Munoz-Martin Joan Francesc, Bosch-Lluis Xavier, Pradhan Omkar, Brown Shannon T, Kangaslahti Pekka P, Tanner Alan B, Ogut Mehmet, Misra Sidharth, Lim Boon H
Signal Processing and Networks Group, Jet Propulsion Laboratory, California Institute of Technology, Pasadena, CA 91011, USA.
Microwave Systems Technology Group, Jet Propulsion Laboratory, California Institute of Technology, Pasadena, CA 91011, USA.
Sensors (Basel). 2023 Oct 18;23(20):8554. doi: 10.3390/s23208554.
This manuscript presents the Microwave Temperature and Humidity Profiler (MTHP), a dual-band spectroradiometer designed for measuring multi-incidence angle temperature and humidity atmospheric profiles from an aircraft platform. The MTHP bands are at 60 GHz for measuring the oxygen complex lines, therefore at this band, MTHP has a hyperspectral radiometer able to provide 2048 channels over an 8 GHz bandwidth, and 183 GHz for measuring water vapor, which only uses four channels since this absorption band's spectral richness is simpler. The MTHP builds upon the Microwave Temperature Profiler (MTP) with the inclusion of the hyperspectral radiometer. The instrument's design, components, and calibration methods are discussed in detail, with a focus on the three-point calibration scheme involving internal calibration loads and static air temperature readings. Preliminary results from the Technological Innovation into Iodine and GV aircraft Environmental Research (TI3GER) campaign are presented, showcasing the instrument's performance during flights across diverse geographical regions. The manuscript presents successful antenna temperature measurements at 60 GHz and 183 GHz. The hyperspectral measurements are compared with a simulated antenna temperature using the Atmospheric Radiative Transfer Simulator (ARTS) showing an agreement better than R > 0.88 for three of the flights analyzed. Additionally, the manuscript draws attention to potential Radio Frequency Interference (RFI) effects observed during a specific flight, underscoring the instrument's sensitivity to external interference. This is the first-ever airborne demonstration of a broadband and hyperspectral multi-incidence angle 60 GHz measurement. Future work on the MTHP could result in an improved spatial resolution of the atmospheric temperature vertical profile and, hence, help in estimating the Planetary Boundary Layer (PBL) with better accuracy. The MTHP and its hyperspectral multi-incidence angle at 60 GHz have the potential to be a valuable tool for investigating the PBL's role in atmospheric dynamics, offering insights into its impact on Earth's energy, water, and carbon cycles.
本手稿介绍了微波温度和湿度剖面仪(MTHP),这是一种双波段光谱辐射计,旨在从飞机平台测量多入射角的大气温度和湿度剖面。MTHP的波段分别为60吉赫兹,用于测量氧复合线,因此在该波段,MTHP是一台超光谱辐射计,能够在8吉赫兹带宽内提供2048个通道;另一个波段是183吉赫兹,用于测量水汽,由于该吸收带的光谱丰富度较简单,所以仅使用四个通道。MTHP是在微波温度剖面仪(MTP)的基础上加入了超光谱辐射计。文中详细讨论了该仪器的设计、组件和校准方法,重点介绍了涉及内部校准负载和静态空气温度读数的三点校准方案。展示了碘和GV飞机环境研究技术创新(TI3GER)活动的初步结果,展示了该仪器在跨不同地理区域飞行期间的性能。手稿展示了在60吉赫兹和183吉赫兹成功进行的天线温度测量。将超光谱测量结果与使用大气辐射传输模拟器(ARTS)模拟的天线温度进行了比较,结果表明,在所分析的三次飞行中,二者的一致性优于R>0.88。此外,手稿还提请注意在一次特定飞行中观察到的潜在射频干扰(RFI)效应,强调了该仪器对外部干扰的敏感性。这是首次在机载平台上演示宽带和超光谱多入射角60吉赫兹测量。MTHP未来的工作可能会提高大气温度垂直剖面的空间分辨率,从而有助于更准确地估计行星边界层(PBL)。MTHP及其60吉赫兹的超光谱多入射角有潜力成为研究PBL在大气动力学中作用的宝贵工具,有助于深入了解其对地球能量、水和碳循环的影响。