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1.
追施生物炭对稻麦轮作中麦季氨挥发和氮肥利用率的影响   总被引:9,自引:0,他引:9  
【目的】利用田间定位试验,对比研究生物炭施入土壤经过三年老化及追施新生物炭对稻麦轮作体系中麦季土壤氨 (NH3) 挥发、氮肥利用率和产量的影响。【方法】试验共设6个处理,其中对照处理2个为N0B0 (不施氮肥+不施生物炭)、N1B0 (单施N 250 kg/hm2);2012年施用生物炭处理2个为N1B1 (N 250 kg/hm2 + 生物炭20 t/hm2)、N1B2 (N 250 kg/hm2 + 生物炭40 t/hm2);2015年追施生物炭处理2个为N1B1 + B (N1B1 + 生物炭10 t/hm2)、N1B2 + B1 (N1B2 + 生物炭20 t/hm2)。【结果】与N1B0处理相比,N1B1和N1B1 + B处理NH3挥发累积量分别减少36.6%、6.4%,氮肥利用率提高30.1%和14.1%,小麦产量增加55.6%和26.9%;而N1B2、N1B2 + B1处理NH3挥发累积量分别增加20.3%、40.5%,氮肥利用率提高35.9%和14.3%,小麦产量增加72.5%和18.9%。与老化生物炭处理相比,追施生物炭处理显著增加了小麦季氨挥发累积量,并显著降低了小麦氮肥利用率和产量。【结论】农田中施用生物炭可明显增加小麦季产量和氮肥利用率。老化生物炭低施用量 (20 t/hm2) 处理能显著减少NH3挥发损失,并且更有效的提高小麦氮肥利用率和产量。  相似文献   

2.
秸秆生物炭具有改善土壤生态环境、土壤蓄水保肥和减少温室气体排放等正效应,但其石灰效应会加大稻田氨挥发损失.为充分发挥生物炭吸铵特性,降低其石灰效应的不利影响,对不同热解温度(300、500、700℃)和酸化水平(pH值=5、7、9)稻草生物炭处理下的田面水NH4+-N浓度、氨挥发和水稻产量进行了研究.结果表明:偏酸性(...  相似文献   

3.
灌溉水盐度对滴灌棉田土壤氨挥发的影响   总被引:2,自引:0,他引:2  
【目的】氨挥发是农田氮素损失的重要途径之一,咸水灌溉直接或间接影响土壤的理化性质,进而影响土壤氨挥发,但目前对于咸水灌溉下氨挥发的报道还较少。因此通过田间试验研究尿素滴灌施肥条件下,淡水和咸水灌溉对棉田土壤氨挥发的影响。【方法】试验设置淡水和咸水两种灌溉水,其电导率(EC)分别为0.35和8.04d S/m(分别用CK和SW表示),氮肥(N)用量为240 kg/hm2。氨挥发的收集采用密闭室法,用稀硫酸作为氨的吸收液,测定用靛酚蓝比色法。【结果】1)灌溉施肥后,咸水滴灌棉田土壤盐分、脲酶活性和铵态氮含量均显著高于淡水滴灌。SW处理土壤电导率(EC1∶5)较CK平均高出4.53倍。灌溉施肥后SW处理土壤脲酶活性迅速增加,第4天达到最大,随后降低,SW处理脲酶活性较CK处理平均增加了20.6%。SW处理土壤铵态氮含量明显高于CK处理,尤其是灌溉施肥后第2天,SW处理铵态氮含量比CK处理增加了66.1%。2)SW处理棉田土壤p H值低于CK处理,但在灌溉施肥周期内都呈先增加后降低趋势,p H的变化在7.6~8.0之间。3)SW处理抑制了硝化作用,SW处理土壤硝态氮含量较CK处理显著降低。SW处理土壤硝态氮含量平均较CK低7.68%。4)3个灌溉施肥周期的平均温度分别为24.6℃、26.05℃和24.9℃,因此在第2个和第3个灌溉施肥周期氨挥发高,第1个灌溉施肥周期的总降水量最大,分别比第2和3个灌溉施肥周期高3.7 mm和10.2 mm,但降水量远远小于灌溉量,因此对于氨挥发影响不大。5)总体上,土壤氨挥发损失量在灌溉施肥后1~2天最大,占氨挥发总量的45.7%~79.3%,随后呈降低趋势;灌溉施肥后第1天土壤氨挥发最大,在3个灌溉施肥周期,SW处理第1天的氨挥发较CK分别增加70.7%、69.43%和60.8%。SW处理棉田土壤氨挥发显著高于CK处理。在三个连续灌溉施肥周期内,SW处理棉田土壤氨挥发累积总量为10.98 kg/hm2,CK处理为7.57 kg/hm2,SW处理较CK处理增加了45.1%。【结论】咸水灌溉促进了脲酶活性,但抑制了土壤的硝化作用,导致铵态氮含量增加,加剧了氨的挥发。温度升高促进土壤氨挥发,少量降雨对氨挥发影响不大。因此,滴灌施肥条件下,咸水灌溉会增加氨挥发损失。  相似文献   

