A review of radioactive isotopes and other residence time tracers in understanding groundwater recharge: Possibilities, challenges, and limitations
暂无分享,去创建一个
Ian Cartwright | Matthew Currell | M. Currell | K. Meredith | I. Cartwright | D. Cendón | Karina Meredith | Dioni I. Cendón
[1] J. McDonnell,et al. Substantial proportion of global streamflow less than three months old , 2016 .
[2] K. Bristow,et al. Dissolved Organic Carbon in Groundwater Overlain by Irrigated Sugarcane , 2015, Ground water.
[3] J. McDonnell,et al. A review and evaluation of catchment transit time modeling , 2006 .
[4] J. Batlle‐Aguilar,et al. Groundwater residence time and aquifer recharge in multilayered, semi-confined and faulted aquifer systems using environmental tracers , 2016 .
[5] A. Herczeg,et al. Inorganic Ions as Tracers , 2000 .
[6] A. Baker,et al. Evolution of chemical and isotopic composition of inorganic carbon in a complex semi-arid zone environment: Consequences for groundwater dating using radiocarbon , 2016 .
[7] Wen Wei,et al. Sustainability of intensively exploited aquifer systems in the North China Plain: Insights from multiple environmental tracers , 2014, Journal of Earth Science.
[8] C. T. Green,et al. The fate and transport of nitrate in shallow groundwater in northwestern Mississippi, USA , 2011 .
[9] Chen Zhu. Estimate of recharge from radiocarbon dating of groundwater and numerical flow and transport modeling , 2000 .
[10] P. Cook,et al. Factors affecting carbon-14 activity of unsaturated zone CO2 and implications for groundwater dating , 2014 .
[11] C. Simmons,et al. Uncertainties in vertical groundwater fluxes from 1‐D steady state heat transport analyses caused by heterogeneity, multidimensional flow, and climate change , 2016 .
[12] J. Böhlke,et al. TracerLPM (Version 1): An Excel Workbook for Interpreting Groundwater Age Distributions from Environmental Tracer Data , 2014 .
[13] B. Jones,et al. Freshwater recharge into a shallow saline groundwater system, Cooper Creek floodplain, Queensland, Australia , 2010 .
[14] W. Edmunds. Geochemistry's vital contribution to solving water resource problems. , 2009 .
[15] Dongmei Han,et al. Environmental isotopic and hydrochemical characteristics of groundwater systems in Daying and Qicun geothermal fields, Xinzhou Basin, Shanxi, China , 2010 .
[16] J. Duff,et al. Aquifer-scale controls on the distribution of nitrate and ammonium in ground water near La Pine, Oregon, USA☆ , 2007 .
[17] Mary P Anderson,et al. Heat as a Ground Water Tracer , 2005, Ground water.
[18] Wang Wei,et al. Characterizing the groundwater renewability and evolution of the strongly exploited aquifers of the North China Plain by major ions and environmental tracers , 2013, Journal of Radioanalytical and Nuclear Chemistry.
[19] P. Nasta,et al. Lithologic influences on groundwater recharge through incised glacial till from profile to regional scales: Evidence from glaciated Eastern Nebraska , 2014 .
[20] M. Stewart,et al. Dating of streamwater using tritium in a post nuclear bomb pulse world: continuous variation of mean transit time with streamflow , 2010 .
[21] T. Gleeson,et al. A New Assessment Framework for Transience in Hydrogeological Systems , 2016, Ground water.
[22] Wen Wei,et al. Identifying the recharge sources and age of groundwater in the Songnen Plain (Northeast China) using environmental isotopes , 2011 .
[23] J. Sykes,et al. Recharge Estimation for Transient Ground Water Modeling , 2002, Ground water.
[24] P. Cook,et al. Recent advances in dating young groundwater: chlorofluorocarbons, and 85Kr , 1997 .
