Autobiography: A 50-Year Quest for Understanding in Geoscience

IF 11.3 1区 地球科学 Q1 ASTRONOMY & ASTROPHYSICS Annual Review of Earth and Planetary Sciences Pub Date : 2024-07-23 DOI:10.1146/annurev-earth-040722-111915
Peter Molnar
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Abstract

Readers will be led down a random path from continental dynamics to paleoclimate. A key to understanding continental dynamics is recognizing that differences in gravitational potential energy per unit area between high and low terrain govern much of large-scale continental deformation. Removal of mantle lithosphere, not just crustal thickening, plays a crucial, but difficult-to-test, role in changes in surface elevation. Although measuring past surface heights remains a challenge, indications of such processes suggest that surface uplift associated with such removal can affect relative plate motion. Climate change, from a warmer to cooler climate, and associated changes in erosion and sedimentation introduce further complications to determining past elevations. The phenomena that led to such cooling include a number of possibilities, but I favor the emergence of islands in the Maritime continent, which transformed the Pacific Ocean from one with a warm eastern tropical Pacific, as during El Niño events, to the present-day La Niña–like background state. Teleconnections from the eastern tropical Pacific to Canada affect the duration of summers and the potential of high-latitude ice to accumulate. ▪Lateral gradients in gravitational potential energy per unit area (GPE), a force per unit length, govern large-scale continental dynamics.▪Removal of mantle lithosphere and thickening of crust raise GPE; knowledge of mean surface elevations provides a test of these processes.▪Climate change from a warmer to cooler climate and from one with less to more erosion can give the false impression of elevation change.▪Emergence of Indonesian islands, more rain over them, a stronger Walker Circulation, and cooler eastern Pacific may have led to ice ages.
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自传:地质科学 50 年的理解探索
读者将被带入一条从大陆动力学到古气候的随机路径。理解大陆动力学的关键在于认识到高地形和低地形之间单位面积重力势能的差异在很大程度上决定了大尺度大陆变形。地幔岩石圈的移除,而不仅仅是地壳的增厚,在地表高度变化中起着至关重要但又难以检验的作用。尽管测量过去的地表高度仍是一项挑战,但这种过程的迹象表明,与这种剥离相关的地表隆起会影响板块的相对运动。气候变化(气候由暖变冷)以及与之相关的侵蚀和沉积作用的变化为确定过去的海拔高度带来了更多的复杂因素。导致这种降温的现象有多种可能性,但我倾向于海上大陆岛屿的出现,它将太平洋从一个温暖的东热带太平洋(如厄尔尼诺现象期间)转变为今天类似拉尼娜现象的背景状态。从东热带太平洋到加拿大的远距离联系影响了夏季的持续时间和高纬度积冰的可能性。单位面积重力势能(GPE)的侧向梯度,即单位长度的力,支配着大尺度大陆动力学。印尼岛屿的崛起、其上空更多的降雨、更强的沃克环流以及更冷的东太平洋可能导致了冰期。
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来源期刊
Annual Review of Earth and Planetary Sciences
Annual Review of Earth and Planetary Sciences 地学天文-地球科学综合
CiteScore
25.10
自引率
0.00%
发文量
25
期刊介绍: Since its establishment in 1973, the Annual Review of Earth and Planetary Sciences has been dedicated to providing comprehensive coverage of advancements in the field. This esteemed publication examines various aspects of earth and planetary sciences, encompassing climate, environment, geological hazards, planet formation, and the evolution of life. To ensure wider accessibility, the latest volume of the journal has transitioned from a gated model to open access through the Subscribe to Open program by Annual Reviews. Consequently, all articles published in this volume are now available under the Creative Commons Attribution (CC BY) license.
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