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81.
磷是土壤生态系统中的重要组成元素,开展土壤磷循环研究对提高磷肥利用效率和降低磷的生态环境风险具有重要意义。磷酸盐氧同位素技术已经被证明是一种示踪环境中磷生物地球化学行为的有效方法。本文系统综述了磷酸盐氧同位素技术的研究进展和未来发展方向。详细介绍了磷酸盐氧同位素的技术原理、样品处理和测定方法;阐述了无机磷和有机磷的氧同位素特征及时空分布特征;从评估土壤磷微生物利用状况和示踪土壤磷循环两个方面探讨了磷酸盐氧同位素技术在土壤磷循环研究中的应用前景,分析了磷来源、环境条件、生物活动和样品前处理过程对土壤磷酸盐氧同位素特征的影响,最后展望了该技术未来的研究方向。以期为磷酸盐氧同位素技术在土壤学和环境科学领域的发展和应用提供新的视角和科学指导。 相似文献
82.
为探究有利于夏玉米生长和氮素利用的适宜灌溉水溶解氧浓度,本试验以夏玉米为供试作物,采用地下滴灌供水方式,以地下水灌溉为对照,设置10(OA10)、20(OA20)和40(OA40) mg·L-1灌溉水溶解氧浓度3个增氧水平,研究不同增氧水平对盆栽夏玉米生长、产量和氮素利用的影响。结果表明,增氧地下滴灌显著提高了土壤溶解氧浓度,与对照相比,OA40、OA20和OA10处理土壤溶解氧浓度平均提高14.83%、9.71%和8.00%,表现为作物生长增强,作物产量和氮素利用效率均显著提高(P<0.05)。与对照相比,OA10处理的株高、叶鲜质量和叶干质量分别增加7.39%、16.30%和12.02%;OA40处理叶干质量和茎鲜质量分别增加15.82%和12.43%;OA10、OA20和OA40根系鲜质量分别增加60.00%、17.66%和52.98%,根系体积分别增加34.03%、14.56%和51.32%;OA10和OA20处理根系活力分别增加272.77%和64.44%;OA10和OA40处理产量分别增加24.46%和21.83%,水分利用效率分别提高19.10%和21.61%,百粒重分别增加17.53%和15.14%。OA10和OA40处理籽粒氮素吸收量较对照分别增加63.90%和35.27%,OA10处理籽粒氮素分配比例和氮素吸收效率分别增加21.57%和33.33%。上述差异均具有统计学意义(P<0.05)。综上,增氧地下滴灌可显著提高作物根区溶解氧浓度,促进作物生长,提高产量及氮素吸收利用,以OA10处理效果最为显著。本研究结果为增氧灌溉技术在实际生产中的合理利用提供了理论依据。 相似文献
83.
转速、浸没深度和液位高度对倒伞曝气机曝气性能的影响较大,为了研究各影响参数协同作用下倒伞曝气机曝气性能的变化情况,该文通过试验研究了不同转速、浸没深度和液位高度对曝气性能的影响。研究表明:在相同转速时随着运行时间的增加曝气池溶解氧浓度随之增大,但增幅逐渐降低;随着转速的增加,叶轮对水的做功能力增强,提高了水面的湍动强度及水面下的复氧强度,进而缩短了曝气池达到氧饱和的时间,转速为300 r/min达到氧饱和的时间比150 r/min缩短了约57%。转速、浸没深度和液位高度的改变均会极大地影响倒伞曝气机的性能:转速的增加能够提升倒伞曝气机的标准氧总转移系数和标准充氧能力,但对于标准动力效率的提升有一个上限值,该上限值与浸没深度有关;倒伞曝气机低速运行时,浸没深度和液位高度对标准氧总转移系数和标准充氧能力的影响较小。液位高度的增加会加大倒伞曝气机的标准充氧能力和标准动力效率,但是相同液位高度下,随着转速的增加标准动力效率增幅明显小于标准充氧能力增幅,当液位高度为250 mm时,转速从150增加到300 r/min,标准充氧能力值提高2.91倍而标准动力效率提高1.22倍。该研究可为倒伞曝气机的经济运行提供参考。 相似文献
84.
