湖泊浮游初级生产力的控制:养分-颜色范式的正式化

IF 3.7 3区 环境科学与生态学 Q2 ENVIRONMENTAL SCIENCES Journal of Geophysical Research: Biogeosciences Pub Date : 2024-12-15 DOI:10.1029/2024JG008140
Isabella A. Oleksy, Christopher T. Solomon, Stuart E. Jones, Carly Olson, Brittni L. Bertolet, Rita Adrian, Sheel Bansal, Jill S. Baron, Soren Brothers, Sudeep Chandra, Hsiu-Mei Chou, William Colom-Montero, Joshua Culpepper, Elvira de Eyto, Matthew J. Farragher, Sabine Hilt, Kristen T. Holeck, Garabet Kazanjian, Marcus Klaus, Jennifer Klug, Jan Köhler, Alo Laas, Erik Lundin, Alice H. Parkes, Kevin C. Rose, Lars G. Rustam, James Rusak, Facundo Scordo, Michael J. Vanni, Piet Verburg, Gesa A. Weyhenmeyer
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引用次数: 0

摘要

了解对初级生产力的控制对于描述生态系统及其对环境变化的反应至关重要。在湖泊中,海洋总初级生产力(GPP)受营养物和溶解有机质输入的强烈控制。虽然过去的研究已经开发了这种营养-颜色范式(NCP)的过程模型,但对这些模型的广泛实证检验很少。我们使用了来自58个全球分布的温带湖泊的数据来验证该模型,并提高了对湖泊初级生产控制的理解和预测。该模型包括三个状态变量——溶解磷、陆地溶解有机碳(DOC)和浮游植物生物量,并对远洋GPP的平衡速率做出现实的预测。我们使用贝叶斯数据同化技术在已知DOC和总磷(TP)负荷的湖泊子集上校准了我们的模型。然后,我们询问了校准后的模型在更大范围的湖泊中表现如何。更新模型的修正参数估计与现有文献值很好地吻合。观测到的GPP随入流DOC和TP浓度呈非线性变化,其变化方式与随DOC输入增加而增加的光照限制和随TP输入增加而减少的养分限制一致。此外,在这些不同的湖泊生态系统中,模式预测的GPP与高频传感器数据的观测值高度相关。使用更新参数的GPP预测改进了以前的估计,扩大了过程模型的效用,简化了水柱混合的假设。我们的分析提供了一个模型结构,可以广泛地用于理解湖泊初级生产的当前和未来模式。
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Controls on Lake Pelagic Primary Productivity: Formalizing the Nutrient-Color Paradigm

Understanding controls on primary productivity is essential for describing ecosystems and their responses to environmental change. In lakes, pelagic gross primary productivity (GPP) is strongly controlled by inputs of nutrients and dissolved organic matter. Although past studies have developed process models of this nutrient-color paradigm (NCP), broad empirical tests of these models are scarce. We used data from 58 globally distributed, mostly temperate lakes to test such a model and improve understanding and prediction of the controls on lake primary production. The model includes three state variables–dissolved phosphorus, terrestrial dissolved organic carbon (DOC), and phytoplankton biomass–and generates realistic predictions for equilibrium rates of pelagic GPP. We calibrated our model using a Bayesian data assimilation technique on a subset of lakes where DOC and total phosphorus (TP) loads were known. We then asked how well the calibrated model performed with a larger set of lakes. Revised parameter estimates from the updated model aligned well with existing literature values. Observed GPP varied nonlinearly with both inflow DOC and TP concentrations in a manner consistent with increasing light limitation as DOC inputs increased and decreasing nutrient limitation as TP inputs increased. Furthermore, across these diverse lake ecosystems, model predictions of GPP were highly correlated with observed values derived from high-frequency sensor data. The GPP predictions using the updated parameters improved upon previous estimates, expanding the utility of a process model with simplified assumptions for water column mixing. Our analysis provides a model structure that may be broadly useful for understanding current and future patterns in lake primary production.

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来源期刊
Journal of Geophysical Research: Biogeosciences
Journal of Geophysical Research: Biogeosciences Earth and Planetary Sciences-Paleontology
CiteScore
6.60
自引率
5.40%
发文量
242
期刊介绍: JGR-Biogeosciences focuses on biogeosciences of the Earth system in the past, present, and future and the extension of this research to planetary studies. The emerging field of biogeosciences spans the intellectual interface between biology and the geosciences and attempts to understand the functions of the Earth system across multiple spatial and temporal scales. Studies in biogeosciences may use multiple lines of evidence drawn from diverse fields to gain a holistic understanding of terrestrial, freshwater, and marine ecosystems and extreme environments. Specific topics within the scope of the section include process-based theoretical, experimental, and field studies of biogeochemistry, biogeophysics, atmosphere-, land-, and ocean-ecosystem interactions, biomineralization, life in extreme environments, astrobiology, microbial processes, geomicrobiology, and evolutionary geobiology
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