Skip to main content

2022 | OriginalPaper | Buchkapitel

3. Electronic and Electrical Equipment Waste Disposal

verfasst von : Puganeshwary Palaniandy, Mohd Suffian Yusoff, Lawrence K. Wang, Mu-Hao Sung Wang

Erschienen in: Solid Waste Engineering and Management

Verlag: Springer International Publishing

Aktivieren Sie unsere intelligente Suche, um passende Fachinhalte oder Patente zu finden.

search-config
loading …

Abstract

The disposal of the Wastes of Electronic and Electric Equipment (WEEE) is an emerging stream of waste that has been increasing drastically recently. The intensifying of the quantity of WEEE is due to rapid technological advancement, thus reducing the End-of-Life (EOL) and hastening the obsolescence of Electronic and Electric Equipment (EEE). The approach of handling WEEE determines the fate of contaminant substance either recycling, disposed to landfill or being incinerated, releasing toxic and hazardous chemical to environment. Nevertheless, WEEE is also known as the urban mine where it can be the source of rare earth metal (REM) and precious metal such as gold and platinum. The most important element in managing the WEEE is the enforcement of the legislation/law with initiatives from stakeholders. The option of recycling for a particular material is summarized in this book chapter. Lastly, the hazard associated with recycling is being briefly discussed at the end of a chapter.

Sie haben noch keine Lizenz? Dann Informieren Sie sich jetzt über unsere Produkte:

Springer Professional "Wirtschaft+Technik"

Online-Abonnement

Mit Springer Professional "Wirtschaft+Technik" erhalten Sie Zugriff auf:

  • über 102.000 Bücher
  • über 537 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Finance + Banking
  • Management + Führung
  • Marketing + Vertrieb
  • Maschinenbau + Werkstoffe
  • Versicherung + Risiko

Jetzt Wissensvorsprung sichern!

Springer Professional "Technik"

Online-Abonnement

Mit Springer Professional "Technik" erhalten Sie Zugriff auf:

  • über 67.000 Bücher
  • über 390 Zeitschriften

aus folgenden Fachgebieten:

  • Automobil + Motoren
  • Bauwesen + Immobilien
  • Business IT + Informatik
  • Elektrotechnik + Elektronik
  • Energie + Nachhaltigkeit
  • Maschinenbau + Werkstoffe




 

Jetzt Wissensvorsprung sichern!

