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1.
Field experiments were done in two sites, Yixing and Changshu, Jiangsu province, China, to study P movement and leaching in flooded paddy soils. P movement in soil was investigated by using the KH2 32PO4 tracker method, and the amount of P leached from the soil layer in different depths was estimated by measuring P concentrations in the soil solution and saturated hydraulic conductivities in field. Determination was done about one month after P application. There was 46% and 42% of total 32P retained in the 0–5cm layer of soil in the Yixing site and in the Changshu site respectively. The 32P retained in the 25–30 cm layer was only about 1–2% of the total 32P added. Furthermore, 8.01% of 32P in the soil of Yixing site and 16.8% of 32P in the soil of Changshu site was lost from the layer 0–30cm soil. The seasonal amounts of P leached from the top soil layer and from bottom layer are about 4.5–5.8% and 1.6–2.1% of the total P application, respectively. Changes of total P concentrations in soil solutions during rice growth showed that the fertilizer P applied before flooding of the paddy fields suffered a flash leaching loss and a slow leaching loss. We concluded that the fertilizer P could quickly move in the flooded paddy rice field and parts of it can enter into surface water and ground water. Unless the P application is well managed the risk of P loss and consequently environmental pollution exist.  相似文献   

2.
为了研究不同的施肥方式对土壤全氮变化及氮储量的影响,1981年在湖北省农业科学院南湖试验站设置了施用有机肥与化肥的长期定位田间试验,2006年水稻收获后田间取样分析每个处理不同土层的全氮含量与氮储量。研究结果表明:与对照相比,单施化肥与单施有机肥0~20cm土层土壤的容重下降,化肥添加有机肥比相应的单施化肥的容重要低一些。除了对照之外,其它处理都是0~20cm土层土壤全氮含量高于其它土层,氮肥配施有机肥处理0~20cm土层土壤全氮含量最高。除了氮磷钾肥配施过量有机肥处理外,化肥配施有机肥处理土壤的全氮含量都高于单施化肥或单施有机肥处理,20~40cm土层土壤全氮含量具有相似的规律。在0~20cm土层,与对照相比,单施氮肥及氮磷肥不能增加土壤全氮储量,但是化肥配施有机肥能够增加土壤全氮的储量。单施氮磷钾肥及单施有机肥也能够增加土壤全氮的储量。在0~20cm土层,氮肥配施有机肥处理的土壤全氮储量最多,达8.82t·hm-2,而氮肥处理的氮储量最低,仅为5.38t·hm-2。在100cm深度,与单施化肥及单施有机肥相比,化肥配施有机肥都增加了土壤全氮的储量。  相似文献   

3.
To assess P losses to surface water by runoff during the rice season and by drainage flow during the winter wheat season, serial field trials were conducted in different types of paddy soils in the Tai Lake Region (TLR) during 2000 and 2001. Four P application rates were set as 0 (CK), 30, 150, and 300 kg P/hm2 for flooded rice trials and 0 (CK), 20, 80, 160 kg P/hm2 for winter wheat trials respectively. Field experiments were done in two locations with a plot size of 30 m2 and four replications in a randomized complete block design. A simplified lysimeter was installed for each plot to collect all the runoff or drainage flow from each event. Total P (TP) losses to surface water during rice season by runoff flow from four treatments were 150 (CK), 220 (T30), 395 (T150), 670 (T300) g P/ hm2 in year 2000, and 298, 440, 1828, 3744 g P/hm2 in year 2001 respectively in Wuxi station, here the soil is permeable paddy soil derived from loam clay deposit. While the losses were 102, 140, 210, 270 in year 2000, and 128, 165, 359, 589 g P/hm2 in year 2001 respectively in Changshu station, here the soil is waterlogged paddy soil derived from silt loam deposit. During the winter wheat season, total P lost from the fields by drainage flow in the four treatments were 253 (CK), 382 (T20), 580 (T89), 818 (T160) g P/hm2 in year 2000--2001, and 573.3, 709.4, 1123.2, 1552.4 g P/hm2 in year 2001--2002 at the Wuxi station. While these were 395.6, 539.1, 1356.8, 1972.1 g P/hm2 in year 2000--2001, and 811.5, 1184.6, 3001.2, 5333.1 g P/hm2 in year 2001--2002 at the Changshu station. Results revealed that P fertilizer application rates significantly affected the TP concentrations and TP loads in runoff during the rice season, and by drainage flow during the winter wheat season. Both TP loads were significantly increased as the P application rate increases. The data indicate that TP losses to surface water were much higher during the winter wheat season than during the rice season in two tested sites. The data also reveal that the annual precipitation and evaporation rate affected the soil P losses to surface water significantly. Year 2000 was relatively dried with higher evaporation thus P losses to water by both runoff and drainage flow were less than in year 2001 which was a relatively wet year with lower evaporation. Results indicate that texture, structure of the soil profile, and field construction (with or without ridge and deep drains) affected soil P losses to surface water dramatically. Annual possible TP lost to water at the application rate of 50 kg P/hm2 year tested in TLR were estimated from 97 to 185 tones P from permeable paddy soils and 109-218 tones P from waterlogged paddy soils. There was no significant difference of TP lost between the CK and the T50 treatments in both stations, which indicate that there is no more TP lost in field of normal P fertilizer application rate than in control field of no P fertilized. Much higher TP lost in runoff or drainage flow from those other P application rates treatments than from the T50 treatment, which suggest that P losses to surface water would be greatly increasing in the time when higher available P accumulation in plough layer soil in this region.  相似文献   

