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    Is Weather Chaotic? Coexistence of Chaos and Order within a Generalized Lorenz Model

    Source: Bulletin of the American Meteorological Society:;2020:;volume( ):;issue: -::page 1
    Author:
    Shen, Bo-Wen;Pielke, Roger A., Sr.;Zeng, Xubin;Baik, Jong-Jin;Faghih-Naini, Sara;Cui, Jialin;Atlas, Robert
    DOI: 10.1175/BAMS-D-19-0165.1
    Publisher: American Meteorological Society
    Abstract: By revealing two kinds of attractor coexistence within Lorenz models, we suggest that the entirety of weather possesses a dual nature of chaos and order with distinct predictability.Over 50 years since Lorenz’s 1963 study and a follow-up presentation in 1972, the statement ``weather is chaotic’’ has been well accepted. Such a view turns our attention from regularity associated with Laplace’s view of determinism to irregularity associated with chaos. In contrast to single type chaotic solutions, recent studies using a generalized Lorenz model (GLM) have focused on the coexistence of chaotic and regular solutions that appear within the same model using the same modeling configurations but different initial conditions. The results, with attractor coexistence, suggest that the entirety of weather possesses a dual nature of chaos and order with distinct predictability. In this study, based on the GLM, we illustrate the following two mechanisms that may enable or modulate two kinds of attractor coexistence and, thus, contribute to distinct predictability: (1) the aggregated negative feedback of small-scale convective processes that can produce stable non-trivial equilibrium points and, thus, enable the appearance of stable steady-state solutions and their coexistence with chaotic or nonlinear oscillatory solutions, referred to as the 1st and 2nd kinds of attractor coexistence; and (2) the modulation of large-scale time varying forcing (heating) that can determine (or modulate) the alternative appearance of two kinds of attractor coexistence. Based on our results, we then discuss new opportunities and challenges in predictability research with the aim of improving predictions at extended-range time scales, as well as sub-seasonal to seasonal time scales.
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      Is Weather Chaotic? Coexistence of Chaos and Order within a Generalized Lorenz Model

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    contributor authorShen, Bo-Wen;Pielke, Roger A., Sr.;Zeng, Xubin;Baik, Jong-Jin;Faghih-Naini, Sara;Cui, Jialin;Atlas, Robert
    date accessioned2022-01-30T18:12:09Z
    date available2022-01-30T18:12:09Z
    date copyright9/28/2020 12:00:00 AM
    date issued2020
    identifier issn0003-0007
    identifier otherbamsd190165.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4264659
    description abstractBy revealing two kinds of attractor coexistence within Lorenz models, we suggest that the entirety of weather possesses a dual nature of chaos and order with distinct predictability.Over 50 years since Lorenz’s 1963 study and a follow-up presentation in 1972, the statement ``weather is chaotic’’ has been well accepted. Such a view turns our attention from regularity associated with Laplace’s view of determinism to irregularity associated with chaos. In contrast to single type chaotic solutions, recent studies using a generalized Lorenz model (GLM) have focused on the coexistence of chaotic and regular solutions that appear within the same model using the same modeling configurations but different initial conditions. The results, with attractor coexistence, suggest that the entirety of weather possesses a dual nature of chaos and order with distinct predictability. In this study, based on the GLM, we illustrate the following two mechanisms that may enable or modulate two kinds of attractor coexistence and, thus, contribute to distinct predictability: (1) the aggregated negative feedback of small-scale convective processes that can produce stable non-trivial equilibrium points and, thus, enable the appearance of stable steady-state solutions and their coexistence with chaotic or nonlinear oscillatory solutions, referred to as the 1st and 2nd kinds of attractor coexistence; and (2) the modulation of large-scale time varying forcing (heating) that can determine (or modulate) the alternative appearance of two kinds of attractor coexistence. Based on our results, we then discuss new opportunities and challenges in predictability research with the aim of improving predictions at extended-range time scales, as well as sub-seasonal to seasonal time scales.
    publisherAmerican Meteorological Society
    titleIs Weather Chaotic? Coexistence of Chaos and Order within a Generalized Lorenz Model
    typeJournal Paper
    journal titleBulletin of the American Meteorological Society
    identifier doi10.1175/BAMS-D-19-0165.1
    journal fristpage1
    journal lastpage28
    treeBulletin of the American Meteorological Society:;2020:;volume( ):;issue: -
    contenttypeFulltext
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