首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 15 毫秒
1.
基于黄土高原8 a的春玉米覆盖定位试验,研究了秸秆和地膜覆盖下土壤有机碳、微生物量碳、潜在可矿化碳及颗粒有机碳在作物不同生育期的季节变化特征,探讨旱作农田不同碳组分对地表覆盖的响应规律。结果表明:1)秸秆和地膜覆盖下土壤有机碳及其各组分含量在玉米生长期间总体呈苗期下降、拔节期上升、大喇叭口—抽雄期下降、灌浆和收获期回升的变化趋势。2)与不覆盖对照相比,秸秆覆盖在大部分作物生育期均显著提高了土壤有机碳各组分含量,有助于培肥地力和土壤固碳;而地膜覆盖在作物生育后期导致土壤有机碳及各组分含量显著下降。3)秸秆覆盖下表层土壤颗粒有机碳对总有机碳变化具有重要贡献,地膜覆盖后土壤有机碳变化可能主要来自于潜在可矿化碳和颗粒有机碳,而土壤微生物量碳相对含量在不同处理间差异不大。4)对照和地膜覆盖处理土壤潜在可矿化碳和颗粒有机碳的相对含量在大喇叭口—抽雄期均有显著下降,而秸秆覆盖下两种组分的相对含量则保持平稳,表明秸秆覆盖对生育后期土壤潜在可矿化碳和颗粒有机碳有重要的补给作用。总之,黄土高原的春玉米田秸秆覆盖具有明显的提升土壤有机碳及组分含量的作用,地膜覆盖则无明显效果,且在春玉米生育后期降低了土壤总有机碳及各组分的含量。  相似文献   

2.
ABSTRACT

Studying changes in soil organic carbon (SOC) pools and soil microbial C substrate utilization under plastic mulching in different seasons is of great significance for improving soil fertility and sustainable agricultural development. Based on a 2-year plastic film mulching experiment in northeastern China, we investigated the SOC, labile SOC fractions under three treatments: non-mulching (NM), autumn mulching (AM) and spring mulching (SM). The results showed that SOC decreased with soil depth under the AM and SM treatments compared with the NM treatment. The microbial biomass carbon (MBC) and dissolved organic carbon (DOC) under the AM treatment increased significantly in the 0–10 cm soil layer, by 31.2% and 27.2% (p < 0.05), respectively. The AM treatment significantly increased the utilization of amino acids and carbohydrate C sources. Redundancy analysis (RDA) indicated that MBC was the main factor influencing microbial metabolic functional diversity and accounted for the largest variation in the 0–10 cm layer. Pearson’s correlation analysis illustrated that MBC was strongly correlated with the utilization of the microbial C substrate. We suggest that AM may be an effective and sustainable management practice for improving soil quality and maintaining microbial functional diversity in semi-arid agroecosystems in this area.  相似文献   

3.
覆膜抑制土壤呼吸提高旱作春玉米产量   总被引:9,自引:3,他引:9  
为从农田碳通量角度揭示地膜覆盖种植方式的增产增效机理,于2011年在山西寿阳旱作农业野外试验站对覆膜和露地春玉米田,进行了表层土壤温湿度、土壤呼吸和净碳交换规律及作物生长发育规律的研究和分析。结果表明:与露地处理相比较,覆膜处理全生育期表层土壤含水率提高了18.7%,前期可平均提高表层土壤温度1.67℃。覆膜和露地处理土壤呼吸变化规律总体一致,但前者的温度敏感系数Q10比后者低,且中后期前者排放的碳仅为后者的61.7%,说明采用覆盖地膜种植方式有利于农田土壤碳管理。前期和中期覆膜处理绿叶面积指数比露地处理平均高0.81 m2/m2,后期覆膜处理衰老较快,收获时比露地处理低1.00 m2/m2;露地处理在前期和中期日均净碳通量平均比覆膜处理大0.04 mg/(m2·s),而后期仅小0.02 mg/(m2·s),这是造成2处理最终生物产量和经济产量差异的根本原因。在地上干物质积累和地下干物质积累方面,覆膜处理始终比露地处理高,收获时差值分别为269.7和38.6 g/m2。露地处理每公顷少收春玉米籽粒1 348 kg。由此可见,覆膜种植可提高表层土壤温湿度,促进作物生长发育,抑制土壤呼吸,促进碳积累,增加农民收入的同时更有利于土壤碳管理。  相似文献   

