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首页> 外文期刊>Geoscientific Model Development Discussions >OMEN-SED 1.0: a novel, numerically efficient organic matter sediment diagenesis module for coupling to Earth system models
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OMEN-SED 1.0: a novel, numerically efficient organic matter sediment diagenesis module for coupling to Earth system models

机译:Omen-Sed 1.0:一种新型,数值有效的有机物质沉积物成岩作用模块,用于耦合地球系统模型

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We present the first version of OMEN-SED (Organic Matter ENabled SEDiment model), a new, one-dimensional analytical early diagenetic model resolving organic matter cycling and the associated biogeochemical dynamics in marine sediments designed to be coupled to Earth system models. OMEN-SED explicitly describes organic matter (OM) cycling and the associated dynamics of the most important terminal electron acceptors (i.e. O2 , NO3, SO4) and methane (CH4), related reduced substances (NH4, H2S), macronutrients (PO4) and associated pore water quantities (ALK, DIC). Its reaction network accounts for the most important primary and secondary redox reactions, equilibrium reactions, mineral dissolution and precipitation, as well as adsorption and desorption processes associated with OM dynamics that affect the dissolved and solid species explicitly resolved in the model. To represent a redox-dependent sedimentary P cycle we also include a representation of the formation and burial of Fe-bound P and authigenic Ca–P minerals. Thus, OMEN-SED is able to capture the main features of diagenetic dynamics in marine sediments and therefore offers similar predictive abilities as a complex, numerical diagenetic model. Yet, its computational efficiency allows for its coupling to global Earth system models and therefore the investigation of coupled global biogeochemical dynamics over a wide range of climate-relevant timescales. This paper provides a detailed description of the new sediment model, an extensive sensitivity analysis and an evaluation of OMEN-SED's performance through comprehensive comparisons with observations and results from a more complex numerical model. We find that solid-phase and dissolved pore water profiles for different ocean depths are reproduced with good accuracy and simulated terminal electron acceptor fluxes fall well within the range of globally observed fluxes. Finally, we illustrate its application in an Earth system model framework by coupling OMEN-SED to the Earth system model cGENIE and tune the OM degradation rate constants to optimise the fit of simulated benthic OM contents to global observations. We find that the simulated sediment characteristics of the coupled model framework, such as OM degradation rates, oxygen penetration depths and sediment–water interface fluxes, are generally in good agreement with observations and in line with what one would expect on a global scale. Coupled to an Earth system model, OMEN-SED is thus a powerful tool that will not only help elucidate the role of benthic–pelagic exchange processes in the evolution and the termination of a wide range of climate events, but will also allow for a direct comparison of model output with the sedimentary record – the most important climate archive on Earth.
机译:我们介绍了Omen-Sed(有机物质的沉积物模型)的第一版,一种新的一维分析早期成岩模型解决有机物质循环和船上沉积物中的相关生物地球化学动力学,旨在耦合到地球系统模型。 Omen-sed明确描述了有机物质(OM)循环和最重要的末端电子受体的相关动态(即O 2,NO 3,SO4)和甲烷(CH4),相关的还原物质(NH4,H2S),MACRORRIERS(PO4)和相关孔隙水量(ALK,DIC)。其反应网络占最重要的主要和二次氧化还原反应,平衡反应,矿物溶解和沉淀,以及与影响模型中明确解决的溶解和固体的OM动态相关的吸附和解吸过程。表示氧化还原依赖性沉积P循环,我们还包括Fe-Laboud P和Authigenic Ca-P矿物质的形成和埋葬的表示。因此,Omen-Sed能够捕获船舶沉积物中成岩动力学的主要特征,因此提供与复杂的数值成岩模型类似的预测能力。然而,其计算效率允许其与全球地球系统模型的耦合,从而调查在广泛的气候相关时间尺度上的耦合全球生物地态动力学。本文提供了新的沉积模型,广泛的敏感性分析以及通过对更复杂的数值模型的观察和结果的综合比较来进行广泛的敏感性分析和对Omen-Sed性能的评估。我们发现,以良好的精度和模拟端子电子受体助气体在全球观察的助熔剂范围内再现不同海洋深度的固相和溶解的孔隙水分。最后,我们通过耦合Omen-Sed向地球系统模型CGENIE来说明其在地球系统模型框架中的应用,并调整OM劣化速率常量,以优化模拟的底栖OM内容对全局观测的拟合。我们发现,耦合模型框架的模拟沉积物特性,例如om降解速率,氧气渗透深度和沉积物 - 水界面助熔剂通常与观察结果吻合良好,并且与全球规模的期望符合良好。耦合到地球系统模型,因此Emen-Sed是一个强大的工具,不仅可以帮助阐明弯曲 - 胸壁交换过程在进化中的作用和广泛的气候事件的终止,而且还将允许直接模型输出与沉积纪录的比较 - 地球上最重要的气候归档。

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