[25] Xifeng Zhu,et al. Constraining the groundwater flow system and aquifer properties using major ions, environmental traces and a simple physical model in China’s Jilantai Basin , 2016, Environmental Earth Sciences.
[26] D. Valdes,et al. Investigation of young water inflow in karst aquifers using SF6–CFC–3H/He–85Kr–39Ar and stable isotope components , 2014 .
[27] J. Kirchner. Aggregation in environmental systems – Part 1: Seasonal tracer cycles quantify young water fractions, but not mean transit times, in spatially heterogeneous catchments , 2015 .
[28] E. Sudicky,et al. Carbon 14 dating of groundwater in confined aquifers: Implications of aquitard diffusion , 1981 .
[29] L. N. Plummer,et al. Groundwater residence times in Shenandoah National Park, Blue Ridge Mountains, Virginia, USA: a multi-tracer approach , 2001 .
[30] M. Gogolev. Assessing groundwater recharge with two unsaturated zone modeling technologies , 2002 .
[31] B. Hagedorn. Hydrochemical and 14C constraints on groundwater recharge and interbasin flow in an arid watershed: Tule Desert, Nevada , 2015 .
[32] U. Beyerle,et al. Estimating amount and spatial distribution of groundwater recharge in the Iullemmeden basin (Niger) based on 3H, 3He and CFC‐11 measurements , 2005 .
[33] J. Vogel,et al. “Excess air” in groundwater , 1981 .
[34] Tianming Huang,et al. Limits to recharge of groundwater from Tibetan plateau to the Gobi desert, implications for water management in the mountain front , 2009 .
[35] M. Babic,et al. Estimate of Recharge of a Rising Water Table in Semiarid Niger from 3H and 14C Modeling , 2002, Ground water.
[36] M. Oberthaler,et al. Groundwater dating with Atom Trap Trace Analysis of39Ar , 2014 .
[37] B. Scanlon,et al. Estimating Groundwater Recharge , 2010 .
[38] W. Aeschbach–Hertig,et al. Characterizing the recharge regime of the strongly exploited aquifers of the North China Plain by environmental tracers , 2010 .
[39] J. Refsgaard,et al. Controlling geological and hydrogeological processes in an arsenic contaminated aquifer on the Red River flood plain, Vietnam , 2008 .
[40] L. N. Plummer,et al. Dating groundwater with trifluoromethyl sulfurpentafluoride (SF5CF3), sulfur hexafluoride (SF6), CF3Cl (CFC‐13), and CF2Cl2 (CFC‐12) , 2008 .
[41] D Fatta-Kassinos,et al. Urban wastewater treatment plants as hotspots for the release of antibiotics in the environment: a review. , 2013, Water research.
[43] A. Baker,et al. Island groundwater resources, impacts of abstraction and a drying climate: Rottnest Island, Western Australia , 2016 .
[44] P. Aggarwal,et al. Lower Groundwater 14C Age by Atmospheric CO2 Uptake During Sampling and Analysis , 2014, Ground water.
[45] Chantal Gascuel-Odoux,et al. Modelling flow and nitrate transport in groundwater for the prediction of water travel times and of consequences of land use evolution on water quality , 2002 .
[46] K. Lee,et al. Effects of groundwater residence time and recharge rate on nitrate contamination deduced from δ18O, δD, 3H/3He and CFCs in a small agricultural area in Chuncheon, Korea , 2009 .
[47] C. Bryant,et al. Soil organic matter turnover in British deciduous woodlands, quantified with radiocarbon. , 2010 .
[48] M. A. Hoque,et al. 14C dating of deep groundwater in the Bengal Aquifer System, Bangladesh: Implications for aquifer anisotropy, recharge sources and sustainability , 2012 .
[49] W. W. Wood,et al. Chemical and Isotopic Methods for Quantifying Ground‐Water Recharge in a Regional, Semiarid Environment , 1995 .
[50] B. Jackson,et al. Assessment of Halon-1301 as a groundwater age tracer , 2015 .
