[1] 鲍庆中,张长捷,吴之理,等. 2007. 内蒙古白音高勒地区石炭纪石英闪长岩SHRIMP锆石U-Pb年代学及其意义[J]. 吉林大学学报(地球科学版),37(1):15-23.

Bao Qingzhong, Zhang Changjie, Wu Zhili, et al. 2007. SHRIMP U-Pb zircon geochronology of a Carboniferous quartz-diorite in Baiyingaole area, Inner Mongolia and its implications[J]. Journal of Jilin University (Earth Science Edition), 37(1): 15-23.
[2] 常西玲,郭进京,常璐璐,等. 2023. 西秦岭北缘渐新世砾岩沉积特征及沉积环境:渐新世—中新世盆地构造环境约束[J]. 沉积学报,41(5):1495-1511.

Chang Xiling, Guo Jinjing, Chang Lulu, et al. 2023. Characteristics of Oligocene conglomerates and their sedimentary environment in the northern margin of west Qinling: Constraints on the tectonic setting of the Oligocene-Miocene basin[J]. Acta Sedimentologica Sinica, 41(5): 1495-1511.
[3] 陈雷,孙景贵,陈行时,等. 2009. 张广才岭东侧英城子金矿区花岗岩锆石U-Pb年龄及地质意义[J]. 地质学报,83(9):1327-1334.

Chen Lei, Sun Jinggui, Chen Xingshi, et al. 2009. Zircon LA-ICP MS U-Pb dating of granite from the Yingchengzi gold deposit area in the eastern Zhangguangcailing area and its geological significance[J]. Acta Geologica Sinica, 83(9): 1327-1334.
[4] 董策,周建波. 2012. 内蒙古东北部中二叠统哲斯组砂岩地球化学特征分析及物源区示踪[J]. 岩石矿物学杂志,31(5):663-673.

Dong Ce, Zhou Jianbo. 2012. Geochemical characteristics analysis and provenance tracing of sandstone in Middle Permian Zhesi Formation, northeast Inner Mongolia[J]. Acta Petrologica et Mineralogica, 31(5): 663-673.
[5] 董玉. 2018. 佳木斯地块与松嫩—张广才岭地块拼合历史:年代学与地球化学证据[D]. 长春:吉林大学.

Dong Yu. 2018. Convergence history of the Jiamusi and Songnen-Zhangguangcai range massifs: Geochronological and geochemical evidence[D]. Chang-chun: Jilin University.
[6] 冯连君,储雪蕾,张启锐,等. 2003. 化学蚀变指数(CIA)及其在新元古代碎屑岩中的应用[J]. 地学前缘,10(4):539-544.

Feng Lianjun, Chu Xuelei, Zhang Qirui, et al. 2003. CIA (chemical index of alteration)and its applications in the Neoproterozoic clastic rocks[J]. Earth Science Frontiers, 10(4): 539-544.
[7] 傅寒晶,简星,梁杭海. 2021. 硅酸盐化学风化强度评估的沉积物指标与方法研究进展[J]. 古地理学报,23(6):1192-1209.

Fu Hanjing, Jian Xing, Liang Hanghai. 2021. Research progress of sediment indicators and methods for evaluation of silicate chemical weathering intensity[J]. Journal of Palaeogeography, 23(6): 1192-1209.
[8] 葛文春,吴福元,周长勇,等. 2007. 兴蒙造山带东段斑岩型Cu,Mo矿床成矿时代及其地球动力学意义[J]. 科学通报,52(20):2407-2417.

Ge Wenchun, Wu Fuyuan, Zhou Changyong, et al. 2007. Porphyry Cu-Mo deposits in the eastern Xing’an-Mongolian Orogenic Belt: Mineralization ages and their geodynamic implications[J]. Chinese Science Bulletin, 52(20): 2407-2417.
[9] 呼其图,关平,王大华,等. 2024. 柴达木盆地北缘东段中侏罗统物源分析:来自重矿物、元素地球化学及碎屑锆石年代学的证据[J]. 沉积学报,42(2):466-485.

