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藻类的内在自养生物量产量和生产力:光谱和混合速率依赖性建模。

Intrinsic autotrophic biomass yield and productivity in algae: modeling spectral and mixing-rate dependence.

机构信息

Department of Chemical Engineering, Brigham Young University, Provo, UT 84604, USA.

出版信息

Biotechnol J. 2011 May;6(5):584-99. doi: 10.1002/biot.201000261. Epub 2011 Mar 7.

Abstract

For non-inhibitory irradiances, the rate of algal biomass synthesis was modeled as the product of the algal autotrophic yield Φ(DW) and the flux of photons absorbed by the culture, as described using Beer-Lambert law. As a contrast to earlier attempts, the use of scatter-corrected extinction coefficients enabled the validation of such approach, which bypasses determination of photosynthesis-irradiance (PI) kinetic parameters. The broad misconception that PI curves, or the equivalent use of specific growth rate expressions independent of the biomass concentration, can be extended to adequately model biomass production under light-limitation is addressed. For inhibitory irradiances, a proposed mechanistic model, based on the photosynthetic units (PSU) concept, allows one to estimate a target speed νT across the photic zone in order to limit the flux of photons per cell to levels averting significant reductions in Φ(DW) . These modeled target speeds, on the order of 5-20 m s(-1) for high outdoor irradiances, call for fundamental changes in reactor design to optimize biomass productivity. The presented analysis enables a straightforward bioreactor parameterization, which, in-turn, guides the establishment of conditions ensuring maximum productivity and complete nutrients consumption. Additionally, solar and fluorescent lighting spectra were used to calculate energy to photon-counts conversion factors.

摘要

对于非抑制辐照度,藻类生物质合成速率被建模为藻类自养产率 Φ(DW) 与被培养物吸收的光子通量的乘积,如 Beer-Lambert 定律所述。与早期的尝试不同,使用经过散射校正的消光系数使这种方法得以验证,该方法绕过了光合作用-辐照度 (PI) 动力学参数的测定。广泛存在的误解是,PI 曲线,或独立于生物质浓度使用特定生长率表达式,可以扩展到足以在光限制下充分模拟生物质生产。对于抑制辐照度,提出了一种基于光合单位 (PSU) 概念的机制模型,该模型允许估计在光区中的目标速度 νT,以便将每个细胞的光子通量限制在避免 Φ(DW) 显著降低的水平。这些模拟的目标速度,对于高户外辐照度来说,约为 5-20 m s(-1),需要对反应器设计进行根本性改变,以优化生物质生产力。所提出的分析可以直接对生物反应器进行参数化,从而指导建立确保最大生产力和完全消耗营养物的条件。此外,还使用太阳和荧光照明光谱来计算能量到光子计数的转换因子。

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