4.
1990年5—11月,在湖南祁阳中国农科院红壤实验站水稻田布置田间试验,研究结果证实,在早稻和晚稻生长期间,与含氯化肥相比,施含硫化肥更能降低土壤pH而使土壤酸化,因而在南方水田施用含硫化肥时,必须和石灰及生理碱性肥相配合。同时,施含硫化肥能提高土壤有效性磷和钾的含量,增强土壤保肥与供肥能力。对大田水样中养分离子监测的结果表明,施含硫化肥减少钾离子的淋失;而施含氯化肥则减少硝态氮的淋溶,提高水田氮肥的利用率。  相似文献   

5.
To assess P losses to surface water by runoff during the rice season and by drainage flow during the winter wheat season, serial field trials were conducted in different types of paddy soils in the Tai Lake Region (TLR) during 2000 and 2001. Four P application rates were set as 0 (CK), 30, 150, and 300 kg P/hm2 for flooded rice trials and 0 (CK), 20, 80, 160 kg P/hm2 for winter wheat trials respectively. Field experiments were done in two locations with a plot size of 30 m2 and four replications in a randomized complete block design. A simplified lysimeter was installed for each plot to collect all the runoff or drainage flow from each event. Total P (TP) losses to surface water during rice season by runoff flow from four treatments were 150 (CK), 220 (T30), 395 (T150), 670 (T300) g P/hm2 in year 2000, and 298, 440, 1828, 3744 g P/hm2 in year 2001 respectively in Wuxi station, here the soil is permeable paddy soil derived from loam clay deposit. While the losses were 102, 140, 210, 270 in year 2000, and 128, 165, 359, 589 g P/hm2 in year 2001 respectively in Changshu station, here the soil is waterlogged paddy soil derived from silt loam deposit. During the winter wheat season, total P lost from the fields by drainage flow in the four treatments were 253 (CK), 382 (T20), 580 (T89), 818 (T160) g P/hm2 in year 2000–2001, and 573.3, 709.4, 1123.2, 1552.4 g P/hm2 in year 2001–2002 at the Wuxi station. While these were 395.6, 539.1, 1356.8, 1972.1 g P/hm2 in year 2000–2001, and 811.5, 1184.6, 3001.2, 5333.1 g P/hm2 in year 2001–2002 at the Changshu station. Results revealed that P fertilizer application rates significantly affected the TP concentrations and TP loads in runoff during the rice season, and by drainage flow during the winter wheat season. Both TP loads were significantly increased as the P application rate increases. The data indicate that TP losses to surface water were much higher during the winter wheat season than during the rice season in two tested sites. The data also reveal that the annual precipitation and evaporation rate affected the soil P losses to surface water significantly. Year 2000 was relatively dried with higher evaporation thus P losses to water by both runoff and drainage flow were less than in year 2001 which was a relatively wet year with lower evaporation. Results indicate that texture, structure of the soil profile, and field construction (with or without ridge and deep drains) affected soil P losses to surface water dramatically. Annual possible TP lost to water at the application rate of 50 kg P/hm2 year tested in TLR were estimated from 97 to 185 tones P from permeable paddy soils and 109–218 tones P from waterlogged paddy soils. There was no significant difference of TP lost between the CK and the T50 treatments in both stations, which indicate that there is no more TP lost in field of normal P fertilizer application rate than in control field of no P fertilized. Much higher TP lost in runoff or drainage flow from those other P application rates treatments than from the T50 treatment, which suggest that P losses to surface water would be greatly increasing in the time when higher available P accumulation in plough layer soil in this region.  相似文献   

