干旱区研究 ›› 2022, Vol. 39 ›› Issue (1): 30-40.doi: 10.13866/j.azr.2022.01.04
收稿日期:
2021-06-02
修回日期:
2021-10-14
出版日期:
2022-01-15
发布日期:
2022-01-24
通讯作者:
张东良
作者简介:
刘奇(1995-),男,硕士研究生,主要研究泥炭记录的全新世气候变化. E-mail: 基金资助:
LIU Qi1(),XU Zhonglin1,ZHANG Dongliang2,3,4()
Received:
2021-06-02
Revised:
2021-10-14
Online:
2022-01-15
Published:
2022-01-24
Contact:
Dongliang ZHANG
摘要:
常年受西风影响的阿尔泰山是古气候研究的重点区域之一。为探究将阿尔泰山泥炭植物碳和氧同位素(δ13Ccell和δ18Ocell)的现代过程研究直接运用到百年或千年尺度古气候重建中的合理性,在可靠的210Pb、137Cs测年基础上,分析了1962—2017年哈巴河气象站冷季(10月—次年4月)、暖季(5—9月)以及年尺度上气温、降水量、相对湿度与黑阳坡泥炭δ13Ccell、δ18Ocell的相关关系。结果显示:黑阳坡泥炭δ13Ccell与5—8月相对湿度显著负相关(r=-0.52,P<0.05),δ18Ocell与11月—次年1月降水量显著正相关(r=0.49,P<0.05),黑阳坡泥炭δ13Ccell、δ18Ocell变化可以看作分别是5—8月相对湿度和11月—次年1月降水量的代用指标。本研究为阿尔泰山泥炭α-纤维素同位素记录的古气候解译提供了多年尺度的数据支撑,不仅丰富了我国关于泥炭地同位素现代器测的过程研究,也对研究区利用泥炭纤维素同位素开展长时间尺度上古气候定量化研究具有重要意义。
刘奇,许仲林,张东良. 阿尔泰山泥炭α-纤维素碳和氧同位素的古环境意义——以黑阳坡泥炭为例[J]. 干旱区研究, 2022, 39(1): 30-40.
LIU Qi,XU Zhonglin,ZHANG Dongliang. Paleoenvironmental implications of α-cellulose carbon and oxygen isotopes from Heiyangpo peatland in the Altai Mountains[J]. Arid Zone Research, 2022, 39(1): 30-40.
[1] |
Yu Z C, Loisel J, Brosseau D P, et al. Global peatland dynamics since the last glacial maximum[J]. Geophysical Research Letters, 2010, 37(13): L13402, doi: 10.1029/2010GL043584.
doi: 10.1029/2010GL043584 |
[2] |
Woodland W A, Charman D J, Sims P C. Quantitative estimates of water tables and soil moisture in Holocene peatlands from testate amoebae[J]. The Holocene, 1998, 8(3): 261-273.
doi: 10.1191/095968398667004497 |
[3] |
Barber K E, Maddy D, Rose N, et al. Replicated proxy-climate signals over the last 2000 yr from two distant UK peat bogs: New evidence for regional palaeoclimate teleconnections[J]. Quaternary Science Reviews, 2000, 19(6): 481-487.
doi: 10.1016/S0277-3791(99)00102-X |
[4] |
Turney C S M, Kershaw A P, Clemens S C, et al. Millennial and orbital variations of El Niño/Southern Oscillation and high-latitude climate in the last glacial period[J]. Nature, 2004, 428: 306-310.
doi: 10.1038/nature02386 |
[5] |
Brenninkmeijer C A M, Vangeel B, Mook W G. Variations in the D/H and18O/16O ratios in cellulose extracted from a peat bog core[J]. Earth and Planetary Science Letters, 1982, 61(2): 283-290.
doi: 10.1016/0012-821X(82)90059-0 |
[6] |
Hong Y T, Wang Z G, Jiang H B, et al. A 6000-year record of changes in drought and precipitation in northeastern China based on a δ13C time series from peat cellulose[J]. Earth and Planetary Science Letters, 2001, 185(1-2): 111-119.
