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长期不同施肥处理对红壤水稻土酶活性及微生物群落功能多样性的影响 总被引:22,自引:0,他引:22
江西红壤生态试验站长期定位试验中不同施肥处理红壤水稻土酶活性及微生物群落功能多样性的研究结果表明,不同施肥条件下土壤酶活性及微生物群落功能多样性差异较大,土壤脲酶和脱氢酶活性可以作为土壤肥力的指标。经过20 a施肥管理及水稻种植,土壤酶活性及生物量有很大提高;但是B IOLOGTM生态测试板测定结果显示,施肥使微生物生物群落物种丰富度有所减少,施P土壤酶活性、微生物群落功能多样性均大于未施P土壤,采用秸秆还田处理的群落物种均一性高于未采用秸秆还田处理。 相似文献
23.
Rose-Marie Muzika 《Chemoecology》1993,4(1):3-7
Nitrogen fertilization resulted in a linear increase in the growth ofAbies grandis seedlings, but linear decrease in foliage concentrations of phenolic compounds. These data are consistent with the inverse relationship between growth and production of carbonbased secondary chemicals predicted by the carbon/nutrient balance (CNB) hypothesis. However, in contrast to predictions of the CNB hypothesis, nitrogen fertilization had no effect on foliage terpene concentrations. The results suggest that not all carbon-based chemicals respond in the same manner to environmental variation, and that the carbon/nutrient balance hypothesis does not adequately explain all patterns of environmentally-induced variation in secondary metabolism. 相似文献
24.
综述了目前国外精准农业的主要技术理论,着重围绕其在农田施肥管理中的应用,讨论基于GPS、GIS应用的农田施肥管理系统的开发和应用,提出精准农业技术理论在我国农田施肥管理中的应用设想。 相似文献
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施肥与设施栽培措施对土壤微生物区系的影响 总被引:19,自引:1,他引:19
微生物肥料的施用能显著增加土壤中放线菌的数量,而降低细菌和霉菌的数量;施用有机肥对土壤微生物有较大的影响,其中,有机肥与无机肥,有机肥与生物肥配合施用的影响尤为明显,与对照相比,土壤中细菌数量分别增加109.8%和405.0%,放线菌数量分别增加320.3%和215.0%,而真菌数量分别降低44.0%和47.2%。大棚栽培条件下土壤微生物数量高于露地;在大棚中,种植年限长的土壤微生物数量低于种植年限短的。 相似文献
27.
氨氧化细菌(AOB)和氨氧化古菌(AOA)是驱动土壤氨氧化过程的"引擎".氨氧化过程在土壤氧化亚氮(N2O)和一氧化氮(NO)排放过程中扮演着重要角色.有机无机肥配施是实现化肥零增长和作物稳产增产的重要途径,但在有机无机肥配施下,菜地土壤AOB和AOA对氨氧化过程的相对贡献仍不清楚.本研究采用选择性抑制的方法(辛炔和乙炔)区分有机肥添加近3年后(2016年10月—2019年5月)AOB和AOA在氨氧化过程中对碱性菜地土壤N2O和NO产生的相对贡献.试验共设5种施肥处理:不施氮肥(CK)、单施尿素(N)、单施有机肥(M)、50%尿素+50%有机肥(M1N1)和80%尿素+20%有机肥(M1N4).结果表明,有机无机肥配施(M1N1和M1N4)可显著增加土壤电导率、有机碳和全氮含量.培养试验发现,与N处理相比,M和M1N1处理分别使N2O排放量增加100.7%和38.8%,NO排放量增加77.9%和42.8%,AOB基因丰度增加16.6%和10.2%,同时,AOB对N2O排放的相对贡献增加6.5%.相反,M1N4处理分别使N2O和NO排放量降低19.3%和4.8%,AOB基因丰度降低37.5%,同时,AOB对N2O及NO排放的相对贡献分别降低7.8%和7.4%.相关分析表明,土壤N2O和NO累积排放量与土壤AOB基因丰度呈显著正相关(p<0.05),与土壤AOA基因丰度无显著相关性.有机无机肥配施下AOB是氨氧化过程的主要驱动者,适当比例的有机无机肥配施(即M1N4)措施可在一定程度上减弱AOB对碱性菜地土壤N2O及NO排放的相对贡献. 相似文献
28.
