Enhanced bio-drying effect in low-temperature: Characteristics of sludge hyperthermophilic aerobic bio-drying by inoculating with thermophilic bacteria and full-scale operation

IF 2.7 3区 工程技术 Q3 ENGINEERING, CHEMICAL Drying Technology Pub Date : 2023-05-10 DOI:10.1080/07373937.2023.2210213
Haoyu Quan, Tong Zhu, Feng Ma, Kuo Zhang, Y. Zhu, Youzhao Wang, Zhenning Lyu
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Abstract

Abstract Low-temperature environment leads to a weakened ability of sludge bio-drying to drive system evaporation and the system’s water removal capacity of aeration (ΣF·ΔP), significantly reducing water removal rate and consequent decrease of the bio-drying index. The bio-drying system maintains more microorganisms active by inoculating with thermophilic bacteria to produce heat when it reaches above 55 °C to enhance the temperature cumulation and ΣF·ΔP to remove moisture and shorten the bio-drying time rapidly. The results showed that the percentage of the thermophilic period (T ≥ 55 °C) and hyperthermophile period (T ≥ 70 °C) of the hyperthermophilic pile was 67.16% and 30.14%, respectively. In comparison, only the thermophilic period of 5.48% existed in the conventional pile. The moisture content of the hyperthermophilic pile decreased from 51.23% to 41.52% in 12 days and decreased from 50.25% to 41.35% in 21 days that in the conventional pile. Meanwhile, the hyperthermophilic pile had a faster VS consumption rate and higher bio-drying index than the conventional pile. The microbial community composition showed that the hyperthermophilic pile mainly comprised thermophilic bacteria, such as Thermopolyspora, and hyperthermophilic bacteria, such as Thermus. The full-scale operation in the plants showed that the sludge inoculated with thermophilic bacteria reached the bio-drying requirement within 12 days with a maximum temperature of 94 °C, which significantly shortened the time of bio-drying and increased the sludge treatment capacity. Graphical abstract
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增强低温下的生物干燥效果:通过接种嗜热菌和大规模操作污泥超嗜热好氧生物干燥的特点
低温环境导致污泥生物干燥驱动系统蒸发的能力和系统曝气除水能力(ΣF·ΔP)减弱,去除率显著降低,生物干燥指标随之下降。生物干燥系统通过接种嗜热细菌在55℃以上产生热量,增强温度积累,ΣF·ΔP快速去除水分,缩短生物干燥时间,保持更多的微生物活性。结果表明:嗜热期(T≥55°C)和超嗜热期(T≥70°C)的比例分别为67.16%和30.14%。相比之下,常规桩只存在5.48%的亲热期。超亲热桩的含水率在12 d内由51.23%下降到41.52%,在21 d内由50.25%下降到41.35%。与常规桩相比,超嗜热桩具有更快的VS消耗率和更高的生物干燥指数。微生物群落组成表明,超嗜热菌群主要由嗜热菌(Thermopolyspora)和超嗜热菌(Thermus)组成。在工厂的全面运行表明,接种了嗜热细菌的污泥在12天内达到了生物干燥要求,最高温度为94℃,显著缩短了生物干燥时间,提高了污泥处理能力。图形抽象
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来源期刊
Drying Technology
Drying Technology 工程技术-工程:化工
CiteScore
7.40
自引率
15.20%
发文量
133
审稿时长
2 months
期刊介绍: Drying Technology explores the science and technology, and the engineering aspects of drying, dewatering, and related topics. Articles in this multi-disciplinary journal cover the following themes: -Fundamental and applied aspects of dryers in diverse industrial sectors- Mathematical modeling of drying and dryers- Computer modeling of transport processes in multi-phase systems- Material science aspects of drying- Transport phenomena in porous media- Design, scale-up, control and off-design analysis of dryers- Energy, environmental, safety and techno-economic aspects- Quality parameters in drying operations- Pre- and post-drying operations- Novel drying technologies. This peer-reviewed journal provides an archival reference for scientists, engineers, and technologists in all industrial sectors and academia concerned with any aspect of thermal or nonthermal dehydration and allied operations.
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