首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 93 毫秒
1.
唐藏石英闪长岩体出露于北秦岭造山带西段,侵入于丹凤群火山沉积岩系之中,主要矿物组成为斜长石、角闪石、石英、钾长石、黑云母等,形成时代为454Ma。该岩体SiO2= 62.02%~64.26%;Al2O3=16.55%~17.45%,MgO=1.71%~2.09%, Sr = (1069~1296)×10-6(>400 ×10-6),Y = (11.6~13.81)×10-6 (<18×10-6),Yb = (0.96~1.14)×10-6(<1.9 ×10-6),Sr/Y=80.98~108.19(>40),稀土总量(∑REE=217.88×10-6~355.07×10-6)较高,LREE强烈富集,重稀土亏损,Eu负异常不明显(LREE/HREE=17.72~25.82;LaN/ YbN=44.56~53.85;δEu=0.82~1.0),显示出典型埃达克岩的岩石地球化学特点。在以原始地幔标准化的微量元素分布图中,大离子亲石元素(LILE)K、Th、Rb、Ba、Sr等富集,高场强元素(HFSE)Ta、Nb、Y、Yb等较相邻元素相对亏损,微量元素曲线分布形式及稀土元素配分模式与典型地区埃达克岩分布形式一致。研究表明,该岩体Na2O=4.99%~6.91%, Na2O-2>K2O,Mg#=0.59~0.63, A/CNK=0.82~1.01,σ=4.24~2.24,为富钠偏铝质高镁埃达克岩。唐藏埃达克岩体岩浆源于早古生代秦岭商丹洋向北俯冲消减洋壳板片的部分熔融,岩浆在上升过程中与地幔楔发生反应。北秦岭早古生代埃达克岩的确定为探讨秦岭早古生代构造演化提供了新的证据。  相似文献   

2.
首次利用锆石LAICPMS UPb法测得甘肃火石山东北部侵位于长城系、蓟县系以及志留系中的哈尔根头口布花岗岩形成于中泥盆世早期(同位素年龄为387.6±8.2Ma),同时发现该花岗岩体内存在晚蓟县世产物(继承性锆石年龄1172±7Ma)。哈尔根头口布花岗岩体主要由钾长花岗岩、二长花岗岩、花岗岩组成,岩石具有高硅(SiO2含量为70.28%~79.4%)、富碱(Na2O+K2O为6.52%~9.11%)、低铝(Al2O3含量为8.82%~14.05%)、低Sr(含量为40~150×10-6,平均为101.5×10-6)的特征、岩石的δ<3.3、A/CNK值为0.8~1.1,为钙碱性准铝质到弱过铝质岩石;稀土元素具有明显的LREE富集(LREE/HREE=2.89~16.4, LaN/YbN= 1.82~25.18)和Eu亏损,相对富集Rb、Th、Ce和Sm,而亏损Ta、Nb、Zr、Hf。综合分析认为该花岗岩为A型花岗岩,产于构造挤压向构造伸展转换的地质背景之中。  相似文献   

3.
野马山岩基位于中祁连地块西段,由早期岩体(花岗闪长岩、斑状二长花岗岩)和晚期岩体(二长花岗岩)组成,二者呈侵入接触。LA-ICPMS锆石U-Pb定年表明,早期岩体侵位时代为中奥陶世((469.0±1.3)Ma),晚期岩体侵位时代为晚奥陶世((450.0±1.0)Ma)。早期岩体Si O2=59.8%~64.2%,K2O/Na2O1,且A/NKC=0.8~1.0,为准铝质岩石;微量元素相对富集Rb、U、Th和亏损Ba、Nb、Ta、Sr、P、Ti;稀土总量为97.7×10-6~185×10-6,且(La/Yb)N=5.57~12.47,LREE/HREE=7.7~11.3,具轻重稀土分馏明显,轻稀土富集,弱Eu负异常(δEu=0.66~0.89)特征。晚期岩体Si O2=69.8%~76.5%、K2O/Na2O=1.2~1.7、A/NKC=1.0~1.1,属弱过铝质花岗岩;稀土总量为78.97×10-6~244.92×10-6,轻重稀土分馏不明显((La/Yb)N=1.90~5.72),强Eu负异常(δEu=0.11~0.24)。岩石地球化学特征表明,野马山岩基早期岩体为I型花岗岩,形成于俯冲环境,晚期岩体为高分异的I型花岗岩,形成于后碰撞环境。结合岩体产出的区域构造位置及区域地质演化,认为早古生代北祁连洋发生了双向俯冲,野马山岩基为其向南俯冲碰撞的产物。  相似文献   