Glossar
Biometallurgy
It refers to the biotech processes that involve the exchanges between microorganisms and metals or metal-bearing minerals.
Commingled Recycling
This means a scheme where waste is mixed in a recycling truck rather than separated into individual commodities by the depositor. These materials are later sorted out at a Materials Recovery Facility (MRF).
Conventions
An arrangement between states covering specific issues, especially one less formal than a treaty.
Device Stockpiling
Is the end-user mentality to store their old EEE.
EEE
Electrical and electronic equipment.
End of Life
Is the end of a product life cycle which impedes updates for users that indicate that the product is at the end of its utility life or obsolete product life.
Greenhouse Gases
Infrared gases that absorb and emit radiation within the earth’s wavelength range.
Hydrometallurgy
Involves the use of aqueous chemistry for the recovery of metals from ores, concentrates, and recycled or residual materials.
Informal Recycling
Is an improper recycling process with no proper safety measure for the manpower and the environment.
Landfill
A process of disposing of solid waste in a way that preserves public health and the environment. Every day the waste is compacted and covered. The waste disposal is screened down and the liquid and gas collected, and gate control and weighbridge is mounted.
Municipal Waste
Is the solid waste material commonly called “trash” or “garbage” that is generated by homeowners and businesses
Pyrometallurgy
Extraction and purification of metals by processes involving the application of heat.
Recycling
Is the process of converting waste materials into new materials and objects.
RoHS Directive
Is a directive to reduce or eliminate the content of the hazardous substance in the production of EEE.
Stakeholder
Individual or institution (public and private) interested and involved in related processes and activities associated with a modernization process, plan, project goal, or desired change.
Urban Mining
Can be defined as the “process of recovering rare metals through mechanical and chemical treatments from urban mine which is a stockpile of rare metals in the discarded WEEE of a society.”
WEEE
Waste for electric and electronic equipment or equipment that are no longer functional.
Literatur
1.
Zurück zum Zitat Babu, B. R., Parande, A. K., & Basha, C. A. (2007). Electrical and electronic waste: A global environmental problem. Waste Management & Research, 25(4), 307–318.CrossRef Babu, B. R., Parande, A. K., & Basha, C. A. (2007). Electrical and electronic waste: A global environmental problem. Waste Management & Research, 25(4), 307–318.CrossRef
2.
Zurück zum Zitat Ongondo, F. O., Williams, I. D., & Keynes, S. (2011). Estimating the impact of the ‘ digital switchover’ on disposal of WEEE at household waste recycling centres in England. Waste Management, 31(4), 743–753.CrossRef Ongondo, F. O., Williams, I. D., & Keynes, S. (2011). Estimating the impact of the ‘ digital switchover’ on disposal of WEEE at household waste recycling centres in England. Waste Management, 31(4), 743–753.CrossRef
3.
Zurück zum Zitat Mmereki, D., Li, B., Baldwin, A., & Hong, L. (2016). The generation, composition, collection, treatment and disposal system, and impact of e-waste. In E-waste in transition - From pollution to resource. InTechOpen. Mmereki, D., Li, B., Baldwin, A., & Hong, L. (2016). The generation, composition, collection, treatment and disposal system, and impact of e-waste. In E-waste in transition - From pollution to resource. InTechOpen.
4.
Zurück zum Zitat Pérez-Belis, V., Bovea, M. D., & Gómez, A. (2013). Waste electric and electronic toys: Management practices and characterisation. Resources, Conservation and Recycling, 77, 1–12.CrossRef Pérez-Belis, V., Bovea, M. D., & Gómez, A. (2013). Waste electric and electronic toys: Management practices and characterisation. Resources, Conservation and Recycling, 77, 1–12.CrossRef
5.
Zurück zum Zitat Dias, P., Bernardes, A. M., & Huda, N. (2019). Ensuring best E-waste recycling practices in developed countries: An Australian example. Journal of Cleaner Production, 209, 846–854.CrossRef Dias, P., Bernardes, A. M., & Huda, N. (2019). Ensuring best E-waste recycling practices in developed countries: An Australian example. Journal of Cleaner Production, 209, 846–854.CrossRef
6.
Zurück zum Zitat Garlapati, V. K. (2016). E-waste in India and developed countries: Management, recycling, business and biotechnological initiatives. Renewable and Sustainable Energy Reviews, 54, 874–881.CrossRef Garlapati, V. K. (2016). E-waste in India and developed countries: Management, recycling, business and biotechnological initiatives. Renewable and Sustainable Energy Reviews, 54, 874–881.CrossRef
7.
Zurück zum Zitat Forti, V., Baldé, C. P., Kuehr, R., & Bel, G. (2020). The global E-waste monitor 2020. UNU/UNITAR. Forti, V., Baldé, C. P., Kuehr, R., & Bel, G. (2020). The global E-waste monitor 2020. UNU/UNITAR.
8.
Zurück zum Zitat Sugimura, Y., & Murakami, S. (2016). Problems in Japan’s governance system related to end-of-life electrical and electronic equipment trade. Resources, Conservation and Recycling, 112, 93–106.CrossRef Sugimura, Y., & Murakami, S. (2016). Problems in Japan’s governance system related to end-of-life electrical and electronic equipment trade. Resources, Conservation and Recycling, 112, 93–106.CrossRef
9.
Zurück zum Zitat Román, E. (2012). WEEE management in Europe: Learning from best practice. In Waste electrical and electronic equipment (WEEE) handbook (pp. 493–525). Woodhead Publishing.CrossRef Román, E. (2012). WEEE management in Europe: Learning from best practice. In Waste electrical and electronic equipment (WEEE) handbook (pp. 493–525). Woodhead Publishing.CrossRef
10.
Zurück zum Zitat Marczuk, A., Misztal, W., Jóźwiakowski, K., Dach, J., & Kowalczyk-Juśko, A. (2019). The research on effectiveness of the electronic and electrical waste selective collection system in Lublin city, Poland. Archives of Environmental Protection, 45(3), 55–63. Marczuk, A., Misztal, W., Jóźwiakowski, K., Dach, J., & Kowalczyk-Juśko, A. (2019). The research on effectiveness of the electronic and electrical waste selective collection system in Lublin city, Poland. Archives of Environmental Protection, 45(3), 55–63.
11.
