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1.
太湖地区稻麦轮作农田改葡萄园对土壤氮转化过程的影响   总被引:2,自引:0,他引:2  
王敬  张金波  蔡祖聪 《土壤学报》2016,53(1):166-176
采用15N成对标记技术结合数值模型,测定太湖地区两种土地利用方式(稻麦轮作农田和葡萄园)下的土壤氮素初级转化速率,探讨了土地利用方式改变对土壤供氮和保氮能力的影响。结果表明,葡萄园土壤初级矿化速率高于稻麦轮作农田土壤,但是其NH4+-N同化速率几乎可以忽略不计(0.02 mg kg-1 d-1),自养硝化成为培养条件下葡萄园土壤NH4+-N的唯一去向。葡萄园土壤初级自养硝化速率(15.85 mg kg-1 d-1)显著高于稻麦轮作农田土壤(13.65 mg kg-1 d-1),但两者初级异养硝化速率和NO3--N同化速率均接近零值。可见,太湖地区稻麦轮作农田改种为葡萄园后,土壤NH4+-N同化速率显著降低而自养硝化速率增加,由此导致更多的NO3--N在土壤中累积,进而可能增加土壤中N的淋溶和径流损失风险。  相似文献   

2.
稻田土壤上控释氮肥的氮素利用率与硝态氮的淋溶损失   总被引:10,自引:3,他引:10  
在稻田土壤上对水稻的高量施用氮肥常常造成硝态氮(NO3--N)淋溶损失和肥料氮利用率低下的问题。本研究采用土壤渗漏器、微区和田间小区试验,研究了15N标记控释氮肥在稻田土壤上的氮素利用率和硝态氮的淋溶损失。在两年早稻种植期间,一次性全量作基肥施用控释氮肥与尿素分二次施用的相比,两年的早稻产量分别平均提高7.7%和11.6%。在N90 kg hm-2用量下,由差值法测得的肥料氮利用率,按平均计,控释氮肥的N利用率(平均76.3%)比尿素分次施用的(平均37.4%)高出38.9%1。5N同位素法测得的控释氮肥的N利用率(平均67.1%)比尿素分次施用的(平均31.2%)高出35.9%。在早稻种植季节,施用尿素和控释氮肥的NO3--N淋失量分别为9.19 kg hm-2和6.7 kg hm-2,占施尿素N和控释氮肥氮的10.2%和7.4%。控释氮肥的氮淋失量比尿素分2次施用的降低27.1%。本研究结果表明,在稻田土壤上施用控释氮肥能减少氮的淋失量,提高氮素利用率和水稻产量。  相似文献   

3.
太行山前平原农田生态系统氮素循环与平衡研究   总被引:17,自引:0,他引:17  
在中国科学院栾城生态农业试验站1公顷小麦玉米轮作农田,运用乙炔抑制原状土柱培育法、微气象学法和陶土头多孔杯水量平衡法分别定量测定了氮素硝化反硝化损失、氨挥发、NO3--N淋溶损失等氮素循环转化途径。研究结果表明,每年因氨挥发而造成的肥料氮损失量为N.60.kg/hm2,占施入肥料氮的15%;NO3--N淋溶损失量为N.68~4.kg/hm2,占肥料施用量的1.4%2~0.3%;每年因硝化反硝化过程造成的肥料损失量为N.2.021~0.49.kg/hm2,占肥料施入量的0.51%1~.37%。氨挥发、NO3--N淋溶和硝化反硝化损失主要发生在施肥灌溉/降雨之后,玉米季肥料损失明显高于小麦生长季节。氨挥发和NO3--N淋溶损失是本区域农田氮素损失的主要途径,是氮肥利用率低的重要原因。在当地农民所采用的常规农业管理措施下,小麦玉米轮作农田氮素平衡处于盈余状态,小麦季盈余N+115.5~+124.5.kg/hm2,明显高于玉米季;由于玉米季氮素损失严重,氮素盈余较少,甚至出现亏缺,玉米季氮素平衡状况为-54.6~+14.3.kg/hm2。  相似文献   

