • 4. Bacardit, A., Burgh, S.V.D., Armengol, J., Ollé, L. 2014. New challenges in chrome-free leathers: Development of wet-bright process. Journal of American Leather Chemists Association American Leather Chemists Association, 109(4), 117–124.
  • 5. Barrenechea Cisneros, E.J. 2019. Aprovechamiento de la piel de paiche (Arapaima gigas) para la obtención de colágeno (in Spanish). Univerisdad Nacional Agraria La Molina, Peru.
  • 6. Beghetto, V., Zancanaro, A., Scrivanti, A., Matteoli, U., Pozza, G. 2013. The Leather Industry : A Chemistry Insight Part I : an Overview of the Industrial Process. Sciences At Ca’ Foscari, 1(May), 12–22. https://doi.org/10.7361/SciCF-448
  • 7. Bes Monge, S.S., Silva, D.A.M.., Bengoa, D.C. 2016. Manual técnico sobre procesos de oxidación avanzada aplicados al tratamiento de aguas residuales industriales. In (Tritón-316Rt0506) (Issues 978-84-09-08637–5). http://www.cyted.org/sites/default/files/manual_sobre_oxidaciones_avanzadas_0.pdf
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  • 11. Chu Koo, C., Fernández Mendez, C., Rebaza Alfaro, Darias M.J., Dávila C.G.A., Váquez A.G., Martin S.T., Baca L.C., Aguilar M.A., Rengifo J.A., Arbildo, L.A.L.J.F.R.H. 2017. Cultivo del paiche: Biología, proceso productivos y estadísticas (in Spanish). Instituto De Investigaciones De La Amazonía Peruana – Iiap.
  • 12. CIATEC. 2006. Situación actual de la industria curtidora en el Perú y su generación de residuos sólidos. (in Spanish)
  • 13. Covington, A., Wise, W. 2015. Tanning Chemistry: The Science of Leather. Royal Society of Chemistry.
  • 14. Delgado, A., Romero, I. 2016. Environmental conflict analysis using an integrated grey clustering and entropy-weight method: A case study of a mining project in Peru. Environmental Modelling and Software, 77, 108–121. https://doi.org/10.1016/j.envsoft.2015.12.011
  • 15. Dias da Silva, L.I., Marinho Pontes, F.V., Castro Carneiro, M., Couto Monteiro, M.I., Dominguez de Almeida, M., Alcover Neto, A. 2011. Evaluation of the chromium bioavailability in tanned leather shavings using the SM&T sequential extractions scheme. Chemical Speciation and Bioavailability, 23(3), 183–187. https://doi.org/10.3184/095422911X13027118597382
  • 16. Fathima, N.N., Kumar, T.P., Kumar, D.R., Rao, J.R., Nair, B.U. 2006. Wet white leather processing: A new combination tanning system. Journal of American Leather Chemists Association, 101(2), 58–65.
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  • 18. Hani Rodriguez, M.A. 2009. Utilización de un sistema híbrido basado en filtración con membranas y electrooxidación avanzada para depurar efluentes complejos. Universidad de Concepción. (in Spanish)
  • 19. Hartwich, F., Lienert, A., Siles, A., Melgar, E. 2017. La Cadena de Valor Acuicola Amazonica en Peru (in Spanish). In Organización de las Naciones Unidas para el Desarrollo Industrial. https://www.unido.org/sites/default/files/files/2018-07/PCPPerú_Diagnostico_Cadena de Valor Acuícola_Informe Final.pdf
  • 20. Huss, H.H. 1998. El pescado fresco: su calidad y cambios de calidad. FAO/DANIDA. (in Spanish)
  • 21. Kanagaraj, J., Chandra Babu, N.K., Mandal, A.B. 2008. Recovery and reuse of chromium from chrome tanning waste water aiming towards zero discharge of pollution. Journal of Cleaner Production, 16(16), 1807–1813. https://doi.org/10.1016/j.jclepro.2007.12.005
  • 22. Kleeberg, F. 2019. Productividad y competitividad del sector acuícola en el Perú (in Spanish). In Banco de Desarrollo de America Latina (1st Editio). http://www.cieplan.org/productividad-y-competitividad-del-sector-acuico-la-en-el-peru
  • 23. Konrad, C., Lorber, K.E., Méndez, R., Lopez, J., Muñoz, M., Hidalgo, D., Bornhardt, C., Torres, M., Rivelca, B. 2002. Systematic analysis of material fluxes at tanneries. Journal of the Society of Leather Technologists and Chemists, 86(1), 18–25.