4.
ABSTRACT

To identify efficient field management practices for enhanced soil carbon sequestration suited to crop rotation-based Andosol fields in northern Japan, the impacts of a combination of tillage, fertilizer type, and plant residue input on soil carbon sequestration rates were studied in a 4-year field experiment (April 2007 to March 2011). The rates of changes in soil organic carbon over the entire study period were determined by soil carbon stock change and by net ecosystem carbon budget. Across eight field management treatments and two replicates for each treatment, the rates of changes in soil organic carbon determined by net ecosystem carbon budget were positively correlated with the rates determined by soil carbon stock change (= 0.766, n = 16). The arithmetic means of the rates determined by net ecosystem carbon budget (1.24 Mg C ha?1 year?1) were greater than those determined by soil carbon stock change (?0.18 Mg C ha?1 year?1) because decomposing crop residues and composted cattle manure in soil were included in the calculation of the net ecosystem carbon budget but were excluded in the calculation of soil carbon stock change (decomposing crop residues and composted cattle manure in soil samples were removed by sieving in measuring the soil carbon stock change). Both methods led to the same conclusion that soil carbon sequestration was significantly enhanced by composted cattle manure application and increased input of plant carbon from crop residues and green manure but was not enhanced by reduced tillage. The p values for net ecosystem carbon budget were smaller than those for soil carbon stock change in analysis of variance; therefore, the net ecosystem carbon budget was more sensitive to field management practice than the soil carbon stock change.  相似文献   

5.
重建生态系统有机碳贮量的时空变异   总被引:18,自引:0,他引:18  
In global change research, changes of soil organic carbon (SOC) reservoirs in tropical and subtropical regions are still unknown. The temporal-spatial variability of SOC stocks was determined in a basin of over 579 km2 in subtropical China from 1981 to 2002. ArcGIS8.l software was utilized for spatial analysis of semivariance, ordinary kriging (OK), and probability kriging (PK). Grid and hierarchical approaches were employed for the sampling scenario in 2002 with 106 Global Position System (GPS) established spots sampled. Bulk topsoil samples (0-30 cm) were collected at three random sites on each spot. The SOC content for 1981 came from the SOC map of the Second National Soil Survey. Geostatistical results of the nugget to sill ratio (0.215-0.640) in the rehabilitating ecosystem indicated a moderate spatial dependence for SOC on this large scale. The range of SOC changed from 2.04 km in 1981 to 7.15 km in 2002. The mean topsoil SOC increased by 4.6% from 10.63 g kg-1 (1981) to 11.12 g kg-1 (2002). However, during this 21-year period 25.2% of the total basin area experienced a decrease in SOC. Also, the probability kriging results showed that the geometric mean probabilities of SOC ≤ 6.0 g kg-1, ≤ 11.0 g kg-1 and > 15.0 g kg-1 were 0.188, 0.534 and 0.378, respectively in 2002, comparing to 0.234, 0.416 and 0.234 in that order in 1981, respectively. The SOC storage in the topsoil increased by 17.0% during this time with the main increase occurring in forests and cultivated land, which amounted to 82.5% and 17.0% of the total increase, respectively.  相似文献   