Zurück zum Zitat Ferronato, N., & Torretta, V. (2019). Waste mismanagement in developing countries: A review of global issues. International Journal of Environmental Research and Public Health, 16(6), 1060.CrossRef Ferronato, N., & Torretta, V. (2019). Waste mismanagement in developing countries: A review of global issues. International Journal of Environmental Research and Public Health, 16(6), 1060.CrossRef
12.
Zurück zum Zitat Olafisoye, O. B., Adefioye, T., & Osibote, O. A. (2013). Heavy metals contamination of water, soil, and plants around an electronic waste dumpsite. Polish Journal of Environmental Studies, 22(5), 1431–1439. Olafisoye, O. B., Adefioye, T., & Osibote, O. A. (2013). Heavy metals contamination of water, soil, and plants around an electronic waste dumpsite. Polish Journal of Environmental Studies, 22(5), 1431–1439.
13.
Zurück zum Zitat Shittu, O. S., Williams, I. D., & Shaw, P. J. (2021). Global E-waste management: can WEEE make a difference? A review of e-waste trends, legislation, contemporary issues and future challenges. Waste Management, 120, 549–563.CrossRef Shittu, O. S., Williams, I. D., & Shaw, P. J. (2021). Global E-waste management: can WEEE make a difference? A review of e-waste trends, legislation, contemporary issues and future challenges. Waste Management, 120, 549–563.CrossRef
14.
Zurück zum Zitat Baxter, J., Lyng, K. A., Askham, C., & Hanssen, O. J. (2016). High-quality collection and disposal of WEEE: Environmental impacts and resultant issues. Waste Management, 57, 17–26.CrossRef Baxter, J., Lyng, K. A., Askham, C., & Hanssen, O. J. (2016). High-quality collection and disposal of WEEE: Environmental impacts and resultant issues. Waste Management, 57, 17–26.CrossRef
15.
Zurück zum Zitat Rautela, R., Arya, S., Vishwakarma, S., Lee, J., Kim, K.-H., & Kumar, S. (2021). E-waste management and its effects on the environment and human health. Science of the Total Environment, 773, 145623.CrossRef Rautela, R., Arya, S., Vishwakarma, S., Lee, J., Kim, K.-H., & Kumar, S. (2021). E-waste management and its effects on the environment and human health. Science of the Total Environment, 773, 145623.CrossRef
16.
Zurück zum Zitat Jayaraman, K., Vejayon, S., Raman, S., & Mostafiz, I. (2019). The proposed e-waste management model from the conviction of individual laptop disposal practices-An empirical study in Malaysia. Journal of Cleaner Production, 208, 688–696.CrossRef Jayaraman, K., Vejayon, S., Raman, S., & Mostafiz, I. (2019). The proposed e-waste management model from the conviction of individual laptop disposal practices-An empirical study in Malaysia. Journal of Cleaner Production, 208, 688–696.CrossRef
17.
Zurück zum Zitat Singh, N., Li, J., & Zeng, X. (2016). Global responses for recycling waste CRTs in e-waste. Waste Management, 57, 187–197.CrossRef Singh, N., Li, J., & Zeng, X. (2016). Global responses for recycling waste CRTs in e-waste. Waste Management, 57, 187–197.CrossRef
18.
Zurück zum Zitat Bakhiyi, B., Gravel, S., Ceballos, D., Flynn, M. A., & Zayed, J. (2018). Has the question of e-waste opened a Pandora’s box? An overview of unpredictable issues and challenges. Environment International, 110, 173–192.CrossRef Bakhiyi, B., Gravel, S., Ceballos, D., Flynn, M. A., & Zayed, J. (2018). Has the question of e-waste opened a Pandora’s box? An overview of unpredictable issues and challenges. Environment International, 110, 173–192.CrossRef
19.
Zurück zum Zitat Baldé, C. P., Wang, F., Kuehr, R., & Huisman, J. (2015). The global e-waste monitor 2014. United Nation UNiversity, IAS-SCYCLE. Baldé, C. P., Wang, F., Kuehr, R., & Huisman, J. (2015). The global e-waste monitor 2014. United Nation UNiversity, IAS-SCYCLE.
20.
Zurück zum Zitat Williams, I. D. (2016). Global metal reuse, and formal and informal recycling from electronic and other high-tech wastes. In Metal sustainability: Global challenges, consequences, and prospects (pp. 23–51). John Wiley & Sons.CrossRef Williams, I. D. (2016). Global metal reuse, and formal and informal recycling from electronic and other high-tech wastes. In Metal sustainability: Global challenges, consequences, and prospects (pp. 23–51). John Wiley & Sons.CrossRef
21.
Zurück zum Zitat Pathak, P., Srivastava, R. R., & Ojasvi. (2017). Assessment of legislation and practices for the sustainable management of waste electrical and electronic equipment in India. Renewable and Sustainable Energy Reviews, 78(April), 220–232.CrossRef Pathak, P., Srivastava, R. R., & Ojasvi. (2017). Assessment of legislation and practices for the sustainable management of waste electrical and electronic equipment in India. Renewable and Sustainable Energy Reviews, 78(April), 220–232.CrossRef
22.
Zurück zum Zitat Buekens, A., & Yang, J. (2014). Recycling of WEEE plastics: A review. Journal of Material Cycles and Waste Management, 16(3), 415–434.CrossRef Buekens, A., & Yang, J. (2014). Recycling of WEEE plastics: A review. Journal of Material Cycles and Waste Management, 16(3), 415–434.CrossRef
23.
Zurück zum Zitat Goosey, M. (2012). The materials of WEEE. In Waste electrical and electronic equipment (WEEE) handbook (pp. 123–144).CrossRef Goosey, M. (2012). The materials of WEEE. In Waste electrical and electronic equipment (WEEE) handbook (pp. 123–144).CrossRef
24.
Zurück zum Zitat Maris, E., Botané, P., Wavrer, P., & Froelich, D. (2015). Characterizing plastics originating from WEEE: A case study in France. Minerals Engineering, 76, 28–37.CrossRef Maris, E., Botané, P., Wavrer, P., & Froelich, D. (2015). Characterizing plastics originating from WEEE: A case study in France. Minerals Engineering, 76, 28–37.CrossRef
25.
Zurück zum Zitat Islam, A., et al. (2020). Advances in sustainable approaches to recover metals from e-waste-A review. Journal of Cleaner Production, 244, 118815.CrossRef Islam, A., et al. (2020). Advances in sustainable approaches to recover metals from e-waste-A review. Journal of Cleaner Production, 244, 118815.CrossRef
26.
Zurück zum Zitat Kolias, K., Hahladakis, J. N., & Gidarakos, E. (2014). Assessment of toxic metals in waste personal computers. Waste Management, 34(8), 1480–1487.CrossRef Kolias, K., Hahladakis, J. N., & Gidarakos, E. (2014). Assessment of toxic metals in waste personal computers. Waste Management, 34(8), 1480–1487.CrossRef
27.
Zurück zum Zitat Cardamone, G. F., Ardolino, F., & Arena, U. (2021). About the environmental sustainability of the European management of WEEE plastics. Waste Management, 126, 119–132.CrossRef Cardamone, G. F., Ardolino, F., & Arena, U. (2021). About the environmental sustainability of the European management of WEEE plastics. Waste Management, 126, 119–132.CrossRef
