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1.
为探讨会泽铅锌矿田成矿流体总硫同位素组成、成矿温度、硫源及还原硫的形成机制,在分析前人的硫同位素数据基础上对麒麟厂矿床上部原生矿体硫化物(黄铁矿、闪锌矿和方铅矿)及麒麟厂和矿山厂矿床外围新发现的硫酸盐矿物(重晶石)进行了硫同位素研究。结果显示,原生矿体中的硫化物的δ34S变化为8.0‰~17.68‰,成矿流体中硫同位素已达分馏平衡;矿床外围的硫酸盐δ34S变化为17.95‰~24.30‰。利用共生矿物对Pinckney法,估算获得成矿流体的δ34SΣS为14.44‰,与海相硫酸盐的δ34S相近;通过同位素地质温度计,估算获得成矿温度为134~388℃;包裹体测温发现,重晶石为热液成因,暗示成矿流体中的硫可能来自矿区及矿区外围各个地层的海相硫酸盐或是矿区发现的热液重晶石。硫酸盐的还原机制应为热化学还原作用(TSR)。  相似文献   

2.
冬瓜山铜金矿床是铜陵矿集区乃至长江中下游成矿带中的一个重要矿床。矿床上部受石炭系层位控制,发育层状、似层状层控矽卡岩型矿体;下部受岩体及其接触带控制,在岩体及其接触带围岩中发育脉状、细脉浸染状矿体。上部层控矽卡岩型矿体中的矿石类型以含铜(金)石英硫化物为主,矿石硫化物矿物的硫同位素组成显示主要成矿阶段的硫同位素基本达到了平衡。矿石矿物中的硫化物和硫酸盐的硫同位素组成对比表明,冬瓜山矿床与斑岩型矿床相似,而与Sedex型和VHMS型矿床不同。结合矿床成矿物理化学条件和矿石矿物共生组合关系,根据硫同位素储库效应,认为冬瓜山矿床硫化物阶段成矿热液中的含硫物种以H2S为主(XH2S0.99),硫化物的结晶沉淀对成矿热液的δ34S值影响不大。应用大本模式,高温岩浆来源的热液与熔体之间的硫同位素分馏Δ34S为0‰~+5‰,依据岩浆岩全岩硫同位素组成可以确定岩浆来源热液的硫同位素组成为+0.3‰~+12.0‰。在高温(600~350℃)硅酸盐阶段和氧化物阶段,硬石膏与成矿热液之间的硫同位素分馏Δ34S为+5.0‰~+19.0‰,而在高温(450~350℃)氧化物阶段后期及低温(350~200℃)硫化物阶段,黄铁矿与成矿热液之间的硫同位素分馏Δ34S分别为-1.0‰~0‰和0‰~+1.5‰。据此计算的含硫矿物硫同位素组成理论值与冬瓜山矿床实测值基本一致,显示成矿热液流体中的硫源为岩浆来源。综合前人对区域及冬瓜山矿床的研究,本文认为冬瓜山矿床为与燕山期岩浆作用密切相关的层控矽卡岩型铜金矿床。岩浆及其平衡热液中较高的总硫同位素组成暗示岩浆混染了区域沉积地层中广泛发育的膏盐成分。虽然硫同位素组成特征显示区域沉积岩成岩过程中经历了明显的海水沉积作用和细菌硫酸盐还原作用,但冬瓜山矿床矿石没有保存海西期沉积成矿的硫同位素证据。  相似文献   

3.
蔡家营铅—锌—银矿床的稳定同位素地球化学研究   总被引:3,自引:0,他引:3  
河北蔡家营矿床是大型中温热液充填-交代脉型铅-锌-银矿床。其硫化物的δ^34S值为2.2‰-7.8‰,同世代共存的10个硫化物对的Δ^34S值表明,Fe-(Zn、Pb)-S系统的硫同位素非平衡分馏占主导,硫是岩浆(为主)与老变质岩层硫的混合来源。石英及其流体包裹体的δ^18OSMOW和δDSMOW值(‰)按混合模式计算表明,成矿流体为混合的岩浆和大气降水,早期成矿流体以岩浆为主,尔后则变为以大气降  相似文献   

