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比较冷等离子体、超声和碱性过氧化氢预处理园林废弃物以增强随后与厨余垃圾共堆肥中的腐殖化:性能和机制。

Comparison between cold plasma, ultrasonication, and alkaline hydrogen peroxide pretreatments of garden waste to enhance humification in subsequent composting with kitchen waste: Performance and mechanisms.

机构信息

Beijing Key Laboratory of Farmland Soil Pollution Prevention and Remediation, College of Resources and Environmental Sciences, China Agricultural University, Beijing 100193, China.

Centre for Technology in Water and Wastewater, School of Civil and Environmental Engineering, University of Technology Sydney, Ultimo, NSW 2007, Australia.

出版信息

Bioresour Technol. 2022 Jun;354:127228. doi: 10.1016/j.biortech.2022.127228. Epub 2022 Apr 25.

Abstract

This study compared the performance and mechanisms of cold plasma, ultrasonication, and alkali-assisted hydrogen peroxide for garden waste pretreatment to advance humification in composting with kitchen waste. High-throughput sequencing integrated with Functional Annotation of Prokaryotic Taxa was used to relate bacterial dynamics to humification. Results show that all pretreatment techniques accelerated humification by 37.5% - 45.7% during composting in comparison to the control treatment. Ultrasonication and alkalization preferred to decompose lignocellulose to produce humus precursors in garden waste, thereby facilitating humus formation at the beginning of composting. By contrast, cold plasma was much faster and simpler than other pretreatment techniques to effectively disrupt the surface structure and reduce the crystallinity of garden waste to enrich functional bacteria for aerobic chemoheterotrophy, xylanolysis, cellulolysis, and ligninolysis during composting. As such, a more robust bacterial community was developed after cold plasma pretreatment to advance humification at the mature stage of composting.

摘要

本研究比较了冷等离子体、超声和碱辅助过氧化氢对花园废物进行预处理的性能和机制,以促进厨余垃圾堆肥中的腐殖化。高通量测序与功能注释原核分类群相结合,将细菌动态与腐殖化相关联。结果表明,与对照处理相比,所有预处理技术都能在堆肥过程中使腐殖化加速 37.5%至 45.7%。超声和碱化更倾向于分解木质纤维素,在花园废物中产生腐殖质前体,从而在堆肥初期促进腐殖质的形成。相比之下,冷等离子体比其他预处理技术更快、更简单,能够有效地破坏表面结构,降低花园废物的结晶度,富集功能细菌,促进好氧化学生物异养、木聚糖分解、纤维素分解和木质素分解,从而在堆肥的成熟阶段形成更健壮的细菌群落,促进腐殖化。

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