6.
耕作与轮作方式对黑土有机碳和全氮储量的影响   总被引:9,自引:1,他引:9  
土壤有机碳(SOC)及全氮(TN)对土壤肥力、作物产量、农业可持续发展以及全球碳、氮循环等都具有重要影响。为探索不同耕作和轮作方式对耕层黑土SOC和TN储量的影响,本文以吉林省德惠市进行了8 a的田间定位试验中层黑土为研究对象,对免耕、垄作和秋翻三种耕作方式及玉米-大豆轮作和玉米连作两种轮作方式下SOC和TN在各土层的含量变化进行了分析,并采用等质量土壤有机质储量计算方法,对比分析了不同处理对0~30 cm SOC和TN储量的影响。结果表明,与试验开始前相比,玉米-大豆轮作系统中,秋翻下SOC和TN储量均有所降低;免耕显著增加了0~5 cm SOC及TN含量,但SOC在亚表层亏损,导致其储量并未增加;而垄作处理下SOC及TN含量在0~5、5~10 cm的均显著增加,0~30 cm储量亦分别增加了4.9%和10.7%。玉米连作系统的两种耕作处理(免耕和秋翻)下SOC和TN储量均有所增加,且TN储量增幅均高于玉米-大豆轮作系统,其中免耕下TN储量增幅是玉米-大豆轮作的3.2倍。所有处理下C/N均呈降低趋势,其中垄作0~5 cm C/N由12.05降至11.04,降低幅度分别是免耕和秋翻的3.2和2.8倍。综上可知,对质地黏重排水不良的中层黑土,玉米-大豆轮作系统下免耕并不是促进SOC固定的有效形式,而垄作则促进了黑土SOC和TN的积累,这不仅有利于土壤肥力的改善,而且是使农田黑土由CO2"源"变为"汇"的有效形式之一。与玉米-大豆轮作相比,玉米连作下三种耕作方式都有利于SOC和TN积累。  相似文献   

7.
Appropriate crop rotations are beneficial for food security and carbon sequestration. In cool and semiarid rain-fed areas, however, the effect on carbon sequestration in soil and the soil–crop system is not clear. In this study, a crop rotation field experiment was carried out on the Loess Plateau, China, involving (1) wheat continuous cropping (WCC), (2) maize continuous cropping (MCC), (3) potato continuous cropping (PCC) and (4) wheat–maize–potato rotating cropping (RC). All treatments were tilled once, and then, plastic mulched immediately to inhibit evaporation. We found that the rotating cropping system improved water storage in the 0–300 cm soil profile by 65.8 mm through the 6 years, while MCC depleted deep soil moisture. In a drought year, total dry matter (DM) for the rotating cropping was greater by 23.9% and 79.3% and harvested carbon quantity (HCQ) by 0.6 and 1.8 Mg ha−1 compared with WCC and MCC systems, respectively. Total evapotranspiration significantly decreased by 14.5% compared with MCC, with no significant change compared with WCC and PCC. The soil organic carbon (SOC) concentration at 20–30 cm depth in the rotating cropping system was 36.0%, 28.0% and 30.3% greater than those of WCC, MCC and PCC, respectively. Similarly, the SOC sequestration rate at this depth was higher by 3.8, 3.2 and 3.4 Mg ha−1, respectively. The pure carbon accumulation (PCA) of the rotating cropping system significantly increased compared with WCC and PCC, resulting in increased water use efficiency of pure carbon accumulation (WCP) by 11.1, 2.2 and 3.1 Mg ha−1 mm−1 compared with the WCC, MCC and PCC systems, respectively. Overall, the rotating cropping (RC) system maintained better soil water conditions, sustained crop development and SOC sequestration, especially optimizing the relationship between crop water utilization and SOC sequestration in soil–crop system in the cool semiarid rain-fed area.  相似文献   