6.
保护地番茄养分利用及土壤氮素淋失   总被引:45,自引:0,他引:45  
在施用不同复合肥料的条件下,对保护地蔬菜蕃茄对N、P、K养分的吸收利用及保护地条件下土壤的硝酸盐淋洗进行了研究,结果表明,复合肥的品种及施肥水平对番茄的产量影响不大,与CK相比番茄果实增产12..7%-18.4%;复合肥N、P养分的当季利用率不足10%,而K素的当季利用率也不超出25%,传统的大水漫灌条件,蔬菜保护地土壤硝酸盐的淋洗状态相当严重,并有可能造成地下水的硝酸盐污染,长期过量施肥及大小漫灌等措施是造成土壤养分累积、硝酸盐淋洗严重、肥料利用率低的根本原因,图2表3参11  相似文献   

7.
A long-term field and lysimeter experiment under different amount of fertilizer-N application was conducted to explore the optimal N application rates for a high productive rice-wheat system and less N leaching loss in the Yangtse Delta region. In this region excessive applications of N fertilizer for the rice-wheat production has resulted in reduced N recovery rates and environment pollution. Initial results of the field experiments showed that the optimal N application rate increased with the yield. On the two major paddy soils (Hydromorphic paddy soil and Gleyed paddy soil) of the region, the optimal N application rate was 225-270 kg N hm(-2) for rice and 180-225 kg N hm(-2) for wheat, separately. This has resulted in the highest number of effective ears and Spikelets per unit area, and hence high yield. Nitrogen leaching in the form of NO(3-)-N occurs mainly in the wheat-growing season and in the ponding and seedling periods of the paddy field. Its concentration in the leachate increased with the N application rate in the lysimeter experiment. When the application rate reached 225 kg N hm(-2), the concentration rose to 5.4-21.3 mgN l(-1) in the leachate during the wheat-growing season. About 60% of the leachate samples determined contained NO(3-)-N beyond the criterion (NO(3-)-N 10 mg l(-1)) for N pollution. In the field experiment, when the N application rate was in the range of 270-315 kg hm(-2), the NO(3-)-N concentration in the leachate during the wheat-growing season ranged from 1.9 to 11.0 mg l(-1). About 20% of the leachate samples reached close to, and 10% exceeded, the criterion for N pollution. Long-term accumulation of NO(3-)-N from leaching will no doubt constitute a potential risk of N contamination of the groundwater in the Yangtse Delta Region.  相似文献   

8.
长期施肥对红壤性水稻土磷素积累与形态分异的影响   总被引:1,自引:0,他引:1  
通过红壤性水稻土19a肥料长期定位试验,结果表明,不施磷处理的土壤磷素处于耗竭状态,耕层土壤全磷含量持续下降,但耕层以下土层的全磷尚未耗损;连年施磷的土壤耕层全磷含量提高,提高的幅度呈现明显量级关系。在本试验条件下,土壤中各组分无机磷含量以Fe-P和O-P为主体,各占土壤无机磷总量的44.63%和31.27%;其次是A1-P和Ca  相似文献   

9.
长期施肥对太湖地区水稻土磷素转化的影响   总被引:7,自引:0,他引:7  
对江苏常熟生态站长期施肥条件下的水稻土进行了磷素转化的研究.结果表明,不同施肥处理的土壤全磷(T-P)含量为926~934mgkg-1,只有对照(CK)比本底值下降0.49%,其它施肥处理的T-P含量都比本底值增加14.24%~28.0%,增幅最大的是半数秸秆 磷肥(1/2OM NPK)处理(28.0%),增幅最小的是NPK(氮磷钾)处理(14.24%).增幅最大的1/2OM NPK处理的T-P含量比CK增加28.0%,年平均增加2.9%;增幅最小的NPK处理的T-P含量比CK增加14.8%,年平均增加1.5%.有机磷(Po)占全磷(T-P)的比值小于无机磷(Pi)占全磷的比值,即:Po/T-P(15%~23%)O-P(143~101)>Fe-P(103~54)>Al-P(65~29)>Ca8-P(45~18)>Ca2-P(22~3);1/2OM NPK处理能增加水稻田土壤中的Al-P和Fe-P含量,而施用NPK肥有利于水稻对Al-P和Fe-P的吸收,因为NPK处理的土壤中Al-P和Fe-P含量只比CK大而比其它处理低;施磷肥会增加水稻土中O-P的含量.图3表3参23  相似文献   

