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1.
童英  王涛  洪大卫  韩宝福 《地质学报》2006,80(4):517-528
为进一步对阿尔泰造山带花岗岩进行物源示踪研究,本文选择几个较典型的同造山和后造山不同类型的花岗岩以及相伴生的基性岩进行长石Pb同位素的测定。结果显示花岗岩206Pb/204Pb范围为17.997~18.921,平均值为18.269;207Pb/204Pb范围为15.460~15.599,平均值为15.528;208Pb/204Pb范围为37.661~38.262,平均值为37.954;其μ值为9.19~9.71,集中于9.30~9.60,与典型的壳源花岗岩明显不同。在源岩判别图解上,主要落在洋岛玄武岩和岛弧玄武岩的范围内,所有点远离上地壳、下地壳和深海沉积物,其源区性质类似于洋岛玄武岩和岛弧玄武岩,与花岗岩同时代的伴生基性岩Pb同位素也具有相似的特征,说明两者可能具有相似的物源特征,即幔源组分。这与报道的Sr、Nd同位素的特征相一致,进一步证明阿尔泰花岗岩具有幔源组分。这种特点与其他造山带(如华南、喜马拉雅)明显不同,显示阿尔泰花岗岩的特殊性。该研究从另一个侧面证明中亚造山带存在一定规模的显生宙陆壳生长。  相似文献   

2.
虎拉林矿床位于中亚造山带东段额尔古纳地块之上,处于上黑龙江盆地西侧,东与砂宝斯、老沟等金矿床相邻。矿床载金矿物主要为薄膜状、粒状及脉状黄铁矿,成矿与早白垩世花岗斑岩、石英斑岩及隐爆角砾岩有密切联系。在对矿床详尽的野外工作基础上,通过对金属硫化物硫、铅同位素分析研究,探讨成矿物质来源,揭示矿床成矿规律。研究结果表明,上黑龙江盆地虎拉林矿床矿石及围岩中黄铁矿δ34SV-CDT分布于0.7‰~2.2‰,平均为1.18‰,集中于1.0‰左右,呈塔式分布,显示主要为岩浆硫特征;铅同位素206Pb/204Pb、207Pb/204Pb、208Pb/204Pb值分别为18.468~18.511、15.578~15.625、38.215~38.370,分布范围较小,且具有造山带铅特征。铅同位素μ值为9.41~9.50,均小于9.58;ω值为35.04~35.93,均值35.49,小于正常铅ω值;Th/U为3.60~3.66,显示出具有壳幔混源特征;在铅同位素构造环境判别图中,显示出具有下地壳部分熔融的特征;Δγ-Δβ图解显示矿床铅来源于上地壳与地幔混合带俯冲岩浆作用成因的铅同位素源区。综合矿床类型、矿体产出特征、矿体及围岩硫、铅同位素特征认为,虎拉林金矿区成矿物质主要来源于下地壳物质熔融形成的深部岩浆,同时存在上地幔与上地壳部分熔融物质的参与,成矿过程与早白垩世岩浆活动关系密切,形成于蒙古—鄂霍茨克洋闭合后伸展环境背景下。  相似文献   

3.
大别造山带中生代岩浆岩的物质来源和成因机制,是大陆碰撞造山带研究的热点和前沿问题之一.本文通过对北大别椒子岩和沙村岩体的早白垩世基性岩进行全岩的主量、微量元素特别是Pb-Sr-Nd同位素研究,探讨了北大别基性岩的岩浆源区性质及下地壳的贡献.椒子岩基性岩的(87Sr/86Sr);的范围为0.7072~0.7075,εNd(t)范围为-10.4~11.9;椒子岩和沙村基性岩的(206Pb/204Pb)i为16.464~17.394,(207Pb/204Pb)i为15.349~15.453,(208Pb/204Pb)i为37.338~37.976.这样的同位素组成显示岩浆源区中下地壳物质的贡献显著;尤其Pb同位素特征表明下地壳贡献来自大别造山带自身的下地壳.下地壳物质的参与可能与拆沉有关.  相似文献   

