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Satellite Radiation Products for Ocean Biology and Biogeochemistry: Needs, State-of-the-Art, Gaps, Development Priorities, and Opportunities

机译:用于海洋生物学和生物地球化学的卫星辐射产品:需求,最新技术,差距,发展重点和机遇

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Knowing the spatial and temporal distribution of the underwater light field, i.e., the spectral and angular structure of the radiant intensity at any point in the water column, is essential to understanding the biogeochemical processes that control the composition and evolution of aquatic ecosystems and their impact on climate and reaction to climate change. At present, only a few properties are reliably retrieved from space, either directly or via water-leaving radiance. Existing satellite products are limited to planar photosynthetically available radiation (PAR) and ultraviolet (UV) irradiance above the surface and diffuse attenuation coefficient. Examples of operational products are provided, and their advantages and drawbacks are examined. The usefulness and convenience of these products notwithstanding, there is a need, as expressed by the user community, for other products, i.e., sub-surface planar and scalar fluxes, average cosine, spectral fluxes (UV to visible), diurnal fluxes, absorbed fraction of PAR by live algae (APAR), surface albedo, vertical attenuation, and heating rate, and for associating uncertainties to any product on a pixel-by-pixel basis. Methodologies to obtain the new products are qualitatively discussed in view of most recent scientific knowledge and current and future satellite missions, and specific algorithms are presented for some new products, namely sub-surface fluxes and average cosine. A strategy and roadmap (short, medium, and long term) for usage and development priorities is provided, taking into account needs and readiness level. Combining observations from satellites overpassing at different times and geostationary satellites should be pursued to improve the quality of daily-integrated radiation fields, and products should be generated without gaps to provide boundary conditions for general circulation and biogeochemical models. Examples of new products, i.e., daily scalar PAR below the surface, daily average cosine for PAR, and sub-surface spectral scalar fluxes are presented. A procedure to estimate algorithm uncertainties in the total uncertainty budget for above-surface daily PAR, based on radiative simulations for expected situations, is described. In the future, space-borne lidars with ocean profiling capability offer the best hope for improving our knowledge of sub-surface fields.
机译:了解水下光场的空间和时间分布,即在水柱中任何一点的辐射强度的光谱和角度结构,对于了解控制水生生态系统的组成和演化及其影响的生物地球化学过程至关重要。关于气候和对气候变化的反应。目前,直接或通过留水辐射能可靠地从太空中检索出一些特性。现有的卫星产品仅限于表面上方的平面光合有效辐射(PAR)和紫外线(UV)辐照度以及扩散衰减系数。提供了操作产品的示例,并检查了它们的优缺点。尽管这些产品的有用性和便利性,但用户社区表示,还需要其他产品,例如,表面下的平面和标量通量,平均余弦,光谱通量(从紫外到可见光),日通量,吸收按活藻(APAR),表面反照率,垂直衰减和加热速率计算的PAR比例,以及用于将不确定性与任何产品相关联的逐像素方式。根据最新的科学知识以及当前和将来的卫星飞行任务,定性地讨论了获得新产品的方法,并针对某些新产品(地下通量和平均余弦)提出了具体算法。提供了针对使用和开发优先级的策略和路线图(短期,中期和长期),同时考虑了需求和准备水平。应当结合在不同时间越过的卫星和对地静止卫星的观测结果,以提高每日综合辐射场的质量,并且应产生没有间隙的产品,为总体环流和生物地球化学模型提供边界条件。提供了新产品的示例,例如,表面以下的每日标量PAR,PAR的每日平均余弦和次表面光谱标量通量。描述了一种基于预期情况的辐射模拟来估算地表每日PAR的总不确定性预算中的算法不确定性的过程。将来,具有海洋剖析能力的星载激光雷达为改善我们对地下领域的知识提供了最大希望。

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