4.
布敦化铜矿是大兴安岭中南段一个斑岩-热液脉型复合铜矿床,包括南部的金鸡岭斑岩型铜矿段和北部的孔雀山热液脉型铜矿段。本文在详细的矿床地质特征研究基础上,通过对矿体的氢、氧、硫和铅同位素系统研究,探讨了成矿流体和成矿物质来源以及成矿机制。氢、氧同位素组成表明,金鸡岭矿段与孔雀山矿段早期成矿流体主要以岩浆水为主,至成矿晚期有大气降水的参与。硫同位素分析结果表明金鸡岭矿段相对富集重硫,成矿热液的硫同位素组成为+2.54‰-+2.60‰。而孔雀山矿段相对富集轻硫,成矿热液的S同位素组成为-1.84‰--1.71‰,两矿段的硫同位素组成表明硫主要来源于地球深部,铅同位素组成则表明铅具壳幔混合的特点,其来源与岩浆活动密切相关。结合大兴安岭中南段区域地质演化历史认为,布敦化矿床两个矿段的成矿作用均是由流体混合而导致黄铜矿等金属硫化物的大量沉淀。  相似文献   

5.
熊耳群碲化物型金矿硫铅同位素及其在矿作用探讨   总被引:5,自引:0,他引:5  
丁士应  任富根 《河南地质》1995,13(4):241-247
熊耳群火山岩中产出各种类型的金矿床,碲化物型(构造蚀变岩型)是金矿主要类型,该类型金矿以出现大量碲化物或富碲、硒为特征。硫化物δ^34S以较大的负值为特征,δ^34S=-19.24‰-+6.68‰。本文通过综合研究及与国内外有关矿床对比,认为该碲化物型金矿δ^34S负值的主要原因是地表水的渗透参与导致成矿热液物理化学条件改变,fo2升高、PH降低,从而引起硫同位素强烈分馏形成的。有关铅同位素组成具  相似文献   

6.
铲子坪金矿位于雪峰山构造岩浆岩带的白马山复式花岗岩体外接触带附近。本文通过对铲子坪金矿床岩石地球化学以及稳定同位素的研究,探讨其矿床成矿物质来源及矿床成因。研究结果表明:矿石中金属硫化物的δ34S介于-7.58‰~+0.32‰,平均为-2.44‰,富轻硫,表明硫化物中的硫主要来自花岗岩浆,有部分地层硫酸盐中的硫混入;铅同位素组成相对稳定,变化范围很小。根据铅构造模式图解和△γ-△β图解,铅同位素主要来源于地幔,有部分地壳铅的加入;氢、氧同位素表明成矿流体具有变质热液和岩浆热液的双重性,成矿晚期热液有大气水成分加入;碳同位素表明成矿流体与砂质板岩关系密切,与地幔或深部流体有一定的关系,矿床成矿流体中的CO2很可能为壳幔混合;锶同位素研究表明,铲子坪金矿床的(87Sr/86Sr)i组成特征与华南陆壳重熔性花岗岩初始岩浆水的(87Sr/86Sr)i组成特征基本一致,表明其成矿作用可能与岩浆热液有关。铲子坪金矿成因类型为岩浆热液型。  相似文献   

7.
江苏观山铜铅金矿是典型的高硫型浅成低温热液矿床。本文通过对观山铜铅金矿床氢、氧、碳、硫同位素组成的研究,探讨成矿溶液中水、碳、硫的来源以及成矿溶液的演化。同位素测定显示石英流体包裹体水的δD=-90‰~-70‰,δ18O水=-8.9‰~-1.1‰;热液方解石流体包裹体水的δD=-90‰~-81‰,δ18O水=0.1‰~2.3‰。氢氧同位素组成说明成矿流体主要为与围岩进行过水岩反应的循环大气降水,不排除有少量岩浆水的加入。黄铁矿与黄铜矿矿石的δ34SV-CDT=5.8‰~9.9‰,平均值为7.6‰,表明该矿成矿过程中的S很可能是沉积岩来源的硫与岩浆岩来源硫的混合。矿床中可见较多的重晶石等硫酸盐矿物,这种高价态硫的矿物的存在显示其成矿溶液具有富集34S的特征,加上成矿过程中流体的沸腾导致H2S等气体大量逸出和残余岩浆流体富集34S,使得沉淀的黄铁矿、黄铜矿等硫化物同样具有富集34S的特征;热液方解石碳同位素δ13C方解石=-4.1‰~6.1‰,平均为δ13C方解石=1.3‰,显示其中的C主要来源于流体对流循环过程中对基底岩石中碳酸盐地层的溶解。  相似文献   