8.
秸秆还田是实现东北黑土肥力提升与保障区域生态环境安全的有效措施。明确玉米秸秆覆盖与深翻还田下土壤有机碳(SOC, Soil Organic Carbon)的变化及其在团聚体中的固持特征,对于揭示秸秆还田后黑土有机碳的稳定机制与固碳潜力具有重要意义。该研究基于黑土区中部6 a定位试验,选择常规种植(CK)、秸秆覆盖还田(SM, Stovers Mulching)和秸秆深翻还田(SI, Stovers Incorporation)3个处理,对0~10、>10~20、>20~30及>30~40 cm土层SOC含量、容重、水稳性团聚体分布及团聚体中有机碳(OC, Organic Carbon)含量进行了分析与测定,并对各处理年均碳投入量、SOC储量与土壤固碳速率等进行了估算。与CK相比,SM处理显著增加了0~10 cm土层SOC含量,增幅为22.4%,但对10~40 cm土层SOC含量无显著影响;SI处理显著增加了0~40 cm土层SOC含量,增幅为18.1%~41.5%,以>20~30 cm的增幅最突出。与SM处理相比,SI处理0~10 cm土层SOC储量显著低于前者,而>20~30 cm土层SOC储量反之。6 a间,SM处理耕层(0~20 cm)与亚耕层(>20~40 cm)土壤固碳速率分别为1.34和0.77 Mg/(hm2•a),SI处理为0.85和1.74 Mg/(hm2•a)。秸秆不同还田方式显著改变了0~40 cm土层团聚体分布及其中OC含量。与CK相比,SM显著增加了耕层大团聚体(>0.25 mm)比例与平均质量直径(MWD, Mean Weight Diameter),SI显著提高了0~40 cm土层团聚体MWD,且对10~40 cm土层团聚结构的改善作用优于SM;SM处理显著增加了0~10 cm土层>2和<0.053 mm粒级团聚体OC含量,SI处理不仅增加了0~10 cm土层>2 mm粒级团聚体OC含量,也显著提高了10~40 cm土层各粒级团聚体OC含量。在黑土区,秸秆覆盖还田对SOC的提升主要集中于表层,秸秆深翻还田促进了0~40 cm 土层SOC积累与土壤团聚结构的改善。  相似文献   

9.
通过田间长期定位试验,分层采集冬小麦-休闲种植体系0—40 cm土层的土样,研究了常规、地表覆膜和覆草栽培对土壤有机碳、无机碳和轻质有机碳的影响。结果表明,覆膜或覆草可以显著增加地上部小麦生物量和子粒产量。不同地表覆盖对0—40 cm土层的无机碳含量和分布无显著影响,但与常规栽培相比,地表覆膜使0—5 cm土层的有机碳含量显著降低,0—40 cm各土层轻质有机碳表现出明显降低趋势,平均降低 C 6.1~74.5 mg/kg;地表覆草却表现出明显增加土壤轻质有机碳的趋势,0—5,5—10,10—20 cm土层的轻质有机碳含量分别增加C 235.2、190.0和144.9 mg/kg,相当于常规的38.7%,32.9%和34.5%。同时,覆草栽培还表现出降低0—10 cm土层轻质有机质含碳量的趋势,并使0—20 cm土层轻质有机碳占有机碳的比例显著高于常规栽培和地表覆膜处理。可见,地表长期覆膜不利于旱地土壤有机碳累积,覆草不仅可以增加表层土壤的轻质有机碳累积,还可改善土壤碳氮组成。  相似文献   