[51] L. Fifield,et al. Ancient groundwaters in the Amadeus Basin, Central Australia: evidence from the radio-isotope 36Cl , 1999 .
[52] Dongmei Han,et al. Recharge history and controls on groundwater quality in the Yuncheng Basin, north China , 2010 .
[53] S. Jasechko. Partitioning young and old groundwater with geochemical tracers , 2016 .
[54] A. Ravishankara,et al. Atmospheric Lifetimes of Long-Lived Halogenated Species , 1993, Science.
[55] W. Sanford. Recharge and groundwater models: an overview , 2002 .
[56] C. Lawrence,et al. Physical hydrogeology and environmental isotopes to constrain the age, origins, and stability of a low-salinity groundwater lens formed by periodic river recharge: Murray Basin, Australia , 2010 .
[57] Chen Zhu,et al. Late Pleistocene and Holocene groundwater recharge from the chloride mass balance method and chlorine‐36 data , 2003 .
[58] I. Cartwright,et al. Constraining flow paths of saline groundwater at basin margins using hydrochemistry and environmental isotopes: Lake Cooper, Murray Basin, Australia , 2007 .
[59] A. MacDonald,et al. The practicalities of using CFCs and SF6 for groundwater dating and tracing , 2012 .
[60] K. Münnich,et al. Groundwater age dating with chlorofluorocarbons , 1996 .
[61] L. N. Plummer,et al. Dating of shallow groundwater: Comparison of the transient tracers 3H/3He, chlorofluorocarbons, and 85Kr , 1994 .
[62] T. Müller,et al. Use of multiple age tracers to estimate groundwater residence times and long-term recharge rates in arid southern Oman , 2016 .
[63] I. Cartwright,et al. Constraining modern and historical recharge from bore hydrographs, 3H, 14C, and chloride concentrations: Applications to dual-porosity aquifers in dryland salinity areas, Murray Basin, Australia , 2007 .
[64] Doerthe Tetzlaff,et al. What can flux tracking teach us about water age distribution patterns and their temporal dynamics , 2012 .
[65] L. Mays. Groundwater Resources Sustainability: Past, Present, and Future , 2013, Water Resources Management.
[66] A. Suckow. The age of groundwater – Definitions, models and why we do not need this term , 2014 .
[67] D. K. Solomon,et al. 3H and 3He , 2000 .
[68] L. N. Plummer,et al. Use of chlorofluorocarbons (CCl3F and CCl2F2) as hydrologic tracers and age‐dating tools: The alluvium and terrace system of central Oklahoma , 1992 .
[69] K. Zouari,et al. Using geochemical indicators to investigate groundwater mixing and residence time in the aquifer system of Djeffara of Medenine (southeastern Tunisia) , 2011 .
[70] John Karl Böhlke,et al. Geochemistry, radiocarbon ages, and paleorecharge conditions along a transect in the central High Plains aquifer, southwestern Kansas, USA , 2004 .
[71] P. Cook,et al. Dating of ‘young’ groundwaters using environmental tracers: advantages, applications, and research needs , 2010, Isotopes in environmental and health studies.
[72] P. Binning,et al. A time series approach to inferring groundwater recharge using the water table fluctuation method , 2005 .
[73] M. Cuthbert. An improved time series approach for estimating groundwater recharge from groundwater level fluctuations , 2010 .
[74] I. Cartwright,et al. Contrasting transit times of water from peatlands and eucalypt forests in the Australian Alps determined by tritium: implications for vulnerability and the source of water in upland catchments , 2016 .
[75] U. Beyerle,et al. A comparison of groundwater dating with 81Kr, 36Cl and 4He in four wells of the Great Artesian Basin, Australia , 2003 .
[76] T. Dahlin,et al. A preliminary analysis of the groundwater recharge to the Karoo formations, mid-Zambezi basin, Zimbabwe , 2002 .