8.
湖南宝山Cu-Mo-Pb-Zn-Ag多金属矿床规模大、矿种多、分带明显,是南岭有色金属成矿带的代表性矿床之一。本文对该矿床的硫同位素组成进行了较系统的研究,以探讨该矿床成矿物质的来源。研究表明,硫化物硫同位素组成具有δ34S黄铁矿δ34S闪锌矿δ34S方铅矿特征,说明成矿流体中硫已达到分馏平衡;矿床硫化物的硫同位素组成均为较低正值,变化范围很窄,δ34S值主要集中在1.50‰~4.50‰之间,峰值在3‰左右,明显低于研究区石炭系碳酸盐岩硫同位素δ34S值(17.8‰~22.6‰),具岩浆硫特征,暗示成矿流体中硫主要来源于燕山期花岗闪长斑岩有关的岩浆分异,地层硫贡献较少。此外,不同围岩的矿体,硫化物δ34S值基本相同,围绕花岗闪长斑岩体δ34S值没有分带现象,表明硫的来源具有一致性。因此,有理由认为,赋存于下石炭统梓门桥组白云岩、测水组砂页岩和石凳子组灰岩中的Pb-Zn多金属矿化具有相同成因联系,它们应为同一岩浆-热液系统演化的产物。  相似文献   

9.
1017高地银多金属矿床位于内蒙古自治区东乌珠穆沁旗,矿区大地构造位置处于西伯利亚板块东南缘查干敖包-奥尤特-朝不楞早古生代构造-岩浆岩带东段。石英脉型矿石中流体包裹体研究显示,从成矿早期到主成矿期,流体温度逐渐降低(从404℃~134℃到236℃~121℃),盐度都为中低盐度,由此表明该矿床具有浅成、中低温、中低盐度热液成矿特征。激光拉曼光谱分析显示包裹体气液相成分主要为H2O。矿石硫同位素组成相对均一,δ34S介于3.4‰~8.0‰之间,均值5.35‰,与幔源S的δ34S值(介于-3‰~3.0‰之间)比较,有向沉积硫的明显漂移,表明矿石中硫来源于沉积硫与岩浆硫的混合、平衡作用;矿石硫化物铅同位素比值没有明显的差别,206Pb/204Pb值为18.274 0~18.399 6,207Pb/204Pb值为15.539 9~15.561 6,208Pb/204Pb值为38.036 3~38.177 2,具有钍铅微弱亏损特征,指示矿石中硫化物的铅源主要来自地壳深部的岩浆源区,伴随岩浆及其热液作用,不可避免地混入了部分富放射成因铅的地壳物质。矿石氢氧同位素组成为:δDV-SMOW值介于-103‰~-125‰之间,δ18 OV-SMOW值在6.9‰~13.9‰之间,显示成矿流体中的水来源于岩浆水与大气降水的混合。综合1017高地银多金属矿床的地质特征和流体包裹体、S,Pb,H,O同位素研究认为,该矿床成矿物质来源于深源岩浆和上地壳的混合,成矿流体主要来自岩浆期后热液和大气降水,其成因类型可归于中低温度、中低盐度的岩浆期后热液型银多金属矿床。  相似文献   