doi: 10.1016/S0012-821X(00)00367-8 |
[7] | 黄超, 李英红, 李云霞, 等. 我国泥炭纤维素同位素记录的古气候变化研究进展[J]. 海洋地质与第四纪地质, 2013, 33(4): 113-124. |
[Huang Chao, Li Yinghong, Li Yunxia, et al. A review of paleoclimatic changes in China based on peat cellulose isotopic records[J]. Marine Geology & Quaternary Geology, 2013, 33(4): 113-124. ] | |
[8] | 张东良, 杨运鹏, 兰波. 泥炭植物碳和氧同位素研究进展[J]. 湿地科学, 2016, 14(6): 923-930. |
[Zhang Dongliang, Yang Yunpeng, Lan Bo. Advance in carbon and oxygen isotopes of plants in peatlands[J]. Wetland Science, 2016, 14(6): 923-930. ] | |
[9] | 郭海春, 田怡苹, 魏士凯, 等. 我国全新世泥炭α纤维素稳定碳同位素记录的对比与分析[J]. 第四纪研究, 2020, 40(5): 1136-1144. |
[Guo Haichun, Tian Yiping, Wei Shikai, et al. Comparison and analyses of the Holocene peat α-cellulose stable carbon isotopic records from China[J]. Quaternary Sciences, 2020, 40(5): 1136-1144. ] | |
[10] |
Hong Y T, Hong B, Lin Q H, et al. Correlation between Indian Ocean summer monsoon and North Atlantic climate during the Holocene[J]. Earth and Planetary Science Letters, 2003, 211(3-4): 371-380.
doi: 10.1016/S0012-821X(03)00207-3 |
[11] |
Hong Y T, Hong B, Lin Q H, et al. Inverse phase oscillations between the East Asia and India Ocean summer monsoons during the last 12000 years and paleo-El Niño[J]. Earth and Planetary Science Letters, 2005, 231(3-4): 337-346.
doi: 10.1016/j.epsl.2004.12.025 |
[12] |
Hong B, Hong Y T, Lin Q H, et al. Anti-phase oscillation of Asian monsoons during the Younger Dryas period: Evidence from peat cellulose δ13C of Hani, Northeast China[J]. Palaeogeography, Palaeoclimatology, Palaeoecology, 2010, 297(1): 214-222.
doi: 10.1016/j.palaeo.2010.08.004 |
[13] |
Hong B, Gasse F, Uchida M, et al. Increasing summer rainfall in arid eastern-Central Asia over the past 8500 years[J]. Scientific Reports, 2014, 4(1): 5279, doi: 10.1038/srep05279.
doi: 10.1038/srep05279 |
[14] |
Amesbury M J, Charman D J, Newnham R M, et al. Carbon stable isotopes as a palaeoclimate proxy in vascular plant dominated peatlands[J]. Geochimica et Cosmochimica Acta, 2015, 164: 161-174.
doi: 10.1016/j.gca.2015.05.011 |
[15] | 洪冰. 中国中部全新世气候变化的泥炭同位素记录——以湖北神农架大九湖为例[D]. 广州: 中国科学院地球化学研究所, 2009. |
[Hong Bing. Holocene Climatic Dynamics Recorded by Peat Isotopic in the Central of China: A Case Study from Dajiuhu Lake, Shengnongjia, Hubei[D]. Guangzhou: Institute of Geochemistry, Chinese Academy of Sciences, 2009. ] | |
[16] |
Amesbury M J, Charman D J, Newnham R M, et al. Can oxygen stable isotopes be used to track precipitation moisture source in vascular plant-dominant peatlands?[J]. Earth and Planetary Science Letters, 2015, 430(15): 149-159.
doi: 10.1016/j.epsl.2015.08.015 |
[17] |
Mao D H, Wang Z M, Du B J, et al. National wetland mapping in China: A new product resulting from object-based and hierarchical classification of Landsat 8 OLI images[J]. ISPRS Journal of Photogrammetry and Remote Sensing, 2020, 164: 11-25.
doi: 10.1016/j.isprsjprs.2020.03.020 |
[18] |
Hong Y T, Jiang H B, Liu T S, et al. Response of climate to solar forcing recorded in a 6000-year δ18O time-series of Chinese peat cellulose[J]. The Holocene, 2000, 10(1): 1-7.
doi: 10.1191/095968300669856361 |
[19] |
Hong Y T, Hong B, Lin Q H, et al. Synchronous climate anomalies in the western North Pacific and North Atlantic regions during the last 14000 years[J]. Quaternary Science Reviews, 2009, 28(9-10): 840-849.
doi: 10.1016/j.quascirev.2008.11.011 |
[20] |
Liu J L, Chen Y, Ma L M, et al. The δ13C of cellulose from modern plants and its responses to the atmosphere: From the peatland records of Dajiuhu, China[J]. The Holocene, 2017, 28(3): 408-414.