Hu Qitu, Guan Ping, Wang Dahua, et al. 2024. Provenance analysis of the Middle Jurassic in northeastern Qaidam Basin: Evidence from heavy minerals, elemental geochemistry and detrital zircon U-Pb geochronology[J]. Acta Sedimentologica Sinica, 2024, 42(2):466-485.
[10] 靳立杰,王继林,周汉文,等. 2022. 东昆仑黑海地区赛什腾组变质碎屑岩地球化学特征及其对物质来源的制约[J]. 地质与勘探,58(4):778-786.

Jin Lijie, Wang Jilin, Zhou Hanwen, et al. 2022. Geochemical characteristics of the Serteng Formation metamorphic clastic rocks in the Heihai area of east Kunlun and their constraints on the provenance[J]. Geology and Exploration, 58(4): 778-786.
[11] 冷宇坤,谢远云,康春国,等. 2023. 哈尔滨居仁砂砾石剖面沉积特征及其环境意义[J]. 沉积学报,41(2):472-484.

Leng Yukun, Xie Yuanyun, Kang Chunguo, et al. 2023. Sedimentary characteristics and environmental significance of the Juren sandy gravel profile in Harbin[J]. Acta Sedimentologica Sinica, 41(2): 472-484.
[12] 李俊,赵红格,汪建,等. 2024. 鄂尔多斯盆地西缘中部三叠系延长组碎屑岩沉积环境及物源示踪[J]. 沉积学报,42(5):1621-1638.

Li Jun, Zhao Hongge, Wang Jian, et al. 2024. Sedimentary environment and provenance tracing of clastic rocks from the Triassic Yanchang Formation in the western margin of the Ordos Basin[J]. Acta Sedimentologica Sinica, 42(5):1621-1638.
[13] 李林林. 2018. 盆地沉积物源分析研究进展[J]. 地壳构造与地壳应力文集:27-47.

Li Linlin. 2018. Research progress on basin sediment source analysis[J]. Collected Works on Crustal Structure and Crustal Stress: 27-47.
[14] 李徐生,韩志勇,杨守业,等. 2007. 镇江下蜀土剖面的化学风化强度与元素迁移特征[J]. 地理学报,62(11):1174-1184.

Li Xusheng, Han Zhiyong, Yang Shouye, et al. 2007. Chemical weathering intensity and element migration features of the Xiashu loess profile in Zhenjiang[J]. Acta Geographica Sinica, 62(11): 1174-1184.
[15] 李忠,王道轩,林伟,等. 2004. 库车坳陷中—新生界碎屑组分对物源类型及其构造属性的指示[J]. 岩石学报,20(3):655-666.

Li Zhong, Wang Daoxuan, Lin Wei, et al. 2004. Mesozoic-Cenozoic clastic composition in Kuqa Depression, Northwest China: Implication for provenance types and tectonic attributes[J]. Acta Petrologica Sinica, 20(3): 655-666.
[16] 刘建峰,迟效国,董春艳,等. 2008. 小兴安岭东部早古生代花岗岩的发现及其构造意义[J]. 地质通报,27(4):534-544.

Liu Jianfeng, Chi Xiaoguo, Dong Chunyan, et al. 2008. Discovery of Early Paleozoic granites in the eastern Xiao Hinggan Mountains, norheastern China and their tectonic significance[J]. Geological Bulletin of China, 27(4): 534-544.
[17] 刘军,毛景文,武广,等. 2013. 大兴安岭北部岔路口斑岩钼矿床岩浆岩锆石U-Pb年龄及其地质意义[J]. 地质学报,87(2):208-226.

Liu Jun, Mao Jingwen, Wu Guang, et al. 2013. Zircon U-Pb dating for the magmatic rocks in the Chalukou porphyry Mo deposit in the northern great Xing'an range, China, and its geological significance[J]. Acta Geologica Sinica, 87(2): 208-226.
[18] 刘淑秋,杜乃秋,孔昭宸. 1985. 哈尔滨地区第四纪孢粉分析及其在地质学和植物学上的意义[J]. 植物研究,5(4):81-100.