28.
Zurück zum Zitat Zhang, L., & Xu, Z. (2016). A review of current progress of recycling technologies for metals from waste electrical and electronic equipment. Journal of Cleaner Production, 127, 19–36.CrossRef Zhang, L., & Xu, Z. (2016). A review of current progress of recycling technologies for metals from waste electrical and electronic equipment. Journal of Cleaner Production, 127, 19–36.CrossRef
29.
Zurück zum Zitat Adeola, F. O. (2018). WEEE generation and the consequences of its improper disposal. Elsevier.CrossRef Adeola, F. O. (2018). WEEE generation and the consequences of its improper disposal. Elsevier.CrossRef
30.
Zurück zum Zitat Zueva, S. B. (2018). Current legislation and methods of treatment of wastewater coming from waste electrical and electronic equipment processing. Elsevier.CrossRef Zueva, S. B. (2018). Current legislation and methods of treatment of wastewater coming from waste electrical and electronic equipment processing. Elsevier.CrossRef
31.
Zurück zum Zitat Vaccari, M., et al. (2019). WEEE treatment in developing countries: Environmental pollution and health consequences—An overview. International Journal of Environmental Research and Public Health, 16(9), 1595.CrossRef Vaccari, M., et al. (2019). WEEE treatment in developing countries: Environmental pollution and health consequences—An overview. International Journal of Environmental Research and Public Health, 16(9), 1595.CrossRef
32.
Zurück zum Zitat Cesaro, A., et al. (2019). A relative risk assessment of the open burning of WEEE. Environmental Science and Pollution Research, 26(11), 11042–11052.CrossRef Cesaro, A., et al. (2019). A relative risk assessment of the open burning of WEEE. Environmental Science and Pollution Research, 26(11), 11042–11052.CrossRef
33.
Zurück zum Zitat Damrongsiri, S., Vassanadumrongdee, S., & Tanwattana, P. (2016). Heavy metal contamination characteristic of soil in WEEE (waste electrical and electronic equipment) dismantling community: A case study of Bangkok, Thailand. Environmental Science and Pollution Research, 23(17), 17026–17034.CrossRef Damrongsiri, S., Vassanadumrongdee, S., & Tanwattana, P. (2016). Heavy metal contamination characteristic of soil in WEEE (waste electrical and electronic equipment) dismantling community: A case study of Bangkok, Thailand. Environmental Science and Pollution Research, 23(17), 17026–17034.CrossRef
34.
Zurück zum Zitat Someya, M., et al. (2016). Occurrence of emerging flame retardants from e-waste recycling activities in the northern part of Vietnam. Emerging Contaminants, 2(2), 58–65.CrossRef Someya, M., et al. (2016). Occurrence of emerging flame retardants from e-waste recycling activities in the northern part of Vietnam. Emerging Contaminants, 2(2), 58–65.CrossRef
35.
Zurück zum Zitat Luo, C., et al. (2011). Heavy metal contamination in soils and vegetables near an e-waste processing site, south China. Journal of Hazardous Materials, 186(1), 481–490.CrossRef Luo, C., et al. (2011). Heavy metal contamination in soils and vegetables near an e-waste processing site, south China. Journal of Hazardous Materials, 186(1), 481–490.CrossRef
36.
Zurück zum Zitat Tue, N. M., et al. (2016). Release of chlorinated, brominated and mixed halogenated dioxin-related compounds to soils from open burning of e-waste in Agbogbloshie (Accra, Ghana). Journal of Hazardous Materials, 302, 151–157.CrossRef Tue, N. M., et al. (2016). Release of chlorinated, brominated and mixed halogenated dioxin-related compounds to soils from open burning of e-waste in Agbogbloshie (Accra, Ghana). Journal of Hazardous Materials, 302, 151–157.CrossRef
37.
Zurück zum Zitat Cui, J. L., Luo, C. L., Tang, C. W. Y., Chan, T. S., & Li, X. D. (2017). Speciation and leaching of trace metal contaminants from e-waste contaminated soils. Journal of Hazardous Materials, 329, 150–158.CrossRef Cui, J. L., Luo, C. L., Tang, C. W. Y., Chan, T. S., & Li, X. D. (2017). Speciation and leaching of trace metal contaminants from e-waste contaminated soils. Journal of Hazardous Materials, 329, 150–158.CrossRef
38.
Zurück zum Zitat Pradhan, J. K., & Kumar, S. (2014). Informal e-waste recycling: Environmental risk assessment of heavy metal contamination in Mandoli industrial area, Delhi, India. Environmental Science and Pollution Research, 21(13), 7913–7928.CrossRef Pradhan, J. K., & Kumar, S. (2014). Informal e-waste recycling: Environmental risk assessment of heavy metal contamination in Mandoli industrial area, Delhi, India. Environmental Science and Pollution Research, 21(13), 7913–7928.CrossRef
39.
Zurück zum Zitat Wu, Q., et al. (2015). Heavy metal contamination of soil and water in the vicinity of an abandoned e-waste recycling site: Implications for dissemination of heavy metals. Science of the Total Environment, 506–507, 217–225.CrossRef Wu, Q., et al. (2015). Heavy metal contamination of soil and water in the vicinity of an abandoned e-waste recycling site: Implications for dissemination of heavy metals. Science of the Total Environment, 506–507, 217–225.CrossRef
40.
Zurück zum Zitat Zhang, D., et al. (2011). Source identification and health risk of polycyclic aromatic hydrocarbons associated with electronic dismantling in Guiyu town, South China. Journal of Hazardous Materials, 192(1), 1–7.CrossRef Zhang, D., et al. (2011). Source identification and health risk of polycyclic aromatic hydrocarbons associated with electronic dismantling in Guiyu town, South China. Journal of Hazardous Materials, 192(1), 1–7.CrossRef
41.
Zurück zum Zitat Xu, L., Huo, X., Zhang, Y., Li, W., Zhang, J., & Xu, X. (2015). Polybrominated diphenyl ethers in human placenta associated with neonatal physiological development at a typical e-waste recycling area in China. Environmental Pollution, 196, 414–422.CrossRef Xu, L., Huo, X., Zhang, Y., Li, W., Zhang, J., & Xu, X. (2015). Polybrominated diphenyl ethers in human placenta associated with neonatal physiological development at a typical e-waste recycling area in China. Environmental Pollution, 196, 414–422.CrossRef
42.
Zurück zum Zitat Tue, N. M., et al. (2014). Dioxin-related compounds in breast milk of women from Vietnamese e-waste recycling sites: Levels, toxic equivalents and relevance of non-dietary exposure. Ecotoxicology and Environmental Safety, 106, 220–225.CrossRef Tue, N. M., et al. (2014). Dioxin-related compounds in breast milk of women from Vietnamese e-waste recycling sites: Levels, toxic equivalents and relevance of non-dietary exposure. Ecotoxicology and Environmental Safety, 106, 220–225.CrossRef
