Restructuring tilth layers(RTL)is a tillage method that exchanges the 0–20 and 20–40 cm soil layers that can be applied during cotton cultivation to increase cotton yield,eliminate weeds and alleviate severe disease...Restructuring tilth layers(RTL)is a tillage method that exchanges the 0–20 and 20–40 cm soil layers that can be applied during cotton cultivation to increase cotton yield,eliminate weeds and alleviate severe disease,including Verticillium wilt.However,the mechanism by which RTL inhibits Verticillium wilt is unclear.Therefore,we investigated the distribution of microbial communities after rotary tillage(CK)and RTL treatments to identify the reasons for the reduction of Verticillium wilt in cotton fields subjected to RTL.Illumina high-throughput sequencing was used to sequence the bacterial and fungal genes.The disease incidence and severity of Verticillium wilt decreased by 28.57%and 42.64%,respectively,after RTL.Moreover,RTL significantly enhanced bacterial richness and evenness at 20–40 cm and-reduced the differences in fungal evenness and richness between soil depths of 0–20 and 20–40 cm.The number of Verticillium dahliae decreased,while the relative abundance of biocontrol bacteria such as Bacillus and Pseudoxanthomonas increased significantly following RTL.Overall RTL improved bacterial diversity,decreased the number of Verticillium dahliae and increased the relative abundance of biocontrol bacteria,which may have suppressed the occurrence of Verticillium wilt in cotton fields.展开更多
统筹推进我国燃煤发电(简称“煤电”)转型升级,推动煤电功能定位转变,是实现“双碳”目标和加快构建新型电力系统的重要任务。针对我国燃煤发电转型升级的迫切需求,该文分析当前我国煤电的装机规模及其特点,评估了煤电的能耗、灵活性和...统筹推进我国燃煤发电(简称“煤电”)转型升级,推动煤电功能定位转变,是实现“双碳”目标和加快构建新型电力系统的重要任务。针对我国燃煤发电转型升级的迫切需求,该文分析当前我国煤电的装机规模及其特点,评估了煤电的能耗、灵活性和碳排放3方面的发展水平,解析我国煤电未来发展方向,重点探讨了煤电热力系统重构、煤电与储能融合、煤电与其他能源及碳捕集、利用与封存(carbon capture,utilization and storage,CCUS)的互补集成、“安全、高效、清洁、低碳、灵活”多目标协同4个方面的发展路径,提出新一代煤电高质量发展的基本思路。面向新形势下“安全、高效、清洁、低碳、灵活”的发展目标,未来我国煤电机组需要开展热力系统深度重构,通过热力系统的大范围重新设计、优化或改造,提高机组效率和灵活性、降低能耗和碳排放;可以将储热、飞轮、压缩空气等储能与煤电系统有机融合,突破煤电机组自身调节潜力约束,拓宽煤电机组的调节区间,提升机组变负荷能力和效率;充分利用煤电机组内丰富的物质流和能量流,可将煤电与其他能源或系统在多个环节匹配耦合,实现整体的多能互补能量梯级利用,提升总体能效与低碳水平;应重点从设计和运行两个维度实现多目标协同,在设计阶段注重高效清洁技术的集成与智能化、自动化,在运行过程中采用智能化、精细化控制策略。该文旨在增强煤电战略价值认知,为我国煤电转型升级提供理论参考和路径建议,助力新一代煤电在推进“双碳”进程和构建新型电力系统中发挥更广泛、更积极作用。展开更多
基金supported by the Basic Research Funds of Hebei Academy of Agriculture and Forestry Sciences(2021070201)Natural Science Foundation of Hebei Province(C2019301097)China Agriculture Research System-Cotton(CARS-15-18).
文摘Restructuring tilth layers(RTL)is a tillage method that exchanges the 0–20 and 20–40 cm soil layers that can be applied during cotton cultivation to increase cotton yield,eliminate weeds and alleviate severe disease,including Verticillium wilt.However,the mechanism by which RTL inhibits Verticillium wilt is unclear.Therefore,we investigated the distribution of microbial communities after rotary tillage(CK)and RTL treatments to identify the reasons for the reduction of Verticillium wilt in cotton fields subjected to RTL.Illumina high-throughput sequencing was used to sequence the bacterial and fungal genes.The disease incidence and severity of Verticillium wilt decreased by 28.57%and 42.64%,respectively,after RTL.Moreover,RTL significantly enhanced bacterial richness and evenness at 20–40 cm and-reduced the differences in fungal evenness and richness between soil depths of 0–20 and 20–40 cm.The number of Verticillium dahliae decreased,while the relative abundance of biocontrol bacteria such as Bacillus and Pseudoxanthomonas increased significantly following RTL.Overall RTL improved bacterial diversity,decreased the number of Verticillium dahliae and increased the relative abundance of biocontrol bacteria,which may have suppressed the occurrence of Verticillium wilt in cotton fields.
文摘统筹推进我国燃煤发电(简称“煤电”)转型升级,推动煤电功能定位转变,是实现“双碳”目标和加快构建新型电力系统的重要任务。针对我国燃煤发电转型升级的迫切需求,该文分析当前我国煤电的装机规模及其特点,评估了煤电的能耗、灵活性和碳排放3方面的发展水平,解析我国煤电未来发展方向,重点探讨了煤电热力系统重构、煤电与储能融合、煤电与其他能源及碳捕集、利用与封存(carbon capture,utilization and storage,CCUS)的互补集成、“安全、高效、清洁、低碳、灵活”多目标协同4个方面的发展路径,提出新一代煤电高质量发展的基本思路。面向新形势下“安全、高效、清洁、低碳、灵活”的发展目标,未来我国煤电机组需要开展热力系统深度重构,通过热力系统的大范围重新设计、优化或改造,提高机组效率和灵活性、降低能耗和碳排放;可以将储热、飞轮、压缩空气等储能与煤电系统有机融合,突破煤电机组自身调节潜力约束,拓宽煤电机组的调节区间,提升机组变负荷能力和效率;充分利用煤电机组内丰富的物质流和能量流,可将煤电与其他能源或系统在多个环节匹配耦合,实现整体的多能互补能量梯级利用,提升总体能效与低碳水平;应重点从设计和运行两个维度实现多目标协同,在设计阶段注重高效清洁技术的集成与智能化、自动化,在运行过程中采用智能化、精细化控制策略。该文旨在增强煤电战略价值认知,为我国煤电转型升级提供理论参考和路径建议,助力新一代煤电在推进“双碳”进程和构建新型电力系统中发挥更广泛、更积极作用。