Liu Shuqiu, Du Naiqiu, Kong Zhaochen. 1985. Palynoflora of the Quaternary from the Harbin Heilongjiang province and its significance in geology and botany[J]. Bulletin of Botanical Research, 5(4): 81-100.
[19] 马明,陈国俊,吕成福,等. 2016. 珠江口盆地白云凹陷始新统一下渐新统沉积环境与泥岩物源[J]. 石油学报,37(5):610-621.

Ma Ming, Chen Guojun, Chengfu Lü, et al. 2016. Eocene-Low Oligocene sedimentary environment and mudstone provenance in Baiyun Sag, Pearl River Mouth Basin[J]. Acta Petrolei Sinica, 37(5): 610-621.
[20] 马英军,刘丛强. 1999. 化学风化作用中的微量元素地球化学:以江西龙南黑云母花岗岩风化壳为例[J]. 科学通报,44(22):2433-2437.

Ma Yingjun, Liu Congqiang. 1999. Trace element geochemistry during chemical weathering: As exemplified by the weathered crust of granite, Longnan, Jiangxi[J]. Chinese Science Bulletin, 44(22): 2433-2437.
[21] 缪振棣,初本君,高振操. 1984. 黑龙江省第四纪地层测年[J]. 地质论评,30(4):357-364.

Miao Zhendi, Chu Benjun, Gao Zhencao. 1984. Dating of the Quaternary strata of Heilongjiang province[J]. Geological Review, 30(4): 357-364.
[22] 彭治超,李亚男,张孙玄琦,等. 2018. 主微量元素地球化学特征在沉积环境中的应用[J]. 西安文理学院学报(自然科学版),21(3):108-111.

Peng Zhichao, Li Yanan, Zhangsun Xuanqi, et al. 2018. Application of the geochemical characteristics of the major and trace elements in the sedimentary environment[J]. Journal of Xi'an University (Natural Science Edition), 21(3): 108-111.
[23] 乔彦松,赵志中,王燕,等. 2010. 川西甘孜黄土—古土壤序列的地球化学演化特征及其古气候意义[J]. 科学通报,55(3):255-260.

Qiao Yansong, Zhao Zhizhong, Wang Yan, et al. 2010. Variations of geochemical compositions and the paleoclimatic significance of a loess-soil sequence from Garzê county of western Sichuan province, China[J]. Chinese Science Bulletin, 55(3): 255-260.
[24] 裘善文,夏玉海,汪佩芳,等. 1988. 松辽平原更新世地层及其沉积环境的研究[J]. 中国科学(B辑 化学 生物学 农学 医学 地学),18(4):431-441.

Qiu Shanwen, Xia Yuhai, Wang Peifang, et al. 1988. A study on the Pleistocene strata and their sedimentary environment in the Songliao Plain[J]. Chinese Science (Part B), 18(4): 431-441.
[25] 任永健. 2019. 张广才岭南部早—中侏罗世花岗质岩浆作用及构造演化[J]. 地质学报,93(11):2813-2831.

Ren Yongjian. 2019. Early-Middle Jurassic granitic magmatism and tectonic evolution in the southern part of Zhangguangcailing[J]. Acta Geologica Sinica, 93(11): 2813-2831.
[26] 石浩,岳大鹏,赵景波,等. 2022. 陕西绥德地区黄土—古土壤序列地球化学特征及其环境指示意义[J]. 地球与环境,50(1):1-13.

Shi Hao, Yue Dapeng, Zhao Jingbo, et al. 2022. Geochemical characteristics of loess paleosol sequence and its environmental implications in Suide area, Shaanxi[J]. Earth and Environment, 50(1): 1-13.
[27] 宋立军,刘池阳,赵红格,等. 2016. 鄂尔多斯地区黄旗口组地球化学特征及其沉积环境与构造背景[J]. 地球科学,41(8):1295-1308.