43.
Zurück zum Zitat Zhang, Y., et al. (2018). Arbuscular mycorrhizal fungi alleviate the heavy metal toxicity on sunflower (Helianthus annuus L.) plants cultivated on a heavily contaminated field soil at a WEEE-recycling site. Science of the Total Environment, 628–629, 282–290.CrossRef Zhang, Y., et al. (2018). Arbuscular mycorrhizal fungi alleviate the heavy metal toxicity on sunflower (Helianthus annuus L.) plants cultivated on a heavily contaminated field soil at a WEEE-recycling site. Science of the Total Environment, 628–629, 282–290.CrossRef
44.
Zurück zum Zitat Patil, R. A., & Ramakrishna, S. (2020). A comprehensive analysis of e-waste legislation worldwide. Environmental Science and Pollution Research, 27(13), 14412–14431.CrossRef Patil, R. A., & Ramakrishna, S. (2020). A comprehensive analysis of e-waste legislation worldwide. Environmental Science and Pollution Research, 27(13), 14412–14431.CrossRef
45.
Zurück zum Zitat Friege, H., Oberdörfer, M., & Günther, M. (2015). Optimising waste from electric and electronic equipment collection systems: A comparison of approaches in European countries. Waste Management & Research, 33(3), 223–231.CrossRef Friege, H., Oberdörfer, M., & Günther, M. (2015). Optimising waste from electric and electronic equipment collection systems: A comparison of approaches in European countries. Waste Management & Research, 33(3), 223–231.CrossRef
46.
Zurück zum Zitat Friege, H. (2012). Review of material recovery from used electric and electronic equipment-alternative options for resource conservation. Waste Management & Research, 30(9, Suppl 1), 3–16.CrossRef Friege, H. (2012). Review of material recovery from used electric and electronic equipment-alternative options for resource conservation. Waste Management & Research, 30(9, Suppl 1), 3–16.CrossRef
47.
Zurück zum Zitat Yunita, M. T., Zagloel, T. Y. M., Ardi, R., & Zulkarnain. (2019). Development of funding model in e-waste management systems for households products in Indonesia. IOP Conference Series: Earth and Environmental Science, 219(1), 012005. Yunita, M. T., Zagloel, T. Y. M., Ardi, R., & Zulkarnain. (2019). Development of funding model in e-waste management systems for households products in Indonesia. IOP Conference Series: Earth and Environmental Science, 219(1), 012005.
48.
Zurück zum Zitat Herat, S., & Francis, A. E. (2021). E-waste management in Asia Pacific Region: Review of issues, challenges and solutions. Nature, Environment and Pollution Technology, 20(1), 45–53.CrossRef Herat, S., & Francis, A. E. (2021). E-waste management in Asia Pacific Region: Review of issues, challenges and solutions. Nature, Environment and Pollution Technology, 20(1), 45–53.CrossRef
49.
Zurück zum Zitat Xu, Y., Yeh, C. H., Liu, C., Ramzan, S., & Zhang, L. (2020). Evaluating and managing interactive barriers for sustainable e-waste management in China. The Journal of the Operational Research Society, 0, 1–14. Xu, Y., Yeh, C. H., Liu, C., Ramzan, S., & Zhang, L. (2020). Evaluating and managing interactive barriers for sustainable e-waste management in China. The Journal of the Operational Research Society, 0, 1–14.
50.
Zurück zum Zitat Fu, J., Zhong, J., Chen, D., & Liu, Q. (2020). Urban environmental governance, government intervention, and optimal strategies: A perspective on electronic waste management in China. Resources, Conservation and Recycling, 154, 104547.CrossRef Fu, J., Zhong, J., Chen, D., & Liu, Q. (2020). Urban environmental governance, government intervention, and optimal strategies: A perspective on electronic waste management in China. Resources, Conservation and Recycling, 154, 104547.CrossRef
51.
Zurück zum Zitat Suja, F., Rahman, R. A., Yusof, A., & Masdar, M. S. (2014). E-Waste management scenarios in Malaysia. Journal of Waste Management, 2014, 1–7.CrossRef Suja, F., Rahman, R. A., Yusof, A., & Masdar, M. S. (2014). E-Waste management scenarios in Malaysia. Journal of Waste Management, 2014, 1–7.CrossRef
52.
Zurück zum Zitat Shad, K. M., Tan, Y. L., & Karim, M. E. (2021). Sustainable e-waste management in Malaysia: Lessons from selected countries. IIUM Law Journal, 28(2), 415–447.CrossRef Shad, K. M., Tan, Y. L., & Karim, M. E. (2021). Sustainable e-waste management in Malaysia: Lessons from selected countries. IIUM Law Journal, 28(2), 415–447.CrossRef
53.
Zurück zum Zitat Nowakowski, P., & Mrówczyńska, B. (2018). Towards sustainable WEEE collection and transportation methods in circular economy - Comparative study for rural and urban settlements. Resources, Conservation and Recycling, 135, 93–107.CrossRef Nowakowski, P., & Mrówczyńska, B. (2018). Towards sustainable WEEE collection and transportation methods in circular economy - Comparative study for rural and urban settlements. Resources, Conservation and Recycling, 135, 93–107.CrossRef
54.
Zurück zum Zitat Wagner, T. P. (2013). Examining the concept of convenient collection: An application to extended producer responsibility and product stewardship frameworks. Waste Management, 33(3), 499–507.CrossRef Wagner, T. P. (2013). Examining the concept of convenient collection: An application to extended producer responsibility and product stewardship frameworks. Waste Management, 33(3), 499–507.CrossRef
55.
Zurück zum Zitat Crowe, D. M., Elser, D. A., Göpfert, B., Mertins, L., & Al, E. (2003). Waste from electrical and electronic equipment (WEEE) - Quantities, dangerous substances and treatment methods (Vol. 1, p. 37). EEA. Crowe, D. M., Elser, D. A., Göpfert, B., Mertins, L., & Al, E. (2003). Waste from electrical and electronic equipment (WEEE) - Quantities, dangerous substances and treatment methods (Vol. 1, p. 37). EEA.
57.
Zurück zum Zitat Kang, H. Y., & Schoenung, J. M. (2005). Electronic waste recycling: A review of U.S. infrastructure and technology options. Resources, Conservation and Recycling, 45(4), 368–400.CrossRef Kang, H. Y., & Schoenung, J. M. (2005). Electronic waste recycling: A review of U.S. infrastructure and technology options. Resources, Conservation and Recycling, 45(4), 368–400.CrossRef
58.
