Analysis of Electronic Waste Flows and Urban Mining Potential in Surabaya

Authors

  • Rizka Nur Amalia Rachmani Institut Teknologi Sepuluh Nopember
  • Arseto Yekti Bagastyo

Keywords:

electronic waste, urban mining, material flow analysis, valuable materials

Abstract

The increase in population, consumption, and technology use has led to a surge in electronic waste, a serious environmental issue. In Indonesia, e-waste management is still primarily handled by the informal sector, with limited regulation and technology, posing risks to the environment and public health. Gunung Anyar District was selected as the study area for this research to analyze household electronic waste flows and the role of the informal sector on urban mining, using Material Flow Analysis (MFA). Potential household e-waste generation was estimated through questionnaires and interviews with 100 households, while additional surveys of the informal sector, TPSSS B3 (Hazardous and Toxic Waste Storage and Management Facility), and waste banks were conducted to trace distribution pathways. Informal sector actors were surveyed using snowball sampling. The potential household e-waste generation in Gunung Anyar is 303.957,35 kg/year. Most e-waste is stored in homes or sold to collectors, with only a small fraction entering waste banks and TPSSS B3. Collectors, both dismantlers and non-dismantlers, act as key nodes in informal urban mining by channeling metal fractions to industries and other collectors, while generating substantial residues that end up at transfer stations and landfills. Although donations and repairs extend product lifespans, a large share of e-waste remains underutilized and environmentally hazardous. These findings highlight the need for stricter regulation and more structured systems to integrate informal actors and reduce environmental and public health impacts.

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References

Abedin, M. J., Wangwongwatana, S., Bhuiyan, M. N. H., Moniruzzaman, M., Tan, Q., & Liang, L. (2025). Health risk assessments of worker exposure to heavy metals in informal e-waste recycling communities in Chattogram City, Bangladesh. Chinese Journal of Analytical Chemistry, 100654. https://doi.org/10.1016/j.cjac.2025.100654

Adzania, F. H., Wulandari, R. A., Ambarsari, R., Fauzia, S., & Aryati, G. P. (2023). Association between Socioeconomic and Demographic Factors with Electronic Waste Generation in Jakarta. Annali di Igiene, Medicina Preventiva e di Comunità, 35(3). 10.7416/ai.2022.2536

Al-Khatib, L. A., & Fraige, F. Y. (2024). The potential material flow of WEEE in a data-constrained environment—the case of Jordan. Recycling, 9(1), 4. https://doi.org/10.3390/recycling9010004

Amankwaa, E. F., Tsikudo, K. A. A., & Bowman, J. A. (2017). ‘Away’is a place: The impact of electronic waste recycling on blood lead levels in Ghana. Science of the total environment, 601, 1566-1574. https://doi.org/10.1016/j.scitotenv.2017.05.283

Arora, R., Paterok, K., Banerjee, A., & Saluja, M. S. (2017). Potential and relevance of urban mining in the context of sustainable cities. IIMB management review, 29(3), 210-224. https://doi.org/10.1016/j.iimb.2017.06.001

Awasthi, A. K., & Li, J. (2017). Management of electrical and electronic waste: A comparative evaluation of China and India. Renewable and Sustainable Energy Reviews, 76, 434-447. https://doi.org/10.1016/j.rser.2017.02.067

Azizi, D. D. S., Hanafiah, M. M., & Woon, K. S. (2023). Material flow analysis in WEEE management for circular economy: a content review on applications, limitations, and future outlook. Sustainability, 15(4), 3505. https://doi.org/10.3390/su15043505

Baldé, C. P., Forti, V., Gray, V., Kuehr, R., & Stegmann, P. (2017). The Global E Waste Monitor 2017: Quantities, flows and resources. United Nations University, international telecommunication union, and international solid waste association.

Baldé, C. P., Kuehr, R., Yamamoto, T., McDonald, R., D’Angelo, E., Althaf, S., & Wagner, M. (2024). Global e-waste monitor 2024.

Bódizs, D., Pécsinger, J., Pestiné Rácz, É. V., Macher, G. Z., & Sipos, D. (2025). Applications of Urban Mining to Recover the Metal Content Potential of Disposed Electrical and Electronic Waste. Journal of Sustainable Development of Natural Resources Management, 1(1), 1-14. https://doi.org/10.13044/j.sdnarema.d1.0551

Chi, X., Streicher-Porte, M., Wang, M. Y., & Reuter, M. A. (2011). Informal electronic waste recycling: A sector review with special focus on China. Waste management, 31(4), 731-742. https://doi.org/10.1016/j.wasman.2010.11.006

Cucchiella, F., D’Adamo, I., Koh, S. L., & Rosa, P. (2015). Recycling of WEEEs: An economic assessment of present and future e-waste streams. Renewable and sustainable energy reviews, 51, 263-272. https://doi.org/10.1016/j.rser.2015.06.010

Erdiaw-Kwasie, M. O., Abunyewah, M., & Baah, C. (2024). A systematic review of the factors–Barriers, drivers, and technologies–Affecting e-waste urban mining: On the circular economy future of developing countries. Journal of Cleaner Production, 436, 140645. https://doi.org/10.1016/j.jclepro.2024.140645

Firmansyah, M. L., Rizki, I. N., & Ullah, N. (2025). Recent advances in urban mining technology: A focus on electronic waste recycling potential in Indonesia. Cleaner Waste Systems, 10, 100239. https://doi.org/10.1016/j.clwas.2025.100239

Forti, V., Baldé, K., & Kuehr, R. (2018). E-waste statistics: guidelines on classifications, reporting and indicators.

