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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >The BIOMASS mission: Mapping global forest biomass to better understand the terrestrial carbon cycle
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The BIOMASS mission: Mapping global forest biomass to better understand the terrestrial carbon cycle

机译:BIOMASS任务:绘制全球森林生物量图,以更好地了解陆地碳循环

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In response to the urgent need for improved mapping of global biomass and the lack of any current space systems capable of addressing this need, the BIOMASS mission was proposed to the European Space Agency for the third cycle of Earth Explorer Core missions and was selected for Feasibility Study (Phase A) in March 2009. The objectives of the mission are 1) to quantify the magnitude and distribution of forest biomass globally to improve resource assessment, carbon accounting and carbon models, and 2) to monitor and quantify changes in terrestrial forest biomass globally, on an annual basis or better, leading to improved estimates of terrestrial carbon sources (primarily from deforestation); and terrestrial carbon sinks due to forest regrowth and afforestation. These science objectives require the mission to measure above-ground forest biomass from 70° N to 56° S at spatial scale of 100-200m, with error not exceeding ±20% or ±10tha~(-1) and forest height with error of ±4m. To meet the measurement requirements, the mission will carry a P-Band polarimetric SAR (centre frequency 435MHz with 6MHz bandwidth) with interferometric capability, operating in a dawn-dusk orbit with a constant incidence angle (in the range of 25°-35°) and a 25-45day repeat cycle. During its 5-year lifetime, the mission will be capable of providing both direct measurements of biomass derived from intensity data and measurements of forest height derived from polarimetric interferometry. The design of the BIOMASS mission spins together two main observational strands: (1) the long heritage of airborne observations in tropical, temperate and boreal forest that have demonstrated the capabilities of P-band SAR for measuring forest biomass; (2) new developments in recovery of forest structure including forest height from Pol-InSAR, and, crucially, the resistance of P-band to temporal decorrelation, which makes this frequency uniquely suitable for biomass measurements with a single repeat-pass satellite. These two complementary measurement approaches are combined in the single BIOMASS sensor, and have the satisfying property that increasing biomass reduces the sensitivity of the former approach while increasing the sensitivity of the latter. This paper surveys the body of evidence built up over the last decade, from a wide range of airborne experiments, which illustrates the ability of such a sensor to provide the required measurements.At present, the BIOMASS P-band radar appears to be the only sensor capable of providing the necessary global knowledge about the world's forest biomass and its changes. In addition, this first chance to explore the Earth's environment with a long wavelength satellite SAR is expected to make yield new information in a range of geoscience areas, including subsurface structure in arid lands and polar ice, and forest inundation dynamics.
机译:由于迫切需要改进全球生物量的制图,并且目前尚无能够满足这一需求的空间系统,因此向欧洲航天局提出了BIOMASS任务,以进行第三次“地球探索者”核心任务,并被选为可行性研究对象2009年3月进行研究(阶段A)。任务的目的是1)量化全球森林生物量的数量和分布,以改善资源评估,碳核算和碳模型,以及2)监测和量化陆地森林生物量的变化在全球范围内,每年或更佳的水平,导致对陆地碳源(主要来自森林砍伐)的估计有所改进;以及由于森林再生和造林而造成的陆地碳汇。这些科学目标要求任务是在100-200m的空间范围内测量70°N至56°S的地上森林生物量,误差不超过±20%或±10tha〜(-1),森林高度的误差为±4m。为满足测量要求,该任务将携带具有干涉测量能力的P波段极化SAR(中心频率435MHz,带宽6MHz),在恒定入射角(在25°-35°范围内)的黎明-黄昏轨道上运行)和25-45天的重复周期。在其5年的生命周期中,该任务将能够提供直接测量强度数据得出的生物量以及测量偏振干涉法得出的森林高度的信息。 BIOMASS任务的设计将两个主要的观察环节融合在一起:(1)热带,温带和寒带森林中空中观测的悠久传统,证明了P波段SAR测量森林生物量的能力; (2)森林结构恢复的新发展,包括Pol-InSAR的森林高度,以及至关重要的是P波段对时间去相关的抵抗力,这使得该频率特别适合于使用单个重复通过卫星进行生物量测量。这两种互补的测量方法结合在单个BIOMASS传感器中,并且具有令人满意的特性,即增加生物量会降低前一种方法的灵敏度,同时又会增加后者的灵敏度。本文从大量的机载实验中调查了过去十年积累的证据,这说明了这种传感器能够提供所需测量结果的能力。目前,BIOMASS P波段雷达似乎是唯一的传感器能够提供有关世界森林生物量及其变化的必要的全球知识。此外,利用长波长卫星SAR探索地球环境的第一次机会有望在一系列地球科学领域产生新的信息,包括干旱土地和极地冰的地下结构以及森林淹没的动态。

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