4.
Eighty cotton varieties (Gossypium hirsutum L.) from the collection of VIR (N.I. Vavilov Research Institute of Plant Industry, St. Peterburg, Russia) collection were studied for variability with regard to the duration of their vegetation period. The experiments were carried out in the conditions of the marginal zone of the cotton growing area, that is the city of Krasnodar in the Russian Federation. Thirty-four varieties were studied in 1996–1998, forty-six varieties in 1997–1998. The purpose of this research was to determine the threshold of sensitivity in the varieties of the duration of the period of vegetative growth, which depends upon weather conditions, and to record variations in morphological characters associated with earliness. The data obtained were processed by the method of statusmetry. The mathematical models which were constructed showed the relationship between the criteria for earliness and other morphological and agronomic characters of the plants.  相似文献   

5.
在陕西关中小麦-玉米轮作区,通过4年田间定位试验研究了长期施氮和秸秆还田对作物产量、氮肥利用率、0-100 cm土层无机氮残留及体系氮平衡的影响.结果显示,施氮能显著提高作物产量,小麦、玉米4年平均产量增幅分别为64.1%和48.8%,均随施氮量的增加先增加后减小.优化施肥小麦、玉米氮肥用量较农民习惯施肥分别减少了27.3%和55.6%,但连续4年作物产量没有显著降低.秸秆还田随种植年限的推移其增产效果逐渐明显.轮作体系作物累计氮肥利用率逐年升高,前8季作物达33.3%~56.6%,说明氮肥后效明显.施氮增加了0-100 cm土层无机氮残留,且N03--N残留明显高于NH4+-N,并与年施氮量表现出显著的正相关关系,秸秆还田对无机氮残留影响不明显.体系氮平衡表明,随施氮量增加,作物累计氮素吸收先显著增加后增幅不变,而残留Nmin和表观损失均显著增加.秸秆还田措施下,作物累计氮素吸收和氮肥利用率分别增加了13.0%和26.2%,氮素表观损失和损失率均降低了22.9%,但对残留Nmin和表观残留率的影响不显著.  相似文献   

6.
Wheat (Triticum aestivum L.) residues and nitrogen (N) management are the major problems in the southern part of Iran where irrigated wheat–cotton (Gossypium hirsutum L.)–wheat rotation is a common practice. A 2-year (2009–2011) field experiment was conducted as a split plot design with four replications at a cotton field (Darab), Fars Province, Iran, to determine the influence of different rates of wheat residue (0%, 25%, 50%, and 75%) incorporation and N rates (150, 200, 300, and 400 kg ha?1) on weed suppression, yield, and yield components of cotton. Results showed that a higher residue incorporation and a lower N rate improved weed suppression in both years. For treatments receiving 150 kg N ha?1 and 75% of wheat residues (2250 kg ha?1), weed biomass and density were significantly lower compared to treatments receiving 400 kg N ha?1. The highest cotton lint yield (about 2400–2700 kg ha?1) was obtained by 300 kg N ha?1 in the absence of residue application, in both years. Incorporation of 25% of wheat residue (750 kg ha?1) and application of 300 kg N ha?1 are recommended to guarantee an optimum level of cotton lint yield and weed suppression in a wheat–cotton–wheat rotation in this region.  相似文献   