4.
熊子良  张宏飞  张杰 《地学前缘》2012,19(3):214-227
文中研究了北祁连东段冷龙岭地区毛藏寺岩体和黄羊河岩体的年代学、地球化学和Sr-Nd同位素组成。毛藏寺岩体主要岩石类型为花岗闪长岩。锆石U Pb定年获得花岗闪长岩岩浆结晶年龄为(424±4) Ma。花岗闪长岩具有高的Mg#(约55),K2O/Na2O=0.77~0.91,A/CNK=0.92~0.94,表明岩石属准铝质。在微量元素组成上,花岗闪长岩富集LILE、亏损HFSE,轻重稀土分异明显[(La/Yb)N=16.9~19.5],具有弱的Eu负异常(Eu/Eu*=0.75~0.83);花岗闪长岩具有ISr=0.706 3~0.706 5,εNd(t) =-1.5~-1.1,TDM=1.10~1.16 Ga。这些地球化学特征和Sr Nd同位素组成表明,花岗闪长岩岩浆源区为基性下地壳变玄武质岩石,但在成岩过程中有少量幔源物质的加入。黄羊河岩体主要由钾长花岗岩组成,其岩浆结晶年龄为(402±4) Ma。岩石富碱(K2O+Na2O=6.91‰~7.66%),K2O/Na2O>1,A/CNK=0.97~1.05。钾长花岗岩富集LILE及HFSE,轻重稀土元素分馏中等[(La/Yb)N =10.6~17.8],并具有明显的负Eu异常(Eu/Eu*=0.43~0.68),表明钾长花岗岩具有铝质A型花岗岩的地球化学特征。钾长花岗岩具有ISr=0.710 3~0.711 3,εNd(t)=-6.7~-6.0,TDM=1.46~1.55 Ga,反映岩浆主要来自地壳中长英质物质的部分熔融。冷龙岭地区花岗岩类的岩石成因及其岩浆演化揭示了北祁连山造山带从加里东早期的挤压构造体制向加里东晚期的伸展构造体制的演化。这些花岗岩类形成于碰撞后构造背景,岩浆的产生可能与俯冲的北祁连洋板片的断离作用有密切联系。  相似文献   

5.
白云鄂博巴音珠日和岩体位于华北板块北缘中段的东升庙-太仆寺旗岩浆岩带上。该岩体由角闪辉长岩和石英闪长 岩组成,其地球化学性质显示:低硅高铝,SiO2=49.72%~59.34%,Al2O3=15.79%~19.50%,Mg#=38~44 ;大离子亲石元素 (LILE)富集(如Ba=829×10-6~1104×10-6,Sr=502×10-6~726×10-6)、高场强元素(HFSE,Nb,Ta等)亏损、轻稀土(LREE)富集(La/Yb)N=5.0~11.4,多数样品为弱负铕异常(δEu=0.63~1.09);低Sr/Nd(12~24)和La/Nb(1.33~2.39)比值显示了板内岩浆作用特征。两个角闪辉长岩的高Nb/Th (9.6~18.4)比值显示了非弧玄武质岩浆特征。岩体的锆石LA-ICP-MS U-Pb年龄为(265±2) Ma,代表岩体侵位年龄。锆石εHf(t )=-13.0~-17.2、t DMC=2.12~2.38 Ga,显示了较明显的下地壳基底组 分的加入。巴音珠日和岩体可能为后碰撞背景下,地壳的伸展减薄造成基性下地壳的部分熔融,熔体与来自富集地幔的玄 武质岩浆发生部分混合,随后经进一步分异结晶作用形成。  相似文献   

