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1.
宁夏引黄灌区猪粪还田对稻作土壤硝态氮淋失的影响   总被引:1,自引:0,他引:1  
以宁夏引黄灌区稻田为例,探索猪粪还田条件下稻田土壤硝态氮淋失规律。试验设置3个处理:常规施肥300 kg纯N kg/hm2(CK)、常规施肥条件下施用4500kg/hm2(T1)和9000 kg/hm2(T2)猪粪。利用树脂芯法吸附稻田30cm、60cm和90cm土层的硝态氮流失量。结果表明:在常规施肥的基础上增施猪粪,可以减少稻田生育期内60cm与90cm处土壤硝态氮淋失量,与CK相比,T1、T2在两个土层处淋失量的减少比例分别为4.93%、13.92%与7.48%、13.77%。同一土层不同处理之间差异显著性比较看(P0.05),30cm处T1、T2与CK相比没有达到显著性差异;60cm处,T1与CK未达到显著差异,T2与CK达到显著差异;90cm处,T1、T2与CK相比达到显著差异;60cm和90cm土层处的T2与T1之间均达到显著差异。T1和T2在30cm处的淋失量高于CK,但增加不明显,处理之间以及处理与对照相比差异不显著。稻田生育期内不同土层硝态氮淋失量在13.61—17.77 kg/hm2(纯N)。硝态氮淋失集中在插秧至分蘖期(5月中旬—6月下旬),该阶段的硝态氮淋失量占生育期内总淋失量的61.62%—72.84%;后期淋失量明显减少。处理T1、T2的水稻产量增产率分别为15.86%与12.85%。由此可见,在引黄灌区稻田,一定数量的猪粪还田,不仅能够减少土壤硝态氮向深层淋失,防控地下水污染,还有利于水稻增产。  相似文献   

2.
宁夏引黄灌区秸秆还田对麦田土壤硝态氮淋失的影响   总被引:3,自引:0,他引:3  
以宁夏引黄灌区为例,探索秸秆还田条件下冬小麦土壤硝态氮淋失规律。试验设置常规施肥(CK)、常规施肥条件下施用4500kg/hm2(T1,半量还田)和9000 kg/hm2(T2,全量还田)秸秆3个处理。利用树脂芯法吸附10、20、30、60cm和90cm土层的硝态氮流失量。结果表明:硝态氮(纯N)淋失量6.26—12.85 kg/hm2,是冬小麦施用化肥氮量的2.78%—5.71%。与对照CK相比,T1和T2在10cm土层减少0.09%和3.97%;20cm土层减少8.51%和9.81%;30cm土层减少2.25%和10.34%;60cm土层减少23.85%和13.08%;90cm土层减少27.65%和20.73%。10cm和20cm土层,处理与对照以及处理之间均未到显著性差异(P0.05);30cm处理,T1与CK以及T1与T2未达到显著性差异,但T2与CK达到显著性差异表明全量还田效果最好;60cm土层,处理与对照、以及处理之间均达到显著性差异;90cm土层,处理与对照之间达到显著性差异,处理之间未达到显著性差异。硝态氮淋失主要发生在冬小麦返青至灌浆期间,占全生育期淋失量的52.95%—67.79%。T1、T2冬小麦产量增产率分别为10.11%与11.51%。可见,稻秆还田能够减少灌区土壤硝态氮淋失量。  相似文献   

3.
宁夏引黄灌区猪粪还田对麦田土壤硝态氮淋失的影响   总被引:4,自引:0,他引:4  
以宁夏引黄灌区为例,探索猪粪还田条件下冬小麦田土壤硝态氮淋失规律.试验设置3个处理:常规施化肥225 kg N·hm-2(CK)、常规施肥基础上施用4500 kg·hm-2(T1)和9000 kg·hm-2(T2)猪粪.利用树脂芯法吸附30、60和90 cm土层的硝态氮淋失量.结果表明:在常规施肥基础上增施猪粪,小麦生育期土壤硝态氮(纯N)淋失量为9.33~14.04kg·hm-2,占施N量的4.2%~6.2%.与CK相比,30 cm土层T1、T2的硝态氮淋失量增加2.6%和2.1%;60 cm土层增加1.5%和减少1.3%;90 cm土层减少8.7%和增加4.0%.增施猪粪与对照在30、60和90 cm土层处的硝态氮淋失量均无显著差异,而在深层土壤表现出减少趋势.硝态氮淋失主要发生在返青至灌浆期间,日均淋失量高于全生育期平均水平,该阶段的硝态氮淋失量占生育期内总淋失量的58.7%~75.3%.T1、T2春小麦产量比对照分别增加9.3%和12.5%.  相似文献   