10.
稻草还田方式对双季稻田耕层土壤有机碳积累的影响   总被引:2,自引:0,他引:2  
选择南方典型双季稻田,研究不同的稻草还田方式对土壤不同层次有机碳的积累、表土碳密度、C/N比值及水稻产量的影响。结果表明,不同的稻草还田和耕作处理对水稻产量无显著影响;不同稻草还田处理的土壤有机碳和C/N均随土层加深而减小;3个稻草还田处理0-5 cm土层土壤有机碳质量分数显著高于不还田对照,其中,以高桩免耕处理最高,比无草翻耕处理提高13.8%(P〈0.01);5-10 cm土层表现为高桩翻耕处理显著高于其他处理,增加幅度为1.39-1.66 g kg-1;10-15 cm为翻耕处理(包括稻草不还田和还田)显著高于各免耕处理;稻草翻耕处理(0-15 cm)的耕层有机碳密度显著高于其他处理。因此,南方双季稻田采取稻草翻耕还田方式有利于增加土壤有机碳汇。  相似文献   

11.
秋浇是河套灌区传统的秋后淋盐、春季保墒的一种特殊灌溉制度 ,秋浇对不同类型农田盐分损失影响的试验结果表明 ,秋浇前白菜地土壤含水率最高 ,向日葵地最低 ,秋浇后 5种农田土壤含水率均较高 ,且彼此间无显著性差异。秋浇后不同土壤剖面盐分的损失量按照表层 (0~ 40cm)、中层 (40~ 80cm)、深层 (80~ 1 2 0cm)依次递减(向日葵地除外 )。不同农田的盐分淋失量按照白菜地、向日葵地、玉米地、小麦 -玉米地、小麦地依次递减。非生长季灌溉下 ,农田土壤 0~ 1 0 0cm土层中盐分的淋失量与土壤储水量的增加量 (灌溉前土壤含水率 <2 50 g·kg- 1 ,r =0 .990 2 )密切相关 ,但与灌溉前土壤盐分初始含量无显著性关系  相似文献   

12.
三江平原退化湿地和农田土壤养分的比较研究   总被引:5,自引:0,他引:5  
三江平原农业开垦导致地表水位和土壤水分下降,原生湿地退化为沼泽化草甸和典型草甸,或者直接转化为水田和旱田.退化湿地与农田土壤养分的对比研究结果表明,4种样地类型0-30 cm土层土壤有机质含量为水田>沼泽化草甸>旱田>典型草甸,全氮含量差异与有机质含量差异相一致,速效磷含量为水田>旱田>沼泽化草甸>典型草甸.这说明在湿地退化为典型草甸的过程中土壤养分严重下降,水分状况是影响湿地土壤养分下降的关键因素;但是农田土壤养分仍然保持较高水平,主要是由于耕作、施肥等非水分因素的影响.由此可见,水分条件和人为干扰共同决定了退化湿地和农田土壤养分状况.  相似文献   

13.
The agricultural non-point source pollution by nitrogen (N) and phosphorus (P) loss from typical paddy soil (whitish soil, Bai Tu in Chinese) in the Taihu Lake region was investigated through a case study. Results shown that the net load of nutrients from white soil is 34.1 kg ha(-1) for total nitrogen (TN), distributed as 19.4 kg ha(-1), in the rice season and 14.7 kg ha(-1) in the wheat season, and for total phosphorus (TP) 1.75 kg ha(-1), distributed as 1.16 kg ha(-1) in the rice season and 0.58 kg ha(-1) in the wheat season. The major chemical species of N loss is different in the two seasons. NH4-N is main the form in the rice season (53% of TN). NO3-N is the main form in wheat season (46% of TN). Particle-P is the main form in both seasons, (about 56% of TP). The nutrient loss varied with time of the year. The main loss of nutrients happened in the 10 days after planting, 64% of TN and 42% of TP loss, respectively. Rainfall and fertilizer application are the key factors which influence nitrogen and phosphorus loss from arable land, especially rainfall events shortly after fertilizer application. So it is very important to improve the field management of the nutrients and water during the early days of planting.  相似文献   