  • 24. Kotaś, J., Stasicka, Z. 2000. Chromium occurrence in the environment and methods of its speciation. Environmental Pollution, 107(3), 263–283. https://doi.org/10.1016/S0269-7491(99)00168-2
  • 25. Liu, S., Lin, Y. 2011. Grey Systems: Theory and Applications (Vol. 68). Springer Berlin Heidelberg. https://doi.org/10.1007/978-3-642-16158-2
  • 26. Musa, A.E., Madhan, B., Gasmelseed, G.A. 2011. Alumimium-Vegetable Combination Tannage for Production of Shoe Upper. Journal of Veterinary Medicine and Animal Production, 2(1), 50–70.
  • 27. Pal, P. 2020. Membrane-based technology for wastewater. In Membrane-Based Technologies for Environmental Pollution Control. Elsevier. https://doi.org/10.1016/C2018-0-00072-9
  • 28. Límites máximos permisibles de efluentes líquidos para el subsector hidrocarburos Pub. L. No. Decreto Supremo 037-2008-PCM, 2. 2008. (in Spanish)
  • 29. Límites Máximos Permisibles y Valores Referenciales para las actividades industriales de cemento, cerveza, curtiembre y papel. Pub. L. No. Decreto Supremo N° 003-2002-PRODUCE, 5. 2002. (in Spanish)
  • 30. Rivela, B., Méndez, R., Bornhardt, C., Vidal, G. 2004. Towards a cleaner production in developing countries: A case study in a Chilean tannery. Waste Management and Research, 22(3), 131–141. https://doi.org/10.1177/0734242X04044322
  • 31. Roig, M., Segarra, V., Bertazzo, M., Martinez, M. A., Ferrer, J., Raspi, C. 2011. Chrome-free leather, tanned with oxazolidine. 31st IULTCS Congress, January 2011.
  • 32. Segundo Espada, A., Marrufo Saldaña, L., Barra Hinojosa, J., Contreras Panizo, R. 2020. Development of a Degreasing Process for Paiche Skins (Arapaima gigas) for Tanning Preserving the Natural Pattern and Color. Leather and Footwear Journal, 20(2), 119–132. https://doi.org/10.24264/lfj.20.2.3
  • 33. Tünay, O., Kabdaşlı, I., Orhon, D., Cansever, G. 1999. Use and minimization of water in leather tanning processes. Water Science and Technology, 40(1), 237–244. https://doi.org/10.2166/wst.1999.0051
  • 34. Wang, J., Wang, X., Zhang, X., Li, H., Lei, X., Wang, H., Wang, L. 2018. Application of Grey Clustering Method Based on Improved Analytic Hierarchy Process in Water Quality Evaluation. MATEC Web of Conferences, 246, 3–7. https://doi.org/10.1051/matecconf/201824602004
  • 35. Zasoski, R.J., Fendorf, S.E. 1992. Chromium(III) Oxidation by Δ-Manganese Oxide (MnO2). 1. Characterization. Environmental Science and Technology, 26(1), 79–85. https://doi.org/10.1021/es00025a006
  • 36. Zeiner, M., Rezić, I., Ujević, D., Steffan, I. 2011. Determination of total chromium in tanned leather samples used in car industry. Collegium Antropologicum, 35(1), 89–92.
  • 37. Zhang, Y., Ni, J., Liu, J., Jian, L. 2014. Grey evaluation empirical study based on center-point triangular whitenization weight function of Jiangsu Province industrial technology innovation strategy alliance. Grey Systems: Theory and Application, 4(1), 124–136. https://doi.org/10.1108/GS-11-2013-0027
  • 38. Zhou, L., Xu, S. 2006. Zhou and Xu, Application of Grey Clustering Method. The Journal of American Science, 2(4), 53–58.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-05ba0373-c22c-4cf7-ad8a-c6f8a96cad87
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