Timothy Beach Sheryl Luzzadder-Beach Richard Terry Nicholas Dunning Stephen Houston Thomas Garrison 《CATENA》2011
This article provides new data and synthesizes earlier findings on the carbon isotope ratios of the humin part of soil organic matter from a range of sites in the central Maya Lowlands. Changes down the soil profile in carbon isotope ratios can provide an important line of evidence for vegetation change and erosion over time, especially in well dated aggrading profiles. Research thus far has provided substantial evidence for significant inputs from C4 vegetation in buried layers from the Ancient Maya periods in depositional soils but equivocal evidence from sloping soils. We present new findings from soil profiles through ancient Maya wetland fields, upland karst wetlands, ancient Maya aguadas (reservoirs), and ancient Maya terraces. Most of the profiles exhibited δ13C enrichment greater than the 2.5–3‰ typical from bacterial fractionation. Seven of nine ancient Maya wetland profiles showed δ13C enrichment ranging from 4.25 to 8.56‰ in ancient Maya-dated sediments that also contained phytolith and pollen evidence of grass (C4 species) dominance. Upland karst sinks and ancient reservoirs produced more modest results for δ13C enrichment. These seasonal wetland profiles exhibited δ13C enrichment ranging from 1 to 7.3‰ from the surface to ancient Maya-period sediments. Agricultural terraces produced mixed results, with two terraces having substantial δ13C enrichment of 5.34 and 5.66‰ and two producing only equivocal results of 1.88 and 3.03‰ from modern topsoils to Maya Classic-period buried soils. Altogether, these findings indicate that C4 plants made up c. 25% of the vegetation at our sites in the Maya Classic period and only a few percent today. These findings advance the small corpus of studies from ancient terraces, karst sinks, and ancient wetland fields by demonstrating substantial δ13C and thus C4 plant enrichment in soil profile sections dated to ancient Maya times. These studies are also providing a new line of evidence about local and regional soil and ecological change in this region of widespread environmental change in the Late Holocene. 相似文献
85.
由于稳定同位素在特定污染源中具有特定的组成,在污染物质迁移转化过程中作为示踪剂而广泛应用。针对目前农业面源污染较为严重的现状,该文利用碳氮稳定同位素研究了灌区内外源物输入对稻田沟渠-湿地系统的贡献。结果表明,水中颗粒性有机物(particulate organic matter,POM)由于受到光照、营养物质不同导致POM在各采样点组成不同,δ13C变化范围较大,均值为-27.8‰,与大型水生植物和浮游植物接近,此类植物可能是POM的主要来源。水中δ13CDIC(dissolved inorganic carbon,DIC)与浮游植物呈线性相关,浮游动物δ13C与浮游植物存在一定相关性,而浮游植物与POM之间不存在显著性差异,说明研究区内浮游动物对內源有机碳的利用主要是取食浮游植物低持斜聿愠粱?δ13C值变化范围在-27.2‰~-21.8‰之间,明显高于水体POM含量,说明表层沉积物存在比颗粒有机物更富集碳的藻类与陆源碎屑等物质。各采样点颗粒有机物δ15N值的范围3.1‰~4.2‰,平均值为3.6‰,其中湿地δ15N高于其他采样点。沉积物δ15N平均值为-0.6‰,与大气中N2较为接近。 相似文献
86.
87.