doi: 10.1177/0959683617729444 |
[21] |
Liu J L, Chen Y, Mao Y N, et al. Decrypting stable oxygen isotope variability in modern plants of the Dajiuhu peatland from Hubei Province, China: Implications for palaecology and palaeoenvironments[J]. Palaeogeography, Palaeoclimatology, Palaeoecology, 2020, 556: 109910, doi: 10.1016/j.palaeo.2020.109910.
doi: 10.1016/j.palaeo.2020.109910 |
[22] |
Rao Z G, Huang C, Xie L H, et al. Long-term summer warming trend during the Holocene in central Asia indicated by alpine peat α-cellulose δ13C record[J]. Quaternary Science Reviews, 2019, 203: 56-67.
doi: 10.1016/j.quascirev.2018.11.010 |
[23] |
Rao Z G, Shi F X, Li Y X, et al. Long-term winter/summer warming trends during the Holocene revealed by α-cellulose δ18O/δ13C records from an alpine peat core from central Asia[J]. Quaternary Science Reviews, 2020, 232: 106217, doi: 10.1016/j.quascirev.2020.106217.
doi: 10.1016/j.quascirev.2020.106217 |
[24] |
Wang W, Zhang D L. Holocene vegetation evolution and climatic dynamics inferred from an ombrotrophic peat sequence in the southern Altai Mountains within China[J]. Global and Planetary Change, 2019, 179: 10-22.
doi: 10.1016/j.gloplacha.2019.05.003 |
[25] |
Zhang D L, Chen X, Li Y M, et al. Holocene vegetation dynamics and associated climate changes in the Altai Mountains of the Arid Central Asia[J]. Palaeogeography, Palaeoclimatology, Palaeoecology, 2020, 550: 109744, doi: 10.1016/j.palaeo.2020.109744.
doi: 10.1016/j.palaeo.2020.109744 |
[26] | 张东良, 李寅波, 杨运鹏, 等. 阿尔泰山北部过去2000 a来的气候记录集成[J]. 干旱区研究, 2019, 36(1): 176-185. |
[Zhang Dongliang, Li Yinbo, Yang Yunpeng, et al. Synthesized climate change in the north Altay Mountains in the past 2000 years[J]. Arid Zone Research, 2019, 36(1): 176-185. ] | |
[27] | 张彦, 马学慧, 刘兴土, 等. 新疆阿尔泰山区全新世泥炭丘形态、发育过程与泥炭堆积速率初探[J]. 第四纪研究, 2018, 38(5): 1221-1232. |
[Zhang Yan, Ma Xuehui, Liu Xingtu, et al. Priliminary study on morphology, development process and peat accumulation rate of palsas during the Holocene in the Altai Mountains, northern Xinjiang Autonomous Region, Northwest China[J]. Quaternary Sciences, 2018, 38(5): 1221-1232. ] | |
[28] |
Aizen E M, Aizen V B, Melack J M, et al. Precipitation and atmospheric circulation patterns at mid-latitudes of Asia[J]. International Journal of Climatology, 2001, 21(5): 535-556.
doi: 10.1002/(ISSN)1097-0088 |
[29] |
Meeker L D, Mayewski P A. A 1400-year high-resolution record of atmospheric circulation over the North Atlantic and Asia[J]. The Holocene, 2002, 12(3): 257-266.
doi: 10.1191/0959683602hl542ft |
[30] |
Sun C, Li J P, Zhao S. Remote influence of Atlantic multidecadal variability on Siberian warm season precipitation[J]. Scientific Reports, 2015, 5: 16853, doi: 10.1038/srep16853.
doi: 10.1038/srep16853 |
[31] | 努尔巴依·阿布都沙力克, 叶勒波拉提·托流汉, 孔琼英. 阿勒泰地区沼泽湿地调查研究[J]. 乌鲁木齐职业大学学报, 2008, 17(1): 8-13. |
[Nurbay Abdusalih, Erbolat Tolewhan, Kong Qiongying. Swamp wetland research in Altay Prefecture[J]. Journal of Urumqi Vocational University, 2008, 17(1): 8-13. ] | |
[32] | 于苏云江·吗米提敏. 中国阿尔泰山泥炭湿地动态变化及修复对策研究[D]. 乌鲁木齐: 新疆大学, 2011. |
[Yu suyun jiang Mamitimin. Study on Peatland Change and Restoration Strategies in the Altai Mountain, NW China[D]. Urumqi: Xinjiang University, 2011. ] | |
[33] |
Zhang D L, Yang Y P, Lan B. Peat humification-and δ13Ccellulose-recorded warm-season moisture variations during the past 500 years in the southern Altai Mountains within northern Xinjiang of China[J]. Journal of Mountain Science, 2017, 14(11): 2200-2211.