4.
利用膜进样质谱法测定不同氮肥用量下反硝化氮素损失   总被引:5,自引:2,他引:3  
王书伟  颜晓元  单军  夏永秋  汤权  林静慧 《土壤》2018,50(4):664-673
利用膜进样质谱仪(MIMS)测定了太湖流域典型稻田不同氮肥施用梯度下,土壤反硝化氮素损失量,同时也对氨挥发通量进行了观测。根据两年的田间试验结果得到:在常规施氮处理(N300)下,每年平均有54.8 kg/hm~2 N通过反硝化损失,有约54.0 kg/hm~2 N通过氨挥发损失,分别占肥料施用量的18.3%和18.0%,两者损失量相当。通过反硝化和氨挥发损失的氮素量随着氮肥用量增加而增加,田面水的NH_4~+-N、NO_3~–-N、DOC和pH浓度影响稻田土壤反硝化速率。在保产增效施氮处理(N_270)下,氮肥施用量比常规减少10%,水稻产量增加了5.5%,而通过反硝化和氨挥发损失的氮素量分别下降了1.1%和3.1%,氮肥利用率提高了约5.5%。在增施氮肥处理(N375)下,因作物产量增加使得氮肥利用率比N300增加,但通过氨挥发和反硝化的氮素损失量也最大。因此,通过综合集约优化田间管理措施,降低氮肥用量,可实现增产增效的目的。  相似文献   

5.
蔡祖聪 《土壤学报》2003,40(2):239-245
用15N分别标记尿素和KNO3,研究了淹水条件下 ,黄泥土和红壤性水稻土的无机氮转化过程及尿素和KNO3对氮素转化过程的影响。结果表明 ,淹水条件下 ,土壤中存在15NH 4 的成对硝化和反硝化过程。红壤性水稻土15NH 4 硝化只检测到15NO- 2 ,但有反硝化产物15N2 生成 ,因此 ,很可能存在着好气反硝化过程。15NO- 3浓度的下降符合一级反应方程 ,黄泥土的速率常数几乎是红壤性水稻土的 1 0倍。反硝化过程和DNRA过程共同参与15NO- 3的还原。加入尿素提高土壤pH ,增加黄泥土DNRA过程对反硝化过程的基质竞争能力 ,但反硝化过程仍占绝对优势。加入尿素或KNO3改变土壤pH是导致对无机氮转化影响有所不同的主要原因 ,浓度的作用较为次要。  相似文献   

6.
长期不同施肥对水稻土有机氮素矿化特性影响的研究   总被引:9,自引:1,他引:8  
通过定位试验研究了长期不同施肥措施对水稻土氮素矿化特性的影响。结果表明,长期不同施肥措施显著影响水稻土氮矿化势及矿化速率。与不施氮肥相比,单施氮肥使水稻土氮矿化势下降,矿化速率加快;氮肥与有机肥配施可极显著增加水稻土氮矿化势,降低矿化速率。在氮肥与有机肥配施的基础上,水稻插秧后接种“Azolla”固氮菌体可降低氮矿化势,提高矿化速率。  相似文献   

7.
温度和水分对华中地区菜地土壤氮素矿化的影响   总被引:8,自引:1,他引:7  
为研究华中地区菜地土壤的矿化特征和矿化规律,拟定菜地土壤合理的氮肥施用量,本文以华中地区两种典型菜地土壤——黄棕壤和潮土为研究对象,利用室内连续培养试验研究了温度、水分对菜地土壤矿化的影响。结果表明,黄棕壤的矿化速率和氨化速率均随着温度的升高而升高;硝化速率在15%和25%含水量下随温度的升高而升高,而在35%含水量下随温度的升高而降低。潮土矿化速率在15%含水量时随温度的升高而升高,而在25%和35%含水量下随温度的升高先增加后减小;硝化速率在15%和35%含水量时随温度的升高而增加,25%含水量时随温度的升高先增加后降低;氨化作用随温度的升高而降低。黄棕壤的矿化量在含水量为25%、温度35℃时高达34.9 mg.kg 1;潮土的矿化量在含水量为25%、温度为25℃时最高,为63.9mg.kg 1。不同温度下潮土矿化量均大于黄棕壤。黄棕壤的氨化速率随含水量的增加而增加,硝化速率随含水量的增加而降低,矿化速率则在含水量25%时最大。潮土的氨化、硝化和矿化作用随水分变化不明显。本研究还发现,25%的含水量是黄棕壤微生物活性的水分临界点,潮土的水分临界点不明显。通过对土壤氮素的矿化速率与水分含量和温度之间的函数关系模拟发现,黄棕壤模拟效果好于潮土。  相似文献   