Song Lijun, Liu Chiyang, Zhao Hongge, et al. 2016. Geochemical characteristics, sedimentary environment and tectonic setting of Huangqikou Formation, Ordos Basin[J]. Earth Science, 41(8): 1295-1308.
[28] 孙德有,吴福元,高山. 2004. 小兴安岭东部清水岩体的锆石激光探针U-Pb年龄测定[J]. 地球学报,25(2):213-218.

Sun Deyou, Wu Fuyuan, Gao Shan. 2004. LA-ICPMS zircon U-Pb age of the Qingshui pluton in the East Xiao Hinggan mountains[J]. Acta Geoscientia Sinica, 25(2): 213-218.
[29] 孙德有,吴福元,李惠民,等. 2000. 小兴安岭西北部造山后A型花岗岩的时代及与索伦山—贺根山—扎赉特碰撞拼合带东延的关系[J]. 科学通报,45(20):2217-2222.

Sun Deyou, Wu Fuyuan, Li Huimin, et al. 2000. Emplacement age of the postorogenic A-type granites in northwestern Lesser Xing’an Ranges, and its relationship to the eastward extension of Suolushan-Hegenshan-Zhalaite collisional suture zone[J]. Chinese Science Bulletin, 45(20): 2217-2222.
[30] 孙建中. 2005. 黄土学(上篇)[M]. 香港:香港考古学会:354-366.

Sun Jianzhong. 2005. Loess science (Part I)[M]. Hong Kong, China: Hong Kong Archaeological Society: 354-366.
[31] 孙磊. 2023. 松嫩平原东部罗家窝棚组地层特征,沉积环境及其区域地质意义[D]. 哈尔滨:哈尔滨师范大学.

Sun Lei. 2023. Stratigraphic characteristics, sedimentary environment and regional geological significance of Luojiawopeng Formation in eastern Songnen Plain[D]. Harbin: Harbin Normal University.
[32] 王恩宝. 2012. 哈尔滨地区第四纪沉积序列及其环境意义[D]. 长春:吉林大学.

Wang Enbao. 2012. Quaternary sedimentary sequences and their environmental significance in Harbin area[D]. Chang-chun: Jilin University.
[33] 王久懿,孙彦峰,周传芳,等. 2023. 黑龙江漠河盆地漠河组砂岩碎屑锆石U-Pb年龄、地球化学特征及其对构造背景的制约[J]. 地质通报,42(1):146-167.

Wang Jiuyi, Sun Yanfeng, Zhou Chuanfang, et al. 2023. Detrital zircon U-Pb age and geochemistry of sandstone from the Mohe Formation in the Mohe Basin, Heilong-jiang and their constraints on tectonic setting[J]. Geological Bulletin of China, 42(1): 146-167.
[34] 王昆山,石学法,刘升发,等. 2014. 泰国湾西部表层沉积物重矿物分布特征:对物质来源和沉积环境的指示[J]. 第四纪研究,34(3):623-634.

Wang Kunshan, Shi Xuefa, Liu Shengfa, et al. 2014. Spatial distribution of heavy minerals in the surface sediments from the western gulf of Thailand: Implications for sediment provenance and sedimentary environment[J]. Quaternary Sciences, 34(3): 623-634.
[35] 魏春艳,谢远云,康春国,等. 2022. 哈尔滨地区罗家窝棚组地层的沉积学、矿物学及地球化学特征:对沉积环境的指示[J]. 地质科学,57(1):172-189.

Wei Chunyan, Xie Yuanyun, Kang Chunguo, et al. 2022. Sedimentological, mineralogical, and geochemical characteristics of the Luojiawopeng Fm. in Harbin: Implications for the sedimentary environment[J]. Chinese Journal of Geology, 57(1): 172-189.
[36] 吴金城,叶启晓,刘文. 1984. 黑龙江省哈尔滨(荒山、顾乡屯)地区第四纪地质研究:专题科研报告[DS]. 全国地质资料馆.

