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滴灌水肥一体化配施有机肥对土壤N2O排放与酶活性的影响 被引量:15
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作者 奚雅静 汪俊玉 +6 位作者 李银坤 武雪萍 李晓秀 王碧胜 李生平 宋霄君 刘彩彩 《中国农业科学》 CAS CSCD 北大核心 2019年第20期3611-3624,共14页
【目的】通过在有机肥基础上增施不同量无机氮,研究滴灌水肥一体化条件下温室番茄土壤N2O排放和脲酶(UR)、硝酸还原酶(NR)、亚硝酸还原酶(Ni R)以及羟胺还原酶(Hy R)活性的动态变化,分析各处理土壤N2O排放特征及土壤UR、NR、Ni R和Hy R... 【目的】通过在有机肥基础上增施不同量无机氮,研究滴灌水肥一体化条件下温室番茄土壤N2O排放和脲酶(UR)、硝酸还原酶(NR)、亚硝酸还原酶(Ni R)以及羟胺还原酶(Hy R)活性的动态变化,分析各处理土壤N2O排放特征及土壤UR、NR、Ni R和Hy R活性对土壤N2O排放的影响,揭示在滴灌水肥一体化下N2O排放过程机制。【方法】试验共设CK(不施氮)、N1(200 kg·hm^-2有机氮)、N2(200 kg·hm^-2有机氮+250 kg·hm^-2无机氮)、N3(200 kg·hm^-2有机氮+475 kg·hm^-2无机氮)4个处理。采用静态箱-气相色谱法,对番茄生育期内土壤N2O排放、土壤酶活性、土壤温湿度等进行监测。【结果】滴灌水肥一体化,各施氮处理均在施肥+灌溉后第1天出现N2O排放高峰,随着时间推移不断下降,不同处理番茄整个生育期N2O排放通量在0.98—1544.79μg·m^-2·h^-1。土壤N2O排放总量差异显著,依次为N3((7.13±0.11)kg·hm^-2)>N2((4.87±0.21)kg·hm^-2)>N1((2.54±0.17)kg·hm^-2)>CK((1.56±0.23)kg·hm^-2),与N3相比,处理N1、N2土壤N2O排放总量分别降低了64.38%、31.70%。番茄生育期内N2O季节排放特征明显,秋季高,冬季低。土壤氮素转化相关酶活性大致随施氮量的升高而增高。土壤N2O排放通量与5 cm土壤温度、0—10 cm土层硝态氮含量、土壤NR活性及土壤Hy R活性均呈极显著正相关(P<0.01)。【结论】滴灌水肥一体化下,土壤微生物处于好气环境,土壤N2O主要来自于硝化过程,减少了由反硝化过程所产生的N2O排放。综合考虑番茄产量、品质、N2O排放等因素,推荐北方温室秋冬茬番茄施用200 kg·hm^-2有机氮+250 kg·hm^-2无机氮,75 kg·hm^-2 P2O5,450 kg·hm^-2 K2O较为适宜。 展开更多
关键词 N2O排放 土壤氮素转化相关酶 滴灌水肥一体化 温度 硝态氮 温室番茄
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增氧处理对稻田土壤微生物量碳、氮和酶活性的影响 被引量:4
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作者 张露 吴龙龙 +8 位作者 黄晶 田仓 祈军 张均华 曹小闯 朱春权 孔亚丽 金千瑜 朱练峰 《中国水稻科学》 CAS CSCD 北大核心 2022年第4期410-418,共9页
【目的】探讨增氧方式对稻田土壤微生物量碳、氮和土壤酶活性的影响。【方法】以中旱221(旱稻)、中浙优8号(水稻)和IR45765-3B(深水稻)为材料,研究微纳米气泡水增氧灌溉、干湿交替灌溉、淹水灌溉对稻田土壤微生物量碳、氮,土壤氮代谢作... 【目的】探讨增氧方式对稻田土壤微生物量碳、氮和土壤酶活性的影响。【方法】以中旱221(旱稻)、中浙优8号(水稻)和IR45765-3B(深水稻)为材料,研究微纳米气泡水增氧灌溉、干湿交替灌溉、淹水灌溉对稻田土壤微生物量碳、氮,土壤氮代谢作用强度和土壤氮素转化相关酶活性的影响。【结果】微纳米气泡水增氧灌溉和干湿交替灌溉可以显著提高稻田土壤微生物生物量碳、氮,中旱221、中浙优8号和IR45765-3B的增氧处理较淹水灌溉处理微生物生物量碳、氮分别增加了30.0%~46.1%和7.1%~92.1%,并且增氧处理降低了3个水稻品种的微生物量碳氮比;与淹水灌溉相比,微纳米气泡水增氧灌溉和干湿交替灌溉有助于提高稻田土壤脲酶、蔗糖酶、过氧化氢酶、蛋白酶、羟胺还原酶活性,降低硝酸还原酶活性和亚硝酸还原酶活性。【结论】微纳米气泡水增氧灌溉和干湿交替灌溉改善稻田土壤的氧化特性,提高土壤酶活性、微生物量碳、氮和硝化强度,有助于改善土壤环境和肥力状况,协调了C、N代谢的平衡。 展开更多
关键词 土壤 增氧灌溉 微生物生物量 氮循环强度 氮素转化相关酶
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Temporal changes in soil bacterial and archaeal communities with different fertilizers in tea orchards 被引量:5
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作者 Hua WANG Shao-hui YANG +3 位作者 Jing-ping YANG Ya-min LV Xing ZHAO Ji-liang PANG 《Journal of Zhejiang University-Science B(Biomedicine & Biotechnology)》 SCIE CAS CSCD 2014年第11期953-965,共13页
It is important to understand the effects of temporal changes in microbial communities in the acidic soils of tea orchards with different fertilizers. A field experiment involving organic fertilizer (OF), chemical f... It is important to understand the effects of temporal changes in microbial communities in the acidic soils of tea orchards with different fertilizers. A field experiment involving organic fertilizer (OF), chemical fertilizer (CF), and unfertilized control (CK) treatments was arranged to analyze the temporal changes in the bacterial and archaeal communities at bimonthly intervals based on the 16S ribosomal RNA (rRNA) gene using terminal restriction fragment length polymorphism (T-RFLP) profiling. The abundances of total bacteria, total archaea, and selected functional genes (bacterial and archaeal amoA, bacterial narG, nirK, nirS, and nosZ) were determined by quantitative poly- merase chain reaction (qPCR). The results indicate that the structures of bacterial and archaeal communities varied significantly with time and fertilization based on changes in the relative abundance of dominant T-RFs. The abundancy of the detected genes changed with time. The total bacteria, total archaea, and archaeal amoA were less abundant in July. The bacterial amoA and denitrifying genes were less abundant in September, except the nirK gene. The OF treatment increased the abundance of the observed genes, while the CF treatment had little influence on them. The soil temperature significantly affected the bacterial and archaeal community structures. The soil moisture was signif- icantly correlated with the abundance of denitrifying genes. Of the soil chemical properties, soil organic carbon was the most important factor and was significantly correlated with the abundance of the detected genes, except the nirK gene. Overall, this study demonstrated the effects of both temporal alteration and organic fertilizer on the structures of mi- crobial communities and the abundance of genes involved in the nitrogen cycle. 展开更多
关键词 Bacterial and archaeal communities FERTILIZER Soil Temporal changes Tea orchard Functional genes
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