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A 500-year seasonally resolved delta O-18 and delta C-13, layer thickness and calcite aspect record from a speleothem deposited in the Han-sur-Lesse cave, Belgium

机译:500年季节性分解的三角洲O-18和三角洲C-13,沉积在比利时汉苏尔莱塞洞穴的蛇麻石的层厚和方解石长宽比记录

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摘要

Speleothem delta O-18 and delta C-13 signals enable climate reconstructions at high resolution. However, scarce decadal and seasonally resolved speleothem records are often difficult to interpret in terms of climate due to the multitude of factors that affect the proxy signals. In this paper, a fast-growing (up to 2 mm yr(-1)) seasonally laminated speleothem from the Han-sur-Lesse cave (Belgium) is analyzed for its delta O-18 and delta C-13 values, layer thickness and changes in calcite aspect. The studied record covers the period between AD 2001 and 1479 as indicated by layer counting and confirmed by 20 U / Th ages. The Proserpine proxies are seasonally biased and document drier (and colder) winters on multidecadal scales. Higher delta C-13 signals reflect increased prior calcite precipitation (PCP) and lower soil activity during drier (and colder) winters. Thinner layers and darker calcite relate to slower growth and exist during drier (and colder) winter periods. Exceptionally dry (and cold) winter periods occur from 1565 to 1610, at 1730, from 1770 to 1800, from 1810 to 1860, and from 1880 to 1895 and correspond to exceptionally cold periods in historical and instrumental records as well as European winter temperature reconstructions. More relative climate variations, during which the four measured proxies vary independently and display lower amplitude variations, occur between 1479 and 1565, between 1610 and 1730, and between 1730 and 1770. The winters during the first and last periods are interpreted as relatively wetter (and warmer) and correspond to warmer periods in historical data and in winter temperature reconstructions in Europe. The winters in the period between 1610 and 1730 are interpreted as relatively drier (and cooler) and correspond to generally colder conditions in Europe. Interpretation of the seasonal variations in delta O-18 and delta C-13 signals differs from that on a decadal and multidecadal scale. Seasonal delta O-18 variations reflect cave air temperature variations and suggest a 2.5 A degrees C seasonality in cave air temperature during the two relatively wetter (and warmer) winter periods (1479-1565 and 1730-1770), which corresponds to the cave air temperature seasonality observed today. Between 1610 and 1730, the delta O-18 values suggest a 1.5 A degrees C seasonality in cave air temperature, indicating colder summer temperatures during this drier (and cooler) interval. The delta C-13 seasonality is driven by PCP and suggests generally lower PCP seasonal effects between 1479 and 1810 compared to today. A short interval of increased PCP seasonality occurs between 1600 and 1660, and reflects increased PCP in summer due to decreased winter recharge.
机译:Speleothem delta O-18和delta C-13信号可实现高分辨率的气候重建。然而,由于影响代理信号的多种因素,稀少的年代际和季节分解的鞘翅目记录通常很难在气候方面解释。在本文中,分析了来自Han-sur-Lesse洞穴(比利时)的快速生长的(高达2 mm yr(-1))季节性叠层的鞘石,其δO-18和δC-13值,层厚和方解石方面的变化。研究记录涵盖了公元2001年至1479年之间的时间,由层数表示并已通过20 U / Th年龄确认。 Proserpine代理受季节影响,并记录了数十年尺度下较干燥(和较冷)的冬天。较高的C-13信号反映在较干燥(和较冷)的冬季中,方解石的先前降水增加(PCP),土壤活动降低。较薄的层和较深的方解石与较慢的生长有关,并且存在于较干燥(和较冷)的冬季。 1565年至1610年,1730年,1770年至1800年,1810年至1860年以及1880年至1895年是异常干燥(寒冷)的冬季,对应于历史和仪器记录以及欧洲冬季温度重建的异常寒冷时期。在1479年至1565年之间,1610年至1730年之间以及1730年至1770年之间,气候相对变化较为剧烈,在此期间四个被测量的代理独立变化并显示出较低的振幅变化。和温暖),并与历史数据和欧洲冬季温度重建中的温暖时期相对应。 1610年至1730年之间的冬季被解释为相对较干燥(且较凉),并且对应于欧洲的总体较冷条件。对O-18和C-13三角洲信号的季节性变化的解释与十年和十年代尺度的解释不同。 O-18的季节性变化反映了洞穴的空气温度变化,并建议在两个相对较湿(且较温暖)的冬季(1479-1565和1730-1770)期间,洞穴的温度季节性为2.5 A摄氏度,这对应于洞穴的空气今天观察到的温度季节性变化。在1610至1730年之间,δO-18值表明洞穴空气温度为1.5 A摄氏度的季节性变化,这表明在此较干燥(且较凉)的时间间隔内,夏季温度较低。 C-13的季节性变化是由五氯苯酚驱动的,因此与今天相比,五氯苯酚在1479年至1810年之间的季节效应通常较低。 PCP季节变化的短暂间隔发生在1600和1660之间,反映了由于冬季补给量减少,夏季PCP增加。

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  • 来源
    《Climate of the past》 |2015年第6期|789-802|共14页
  • 作者单位

    Vrije Univ Brussel, Earth Syst Sci, B-1050 Brussels, Belgium;

    Vrije Univ Brussel, Earth Syst Sci, B-1050 Brussels, Belgium|Royal Belgian Inst Nat Sci, Geol Survey, Direct Earth & Hist Life, B-1000 Brussels, Belgium;

    Univ Liege, Dept Geol, AGEs, B-4000 Liege, Belgium;

    Univ Mons, Fac Polytech, B-7000 Mons, Belgium;

    Xi An Jiao Tong Univ, Inst Global Environm Change, Xian 710049, Peoples R China|Univ Minnesota, Dept Geol Sci, Minneapolis, MN 55455 USA;

    Univ Minnesota, Dept Geol Sci, Minneapolis, MN 55455 USA;

    Vrije Univ Brussel, Earth Syst Sci, B-1050 Brussels, Belgium;

    Vrije Univ Brussel, Earth Syst Sci, B-1050 Brussels, Belgium;

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