Wu Jincheng, Ye Qixiao, Liu Wen. 1984. Quaternary geological research in Harbin (barren hills and Guxiangtun) area, Heilongjiang province: Special scientific research report [DS]. National Geological Archive.
[37] 吴年冬,王忠伟,倪战旭,等. 2020. 桂东大桂山地区寒武系砂岩地球化学特征及沉积构造环境分析[J]. 桂林理工大学学报,40(4):655-664.

Wu Niandong, Wang Zhongwei, Ni Zhanxu, et al. 2020. Geochemical characteristics and sedimentary-tectonic settings of Cambrian sandstone in Daguishan area, eastern Guangxi[J]. Journal of Guilin University of Technology, 40(4): 655-664.
[38] 吴子杰,张国仁,邱隆伟,等. 2024. 辽宁新元古界桥头组砂岩地球化学特征及其沉积背景[J]. 中国地质,51(5):1714-1726.

Wu Zijie, Zhang Guoren, Qiu Longwei, et al. 2024. Geochemical characteristics of sandstone and sedimentary background of Neoproterozoic Qiaotou Formation in Liaoning[J]. Geology in China, 51(5): 1714-1726.
[39] 徐杰,姜在兴. 2019. 碎屑岩物源研究进展与展望[J]. 古地理学报,21(3):379-396.

Xu Jie, Jiang Zaixing. 2019. Provenance analysis of clastic rocks: Current research status and prospect[J]. Journal of Palaeogeography, 21(3): 379-396.
[40] 徐小涛,邵龙义. 2018. 利用泥质岩化学蚀变指数分析物源区风化程度时的限制因素[J]. 古地理学报,20(3):515-522.

Xu Xiaotao, Shao Longyi. 2018. Limiting factors in utilization of chemical index of alteration of mudstones to quantify the degree of weathering in provenance[J]. Journal of Palaeogeography, 20(3): 515-522.
[41] 杨浩,葛文春,纪政,等. 2022. 中国东北地区显生宙岩浆作用和洋—陆格局及其与气候演变的关系[J]. 岩石学报,38(5):1443-1459.

Yang Hao, Ge Wenchun, Ji Zheng, et al. 2022. Phanerozoic magmatism and ocean-continent framework of northeastern China and their relationship with climate change[J]. Acta Petrologica Sinica, 38(5): 1443-1459.
[42] 叶启晓. 1991. 哈尔滨地区第四系[J]. 黑龙江地质,2(2):17-29.

Ye Qixiao. 1991. Quarternary system in Harbin area[J]. Heilongjiang Geology, 2(2): 17-29.
[43] 叶启晓,吴金城,魏正一. 1984. 哈尔滨荒山近期的上升运动[J]. 地理科学,4(4):383-388.

Ye Qixiao, Wu Jincheng, Wei Zhengyi. 1984. The tectonic uplift occured in Huang Shan in the last thousants of year[J]. Scientia Geographica Sinica, 4(4): 383-388.
[44] 张国宾,陈兴凯,赵越,等. 2022. 张广才岭南部中侏罗世似斑状二长花岗岩年代学、地球化学特征及其地质意义[J]. 吉林大学学报(地球科学版),52(6):1907-1925.

Zhang Guobin, Chen Xingkai, Zhao Yue, et al. 2022. Geochronology, geochemistry and geological significance of the Middle Jurassic porphyritic monzogranite in the southern Zhangguangcai range, Heilongjiang province[J]. Journal of Jilin University (Earth Science Edition), 52(6): 1907-1925.
[45] 张衡,李仁涛,巴金,等. 2019. 川西南美姑地区下三叠统飞仙关组地球化学特征及其对物源和构造环境的指示意义[J]. 矿物岩石,39(3):52-59.