4.
宁夏引黄灌区农田面源污染较为严重,区内大部分排水沟水质为劣Ⅴ类,其主要污染物硝态氮与铵态氮。设置常规施肥(CK)、常规施肥条件下施用4500kg/hm~2(T1,半量还田)和9000 kg/hm~2(T2,全量还田)秸秆3个处理。利用树脂芯法吸附10、20、30、60、90cm土层的硝态氮流失量。2009—2013年的试验结果表明:秸秆还田能够减少土壤30cm土层的硝态氮淋失。与对照硝态氮淋失量(15.76 kg/hm~2)相比,T1(13.76 kg/hm~2)与T2(13.74 kg/hm~2)均达到显著差异(P0.05),淋失量分别减少12.71%和12.84%,T1与T2没有达到显著差异。秸秆还田对土壤硝态氮淋失的影响效应主要体现在30cm土层处,10、20、60与90cm土层处的处理与对照都没有达到显著差异。秸秆还田提高了30cm土层的土壤有机质与土壤总氮,与对照(13.78 g/kg)相比,T1与T2土壤有机质分别提高0.89 g/kg和1.24 g/kg;试验结束后,对照、T1和T2的总氮是达到0.64、0.66和0.69 g/kg,与对照相比,处理分别提高了2.76%和6.83%。秸秆还田有助于作物增产,T1与T2的水稻平均增产9.24%和10.37%,小麦增产10.11%和11.51%。  相似文献   

5.
有机肥对桃园土壤硝态氮分布的影响   总被引:5,自引:0,他引:5  
于2004—2005年在北京市平谷区有机桃园设置不同有机肥处理:2年连续施有机肥,年均67 500 kg·hm-2(T1);第一年不施肥,第二年施有机肥135 000 kg·hm-2(T2);第一年不施肥,第二年施有机肥67 500 kg·hm-2(T3);不施肥对照(CK),并于2006年对0~120 cm土层土壤进行取样分析,研究施用有机肥对土壤硝态氮分布和淋失的影响.结果表明:对照土壤中硝态氮分布较均匀,T1和T3在0~120 cm土层硝态氮浓度变化呈单峰曲线,其中60 cm以上较高,在60~120 cm逐渐降低;而T2土壤硝态氮浓度由浅到深逐渐增加,峰值出现在100~120 cm土层,其在60 cm以下土层的硝态氮浓度在所有处理中最高,说明过量施用有机肥易导致硝态氮的淋失.相关分析表明,土壤硝态氮的浓度和分布与多年施氮总量、最近一年施氮量和检测点与树的距离呈显著相关关系,并据此建立了有机肥施用与土壤剖面硝态氮浓度之间的相关模型.  相似文献   

6.
半干旱区农田土壤无机氮积累与迁移机理   总被引:41,自引:4,他引:37  
吴金水  郭胜利  党廷辉 《生态学报》2003,23(10):2040-2049
研究黄土旱塬区长期定位试验中 1 0个典型处理土壤剖面 (0~ 30 0 cm)水分和无机氮的季节变化 ,探讨在半干旱区农田无机氮的积累与迁移机理。结果表明休闲处理除表层外土壤剖面的水分、硝态氮和铵态氮的含量分别稳定在 1 7%~ 2 0 %、4~ 7mg N/kg和 6~ 1 0 mg N/kg土的范围。种植作物显著地改变土壤剖面水分和硝态氮的分布状况 ,并使其含量发生大幅度的季节变化。作物利用限制了农田土壤硝态氮向深层的迁移。小麦连作无化肥氮处理及苜蓿连作不施肥或氮、磷加有机肥处理土壤硝态氮主要集中在 0~ 40 cm土层。小麦连作单施氮肥 (1 2 0 kg N/(hm2· a) )处理经 1 7年后土壤剖面硝态氮积累总量达到施氮总量的55% ,40~ 60 cm和 1 4 0~ 2 2 0 cm土层出现两个高峰 ,并表现出随季节性变化向土壤深层迁移的趋势。氮肥与磷肥或有机肥施用大幅度减少了土壤剖面硝态氮积累 ,并使其限制在 1 60 cm以上的土层内 ,2 0 0 cm以下土层的硝态氮含量极低 (<1 mg N/kg土 ) ,因而不具向深层迁移的条件。土壤剖面的铵态氮含量不受作物、施肥和季节性气候变化的影响  相似文献   