7.
为探究控释掺混肥结合增密对水稻产量、氮素吸收、施肥经济效益和氨挥发损失的影响,该研究以扬籼优418为供试材料,设不施氮对照(CK)、常规施氮(Farmer''s Fertilization Practice,FFP)、优化施氮(Optimized Nitrogen Application,OPT)、控释掺混肥(Controlled Release Blended Fertilizer,CRBF)和控释掺混肥结合增密(Controlled Release Blended Fertilizer Combined with Dense Planting,CRFDP)共5个处理,对比分析了不同处理的水稻产量及构成因子、氮素吸收和氮肥利用效率、经济效益和氨挥发损失的差异。结果发现,CRFDP处理的水稻有效穗数和每穗实粒数显著高于其他处理(P<0.05),较FFP分别增加26.1%和18.7%。CRFDP处理较FFP处理水稻增产33.3%。与FFP相比,CRFDP的氮肥吸收利用率、氮肥偏生产率、氮肥农学利用率分别提高160%、22.8 kg/kg、16.27 kg/kg。CRFDP较CRBF处理的氮肥吸收利用率显著提高10.0个百分点,氮肥偏生产率、氮肥农学利用率和氮素生理利用率则没有显著差异(P>0.05);与FFP处理相比,3个优化施氮处理(OPT、CRBF和CRFDP)在氮肥用量降低20%的情况下,水稻每公顷净收益增加3 328~8 968元,其中CRFDP处理的水稻产值和净收益最高。施氮显著提高了水稻生长季的田面水铵态氮浓度和土壤脲酶活性,与FFP处理相比,CRFDP处理的氨挥发强度和累积氨挥发损失分别降低62.5%和46.3%。综上,控释掺混肥与增密结合可兼顾水稻高产、氮肥高效利用和氨减排。研究结果可为水稻高产及环境友好和资源高效的水稻种植新模式数据支持和理论支撑。  相似文献   

8.
棉花是重要的经济作物,长期连作能引起棉花土壤微生态的失衡、土传病害加重、进而导致产量和品质的下降,影响棉花产业的健康发展。本文以连作棉田土壤为研究对象,进行室内培养试验,在施用生防放线菌黄三素链霉菌(Streptomyces flavotricini)的基础上添加不同量的棉秆炭[0 g·kg~(-1)(CK)、25.0 g·kg~(-1)、50.0 g·kg~(-1)、100.0 g·kg~(-1)],采用微生物计数和16S rDNA基因序列分析的方法,研究两者配施对连作棉田土壤中生防菌数量、微生物数量和种类的影响,为棉花黄萎病的生物防治提供新的思路。研究结果表明:(1)生防放线菌配施棉秆炭对连作棉田土壤中微生物区系有显著的影响。与单施生防放线菌菌剂的处理相比,两者配施显著增加了土壤中细菌、放线菌和真菌数量,其中配施25.0 g·kg-1棉秆炭处理使土壤中细菌/真菌数量比(B/F)、放线菌/真菌数量比(A/F)分别增加了5 271.2%和30.8%(P0.05)。(2)土壤中生防放线菌数量随着棉秆炭施用量增加而显著增加,配施100.0 g·kg~(-1)棉秆炭处理显著增加了2 672.8%(P0.05)。棉秆炭具有作为生防放线菌良好载体的潜力。(3)生防放线菌配施棉秆炭也改变了土壤中优势微生物的数量和比例,尤其提高了细菌中芽孢杆菌的数量和所占的比例;100.0 g·kg~(-1)棉秆炭与菌剂配施使土壤中链霉菌的数量及比例显著高于对照,但降低了小单孢菌数量;增加了真菌中米曲梅、黑曲霉和木霉的数量,但使其所占比例降低。由此可以看出,生防放线菌配施棉秆炭能提高连作棉田土壤中生防放线菌的数量,增强生防菌制剂的防病促生作用,改善连作棉田土壤微生物群落结构,在防控棉花连作障碍上具有较大的应用潜力。  相似文献   