Zhang Heng, Li Rentao, Ba Jin, et al. 2019. Geochemical characteristics of the Lower Triassic Feixianguan Formation in Meigu area, southwestern Sichuan and its significance for the provenance and tectonic setting[J]. Journal of Mineralogy and Petrology, 39(3): 52-59.
[46] 张立仕,孙丰月,李碧乐,等. 2021. 小兴安岭—张广才岭成矿带福安堡钼矿区花岗岩类的岩石成因和构造背景:元素地球化学、锆石U-Pb年龄和Sr-Nd-Hf同位素约束[J]. 地质学报,95(8):2471-2492.

Zhang Lishi, Sun Fengyue, Li Bile, et al. 2021. Petrogenesis and tectonic setting of granitoids in the Fu'anpu molybdenum deposit, Lesser Xing'an-Zhangguangcai Range metallogenic belt: Constraints from element geochemistry, zircon U-Pb geochronology and Sr-Nd-Hf isotopes[J]. Acta Geologica Sinica, 95(8): 2471-2492.
[47] 张曼. 2021. 哈尔滨荒山岩芯黄土—古土壤序列的化学风化特征及其对古土壤形成环境指示[D]. 哈尔滨:哈尔滨师范大学.

Zhang Man. 2021. Chemical weathering characteristics of the loess-paleosol sequence in Harbin Huangshan rock core and implication for formation environment of the paleosol[D]. Harbin: Harbin Normal University.
[48] 张茜,肖渊甫,王晓飞,等. 2020. 四川盆地西南缘龙马溪组泥岩地球化学特征及物源区和构造背景分析[J]. 地质论评,66(5):1393-1411.

Zhang Qian, Xiao Yuanfu, Wang Xiaofei, et al. 2020. Geochemistry of the Longmaxi Formation mudstones of the southwest Sichuan Basin: Implications for provenance and source weathering[J]. Geological Review, 66(5): 1393-1411.
[49] 张英利,贾晓彤,王宗起,等. 2019. 上扬子西南缘早三叠世嘉陵江组物源分析和构造环境:沉积学、重矿物电子探针和U-Pb年龄的限定[J]. 地质学报,93(12):3197-3222.