7.
施氮量对小麦/玉米带田土壤水分及硝态氮的影响   总被引:4,自引:0,他引:4  
杨蕊菊  柴守玺  马忠明 《生态学报》2012,32(24):7905-7912
通过田间试验研究了河西绿洲灌区典型的小麦/玉米间作群体不同施氮量(0、210、420和630 kg/hm2)对小麦、玉米带田土壤水分和硝态氮(NO3(-)-N)的动态的影响.结果表明:小麦/玉米总籽粒产量随着施氮量的增加而增加,但当施氮量超过420kg/hm2时,总籽粒产量不再随施氮量增加而增加,最高总籽粒产量可达13661-14668 kg/hm2.水分利用效率在施氮420 kg/hm2时最高可达21.25 kg·hm-2·mm-1.小麦收获后,0-120 cm土层内土壤含水量随施氮量增加而减少,NO3(-)-N的累积量随施氮量增加而增加,并且表层土壤(0-60 cm) NO3(-)-N含量明显高于深层土壤(60-200 cm).在小麦/玉米整个生育期,土壤硝态氮的变化呈双峰曲线.施氮0和210 kg/hm2的土壤硝态氮第一峰值和第二峰值均分别出现在小麦三叶期和玉米大喇叭口期;施氮420和630 kg/hm2的土壤硝态氮第一峰值出现在小麦挑旗期,第二峰值分别出现在玉米大喇叭口期和玉米灌浆期.因此,在该地区小麦/玉米间作栽培模式下,施氮水平控制在420 kg/hm2时,使混合产量达到最高,同时可减轻土壤硝态氮的累积和运移,从而达到高效、安全的目的.  相似文献   

8.
张迪  周志高  王兴祥 《生态科学》2018,37(5):140-145
采用盆栽试验方法, 在自然降雨条件下模拟研究了亚热带红壤丘陵区花生—萝卜轮作体系下三种肥力红壤对猪粪的安全消纳能力。通过监测试验3 年间土壤渗漏水硝酸盐迁移淋失, 结合土壤速效磷累积和花生产量变化, 初步确定3 种肥力红壤的猪粪安全消纳量。试验结果表明: 常规化肥减半用量下, 从硝态氮淋失以及速效磷积累角度, 低肥力、中肥力和高肥力红壤配施猪粪最大安全用量分别为P 800 kg·hm–2、P 100 kg·hm–2 和 P 50 kg·hm–2, 从花生产量角度考虑持续配施猪粪施用量不宜超过P 800 kg·hm–2、P 100 kg·hm–2 和P 100 kg·hm–2。综合考虑经济效益和环境效益,低肥力、中肥力和高肥力红壤配施猪粪的最大安全消纳量分别为P 800 kg·hm–2、P 100 kg·hm–2 和P 50 kg·hm–2。  相似文献   