Zurück zum Zitat Huang, Z., Xie, F., & Ma, Y. (2011). Ultrasonic recovery of copper and iron through the simultaneous utilization of Printed Circuit Boards (PCB) spent acid etching solution and PCB waste sludge. Journal of Hazardous Materials, 185(1), 155–161.CrossRef Huang, Z., Xie, F., & Ma, Y. (2011). Ultrasonic recovery of copper and iron through the simultaneous utilization of Printed Circuit Boards (PCB) spent acid etching solution and PCB waste sludge. Journal of Hazardous Materials, 185(1), 155–161.CrossRef
59.
Zurück zum Zitat Watling, H. R. (2006). The bioleaching of sulphide minerals with emphasis on copper sulphides - A review. Hydrometallurgy, 84(1–2), 81–108.CrossRef Watling, H. R. (2006). The bioleaching of sulphide minerals with emphasis on copper sulphides - A review. Hydrometallurgy, 84(1–2), 81–108.CrossRef
60.
Zurück zum Zitat Bas, A. D., Deveci, H., & Yazici, E. Y. (2014). Treatment of manufacturing scrap TV boards by nitric acid leaching. Separation and Purification Technology, 130(2), 151–159.CrossRef Bas, A. D., Deveci, H., & Yazici, E. Y. (2014). Treatment of manufacturing scrap TV boards by nitric acid leaching. Separation and Purification Technology, 130(2), 151–159.CrossRef
61.
Zurück zum Zitat Castro, L. A., & Martins, A. H. (2009). Recovery of tin and copper by recycling of printed circuit boards from obsolete computers. Brazilian Journal of Chemical Engineering, 26(4), 649–657.CrossRef Castro, L. A., & Martins, A. H. (2009). Recovery of tin and copper by recycling of printed circuit boards from obsolete computers. Brazilian Journal of Chemical Engineering, 26(4), 649–657.CrossRef
62.
Zurück zum Zitat Sheng, P. P., & Etsell, T. H. (2007). Recovery of gold from computer circuit board scrap using aqua regia. Waste Management & Research, 25(4), 380–383.CrossRef Sheng, P. P., & Etsell, T. H. (2007). Recovery of gold from computer circuit board scrap using aqua regia. Waste Management & Research, 25(4), 380–383.CrossRef
63.
Zurück zum Zitat Montenegro, V., Sano, H., & Fujisawa, T. (2013). Recirculation of high arsenic content copper smelting dust to smelting and converting processes. Minerals Engineering, 49, 184–189.CrossRef Montenegro, V., Sano, H., & Fujisawa, T. (2013). Recirculation of high arsenic content copper smelting dust to smelting and converting processes. Minerals Engineering, 49, 184–189.CrossRef
64.
Zurück zum Zitat Hagelüken, C. (2005). Recycling of electronic scrap at Umicore’s integrated metals smelter and refinery. Proceedings - European Metallurgical Conference, 1, 307–323. Hagelüken, C. (2005). Recycling of electronic scrap at Umicore’s integrated metals smelter and refinery. Proceedings - European Metallurgical Conference, 1, 307–323.
65.
Zurück zum Zitat Ghosh, B., Ghosh, M. K., Parhi, P., Mukherjee, P. S., & Mishra, B. K. (2015). Waste printed circuit boards recycling: An extensive assessment of current status. Journal of Cleaner Production, 94, 5–19.CrossRef Ghosh, B., Ghosh, M. K., Parhi, P., Mukherjee, P. S., & Mishra, B. K. (2015). Waste printed circuit boards recycling: An extensive assessment of current status. Journal of Cleaner Production, 94, 5–19.CrossRef
66.
Zurück zum Zitat Akcil, A., Erust, C., Gahan, C. S. E., Ozgun, M., Sahin, M., & Tuncuk, A. (2015). Precious metal recovery from waste printed circuit boards using cyanide and non-cyanide lixiviants--A review. Waste Management, 45, 258–271.CrossRef Akcil, A., Erust, C., Gahan, C. S. E., Ozgun, M., Sahin, M., & Tuncuk, A. (2015). Precious metal recovery from waste printed circuit boards using cyanide and non-cyanide lixiviants--A review. Waste Management, 45, 258–271.CrossRef
67.
Zurück zum Zitat Liang, G., Mo, Y., & Zhou, Q. (2010). Novel strategies of bioleaching metals from printed circuit boards (PCBs) in mixed cultivation of two acidophiles. Enzyme and Microbial Technology, 47(7), 322–326.CrossRef Liang, G., Mo, Y., & Zhou, Q. (2010). Novel strategies of bioleaching metals from printed circuit boards (PCBs) in mixed cultivation of two acidophiles. Enzyme and Microbial Technology, 47(7), 322–326.CrossRef
68.
Zurück zum Zitat Panda, S., Akcil, A., Pradhan, N., & Deveci, H. (2015). Current scenario of chalcopyrite bioleaching: A review on the recent advances to its heap-leach technology. Bioresource Technology, 196, 694–706.CrossRef Panda, S., Akcil, A., Pradhan, N., & Deveci, H. (2015). Current scenario of chalcopyrite bioleaching: A review on the recent advances to its heap-leach technology. Bioresource Technology, 196, 694–706.CrossRef
69.
Zurück zum Zitat Wang, J., Bai, J., Xu, J., & Liang, B. (2009). Bioleaching of metals from printed wire boards by Acidithiobacillus ferrooxidans and Acidithiobacillus thiooxidans and their mixture. Journal of Hazardous Materials, 172(2–3), 1100–1105.CrossRef Wang, J., Bai, J., Xu, J., & Liang, B. (2009). Bioleaching of metals from printed wire boards by Acidithiobacillus ferrooxidans and Acidithiobacillus thiooxidans and their mixture. Journal of Hazardous Materials, 172(2–3), 1100–1105.CrossRef
70.
Zurück zum Zitat Gadd, G. M. (2009). Biosorption: Critical review of scientific rationale, environmental importance and significance for pollution treatment. Journal of Chemical Technology and Biotechnology, 84(1), 13–28.CrossRef Gadd, G. M. (2009). Biosorption: Critical review of scientific rationale, environmental importance and significance for pollution treatment. Journal of Chemical Technology and Biotechnology, 84(1), 13–28.CrossRef
71.
Zurück zum Zitat Mata, Y. N., Torres, E., Blázquez, M. L., Ballester, A., González, F., & Muñoz, J. A. (2009). Gold(III) biosorption and bioreduction with the brown alga Fucus vesiculosus. Journal of Hazardous Materials, 166(2–3), 612–618.CrossRef Mata, Y. N., Torres, E., Blázquez, M. L., Ballester, A., González, F., & Muñoz, J. A. (2009). Gold(III) biosorption and bioreduction with the brown alga Fucus vesiculosus. Journal of Hazardous Materials, 166(2–3), 612–618.CrossRef
72.
Zurück zum Zitat Tasdelen, C., Aktas, S., Acma, E., & Guvenilir, Y. (2009). Gold recovery from dilute gold solutions using DEAE-cellulose. Hydrometallurgy, 96(3), 253–257.CrossRef Tasdelen, C., Aktas, S., Acma, E., & Guvenilir, Y. (2009). Gold recovery from dilute gold solutions using DEAE-cellulose. Hydrometallurgy, 96(3), 253–257.CrossRef
73.
Zurück zum Zitat Kim, E. Y., Kim, M. S., Lee, J. C., & Pandey, B. D. (2011). Selective recovery of gold from waste mobile phone PCBs by hydrometallurgical process. Journal of Hazardous Materials, 198, 206–215.CrossRef Kim, E. Y., Kim, M. S., Lee, J. C., & Pandey, B. D. (2011). Selective recovery of gold from waste mobile phone PCBs by hydrometallurgical process. Journal of Hazardous Materials, 198, 206–215.CrossRef
