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1068 土壤学报 57卷 参考文献( References) 14] Han G Z, Zhang G L Changes in magnetic properties and pedogenetic implications for paddy soil had P. Nortcliff S. Essentials of Soil Science chronosequences from different parent materials in south Soil Formation. Functions Use and Classification( World China[]. European Journal of Soil Science, 2013. 64 Reference Base, WRB ) [M]. Stuttgart:Borntraeger (4):435-444 15]Han G Z, Zhang G L Li D C, et al. Pedogenetic evolution [2] Zhang G L, Zhu A X, Shi Z, et al. Progress and future of clay minerals and agricultural implications in three prospect of soil geography ] Progress in Geography paddy soil chronosequences of south China 2018,37(1):57-65.[张甘霖,朱阿兴,史舟,等,土 different parent materials]. Journal of 壤地理学的进展与展望[地理科学进展,2018,37 Sediments.2015,15(2):423-435 (1):57-65. 16] Huang L M. Zhang X H, Shao M A, et al. Pedogenesis [3] Zhang G L, Wu H Y From"Problems"to"Solutions' significantly decreases the stability of water-dispersible Soil functions for realization of sustainable development soil colloids in a humid tropical region[J]. Geoderma goals]. Bulletin of the Chinese Academy of Sciences 2016,274:45-53 2018,33(2):124-134.[张甘霖,吴华勇.从问题到 17] Sullivan P L, Wymore A S, McDowell W, et al.New 解决方案:土壤与可持续发展目标的实现[中国科学 opportunities for Critical Zone Science[R]. White 院院刊,2018,33(2):124-134 booklet Arlington meeting for CZ science, 2017 4] Zhang G L. Shi X Z, Gong Z T Retrospect and prospect Arlington of soil geography in China]. Acta Pedologica Sinica 18] Jones E J. McBratney A B. What is digital soil 2008,45(5):792-801.【张甘霖,史学正,龚子同.中 morphometrics and where might it be going? // Hartemink A 国土壤地理学发展的回顾与展望叮.土壤学报,2008 E Minasny B Digital Soil Morphometrics[M]. Switzerland 45(5):792-801 Springer, 2016: 1-15 [5 Swobada-Colberg N G. Drever J I Mineral dissolution 19 Soil Survey Division Staff. Soil Survey Manual[M rates in plot- scale field and laboratory experiments] Chemical Geology, 1993, 105(1/3):51-69 DC,1993 6 Huang L M. Zhang G L. Yang J L. Weathering and soil 20 Schoeneberger P J. Wysocki D A. Benham EC. et al formation rates based on geochemical mass balances in a Field Book for Describing and Sampling Soils, version 3.0[M]. Natural Soil Survey Center. Lincoln, NE. 2012 subtropical China[]. Catena, 2013, 105: 11-20 21] Jahn R, Blume H P, Asio VB, et al. Guidelines for Soil [ 7] Yang J L. Zhang G L. Huang L M, et al. Estimating soil Description M]. 4th ed. Rome: FAO, 2006 acidification rate at watershed scale based on the 22] McBratney A B. Mendonca S. Minasny B On digital soil stoichiometric relations between silicon and base mapping[J]. Geoderma, 2003, 117: 3-52 ationsD] Chemical Geology, 2013. 337/338: 30-37. 23 Hartemink A E, Minasny B. Towards digital soil [8] Brantley S L Understanding soil time[J]. Science, 2008 morphometrics[J]. Geoderma, 2014, 230/231: 305-317 321(5895):1454-1455 24]Wang QB. Hartemink A E. Jiang Z D. et al. Digital soil [9] Lichter J. Rates of weathering and chemical depletion in morphometrics of krotovinas in a deep Alfisol derived soils across a chronosequence of Lake Michigan sand from loess in Shenyang, China[J]. Geoderma 2017. 301 dunes J). Geoderma, 1998, 85: 255-282 10] Chen L M. Zhang G L, William R E Soil characteristic 25 Zhang Y, Hartemink A E. Sampling designs for soil response times and pedogenic thresholds dur rganic carbon stock assessment of soil profiles] 000-year evolution of a paddy soil chronosequence Geoderma.2017,307:220-230 Soil Science Society of America Journal, 2011. 75 26]Hartemink A E, McBratney A 1807-1820 11 J Li J W, Zhang G L. Gong Z T. Ndisotope evidence for 27] Shi Z, Xu D Y, Teng H F. et al. Soil information dust accretion to a soil chronosequence in Hainan acquisition based on remote sensing and proximal soil Island[J]. Catena, 2013, 101: 24-30 ensing: Current status and prospect[J]. Progress in 12 ] Chadwick O A Derry L A. Vitousek PM. et al. Changing Geography,2018,37(1):79-92.[史舟,徐冬云 sour 洪芬,等,土壤星地传感技术现状与发展趋势叮地 ecosystem development[J]. Nature, 1999. 397: 491-497. 理科学进展,2018,37(1):79-92. [13] He Y, Li C, Velde B. et al. Clay minerals in a soil 28 Macdonald H C, Waite W. Soil moisture detection with hronosequence derived from basalt on Hainan Island imaging radars J]. Water Resources Research, 1971. 7 China[] Geoderma,2008,148:206-212 (1):100-110. http://pedologica.issas.ac.cn1068 土 壤 学 报 57 卷 http://pedologica.issas.ac.cn 参考文献(References) [ 1 ] Blum W,Schad P,Nortcliff S. Essentials of Soil Science: Soil Formation,Functions,Use and Classification(World Reference Base, WRB) [M]. Stuttgart: Borntraeger Science Publishers,2018. [ 2 ] Zhang G L,Zhu A X,Shi Z,et al. Progress and future prospect of soil geography[J]. Progress in Geography, 2018,37(1):57—65. [张甘霖,朱阿兴,史舟,等. 