9.
关中地区小麦/玉米轮作农田硝态氮淋溶特点   总被引:6,自引:0,他引:6  
通过田间原位淋溶装置研究了不同施氮量和秸秆覆盖对关中地区小麦/玉米轮作农田90cm深处硝态氮(NO3--N)淋溶量、0~1m土层硝态氮累积及作物产量和氮平衡的影响.试验设不施氮(N1,0kg·hm-2·a-1)、常规施氮(N2,471kg·hm-2·a-1)、推荐施氮(N3,330kg·hm-2·a-1)、减量施氮(N4,165kg·hm-2·a-1)、增量施氮(N5,495kg·hm-2·a-1)和推荐施氮+秸秆覆盖(N3+S)6个不同施肥处理.结果表明:NO3--N淋溶量随施氮量的增加而增大,氮肥的过量施用及秸秆覆盖易造成NO3--N淋溶.N3+S处理90cm处年NO3--N流失量最大,为22.32kg·hm-2,施肥造成的氮流失量为16.44kg·hm-2,比相同施氮量不覆盖处理(N3)高158.9%.NO3--N主要累积在20~60cm土层,年施氮量330kg·hm-2(N3)时,秸秆覆盖与否不影响NO3--N的剖面分布.各施肥处理对作物产量没有显著影响,但减量施氮处理(N4)有减少作物产量的趋势.在本试验条件下,推荐施肥量(小麦施氮150kg·hm-2,玉米施氮180kg·hm-2)在保证作物产量的同时,可减少土壤NO3--N的淋溶和累积.  相似文献   

10.
为确定渭北旱地春玉米减肥增效的科学生产模式,于2016—2019年在陕西合阳县实施旱地春玉米田间定位施肥试验。以郑单958和陕单8806为试验品种,设置5个施氮量处理,分别为360(N360,当地农户常规施氮量)、270(N270)、150~180(N150-180)、75~90(N75-90)和0 kg·hm-2 (N0),分析减量施氮处理下春玉米产量、氮素吸收利用及硝态氮残留状况。结果表明: 1)与N360处理相比,两个品种在N150-180处理下籽粒产量增加0.9%~7.1%,吸氮量降低4.1%~4.6%,平均氮肥回收利用率、偏生产力和农学效率分别提高79.3%~83.6%、105.9%~157.7%和101.9%~114.1%;2)在高施氮量(大于180 kg·hm-2)处理下,硝态氮残留量显著增加;降雨不足显著降低玉米需氮量,导致氮素残留量增加。经过4年定位试验0~200 cm土层硝态氮含量高达504.7~620.8 kg·hm-2,在80~140 cm土层出现累积峰,存在硝态氮淋失风险。根据年际间玉米籽粒产量表现、肥料利用效率和硝态氮残留状况综合评价,渭北旱地春玉米田适宜氮肥用量为150~180 kg N·hm-2。  相似文献   

11.
Summary Distribution patterns of nitrate in field are studied in twelve treatments comprising of different N splits and irrigation schedules, after the harvest of wheat. Total amount of irrigation and nitrogen application were kept same for each treatment. The curves show that heavy irrigation at greater intervals can result in larger amount of unutilised NO3 -N, which will eventually be lost beyond potential rooting zone. As irrigation becomes lighter and frequent, nitrates travel slowly and thus remain for more time within the reach of roots and are lost to a less extent. When whole of the nitrogen is applied in one lot, considerably more NO3 -N is lost under all the irrigation schedules. As the number of splits are increased, susceptibility of nitrate nitrogen for leaching decreases to a greater extent under lighter and more frequent irrigation schedule than the other. Besides N-splitting and irrigation criteria, efficiency and depth of rooting system of plants seems to play a major role in defining nitrate leaching patterns towards unsaturated zone.  相似文献   

12.