doi: 10.1007/s11629-017-4538-1 |
[34] | 兰波. 过去2000年新疆北部的湿度变化及其控制机理[D]. 乌鲁木齐: 中国科学院新疆生态与地理研究所, 2017. |
[Lan Bo. Moisture Variations in Northern Xinjiang and the Modulating Mechanisms during Past 2000 Years[D]. Urumqi: Xinjiang Institute of Ecology and Geography, Chinese Academy of Sciences, 2017. ] | |
[35] |
Wu J W, Xiao X Y, Sun J. Distribution and budget of 137Cs in the China Seas[J]. Scientific Reports, 2020, 10: 8795, doi: 10.1038/s41598-020-65280-x.
doi: 10.1038/s41598-020-65280-x |
[36] |
Sanchez-Cabeza J A, Ruiz-Fernández A C. 210Pb sediment radiochronology: An integrated formulation and classification of dating models[J]. Geochimica Et Cosmochimica Acta, 2012, 82: 183-200.
doi: 10.1016/j.gca.2010.12.024 |
[37] |
Lan J H, Wang T L, Chawchai S, et al. Time marker of 137Cs fallout maximum in lake sediments of Northwest China[J]. Quaternary Science Reviews, 241: 106413, doi: 10.1016/j.quascirev.2020.106413.
doi: 10.1016/j.quascirev.2020.106413 |
[38] | 黄超, 李英红, 郭文康, 等. 泥炭样品当中α-纤维素提取的实验方法探讨[J]. 干旱区地理, 2015, 38(4): 728-734. |
[Huang Chao, Li Yinghong, Guo Wenkang, et al. Improved peat α-cellulose extraction procedure[J]. Arid Land Geography, 2015, 38(4): 728-734. ] | |
[39] |
Sidorova O V, Saurer M, Myglan V S, et al. A multi-proxy approach for revealing recent climatic changes in the Russian Altai[J]. Climate Dynamics, 2012, 38(1-2): 175-188.
doi: 10.1007/s00382-010-0989-6 |
[40] |
McCarroll D, Loader N J. Stable isotopes in tree rings[J]. Quaternary Science Reviews, 2004, 23(7-8): 771-801.
doi: 10.1016/j.quascirev.2003.06.017 |
[41] |
Tillman P K, Holzkamper S, Andersen T J, et al. Stable isotopes in Sphagnum fuscum peat as Late-Holocene climate proxies in northeastern European Russia[J]. The Holocene, 2013, 23(10): 1381-1390.
doi: 10.1177/0959683613489580 |
[42] |
Ménot G, Burns S J. Carbon isotopes in ombrogenic peat bog plants as climatic indicators: Calibration from an altitudinal transect in Switzerland[J]. Organic Geochemistry, 2001, 32(2): 233-245.
doi: 10.1016/S0146-6380(00)00170-4 |
[43] |
Zhang D L, Feng Z D, Yang Y P, et al. Peat δ13Ccelluose-recorded wetting trend during the past 8000 years in the southern Altai Mountains, northern Xinjiang, NW China[J]. Journal of Asian Earth Sciences, 2018, 156: 174-179.
doi: 10.1016/j.jseaes.2018.01.029 |
[44] |
Xu H, Zhou K E, Lan J H, et al. Arid Central Asia saw mid-Holocene drought[J]. Geology, 2019, 47(3): 255-258.
doi: 10.1130/G45686.1 |
[45] |
Hong B, Gasse F, Uchida M, et al. Increasing summer rainfall in arid eastern-Central Asia over the past 8500 years[J]. Scientific Repoets, 2014, 4: 5279, doi: 10.1038/srep05279.
doi: 10.1038/srep05279 |
[46] |
Chen F H, Yu Z C, Yang M L, et al. Holocene moisture evolution in arid central Asia and its out-of-phase relationship with Asian monsoon history[J]. Quaternary Science Reviews, 2008, 27(3-4): 351-364.
doi: 10.1016/j.quascirev.2007.10.017 |
[47] | Ran M, Feng Z D. Holocene moisture variations across China and driving mechanisms: A synjournal of climatic records[J]. Quaternary International, 2013, 313-314: 179-193. |
[48] |
Zhang D L, Feng Z D. Holocene climate variations in the Altai Mountains and the surrounding areas: A synjournal of pollen records[J]. Earth-Science Reviews, 2018, 185: 847-869.