14.
南方高产茶园土壤养分特性   总被引:1,自引:0,他引:1  
本文对南方高产获园土壤养分特性进行研究.结果表明,高产茶园土壤表层碱解N100.3mg/kg、全N1.38g/kg.有机质31.0g/kg,均按丰富;茶叶产量与上壤碱解N呈显著正相关.由于重施磷肥,磷素在土壤中趋于积累.土壤表层全磷含量比相应的荒地土壤平均高0.47g/kg.由于少施钾肥.老茶园土壤比荒地土壤全钾含量明显下降,下降率最高达30.25%,平均达25.60%.高产茶园土壤具有独特的熟化层(20-40cm).红壤茶园土壤肥力最高,赤红壤和砖红壤茶园相近.根据研究结果,建议采用‘控氮、降磷、增钾”的施肥原则.  相似文献   

15.
雷州半岛旱地砖红壤非点源氮、磷淋溶损失模拟研究   总被引:2,自引:0,他引:2  
大量施用化学肥料所引起的养分淋失和环境污染正逐渐受到人们的重视。通过土柱模拟氮、磷素养分淋溶试验.研究了不同施肥处理下砖红壤氮、磷素淋溶损失特点。试验结果表明,随着尿素用量的增加,渗漏水中NH4^+-N质量浓度和TN淋失量也相应增加,而NO3^--N的质量浓度变化幅度较大,渗漏水中氮素淋失形态主要是以NO3^--N为主。由于土壤磷素很难移动,所以TP累积淋失量非常少,氮、磷肥混施对非点源氮、磷素的淋失都有影响,其中过量磷肥配合尿素施用可以增加土壤中NH4^+-N、NO3^- -N、TN的淋失程度。  相似文献   

16.
广州城郊菜地土壤磷素特征及流失风险分析   总被引:5,自引:1,他引:5  
通过化学分析和土壤淋洗试验对广州城郊菜地土壤磷素特征和流失风险进行了研究和分析。结果表明.广州城郊菜地土壤全磷含量极高;与自然土壤相比较,菜园土壤无机磷比例增大、有机磷比例降低;无机磷中的AI-P、Fe-P比例增加.O-P比例降低,Ca-P比例基本一致;土壤Olsen P、Bray-1 P、Mehlich-1 P、0.01mol/L CaCl_2和H_2O提取的磷含量相当高;土壤淋洗液中溶解态磷和总磷持续保持很高的浓度,土壤磷供应强度大。菜园土壤中磷进入水体引起水体磷浓度增加,导致水体富营养化风险大;土壤磷的测定值可作为土壤磷流失风险和对水环境影响程度的评估依据。菜地应作为农业非点源磷污染的优先控制区、应通过严格控制磷肥的投入和合理施肥等控制磷的流失。  相似文献   

17.
Cleveland CC  Reed SC  Townsend AR 《Ecology》2006,87(2):492-503
Terrestrial biosphere-atmosphere CO2 exchange is dominated by tropical forests, so understanding how nutrient availability affects carbon (C) decomposition in these ecosystems is central to predicting the global C cycle's response to environmental change. In tropical rain forests, phosphorus (P) limitation of primary production and decomposition is believed to be widespread, but direct evidence is rare. We assessed the effects of nitrogen (N) and P fertilization on litter-layer organic matter decomposition in two neighboring tropical rain forests in southwest Costa Rica that are similar in most ways, but that differ in soil P availability. The sites contain 100-200 tree species per hectare and between species foliar nutrient content is variable. To control for this heterogeneity, we decomposed leaves collected from a widespread neotropical species, Brosimum utile. Mass loss during decomposition was rapid in both forests, with B. utile leaves losing >80% of their initial mass in <300 days. High organic matter solubility throughout decomposition combined with high rainfall support a model of litter-layer decomposition in these rain forests in which rapid mass loss in the litter layer is dominated by leaching of dissolved organic matter (DOM) rather than direct CO2 mineralization. While P fertilization did not significantly affect mass loss in the litter layer, it did stimulate P immobilization in decomposing material, leading to increased P content and a lower C:P ratio in soluble DOM. In turn, increased P content of leached DOM stimulated significant increases in microbial mineralization of DOM in P-fertilized soil. These results show that, while nutrients may not affect mass loss during decomposition in nutrient-poor, wet ecosystems, they may ultimately regulate CO2 losses (and hence C storage) by limiting microbial mineralization of DOM leached from the litter layer to soil.  相似文献   