[77] Y. Travi,et al. A multi-tracer study of groundwater origin and transit-time in the aquifers of the Venice region (Italy) , 2014 .
[78] N. Tase,et al. Estimation of Groundwater Residence Time Using the 36Cl Bomb Pulse , 2011, Ground water.
[79] W. Edmunds,et al. Published online in Wiley InterScience (www.interscience.wiley.com) DOI: 10.1002/hyp.6335 Global synthesis of groundwater recharge in semiarid andaridregions , 2022 .
[80] Kristopher L. Kuhlman,et al. Krypton-81 in groundwater of the Culebra Dolomite near the Waste Isolation Pilot Plant, New Mexico. , 2014, Journal of contaminant hydrology.
[81] K. Meredith,et al. Using 14C and 3H to delineate a recharge 'window' into the Perth Basin aquifers, North Gnangara groundwater system, Western Australia. , 2012, The Science of the total environment.
[82] A. Love,et al. 81Kr in the Great Artesian Basin, Australia: a new method for dating very old groundwater , 2000 .
[83] B. Conant,et al. Delineating and Quantifying Ground Water Discharge Zones Using Streambed Temperatures , 2004, Ground water.
[84] T. Gleeson,et al. The global volume and distribution of modern groundwater , 2016 .
[85] L. Young,et al. A new method of measuring 81Kr and 85Kr abundances in environmental samples , 2003, physics/0311118.
[86] W. Kinzelbach,et al. Analytical model for environmental tracer transport in well catchments , 2011 .
[87] P. Maloszewski,et al. Aggregation effects on tritium-based mean transit times and young water fractions in spatially heterogeneous catchments and groundwater systems , 2017 .
[88] I. Clark,et al. Environmental Isotopes in Hydrogeology , 1997 .
[89] R. Farvolden,et al. Migration of contaminants in groundwater at a landfill: A case study: 3. Tritium as an indicator of dispersion and recharge , 1983 .
[90] J. Crawford,et al. Tritium in Australian precipitation: A 50 year record , 2004 .
[91] K. Różański,et al. Dating of young groundwater using four anthropogenic trace gases (SF6, SF5CF3, CFC-12 and Halon-1301): methodology and first results† , 2016, Isotopes in environmental and health studies.
[92] J. McCallum,et al. Nonparametric estimation of groundwater residence time distributions: What can environmental tracer data tell us about groundwater residence time? , 2014 .
[93] W. Robertson,et al. Tritium as an indicator of recharge and dispersion in a groundwater system in central Ontario , 1989 .
[94] P. Smalley,et al. Strontium isotopes as indicators of the dissolving phase in a carbonate aquifer: implications for 14C dating of groundwater , 1994 .
[95] K. Kröger,et al. Groundwater ages, recharge conditions and hydrochemical evolution of a barrier island freshwater lens (Spiekeroog, Northern Germany) , 2012 .
[96] L. Benedetti,et al. Establishing constraints on groundwater ages with 36Cl, 14C, 3H, and noble gases: a case study in the eastern Paris basin, France. , 2010 .
[97] H. Hofmann,et al. Using 14 C and 3 H to understand groundwater flow and recharge in an aquifer window , 2014 .
[98] G. Gee,et al. Vadose-zone techniques for estimating groundwater recharge in arid and semiarid regions , 1994 .
[99] Peter G. Cook,et al. Determining Timescales for Groundwater Flow and Solute Transport , 2000 .
[100] H. Kooi,et al. Beneath the surface of global change: Impacts of climate change on groundwater , 2011 .
[101] J. McCallum,et al. Groundwater age, mixing and flow rates in the vicinity of large open pit mines, Pilbara region, northwestern Australia , 2017, Hydrogeology Journal.
[102] C. Eastoe,et al. Geochemical Quantification of Semiarid Mountain Recharge , 2008, Ground water.
