Seasonal Evolution of Stable Thermal Stratification in Central Area of Lake Ladoga

Q3 Environmental Science
Mikhail Naumenko, Vadim Guzivaty
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引用次数: 0

Abstract

The complete climatic courses of the parameters of stable thermal stratification for the central part of Lake Ladoga, the largest European lake, are presented on the basis of empirical relationships, taking into account the physical processes governing water temperature variations. For the first time, the seasonal cycle of the surface water temperature, the temperature and the depth of the thermocline, and the hypolimnion temperature are calculated using the vertical profiles of the temperature obtained from the central area of Lake Ladoga. Temperature data are used for the period of in situ observations from 1897 to the present. The proposed functional forms of the temporal temperature cycle and the course of thermocline’s boundaries deepening are useful for examination and simulation of the heat vertical transport from air to water. Approximation curves for the parameters of heating and cooling periods were developed with high significant determination coefficients. Time dependencies of the climatic rates of change in water temperature and the depth of the thermocline boundaries were determined from the onset of stable stratification to its dissipation. The highest rate of water temperature change in the heating stage takes place in late June–early July, which at the water surface, is 0.32 °C/day, while in the thermocline layer, it is 0.18 °C/day. The peak velocity during the cooling stage at the surface occurs in late August–early September and is 0.14 °C/day, whereas in the thermocline, it is 0.08 °C/day and takes place between September and early October. During the period of heating, the deepening parameters of the thermocline layer do not fluctuate very much, only within the range of 0.1–0.3 m/day. During the cooling period, under the influence of free convection, rates increase drastically. The maximum rates of deepening during the period of full autumn mixing reach 1.8 m/day. When the autumn overturn occurs, the epilimnion thickness equals the bottom depth, and the bottom temperature reaches its maximum during the annual cycle. Climatic norms of the stratification parameters against which it is necessary to assess climate change are calculated.
拉多加湖中部地区稳定热分层的季节演变
考虑到控制水温变化的物理过程,在经验关系的基础上,给出了欧洲最大湖泊拉多加湖中部稳定热分层参数的完整气候过程。首次利用拉多加湖中心区温度的垂直剖面图,计算了地表水温度、温跃层温度和深度以及低阴离子温度的季节循环。温度数据用于从1897年至今的现场观测期间。本文提出的时间温度循环的函数形式和温跃层边界加深的过程,有助于研究和模拟热从空气到水的垂直输送。给出了具有高显著决定系数的加热和冷却周期参数近似曲线。从稳定分层开始到分层消散,确定了水温和温跃层边界深度的气候变化率的时间依赖性。升温阶段水温变化速率最高的时段是6月下旬至7月上旬,水面温度变化速率为0.32℃/d,而温跃层温度变化速率为0.18℃/d。地表降温阶段的峰值出现在8月下旬至9月上旬,为0.14°C/d,而温跃层的峰值出现在9月至10月初,为0.08°C/d。增温期间,温跃层加深参数波动不大,仅在0.1 ~ 0.3 m/d范围内。在冷却期间,在自由对流的影响下,速率急剧增加。深秋拌合期的最大深度达到1.8 m/d。当秋季翻转发生时,表层厚度等于底部深度,底部温度在年循环中达到最大值。计算了评估气候变化所必需的分层参数的气候规范。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Limnological Review
Limnological Review Environmental Science-Ecology
CiteScore
1.60
自引率
0.00%
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0
审稿时长
16 weeks
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