Reaktor
Volume 26 No.2 August 2026

Micro-scale Biodrying of Municipal Waste for Refuse Derived Fuel (RDF) Production

Berlian Sitorus (Department of Chemistry, Faculty of Mathematics and Natural Sciences, Universitas Tanjungpura, Jl. Prof. Dr. H. Hadari Nawawi, 78124, Pontianak, Indonesia.)
Seno Darmawan Panjaitan (Department of Electrical Engineering, Faculty of Engineering, Universitas Tanjungpura, Jl. Prof. Dr. H. Hadari Nawawi, 78124, Pontianak, Indonesia.)
Yopa Eka Prawatya (Department of Industrial Engineering, Faculty of Engineering, Universitas Tanjungpura, Jl. Prof. Dr. H. Hadari Nawawi, 78124, Pontianak, Indonesia.)
Wivina Diah Ivontianti (Department of Chemical Engineering, Faculty of Engineering, Universitas Tanjungpura, Jl. Prof. Dr. H. Hadari Nawawi, 78124, Pontianak, Indonesia.)
Muhammad Ivanto (Department of Mechanical Engineering, Faculty of Engineering, Universitas Tanjungpura, Jl. Prof. Dr. H. Hadari Nawawi, 78124, Pontianak, Indonesia.)
Septami Setiawati (Department of Mining Engineering, Faculty of Engineering, Universitas Tanjungpura, Jl. Prof. Dr. H. Hadari Nawawi, 78124, Pontianak, Indonesia.)
Riysan Octy Shailindry (Department of Chemical Engineering, Faculty of Engineering, Universitas Tanjungpura, Jl. Prof. Dr. H. Hadari Nawawi, 78124, Pontianak, Indonesia.)
Maria Yeni Wahyuningsih (Department of Chemical Engineering, Faculty of Engineering, Universitas Tanjungpura, Jl. Prof. Dr. H. Hadari Nawawi, 78124, Pontianak, Indonesia.)
Benedikta Arni (Department of Chemical Engineering, Faculty of Engineering, Universitas Tanjungpura, Jl. Prof. Dr. H. Hadari Nawawi, 78124, Pontianak, Indonesia.)



Article Info

Publish Date
06 Aug 2026

Abstract

Municipal solid waste (MSW) continues to increase worldwide, driven by rapid urbanization and population growth. This study explores the biodrying process as a sustainable approach to convert MSW into refuse-derived fuel (RDF), offering an alternative renewable energy source. Biodrying, a biological phase within the mechanical–biological treatment (MBT) system, removes moisture through microbial activity supported by controlled aeration. The experiment evaluated different aeration rates (0, 6, and 8 L/min) and residence times (7, 14, and 21 days) to assess their impact on the quality of RDF. Higher aeration enhanced drying performance and increased the calorific value up to 4260 kcal/kg, while longer residence time improved moisture reduction and heating efficiency. However, the non-aerated condition (0 L/min) demonstrated greater process stability and energy efficiency, achieving 4044 kcal/kg with lower operational demand. Thus, while forced aeration improved RDF quality, the passive (non-aerated) setup represented the most energy-efficient operating condition. The optimal configuration, 0 L/min aeration and 7-day residence time, produced RDF with 8.2% moisture, 1.0% ash, 76.5% volatile matter, and 14.3% fixed carbon. The resulting RDF complied with SNI 8966:2021 Class II solid fuel standards, equivalent to low-grade brown coal (<7000 cal/g). These findings indicate that passive biodrying without forced aeration can effectively enhance RDF quality with minimal energy input. The process demonstrates a simple, low-cost, and energy-efficient strategy for transforming mixed municipal waste into renewable solid fuel, supporting the circular economy and sustainable energy goals.

Copyrights © 2026






Journal Info

Abbrev

reaktor

Publisher

Subject

Chemical Engineering, Chemistry & Bioengineering Control & Systems Engineering Energy Materials Science & Nanotechnology

Description

Reaktor invites contributions of original and novel fundamental research. Reaktor publishes scientific study/ research papers, industrial problem solving related to Chemical Engineering field as well as review papers. The journal presents paper dealing with the topic related to Chemical Engineering ...