Fellah, Maroua and Alam, Md. Zahangir and Mamun, Abdullah Al and Benoudjit, Abdel Mohsen and Kabbashi, Nassereldeen Ahmed and Engliman, Nurul Sakinah (2026) Optimization and scale-up of solid-state bioconversion for microbial coagulant production toward sustainable water treatment. IIUM Engineering Journal, 27 (2). pp. 15-30. ISSN 1511-788X E-ISSN 2289-7860
|
PDF
- Published Version
Restricted to Registered users only Download (6MB) | Request a copy |
||
|
PDF
- Supplemental Material
Download (575kB) | Preview |
|
|
PDF
- Supplemental Material
Download (223kB) | Preview |
Abstract
Microbial coagulants are emerging as an eco-friendly alternative to chemical coagulants owing to their non-toxicity, biodegradability, and sustainability. However, their use is limited by high production costs linked to expensive nutrient media and scalability issues. To address these challenges, this study developed a cost-effective microbial coagulant based on a fungus using cocopeat as a substrate. Growth conditions (malt extract, glucose, and pH) were optimized using the Face-Centered Central Composite Design (FCCCD) under Response Surface Methodology (RSM) to maximize coagulant yield. The performance in water treatment was evaluated using jar tests, and large-scale production techniques were investigated using a tray bioreactor and an agitated drum bioreactor (ADB). The fungal strain used in this study was identified as Phanerochaete concrescens, which demonstrated high turbidity-reducing efficiency, achieving a maximum flocculating activity of 93.06% in a standard jar test. These results were obtained under statistically optimized growth conditions, specifically 5 days of incubation at 25°C, 70% moisture content, 3% malt extract, 2.5% glucose, and pH 7, confirming model predictions. Phanerochaete concrescens was successfully scaled using a tray fermenter, achieving a flocculation rate of 92% after 5 days of incubation at 70% moisture, pH 7, and a 3 cm substrate thickness. However, in a 30 L agitated bioreactor drum, flocculating activity was recorded at 29% due to insufficient fungal growth at the tested agitation rate. This study confirms the feasibility of a cost-effective microbial coagulant that can be scaled appropriately, offering a sustainable and biodegradable alternative to chemical coagulants.
| Item Type: | Article (Journal) |
|---|---|
| Uncontrolled Keywords: | microbial coagulant, response surface methodology, solid-state bioconversion, scale-up, water treatment |
| Subjects: | T Technology > TD Environmental technology. Sanitary engineering > TD201 Water supply for domestic and industrial purposes |
| Kulliyyahs/Centres/Divisions/Institutes (Can select more than one option. Press CONTROL button): | Kulliyyah of Engineering > Department of Biotechnology Engineering |
| Depositing User: | Dr Nassereldeen Kabbashi |
| Date Deposited: | 15 Jul 2026 10:43 |
| Last Update: | 15 Jul 2026 10:43 |
| Queue Number: | 2026-07-Q3966 |
| URI: | http://irep.iium.edu.my/id/eprint/129787 |
Actions (login required)
![]() |
View Item |