10.
边家大院银多金属矿床位于大兴安岭成矿带南段,是一个典型的热液脉型银多金属矿床。基于稳定同位素C、H、O、S和放射性Pb同位素的测试和分析,对边家大院银多金属矿床成矿流体及物质来源进行示踪。同位素测试结果表明:成矿流体中水的δD_(水-SMOW)值为-138.5‰~-111.7‰,δ~(18)O_(水-SMOW)值为-8.85‰~9.38‰,表明成矿流体为岩浆水与大气降水的混合物。热液方解石δ~(13)C_(PDB)值为-7.7‰~-2.67‰,δ~(18)O_(SMOW)为-0.41‰~6.03‰,表明热液矿物方解石是2个阶段成矿作用的产物,成矿早阶段流体与岩浆水特征相似,碳主要来源于岩浆,成矿晚阶段流体具有大气降水的特征。边家大院银多金属矿床矿石硫化物δ~(34)S值为0.76‰~4.4‰,显示银铅锌矿体的形成与岩浆作用密切相关,硫主要来自岩浆源。矿石样品~(208)Pb/~(204)Pb值介于38.1~38.634,~(207)Pb/~(204)Pb值介于15.518~15.681,~(206)Pb/~(204)Pb值介于18.155~18.284,表明成矿与岩浆作用关系密切,成矿流体中铅主要来自深源岩浆。成矿作用的发生是在一种总硫浓度比较低的平衡体系中进行的。边家大院银多金属矿床的成因类型属于火山-次火山热液脉状银多金属矿床。  相似文献   

11.
以林家三道沟、小佟家堡子金(银)矿床为例,系统总结了区内金(银)矿床的成矿条件及地质特征,对矿床的相关岩体、围岩及矿石进行了流体包裹体、稳定同位素测试分析。结果表明:矿床赋存于古元古界辽河群大石桥亚群杨树沟岩组第6岩段碎屑岩-碳酸盐岩建造和盖县亚群汤家沟岩组碎屑岩建造中;主要容矿岩石为硅化大理岩、变粒岩、片岩;近矿围岩蚀变主要为硅化、绢云母化、黄铁矿化和碳酸盐化;自然金的粒度以显微不可见金为主;均一温度(100~200 ℃)、成矿流体盐度(w(NaCl)(1.91 % ~9.73%)均较低;矿石石英中成矿流体δD值为-48.0‰~-93.0‰,δ18OH2O计算值为-8.63‰~+1.31‰,表明成矿流体主要来自于地热水和原生地层水;矿石硫同位素δ34S值平均为+8.61‰,赋矿围岩、岩体δ34S为+0.50‰~+7.6‰,表明矿石中硫主要来自古元古代地层和印支晚期岩体;金(银)矿石中206Pb/204Pb为17.664~19.186 7,207Pb/204Pb为15.044~15.883,208Pb/204Pb为37.693~38.784,铅源具有壳幔混合源特点。矿床成因类型为沉积变质-岩浆热液叠加型。  相似文献   

12.

This paper presents the results of thermodynamic calculations on the solubility of gold and silver in low‐temperature, moderately saline, oxygen‐saturated fluids. Based on the solubilities of gold and silver it is argued that the quantity of gold transported by the fluids depends on the concentration of silver in the primary ores. In ores where the silver/gold ratio is high (1 to > 10), the fluids become saturated in silver and can not dissolve geologically significant concentrations of gold. In ores where the silver/gold ratio is low (< 1), the fluids remain undersaturated with respect to silver and are able to dissolve geologically realistic concentrations of gold and silver. The oxidized fluids start depositing gold and silver as they move downwards and are reduced by the Fe+2‐bearing minerals of the primary ores. The occurrence of gold in lateritic profiles can be explained by a prolonged process of interaction between the fluid and primary ores, during which gold and silver precipitate and redissolve selectively at the gradually advancing oxidation‐reduction interface.  相似文献   

13.
洋中脊超基性岩热液成矿系统通常与洋底核杂岩构造有关,多发育大型矿床,具有巨大的资源前景。然而,受大洋调查取样手段的限制,超基性岩蛇纹岩化对成矿的影响仍需进一步研究。德尔尼铜矿床是地质历史上该类矿床的典型案例,对于理解其成矿模式,以及大洋硫化物勘探具有指导意义。本文选取德尔尼铜矿床块状硫化物样品进行黄铁矿的S同位素分析,结果表明其δ34S值主要分布在-0.4‰~+6.3‰。结合前人研究发现,形成于深部网脉状、条带状矿石中的δ34S值为负值,而经历表层喷流和破碎作用的块状和角砾状矿石中的δ34S值为正值,二者呈对称分布,这主要是由于还原条件下岩浆排气产生的SO_2和H_2S动态平衡并逐渐沉淀S2-,表明蛇纹岩化提供的还原环境对热液系统演化产生了重要影响。然而,磁黄铁矿和矿床Ni的分布指示成矿物质中超基性岩的贡献较小,主要物质来源是洋中脊深部的基性岩浆,通过热液循环将物质运移至海底并喷流成矿。对比现今超基性岩赋矿的高温热液硫化物矿床,德尔尼铜矿床形成温度更低,代表了超基性岩赋矿热液硫化物中的中温端元,表明在距离拆离面一定距离(约2~4km)的位置也可能形成大型的热液硫化物矿床,这对于现今洋中脊热液硫化物勘探具有一定的指导意义。  相似文献   