The increasing world population has forced excessive chemical fertilizer and irrigation to complete the global food demand, deteriorating the water quality and nutrient losses. Short-term studies do not compile the evidences; therefore, the study aimed to identify the effectiveness of reduced doses of inorganic fertilizer and water-saving practices, hence, a six-year experiment (2015–2020) was conducted in China to address the knowledge gap. The experimental treatments were: farmer accustomed fertilization used as control (525:180:30 kg NPK ha−1), fertilizer decrement (450:150:15 kg NPK ha−1), fertilizer decrement + water-saving irrigation (450:150:15 kg NPK ha−1), application of organic and inorganic fertilizer + water-saving irrigation (375:120:0 kg NPK ha−1 + 4.5 tones organic fertilizer ha−1), and application of controlled-release fertilizer (80:120:15 kg NPK ha−1). Each treatment was replicated thrice following a randomized complete block design. The results achieved herein showed that control has the highest losses in the six-year study for total nitrogen (225.97 mg L−1), total soluble nitrogen (121.58 mg L−1), nitrate nitrogen (0.93 mg L−1), total phosphorus (0.57 mg L−1), and total soluble phosphorus (0.57 mg L−1) respectively. Reduced fertilizer and water application improved crop nutrient uptake, nitrogen concentration was significantly enhanced with organic and inorganic fertilizer + water-saving irrigation, P concentration was increased with fertilizer decrement + water-saving irrigation, and K concentration was improved with fertilizer decrement + water-saving irrigation. Hence, this study concludes that reduced inorganic fertilizer dose combined with water-saving practices is significantly helpful in reducing nutrient leaching losses and improving nutrient uptake and water pollution. Further studies are needed to explore the impacts of reduced fertilization and water-saving irrigation on leaching losses. The benefits at different climatic conditions, soil types, and fertilizer types with application methods are also a research gap.

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13.
Hybrid poplar short‐rotation coppices (SRC) provide feedstocks for bioenergy production and can be established on lands that are suboptimal for food production. The environmental consequences of deploying this production system on marginal agricultural land need to be evaluated, including the investigation of common management practices i.e., fertilization and irrigation. In this work, we evaluated (1) the soil‐atmosphere exchange of carbon dioxide, methane, and nitrous oxide (N2O); (2) the changes in soil organic carbon (SOC) stocks; (3) the gross ammonification and nitrification rates; and (4) the nitrate leaching as affected by the establishment of a hybrid poplar SRC on a marginal agricultural land in southern Germany. Our study covered one 3‐year rotation period and 2 years after the first coppicing. We combined field and laboratory experiments with modeling. The soil N2O emissions decreased from 2.2 kg N2O‐N ha?1 a?1 in the year of SRC establishment to 1.1–1.4 kg N2O‐N ha?1 a?1 after 4 years. Likewise, nitrate leaching reduced from 13 to 1.5–8 kg N ha?1 a?1. Tree coppicing induced a brief pulse of soil N2O flux and marginal effects on gross N turnover rates. Overall, the N losses diminished within 4 years by 80% without fertilization (irrespective of irrigation) and by 40% when 40–50 kg N ha?1 a?1 were applied. Enhanced N losses due to fertilization and the minor effect of fertilization and irrigation on tree growth discourage its use during the first rotation period after SRC establishment. A SOC accrual rate of 0.4 Mg C ha?1 a?1 (uppermost 25 cm, P = 0.2) was observed 5 years after the SRC establishment. Overall, our data suggest that SRC cultivation on marginal agricultural land in the region is a promising option for increasing the share of renewable energy sources due to its net positive environmental effects.  相似文献   

14.
施肥和覆膜垄沟种植对旱地小麦产量及水氮利用的影响   总被引:17,自引:0,他引:17  
通过大田试验研究了施肥和覆膜垄沟种植对旱地冬小麦群体动态、产量构成及水氮利用的影响。结果表明,覆膜垄沟种植和追肥处理可显著提高旱地冬小麦穗数,追肥处理可减少后期无效分蘖;覆膜垄沟种植和追肥处理产量分别比农户模式提高了11.73%和13.91%,穗数和穗粒数是其产量提高的关键因素;覆膜垄沟种植方式可减少土壤水分损耗,水分利用率为11.60 kg · hm-2 · mm-1,显著高于其他处理;追肥处理能有效促进小麦生育中后期对氮素的吸收利用,在基施氮量165 kg/hm2上再追肥30 kg/hm2,地上部分吸氮总量增加15.45 kg/hm2,追肥氮的利用率显著高于底肥氮利用率,为51.5%。  相似文献   

