基于土壤结构的土壤异养呼吸模拟方法

IF 3.9 3区 环境科学与生态学 Q2 ENVIRONMENTAL SCIENCES
Achla Jha, Felipe Aburto, Salvatore Calabrese
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引用次数: 0

摘要

土壤微生物群落在控制土壤碳循环及其气候反馈中起着关键作用。土壤系统复杂的资源异质性给微生物呼吸的准确预测带来了挑战。这使得难以在土壤体积尺度上制定碳通量的数学表达式,而这是土壤碳模型的基础。近年来在土壤异质性表征和模拟方面的进展是有希望的。然而,它们独立于土壤结构表征,因此增加了模拟微生物过程所需的经验参数的数量。土壤结构,即团聚体和孔隙大小的分布,实际上是土壤组织和异质性的关键因素,与微生物群落活跃的微位点和相关环境条件的存在有关。在这项研究中,我们提出了一个理论框架,通过明确地将异质性与聚集体大小及其资源的分布联系起来,来解释微位点异质性对微生物活动的影响。从土壤团聚体大小分布中,我们推导出异养呼吸的数学表达式,通过可测量的生物物理参数来解释土壤的生物地球化学异质性。这个表达式很容易说明各种土壤异质性情景如何影响呼吸速率。特别是,我们比较了相同总碳基质和微生物生物量的异质和均匀情况,并确定了非均匀土壤(碳基质和微生物生物量碳在不同团聚体粒径类别中分布不均匀的土壤)与均匀土壤(碳基质和微生物生物量碳在不同团聚体粒径类别中分布均匀的土壤)的呼吸作用不同的条件。提出的框架可以简化不同土地利用和土地覆盖土壤碳模型中动态微生物过程的表示,这是影响土壤结构的关键因素。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A soil structure-based modeling approach to soil heterotrophic respiration

Soil microbial communities play a pivotal role in controlling soil carbon cycling and its climate feedback. Accurately predicting microbial respiration in soils has been challenged by the intricate resource heterogeneity of soil systems. This makes it difficult to formulate mathematical expressions for carbon fluxes at the soil bulk scale which are fundamental for soil carbon models. Recent advances in characterizing and modeling soil heterogeneity are promising. Yet they have been independent of soil structure characterizations, hence increasing the number of empirical parameters needed to model microbial processes. Soil structure, intended as the aggregate and pore size distributions, is, in fact, a key contributor to soil organization and heterogeneity and is related to the presence of microsites and associated environmental conditions in which microbial communities are active. In this study, we present a theoretical framework that accounts for the effects of microsites heterogeneity on microbial activity by explicitly linking heterogeneity to the distribution of aggregate sizes and their resources. From the soil aggregate size distribution, we derive a mathematical expression for heterotrophic respiration that accounts for soil biogeochemical heterogeneity through measurable biophysical parameters. The expression readily illustrates how various soil heterogeneity scenarios impact respiration rates. In particular, we compare heterogeneous with homogeneous scenarios for the same total carbon substrate and microbial biomass and identify the conditions under which respiration in heterogeneous soils (soils having non-uniform distribution of carbon substrate and microbial biomass carbon across different aggregate size classes) differs from homogeneous soils (soils having uniform distribution of carbon substrate and microbial biomass carbon across different aggregate size classes). The proposed framework may allow a simplified representation of dynamic microbial processes in soil carbon models across different land uses and land covers, key factors affecting soil structure.

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来源期刊
Biogeochemistry
Biogeochemistry 环境科学-地球科学综合
CiteScore
7.10
自引率
5.00%
发文量
112
审稿时长
3.2 months
期刊介绍: Biogeochemistry publishes original and synthetic papers dealing with biotic controls on the chemistry of the environment, or with the geochemical control of the structure and function of ecosystems. Cycles are considered, either of individual elements or of specific classes of natural or anthropogenic compounds in ecosystems. Particular emphasis is given to coupled interactions of element cycles. The journal spans from the molecular to global scales to elucidate the mechanisms driving patterns in biogeochemical cycles through space and time. Studies on both natural and artificial ecosystems are published when they contribute to a general understanding of biogeochemistry.
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