14.
不同景观条件下选取合适的采样粒级是准确地获取地球化学信息,提升地质找矿效果的关键。为研究中国南部湿润半湿润中低山丘陵景观区水系沉积物测量最佳采样粒级,本文在安徽省南部胡乐司—宁国墩地区开展了区域化探采样粒度方法技术试验,采集-60目和-10目~+80目两种粒级样品,采用波长色散X射线荧光光谱法和电感耦合等离子体质谱法为主体的配套分析方案和测试技术获取了全国区域化探扫面规定的40种元素高精度数据。研究表明:两种粒级水系沉积物中造岩元素背景含量与区域岩石背景值基本接近,其他微量元素多呈富集状态,以-10~+80目粒级中As、Au、Hg、Mo、Pb、Sb等成矿元素富集程度最强;-10~+80目粒级受后期表生改造作用影响较弱,最大限度保留了原生地球化学分布特征,并在准确圈定与矿化有关的异常和清晰反映矿致异常特征等方面明显优于-60目粒级。因此,建议在安徽省南部中低山丘陵景观区,选择-10~+80目粒级为水系沉积物测量的最佳采样粒级,研究结果可以为中国相似景观区地球化学勘查找矿水系沉积物测量采样粒级的选择提供参考。  相似文献   

15.
硫同位素研究在喀拉通克岩体的地壳物质混染过程中有重要意义。通过对块状和浸染状矿石、斑点状和脉状矿石以及围岩中硫化物进行硫同位素测试,分析了黄铜矿、黄铁矿、磁黄铁矿的硫同位素在硫化物中的富集状态,探讨了喀拉通克铜镍矿床硫同位素组成特征及其地质意义。结果表明:块状矿石的同位素测定值与标准值之间的千分偏差δ(34S)为(-1.30~1.84)×10-3,浸染状矿石的δ(34S)为(-2.50~0.85)×10-3,脉状矿石的δ(34S)为(-1.54~3.00)×10-3,围岩中黄铁矿的δ(34S)为(-7.8~-3.3)×10-3;硫同位素在硫化物中的富集从大到小依次为黄铁矿、磁黄铁矿、黄铜矿,说明硫化物之间基本达到了硫同位素平衡;喀拉通克铜镍矿床的硫主要来自于地幔,只在岩浆熔离作用形成的浸染状矿石和岩浆后期热液阶段形成的脉状矿石以及晚期黄铁矿中有少量或局部地壳硫混染的痕迹;地壳硫的加入没有在岩浆源区发生,可能发生在岩浆上升并发生硫化物就地熔离的局部过程中,几乎不对硫饱和及硫化物的熔离产生影响;岩浆在地壳深部发生的橄榄石、铬铁矿等矿物的分离结晶作用,有可能是促使硫饱和与硫化物熔离的主要因素。  相似文献   

16.
高频红外碳硫仪测定重晶石和黄铁矿中的硫   总被引:2,自引:2,他引:0  
硫酸盐矿石和硫化物矿石大部分是低电磁性的物质,利用高频红外碳硫仪测定这类矿石中的硫时,在燃烧过程中难以产生较大的电磁感应涡流,导致矿石中的硫释放不完全,造成硫的测定结果偏低。本文采用二氧化硅将重晶石精矿和黄铁矿精矿稀释成不同硫含量的重晶石和黄铁矿样品,通过优化称样量及助熔剂等测试条件,建立了使用高频红外碳硫仪测定重晶石和黄铁矿中硫含量的分析方法。结果表明:当样品中的硫含量高于2%时确定称样量为0.07 g,当硫含量低于2%时确定称样量为0.1 g,加入助熔剂0.4 g锡粒+0.4 g铁粒+1.5 g钨粒,可使重晶石和黄铁矿中的硫完全释放进入仪器红外吸收区域,硫的回收率提高至95.8%~104.2%(重晶石)和95.3%~105.1%(黄铁矿),分别高于常规红外碳硫仪的回收率(83.39%~91.1%和91.5~97.5%)。本方法精密度高(RSD5%),实现了硫含量的准确测定。  相似文献   