15.
赤红壤植蔗坡地坡面径流及溶解态氮磷流失特征   总被引:4,自引:0,他引:4  
为探究南方高强度、高频次降雨下赤红壤区坡耕地土壤侵蚀及氮磷养分流失的特征,基于野外径流小区原位观测试验,通过测定自然降雨下赤红壤植蔗坡地坡面径流和溶解态氮磷流失量,探讨自然降雨下甘蔗种植对赤红壤坡面径流及溶解态氮磷流失的影响。结果表明:(1)2019年和2020年,径流量分别为1111.3 m~3/hm~2和3269.4 m~3/hm~2,硝态氮(NO~-3-N)流失量分别为1.39 kg/hm~2和15.60 kg/hm~2,铵态氮(NH~+4-N)流失量分别为0.37 kg/hm~2和1.02 kg/hm~2,可溶性磷流失量分别为0.20 kg/hm~2和0.27 kg/hm~2。2019年和2020年植蔗坡地径流及溶解态氮磷流失量均集中在6月份,占流失总量的45%以上,硝态氮(NO~-3-N)是径流氮素流失的主要形式,占79%以上。此外,2019年和2020年5月至8月,侵蚀性降雨场次分别为18次和23次,侵蚀性降雨量分别为407.8 mm和668.0 mm。(2)不同侵蚀性降雨条件下,植蔗坡地溶解态氮磷流失量及其...  相似文献   

16.
施氮对高产小麦群体动态、产量和土壤氮素变化的影响   总被引:10,自引:2,他引:8  
选用多穗型小麦品种豫麦49-198和大穗型小麦品种兰考矮早八,以河南温县和兰考为试验地点,在0、90、180、270、360Nkg.hm-2水平下,通过田间试验对小麦群体动态、产量和土壤氮素变化进行了研究.结果表明:两个品种小麦都是从出苗开始群体数量不断增加,到拔节期达到最大,然后开始下降.在不同施氮水平和试验点间,豫麦49-198在越冬期和返青期群体数量没有显著差异,拔节以后不同氮水平间群体数量差异显著;而兰考矮早八在所有生育时期,不同施氮水平间群体数量都没有显著差异.随氮肥用量的增加,小麦产量增加,但过量施氮则使小麦产量下降,豫麦49-198以270Nkg.hm-2水平下产量最高,在温县和兰考点分别为9523和9867kg.hm-2,兰考矮早八以180Nkg.hm-2水平下产量最高,在温县和兰考点分别为9258和9832kg.hm-2.随着氮肥用量的增加,土壤硝态氮含量和氮素表观损失增加,豫麦49-198在温县和兰考点的氮素表观损失分别占氮肥用量的32.56%~51.84%和-16.70%~42.60%,兰考矮早八则分别占氮肥用量的18.58%~52.94%和-11.50%~45.80%.在本研究条件下,兼顾产量和环境效应,0~90cm土壤硝态氮累积量不应超过120~140kg.hm-2,小麦氮用量不能超过180kg.hm-2.  相似文献   

17.
Understanding the effects of nitrogen (N) fertilization on Miscanthus × giganteus greenhouse gas emissions, nitrate leaching, and biomass production is an important consideration when using this grass as a biomass feedstock. The objective of this study was to determine the effect of three N fertilization rates (0, 60, and 120?kg?N?ha?1 using urea as the N source) on nitrous oxide (N2O) and carbon dioxide (CO2) emissions, nitrogen leaching, and the biomass yields and N content of M. × giganteus planted in July 2008, and evaluated from 2009 through early 2011 in Urbana, Illinois, USA. While there was no biomass yield response to N fertilization rates in 2009 and 2010, the amount of N in the harvested biomass in 2010 was significantly greater at the 60 and 120?kg?N?ha?1?N rates. There was no significant CO2 emission response to N rates in 2009 or 2010. Similarly, N fertilization did not increase cumulative N2O emissions in 2009, but cumulative N2O emissions did increase in 2010 with N fertilization. During 2009, nitrate (NO 3 ? ) leaching at the 50-cm soil depth was not related to fertilization rate, but there was a significant increase in NO 3 ? leaching between the 0 and 120?kg?N?ha?1 treatments in 2010 (8.9 and 28.9?kg?NO3?CN?ha?1?year?1, respectively). Overall, N fertilization of M. × giganteus led to N2O releases, increased fluxes of inorganic N (primarily NO 3 ? ) through the soil profile; and increased harvested N without a significant increase in biomass production.  相似文献   

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