[103] Paul Koeniger,et al. Review on soil water isotope‐based groundwater recharge estimations , 2016 .
[104] I. Nicu,et al. Using GPR for assessing the volume of sediments from the largest natural dam lake of the Eastern Carpathians: Cuejdel Lake, Romania , 2016, Environmental Earth Sciences.
[105] B. M. Kennedy,et al. Noble gas radionuclides in Yellowstone geothermal gas emissions: A reconnaissance , 2013 .
[106] J. Böhlke,et al. Combined Use of Groundwater Dating, Chemical, and Isotopic Analyses to Resolve the History and Fate of Nitrate Contamination in Two Agricultural Watersheds, Atlantic Coastal Plain, Maryland , 1995 .
[107] R. Purtschert,et al. Age structure and recharge conditions of a coastal aquifer (northern Germany) investigated with 39Ar, 14C, 3H, He isotopes and Ne , 2011 .
[108] J. Kirchner,et al. A lab in the field: high-frequency analysis of water quality and stable isotopes in stream water and precipitation , 2016 .
[109] B. Scanlon,et al. Choosing appropriate techniques for quantifying groundwater recharge , 2002 .
[110] T. Heberer. Occurrence, fate, and removal of pharmaceutical residues in the aquatic environment: a review of recent research data. , 2002, Toxicology letters.
[111] J. Severinghaus,et al. Tracer applications of noble gas radionuclides in the geosciences , 2013, 1305.4608.
[112] John Bredehoeft,et al. Safe Yield and the Water Budget Myth , 1997 .
[113] P. Cook. Quantifying river gain and loss at regional scales , 2015 .
[114] Using 81Kr and noble gases to characterize and date groundwater and brines in the Baltic Artesian Basin on the one-million-year timescale , 2017, 1701.06013.
[115] L. Longuevergne,et al. Nitrate dynamics in agricultural catchments deduced from groundwater dating and long-term nitrate monitoring in surface- and groundwaters. , 2012, The Science of the total environment.
[116] Peter G Cook,et al. Limitations of the Use of Environmental Tracers to Infer Groundwater Age , 2015, Ground water.
[117] I. Cartwright,et al. Environmental isotopes as indicators of inter-aquifer mixing, Wimmera region, Murray Basin, Southeast Australia , 2010 .
[118] Zhonghe Pang,et al. Groundwater recharge in an arid grassland as indicated by soil chloride profile and multiple tracers , 2017 .
[119] Q. Hua,et al. The ANTARES AMS facility at ANSTO , 2004 .
[120] A. Ueda,et al. A multi-tracer approach for assessing the origin, apparent age and recharge mechanism of shallow groundwater in the Lake Nyos catchment, Northwest, Cameroon , 2015 .
[121] J. McIntosh,et al. Impacts of agricultural irrigation recharge on groundwater quality in a basalt aquifer system (Washington, USA): a multi-tracer approach , 2011 .
[122] Kyoochul Ha,et al. Estimating recharge in fractured aquifers of a temperate humid to semiarid volcanic island (Jeju, Korea) from water table fluctuations, and Cl, CFC-12 and 3H chemistry , 2011 .
[123] S. Tweed,et al. Continuous monitoring of stream δ18O and δ2H and stormflow hydrograph separation using laser spectrometry in an agricultural catchment , 2015 .
[124] J. Fank,et al. Unsaturated zone flow and solute transport modelling with MIKE SHE: model test and parameter sensitivity analysis using lysimeter data , 2016, Environmental Earth Sciences.
[125] R. Poreda,et al. The groundwater geochemistry of the Bengal Basin: Weathering, chemsorption, and trace metal flux to the oceans , 2003 .
[126] Damià Barceló,et al. Trace organic chemicals contamination in ground water recharge. , 2008, Chemosphere.
[127] R. Reeves,et al. Using groundwater age and hydrochemistry to understand sources and dynamics of nutrient contamination through the catchment into Lake Rotorua, New Zealand , 2015 .