8.
太湖地区两种典型水稻土中氮、磷迁移转化的研究   总被引:3,自引:1,他引:3  
沃飞  陈效民  方堃  吴华山  蒋金当 《土壤通报》2007,38(6):1058-1063
研究了饱和状态下,铵态氮(NH4+-N)和速效磷(AP)在太湖地区两种主要水稻土-宜兴白土和常熟王庄黄泥土的原状土和扰动土中的迁移转化情况。结果表明,土壤的饱和导水率、粘粒含量对于铵态氮和速效磷的出流影响很大。在原状土土柱的出流中,白土滤液中NH4+-N、硝态氮(NO3--N)和速效磷浓度峰值出现的时间比黄泥土早,峰面比黄泥土窄,拖尾的时间比黄泥土短。速效磷在土壤中迁移及淋移都比NH4+-N弱,且黄泥土对磷的固定作用强于白土。在本试验NH4+-N的加入情况下,原状土土柱出流的NH4+-N如果进入地下水会造成地下水污染;NO3--N在黄泥土中的积累作用比白土强,出流的NO3--N含量较高;出流的NO2--N含量很低,不会造成地下水的NO2--N污染。土壤中的NH4+-N和速效磷可以通过大孔隙向下运移,并且随着深度的变化呈现降低的趋势。NO3--N在白土中的分布比较平缓。在扰动土的试验中,粘粒含量越低,饱和导水率越高,NO3--N的穿透曲线的峰值越高,峰面越窄。黄泥土的粘粒含量远高于白土,滞留作用较强,对NO3--N的穿透影响较大。本文结果可以为太湖地区地下水环境污染防治、农田水肥管理和防止水体富营养化提供依据。  相似文献   

9.
节水灌溉控制排水条件下稻田水氮平衡试验与模拟   总被引:3,自引:2,他引:1  
为了揭示我国南方灌区节水灌溉控制排水条件下稻田水平衡机制及其氮素迁移转化规律,以指导稻田水肥管理,该文以2007-2008年试验区域水稻生长期田间水氮监测数据为依据,基于一阶氮素动力反应方程,耦合田间水平衡及氮素渗漏和作物吸收过程,构建了田间水氮平衡模型,模拟计算了试验区稻田日渗漏水量与各氮素迁移转化过程中的日铵态氮和硝态氮量。结果表明,试验区田间水经渗漏和排水流失占降水和灌溉水总和的54.7%,气态氮素损失(挥发和反硝化)和渗漏是稻田氮素损失的主要途径,挥发和硝化损失量分别占铵态氮和硝态氮的30.6%和36.1%。渗漏流失中硝态氮明显高于铵态氮,排水中铵态氮高于硝态氮。通过渗漏流失的总氮素量亦较大,渗漏硝态氮和铵态氮分别占其相应氮素形态的9.8%和29.5%。因此,减少氮素气态损失有利于提高节水灌溉控制排水稻田氮肥利用率  相似文献   

10.
NAM添加剂对水稻减氮施肥的影响效果研究   总被引:1,自引:1,他引:0  
通过田间小区试验,研究NAM添加剂在水稻减氮施肥的情况下,对土壤NH4+-N、NO3--N含量、水稻产量以及氮肥利用率的影响,旨在验证利用NAM添加剂减少当地水稻施氮量的可行性。结果表明,施用NAM添加剂,在一定的时间内,使土壤NH4+-N保持较高的水平,延缓土壤NH4+-N向NO3--N的转化,减少氮素损失,从而保证总有效氮能够满足作物后期的生长需要。NAM添加剂能够有效地增加水稻产量,常规施肥不添加NAM处理的产量为9676.93 kg hm-2,与常规施肥添加NAM的处理差异显著,而与减氮20%添加NAM处理差异不显著。与常规施肥氮肥利用率33.94%相比,NAM添加剂能够将氮肥的利用率提高到40.58%,并且氮肥的利用率随着施氮量的减少而增加。研究试验表明,在欲节氮减肥的水稻生产中,NAM不失为一种理想的添加剂。  相似文献   