9.
为了研究生物炭对向日葵秸秆热解的影响,以向日葵秸秆为原料,基于TG-FTIR研究生物炭添加前后向日葵秸秆热解特性与气体产物的变化。结果表明,与向日葵秸秆相比,混合样品主热解区间由276~349℃变得更长,并且发生不同程度的偏移,热解活化能不同程度降低,由60.21降到38.07~50.35 kJ/mol,呋喃类、酸类、含羰基类化合物、芳香醛类、CO、CH4等产物吸光度值存在差异。随着添加500℃制备生物炭比例增加,混合样品热解的活化能减小,释放气体产物中芳香醛类释放量增量减少,CO与CH4释放量降低。添加不同制备温度的生物炭,混合样品热解产生呋喃类、酸类、含羰基类化合物释放量均有所降低;添加500和700℃制备的生物炭,混合样品热解气体产物中芳香醛类增加。添加900℃制备的生物炭,向日葵秸秆热解气体产物中CO产量增加。该研究为向日葵秸秆的有效利用提供理论基础和技术支撑。  相似文献   

10.
添加脲酶抑制剂NBPT对麦秆还田稻田氨挥发的影响   总被引:11,自引:2,他引:11  
氨挥发是稻田氮素损失的重要途径,为探明脲酶抑制剂NBPT对小麦秸秆还田稻田中氨挥发的影响,采用密闭室通气法,在太湖地区乌珊土上,研究了脲酶抑制剂n-丁基硫代磷酰三胺(NBPT)对小麦秸秆还田稻田中施肥后尿素水解和氨挥发动态变化的影响。结果表明:稻田氨挥发损失主要集中在基肥和分蘖肥时期。添加NBPT可明显延缓尿素水解,推迟田面水NH4+-N峰值出现的时间,并降低NH4+-N峰值,降低了田面水氨挥发速率和挥发量。NBPT的效果在基肥和分蘖肥施用后尤为明显,不加NBPT时施入的尿素在2~3 d内基本水解彻底,NH4+-N和氨挥发速率在第2 d即达到峰值,两次施肥后NH4+-N峰值分别为132.3 mg·L-1和66.3mg·L-1,氨挥发峰值为15.6 kg·hm-2·d-1和10.4 kg·hm-2·d-1;而添加NBPT后,NH4+-N峰值推迟至施肥后第4 d出现,NH4+-N峰值降至70.7 mg·L-1和51.6 mg·L-1,氨挥发峰值降至4.7 kg·hm-2·d-1和2.6 kg·hm-2·d-1。添加NBPT使稻田氨挥发损失总量从73.3 kg(N)·hm-2(占施氮量的24.4%)降低至34.5 kg(N)·hm-2(占施氮量的11.5%),降低53%。在添加小麦秸秆稻田中添加NBPT通过延缓尿素水解而显著降低了氨挥发损失。  相似文献   