6.
吉林红旗岭镁铁-超镁铁质岩的地球化学特征及地质意义   总被引:1,自引:0,他引:1  
唐文龙  杨言辰 《世界地质》2007,26(2):164-172
吉林红旗岭钼镍矿的岩石类型主要包括橄榄岩、橄榄辉石岩、辉石岩和辉长岩等。岩体的主量元素显示拉斑玄武岩岩浆分异演化的趋势。岩石中∑REE=39.48×10-6~53.86×10-6,LREE/HREE=1.07~3.89,(La/Yb)N=1.14~10.00,轻稀土富集,重稀土亏损,无明显的负铕异常。微量元素以明显富集大离子亲石元素(Rb、Ba),亏损高场强元素,有Nb、Ti的负异常为特征,显示出俯冲带幔源岩石的成分特征。该区岩石可能为受到俯冲带流体交代过的岩石圈地幔经减压部分熔融所产生的岩浆在上侵过程中,同化混染了部分壳源物质组分的产物。  相似文献   

7.
刘杰勋  郭巍  朱凯 《岩石学报》2016,32(9):2889-2900
本文对辽东岫岩地区帽盔山二长花岗岩、荒地花岗闪长岩和朝阳苏长辉长岩进行了岩相学、地球化学、LA-ICP-MS U-Pb定年。帽盔山二长花岗岩主量元素具有富Si、Al、K,贫Fe、Mg、Ca的特征;微量元素亏损Sr、P、Eu、Ti,富集K、Rb、Th等不相容元素,元素地球化学特征表明岩体为铝质A型花岗岩(A/CNK=1.03~1.06,A/NK=1.11~1.12)。荒地花岗闪长岩的SiO_2含量为64.1%~70.8%,K_2O/Na_2O的比值为0.87~1.08,含铝指数A/CNK和A/NK分别为0.98~1.02和1.31~1.55,微量元素富集K、Rb、Sr、Ba等大离子亲石元素,亏损Nb、P、Ti等高场强元素,轻重稀土分馏强烈,(La/Yb)N值为13.41~68.2,属于准铝质到过铝质I型花岗岩。朝阳苏长辉长岩的SiO_2含量为54.8%~58.3%,K_2O/Na_2O的比值为0.57~0.78,微量元素富集K、Ba、Sr等大离子亲石元素,亏损Nb、U、P、Ti等高场强元素,富集La、Ce、Pr、Nd等轻稀土元素。测年结果显示帽盔山二长花岗岩的锆石年龄为137Ma,荒地花岗闪长岩的锆石年龄为139Ma,朝阳苏长辉长岩的锆石年龄为139Ma,均形成于早白垩世。结合构造背景图解,帽盔山二长花岗岩、荒地花岗闪长岩和朝阳苏长辉长岩均为伸展构造环境下的岩浆活动产物。结合三个岩体的时空特点,表明在早白垩世时期,辽东岫岩地区处于非造山的伸展环境,且岩石圈减薄及伸展活动的发展有自深部至浅部的特点,是华北板块东部伸展地球动力学背景的具体体现。  相似文献   