17.
The Laloki and Federal Flag deposits are two of the many (over 45) polymetallic massive sulfide deposits that occur in the Astrolabe Mineral Field, Papua New Guinea. New data of the mineralogical compositions, mineral textures, and fluid inclusion studies on sphalerite from Laloki and Federal Flag deposits were investigated to clarify physiochemical conditions of the mineralization at both deposits. The two deposits are located about 2 km apart and they are stratigraphically hosted by siliceous to carbonaceous claystone and rare gray chert of Paleocene–Eocene age. Massive sulfide ore and host rock samples were collected from each deposit for mineralogical, geochemical, and fluid inclusion studies. Mineralization at the Laloki deposit consists of early‐stage massive sulfide mineralization (sphalerite‐barite, chalcopyrite, and pyrite–marcasite) and late‐stage brecciation and remobilization of early‐stage massive sulfides that was accompanied by late‐stage sphalerite mineralization. Occurrence of native gold blebs in early‐stage massive pyrite–marcasite‐chalcopyrite ore with the association of pyrrhotite‐hematite and abundant planktonic foraminifera remnants was due to reduction of hydrothermal fluids by the reaction with organic‐rich sediments and seawater mixing. Precipitation of fine‐grained gold blebs in late‐stage Fe‐rich sphalerite resulted from low temperature and higher salinity ore fluids in sulfur reducing conditions. In contrast, the massive sulfide ores from the Federal Flag deposit contain Fe‐rich sphalerite and subordinate sulfarsenides. Native gold blebs occur as inclusions in Fe‐rich sphalerite, along sphalerite grain boundaries, and in the siliceous‐hematitic matrix. Such occurrences of native gold suggest that gold was initially precipitated from high‐temperature, moderate to highly reduced, low‐sulfur ore fluids. Concentrations of Au and Ag from both Laloki and Federal Flag deposits were within the range (<10 ppm Au and <100 ppm Ag) of massive sulfides at a mid‐ocean ridge setting rather than typical arc‐type massive sulfides. The complex relationship between FeS contents in sphalerite and gold grades of both deposits is probably due to the initial deposition of gold on the seafloor that may have been controlled by factors such as Au complexes, pH, and fO2 in combination with temperature and sulfur fugacity.  相似文献   

18.
The geology and mineralogy of host metamorphic rocks, the mineralogy of sulfide ores, and the distribution of PGE mineralization were studied in detail for the Kvinum-1 and Kvinum-2 copper-nickel occurrences of the Kvinum ore field, which are the most promising targets for the copper-nickel-PGE mineralization of the Sredinny Range of Kamchatka. It was established that stringer-disseminated and massive copper-nickel ores are localized in amphibole peridotites, cortlandites, and form ore bodies varying from tens of centimeters to 5–20 m thick among the layered cortlandite-gabbroid massifs. The massive sulfide ores were found only at the bottom of cortlandite bodies and upsection grade into stringer-disseminated and disseminated ores. Pyrrhotite, chalcopyrite, and pentlandite are the major ore minerals with a sharply subordinate amount of pyrite, sphalerite, galena, arsenopyrite, and löllingite. Besides pentlandite, the Ni-bearing minerals include sulforasenides (gersdorffite), arsenides (nickeline), and tellurides (melonite) of nickel. It was found that PGE mineralization represented by antimonides (sudburyite) and tellurobismuthides (michenerite) of Pd with sharply subordinate platinum arsenide (sperrylite) is confined to the apical parts of massive sulfide zones and the transition zone to the stringer-disseminated ores. Ore intervals enriched in arsenides and tellurides of Ni, Pd, and Bi contain high-purity gold. In the central parts of the orebodies, the contents of PGE and native gold are insignificant. It is suggested that the contents of major sulfide minerals and the productivity of PGE mineralization in the cortlandites are defined by combined differentiation and sulfurization of ultramafic derivatives under the effect of fluids, which are accumulated at the crystallization front and cause layering of parental magmas with different sulfur contents. The fluid-assisted layering of mafic-ultramafic massifs resulted in the contrasting distribution of PGM in response to uneven distribution of sulfur (as well as As, Te, and Bi) during liquid immiscibility. The productivity of PGE mineralization significantly increases with increasing contents of S, As, Te, and Bi (elements to which Pt and, especially, Pd have high affinity) in fluids.  相似文献   