11.
长期有机无机肥配施对冬小麦籽粒产量及氨挥发损失的影响   总被引:11,自引:2,他引:11  
【目的】黄淮海地区作为华北平原重要的农业生产区,氮肥投入量大、利用率低的现象较为普遍,氮肥损失和农业面源污染严重。本研究在长期肥料定位试验基础上,连续多年监测不同施肥处理下冬小麦田氮素挥发损失量及其规律,探讨减少黄淮海地区麦田氨挥发的有效施肥方式,为提高冬小麦产量及肥料利用效率提供科学依据。 【方法】2011~2015 年利用水肥渗漏研究池进行试验,以石麦 15 (SM15) 为材料,以不施氮肥 (CK) 为对照处理,在同等施氮量下设置单施尿素 (U)、单施牛粪 (M) 和尿素牛粪 1∶1 配施 (U + M) 3 种氮肥配比处理,随机区组设计。采用通气法连续 4 年原位监测不同施肥处理下小麦氨挥发损失量、小麦籽粒产量及氮肥利用率。 【结果】2011~2015 年氨挥发损失量年际间变化较大,最大变幅可达 19.69 kg/hm2,年际间施肥后氨挥发速率变化规律趋势相似。不同施肥处理对土壤氨挥发有显著影响,冬小麦季氨挥发主要发生在施肥后 15 d 内,拔节期追肥的氨挥发速率显著高于播种期施用基肥。四年间氨挥发损失量平均达 7.26~42.40 kg/hm2,与不施氮肥相比,施氮处理的氨挥发损失量升高 1.40~4.84 倍,表明施用氮肥显著促进土壤氨挥发;施氮处理的氮肥损失率以 U 处理最高,达到 19.5%,M 处理最低,为 5.7%,U + M 处理为 12.3%,介于两处理之间,U + M 处理和 M 处理的氮肥损失率较 U 处理四年平均分别降低了 37.0% 和 71.1%,表明单施有机肥或有机无机肥配施可显著抑制氨挥发损失。2011~2015 年各施肥处理冬小麦产量均以 U + M 处理最高,达 9461.5 kg/hm2,较 U 和 M 处理分别增产 6.8% 和 9.1%。各处理的冬小麦籽粒吸氮量、地上部吸氮量同样以 U + M 处理最大,较 U 和 M 处理分别提高 7.1%、12.6% 和 5.4%、12.9%。U + M 处理的氮肥利用率在四年均最高,达 41.96%,较 U 和 M 处理分别提高 16.5%~19.6% 和 38.6%~58.7%。 【结论】综合籽粒产量及氮素利用效率,有机无机肥配施比单施化肥能显著降低氨挥发损失,提高籽粒产量和氮肥利用率,有利于实现冬小麦高产与肥料高效的协同,可作为黄淮海区域小麦生产中的增产增效的优化施肥方式。  相似文献   

12.
Potassium (K) deficiency is one of the main limiting factors in cotton (Gossypium hirsutum L.) production. To study the mechanism of high K‐use efficiency of cotton, a pot experiment was conducted. The experiment consisted of two cotton genotypes differing in K‐use efficiency (H103 and L122) and two K‐application levels (K0: 0 g (kg soil)–1; K1: 0.40 g (kg soil)–1). Root‐hair density and length, partitioning of biomass and K in various organs, as well as K‐use efficiency of the two cotton genotypes were examined. The results show that there was no significant difference in K uptake between the two genotypes at both treatments, although the genotype H103 (high K‐use efficiency) exhibited markedly higher root‐hair density than genotype L122 in the K1 treatment. Correlation analysis indicates that neither root‐hair density nor root‐hair length was correlated with plant K uptake. Furthermore, the boll biomass of genotype H103 was significantly higher than that of genotype L122 in both treatments, and the K accumulation in bolls of genotype H103 was 39%–48% higher than that of genotype L122. On the other hand, the litter index (LI) and the litter K‐partitioning index (LKPI) of genotype H103 were 14%–21% and 22%–27% lower than that of genotype L122. Lastly, the K‐use efficiency of total plant (KUE‐P) of genotype H103 was comparable with that of genotype L122 in both treatments, but the K‐use efficiency in boll yield (KUE‐B) of genotype H103 was 24% and 41% higher than that of genotype L122 in K0 and K1 treatments. Pearson correlation analysis indicated that KUE‐P was positively correlated with BKPI and negatively correlated with LKPI, while KUE‐B was positively correlated with BKPI and boll‐harvest index (HIB), and negatively correlated with LKPI. It is concluded that there were no pronounced effects of root‐hair traits on plant K uptake of the two genotypes. The difference in K‐use efficiency was attributed to different patterns of biomass and K partitioning rather than difference in K uptake of the two genotypes.  相似文献   