[128] L. N. Plummer,et al. A comparison of recharge rates in aquifers of the United States based on groundwater-age data , 2011 .
[129] S. Massuel,et al. Land clearing, climate variability, and water resources increase in semiarid southwest Niger: A review , 2009 .
[130] L. N. Plummer,et al. Effects and processes that can modify apparent CFC age , 2006 .
[131] John E. Solder,et al. Evaluating an unconfined aquifer by analysis of age‐dating tracers in stream water , 2015 .
[132] R. Becker,et al. One million year old groundwater in the Sahara revealed by krypton‐81 and chlorine‐36 , 2004, physics/0402092.
[133] K. Walraevens,et al. A new correction model for 14C ages in aquifers with complex geochemistry - application to the Neogene Aquifer, Belgium. , 2009 .
[134] P. Deschamps,et al. Quantifying paleorecharge in the Continental Intercalaire (CI) aquifer by a Monte-Carlo inversion approach of 36Cl/Cl data , 2014 .
[135] I. Cartwright,et al. Constraining groundwater recharge and the rate of geochemical processes using tritium and major ion geochemistry: Ovens catchment, southeast Australia , 2012 .
[136] E. Simpson,et al. Groundwater residence times and recharge rates using a discrete-state compartment model and 14C data , 1984 .
[137] I. Clark. Groundwater Geochemistry and Isotopes , 2015 .
[138] Jean E T Mclain,et al. Impacts of urbanization on groundwater quality and recharge in a semi-arid alluvial basin , 2011 .
[139] M. Taniguchi,et al. Determination of groundwater recharge using the change in soil temperature , 1993 .
[140] T. Gleeson,et al. Regional strategies for the accelerating global problem of groundwater depletion , 2012 .
[141] M. Andersen,et al. A New Method for Estimating Recharge to Unconfined Aquifers Using Differential River Gauging , 2014, Ground water.
[142] I. Simmers,et al. Groundwater recharge: an overview of processes and challenges , 2002 .
[143] W. Aeschbach–Hertig,et al. Accumulation of natural SF6 in the sedimentary aquifers of the North China Plain as a restriction on groundwater dating , 2010, Isotopes in environmental and health studies.
[144] B. Scanlon,et al. Implications of projected climate change for groundwater recharge in the western United States , 2016 .
[145] Doerthe Tetzlaff,et al. Comparing chloride and water isotopes as hydrological tracers in two Scottish catchments , 2010 .
[146] Lu Zhang,et al. Response of mean annual evapotranspiration to vegetation changes at catchment scale , 2001 .
[147] Diana M. Allen,et al. Modeled impacts of predicted climate change on recharge and groundwater levels , 2006 .
[148] S. Bauer,et al. A multi-tracer study in a shallow aquifer using age dating tracers 3H, 85Kr, CFC-113 and SF6 — indication for retarded transport of CFC-113 , 2001 .
[149] L. N. Plummer,et al. Age dating of shallow groundwater with chlorofluorocarbons, tritium/helium 3, and flow path analysis, southern New Jersey coastal plain , 1996 .
[150] P. Maloszewski,et al. DETERMINING THE TURNOVER TIME OF GROUNDWATER SYSTEMS WITH THE AID OF ENVIRONMENTAL TRACERS 1. Models and Their Applicability , 1982 .
[151] A. Herczeg,et al. Delivery of marine chloride in precipitation and removal by rivers in the Murray-Darling Basin, Australia , 1994 .
[152] Y. Travi,et al. Assessing Groundwater Residence Time in a Highly Anthropized Unconfined Aquifer Using Bomb Peak 14C and Reconstructed Irrigation Water 3H , 2013, Radiocarbon.
[153] A. Zuber,et al. On the calibration and validation of mathematical models for the interpretation of tracer experiments in groundwater , 1992 .
