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生物塑料的需氧生物降解的时间框架在标准条件和模拟生物废物的技术堆肥条件下有所不同。

Timeframe of aerobic biodegradation of bioplastics differs under standard conditions and conditions simulating technological composting with biowaste.

机构信息

Department of Environmental Biotechnology, Faculty of Geoengineering, University of Warmia and Mazury in Olsztyn, Słoneczna Str. 45G, Olsztyn, Poland.

Department of Environmental Biotechnology, Faculty of Geoengineering, University of Warmia and Mazury in Olsztyn, Słoneczna Str. 45G, Olsztyn, Poland.

出版信息

J Environ Manage. 2024 Oct;369:122399. doi: 10.1016/j.jenvman.2024.122399. Epub 2024 Sep 5.

Abstract

To determine the actual timeframe of biodegradation, bioplastics (BPs) (based on polylactic acid (PLA), starch (FS), polybutylene succinate (PBS), cellulose (Cel)) were degraded with biowaste (B), which simulates real substrate technological conditions during composting. For comparison, standard conditions (with mature compost (C)) were also applied. The 90-day aerobic tests, both with C or B, were carried out at 58 ± 2 °C. This comparison enables understanding of how BPs behave in real substrate conditions and how C and B affect the time or completeness of degradation based on oxygen consumption (OC) for BPs, the ratio of OC to theoretical oxygen consumption (OC/Th-O), and the decrease in volatile solids (VS). Additionally, for deeper insight into the biodegradation process, microscopic, microbial (based on 16S rDNA), FTIR, and mechanical (tensile strength, elongation at break) analyses were performed. There was no association between the initial mechanical properties of BPs and the time necessary for their biodegradation. BPs lost their mechanical properties and remained visible for a shorter time when degraded with C than with B. OC for Cel, FS, PLA, and PBS biodegradation was 1143, 1654, 1748, and 1211g O/kg, respectively, which amounted to 83, 70, 69, and 60% of the theoretical OC (Th-O), respectively. Intensive OC took place at the same time as an intensive decrease in VS content. With C, Cel was most susceptible to biodegradation (completely biodegrading within 11 days), and PLA was least susceptible (requiring 70 days for complete biodegradation). With B, however, the time required for biodegradation was generally longer, and the differences in the time needed for complete biodegradation were smaller, ranging from 45 d (FS) to 75 d (PLA). The use of C or B had the greatest effect on Cel biodegradation (10 d vs 62 d, respectively), and the least effect on PLA (70 d vs 75 d). Specific bacterial and fungal community structures were identified as potential BP biodegraders; the communities depended on the type of BPs and the substrate conditions. In conclusion, the time needed for biodegradation of these BPs varied widely depending on the specific bioplastic and the substrate conditions; the biodegradability decreased in the following order: Cel ≫ FS ≫ PBS ≫ PLA with C and FS ≫ Cel = PBS ≫ PLA with B. The biodegradability ranking of BPs with B was assumed to be ultimate as it simulates the real substrate conditions during composting. However, all of the BPs completely biodegraded in less than 90 days.

摘要

为了确定生物降解的实际时间框架,使用生物废物(B)对生物塑料(BP)(基于聚乳酸(PLA)、淀粉(FS)、聚丁二酸丁二醇酯(PBS)、纤维素(Cel))进行了降解,该生物废物模拟了堆肥过程中的实际底物技术条件。为了进行比较,还应用了标准条件(使用成熟堆肥(C))。90 天的需氧测试,无论是使用 C 还是 B,均在 58±2°C 下进行。这种比较使我们能够了解 BP 在实际底物条件下的行为方式,以及 C 和 B 如何根据 BP 的耗氧量(OC)、OC 与理论耗氧量(OC/Th-O)的比值以及挥发性固体(VS)的减少来影响降解的时间或完全程度。此外,为了更深入地了解生物降解过程,还进行了微观、微生物(基于 16S rDNA)、傅里叶变换红外光谱(FTIR)和机械(拉伸强度、断裂伸长率)分析。BP 初始机械性能与生物降解所需时间之间没有关联。当用 C 降解时,BP 失去机械性能并且比用 B 降解时更短时间内变得不可见。Cel、FS、PLA 和 PBS 生物降解的 OC 分别为 1143、1654、1748 和 1211g O/kg,分别相当于理论 OC(Th-O)的 83%、70%、69%和 60%。OC 的大量消耗与 VS 含量的大量减少同时发生。用 C 时,Cel 最容易生物降解(在 11 天内完全生物降解),PLA 最难生物降解(需要 70 天才能完全生物降解)。然而,用 B 时,生物降解所需的时间通常更长,完全生物降解所需的时间差异较小,范围从 45d(FS)到 75d(PLA)。C 或 B 的使用对 Cel 生物降解的影响最大(分别为 10d 和 62d),对 PLA 的影响最小(分别为 70d 和 75d)。已确定特定的细菌和真菌群落结构是 BP 生物降解的潜在因素;群落取决于 BP 的类型和底物条件。总之,这些 BP 的生物降解所需时间差异很大,具体取决于特定的生物塑料和底物条件;生物降解性按以下顺序降低:Cel>FS>PBS>PLA 用 C 和 FS>Cel=PBS>PLA 用 B。B 时 BP 的生物降解性排序被认为是最终的,因为它模拟了堆肥过程中的实际底物条件。然而,所有 BP 在不到 90 天的时间内完全生物降解。

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