13.
中国农田土壤镉等重金属污染问题突出,对其生产过程中产生的镉污染水稻秸秆进行无害化和资源化利用研究具有重要意义。该研究通过连续提取试验、风险评价指数法、吸附动力学/热力学、土柱试验,以及X射线衍射分析、傅里叶变换红外光谱分析等手段,探究了不同热解温度下制备的镉污染水稻秸秆生物炭对土壤中Cd的稳定特性。研究结果表明,镉污染水稻秸秆热解制备的生物炭可有效吸附土壤镉。热解温度显著影响生物炭对Cd的吸附能力(P<0.05),高温生物炭对Cd吸附容量大,700 ℃下制备的生物炭对Cd的吸附容量可达72.57 mg/g。生物炭对Cd的吸附主要通过含氧官能团表面络合和碳酸盐共沉淀吸附,其吸附过程符合Langmuir方程和准二级动力学模型,吸附过程受化学速率控制。土柱试验表明,镉污染水稻秸秆生物炭能有效降低土壤Cd的下渗迁移能力,其作用机制主要是将土壤Cd从酸可提取态转化为残渣态,施入高温生物炭的土壤中Cd的残渣态比例最高。上述结果表明,热解可有效处理镉污染水稻秸秆,制备的生物炭可用于Cd等重金属污染土壤的稳定修复,有效解决镉污染水稻秸秆的潜在二次污染问题并实现其安全利用。  相似文献   

14.
董勤各  冯浩  杜健 《农业工程学报》2010,26(14):156-162
为了深入地研究秸秆粉碎还田与化肥配施措施对不同品种冬小麦耗水和产量的影响,选用西农9871、荔高6号、闫麦9710、陕139、衡观35、中原98-68、小偃22共7个冬小麦品种,采用邻比法进行试验。结果表明:与常规施肥措施相比,秸秆粉碎还田与化肥配施措施对冬小麦总耗水量没有明显影响,但可以显著降低无效耗水,增加作物蒸腾用水,约12mm耗水由土面无效蒸发变为作物有效蒸腾,同一肥料措施下不同冬小麦品种间耗水量也无显著差异;秸秆粉碎还田与化肥配施措施有助于冬小麦的生长发育,平均株高较常规施肥措施下的增加2.1  相似文献   

15.
为探讨减少盐碱地棉花铃脱落的途径, 田间条件下研究了土壤供应低氮(N 226.5 kg·hm-2)和高氮(N 346.5 kg·hm-2)条件下, 不打顶、打顶和打顶后涂抹生长素对棉花铃脱落和产量构成因素的影响。结果表明, 低氮和高氮水平下, 打顶、打顶后涂抹NAA 处理果枝落铃率都低于不打顶处理。打顶后涂抹浓度为0.3 mmol·L-1 的NAA 处理在低氮水平下的成铃率比传统打顶处理高1.3 个百分点, 而铃脱落率比传统打顶处理低0.8 个百分点, 皮棉产量比传统打顶处理高23.7%。高氮水平下, 与传统打顶处理相比, 打顶后涂抹浓度为3 mmol·L-1 的NAA 单株成铃率、铃脱落率、皮棉产量之间差异不显著。在同一处理中, 高氮水平的单株成铃数、单铃重和吐絮数均低于低氮水平, 而衣分无明显差异, 从而导致皮棉产量下降。上述结果说明, 打顶后涂抹一定浓度的NAA 可增加棉花单株现铃、成铃、吐絮数, 增加单铃重, 降低落铃率, 从而提高产量, 而过量施用氮肥会导致产量下降。  相似文献   

