Biokinetic modeling approach to investigate the impact of rotational speed variations in modified rotating biological contactors for palm oil mill effluent treatment

Q1 Environmental Science
Rais Rahmadi , Allifiya Salsabil Nugrohoputri , Mayandra Salsabhila Adam , Ariani Dwi Astuti , Jinwoo Cho , Allen Kurniawan
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引用次数: 0

Abstract

Palm oil mill effluent (POME) contains high organic content, posing significant environmental challenges that demand effective treatment solutions. Conventional rotating biological contactor (RBC) used for POME treatment are limited by insufficient surface area for microbial growth and inefficient oxygen transfer, limiting their effectiveness. This study enhances RBC systems by incorporating bioballs to increase microbial attachment surfaces and improve treatment performance. Experiments were conducted at various rotational speeds, and biokinetic modeling was applied under unsteady-state conditions. The results showed that the RBC operated at 3 rpm achieved the highest removal efficiencies, with 67.4 % for SCOD, 92.4 % for TSS, and 73 % for NH3. The biokinetic model revealed that rotational speed did not significantly impact oxygen transfer, mainly during the aeration phase. Lower speeds optimized substrate degradation and microbial growth, while higher speeds caused biofilm detachment. The innovative use of bioballs improves POME treatment efficiency at lower speeds, offering a cost-effective solution.

Abstract Image

采用生物动力学建模方法研究改良旋转生物接触器转速变化对棕榈油厂污水处理的影响
棕榈油厂污水(POME)含有大量有机物,给环境带来了巨大挑战,需要有效的处理解决方案。用于处理 POME 的传统旋转生物接触器(RBC)因微生物生长的表面积不足和氧气传输效率低下而受到限制,从而限制了其有效性。本研究通过加入生物球来增强 RBC 系统,从而增加微生物附着表面,提高处理性能。实验在不同转速下进行,并在非稳态条件下应用了生物动力学模型。结果表明,转速为 3 rpm 的 RBC 去除效率最高,SCOD 去除率为 67.4%,TSS 去除率为 92.4%,NH3 去除率为 73%。生物动力学模型显示,转速对氧气传输的影响不大,主要是在曝气阶段。较低的转速可优化基质降解和微生物生长,而较高的转速则会导致生物膜脱落。生物球的创新使用提高了较低转速下的 POME 处理效率,提供了一种具有成本效益的解决方案。
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来源期刊
Bioresource Technology Reports
Bioresource Technology Reports Environmental Science-Environmental Engineering
CiteScore
7.20
自引率
0.00%
发文量
390
审稿时长
28 days
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