Herat, S. (2008). Recycling of cathode ray tubes (CRTs) in electronic waste. CLEAN–Soil, Air, Water, 36(1), 19-24. https://doi.org/10.1002/clen.200700082

Hu, W. L., Ma, A. J., Guan, Y., Cui, Z. J., Zhang, Y. B., & Wang, J. (2021). Experimental study of the air side performance of fin-and-tube heat exchanger with different fin material in dehumidifying conditions. Energies, 14(21), 7030. https://doi.org/10.3390/en14217030

Jorfi, S., Feizi, R., Saeedi, R., Sabaghan, M., Barzegar, G., Dehghani, S. L., & Baboli, Z. (2023). Health risk assessment of workers exposed to lead dust in informal e-waste recycling workshops. International Journal of Environmental Health Research, 34(7), 2790–2800. https://doi.org/10.1080/09603123.2023.2274380

Kang, H. Y., & Schoenung, J. M. (2006). Economic analysis of electronic waste recycling: modeling the cost and revenue of a materials recovery facility in California. Environmental science & technology, 40(5), 1672-1680. https://doi.org/10.1021/es0503783

Kaya, M. (2016). Recovery of Metals and Nonmetals From Electronic Waste by Physical and Chemical Recycling Processes. Journal of Waste Management 57, 64-90. https://doi.org/10.1016/j.wasman.2016.08.004

Kazançoglu, Y., Ada, E., Ozturkoglu, Y., & Ozbiltekin, M. (2020). Analysis of the barriers to urban mining for resource melioration in emerging economies. Resources Policy, 68, 101768. https://doi.org/10.1016/j.resourpol.2020.101768

Kiddee, P., Naidu, R., & Wong, M. H. (2013). Electronic waste management approaches: An overview. Waste management, 33(5), 1237-1250. https://doi.org/10.1016/j.wasman.2013.01.006

Li, B., Liu, D., Zhang, L., Wu, Y., Ding, X., & Zeng, X. (2024). Challenges of E-Waste Dismantling in China. Toxics, 12(12), 867. https://doi.org/10.3390/toxics12120867

Liu, K., Tan, Q., Yu, J., & Wang, M. (2023). A global perspective on e-waste recycling. Circular Economy, 2(1), 100028. https://doi.org/10.1016/j.cec.2023.100028

Lundgren, K. (2012). The global impact of e-waste: addressing the challenge. International Labour Organization.

Marwati, S. (2009). Kajian tentang kandungan logam-logam berharga dalam limbah elektronik (e-waste) dan teknik recoverynya malalui proses daur ulang. In Prosiding Seminar Nasional Penelitian, Pendidikan Dan Penerapan MIPA.

Mulyani, I. C., Akbar, A. A., & Jati, D. R. (2023). Identifikasi Timbulan dan Nilai Ekonomi Limbah Elektronik (E-Waste) Rumah Tangga di Kota Pontianak. Jurnal Reka Lingkungan, 11(1), 49-58. https://doi.org/10.26760/rekalingkungan.v11i1.49-58

Nahar, N., Anwar, M. A., & Tanni, S. A. (2017). Electronic waste: A review. In Proceedings of the International Conference on Engineering Research, Innovation and Education (Vol. 146, pp. 186-191).

Nahor, J. J. (2019). Implikasi Dan Pengelolaan Llimbah Elektronik. Buletin Utama Teknik, Vol. 14, No. 2, 2598–3814. https://doi.org/10.30743/but.v14i2.1095

Nøjgaard, M., Smaniotto, C., Askegaard, S., Cimpan, C., Zhilyaev, D., & Wenzel, H. (2020). How the dead storage of consumer electronics creates consumer value. Sustainability, 12(14), 5552. https://doi.org/10.3390/su12145552

Nurhidayati, S., Sari, G. L., & Bunga, V. U. (2024). Analisis Potensi Timbulan dan Jenis Sampah Elektronik Rumah Tangga di Kota Administrasi Jakarta Pusat. Jurnal Serambi Engineering, 9(3), 10222-10228. https://jse.serambimekkah.id/index.php/jse/article/view/432

Odeyingbo, O. A., Deubzer, O. K., & Ogunmokun, O. A. (2025). Assessment of the impact of the revised National E-Waste Framework on the informal E-Waste sector of Nigeria. http://dx.doi.org/10.3390/recycling10030117

Ohajinwa, C. M., van Bodegom, P. M., Vijver, M. G., Olumide, A. O., Osibanjo, O., & Peijnenburg, W. J. (2018). Prevalence and injury patterns among electronic waste workers in the informal sector in Nigeria. Injury Prevention, 24(3), 185-192. https://doi.org/10.1136/injuryprev-2016-042265

Park, J., & Yun, S. J. (2024). Social comparison of home appliance ownership and use and heterogeneous impact on electricity consumption: a case of apartment households in Korea. Energy Efficiency, 17(5), 44. https://doi.org/10.1007/s12053-024-10219-8

Peraturan Pemerintah Republik Indonesia Nomor 27 Tahun 2020 tentang Rencana Pengolahan Sampah Nasional. (2020). Lembaran Negara Republik Indonesia Tahun 2020 Nomor 81. Jakarta: Sekretariat Negara.