74.
Zurück zum Zitat Fogarasi, S., Imre-Lucaci, F., Imre-Lucaci, Á., & Ilea, P. (2014). Copper recovery and gold enrichment from waste printed circuit boards by mediated electrochemical oxidation. Journal of Hazardous Materials, 273, 215–221.CrossRef Fogarasi, S., Imre-Lucaci, F., Imre-Lucaci, Á., & Ilea, P. (2014). Copper recovery and gold enrichment from waste printed circuit boards by mediated electrochemical oxidation. Journal of Hazardous Materials, 273, 215–221.CrossRef
75.
Zurück zum Zitat Kim, E. Y., Kim, M. S., Lee, J. C., Jeong, J., & Pandey, B. D. (2011). Leaching kinetics of copper from waste printed circuit boards by electro-generated chlorine in HCl solution. Hydrometallurgy, 107(3–4), 124–132.CrossRef Kim, E. Y., Kim, M. S., Lee, J. C., Jeong, J., & Pandey, B. D. (2011). Leaching kinetics of copper from waste printed circuit boards by electro-generated chlorine in HCl solution. Hydrometallurgy, 107(3–4), 124–132.CrossRef
76.
Zurück zum Zitat Lister, T. E., Wang, P., & Anderko, A. (2014). Recovery of critical and value metals from mobile electronics enabled by electrochemical processing. Hydrometallurgy, 149(2014), 228–237.CrossRef Lister, T. E., Wang, P., & Anderko, A. (2014). Recovery of critical and value metals from mobile electronics enabled by electrochemical processing. Hydrometallurgy, 149(2014), 228–237.CrossRef
77.
Zurück zum Zitat Fogarasi, S., Imre-Lucaci, F., Ilea, P., & Imre-Lucaci, Á. (2013). The environmental assessment of two new copper recovery processes from Waste Printed Circuit Boards. Journal of Cleaner Production, 54, 264–269.CrossRef Fogarasi, S., Imre-Lucaci, F., Ilea, P., & Imre-Lucaci, Á. (2013). The environmental assessment of two new copper recovery processes from Waste Printed Circuit Boards. Journal of Cleaner Production, 54, 264–269.CrossRef
78.
Zurück zum Zitat Xiu, F. R., Qi, Y., & Zhang, F. S. (2015). Leaching of Au, Ag, and Pd from waste printed circuit boards of mobile phone by iodide lixiviant after supercritical water pre-treatment. Waste Management, 41, 134–141.CrossRef Xiu, F. R., Qi, Y., & Zhang, F. S. (2015). Leaching of Au, Ag, and Pd from waste printed circuit boards of mobile phone by iodide lixiviant after supercritical water pre-treatment. Waste Management, 41, 134–141.CrossRef
79.
Zurück zum Zitat Li, K., & Xu, Z. (2015). Application of supercritical water to decompose brominated epoxy resin and environmental friendly recovery of metals from waste memory module. Environmental Science & Technology, 49(3), 1761–1767.CrossRef Li, K., & Xu, Z. (2015). Application of supercritical water to decompose brominated epoxy resin and environmental friendly recovery of metals from waste memory module. Environmental Science & Technology, 49(3), 1761–1767.CrossRef
80.
Zurück zum Zitat Xiu, F. R., & Zhang, F. S. (2010). Materials recovery from waste printed circuit boards by supercritical methanol. Journal of Hazardous Materials, 178(1–3), 628–634.CrossRef Xiu, F. R., & Zhang, F. S. (2010). Materials recovery from waste printed circuit boards by supercritical methanol. Journal of Hazardous Materials, 178(1–3), 628–634.CrossRef
81.
Zurück zum Zitat Matsumoto, Y., & Oshima, Y. (2014). Au and Cu recovery from printed boards by decomposition of epoxy resin in supercritical water. Journal of Supercritical Fluids, 95, 462–467.CrossRef Matsumoto, Y., & Oshima, Y. (2014). Au and Cu recovery from printed boards by decomposition of epoxy resin in supercritical water. Journal of Supercritical Fluids, 95, 462–467.CrossRef
82.
Zurück zum Zitat Zhu, N. M., Wang, C. F., & Zhang, F. S. (2012). An integrated two-stage process for effective dechlorination of polychlorinated biphenyls in subcritical water in the presence of hydrogen donors. Chemical Engineering Journal, 197, 135–142.CrossRef Zhu, N. M., Wang, C. F., & Zhang, F. S. (2012). An integrated two-stage process for effective dechlorination of polychlorinated biphenyls in subcritical water in the presence of hydrogen donors. Chemical Engineering Journal, 197, 135–142.CrossRef
83.
Zurück zum Zitat Xiu, F. R., Qi, Y., & Zhang, F. S. (2013). Recovery of metals from waste printed circuit boards by supercritical water pre-treatment combined with acid leaching process. Waste Management, 33(5), 1251–1257.CrossRef Xiu, F. R., Qi, Y., & Zhang, F. S. (2013). Recovery of metals from waste printed circuit boards by supercritical water pre-treatment combined with acid leaching process. Waste Management, 33(5), 1251–1257.CrossRef
84.
Zurück zum Zitat Zhan, L., & Xu, Z. (2008). Application of vacuum metallurgy to separate pure metal from mixed metallic particles of crushed waste printed circuit board scraps. Environmental Science & Technology, 42(20), 7676–7681.CrossRef Zhan, L., & Xu, Z. (2008). Application of vacuum metallurgy to separate pure metal from mixed metallic particles of crushed waste printed circuit board scraps. Environmental Science & Technology, 42(20), 7676–7681.CrossRef
85.
Zurück zum Zitat Zhan, L., & Xu, Z. (2009). Separating and recycling metals from mixed metallic particles of crushed electronic wastes by vacuum metallurgy. Environmental Science & Technology, 43(18), 7074–7078.CrossRef Zhan, L., & Xu, Z. (2009). Separating and recycling metals from mixed metallic particles of crushed electronic wastes by vacuum metallurgy. Environmental Science & Technology, 43(18), 7074–7078.CrossRef
86.
Zurück zum Zitat Zhan, L., & Xu, Z. (2011). Separating and recovering pb from copper-rich particles of crushed waste printed circuit boards by evaporation and condensation. Environmental Science & Technology, 45(12), 5359–5365.CrossRef Zhan, L., & Xu, Z. (2011). Separating and recovering pb from copper-rich particles of crushed waste printed circuit boards by evaporation and condensation. Environmental Science & Technology, 45(12), 5359–5365.CrossRef
87.
Zurück zum Zitat Zhan, L., & Xu, Z. (2012). Separating criterion of Pb, Cd, Bi and Zn from metallic particles of crushed electronic wastes by vacuum evaporation. Separation Science and Technology, 47(6), 913–919.CrossRef Zhan, L., & Xu, Z. (2012). Separating criterion of Pb, Cd, Bi and Zn from metallic particles of crushed electronic wastes by vacuum evaporation. Separation Science and Technology, 47(6), 913–919.CrossRef
88.
