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1.
电感耦合等离子体光谱法测定黄铁矿和黄铜矿中的铁铜硫   总被引:2,自引:1,他引:1  
样品用王水水浴和HCl-HNO3-HF-HClO4敞开酸溶两种溶矿方式分解,电感耦合等离子体发射光谱法(ICP-AES)测定黄铜矿和黄铁矿中铁、铜、硫。应用称重法配制标准溶液,明显地降低了在标准溶液在逐级稀释过程中由于体积读数等原因产生的误差。样品用王水水浴分解,消解时间短,试剂加入量少,分析步骤简单;由于硫化矿石中Fe的一部分可能与Si结合,王水无法将其全部溶解,对于Fe的测定采用混合酸敞开酸溶。王水水浴溶矿方式选择浓王水作为溶剂,在混合酸敞开溶矿方式的溶解盐类阶段选择浓HCl作为溶剂。确定了ICP-AES法测定高含量(x%~xx%)的铁、铜、硫适用的光谱谱线,稀释倍数为1000。两种样品处理方法操作简便,准确度好,精密度高。经国家一级标准物质GBW 07267(黄铁矿)、GBW 07268(黄铜矿)验证,经混合酸敞开酸溶处理后硫的测定结果偏低,准确度分别为-9.48%和-18%,铁和铜的精密度(RSD,n=5)均小于2%。GBW 07268(黄铁矿)、GBW 07267(黄铜矿)用王水水浴法处理,连续测定10次的短期稳定性,精密度(RSD)小于2%。  相似文献   

2.
沈宇  张尼  高小红  李皓  马怡飞 《岩矿测试》2014,33(5):649-654
地质样品中多种元素的分析,通常采用高压密封消解电感耦合等离子体质谱法(ICP-MS),而应用于测定地球化学样品中的V、Cr、Ni、Ge、As等元素,影响分析准确度的主要原因有:样品前处理方面,高压密封罐会释放Cr和Ni污染样品,同时Ge和As属于易挥发元素容易造成损失;质谱测定方面,多原子分子离子会产生干扰。本文针对两方面的干扰因素,对比了微波消解硝酸提取、微波消解王水提取、高压密封硝酸复溶、高压密封王水复溶四种前处理方法中待测元素的溶出效果以及污染或损失情况。结果表明,采用微波消解替代高压密封罐消解可消除引入的Cr、Ni污染,避免了Ge、As挥发损失,同时微波消解的时间短。而采用硝酸提取,由于避免了氯的引入,分析效果优于王水提取。且使用八极杆ICP-MS氦气碰撞模式消除了样品基体中的氯多原子分子离子干扰(如37Cl14N对51V干扰,35Cl16OH对52Cr干扰,35Cl37Cl对72Ge干扰以及40Ar35Cl对75As干扰等)。应用微波消解硝酸提取、ICP-MS测定岩石、水系沉积物和土壤国家标准物质,V、Cr、Ni、Ge、As的检出限分别为1.09、0.19、0.55、0.02、0.50μg/g,精密度(RSD)4%,而采用高压密封消解、ICPMS测定V、Cr、Ni的检出限为3.48、13.09、21.67μg/g(Ge和As由于挥发无法用此法检测)。运用微波消解硝酸提取-ICP-MS氦气碰撞模式测定地球化学样品中V、Cr、Ni、Ge、As,简化了分析流程,样品消解时间仅2 h,相比于高压密封方法(消解时间48 h)具有消解快速、多元素同时测定、检出限低的特点。  相似文献   

3.
花岗伟晶岩富集锂铍铷铯铌钽等稀有金属元素,准确测定其中的大离子亲石元素、高场强元素和稀土等微量元素,可用于判断成矿流体物质来源、成岩构造环境。目前的测试方法研究主要集中在锂铍铷铯铌钽等少数元素,样品消解方法有四酸敞开法、五酸敞开法、密闭酸溶法等,存在难溶矿物分解不完全、锆铪钍铀和稀土等元素回收率偏低等问题。本文对比了盐酸-硝酸-氢氟酸-高氯酸敞开消解法、盐酸-硝酸-氢氟酸-高氯酸-硫酸敞开消解法、硝酸-氢氟酸密闭消解法三种方法的分解效果。结果表明:四酸消解法中,铌钽锆铪钨和重稀土元素结果严重偏低;五酸消解法由于采用硫酸-氢氟酸-过氧化氢体系提取,有效地防止了铌钽的水解,铌钽钨等元素测定结果准确,但锆铪钡铅和轻稀土元素测定结果偏低。硝酸-氢氟酸密闭消解法使用王水代替硝酸进行残渣复溶,促进了铌钽锆铪和稀土等元素的复溶,采用电感耦合等离子体发射光谱和质谱法(ICP-OES/MS)可以准确测定花岗伟晶岩中稀有金属、稀土元素等32种元素,方法检出限为0.004~2.50μg/g,精密度(RSD,n=12)为1.0%~8.3%。将该方法应用于8种花岗岩、伟晶岩及稀有金属矿标准物质和三种类型实际样品...  相似文献   

4.
铬铁矿中亚铁的测定方法   总被引:5,自引:3,他引:2  
杨林  黄宝贵  陈述 《岩矿测试》2010,29(6):719-722
采用硫-磷混合酸微波消解对难溶的钒钛磁铁矿进行前处理,用5-溴-PADAP-过氧化氢分光光度法测定矿样中的钒,优化了微波消解的实验条件。加入浓磷酸和40 g/L氟化钠溶液分别消除了共存常量元素铁和钛的干扰。方法检出限为0.004μg/mL,线性范围为0.01~1.0μg/mL。应用于实际钒钛磁铁矿样品中钒的测定,重现性好,检出限较低,灵敏度较高,能够满足简单、快速、批量分析的要求。  相似文献   