8.
祁连南缘柴达木山花岗岩岩体,位于青海省大柴旦镇,岩性主要为似斑状二长花岗岩、花岗斑岩、环斑花岗岩等。本文选择代表性岩石进行了主量元素、微量元素和LA- ICP- MS锆石U- Pb年代学研究,旨在说明其岩浆成因、构造环境及意义。结果表明,柴达木山岩体K2O/Na2O比值变化为1. 11~4. 41,里特曼指数介于1. 31~2. 20,A/CNK介于1. 06~1. 66,地球化学特征显示,柴达木山岩体具有高钾钙碱性、过铝质、高分异I型花岗岩特征。在原始地幔标准化的微量元素分布图中,表现出不同程度的富集大离子亲石元素(LILE)Cs、Pb、K等和轻稀土元素(LREE),相对亏损高场强元素(HFSE)Y、Yb,具有明显的Ba、Nb、Ta、Sr、P、Ti负异常。稀土元素总量为207. 94×10-6~418. 40×10-6,LREE/HREE稀土元素之比为5. 67~10. 29,(La/Yb)N比值为5. 88~13. 84,δEu介于0. 09~0. 50显示负异常,δCe介于0. 99~1. 36,Sr/Y介于0. 87~3. 47,Rb/Sr介于1. 22~15. 45,Nb/Ta介于0. 63~11. 88,稀土元素球粒陨石标准化分配型式表现为轻稀土相对富集,重稀土相对亏损的右倾型且Eu负异常较明显。选取其中四个样品进行LA- ICP- MS锆石U- Pb定年,结果表明花岗斑岩(D3755- 1)206Pb/238U年龄范围为400Ma~407Ma,其加权平均年龄为404. 6±2. 9Ma(MSWD=0. 094);花岗斑岩(PM11- 1)206Pb/238U年龄范围为413~424Ma,其加权平均年龄为418. 4±3. 0Ma(MSWD=0. 30);二长花岗岩(D1028- 1)的206Pb/238U年龄范围为426Ma~436Ma,其加权平均年龄为434. 3±2. 0Ma(MSWD=0. 21);花岗闪长岩(D1506- 1)的206Pb/238U年龄范围为434Ma~439Ma,其加权平均年龄为437. 2±2. 6Ma(MSWD=0. 076),暗示柴达木山岩体的结晶年龄至少为404. 6Ma~437. 2Ma,形成的地质时期为早志留世- 早泥盆世。祁连南缘- 柴北缘早古生代岩浆活动持续时间长(372Ma~473Ma),具有多期次,主要年龄段为450~470Ma、430~450Ma、410~430Ma、400~410Ma、370~400Ma,其中430~450Ma、400~410Ma分别代表了花岗岩类侵入的两个主峰期。早期(430~470Ma)反映了南祁连洋板块向北俯冲于祁连陆块之下,柴达木陆块的继续俯冲,祁连陆块由北向南逆冲到柴达木陆块之上形成了陆陆碰撞带等一系列持续的岩浆侵入活动;晚期(370~430Ma)反映了柴达木陆块与中南祁连板块碰撞后深俯冲板块拆沉- 折返及碰撞后造山带上不同块体之间的伸展、滑塌等一系列岩浆侵入活动。在空间分布上,柴北缘赛什腾山- 嗷崂山代表了岩浆早期活动,主要为I型花岗岩;绿梁山- 大柴旦地区- 锡铁山- 都兰一带,代表了岩浆晚期活动,具有I和S型花岗岩特征。柴达木山岩体代表了祁连南缘岩浆多期活动,与柴北缘岩浆活动具有同时性。  相似文献   

9.
粤北下庄花岗岩地球化学特征与成因研究   总被引:10,自引:0,他引:10  
印支期下庄花岗岩是粤北贵东复式花岗岩体的重要组成部分, 其岩石的主要元素显示出富硅、富碱、过铝质等特征; 微量元素表现为富集Rb、Th、U、Ce、Sm、Y, 亏损Ba、Sr、P、Ti;LREE轻微富集 (LREE/HREE=7 .54~11 18, (La/Yb)N=7 .36~16.03), Eu亏损明显 (δEu=0 .24~0 .33); 构造环境判别显示下庄花岗岩属于后碰撞花岗岩范畴。这些特征表明, 下庄岩体属于典型的壳源型花岗岩, 是在地壳伸展减薄的构造背景下, 通过以泥质岩和砂质岩组成的古元古代变质沉积岩部分熔融而形成。  相似文献   

10.
黑龙江东部马家街群的岩石地球化学特征及其沉积时代   总被引:6,自引:0,他引:6  
位于黑龙江省东部的马家街群主体岩性为变泥质岩,对其进行主量和痕量元素分析,SiO2含量为61.5%~77.68%,Al2O3含量为9.74%~21.08%,K2O含量为2.73%~6.34%,Na2O含量为0.1%~2.66%,(La/Yb)N=6.55~10.79,Eu/*Eu=0.45~0.64,(Gd/Yb)N=1.28~1.94,表明马家街群物源主要来自长英质岩石组成的后太古宙上陆壳,并具有大陆岛弧性质。通过对马家街群下伏基底片麻岩进行锆石LAICPMS UPb定年,11颗锆石的定年结果显示,206Pb/238U年龄为499~508Ma,加权平均年龄为504±2Ma(n=11,MSWD=0.44);定年的锆石晶形较好,具震荡生长环带,属典型的岩浆成因,因此504±2Ma这一年龄代表了花岗片麻岩原岩形成时代,而变质时代则应更晚,表明沉积在基底片麻岩之上的马家街群形成时代在晚寒武世之后。马家街群的地球化学特征及其下伏片麻岩年代学的特点,反映了物源区可能来自于泛非期佳木斯地块与相邻地块拼合而成的稳定陆块。  相似文献   

11.
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   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号