Continuous co-digestion of sewage sludge and highly concentrated waste bioplastic hydrolyzate without shortening hydraulic retention time

Shinya Akimoto , Jun Tsubota , Taira Hidaka , Taku Fujiwara
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Abstract

Bioplastics have garnered substantial interest as alternatives to conventional petroleum-based plastics. However, their management and conversion to biogas continues to be significantly challenging. In this study, we evaluated the suitability of various plastics for hydrolysis at 160 °C for 12 h using different solvents. The biogas yield (BGY) of the monomers constituting these plastics and the obtained plastic hydrolyzates was comprehensively evaluated. When water was used as a solvent, 100 % hydrolysis of polylactic acid (PLA) and polybutylene succinate (PBS) was observed. When polybutylene adipate co-terephthalate (PBAT) and polyhydroxybutyrate (PHB) were hydrolyzed with water, the degradation ratio was approximately 30 %; however, using an aqueous lactic acid solution as a solvent improved the degradation ratio to 78 % and 100 %, respectively. In the BGY test of the plastic hydrolyzates, the biogas volumes derived from the hydrolyzates were 563, 461, 337, and 573 mL/g COD-added for PLA, PBS, PBAT, and PHB, respectively. With 1,160 gCOD/L waste PLA hydrolyzate, continuous co-digestion of sewage sludge and the hydrolyzate was conducted. Organic loading rates of sewage sludge and the hydrolyzate were 2.3 and 2.4 gCOD/L/d, respectively. The operation was stable and the methane production volume from the PLA hydrolyzate was 414 L/kgCOD-added. Using highly concentrated PLA hydrolyzate, the hydraulic retention time was 19.3 days, which was only 0.7 days shorter than that of anaerobic digestion of sewage sludge only (20 days). Therefore, highly concentrated PLA hydrolyzate maintains the retention time of normal sewage sludge digestion. Conclusively, the present study has crucial practical implications for plastic waste management.

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在不缩短水力停留时间的情况下,持续协同消化污水污泥和高浓度废弃生物塑料水解物
作为传统石油基塑料的替代品,生物塑料已经引起了人们的极大兴趣。然而,管理这些塑料并将其转化为沼气仍然是一项巨大的挑战。在这项研究中,我们评估了各种塑料在 160 °C 下使用不同溶剂水解 12 小时的适宜性。我们全面评估了构成这些塑料的单体和获得的塑料水解物的沼气产率(BGY)。以水为溶剂时,聚乳酸(PLA)和聚丁二酸丁二醇酯(PBS)的水解率均为 100%。用水水解聚己二酸丁二醇酯(PBAT)和聚羟基丁酸酯(PHB)时,降解率约为 30%;但使用乳酸水溶液作为溶剂后,降解率分别提高到 78% 和 100%。在塑料水解物的 BGY 试验中,聚乳酸、PBS、PBAT 和 PHB 的水解物产生的沼气量分别为 563、461、337 和 573 mL/g COD-added。利用 1,160 gCOD/L 废聚乳酸水解物,对污水污泥和水解物进行了连续共消化。污水污泥和水解物的有机负荷率分别为 2.3 和 2.4 gCOD/L/d。运行稳定,聚乳酸水解物的甲烷产量为 414 升/千克 COD-添加量。使用高浓度聚乳酸水解物,水力停留时间为 19.3 天,仅比仅厌氧消化污水污泥的时间(20 天)短 0.7 天。因此,高浓度聚乳酸水解物可保持正常污水污泥消化的滞留时间。总之,本研究对塑料废物管理具有重要的实际意义。
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