16.
In dryland areas, integrating biochar soil amendment with in situ rainwater harvesting systems may decrease soil erosion, improve soil quality, and increase crop productivity and yield. This study was conducted to investigate the effect of maize straw biochar amendment and ridge-furrow rainwater harvesting systems on run-off, sediment yield and the physico-chemical properties of a Calcic Cambisol soil in semiarid areas. The experiment was conducted on alfalfa (Medicago sativa) production land at the Anjiagou Catchment experimental station in Gansu province, China. The experimental layout was a split-plot design with three replications. Biochar was applied at a rate of 0 and 30 t ha−1, respectively. The tillage treatments were flat planting, open-ridging, and tied-ridging (TR). Overall, the integration of maize straw biochar with TR decreased soil bulk density at 0–40 cm depth. Biochar application reduced run-off by 37.8% and soil loss by 55.5% during alfalfa-growing seasons compared to the control. In general, biochar addition increased soil total potassium, but the same effect was not observed for soil pH, total nitrogen, total phosphorus, and available phosphorus. These findings demonstrate the potential of integrating maize straw biochar and tillage systems to reduce soil erosion and improve soil quality for rainfed crop production in semiarid areas. Further studies on the effect of biochar-tillage system interaction are warranted to improve soil conditions for plant growth and increase crop yield in dryland areas.  相似文献   

17.
为兼顾试验的重复性和生态区域性,选用高品质棉(科棉1号)和常规棉(美棉33B)品种为材料,于2005年分别在江苏南京(118o50E, 32o02N,长江流域下游棉区)和江苏徐州(11711E, 3415N,黄河流域黄淮棉区)设置施氮量(低氮:N 0 kg/hm2;适氮:N 240 kg/hm2;高氮:N 480 kg/hm2)试验,研究施氮量对不同开花期棉铃纤维细度、成熟度和马克隆值形成的影响。结果表明:(1)施氮量显著影响棉纤维细度、成熟度和马克隆值的形成过程,但三者在不同开花期对氮素水平的响应不同,施氮量与开花期对棉纤维细度、成熟度和马克隆值的形成存在互作效应。8月10日前开花的棉铃,铃期[花后0~50 d (DPA)]日均温在23.3 oC以上,纤维细度、马克隆值以N 0 kg/hm2施氮量下最大,棉纤维马克隆值与纤维细度的相关性较大;8月25日开花的棉铃(铃期日均温在20.8~23.3 oC之间),纤维成熟度、马克隆值以N 240 kg/hm2施氮量下最大;9月10日开花棉铃(铃期日均温低于20.8 oC),纤维细度、成熟度和马克隆值均以N 480 kg/hm2最大,棉纤维马克隆值与纤维成熟度的相关性增强。(2)影响不同开花期间纤维细度、成熟度和马克隆值的主要因素是铃期日均温,最终纤维细度、成熟度和马克隆值在不同施氮量之间的变异与不同开花期(铃期日均温不同)间的变异比较,前者显著小于后者。综上,因开花期不同而形成的铃期日均温是决定细度、成熟度和马克隆值的最重要因素,施氮量可通过对位叶叶氮浓度NA影响棉纤维细度、成熟度和马克隆值的形成过程,增加施氮量可减小上述指标在不同开花期间的差异。  相似文献   