4.
对内蒙古红花尔基白钨矿矿床的赋矿花岗岩进行了全岩Sr、Nd同位素、钾长石Pb同位素以及LA-MC-ICPMS锆石Hf同位素特征研究。结果表明,从肉红色二长花岗岩、灰白色二长花岗岩到石英二长岩,它们的(~(87)Sr/~(86)Sr)_i值依次降低,均值分别为0.70525、0.70517和0.70482,_(εNd)(t)值则依次增加,均值分别为+2.2、+2.3和+3.1。2种二长花岗岩的钾长石Pb同位素值较均一,其中~(206)Pb/~(204)Pzb为18.258~18.276,~(207)Pb/~(204)Pb为15.507~15.512;~(208)Pb/~(204)Pb为37.994~38.018。3种花岗岩的锆石Hf同位素特征显示~(εHf)(t)值分别为+5.2~+10.4(均值+8.1)、+3.1~+9.8(均值+7.5)、+5.8~+14.4(均值+9.2)。赋矿花岗岩的Sr-Nd-Pb-Hf同位素特征指示其源岩物质很可能是以新元古代起源于亏损地幔的下地壳物质为主,石英二长岩可能是岩浆混合了少量地幔物质形成的包体。区域构造分析表明,红花尔基白钨矿矿床赋矿花岗岩岩浆源区的形成可能与新元古代古亚洲洋演化过程中俯冲大洋板块与上地幔的相互作用有关;早侏罗世,蒙古—鄂霍次克洋盆在本区闭合后,板块碰撞隆起的挤压环境触发了源岩物质的部分熔融,从而形成了赋矿花岗岩。  相似文献   

5.
西秦岭党川地区花岗岩的成因及其构造意义   总被引:9,自引:0,他引:9  
对西秦岭造山带党川地区的党川花岗岩和石门花岗岩进行了LA-ICP-MS锆石U-Pb定年、元素地球化学和Sr-Nd-Pb同位素组成的研究.结果表明, 党川花岗岩和石门花岗岩的岩浆结晶年龄分别为438±3Ma和220±2Ma.在岩石地球化学特征上, 党川花岗岩类似于C-型埃达克质岩石, 岩浆产生于增厚地壳物质的部分熔融, 而石门花岗岩类似于普通的地壳深熔型花岗岩.党川花岗岩的ISr=0.70660~0.70929, εNd (t) =-2.24~-4.48;石门花岗岩的ISr=0.70581~0.70804, εNd (t) =-3.73~-4.72.Sr-Nd同位素组成进一步指示它们的岩浆派生于地壳物质.然而, 在Pb同位素组成上, 党川花岗岩和石门花岗岩存在着明显的差异.党川花岗岩以相对富放射成因Pb同位素组成为特征, 初始Pb同位素比值为: 206Pb/204Pb=18.288~18.484, 207Pb/204Pb=15.677~15.693, 208Pb/204Pb=38.182~38.283;而石门花岗岩以相对低的放射成因Pb同位素组成为特征, 初始Pb同位素比值为: 206Pb/204Pb=17.989~18.189, 207Pb/204Pb=15.560~15.567, 208Pb/204Pb=37.982~38.000.这表明党川花岗岩和石门花岗岩的岩浆来自于不同地壳物质的部分熔融.区域分析表明, 西秦岭党川地区中古生代和早中生代的岩浆事件、岩石成因机制及岩浆源区均可与东秦岭地区北秦岭构造单元相对比, 由此说明西秦岭党川地区是东秦岭地区北秦岭构造单元的西延, 并且东秦岭地区早中生代南秦岭块体向北秦岭块体的大陆俯冲作用向西一直延至到西秦岭地区.   相似文献   