10.
研究冬季不同覆盖作物残茬还田后稻田土壤总有机碳、活性有机碳含量和碳库管理指数的变化, 对合理利用冬闲稻田, 发展冬季覆盖作物, 以及科学评价不同种植模式具有重要意义。本研究以不同冬季覆盖作物-双季稻定位试验为研究对象, 采用田间小区试验方法, 分析了黑麦草-双季稻(T1)、紫云英-双季稻(T2)和油菜-双季稻(T3) 3种种植模式不同冬季覆盖作物残茬还田后对土壤耕层(0~20 cm)总有机碳、活性有机碳含量的影响, 并计算了各处理的碳库活度、碳库活度指数、碳库指数和碳库管理指数。结果表明, 与冬闲-双季稻(对照)相比, T1、T2和T3处理的冬季覆盖作物残茬还田均提高了稻田土壤总有机碳和活性有机碳含量, 其大小顺序均表现为T2>T1>T3>CK。其中, 各处理稻田土壤总有机碳含量均显著高于对照, 早稻收获时T1、T2和T3处理土壤总有机碳含量两年平均分别比对照增加6.73%、10.53%和4.79%, 晚稻收获时两年平均分别增加4.16%、6.20%和2.37%; T1和T2 处理土壤活性有机碳含量均显著高于对照, 早稻收获时两年平均分别比对照增加10.52%和21.52%, 晚稻收获时两年平均分别增加11.99%和15.59%。冬季覆盖作物残茬还田提高了土壤碳库活度、碳库活度指数、碳库指数和土壤碳库管理指数, 其大小顺序均表现为T2>T1>T3。总的来说, 各处理中以紫云英残茬还田的效果为最好, 黑麦草和油菜残茬还田的效果次之。  相似文献   

11.
Total belowground C allocation (TBCA) accounts for a large fraction of gross primary production, it may overtake aboveground net primary production, and contributes to the primary source of detrital C in the mineral soil. Here, we measure soil respiration, water erosion, litterfall and estimate annual changes in C stored in mineral soil, litter and roots, in three representative land uses in a Mediterranean ecosystem (late-successional forest, abandoned agricultural field, rain-fed olive grove), and use two C balance approaches (steady-state and non-steady-state) to estimate TBCA. Both TBCA approaches are compared to assess how different C fluxes (outputs and inputs) affect our estimates of TBCA within each land use. In addition, annual net primary productivity is determined and C allocation patterns are examined for each land use. We hypothesized that changes in C stored in mineral soil, litter and roots will be slight compared to soil respiration, but will still have a significant effect on the estimates of TBCA. Annual net primary productivity was 648 ± 31.5, 541 ± 42.3 and 324 ± 22.3 g C m−2 yr−1 for forest, abandoned agricultural field and olive grove, respectively. Across land uses, more than 60% of the C was allocated belowground. Soil respiration (FS) was the largest component in the TBCA approaches across all land uses. Annual C losses through water erosion were negligible compared to FS (less than 1%) and had little effect on the estimates of TBCA. Annual changes in C stored in the soil, litter layer and roots were low compared to FS (16, 24 and 10% for forest, abandoned agricultural field and olive grove, respectively), but had a significant effect on the estimates of TBCA. In our sites, an assumption that Δ[CS + CR + CL]/Δt = 0 will underestimate TBCA, particularly in the abandoned agricultural field, where soil C storage may be increasing more rapidly. Therefore, the steady-state model is unsuited to these Mediterranean ecosystems and the full model is recommended.  相似文献   

12.
Pyrogenic carbon (C) is produced by incomplete combustion of fuels including organic matter (OM). Certain ranges in the combustion continuum are termed ‘black carbon' (BC). Because of its assumed persistence, surface soils in large parts of the world contain BC with up to 80% of surface soil organic C (SOC) stocks and up to 32% of subsoil SOC in agricultural soils consisting of BC. High SOC stocks and high levels of soil fertility in some ancient soils containing charcoal (e.g., terra preta de Índio) have recently been used as strategies for soil applications of biochar, an engineered BC material similar to charcoal but with the purposeful use as a soil conditioner (1) to mitigate increases in atmospheric carbon dioxide (CO2) by SOC sequestration and (2) to enhance soil fertility. However, effects of biochar on soils and crop productivity cannot be generalized as they are biochar‐, plant‐ and site‐specific. For example, the largest potential increases in crop yields were reported in areas with highly weathered soils, such as those characterizing much of the humid tropics. Soils of high inherent fertility, characterizing much of the world's important agricultural areas, appear to be less likely to benefit from biochar. It has been hypothesized that both liming and aggregating/moistening effects of biochar improved crop productivity. Meta‐analyses of biochar effects on SOC sequestration have not yet been reported. To effectively mitigate climate change by SOC sequestration, a net removal of C and storage in soil relative to atmospheric CO2 must occur and persist for several hundred years to a few millennia. At deeper soil depths, SOC is characterized by long turnover times, enhanced stabilization, and less vulnerability to loss by decomposition and erosion. In fact, some studies have reported preferential long‐term accumulation of BC at deeper depths. Thus, it is hypothesized that surface applied biochar‐C (1) must be translocated to subsoil layers and (2) result in deepening of SOC distribution for a notable contribution to climate change mitigation. Detailed studies are needed to understand how surface‐applied biochar can move to deeper soil depths, and how its application affects organic C input to deeper soil depths. Based on this knowledge, biochar systems for climate change mitigation through SOC sequestration can be designed. It is critically important to identify mechanisms underlying the sometimes observed negative effects of biochar application on biomass, yield and SOC as biochar may persist in soils for long periods of time as well as the impacts on downstream environments and the net climate impact when biochar particles become airborne.  相似文献   

