131 research outputs found

    Altimetry for the future: Building on 25 years of progress

    Get PDF
    In 2018 we celebrated 25 years of development of radar altimetry, and the progress achieved by this methodology in the fields of global and coastal oceanography, hydrology, geodesy and cryospheric sciences. Many symbolic major events have celebrated these developments, e.g., in Venice, Italy, the 15th (2006) and 20th (2012) years of progress and more recently, in 2018, in Ponta Delgada, Portugal, 25 Years of Progress in Radar Altimetry. On this latter occasion it was decided to collect contributions of scientists, engineers and managers involved in the worldwide altimetry community to depict the state of altimetry and propose recommendations for the altimetry of the future. This paper summarizes contributions and recommendations that were collected and provides guidance for future mission design, research activities, and sustainable operational radar altimetry data exploitation. Recommendations provided are fundamental for optimizing further scientific and operational advances of oceanographic observations by altimetry, including requirements for spatial and temporal resolution of altimetric measurements, their accuracy and continuity. There are also new challenges and new openings mentioned in the paper that are particularly crucial for observations at higher latitudes, for coastal oceanography, for cryospheric studies and for hydrology. The paper starts with a general introduction followed by a section on Earth System Science including Ocean Dynamics, Sea Level, the Coastal Ocean, Hydrology, the Cryosphere and Polar Oceans and the ‘‘Green” Ocean, extending the frontier from biogeochemistry to marine ecology. Applications are described in a subsequent section, which covers Operational Oceanography, Weather, Hurricane Wave and Wind Forecasting, Climate projection. Instruments’ development and satellite missions’ evolutions are described in a fourth section. A fifth section covers the key observations that altimeters provide and their potential complements, from other Earth observation measurements to in situ data. Section 6 identifies the data and methods and provides some accuracy and resolution requirements for the wet tropospheric correction, the orbit and other geodetic requirements, the Mean Sea Surface, Geoid and Mean Dynamic Topography, Calibration and Validation, data accuracy, data access and handling (including the DUACS system). Section 7 brings a transversal view on scales, integration, artificial intelligence, and capacity building (education and training). Section 8 reviews the programmatic issues followed by a conclusion

    Altimetry for the future: building on 25 years of progress

    Get PDF
    In 2018 we celebrated 25 years of development of radar altimetry, and the progress achieved by this methodology in the fields of global and coastal oceanography, hydrology, geodesy and cryospheric sciences. Many symbolic major events have celebrated these developments, e.g., in Venice, Italy, the 15th (2006) and 20th (2012) years of progress and more recently, in 2018, in Ponta Delgada, Portugal, 25 Years of Progress in Radar Altimetry. On this latter occasion it was decided to collect contributions of scientists, engineers and managers involved in the worldwide altimetry community to depict the state of altimetry and propose recommendations for the altimetry of the future. This paper summarizes contributions and recommendations that were collected and provides guidance for future mission design, research activities, and sustainable operational radar altimetry data exploitation. Recommendations provided are fundamental for optimizing further scientific and operational advances of oceanographic observations by altimetry, including requirements for spatial and temporal resolution of altimetric measurements, their accuracy and continuity. There are also new challenges and new openings mentioned in the paper that are particularly crucial for observations at higher latitudes, for coastal oceanography, for cryospheric studies and for hydrology. The paper starts with a general introduction followed by a section on Earth System Science including Ocean Dynamics, Sea Level, the Coastal Ocean, Hydrology, the Cryosphere and Polar Oceans and the “Green” Ocean, extending the frontier from biogeochemistry to marine ecology. Applications are described in a subsequent section, which covers Operational Oceanography, Weather, Hurricane Wave and Wind Forecasting, Climate projection. Instruments’ development and satellite missions’ evolutions are described in a fourth section. A fifth section covers the key observations that altimeters provide and their potential complements, from other Earth observation measurements to in situ data. Section 6 identifies the data and methods and provides some accuracy and resolution requirements for the wet tropospheric correction, the orbit and other geodetic requirements, the Mean Sea Surface, Geoid and Mean Dynamic Topography, Calibration and Validation, data accuracy, data access and handling (including the DUACS system). Section 7 brings a transversal view on scales, integration, artificial intelligence, and capacity building (education and training). Section 8 reviews the programmatic issues followed by a conclusion

    振動平板上の粘性流体層の不安定解析

    No full text
    振動する平板上におかれた,自由表面をもつ流体層の不安定問題が,運動方程式とエネルギー式を用いて調べられている.微小攪乱の成長率の議論から,主流が不安定化する条件が決定され,同時に,自由表面の微小変位が,主流を不安定化する原因であることが示されている.1. 緒言 / 2. 解析結果および議

    海洋混合層での波と平均流の相互作用に関する考察

    No full text
    海洋混合層で,慣性重力波の反射時に誘起された波と,風の応力で誘起された主流との相互作用を,一般化されたラグランジュ平均の方法を用いて議論している.循環と全エネルギーが,混合層内の乱流によって維持されていることが示される.ラディエーションストレスと角運動量フラックスおよびノイノルズストレスとの関連についても調べられている.1. 緒言 / 2. 解析および結

    海洋混合層からの慣性重力波の反射

    No full text
    海洋混合層からの慣性重力波の反射特性が調べられている。反射係数を調べることにより,通常の反射の他に,過剰反射,波の発生,および波の吸収についての条件が求められている.発生する波の角振動数は慣性振動数に近く,波長は混合層の厚さよりも長い.混合層と成層海洋との界面での密度差があるときには,密度差のないときに発生する波に比べて,角振動数は高くなり,波長は長くなる.混合層内の全エネルギ一方程式を考察することにより,主流および波によって誘起された平均流と全エネルギーフラックスとの間に関係がつき,過剰反射に対する判別式が得られた.鉛直方向の全エネルギーフラックスにより,過剰反射がおこるか否かが判別できる.1. 緒言 / 2. 基礎方程式 / 3. 波動場の特性 /  3.1. 上層の解 /  3.2. 下層の解 /  3.3. 反射条件 /  3.4. 波の伝播特性 / 4. 波によって誘起された平均場の特性 / 5. 結
    corecore