doi: 10.1016/j.earscirev.2018.08.007 |
[49] | 张瑞波, 尚华明, 袁玉江, 等. 基于树轮δ13C的阿尔泰山南坡夏季降水变化分析[J]. 中国沙漠, 2015, 35(1): 106-112. |
[Zhang Ruibo, Shang Huaming, Yuan Yujiang, et al. Summer precipitation variation in the southern slope of the Altai Mountains recorded by tree-ring δ 13C[J]. Journal of Desert Research, 2015, 35(1): 106-112. ] | |
[50] |
Sidorova O V, Siegwolf R T W, Myglan V S, et al. The application of tree-rings and stable isotopes for reconstructions of climate conditions in the Russian Altai[J]. Climatic Change, 2013, 120(1): 153-167.
doi: 10.1007/s10584-013-0805-5 |
[51] | White J. W. C. Stable hydrogen isotope ratios in plants: A review of current theory and some potential applications[J]. Stable Isotopes in Ecological Research, 1989, 68: 142-162. |
[52] |
Shi F X, Rao Z G, Li Y X, et al. Precipitation δ18O recorded by the α-cellulose δ18O of plant residues in surface soils: evidence from a broad environment gradient in inland China[J]. Global Biogeochemical Cycles, 2019, 33(11): 1440-1468.
doi: 10.1029/2019GB006418 |
[53] |
Shi F X, Rao Z G, Cao J T, et al. Meltwater is the dominant water source controlling α-cellulose δ18O in a vascular-plant-dominated alpine peatland in the Altai Mountains, Central Asia[J]. Journal of Hydrology, 2019, 572: 192-205.
doi: 10.1016/j.jhydrol.2019.02.030 |
[54] | 刘晓宏, 徐国保, 王文志, 等. 树轮稳定同位素记录: 进展、问题及展望[J]. 第四纪研究, 2015, 35(5): 1245-1260. |
[Liu Xiaohong, Xu Guobao, Wang Wenzhi, et al. Tree-ring stable isotopes proxies: Progress, problems and prospects[J]. Quaternary Sciences, 2015, 35(5): 1245-1260. ] |
[1] | 李虹, 李忠勤, 陈普晨, 彭加加. 近20 a新疆阿尔泰山积雪时空变化及其影响因素[J]. 干旱区研究, 2023, 40(7): 1040-1051. |
[2] | 徐俏,赵万羽,魏岩,叶茂,赵新风. 阿尔泰山东部林区森林种群结构和空间分布格局[J]. 干旱区研究, 2022, 39(6): 1885-1895. |
[3] | 买买提明·苏来曼,艾拉努尔·卡哈尔,梁灵炜,马木尔别克·马看,王鹏军. 光藓科植物在中国新疆的发现[J]. 干旱区研究, 2022, 39(6): 1852-1855. |
[4] | 张东良. 全新世西风模态下中亚干旱区孢粉类型多样性变化特征——以阿尔泰山为例[J]. 干旱区研究, 2022, 39(3): 667-675. |
[5] | 刘蕊, 王勇辉, 姜盛夏, 张瑞波, 秦莉, Bulkajyr T.Mambetov, Nurzhan Kelgenbayev, Daniyar Dosmanbetov, Bagila Maisupova, 张同文. 哈萨克斯坦阿尔泰山树木径向生长及其对气候要素的响应 [J]. 干旱区研究, 2019, 36(3): 723-733. |
[6] | 张东良, 李寅波, 杨运鹏, 兰波. 阿尔泰山北部过去2 000 a来的气候记录集成 [J]. 干旱区研究, 2019, 36(1): 176-185. |
[7] | 张小娟,王军,黄观,陈勇航,杨莲梅,李红军,李曼,郑宁. 新疆3大山区云中液态水时空分布特征[J]. 干旱区研究, 2018, 35(4): 846-854. |
[8] | 吴敬禄, 曾海鳌, 马龙, 康剑. 新疆阿尔泰山区白湖水质水量基本特征[J]. 干旱区研究, 2013, 30(1): 5-9. |
[9] | 张瑞波, 袁玉江, 魏文寿, 尚华明, 喻树龙, 张同文, 陈峰, 范子昂, 秦莉. 西伯利亚落叶松树轮稳定碳同位素对气候的响应[J]. 干旱区研究, 2012, 29(2): 328-334. |
[10] | 李利平, 安尼瓦尔·买买提, 郭兆迪, 海鹰, 唐志尧. 新疆山地针叶林植物物种组成与丰富度研究[J]. 干旱区研究, 2011, 28(1): 40-46. |
|