11.
The impact of land-use change on soil nitrogen (N) transformations was investigated in adjacent native forest (NF), 53 y-old first rotation (1R) and 5 y-old second rotation (2R) hoop pine (Araucaia cunninghamii) plantations. The 15N isotope dilution method was used to quantify gross rates of N transformations in aerobic and anaerobic laboratory incubations. Results showed that the land-use change had a significant impact on the soil N transformations. Gross ammonification rates in the aerobic incubation ranged between 0.62 and 1.78 mg N kg−1 d−1, while gross nitrification rates ranged between 2.1 and 6.6 mg N kg−1 d−1. Gross ammonification rates were significantly lower in the NF and the 1R soils than in the 2R soils, however gross nitrification rates were significantly higher in the NF soils than in the plantation soils. The greater rates of gross nitrification found in the NF soil compared to the plantation soils, were related to lower soil C:N ratios (i.e. more labile soil N under NF). Nitrification was found to be the dominant soil N transformation process in the contrasting forest ecosystems. This might be attributed to certain site conditions which may favour the nitrifying community, such as the dry climate and tree species. There was some evidence to suggest that heterotrophic nitrifiers may undertake a significant portion of nitrification.  相似文献   

12.
Measurements of N transformation rates in tropical forest soils are commonly conducted in the laboratory from disturbed or intact soil cores. On four sites with Andisol soils under old-growth forests of Panama and Ecuador, we compared N transformation rates measured from laboratory incubation (at soil temperatures of the sites) of intact soil cores after a period of cold storage (at 5 °C) with measurements conducted in situ. Laboratory measurements from stored soil cores showed lower gross N mineralization and NH4+ consumption rates and higher gross nitrification and NO3 immobilization rates than the in-situ measurements. We conclude that cold storage and laboratory incubation change the soils to such an extent that N cycling rates do not reflect field conditions. The only reliable way to measure N transformation rates of tropical forest soils is in-situ incubation and mineral N extraction in the field.  相似文献   

13.
The intensive conversion from woodland to tea plantation in subtropical China might significantly change the potential supply processes and cycling of inorganic Nitrogen (N). However, few studies have been conducted to investigate the internal N transformations involved in the production and consumption of inorganic N and N2O emissions in subtropical soils under tea plantations. In a 15N tracing experiment, nine tea fields with different plantation ages (1-y, 5-y and 30-y) and three adjacent woodlands were sampled to investigate changes in soil gross N transformation rates in humid subtropical China. Conversion of woodland to tea plantation significantly altered soil gross N transformation rates. The mineralization rate (MNorg) was much lower in soils under tea plantation (0.53–0.75 mg N kg−1 d−1) than in soil sampled from woodland (1.71 mg N kg−1 d−1), while the biological inorganic N supply (INS), defined as the sum of organic N mineralized into NH4+ (MNorg) and heterotrophic nitrification (ONrec), was not significantly different between soils under woodland and tea plantation, apart from soil under 30-y tea plantation which had the largest INS. Interestingly, the contribution of ONrec to INS increased from 19.6% in soil under woodland to 65.0–82.4% in tea-planted soils, suggesting ONrec is the dominant process producing inorganic N in tea-planted soils. Meanwhile, the conversion from woodland to tea plantation destroyed soil NO3 retention by increasing ONrec, autotrophic nitrification (ONH4) and abiotic release of stored NO3 while decreasing microbial NO3 immobilization (INO3), resulting in greater NO3 production in soil. In addition, long-term tea plantation significantly enhanced the potential release of N2O. Soil C/N was positively correlated with MNorg and INO3, suggesting that an increase in soil C/N from added organic materials (e.g. rice hull) is likely to reduce the increased production of NO3 in the soils under tea plantation.  相似文献   

14.
In this study, a 15N tracing incubation experiment and an in situ monitoring study were combined to investigate the effects of different N fertilizer regimes on the mechanisms of soil N dynamics from a long-term repeated N application experiment. The field study was initiated in 2003 under a wheat-maize rotation system in the subtropical rain-fed purple soil region of China. The experiment included six fertilization treatments applied on an equivalent N basis (280 kg N ha−1), except for the residue only treatment which received 112 kg N ha−1: (1) UC, unfertilized control; (2) NPK, mineral fertilizer NPK; (3) OM, pig manure; (4) OM-NPK, pig manure (40% of applied N) with mineral NPK (60% of applied N); (5) RSD, crop straw; (6) RSD-NPK, crop straw (40% of applied N) with mineral NPK (60% of applied N). The results showed that long-term repeated applications of mineral or organic N fertilizer significantly stimulated soil gross N mineralization rates, which was associated with enhanced soil C and N contents following the application of N fertilizer. The crop N offtake and yield were positively correlated with gross mineralization. Gross autotrophic nitrification rates were enhanced by approximately 2.5-fold in the NPK, OM, OM-NPK, and RSD-NPK treatments, and to a lesser extent by RSD application, compared to the UC. A significant positive relationship between gross nitrification rates and cumulative N loss via interflow and runoff indicated that the mechanisms responsible for increasing N loss following long-term applications of N fertilizer were governed by the nitrification dynamics. Organic fertilizers stimulated gross ammonium (NH4+) immobilization rates and caused a strong competition with nitrifiers for NH4+, thus preventing a build-up of nitrate (NO3). Overall, in this study, we found that partial or complete substitution of NPK fertilizers with organic fertilizers can reduce N losses and maintain high crop production, except for the treatment involving application of RSD alone. Therefore, based on the N transformation dynamics observed in this study, organic fertilizers in combination with mineral fertilizer applications (i.e. OM, OM-NPK, and RSD-NPK treatments) are recommended for crop production in the subtropical rain-fed purple soils in China.  相似文献   

