太阳辐照度测量。

IF 20.9 1区 物理与天体物理
Living Reviews in Solar Physics Pub Date : 2025-01-01 Epub Date: 2025-07-11 DOI:10.1007/s41116-025-00040-5
Greg Kopp
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引用次数: 0

摘要

太阳几乎提供了地球气候系统所需的所有能量,远远超过了其他所有能源的总和。入射辐射能,即“太阳总辐照度”,自1978年以来一直由一系列在时间上重叠的精密太空辐射测量仪器不间断地测量,其记录跨越了四个11年的太阳周期。短期总辐照度变化超过0.1%可以在几天内发生,而与太阳周期同步的~ 0.1%的变化是典型的。对太阳变化的时间尺度的了解,要比目前的几十年的太空记录更长,它依赖于太阳活动代用品和模型,这些代用品和模型显示了几个世纪以来类似的幅度变化。自1979年以来,已经连续获得了光谱分辨的星载紫外辐照度测量,而从2003年开始连续测量近紫外到近红外。长期总辐照度和光谱辐照度测量的结合有助于确定辐照度变率的太阳原因(主要是由于太阳表面磁活动区域,如太阳黑子和光斑)和太阳变率影响地球气候系统的机制(全球和区域温度响应太阳周期和更长时间尺度的变率)。为了更好地了解这些太阳的影响,最现代的总辐照度仪器正在接近检测潜在的长期太阳变化趋势所需的气候驱动测量精度和稳定性要求,而最新的光谱辐照度仪器开始能够辨别太阳周期变化。这篇文章主要介绍了太阳辐照度仪器的设计、能力和操作方法,重点介绍了这种测量最准确和稳定的星载时代。它总结了许多可用的总辐照度和光谱辐照度测量以及在从分钟到太阳周期的时间尺度上测量的太阳变化,并讨论了通过模型向更长的时间尺度的外推。综述了测量复合物和参考光谱。描述了当前的能力和未来的方向,以及气候驱动的太阳辐照度测量要求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Solar irradiance measurements.

The Sun provides nearly all the energy powering the Earth's climate system, far exceeding all other energy sources combined. The incident radiant energy, the "total solar irradiance," has been measured by an uninterrupted series of temporally overlapping precision space-borne radiometric instruments since 1978, giving a record spanning more than four 11-year solar cycles. Short-term total-irradiance variations exceeding 0.1% can occur over a few days while variations of ~ 0.1% in-phase with the solar cycle are typical. Knowledge of solar variability on timescales longer than the current multi-decadal space-borne record relies on solar-activity proxies and models, which indicate similar-magnitude changes over centuries. Spectrally resolved space-borne irradiance measurements in the ultraviolet have been acquired continuously since 1979, while measurements contiguously spanning the near-ultraviolet to the near-infrared began in 2003. The combination of long-term total- and spectral-irradiance measurements helps determine both the solar causes of irradiance variability, which are primarily due to solar-surface magnetic-activity regions such as sunspots and faculae, and the mechanisms by which solar variability affects the Earth's climate system, with global and regional temperatures responding to variability at solar-cycle and longer timescales. To better understand these solar influences, the most modern total-irradiance instruments are approaching the needed climate-driven measurement accuracy and stability requirements for detection of potential long-term solar-variability trends, while the latest spectral-irradiance instruments are beginning to be able to discern solar-cycle variability. Focusing on the space-borne era where such measurements are the most accurate and stable, this article describes solar-irradiance instrument designs, capabilities, and operational methodologies. It summarizes the many total- and spectral-irradiance measurements available and the measured solar variabilities on timescales from minutes to solar cycles and discusses extrapolations via models to longer timescales. Measurement composites and reference spectra are reviewed. Current capabilities and future directions are described along with the climate-driven solar-irradiance measurement requirements.

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来源期刊
Living Reviews in Solar Physics
Living Reviews in Solar Physics ASTRONOMY & ASTROPHYSICS-
自引率
1.40%
发文量
3
期刊介绍: Living Reviews in Solar Physics, a platinum open-access journal, publishes invited reviews covering research across all areas of solar and heliospheric physics. It distinguishes itself by maintaining a collection of high-quality reviews regularly updated by the authors. Established in 2004, it was founded by the Max Planck Institute for Solar System Research (MPS). "Living Reviews®" is a registered trademark of Springer International Publishing AG.
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