Zhang Yingli, Jia Xiaotong, Wang Zongqi, et al. 2019. Provenance analysis and tectonic setting of Early Triassic Jialingjiang Formation in the southwestern Upper Yangtze area: Evidence from sedimentology, heavy mineral electron probe microanalysis and U-Pb dating[J]. Acta Geologica Sinica, 93(12): 3197-3222.
[50] Andersen T, van Niekerk H, Elburg M A. 2022. Detrital zircon in an active sedimentary recycling system: Challenging the 'source-to-sink' approach to zircon-based provenance analysis[J]. Sedimentology, 69(6): 2436-2462.
[51] Armstrong-Altrin J S. 2020. Detrital zircon U-Pb geochronology and geochemistry of the Riachuelos and Palma Sola beach sediments, Veracruz State, Gulf of Mexico: A new insight on palaeoenvironment[J]. Journal of Palaeogeography, 9(1): 28.
[52] Armstrong-Altrin J S, Machain-Castillo M L. 2016. Mineralogy, geochemistry, and radiocarbon ages of deep sea sediments from the Gulf of Mexico, Mexico[J]. Journal of South American Earth Sciences, 71: 182-200.
[53] Bhatia M R. 1985. Rare earth element geochemistry of Australian Paleozoic graywackes and mudrocks: Provenance and tectonic control[J]. Sedimentary Geology, 45(1/2): 97-113.
[54] Bhatia M R, Crook K A W. 1986. Trace element characteristics of graywackes and tectonic setting discrimination of sedimentary basins[J]. Contributions to Mineralogy and Petrology, 92(2): 181-193.
[55] Bhatia M R, Taylor S R. 1981. Trace-element geochemistry and sedimentary provinces: A study from the Tasman Geosyncline, Australia[J]. Chemical Geology, 33(1/2/3/4): 115-125.
[56] Cox R, Lowe D R, Cullers R L. 1995. The influence of sediment recycling and basement composition on evolution of mudrock chemistry in the southwestern United States[J]. Geochimica et Cosmochimica Acta, 59(14): 2919-2940.
[57] Fedo C M, Nesbitt H W, Young G M. 1995. Unraveling the effects of potassium metasomatism in sedimentary rocks and paleosols, with implications for paleoweathering conditions and provenance[J]. Geology, 23(10): 921-924.
[58] Floyd P A, Leveridge B E. 1987. Tectonic environment of the Devonian Gramscatho Basin, south Cornwall: Framework mode and geochemical evidence from turbiditic sandstones[J]. Journal of the Geological Society, 144(4): 531-542.
[59] Griffin W L, Belousova E A, Shee S R, et al. 2004. Archean crustal evolution in the northern Yilgarn Craton: U-Pb and Hf-isotope evidence from detrital zircons[J]. Precambrian Research, 131(3/4): 231-282.
[60] Gu X X, Liu J M, Zheng M H, et al. 2002. Provenance and tectonic setting of the Proterozoic turbidites in Hunan, South China: Geochemical evidence[J]. Journal of Sedimentary Research, 72(3): 393-407.
[61] Jones B, Manning D A C. 1994. Comparison of geochemical indices used for the interpretation of palaeoredox conditions in ancient mudstones[J]. Chemical Geology, 111(1/2/3/4): 111-129.
[62] Maharana C, Srivastava D, Tripathi J K. 2018. Geochemistry of sediments of the Peninsular rivers of the Ganga Basin and its implication to weathering, sedimentary processes and provenance[J]. Chemical Geology, 483: 1-20.
[63] McLennan S M, Hemming S, McDaniel D K, et al. 1993. Geochemical approaches to sedimentation, provenance, and tectonics[M]//Johnsson M J, Basu A. Processes controlling the composition of clastic sediments. Boulder: Geological Society of America: 21-40.
[64] Muhs D R. 2004. Mineralogical maturity in dunefields of North America, Africa and Australia[J]. Geomorphology, 59(1/2/3/4): 247-269.
[65] Nesbitt H W, Young G M. 1982. Early Proterozoic climates and plate motions inferred from major element chemistry of lutites[J]. Nature, 299(5885): 715-717.
[66] Nesbitt H W, Young G M. 1989. Formation and diagenesis of weathering profiles[J]. The Journal of Geology, 97(2): 129-147.
[67] Nesbitt H W, Young G M, McLennan S M, et al. 1996. Effects of chemical weathering and sorting on the petrogenesis of siliciclastic sediments, with implications for provenance studies[J]. The Journal of Geology, 104(5): 525-542.
[68] Parker A. 1970. An index of weathering for silicate rocks[J]. Geological Magazine, 107(6): 501-504.
[69] Parrish J T. 1980. Lakes: Chemistry, geology, physics. A. Lerman[J]. The Journal of Geology, 88(2): 249-250.
[70] Roser B P, Korsch R J. 1988. Provenance signatures of sandstone-mudstone suites determined using discriminant function analysis of major-element data[J]. Chemical Geology, 67(1/2): 119-139.
[71] Suttner L J, Dutta P K. 1986. Alluvial sandstone composition and paleoclimate; I, Framework mineralogy[J]. Journal of Sedimentary Research, 56(3): 329-345.
[72] Taylor S R, McClennan S M. 1985. The continental crust: Its composition and evolution: An examination of the geochemical record preserved in sedimentary rocks[M]. Oxford: Blackwell Scientific.
[73] Weltje G J, von Eynatten H. 2004. Quantitative provenance analysis of sediments: Review and outlook[J]. Sedimentary Geology, 171(1/2/3/4): 1-11.
[74] Zheng H B, Clift P D, He M Y, et al. 2020. Formation of the first bend in the Late Eocene gave birth to the modern Yangtze River, China[J]. Geology, 49(1): 35-39.