6.
龙首山中段芨岭早古生代花岗岩体与碱交代型铀矿化关系密切,是龙首山花岗质岩浆活动带重要组成部分,但人们对芨岭岩体的成因、岩浆源区性质以及与铀成矿之间的关系还了解得不多.花岗岩体Sr-Nd-Pb同位素研究结果表明,不同期次花岗岩(早古生代第一次灰白色二长花岗岩、第二次肉红色二长花岗岩、晚古生代肉红色细粒(钾长)花岗岩)的(87Sr/86Sr)i值均介于大陆地壳范围内(0.706~0.718),同时有(87Sr/86Sr)i均值先升后降(0.707 12→0.710 00→0.707 89)、εNd(t)均值先降后增(-7.00→-8.09→-4.65) 的特征.不同期次花岗岩体tDM2均值分别为1 735.50 Ma、1 814.66 Ma、1 737.50 Ma,接近残留地壳年龄,表明岩体的主要物质来源为古元古代龙首山群地层,并有部分幔源组分或年轻地壳物质的加入.岩体的Pb同位素比值较高,灰白色二长花岗岩的206Pb/204Pb=18.328~19.240,207Pb/204Pb=15.549~15.619,208Pb/204Pb=38.390~39.075,μ=9.37~9.43(平均为9.40);肉红色二长花岗岩的206Pb/204Pb=30.209~43.529,207Pb/204Pb=16.097~25.076,208Pb/204Pb=39.107~39.420,μ=18.47~30.24(平均为24.355);肉红色细粒(钾长)花岗岩的206Pb/204Pb=19.071~19.767,207Pb/204Pb=15.577~25.438,208Pb/204Pb=38.682~42.593,μ=9.36~9.49(平均为9.41),显示为高放射性成因铅同位素特征,表明岩体的铅为混合来源但以壳源为主.Sr-Nd-Pb同位素对比研究表明,钠交代岩(矿石)的(87Sr/86Sr)i、εNd(t)与早古生代第二次侵入的肉红色斑状二长花岗岩极为相似,在(87Sr/86Sr)iNd(t)图解投影点也吻合,表明研究区碱交代型铀成矿主要与早古生代第二次侵入有关.其他期次花岗岩体同样具有高铀背景值,表明其可能也提供了一定的铀源.   相似文献   

7.
齐玥  罗金海  巫嘉德  陈福坤 《岩石学报》2016,32(7):2015-2028
花岗质岩石地球化学组成可以为研究下地壳物质组成提供有效的信息。本文报道出露于华北克拉通中部带南部地区的蚕坊花岗闪长岩体和孤峰山花岗闪长岩体同位素年代学和地球化学组成,限定研究地区下地壳地球化学特征。锆石U-Pb分析结果表明,蚕坊岩体形成于130Ma左右,与孤峰山岩体的形成时间相当。蚕坊岩体和孤峰山岩体具有高硅、低镁、富钠的主量元素特征,富集大离子亲石元素K、Rb、Ba、Sr等,Sr/Y值高,亏损高场强元素Nb、Ta和Ti,显示明显Pb正异常。蚕坊岩体和孤峰山岩体具有相似的Sr-Nd-Pb同位素组成特征,前者初始87Sr/86Sr比值0.7071~0.7075,初始εNd值-18.2~-15.7;后者为0.7069~0.7074和-16.5~-15.6;Pb同位素组成特征显示岩浆源区与下地壳存在亲缘性。结合地质背景和同位素混合模拟计算表明,太古代下地壳和古元古代新生的玄武质下地壳可能是岩浆源区的主要物质组成,并推断早白垩世华北克拉通太行山以西地区壳-幔相互作用主要表现为软流圈地幔上涌,导致区域热异常,引发下地壳部分熔融和成岩浆作用。  相似文献   

8.
新疆东准噶尔绿源金矿床地质特征与金成矿物质来源分析   总被引:1,自引:0,他引:1  
绿源浅成低温热液型金矿床位于野马泉-琼河坝古生代岛弧带东段的琼河坝矿集区。赋矿地层为一套中酸性火山熔岩夹火山碎屑岩建造。矿体呈似层状、条带状、透镜状,多受断裂构造控制。其热液成矿作用可分为4个阶段:石英-黄铁矿阶段(S1)、石英(玉髓)-金-黄铁矿阶段(S2)、石英-金-多金属硫化物阶段(S3)、石英-碳酸盐阶段(S4)。金主要赋存于S2和S3阶段。本文对该矿床开展S、Pb同位素及硫化物稀土元素研究,拟揭示其成矿物质来源。结果表明,绿源金矿床金属硫化物的硫同位素组成比较稳定,δ34S集中于+0.2‰~+2.8‰,均值为+1.35‰,显示出岩浆硫的组成特征。矿石与围岩中硫化物的硫同位素δ34S值一致,表明硫可能来源于矿区巴塔玛依内山组火山岩地层。S2和S3阶段硫化物的铅同位素~(206)Pb/~(204)Pb=16.457~18.084、~(207)Pb/~(204)Pb=15.267~15.635、208Pb/~(204)Pb=36.472~38.379,另一件长石的Pb铅同位素~(206)Pb/~(204)Pb=18.546、~(207)Pb/~(204)Pb=15.509、208Pb/~(204)Pb=38.183,μ值介于9.11~9.58之间,ω值介于33.97~38.61之间。上述各铅同位素比值变化范围较大,远远大于正常铅同位素组成的变化范围。结合同位素组成特征及特征参数法认为绿源金矿床矿石Pb为异常Pb,铅源为混合来源,一部分来源于上地壳物质,一部分来源于地幔物质。硫化物稀土元素特征与火山岩类似,暗示成矿物质可能来源于火山岩地层。H、O同位素特征显示,绿源金矿成矿流体以大气降水为主,有少量岩浆水的加入。综合S、Pb同位素、稀土元素等分析,本文认为绿源矿区岩浆活动和成矿作用具有壳幔混合源特征,成矿物质具深源特征,主要直接来自赋矿火山岩。  相似文献   