13.
Abstract

The carbon (C) budget of managed grassland in a cool-temperate region of Japan was estimated using a combination of eddy covariance and the biometric method for five years, to evaluate the effect of manure application. Chemical fertilizer was applied to the fertilizer (F) plot at a rate of 79 ± 20 kg N ha?1 yr?1. In the manure (M) plot, dairy cattle manure was applied at a rate of 10 Mg fresh matter ha?1 yr?1 (1923 ± 407 kg C ha?1 yr?1, 159 ± 68 kg N ha?1 yr?1). There was no significant difference in seasonal gross primary production (GPP) and harvest between the treatment plots, indicating that both fertilizer and manure can increase the biomass production. Annual net ecosystem production (NEP) and ecosystem respiration (RE) was significantly different between the treatment plots. The difference in RE, and between M and F plots approximates heterotrophic respiration of manure (RHm), which ranged from 0.9 to 1.3 Mg C ha?1 yr?1. Average annual RHm was 1.1 ± 0.4 Mg C ha?1 yr?1, and accounted for 56% of the total amount of applied manure C. The annual net biome production (NBP) in the M plot (from 0.0 to 1.5 Mg C ha?1 yr?1) was significantly higher than in the F plot (?1.4 to 0.5 Mg C ha?1 yr?1). The long-term effect of manure application combined with chemical fertilizer did not reduce grass production compared with chemical fertilizer only; however, manure application decreased the NEP throughout manure decomposition, and long-term manure application enhanced the NBP.  相似文献   

14.
长期施肥对土壤有机碳和无机碳的影响   总被引:14,自引:2,他引:14  
利用18年长期定位试验,研究了在不同施肥条件下,土壤有机碳和无机碳在0~50 cm土层分布特征。结果表明,施肥对土壤有机碳的影响随着土层深度的增加而下降,0~7.5 cm土层的土壤有机碳比7.5~15 cm、15~30 cm、30~50 cm分别增加了4.6%、22.0%、63.1%,而无机碳含量随着土层深度的增加而增加,与有机碳的变化规律正好相反。不同种类的肥料对土壤有机碳的影响也不相同,化肥、有机肥长期配合施用和长期施用有机肥可以在0~30 cm土层增加土壤有机碳含量,降低土壤中的无机碳含量,而长期单施化肥对土壤的有机碳和无机碳含量无明显差异。  相似文献   