18.
Abstract

Both nitrogen (N) deposition and biochar can affect the emissions of nitrous oxide (N2O), carbon dioxide (CO2) and ammonia (NH3) from different soils. Here, we have established a simulated wet N deposition experiment to investigate the effects of N deposition and biochar addition on N2O and CO2 emissions and NH3 volatilization from agricultural and forest soils. Repacked soil columns were subjected to six N deposition events over a 1-year period. N was applied at rates of 0 (N0), 60 (N60), and 120 (N120) kg Nh a?1 yr?1 without or with biochar (0 and 30 t ha?1 yr?1). For agricultural soil, adding N increased cumulative N2O emissions by 29.8% and 99.1% (< 0.05) from the N60 and N120 treatments, respectively as compared to without N treatments, and N120 emitted 53.4% more (< 0.05) N2O than the N60 treatment; NH3 volatilization increased by 33.6% and 91.9% (< 0.05) from the N60 and N120 treatments, respectively, as compared to without N treatments, and N120 emitted 43.6% more (< 0.05) NH3 than N60; cumulative CO2 emissions were not influenced by N addition. For forest soil, adding N significantly increased cumulative N2O emissions by 141.2% (< 0.05) and 323.0% (< 0.05) from N60 and N120 treatments, respectively, as compared to without N treatments, and N120 emitted 75.4% more (< 0.05) N2O than N60; NH3 volatilization increased by 39.0% (< 0.05) and 56.1% (< 0.05) from the N60 and N120 treatments, respectively, as compared to without N treatments, and there was no obvious difference between N120 and N60 treatments; cumulative CO2 emissions were not influenced by N addition. Biochar amendment significantly (< 0.05) decreased cumulative N2O emissions by 20.2% and 25.5% from agricultural and forest soils, respectively, and increased CO2 emissions slightly by 7.2% and NH3 volatilization obviously by 21.0% in the agricultural soil, while significantly decreasing CO2 emissions by 31.5% and NH3 volatilization by 22.5% in the forest soil. These results suggest that N deposition would strengthen N2O and NH3 emissions and have no effect on CO2 emissions in both soils, and treatments receiving the higher N rate at N120 emitted obviously more N2O and NH3 than the lower rate at N60. Under the simulated N deposition circumstances, biochar incorporation suppressed N2O emissions in both soils, and produced contrasting effects on CO2 and NH3 emissions, being enhanced in the agricultural soil while suppressed in the forest soil.  相似文献   

19.
氮肥用量对太湖水稻田间氨挥发和氮素利用率的影响   总被引:28,自引:0,他引:28  
Ammonia volatilization losses, nitrogen utilization efficiency, and rice yields in response to urea application to a rice field were investigated in Wangzhuang Town, Changshu City, Jiangsu Province, China. The N fertilizer treatments, applied in triplicate, were 0 (control), 100, 200, 300, or 350 kg N ha^-1. After urea was applied to the surface water, a continuous airflow enclosure method was used to measure ammonia volatilization in the paddy field. Total N losses through ammonia volatilization generally increased with the N application rate, and the two higher N application rates (300 and 350 kg N ha^-1) showed a higher ratio of N lost through ammonia volatilization to applied N. Total ammonia loss by ammonia volatilization during the entire rice growth stage ranged from 9.0% to 16.7% of the applied N. Increasing the application rate generally decreased the ratio of N in the seed to N in the plant. For all N treatments, the nitrogen fertilizer utilization efficiency ranged from 30.9% to 45.9%. Surplus N with the highest N rate resulted in lodging of rice plants, a decreased rate of nitrogen fertilizer utilization, and reduced rice yields. Calculated from this experiment, the most economical N fertilizer application rate was 227 kg ha^-1 for the type of paddy soil in the Taihu Lake region. However, recommending an appropriate N fertilizer application rate such that the plant growth is enhanced and ammonia loss is reduced could improve the N utilization efficiency of rice.  相似文献   

20.
In the present study, the effectiveness of biofertilizer containing plant growth promoting rhizobacteria was evaluated on growth and physiology of cotton under saline conditions. Cotton plants were exposed to different levels of NPK (50%, 75%, and 100% of recommended levels) along with coating with biofertilizer under saline (15 dS m?1) and non-saline conditions. It was observed that the biofertilizer seed coating improved growth, physiological (relative water content and chlorophyll content index), and ionic (K+/Na+) characteristics under saline and non-saline conditions. However, shoot growth (shoot fresh and dry weight) and leaf gas exchange characteristics (CO2 assimilation rate, A; intercellular CO2 concentration, Ci; transpiration rate, E; stomatal conductance, gs) were decreased by biofertilizer coating under saline condition. Increasing levels of NPK fertilizer increased shoot growth, whereas root growth was maximum at 75% NPK level under saline conditions. The results of the study indicate that the biofertilizer application was very effective for cotton plant in non-saline conditions but not very effective in saline conditions.  相似文献   

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