9.
为明确西华山钨矿床成矿物质的来源,本文以矿床中的硫化物和钾长石为研究对象,通过硫化物中硫、铅同位素的研究,对矿床成矿物质来源进行探讨。结果表明,矿石中黄铁矿δ34S值为-2.1‰~0.4‰,辉钼矿δ34S值为4‰~7.9‰,硫主要来源于岩浆。辉钼矿、黄铁矿、钾长石的206 Pb/204 Pb值分别为18.718~18.849、18.640~18.745、18.698~18.792;207Pb/204Pb值分别为15.762~15.770、15.704~15.747、15.697~15.724;208 Pb/204 Pb值分别为39.094~39.134、38.902~39.056、38.904~39.012。由此判断矿床中矿石铅与岩石铅同位素组成具有同源关系,矿石铅主要来自与岩浆作用有关的上地壳;成矿物质来源于上地壳重熔形成的花岗岩浆,即上地壳岩浆侵位,为成矿作用提供部分成矿物质,同时也暗示成矿物质是由体现壳源特征的西华山复式岩体提供。  相似文献   

10.
琼河坝矿集区花岗岩体的Sr-Nd,Pb同位素特征及地质意义   总被引:1,自引:0,他引:1  
琼河坝地区在志留纪—泥盆纪频繁的岩浆活动与成矿关系密切。矿集区中花岗岩ΣREE含量23.16×10-6~110.24×10-6,平均值68.19×10-6,总体上稀土含量较低。(La/Yb)N=3.23~10.97平均值为5.74,显示轻、重稀土分馏不明显,且轻稀土元素较重稀土元素富集。蒙西、琼河坝、和尔赛三个花岗岩体Sr-Nd、Pb同位素值很近,表明琼河坝花岗岩具有相近的成因。(87Sr/86Sr)i值为0.704 01~0.704 42,平均值为0.704 19;(143 Nd/144 Nd)i值为0.512 300~0.512 478,平均值为0.512 415;(208Pb/204Pb)i值17.600~17.910,平均值为17.738,(207Pb/204Pb)i值为15.410~15.547,平均值为15.459,(206Pb/204Pb)i值为37.250~38.019平均值为37.534。表现出壳幔混染的特征。εSr(t)值为-0.3~7.8,εNd(t)值为2.9~7.2,为较小的正值,表现出洋壳的特征。花岗岩Al2O3,Sr,Y,Yb和δEu的特征与埃达克岩相近,可能为俯冲洋壳熔融的产物。因此该地区众多铜矿点的出现,应该与埃达克岩有关。  相似文献   

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12.
南秦岭下地壳组成及岩石圈的拆离俯冲作用   总被引:3,自引:3,他引:3       下载免费PDF全文
根据新提供的Pb同位素组成及岩石地球化学研究成果,本文进一步证实了位于北秦岭北界的明港地区发育的早中生代安山玄武质火山角砾岩岩筒所携带的下地壳捕虏体属于南秦岭。所恢复的南秦岭下地壳剖面自下而上为:底侵成因的变辉长岩-基性麻粒岩(其中含有榴辉岩及辉石岩的透镜体)-酸性麻粒岩。秦岭造山带总体的岩石因模型为:南秦岭(扬子块体)向北拆离俯冲,北秦岭地壳向华北仰冲,华北岩石因呈楔状插入秦岭造山带,拆离面约在中、下地壳之间。南秦岭俯冲岩片延伸的范围在平面上有可能达到400km。  相似文献   