19.
The Huangshilao gold deposit (>13.5 t Au) is comprised of stratabound pyrite‐dominant massive sulfide ores, and is distinguished from the skarn Cu, Au, and Cu–Au deposits that are dominant in the Tongguanshan orefield, Tongling, east‐central China. The stratabound orebodies are situated along flexural slip faults along the unconformity between the Upper Devonian Wutong and the Upper Carboniferous Huanglong Formations. The ores, dominated by crystallized pyrite, colloform pyrite, and pyrrhotite, are systematically sampled from the underground stopes along strike drifts. The δ34S values of ore sulfides yield a wide variation from ?11.3 to 11.4‰, but mostly within 4–8‰, corresponding to the δ34S range (3.4–8.7‰) of the Yanshanian Tongguanshan and Tianshan quartz diorite intrusions in the Tongguanshan orefield, suggesting a magmatic dominated sulfur source. Few obvious negative δ34S values are induced by an involvement of sedimentation‐related biogenic sulfur. The wide δ34S variation denotes an incongruent physical and chemical interaction of the two sources. Combined analysis of gold contents and sulfur isotopes of the sulfides show that the magmatic hydrothermal solution provides primary metals despite a small quantity that may have been contributed by the sedimentary pyrites. The hydrothermal alteration, thermal metamorphism, trace element concentration in pyrites, and existing aeromagnetic data jointly suggest that the hydrothermal fluid migrated vertically from an intrusion below, along the flexural slip faults, but not laterally from the nearby outcrop of Tianshan stock.  相似文献   

20.
Felsic volcanic units of the Early Devonian Bindook Volcanic Complex host the Yerranderie epithermal silver–gold–lead district 94 km west–southwest of Sydney. Mineralization in the district forms part of a fault‐controlled, intermediate sulfidation, epithermal silver–gold–base metal vein system that has significant mineral and alteration zonation. Stage 1 of the mineral paragenesis in the veins developed quartz and carbonate with early pyrite, whereas stage 2 is a crustiform banded quartz–pyrite–arsenopyrite assemblage. Stage 3, the main stage of sulfide deposition, comprises early sphalerite, followed by a tetrahedrite–tennantite–gold assemblage, then a galena–chalcopyrite–native silver–pyrite assemblage, and finally a pyrargyrite–polybasite–pearceite assemblage. Stage 4 involves the deposition of quartz veins with minor (late) pyrite and stage 5 is characterized by siderite that infilled remaining voids. Mineral zonation occurs along the Yerranderie Fault, with bornite being restricted to the Colon Peaks–Silver Peak mine area, whereas arsenopyrite, which is present in both the Colon Peaks–Silver Peak and Wollondilly mine areas, is absent in other lodes along the Yerranderie Fault. The Yerranderie Fault, which hosts the major lodes, is surrounded by a zoned alteration system. With increasing proximity to the fault the intensity of alteration increases and the alteration assemblage changes from an outer quartz–muscovite–illite–(ankerite) assemblage to a quartz–illite–(pyrite–carbonate) assemblage within meters of the fault. 40Ar/39Ar dating of muscovite from the alteration zone gave a 372.1 ± 1.9 Ma (Late Devonian) age, which is interpreted to be the timing of the quartz–sulfide vein formation. Sulfur isotope values for sulfides range from 0.1 to 6.2‰ with one outlier of ?5.6 δ34S‰. The results indicate that the initial ore‐forming fluids were reduced, and that sulfur was probably sourced from a magmatic reservoir, either as a direct magmatic contribution or indirectly through dissolution and recycling of sulfur from the host volcanic sequence. The sulfur isotope data suggest the system is isotopically zoned.  相似文献   

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