A soil phosphorus dynamics (SPD) model
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The dynamics of soil phosphorus (P) control its bioavailability. Yet, it remains a challenge to quantify soil P dynamics. Here, we developed a soil P dynamics (SPD) model. We then assimilated eight datasets of 426-day changes in Hedley P fractions into the SPD model, to quantify the dynamics of six major P pools in eight soil samples that are representative of a wide type of soils. The performance of our SPD model was better for labile P, secondary mineral P, and occluded P than for non-occluded organic P (Po) and primary mineral P. All parameters describing soil P dynamics were approximately constrained by the datasets. The average turnover rates were labile P 0.040 g g<sup>-1</sup> d<sup>-1</sup>, non-occluded Po 0.051 g g<sup>-1</sup> d<sup>-1</sup>, secondary mineral P 0.023 g g<sup>-1</sup> d<sup>-1</sup>, primary mineral P 0.00088 g g<sup>-1</sup> d<sup>-1</sup>, occluded Po 0.0066 g g<sup>-1</sup> d<sup>-1</sup>, and occluded inorganic P 0.0065 g g<sup>-1</sup> d<sup>-1</sup>, in the greenhouse environment studied. Labile P was transferred on average more to non-occluded Po (transfer coefficient of 0.42) and secondary mineral P (0.38) than to plants (0.20). Soil pH and organic C concentration were the key soil properties regulating the competition for P between plants and soil secondary minerals. The turnover rate of labile P was positively correlated with that of non-occluded Po and secondary mineral P. The pool size of labile P was most sensitive to its turnover rate. Overall, we suggest data assimilation can contribute significantly to an improved understanding of soil P dynamics.<br>Paper on this data and model is published as follows: Hou, E., Lu, X., Jiang, L., Wen, D. & Luo, Y. Quantifying soil phosphorus dynamics: a data assimilation approach. Journal of Geophysical Research: Biogeosciences 124, 2159-2173 (2019).
提供机构:
Lifen Jiang; Dazhi Wen; Enqing Hou; Yiqi Luo; Xingjie Lu
创建时间:
2019-06-14