18.
This paper investigates leaching of water and nutrients (NO 3, Cl, PO3‐ 4) from the unsaturated layer in an Australian soil using a multisegment percolation system (MPS). Large undisturbed soil cores were collected from a clay‐based, basaltic plain, agricultural soil at Grassmere, 300 km west of Melbourne, Australia. Significant heterogeneity (or preferential flow) of effluent moisture and solutes was detected (one‐way ANO VA, p < 0.001). Fifty percent of the applied nitrate and chloride leached from the soil core within three days after initial application. Hundred percent of the applied nitrate and chloride leached from the soil core within 8 days after application. These results indicate little incorporation into the soil matrix, and possible denitrification or mineralisation. In contrast, after 18 days, less than 1 % of the total applied phosphates leached from the soil, indicating strong adsorption. Our experiments indicate considerable heterogeneity in water flow patterns and solute leaching on a small spatial scale. Very rapid transport of nitrate and chloride through the soil was evident, in comparison phosphate leaching was negligible. These results have important implications for the management of nutrient schedules in agricultural soils, particularly those located in the Western District of Victoria, Australia.  相似文献   

19.
李玮  张佳宝  张丛志 《生态环境》2012,21(2):243-248
通过大田试验,研究了作物秸秆行间掩埋配施不同类型氮肥(矿质化肥和鸡粪)下耕层土壤温度的变化及对作物生长的影响。结果表明,秸秆还田初期配施氮肥对秸秆有激发效应,能提高耕层的土壤温度,提高幅度受大气温度、降水的影响。秸秆行间掩埋配施质量分数为16%总氮的鸡粪和24%总氮的化学氮肥耕层土壤的增温效果明显,土壤温度分别上升0.7和0.8℃。秸秆行间掩埋还田对作物生长的影响因作物类型和生育期而异,从不同生育期来看,作物前期的生长受秸秆行间掩埋还田的影响最大。从作物类型来看,配施质量分数为8%、16%、24%总氮的鸡粪,拔节期冬小麦的生物量低于对照38.7%、29.4%和27.9%,3个处理分别与对照差异显著(P〈0.05),玉米没有差异。秸秆行间掩埋配施质量分数为8%、16%、24%总氮的矿质氮肥,拔节期冬小麦的生物量低于对照25.7%、30.9%和14.1%,配施低、中量化学氮肥与对照差异显著(P〈0.05);各处理玉米生物量高于对照0.9%、50.8%和19.8%,配施中量化学氮肥与对照有明显差异(P〈0.05)。  相似文献   

20.
长期施肥对水稻土酶活性及理化特性的影响   总被引:1,自引:0,他引:1  
为了明确不同施肥种类对水稻土土壤肥力与酶活性的影响,以30年(1981年至今)长期定位试验地为基础,研究不同施肥处理(CK,N,P,K,NPK,2倍NPK,NPK+猪粪)水稻田耕层(0-20cm)土壤酶活性与养分的变化趋势及其相关性。结果表明:1)施P(配施或单施)增加土壤全P、速效P含量,平衡施肥配施有机肥(NPK+猪粪处理)土壤的有机质、全P、速效P、全N、速效N均显著增加,所有施肥处理间pH值差异均不显著;2)除了NPK处理土壤脲酶活性最高外,平衡施肥配施有机肥土壤转化酶、酸性磷酸酶、过氧化氢酶活性均较其他处理显著增加;3)酸性磷酸酶活性与土壤全P量呈负相关,过氧化氢酶、脲酶、转化酶与全N、有机质、速效N、速效P呈显著或极显著正相关;因此,水田土壤长期平衡施肥配施有机肥,能显著提高土壤肥力,增加土壤酶活性,有益于土壤生产力的持续提高。  相似文献   

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