Kinetics of native and added carbon mineralization on incubating at different soil and moisture conditions in Typic Ustochrepts and Typic Halustalf

IF 7.3 1区 农林科学 Q1 ENVIRONMENTAL SCIENCES
Harjinder Kaur , Raghava R. Kommalapati , Gurbachan S. Saroa
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引用次数: 2

Abstract

The carbon dynamics in soils is of great importance due to its links to the global carbon cycle. The prediction of the behavior of native soil organic carbon (SOC) and organic amendments via incubation studies and mathematical modeling may bridge the knowledge gap in understanding complex soil ecosystems. Three alkaline Typic Ustochrepts and one Typic Halustalf with sandy, loamy sand, and clay loam texture, varying in percent SOC of 0.2; S1, 0.42; S2, 0.67; S3 and 0.82; S4 soils, were amended with wheat straw (WS), WS + P, sesbania green manure (GM), and poultry manure (PM) on 0.5% C rate at field capacity (FC) and ponding (P) moisture levels and incubated at 35 °C for 1, 15, 30 and 45 d. Carbon mineralization was determined via the alkali titration method after 1, 5, 7 14, 21, and 28 d. The SOC and inorganic carbon contents were determined from dried up (50 °C) soil samples after 1, 15, 30, and 45 d of incubation. Carbon from residue mineralization was determined by subtracting the amount of CO2-C evolved from control soils. The kinetic models; monocomponent first order, two-component first order, and modified Gompertz equations were fitted to the carbon mineralization data from native and added carbon. The SOC decomposition was dependent upon soil properties, and moisture, however, added C was relatively independent. The carbon from PM was immobilized in S4. All the models fitted to the data predicted carbon mineralization in a similar range with few exceptions. The residues lead to the OC build-up in fine-textured soils having relatively high OC and cation exchange capacities. Whereas, fast degradation of applied OC in coarse-textured soils leads to faster mineralization and lower build-up from residues. The decline in CaCO3 after incubation was higher at FC than in the P moisture regime.

不同土壤和水分条件下典型ustochrets和典型Halustalf原生和添加碳矿化动力学
土壤中的碳动力学由于其与全球碳循环的联系而具有重要意义。通过孵化研究和数学建模预测原生土壤有机碳(SOC)和有机改良剂的行为,可以弥合理解复杂土壤生态系统的知识差距。三个碱性类型的Ustochrept和一个类型的Halustalf,具有砂质、壤土和粘壤土结构,SOC百分比变化为0.2;S1,0.42;S2,0.67;S3和0.82;S4土壤,在田间容量(FC)和积水(P)湿度水平下,用小麦秸秆(WS)、WS+P、芝麻绿肥(GM)和家禽粪便(PM)以0.5%的C率进行改良,并在35°C下培养1、15、30和45d。在1、5、7、14、21和28天后通过碱滴定法测定碳矿化。培养1、15、30和45天后,从干燥(50°C)的土壤样品中测定SOC和无机碳含量。残留物矿化产生的碳是通过减去对照土壤中释放的CO2-C量来确定的。动力学模型;将单组分一阶、双组分一级和修正的Gompertz方程拟合到来自天然碳和添加碳的碳矿化数据。SOC的分解取决于土壤性质和水分,但添加的C相对独立。将来自PM的碳固定在S4中。所有与数据拟合的模型都预测了类似范围内的碳矿化,只有少数例外。残留物导致OC在具有相对较高OC和阳离子交换能力的细质地土壤中积聚。然而,在粗糙质地的土壤中,施用有机碳的快速降解会导致更快的矿化和更低的残留物堆积。在FC条件下培养后CaCO3的下降高于在P水分条件下。
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来源期刊
International Soil and Water Conservation Research
International Soil and Water Conservation Research Agricultural and Biological Sciences-Agronomy and Crop Science
CiteScore
12.00
自引率
3.10%
发文量
171
审稿时长
49 days
期刊介绍: The International Soil and Water Conservation Research (ISWCR), the official journal of World Association of Soil and Water Conservation (WASWAC) http://www.waswac.org, is a multidisciplinary journal of soil and water conservation research, practice, policy, and perspectives. It aims to disseminate new knowledge and promote the practice of soil and water conservation. The scope of International Soil and Water Conservation Research includes research, strategies, and technologies for prediction, prevention, and protection of soil and water resources. It deals with identification, characterization, and modeling; dynamic monitoring and evaluation; assessment and management of conservation practice and creation and implementation of quality standards. Examples of appropriate topical areas include (but are not limited to): • Conservation models, tools, and technologies • Conservation agricultural • Soil health resources, indicators, assessment, and management • Land degradation • Sustainable development • Soil erosion and its control • Soil erosion processes • Water resources assessment and management • Watershed management • Soil erosion models • Literature review on topics related soil and water conservation research
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