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991.
A number of studies have revealed that the climate in the eastern margin of the Tibetan Plateau and Northeast China is sensitive
to postglacial changes. Unfortunately, the link of the past climate evolution between the two regions is not well understood.
In this study, two cores are analyzed to determine this link directly. The high-resolution n-alkanol distribution patterns from two typical peat sequences covering the past 16,000 cal years in the northeastern margin
of the Tibetan Plateau and Northeast China, respectively, are closely examined by gas chromatograph–mass spectrometry analysis.
In combination with other palaeoclimatic proxies, it is proposed that the n-alkanol average chain length and (C22 + C24)/(C26 + C28) ratio could reflect past climate changes in the two peat sequences. The n-alkanol proxies reveal several climatic intervals in the period from the last deglaciation through the Holocene. A comparison
of n-alkanol records between the northeastern margin of the Tibetan Plateau and Northeast China indicates that the start and end
of the warm Holocene Optimum differed at the two locations. The spatially asynchronous pattern of climatic change is possibly
a result of different responses to change in solar radiation. The evolution of the Holocene paleoclimate is more consistent
with changes in Northern Hemisphere solar radiation in Northeast China than on the Tibetan Plateau. The Holocene Optimum began
and terminated earlier in Northeast China than in the northeastern margin of the Tibetan Plateau. Thus, the two n-alkanol proxies provide valuable insights into the regional Holocene climate and local environmental conditions. 相似文献
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Mianping Zheng 《Environmental Earth Sciences》2011,64(6):1537-1546
The Chinese salt lake mega-region is controlled by an arid and semi-arid climate, and modern salt lakes are mainly distributed
within areas with mean annual precipitation <500 mm. According to their geomorphological features, structural conditions,
and material composition, salt lakes in China can be broadly divided into four regions. The degrees of exploitation and utilization
of these salt lakes differ because these four regions have experienced different climatic changes and structural activities
and have had their own characteristics of salt lake evolution since the beginning of the Quaternary. The salt lakes in these
regions have different scales, economic value, and technical conditions for traffic. Among others, Jarantai (Jartai) Salt
Lake and Yuncheng Salt Lake are better in terms of comprehensive utilization and environmental protection, and the potash
salt lakes represented by Qarhan are most important in terms of exploitation. At present, there exist many environmental problems
in the salt lake regions of China, especially in remote, small and medium-sized basins, where abusive or wasteful mining,
low recovery, and mining of a single saline mineral have caused impoverishment and large quantities of byproducts. Furthermore,
climatic environmental factors can also cause significant changes of salt lake environment. Since 1987, against the background
of global warming, the climate in the northwest salt lake region has turned warm and wet, and lakes have exhibited a tendency
for expansion and rise, whereas in the east of the region, the climate has remained in a warm dry stage, lake levels have
dropped, and salt lakes have become desertified. With the implementation of the strategy of building an environmentally friendly
society in China, increasing attention is being paid to eco-environmental protection. It is suggested that experience and
advanced techniques in terms of comprehensive utilization, overall development, and environmental protection of salt lakes
at home and abroad be further developed to strengthen observation and monitoring of environmental changes of salt lakes and
build an environmentally friendly, great salt lake industry. 相似文献
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