Zurück zum Zitat Huang, K., Guo, J., & Xu, Z. (2009). Recycling of waste printed circuit boards: A review of current technologies and treatment status in China. Journal of Hazardous Materials, 164(2–3), 399–408.CrossRef Huang, K., Guo, J., & Xu, Z. (2009). Recycling of waste printed circuit boards: A review of current technologies and treatment status in China. Journal of Hazardous Materials, 164(2–3), 399–408.CrossRef
89.
Zurück zum Zitat Xie, F., et al. (2009). The ultrasonically assisted metals recovery treatment of printed circuit board waste sludge by leaching separation. Journal of Hazardous Materials, 170(1), 430–435.CrossRef Xie, F., et al. (2009). The ultrasonically assisted metals recovery treatment of printed circuit board waste sludge by leaching separation. Journal of Hazardous Materials, 170(1), 430–435.CrossRef
90.
Zurück zum Zitat Tan, Q., & Li, J. (2015). Recycling metals from wastes: A novel application of mechanochemistry. Environmental Science & Technology, 49(10), 5849–5861.CrossRef Tan, Q., & Li, J. (2015). Recycling metals from wastes: A novel application of mechanochemistry. Environmental Science & Technology, 49(10), 5849–5861.CrossRef
91.
Zurück zum Zitat Bujak, J. W. (2015). Thermal utilization (treatment) of plastic waste. Energy, 90, 1468–1477.CrossRef Bujak, J. W. (2015). Thermal utilization (treatment) of plastic waste. Energy, 90, 1468–1477.CrossRef
92.
Zurück zum Zitat Cui, J., & Zhang, L. (2008). Metallurgical recovery of metals from electronic waste: A review. Journal of Hazardous Materials, 158(2–3), 228–256.CrossRef Cui, J., & Zhang, L. (2008). Metallurgical recovery of metals from electronic waste: A review. Journal of Hazardous Materials, 158(2–3), 228–256.CrossRef
93.
Zurück zum Zitat Hadi, P., Xu, M., Lin, C. S. K., Hui, C. W., & McKay, G. (2015). Waste printed circuit board recycling techniques and product utilization. Journal of Hazardous Materials, 283, 234–243.CrossRef Hadi, P., Xu, M., Lin, C. S. K., Hui, C. W., & McKay, G. (2015). Waste printed circuit board recycling techniques and product utilization. Journal of Hazardous Materials, 283, 234–243.CrossRef
94.
Zurück zum Zitat Beigbeder, J., Perrin, D., Mascaro, J. F., & Lopez-Cuesta, J. M. (2013). Study of the physico-chemical properties of recycled polymers from waste electrical and electronic equipment (WEEE) sorted by high resolution near infrared devices. Resources, Conservation and Recycling, 78, 105–114.CrossRef Beigbeder, J., Perrin, D., Mascaro, J. F., & Lopez-Cuesta, J. M. (2013). Study of the physico-chemical properties of recycled polymers from waste electrical and electronic equipment (WEEE) sorted by high resolution near infrared devices. Resources, Conservation and Recycling, 78, 105–114.CrossRef
95.
Zurück zum Zitat Stenvall, E., Tostar, S., Boldizar, A., & Foreman, M. R. S. J. (2013). The influence of extrusion conditions on mechanical and thermal properties of virgin and recycled PP, HIPS, ABS and their ternary blends. International Polymer Processing, 28(5), 541–549.CrossRef Stenvall, E., Tostar, S., Boldizar, A., & Foreman, M. R. S. J. (2013). The influence of extrusion conditions on mechanical and thermal properties of virgin and recycled PP, HIPS, ABS and their ternary blends. International Polymer Processing, 28(5), 541–549.CrossRef
96.
Zurück zum Zitat Makenji, K., & Savage, M. (2012). Mechanical methods of recycling plastics from WEEE. In Waste electrical and electronic equipment (WEEE) handbook (pp. 212–238).CrossRef Makenji, K., & Savage, M. (2012). Mechanical methods of recycling plastics from WEEE. In Waste electrical and electronic equipment (WEEE) handbook (pp. 212–238).CrossRef
97.
Zurück zum Zitat Haarman, A., Magalini, F., & Courtois, J. (2020). Study on the impacts of brominated flame retardants on the recycling of WEEE plastics in Europe. BSEF. Haarman, A., Magalini, F., & Courtois, J. (2020). Study on the impacts of brominated flame retardants on the recycling of WEEE plastics in Europe. BSEF.
98.
Zurück zum Zitat Ragaert, K., Delva, L., & Van Geem, K. (2017). Mechanical and chemical recycling of solid plastic waste. Waste Management, 69, 24–58.CrossRef Ragaert, K., Delva, L., & Van Geem, K. (2017). Mechanical and chemical recycling of solid plastic waste. Waste Management, 69, 24–58.CrossRef
99.
Zurück zum Zitat Lucas, D., et al. (2018). Methods of responsibly managing end-of-life foams and plastics containing flame retardants: Part I. Environmental Engineering Science, 35(6), 573–587.CrossRef Lucas, D., et al. (2018). Methods of responsibly managing end-of-life foams and plastics containing flame retardants: Part I. Environmental Engineering Science, 35(6), 573–587.CrossRef
100.
Zurück zum Zitat Ardolino, F., Berto, C., & Arena, U. (2017). Environmental performances of different configurations of a material recovery facility in a life cycle perspective. Waste Management, 68, 662–676.CrossRef Ardolino, F., Berto, C., & Arena, U. (2017). Environmental performances of different configurations of a material recovery facility in a life cycle perspective. Waste Management, 68, 662–676.CrossRef
101.
Zurück zum Zitat Wang, L. K., Hung, Y. T., & Shammas, N. K. (2010). Handbook of advanced industrial and hazardous wastes treatment (pp. 1213–1232). CRC Press. Wang, L. K., Hung, Y. T., & Shammas, N. K. (2010). Handbook of advanced industrial and hazardous wastes treatment (pp. 1213–1232). CRC Press.
102.
Zurück zum Zitat Wang, L. K., Wang, M. H. S., Hung, Y. T., Shammas, N. K., & Chen, J. P. (2018). Handbook of advanced industrial and hazardous wastes management (pp. 339–364). CRC Press. Wang, L. K., Wang, M. H. S., Hung, Y. T., Shammas, N. K., & Chen, J. P. (2018). Handbook of advanced industrial and hazardous wastes management (pp. 339–364). CRC Press.
103.
Zurück zum Zitat Ramli, H., Aziz, H. A., & Hung, Y. T. (2021). Practices of solid waste processing and disposal. In: L. K. Wang, M. H. S. Wang, & Y. T. Hung (Eds.), H. A. Aziz (Consulting Ed.), Solid waste engineering and management (Vol. 1, pp. 625–673). Springer Nature. Ramli, H., Aziz, H. A., & Hung, Y. T. (2021). Practices of solid waste processing and disposal. In: L. K. Wang, M. H. S. Wang, & Y. T. Hung (Eds.), H. A. Aziz (Consulting Ed.), Solid waste engineering and management (Vol. 1, pp. 625–673). Springer Nature.
Metadaten
Titel
Electronic and Electrical Equipment Waste Disposal
verfasst von
Puganeshwary Palaniandy
Mohd Suffian Yusoff
Lawrence K. Wang
Mu-Hao Sung Wang
Copyright-Jahr
2022
DOI
https://doi.org/10.1007/978-3-030-96989-9_3