Perdamaian, L. G., & Zhai, Z. (2024). Status of livability in Indonesian affordable housing. Architecture, 4(2), 281-302. https://doi.org/10.3390/architecture4020017

Phoochinda, W., & Kriyapak, S. (2021). Electronic Waste Recycling Business: Solution, Choice, Survival. International Journal of Sustainable Development & Planning, 16(4). https://doi.org/10.18280/ijsdp.160409

Pongen, I., Ray, P., & Govindan, K. (2024). Creating a sustainable closed-loop supply chain: An incentive-based contract with third-party E-waste collector. Journal of Cleaner Production, 462, 142351. https://doi.org/10.1016/j.jclepro.2024.142351

Rachmani, R. N. A. (2023). Kajian Pengelolaan Sampah Spesifik Rumah Tangga di Kecamatan Tenggilis Mejoyo, Kota Surabaya [Undergraduate thesis, Institut Teknologi Sepuluh Nopember]. Institut Teknologi Sepuluh Nopember.

Rahmany, A. N. (2025). Material flow analysis pengelolaan limbah elektronik dari perangkat non-baterai [Undergraduate thesis, Institut Teknologi Sepuluh Nopember]. Institut Teknologi Sepuluh Nopember.

Schwarzer, S., De Bono, A., Giuliani, G., Kluser, S., & Peduzzi, P. (2005). E-waste , the hidden side of IT equipment's manufacturing and use. United Nations Environment Programme.

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. https://doi.org/10.1016/j.wasman.2020.10.016

Sutanto, A., Yuliandra, B., & Pratama, W. (2017). Manufaktur Berkelanjutan Pada Sampah Elektronik: Kasus Sampah Kulkas. Jurnal Optimasi Sistem Industri, 16(1), 25-33. https://doi.org/10.25077/josi.v16.n1.p25-33.2017

Thiébaud, E., Hilty, L. M., Schluep, M., & Faulstich, M. (2017). Use, storage, and disposal of electronic equipment in Switzerland. Environmental science & technology, 51(8), 4494-4502. https://doi.org/10.1021/acs.est.6b06336

Ulya, S. F., Sukestiyarno, Y., & Hendikawati, P. (2018). Analisis Prediksi Quick Count Dengan Metode Stratified Random Sampling Dan Estimasi Confidence Interval Menggunakan Metode Maksimum Likelihood. Unnes Journal of Mathematics, 7(1), 108–119.

Wang, F., Huisman, J., Stevels, A., & Baldé, C. P. (2013). Enhancing e-waste estimates: Improving data quality by multivariate Input–Output Analysis. Waste management, 33(11), 2397-2407. https://doi.org/10.1016/j.wasman.2013.07.005

Wardianto, F., Wijayanti, A., & Purwaningrum, P. (2023). Kajian Pengelolaan Limbah Padat Bahan Berbahaya dan Beracun (B3) Rumah Tangga di Jakarta Barat. Infomatek, 25(2), 143-152. https://doi.org/10.23969/infomatek.v25i2.9767

Widmer, R., Oswald-Krapf, H., Sinha-Khetriwal, D., Schnellmann, M., & Böni, H. (2005). Global perspectives on e-waste. Environmental impact assessment review, 25(5), 436-458. https://doi.org/10.1016/j.eiar.2005.04.001

Widyarsana, I. M. W., Supramono, D. S., & Fadel, N. (2021). Electronic Waste Generation Prediction in Bandung City, Indonesia. Rigas Tehniskas Universitates Zinatniskie Raksti, 25(1), 111-120. https://doi.org/10.2478/rtuect-2021-0007

Wiwik, W. S. (2018). Model Penanganan dan Potensi Ekonomis yang Tersisa Pada Sampah Elektronik (E-waste): Kasus Sampah Elektronik AC, Kulkas dan Mesin Cuci di Kota Padang (Doctoral dissertation, Universitas Andalas). http://scholar.unand.ac.id/id/eprint/34263

Wong, M. H., Wu, S. C., Deng, W. J., Yu, X. Z., Luo, Q., Leung, A. O. W., & Wong, A. S. (2007). Export of toxic chemicals–a review of the case of uncontrolled electronic-waste recycling. Environmental pollution, 149(2), 131-140. https://doi.org/10.1016/j.envpol.2007.01.044

Zeng, X., Mathews, J. A., & Li, J. (2018). Urban mining of e-waste is becoming more cost-effective than virgin mining. Environmental science & technology, 52(8), 4835-4841. https://doi.org/10.1021/acs.est.7b04909

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Published

2026-06-11

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