13.
青藏高原综合观测研究站的回顾与展望   总被引:1,自引:1,他引:0  
赵林  郭东信 《冰川冻土》1998,20(3):287-292
中国科学院青藏高原综合观测研究站从1988年建站到1998年以来,在各个方面均取得了长足的发展,横向生产性项目的开展和完成不仅解决了部队和地方的实际问题,而且缓和了观测研究站在运行过程中所面临的经费严重不足的问题,同时也为我所冻土专业研究人员提供了在生产中实践的机会,在基础理论研究方面,承担了国家攀登计划项目,国家基金项目,中国科学院重点项目和中国科学院冰冻圈专项项目等的研究工作,在多年冻土变化,  相似文献   

14.
铀钍的地球化学及对地壳演化和生物进化的影响   总被引:10,自引:2,他引:8  
本文论述了在含挥发份和贫挥发份条件下U、Th的迁移行为及其对地球和行星演化的影响,并阐述了造成地球独特地质演化历史的原因。提出了U、Th在地球中的迁移模式以及该模式对地壳形成、演化的控制作用和对生物发展演化的可能影响。  相似文献   

15.
The experimental variogram computed in the usual way by the method of moments and the Haar wavelet transform are similar in that they filter data and yield informative summaries that may be interpreted. The variogram filters out constant values; wavelets can filter variation at several spatial scales and thereby provide a richer repertoire for analysis and demand no assumptions other than that of finite variance. This paper compares the two functions, identifying that part of the Haar wavelet transform that gives it its advantages. It goes on to show that the generalized variogram of order k=1, 2, and 3 filters linear, quadratic, and cubic polynomials from the data, respectively, which correspond with more complex wavelets in Daubechies's family. The additional filter coefficients of the latter can reveal features of the data that are not evident in its usual form. Three examples in which data recorded at regular intervals on transects are analyzed illustrate the extended form of the variogram. The apparent periodicity of gilgais in Australia seems to be accentuated as filter coefficients are added, but otherwise the analysis provides no new insight. Analysis of hyerpsectral data with a strong linear trend showed that the wavelet-based variograms filtered it out. Adding filter coefficients in the analysis of the topsoil across the Jurassic scarplands of England changed the upper bound of the variogram; it then resembled the within-class variogram computed by the method of moments. To elucidate these results, we simulated several series of data to represent a random process with values fluctuating about a mean, data with long-range linear trend, data with local trend, and data with stepped transitions. The results suggest that the wavelet variogram can filter out the effects of long-range trend, but not local trend, and of transitions from one class to another, as across boundaries.  相似文献   

16.
共和盆地层状地貌系统与青藏高原隆升及黄河发育   总被引:1,自引:0,他引:1       下载免费PDF全文
利用卫星遥感影像,结合实地调查和测年结果,对共和盆地层状地貌系统进行了解译、分析。研究表明,共和盆地层状地貌系统由山麓剥蚀面、洪积扇面、盆地面以及黄河阶地面构成,其空间结构、物质组成对发生于早更新世早期的青藏运动C幕和中更新世末期的共和运动反映清晰。青藏运动C幕使青藏高原主夷平面在高原差异性隆升中彻底解体,垂直变形量高达1700m。共和运动使黄河在0.11Ma进入共和盆地,其后黄河平均以3.5mm/a的侵蚀速率下切盆地,同时在盆地边部的山前古冲洪积扇以大致相近的速率被抬升,最终导致高差在2000m左右的层状地貌系统的出现。  相似文献   

17.
从榴辉岩与围岩的关系论苏鲁榴辉岩的形成与折返   总被引:4,自引:1,他引:4       下载免费PDF全文
位于华北和扬子两板块碰撞带中的苏鲁榴辉岩形成的温压条件不但是超高压,而且是高温。榴辉岩的PTt轨迹表明其为陆-陆磁撞俯冲带的产物。榴辉岩的区域性围岩花岗质片麻岩为新元古代同碰撞期花岗岩,榴辉岩及其他直接围岩皆呈包体存在于其中,并见新元古代花岗岩呈脉状侵入榴辉岩包体中。区域性围岩新元古代花岗岩的锆石中发现有柯石英、绿辉石等包裹体,表明新元古代花岗岩的组成物质也经受过超高压变质作用,且榴辉岩与围岩新元古代花岗岩的锆石U-Pb体系同位素年龄基本相同。但新元古代花岗岩所记录的变质作用和变形作用期次(或阶段)却少于榴辉岩。椐上述可得如下推断:超高压榴辉岩与新元古代花岗岩岩浆是同时在碰撞带底部(俯冲板块前部)形成的;榴辉岩的第一折返阶段是由新元古代花岗岩岩浆携带上升的,其第二折返阶段是和新元古代花岗岩一起由逆冲及区域性隆起而上升,遭受剥蚀。  相似文献   