农田土壤是大气光化学活性气体一氧化氮(NO)的主要人为源之一.为定量研究有机物料还田对NO排放的影响,利用静态暗箱法对关中平原26 a长期定位施肥夏玉米-冬小麦轮作农田NO排放通量进行周年(2016年6月至2017年6月)观测.除对照(CK)处理全年不施肥外,田间设3个施肥处理,冬小麦季分别为全化肥(NPK,165 kg·hm~(-2))、化肥加秸秆[NPKS,(165+40)kg·hm~(-2)]和化肥加牛粪[NPKM,(50+115)kg·hm~(-2)];夏玉米季均施等量化肥(188 kg·hm~(-2)).观测期内,CK处理NO排放通量较小[12.2 g·(hm~2·d)~(-1)];各施肥处理均在夏玉米播种、施肥和冬小麦施肥后出现排放峰,其中NPK处理峰值最高[112.0 g·(hm~2·d)~(-1)].各处理NO年排放总量和排放系数分别为0.13~0.57 kg·hm~(-2)和0.04%~0.12%.NPKS和NPKM处理年排放总量较NPK分别减少17.6%和增加68.0%(P0.05).与NPK处理相比,NPKS和NPKM冬小麦季排放总量降低41.1%~60.0%(P0.05);但夏玉米季增加25.2%~292.1%(P0.05).冬小麦季添加有机物料有效降低NO排放,而夏玉米季NO排放增加则与土壤有机质含量有关. 相似文献
29.
Simulated dynamics of carbon stocks driven by changes in land use, management and climate in a tropical moist ecosystem of Ghana 总被引:1,自引:0,他引:1
Zhengxi Tan Shuguang Liu Larry L. Tieszen Emmanuel Tachie-Obeng 《Agriculture, ecosystems & environment》2009,130(3-4):171-176
Sub-Saharan Africa is large and diverse with regions of food insecurity and high vulnerability to climate change. This project quantifies carbon stocks and fluxes in the humid forest zone of Ghana, as a part of an assessment in West Africa. The General Ensemble biogeochemical Modeling System (GEMS) was used to simulate the responses of natural and managed systems to projected scenarios of changes in climate, land use and cover, and nitrogen fertilization in the Assin district of Ghana. Model inputs included historical land use and cover data, historical climate records and projected climate changes, and national management inventories. Our results show that deforestation for crop production led to a loss of soil organic carbon (SOC) by 33% from 1900 to 2000. The results also show that the trend of carbon emissions from cropland in the 20th century will continue through the 21st century and will be increased under the projected warming and drying scenarios. Nitrogen (N) fertilization in agricultural systems could offset SOC loss by 6% with 30 kg N ha−1 year−1 and by 11% with 60 kg N ha−1 year−1. To increase N fertilizer input would be one of the vital adaptive measures to ensure food security and maintain agricultural sustainability through the 21st century. 相似文献
30.
Marek K. Jarecki Timothy B. Parkin Alvarus S.K. Chan Thomas C. Kaspar Thomas B. Moorman Jeremy W. Singer Brian J. Kerr Jerry L. Hatfield Raymond Jones 《Agriculture, ecosystems & environment》2009,134(1-2):29-35
Agriculture contributes 40–60% of the total annual N2O emissions to the atmosphere. Development of management practices to reduce these emissions would have a significant impact on greenhouse gas levels. Non-leguminous cover crops are efficient scavengers of residual soil NO3, thereby reducing leaching losses. However, the effect of a grass cover crop on N2O emissions from soil receiving liquid swine manure has not been evaluated. This study investigated: (i) the temporal patterns of N2O emissions following addition of swine manure slurry in a laboratory setting under fluctuating soil moisture regimes; (ii) assessed the potential of a rye (Secale cereale L.) cover crop to decrease N2O emissions under these conditions; and (iii) quantified field N2O emissions in response to either spring applied urea ammonium nitrate (UAN) or different rates of fall-applied liquid swine manure, in the presence or absence of a rye/oat winter cover crop. Laboratory experiments investigating cover crop effects N2O emissions were performed in a controlled environment chamber programmed for a 14 h light period, 18 °C day temperature, and 15 °C night temperature. Treatments with or without a living rye cover crop were treated with either: (i) no manure; (ii) a phosphorus-based manure application rate (low manure): or (iii) a nitrogen-based manure application rate (high manure). We observed a significant reduction in N2O emissions in the presence of the rye cover crop. Field experiments were performed on a fine-loamy soil in Central Iowa from October 12, 2005 to October 2, 2006. We observed no significant effect of the cover crop on cumulative N2O emissions in the field. The primary factor influencing N2O emission was N application rate, regardless of form or timing. The response of N2O emission to N additions was non-linear, with progressively more N2O emitted with increasing N application. These results indicate that while cover crops have the potential to reduce N2O emissions, N application rate may be the overriding factor. 相似文献