15.
ABSTRACT

The objective of this work was to evaluate the variation in labile organic carbon fractions after the application of organic wastes (OWs) in semiarid soil under plastic mulched drip irrigation. The two-year experiment involved six treatments: chicken manure (CM), sheep manure (SM), mushroom residue (MR), maize straw (MS), fodder grass (FG), and tree leaves (TL), with an unamended soil (no OWs) as control. In 2015 and 2016, treatment with OWs led to increased levels of soil organic carbon (SOC), dissolved organic carbon, microbial biomass carbon, easily oxidized organic carbon, as well as higher carbon management indexes and yields and lower oxidation stability coefficients. Higher SOC contents (p <0.01) were achieved in both years for TL and MS compared to the other OWs. In particular, the SOC content in 2016 was higher (p <0.05) for TL than MS. Compared to the other OWs, the easily oxidized organic carbon levels and carbon management indexes in both years were higher (p <0.01) for CM, SM, and MS, whereas the oxidation stability coefficients were lower (p <0.01). In conclusion, among the studied treatments, the application of MS was the most effective for improving soil fertility and enhancing soil carbon sequestration.  相似文献   

16.
Abstract. Long term fallow is no longer possible in densely populated tropical areas, but legume cover crops can help maintain soil fertility. Our work aimed to study changes in soil carbon in a sandy loam Ultisol in Benin, which involved a 12-year experiment on three maize cropping systems under manual tillage: traditional no-input cultivation (T), mineral fertilized cultivation (NPK), and association with Mucuna pruriens (M). The origin of soil carbon was also determined through the natural abundance of soil and biomass 13C. In T, NPK and M changes in soil carbon at 0–40 cm were −0.2, +0.2 and +1.3 t C ha−1 yr−1, with residue carbon amounting to 3.5, 6.4 and 10.0 t C ha−1 yr−1, respectively. After 12 years of experimentation, carbon originating from maize in litter-plus-soil (0–40 cm) represented less than 4% of both total carbon and overall maize residue carbon. In contrast, carbon originating from mucuna in litter-plus-soil represented more than 50% of both total carbon and overall mucuna residue carbon in M, possibly due to accelerated mineralization of native soil carbon (priming effect) and slow mulch decomposition. Carbon originating from weeds in litter-plus-soil represented c. 10% of both total carbon and overall weed residue carbon in T and NPK. Thus mucuna mulch was very effective in promoting carbon sequestration in the soil studied.  相似文献   

17.
柠条秸秆和地膜覆盖对土壤水分和玉米产量的影响   总被引:8,自引:4,他引:8  
为了探讨北方农牧交错带不同保墒措施下旱地玉米的土壤水分特征及其对产量的影响,以甘农118为试验材料,监测了单膜(SFP)、双膜(DFP)、柠条秸秆沟埋(CPDP)和裸地(CK)4种不同处理下0~100 cm土壤水分季节变化、垂直变化及年际变化,测定了玉米产量和水分利用效率。结果表明:SFP和DFP处理明显改善0~40 cm土层土壤体积含水率,较CK处理保墒效果提高35.65%~47.91%,但随着玉米生育期的推进,由于玉米生长耗水和土壤蒸发作用,建植后土壤体积含水率均接近或低于萎蔫系数(7.20%)。连续2 a种植玉米4种处理土壤贮水量均有不同程度的减少,CPDP和CK处理土壤贮水量分别减少了68.42和68.07 mm,其次为SFP(53.49 mm),DFP减少最小(48.98 mm),说明研究区内玉米生长需要消耗大量土壤水分。SFP和DFP能够增加玉米对降雨和土壤水的利用,不同年份产量水分利用效率较CK处理分别提高12.55%~35.71%和25.11%~54.70%。SFP和DFP耗水量、产量和水分利用效率均无显著差异(P0.05),因此建议在研究区种植玉米时可以采取SFP措施,而CPDP耗水量较高、产量和水分利用效率相对较低,不宜采取此种保墒措施。  相似文献   