18.
南海位于印度板块、欧亚板块和太平洋板块之间,是世界上最大的边缘海,其构造位置处于太平洋构造域和特提斯构造域,地质构造复杂.关于南海形成演化的动力学机制存在有多种不同观点,其中最重要的一个观点是印度板块与欧亚板块的碰撞致使华南地块和印支地块地幔物质沿东南方向蠕动,从而导致南海的海底扩张.从特提斯的演化规律,以及新特提斯的闭合过程来看,南海并不是特提斯洋的残留海,而是新特提斯在闭合过程中配合印度板块与欧亚板块碰撞导致华南地块和印支地块地幔物质东南方向蠕动的动力学机制下,在南海重新活化的结果.  相似文献   

19.
20.
In his last lifetime essay, “A Few Words about the Noosphere”, Academician V.I. Vernadsky (1944) wrote that all living organisms on the planet, including man, are integral to the biosphere of the Earth, its material and energy structure and cannot be physically independent of it even for a minute. However, the substrate that generates all living beings and is no less tightly bound to the biosphere has always been characterized by a significant geochemical heterogeneity, traced both in the vertical and in the lateral structure of all geospheres.
The present work is devoted to three most important aspects of modern geochemistry and biogeochemistry:
  • — evolution of the ecological and geochemical state of the environment under conditions of a virgin (anthropogenically untouched) biosphere;
  • — structural features of the geochemical organization of the modern noosphere;
  • — specificity of the interaction of living matter with the environment under increasing anthropogenic load.
On the basis of theoretical concepts of biogeochemistry and geochemical ecology, formulated in the works of V.I. Vernadsky, A.P. Vinogradov, A.E. Fersman, B.B. Polynov, A.I. Perel’man, M.A. Glazovskaya, V.V. Kovalsky, E. Odum, B. Commoner, E.I. Kolchinskii and others, the author puts forward a hypothesis that there exist two qualitatively different stages in the evolution of the biosphere.The first stage is recognized as the period of natural evolution of the biosphere during which it evolves successively into a more complex and more biogeochemically specialized object. In the course of the geological time, this constantly results, on the one hand, in an increase in species diversity and the perfection of individual species, and, on the other hand, to directed improvement and a greater differentiation of the geochemical conditions of the environment. At this stage, the evolution of all systems of the biosphere that were controlled by the mechanisms of self-organization and self-regulation resulted in the establishment of a dynamic equilibrium, which was responsible for the cycling of all essential chemical elements and therefore providing ecologically optimal geochemical conditions in all ecological niches and for all species and biocenoses inhabiting the biosphere at any given moment.The beginning of the second stage is related to the appearance of reason and qualitative changes in the biosphere caused by the goal-directed activity of the human mind, as an entirely new geological force that appeared to be able not only to disrupt the functioning of natural mechanisms of self-regulation and selforganization, but also to transform the environment in the intersts of a single biological species, Homo sapiens. A direct consequence of this change was the uncontrolled transformation of the natural environment, during which the primary structure (geochemical background) created in the course of billions of years was eventually superimposed by a qualitatively new layer of anthropogenically-derived chemical elements and compounds, thus building an interference pattern of a new geochemical field with which practically all modern living organisms are now forced to interact.An outstanding feature of the new evolutionary stage of the natural environment, called by Vernadsky the noosphere, is that biogeochemical changes at this stage proceed at a rate which exceeds that required for the living matter to adapt to these changes. The result is the disruption of the existing parameters of the biological cycle, leading to the emergence of a significant number of endemic diseases of geochemical nature.The proposed approach was used to prove the anthropogenic genesis of existing geochemical endemic diseases and explain the mechanisms of their appearance. In addition, this approach allowed us to develop a new methodology for mapping zones of ecological and geochemical risk and noticeably simplify the procedure of monitoring distribution and prevention of all diseases of geochemical nature.  相似文献   

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