微孔曝气流量与曝气管长度对水体增氧性能的影响 总被引:2,自引:2,他引:2
为了探究曝气流量与曝气管长度对增氧性能的影响,在不同曝气流量、不同曝气管长度条件下进行了室内水体底部微孔曝气增氧试验。分析了曝气流量与曝气管长度对氧体积传质系数、增氧量和氧利用率的影响。研究结果表明,当曝气流量为0.27~0.55 m3/s、曝气管长为0.9~1.5 m时,所对应的氧体积传质系数在0.63~1.1 h-1变化,增氧量在6.8~12.9 g/h变化,氧利用率在6.87%~9.28%变化,且在一定的曝气管长度下,氧体积传质系数、增氧量均与曝气流量成正比,而氧利用率则与其成反比关系;在一定的曝气流量下,曝气管长度对氧体积传质系数产生的影响表现为先高后低再高的趋势;氧体积传质系数与修正的饱和溶解氧浓度是否作为增氧量的主要影响因子取决于曝气管长度;曝气流量对氧利用率较曝气管长度更为敏感。研究还发现,微孔曝气系统中存在着最优曝气管长度,使得增氧性能最佳,并建立了最优曝气管长度与曝气流量、水深、输入压力、最优初始气泡直径的相关关系式,为低碳经济下微孔曝气系统的设计和运行提供了理论依据。 相似文献
88.
Mohamed Ismail Mohammed Mowjood Tatsuaki Kasubuchi 《Soil Science and Plant Nutrition》2013,59(3):405-413
The transfer of heat and dissolved oxygen (DO) through water is important to understand the phenomenon of ponded water in a paddy soil. The heat from solar radiation is absorbed at the soil surface and transferred into the ponded water by convection. This study clarified the dynamics of DO, as well as the role of convection in water in DO transfer in the ponded water of a paddy field. DO concentration in the ponded water of a paddy field was measured in situ in the daytime and during the night. The results were confirmed in lab-scale model experiments. The DO concentration and temperature profiles in the ponded water of a lab-scale paddy field model were investigated under convective and non-convective conditions using solar radiation and infrared radiation, respectively. Under the ponded condition, solar radiation was absorbed at the soil surface whereas infrared radiation was absorbed at the water surface and thereby convective and non-convective conditions were generated, respectively. The diurnal variation in DO concentration was closely related to the intensity of solar radiation. Oxygen generation by micro-algae and its subsequent circulation by convection resulted in uniform DO concentration profiles, with super-saturated values in the ponded water in the daytime. Eventually oxygen was released to the atmosphere by deaeration until DO in water was depleted to the saturated level. During the night the oxygen moved from the atmosphere into the water surface by reaeration which depends on the oxygen deficit related to saturation. The oxygen deficit is caused by the respiration of microorganisms. The oxygen, that moved from the atmosphere to the water surface, was transferred to the soil surface by convection in the water layer. Thus convection plays an important role in the DO transfer in the ponded water of a paddy field. The DO dynamics is correlated with biological processes in the ponded paddy soil. 相似文献
89.
Paul Dijkstra Ayaka Ishizu Stephen C. Hart Egbert Schwartz Bruce A. Hungate 《Soil biology & biochemistry》2006,38(11):3257-3266
Stable isotope analysis is a powerful tool in the study of soil organic matter formation. It is often observed that more decomposed soil organic matter is 13C, and especially 15N-enriched relative to fresh litter and recent organic matter. We investigated whether this shift in isotope composition relates to the isotope composition of the microbial biomass, an important source for soil organic matter. We developed a new approach to determine the natural abundance C and N isotope composition of the microbial biomass across a broad range of soil types, vegetation, and climates. We found consistently that the soil microbial biomass was 15N-enriched relative to the total (3.2 ‰) and extractable N pools (3.7 ‰), and 13C-enriched relative to the extractable C pool (2.5 ‰). The microbial biomass was also 13C-enriched relative to total C for soils that exhibited a C3-plant signature (1.6 ‰), but 13C-depleted for soils with a C4 signature (−1.1 ‰). The latter was probably associated with an increase of annual C3 forbs in C4 grasslands after an extreme drought. These findings are in agreement with the proposed contribution of microbial products to the stabilized soil organic matter and may help explain the shift in isotope composition during soil organic matter formation. 相似文献
90.