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Challenges in modelling dissolved organic matter dynamics in agricultural soil using DAISY.

机译:使用DAISY建模农业土壤中溶解性有机物动力学的挑战。

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Because dissolved organic matter (DOM) plays an important role is terrestrial C-, N- and P-balances and transport of these three components to aquatic environments, there is a need to include it in models. This paper presents the concept of the newly developed DOM modules implemented in the DAISY model with focus on the quantification of DOM sorption/desorption and microbial-driven DOM turnover. The kinetics of DOM sorption/desorption is described by the deviation of the actual DOM concentration in solution from the equilibrium concentration, Ceq. The Ceq is soil specific and estimated from pedotransfer functions taking into account the soil content of organic matter, Al and Fe oxides. The turnover of several organic matter pools including one DOM pool are described by first-order kinetics. The DOM module was tested at field scale for three soil treatments applied after cultivating grass-clover swards. Suction cups were installed at depths 30, 60 and 90 cm and soil solution was sampled for quantification of dissolved organic C (DOC) and dissolved organic N (DON). In the topsoil, the observed fluctuations in DOC were successfully simulated when the sorption/desorption rate coefficient k was low. In the subsoil, the observed concentrations of DOC were steadier and the best simulations were obtained using a high k. The model shows that DOC and DON concentrations are levelled out in the subsoils due to soil buffering. The steady concentration levels were based on the Ceq for each horizon and the kinetic concept for sorption/desorption of DOC appeared a viable approach. If Ceq was successfully estimated by the pedotransfer function it was possible to simulate the DOC concentration in the subsoil. In spite of difficulties in describing the DOC dynamics of the topsoil, the DOM module simulates the subsoil concentration level of DOC well, and also - but with more uncertainty - the DON concentration level.
机译:由于溶解有机物(DOM)在陆地的C,N和P平衡以及这三个成分向水生环境的运输中起着重要作用,因此有必要将其包括在模型中。本文介绍了在DAISY模型中实施的最新开发的DOM模块的概念,重点是对DOM吸附/解吸和微生物驱动的DOM周转的量化。 DOM吸附/解吸的动力学由溶液中实际DOM浓度与平衡浓度Ceq的偏差来描述。 Ceq是土壤特有的,并且根据土壤的有机质,Al和Fe氧化物的含量,通过pedotransfer函数进行估算。一阶动力学描述了包括一个DOM池在内的几个有机物池的周转率。在种植草三叶草草皮后,对DOM模块进行了田间规模的三种土壤处理测试。将吸盘安装在30、60和90 cm的深度处,并取样土壤溶液以定量溶解的有机碳(DOC)和溶解的有机氮(DON)。在表土中,当吸附/解吸速率系数k低时,可以成功地模拟观察到的DOC波动。在地下土壤中,观察到的DOC浓度更稳定,使用高k可获得最佳模拟。该模型表明,由于土壤缓冲作用,底土中的DOC和DON浓度得以平衡。稳定浓度水平基于每个视野的Ceq,而DOC吸附/解吸的动力学概念似乎是可行的方法。如果通过pedotransfer函数成功估算了Ceq,则可以模拟底土中的DOC浓度。尽管难以描述表层土壤的DOC动态,但DOM模块可以很好地模拟DOC的地下土壤浓度水平,并且-但不确定性更高-DON浓度水平。

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