15.
Determination of gross N mineralization rate in soil, by use of the isotopic pool dilution approach implies that 15NH4+ is applied homogeneously to soil. Since the labeling is applied to the product of the mineralization, the application of 15NH4+ should in theory not alter the mineralization rate. However, recent studies have indicated inverse relation between the amounts of 15NH4+ applied and the determined gross N mineralization rates, due to overestimated rates when ‘low’ amounts of 15NH4+ were added, as a result of preferential 15NH4+ consumption. We present here results from a similar study. We observed no effect from the amount of applied NH4+ on the measured gross N mineralization rates. Our results indicate, that the inverse relation as described earlier, probably was due to underestimated rates when ‘high’ amounts of 15NH4+ were added, as a result of preferential 14NH4+ consumption, when the applied 15NH4+ was incomplete distribution in the soil.  相似文献   

16.
Organic N solubilized by NH3(aq) was extracted from 15N-labelled or unlabelled soil, concentrated and added to non-extracted soil, which was incubated under aerobic conditions at 27±1°C. Gross N mineralization, gross N immobilization, and nitrification in soils with or without addition of unlabelled soluble organic N were estimated by models based on the dilution of the NH 4 + or NO inf3 sup- pools, which were labelled with 15N at the beginning of incubation. Mineralization of labelled organic N was measured by the appearance of label in the mineral N pool. Although gross N mineralization and gross N immobilization were increased in two soils between day 0 and day 7 following addition of unlabelled organic N solubilized by NH3(aq), there was no increase in net N mineralization. Solubilization of 15N-labelled organic N increased and the 15N enrichment of the soluble organic N decereased as the concentration of NH3(aq) added increased. A constant proportion of approximately one-quarter of the labelled organic N added at different rates to non-extracted soil was recovered in the mineral N pool after an incubation period of 14 days, and the availability ratios calculated from net N mineralization data were 1.1:1 and 2.1:1 for 111 and 186 mg added organic-N kg-1 soil, respectively, indicating that the mineralization of organic N was increased by solubilization.  相似文献   

17.
18.
Abstract

A 15N tracing experiment was carried out to investigate gross N dynamics in coastal wetland soils. The results showed that the cultivation of coastal wetland has resulted in a significant increase in the gross mineralization rate, gross nitrification rate and gross microbial immobilization of ammonium rate (p<0.01). However, the effect of cultivation on the gross microbial immobilization of nitrate rate was not significant. The gross nitrification rate was much higher than nitrate immobilization (p<0.01), indicating that cultivation of coastal wetland could increase the risk of losses of N from the soil through leaching.  相似文献   

19.
Net nitrogen (N) mineralisation rate is the result of two independent processes: gross N mineralisation and N immobilisation. Techniques for determining these rates have only been developed recently and no studies have examined the relationship between soil fauna and these two components of net N mineralisation. We present data which demonstrates that mite community structure, described using the Shannon index, is correlated with gross N immobilisation rates in the Western Australian wheat belt. These results suggest that examining the impacts of mites on gross N fluxes is warranted.  相似文献   

20.
Dissolved organic matter (DOM) has been recognised as a key carbon and nitrogen (N) pool involved with soil-plant-microbe interactions. Yet few studies have quantified this contribution in agricultural soils. In this study we leached DOM from a sandy loam and sandy clay loam soil under either grassland or arable cropping. Two weeks after DOM removal microbial respiration from soils was not altered. However, a significant (P<0.05) decline in microbial biomass-N, potentially mineralizable-N, gross N mineralization and gross nitrification occurred after leaching. This data illustrate that whilst DOM is a small component of the soil OM it contributed up to 25% of microbial N supply within these agricultural soils.  相似文献   

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