18.
秸秆还田、一膜两年用及间作对农田碳排放的短期效应   总被引:1,自引:3,他引:1  
针对作物高产模式碳排放高、生产实践中缺乏减排理论和技术问题,通过田间试验,探讨了不同秸秆还田方式、地膜一膜两年用及间作对小麦、玉米农田碳排放特征的影响,以期为碳减排种植模式及配套技术的构建提供理论与实践依据。结果表明,间作具有显著的碳减排作用,与传统单作小麦、玉米相比,小麦||玉米间作全生育期平均碳排放总量减少279~876 kg·hm~(-2),减幅达5.1%~16.0%,达到显著性差异。免耕秸秆还田及免耕一膜两年用可降低次年农田土壤的碳排放,免耕秸秆还田单作小麦较传统翻耕处理CO2排放显著减少648~966 kg·hm~(-2),减幅21.3%~31.8%;免耕一膜两年用单作玉米较翻耕覆新膜传统处理碳减排632 kg·hm~(-2),减幅10.0%,差异显著。小麦秸秆还田及地膜两年用集成应用于小麦间作玉米进一步提高了间作的碳减排效应,与传统间作处理(CTI1)相比,间作小麦高留茬免耕结合一膜两年用处理(NTSSI2)和小麦秸秆还田覆盖结合一膜两年用处理(NTSI2)的碳排放总量分别降低471 kg·hm~(-2)与518 kg·hm~(-2),降幅分别为9.2%与10.1%,达到显著水平;NTSSI2和NTSI2的总固碳量/土壤呼吸释放总碳量(NPPC/Ras)值分别为13.7与14.0,较CTI1分别高19.1%与21.7%,即NTSI2减排、碳汇潜力更为突出。因此,小麦高茬25~30 cm秸秆覆盖免耕结合一膜两年用间作(NTSI2)可作为干旱绿洲灌区碳减排、碳增汇高效农作制模式。  相似文献   

19.
覆膜滴灌棉田蒸散量的模拟研究   总被引:4,自引:1,他引:4  
通过综合考虑影响作物蒸散量的土壤、作物、大气3方面因子,结合新疆滴灌棉田覆膜栽培的生产实际,设计了不同覆盖度和品种试验,以Penman-Montieth方程估算参考作物蒸散量,确定了不同覆盖度及品种条件下的作物系数,并在此基础上实现了覆膜滴灌棉田蒸散量较为准确地估计。试验结果认为覆膜滴灌棉田全生育期蒸散量在540~620 mm之间,全生育期蒸散量和作物系数都随着覆盖度的增加而减小,叶面积指数与日蒸散量及作物系数关系密切,品种间由于品种特性的差异而引起的叶面积指数变化,最终导致了品种间作物系数Kc的不同。  相似文献   

20.
Agricultural soils play a very important role in regulating the carbon dioxide (CO2) content of the atmosphere, and can behave either as carbon sources or sinks. We have simulated the dynamics of carbon in the soil under different land uses and soil-management systems in a Mediterranean olive grove with the Rothamsted carbon (RothC) model. To this end we chose patches of native vegetation (NV) and two different olive grove soils (chromic calcisols and calcic vertisols) under different soil-management systems: conventional tillage (T), and mulching with shredded olive-pruning debris and residues from olive-fruit cleaning (PD + CR). We measured the clay content, bulk density, soil organic carbon (SOC) and total nitrogen (N) in each patch. The SOC and N values decreased by more than 30% as a result of a change in soil use from NV to T olive grove. After adding PD + CR these values rose once more, even to levels above NV. The RothC model performed well for covered soils (NV and PD + CR) but overestimated the SOC values after the soil use was changed from NV to T olive grove, probably due to high carbon losses caused by erosion, common to T soils in the Mediterranean basin. As a result of mulching the soil with only pruning debris, CO2 emitted to the atmosphere was reduced by >55% for both soils. Associated with this decrease in the emission rate, RothC estimated a potential carbon sequestration of 0.5 and 0.6 t C/ha/yr for chromic calcisols and calcic vertisols, respectively. The reuse of organic debris generated in the olive grove, such as pruning debris and residues from olive-fruit cleaning, is an efficient way of improving soil properties, diminishing CO2 emissions and increasing the soil’s capacity to store carbon.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号