土 壤地理学的进展与展望[J]. 地理科学进展,2018,37 (1):57—65. ] [ 3 ] Zhang G L,Wu H Y. From “Problems” to “Solutions”: Soil functions for realization of sustainable development goals[J]. Bulletin of the Chinese Academy of Sciences, 2018,33(2):124—134. [张甘霖,吴华勇. 从问题到 解决方案:土壤与可持续发展目标的实现[J]. 中国科学 院院刊,2018,33(2):124—134.] [ 4 ] Zhang G L,Shi X Z,Gong Z T. Retrospect and prospect of soil geography in China[J]. Acta Pedologica Sinica, 2008,45(5):792—801. [张甘霖,史学正,龚子同. 中 国土壤地理学发展的回顾与展望[J]. 土壤学报,2008, 45(5):792—801.] [ 5 ] Swobada-Colberg N G,Drever J I. Mineral dissolution rates in plot- scale field and laboratory experiments[J]. Chemical Geology,1993,105(1/3):51—69. [ 6 ] Huang L M,Zhang G L,Yang J L. Weathering and soil formation rates based on geochemical mass balances in a small forested watershed under acid precipitation in subtropical China[J]. Catena,2013,105:11—20. [ 7 ] Yang J L,Zhang G L,Huang L M,et al. Estimating soil acidification rate at watershed scale based on the stoichiometric relations between silicon and base cations[J]. Chemical Geology,2013,337/338:30—37. [ 8 ] Brantley S L. Understanding soil time[J]. Science,2008, 321(5895):1454—1455. [ 9 ] Lichter J. Rates of weathering and chemical depletion in soils across a chronosequence of Lake Michigan sand dunes[J]. Geoderma,1998,85:255—282. [ 10 ] Chen L M,Zhang G L,William R E. Soil characteristic response times and pedogenic thresholds during the 1000-year evolution of a paddy soil chronosequence[J]. Soil Science Society of America Journal,2011,75: 1807—1820. [ 11 ] Li J W,Zhang G L,Gong Z T. Ndisotope evidence for dust accretion to a soil chronosequence in Hainan Island[J]. Catena,2013,101:24—30. [ 12 ] Chadwick O A,Derry L A,Vitousek P M,et al. Changing sources of nutrients during four million years of ecosystem development[J]. Nature,1999,397:491—497. [ 13 ] He Y,Li D C,Velde B,et al. Clay minerals in a soil chronosequence derived from basalt on Hainan Island, China[J]. Geoderma,2008,148:206—212. [ 14 ] Han G Z,Zhang G L. Changes in magnetic properties and their pedogenetic implications for paddy soil chronosequences from different parent materials in south China[J]. European Journal of Soil Science,2013,64 (4):435—444. [ 15 ] Han G Z,Zhang G L,Li D C,et al. Pedogenetic evolution of clay minerals and agricultural implications in three paddy soil chronosequences of south China derived from different parent materials[J]. Journal of Soils and Sediments,2015,15(2):423—435. [ 16 ] Huang L M,Zhang X H,Shao M A,et al. Pedogenesis significantly decreases the stability of water-dispersible soil colloids in a humid tropical region[J]. Geoderma, 2016,274:45—53. [ 17 ] Sullivan P L,Wymore A S,McDowell W,et al. New opportunities for Critical Zone Science[R]. White booklet:Arlington meeting for CZ science,2017, Arlington. [ 18 ] Jones E J , McBratney A B. What is digital soil morphometrics and where might it be going? // Hartemink A E,Minasny B. Digital Soil Morphometrics[M]. Switzerland: Springer,2016:1—15. [ 19 ] Soil Survey Division Staff. Soil Survey Manual[M]. United States Department of Agriculture,Washington DC,1993. [ 20 ] Schoeneberger P J,Wysocki D A,Benham E C,et al. Field Book for Describing and Sampling Soils,version 3.0[M]. Natural Soil Survey Center,Lincoln,NE,2012. [ 21 ] Jahn R,Blume H P,Asio V B,et al. Guidelines for Soil Description[M]. 4th ed. Rome:FAO,2006. [ 22 ] McBratney A B,Mendonca S,Minasny B. On digital soil mapping[J]. Geoderma,2003,117:3—52. [ 23 ] Hartemink A E , Minasny B. Towards digital soil morphometrics[J]. Geoderma,2014,230/231:305—317. [ 24 ] Wang Q B,Hartemink A E,Jiang Z D,et al. Digital soil morphometrics of krotovinas in a deep Alfisol derived from loess in Shenyang,China[J]. Geoderma,2017,301: 11—18. [ 25 ] Zhang Y,Hartemink A E. Sampling designs for soil organic carbon stock assessment of soil profiles[J]. Geoderma,2017,307:220—230. [ 26 ] Hartemink A E , McBratney A. A soil science renaissance[J]. Geoderma,2008,148(2):123—129. [ 27 ] Shi Z,Xu D Y,Teng H F,et al. Soil information acquisition based on remote sensing and proximal soil sensing : Current status and prospect[J]. Progress in Geography,2018,37(1):79—92. [史舟,徐冬云, 滕洪芬,等. 土壤星地传感技术现状与发展趋势[J]. 地 理科学进展,2018,37(1):79—92.] [ 28 ] Macdonald H C,Waite W P. Soil moisture detection with imaging radars[J]. Water Resources Research,1971,7 (1):100—110
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