不同辐射组分塑造华山松人工林光环境和生产力格局

The ratio of direct and diffuse radiation shapes the light environment and the pattern of gross primary productivity in Pinus armandi plantation

  • 摘要: 揭示不同辐射组分如何影响林下辐射传输和生态系统生产力(GPP)仍缺少分层验证证据. 本研究以滇中华山松(Pinus armandi)人工林为对象,基于碳通量与分层微气象观测数据,采用Boland- Ridley- Lauret(BRL)经验逻辑回归模型估算了该地区的散射辐射比例(DF),对生长期与非生长期的DF 分布与日变化进行比较. 进一步利用标准化回归系数,量化林上不同辐射组分对林下光合有效辐射(PAR)的贡献. 最后,基于Michaelis–Menten方程分别拟合了林上层和林下层在散射辐射和直射辐射条件下的光响应曲线,以探讨林内不同层次的光合机理. 研究结果表明,DF季节差异显著,生长期具有较高且稳定的DF值. 不同辐射对林下PAR的贡献呈季节性反转,非生长期由直射辐射主导(β*dir = 0.712 > β*dif = 0.370),生长期由散射辐射主导(β*dif = 0.641 > β*dir = 0.468). 不同层次的光合响应显示出分层互补格局,林上层在直射条件下具有更高的最大光合效率(Pmax = 0.925),林下层在散射条件下显现出更高的初始量子效率(α = 0.043). 综上,华山松人工林生长期较高且更稳定的DF贡献了较高的林下散射辐射,提升了林下层的光能利用效率,与林上层在直射条件下的高同化能力形成互补,共同提升人工林群落尺度的总初级生产力.

     

    Abstract: There remains a lack of solid evidence revealing how radiation composition affects understory radiation transfer and gross primary productivity (GPP) across different forest layers. In this study, we used carbon flux and microclimate data from different forest layers to estimate the proportion of diffuse radiation (DF) via the Boland-Ridley-Lauret (BRL) model in a Pinus armandi plantation in central Yunnan. We then compared the distribution and daily variation of DF between the growing and non-growing periods. Standardized regression coefficients were computed to quantify the contributions of direct and diffuse components to understory photosynthetically active radiation (PAR). Finally, we applied the Michaelis-Menten equation to fit the light response to direct and diffuse radiation in both the canopy and understory, aiming to explore the photosynthetic mechanisms within different forest layers. The results showed significant seasonal differences in DF, with high and stable values occurring during the growing period. The contributions of direct and diffuse radiation to understory PAR also exhibited seasonal variations. Direct radiation dominated during the non-growing period (β*dir = 0.712 > β*dir = 0.370), whereas diffuse radiation dominated during the growing period (β*dir = 0.641 > β*dir = 0.468). Furthermore, the photosynthetic responses of different forest layers demonstrated hierarchical complementarity. The upper canopy exhibited a higher maximum photosynthetic capacity under direct radiation conditions (Pmax = 0.925), while the understory demonstrated higher initial quantum efficiency under diffuse radiation conditions (α = 0.043). In summary, the higher and more stable DF during the growing period of the Pinus armandi plantation contributes to increased diffuse radiation to the understory, thereby enhancing understory light use efficiency. This complements the high assimilation capacity of the canopy under direct radiation conditions, ultimately enhancing the overall GPP of the plantation at the community scale.

     

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