...
首页> 外文期刊>Journal of Polymers and the Environment >Effect of Environmental Weathering on Biodegradation of Biodegradable Plastic Mulch Films under Ambient Soil and Composting Conditions
【24h】

Effect of Environmental Weathering on Biodegradation of Biodegradable Plastic Mulch Films under Ambient Soil and Composting Conditions

机译:环境风化对环境土壤和堆肥条件下可生物降解塑料覆盖膜生物降解的影响

获取原文
获取原文并翻译 | 示例
           

摘要

Plastic mulch films contribute to better crop production. Concerns for lack of sustainable disposal methods for conventional polyethylene (PE) mulch led to development of biodegradable plastic mulches (BDMs) that can be soil-incorporated or composted after use. Environmental weathering of BDMs during crop growth reduces their mechanical strength and alters the molecular structure of their polymeric components. However, the impact of weathering on BDMs' biodegradability is not fully understood. The biodegradability of agriculturally weathered and unweathered BDMs in soil and compost was compared using standardized laboratory tests (ASTM D5988 and D5338) using four BDMs (experimental polylactic acid and polyhydroxyalkanoate-based film [PLA/PHA] and three commercially available polybutyrate [PBAT]-based BDMs). In soil, biodegradation of weathered PLA/PHA was greater than its unweathered counterpart. For PBAT-based BDMs, the extent of biodegradation varied. A decrease of the weight-averaged molecular weight (M-w) of PBAT and PLA and thermostability of PLA, PHA, PBAT, and starch components was observed during biodegradation in the soil. The proportion of the minor components PHA and starch decreased during biodegradation, indicating preferential utilization of PHA over PLA and starch over PBAT by microbes. Bacterial abundance was significantly higher than fungal abundance in soil and was more prominent in soil adjacent to weathered than unweathered BDM treatments. Under composting conditions, unweathered PBAT-enriched mulches yielded higher CO2 evolution than their weathered counterpart. Together, these results suggest that environmental weathering enhances biodegradation of BDMs and mulch's polymeric constituents also influence the microbial degradation, more so for bacterial than fungal communities.
机译:塑料覆盖膜有助于更好的作物生产。对于常规聚乙烯(PE)覆盖物缺乏可持续处理方法的担忧导致可生物降解的塑料覆盖物(BDMS)的开发,可在使用后掺入土壤或堆肥。在作物生长期间BDM的环境风化降低了它们的机械强度,并改变了它们的聚合物组分的分子结构。然而,风化对BDMS生物降解性的影响尚未完全理解。使用四种BDMS(实验性聚乳酸和聚羟基烷基膜[PLA / PHA]和三种商业化的聚丁酸酯[PBAT]使用标准化实验室测试(ASTM D5988和D5338)进行土壤和堆肥中农业风化和堆肥中的生物降解性和堆肥的生物降解性。基于BDMS)。在土壤中,被风化的PLA / PHA的生物降解大于其未亮的对应物。对于基于PBAT的BDMS,生物降解程度变化。在土壤中的生物降解期间观察到PBAT和PLA的重量平均分子量(M-W)和PLA,PLA,PBAT和淀粉组分的热稳定性的降低。生物降解期间小组分PHA和淀粉的比例降低,表明通过微生物在PBAT上优先利用PHA和淀粉。细菌丰度明显高于土壤中的真菌丰度,并且在与未曝光的BDM治疗中相邻的土壤中更突出。在堆肥条件下,未经曝气的PBAT富含覆盖率比其风化的对手产生更高的二氧化碳演化。这些结果表明,环境风化增强了BDMS的生物降解,覆盖物的聚合物成分也影响微生物降解,比真菌社区更高。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号