作物学报 ›› 2022, Vol. 48 ›› Issue (1): 193-202.doi: 10.3724/SP.J.1006.2022.02092
阮俊梅1(
), 张俊1, 刘猷红2, 董文军2, 孟英2, 邓艾兴1, 杨万深1, 宋振伟1,*(
), 张卫建1
RUAN Jun-Mei1(
), ZHANG Jun1, LIU You-Hong2, DONG Wen-Jun2, MENG Ying2, DENG Ai-Xing1, YANG Wan-Shen1, SONG Zhen-Wei1,*(
), ZHANG Wei-Jian1
摘要:
东北地区是全球气候变暖趋势最为显著的地区之一, 研究预期增温对东北水稻氮素吸收利用的影响, 可为区域水稻可持续生产与氮肥优化管理提供借鉴。本研究于2019—2020年在黑龙江省哈尔滨市设置田间开放式增温(free air temperature increase, FATI)系统, 大田与盆栽试验相结合, 采用15N同位素示踪技术, 模拟预期增温(+1.5℃)对水稻产量、氮素利用以及氮肥去向的影响。结果表明, 增温促进了水稻地上部干物质积累, 与对照相比, 大田与盆栽的水稻产量2年平均分别提高10.4%和10.8%; 增温显著提高了水稻氮素吸收总量, 与对照相比, 2年平均增幅达21.3%, 但增温处理的氮素籽粒利用效率呈降低趋势; 增温处理下水稻从肥料中吸收的氮素显著下降, 但从土壤中吸收的氮素显著增加31.1%, 导致氮肥回收率降低12.5%, 而氮肥损失率增加14.2%。总体来看, 增温有增加水稻籽粒产量的趋势, 但降低了水稻对肥料氮的吸收比例, 导致氮素利用效率降低, 氮肥损失率显著增加。在气候变暖背景下, 建议合理增加水稻移栽密度, 以充分利用温度升高对水稻产量的正向效应, 适当减少氮肥施用量、优化氮肥运筹管理, 提高水稻氮素利用效率。
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