[154] G. Favreau,et al. Renewal rate estimation of groundwater based on radioactive tracers (3H, 14C) in an unconfined aquifer in a semi-arid area, Iullemeden Basin, Niger , 2001 .
[155] G. L. Allan,et al. Unsaturated zone tritium and chlorine 36 profiles from southern Australia: Their use as tracers of soil water movement , 1994 .
[156] John Karl Böhlke,et al. Effects of surface-water irrigation on sources, fluxes, and residence times of water, nitrate, and uranium in an alluvial aquifer , 2007 .
[157] R. Kalin. Radiocarbon Dating of Groundwater Systems , 2000 .
[158] P. Cook,et al. Spatial and Temporal Variability of Ground Water Recharge in Central Australia: A Tracer Approach , 2002, Ground water.
[159] M. Geyh,et al. 14C ages of confined groundwater from the Gwandu aquifer, Sokoto Basin, northern Nigeria , 1980 .
[160] S. Schiff,et al. A validation of the 3H/3He method for determining groundwater recharge , 1993 .
[161] Chen Li,et al. Assessing impact of irrigation water on groundwater recharge and quality in arid environment using CFCs, tritium and stable isotopes, in the Zhangye Basin, Northwest China , 2011 .
[162] U. Morgenstern,et al. Ultra low-level tritium measurement using electrolytic enrichment and LSC , 2009, Isotopes in environmental and health studies.
[163] M. Jackowicz-Korczynski,et al. Groundwater dating with 3H and SF6 in relation to mixing patterns, transport modelling and hydrochemistry , 2005 .
[164] P. Cook,et al. Site Characterization Using 3H/3 He Ground‐Water Ages, Cape Cod, MA , 1995 .
[165] T. Johnson,et al. Groundwater Age and Groundwater Age Dating , 2008 .
[166] Dongmei Han,et al. Using chlorofluorocarbons (CFCs) and tritium to improve conceptual model of groundwater flow in the South Coast Aquifers of Laizhou Bay, China , 2012 .
[167] A. Griffiths,et al. Evaporation and concentration gradients created by episodic river recharge in a semi-arid zone aquifer: Insights from Cl − , δ 18 O, δ 2 H, and 3 H , 2015 .
[168] J. Rueedi,et al. Constraining the age distribution of highly mixed groundwater using 39Ar: A multiple environmental tracer (3H/3He, 85Kr, 39Ar, and 14C) study in the semiconfined Fontainebleau Sands Aquifer (France) , 2007 .
[169] P. Cook,et al. Constraining spatial variability in recharge and discharge in an arid environment through modeling carbon‐14 with improved boundary conditions , 2017 .
[170] James W. Kirchner,et al. Aggregation in environmental systems – part 2: catchment mean transit times and young water fractions under hydrologic nonstationarity , 2015 .
[171] G. Gee,et al. Variations in Water Balance and Recharge Potential at Three Western Desert Sites , 1994 .
[172] W. C. Sidle. Comparison of 85Kr and 3H Apparent Ground‐Water Ages for Source Water Vulnerability in the Collyer River Catchment, Maine 1 , 2008 .
[173] Martin S. Andersen,et al. A multi-tracer approach to constraining artesian groundwater discharge into an alluvial aquifer. , 2017 .
[174] Yangxiao Zhou,et al. A critical review of groundwater budget myth, safe yield and sustainability , 2009 .
[175] J. Böhlke,et al. Groundwater recharge and agricultural contamination , 2002 .
[176] E. Vance,et al. Calculating net primary production and annual input of organic matter to soil from the amount and radiocarbon content of soil organic matter , 1992 .
[177] M. Maimone. Defining and Managing Sustainable Yield , 2004, Ground water.
[178] A. Vengosh,et al. A multi‐isotope (B, Sr, O, H, and C) and age dating (3H–3He and 14C) study of groundwater from Salinas Valley, California: Hydrochemistry, dynamics, and contamination processes , 2002 .