5.
原子荧光光谱法测定土壤和水系沉积物国家标准物质中砷   总被引:4,自引:1,他引:3  
郭敬华  马辉  王水锋 《岩矿测试》2009,28(2):182-184
用王水浸提法和硝酸-高氯酸-氢氟酸混合酸消解法处理样品,原子荧光光度光谱法测定土壤和水系沉积物国家标准物质样品中的砷。方法检出限为0.02 mg/kg。两种前处理方法砷的测定值与标准值相符,均可以满足土壤和水系沉积物样品中砷含量的测定要求。单纯测定样品中砷含量时,王水浸提法更好;如果在测定砷同时还要测定其他元素,则可以选用混合酸消解法。  相似文献   

6.
本文采用微波消解-电感耦合等离子体发射光谱法(ICP-OES)对土壤样品中硼含量的测定进行了实验。对微波消解样品前处理条件和测定时的仪器参数进行了优化,最终确定了以HF-HNO_3-H_3PO_4体系,逐级升温的方式来消解土壤样品。该方法对硼元素的检出限为0.093μg/g。经标准物质验证,其准确度、精密度均达到行业标准的要求,适用于土壤样品中硼的测定。  相似文献   

7.
采用密闭式微波消解系统处理土壤样品,电感耦合等离子体发射光谱法或石墨炉原子吸收光谱法测定土壤样品中铜、砷、铅、锌、钴、铬、锰、镍、钒9个元素。分别从消解液的选择、用酸量及样品消解量等方面进行消解条件的优化,确定了一个最适合土壤消解的前处理体系。各元素的检出限为0.16~2.52μg/g,回收率为95.2%~106.6%,精密度为2.03%~9.79%(n=7)。方法简单快速,效率高,劳动强度低,是进行土壤中多元素测定的高效方法。  相似文献   

8.
乔爱香  江冶  李如燕 《江苏地质》2022,46(4):441-446
特氟龙空气滤膜试样用反王水浸泡预消解,电热板加热,反王水-高氯酸-氢氟酸四酸体系分解滤膜样品吸附的空气颗粒物。在无合适监控样品的情况下,采用国家一级标准物质GBW07401模拟滤膜吸附的空气颗粒物与空白滤膜一起消化分解、上机测定,优化ICP-AES光谱仪的最佳测试条件,分析样品中的Ba、Cr、Cu、Li、Mn、Ni、P、Pb、Sr、Ti、V、Zn、Al、Ca、Fe、K、Mg、Na共18种元素,测定值与标准物质的认定值相符,各元素分析结果的相对标准偏差RSD在1.42%~9.21%之间,方法回收率在89%~112%之间,元素检出限在0.002 0~0.35 μg/g 之间。滤膜中的Si元素测定采用微波马弗炉碱熔法,水提取酸化定容,同步采用国家一级标准物质GBW03105a模拟空气颗粒物样品加入空白滤膜,灰化碱熔,进行ICP AES测定。相对标准偏差RSD为7.68%,检出限为0.12 μg/g。采用酸溶法和碱熔法2种方法分解样品,实现了空气滤膜样品中19个多元素的快速测定。  相似文献   

9.
采用酸溶-电感耦合等离子体发射光谱法(ICP-OES)测定地质样品中的全硼量,关键环节在于如何防止样品消解过程中硼元素的损失,降低测量过程中的基体干扰、光谱干扰和记忆效应。基于以上问题,本文采用氢氟酸-硝酸-高氯酸-磷酸在低压密闭溶样罐中消解样品,溶出的硼元素与少量磷酸充分络合,防止硼的挥发损失;以基体及主成分浓度与样品相类似的地质类固体标准物质绘制标准曲线做线性校准,有效匹配和降低样品的基体干扰;采用仪器自带的操作软件,观察分析谱线附近是否存在其他元素的干扰,来确定背景扣除最佳的位置及宽度,降低ICP-OES测量中的光谱干扰;以10%的王水作为进样系统的冲洗液,有效消减测量过程中的记忆效应。当稀释因子为200时,方法的检出限(3SD)为1.2μg/g,定量限(10SD)为4.0μg/g;用岩石、土壤及水系沉积物国家一级标准物质对精密度及准确度进行分析验证,11次测定相对标准偏差为1.8%~7.9%,相对误差为-3.6%~6.3%;以外检分析结果为参考,对硼含量在定量限以上的样品测定,相对误差为-9.3%~12.5%。  相似文献   

10.
为实现铀矿地质样品中的目标元素、伴生元素和主微量元素的一次溶矿、多仪器联合测定,样品采用逆王水预消解、四酸常压消解溶矿、低温蒸干和逆王水提取;消解得到的试样原液经ICP-OES测定主量元素,原液稀释后经ICP-MS测定目标元素(U、Th)、伴生元素(Mo、V、Ga、Ge、Re)和微量元素,原液经酸化和加入铁盐溶液后经AFS测定伴生元素Se;通过优化各仪器的测定条件和采取恰当的干扰消除方法,各元素得到准确测定。经试验测定,各元素的线性相关系数大于0.999,主量元素检出限为0.001%~0.03%,其他元素检出限为0.005~0.6μg/g;经国家标准物质验证,各元素的相对误差为-11.3%~12.1%,相对标准偏差(n=12)为2.1%~7.0%。文章中的研究方法实现了一次溶矿、多仪器联合测定的目的,测试结果满足地质矿产实验室测试质量规范的要求。  相似文献   

11.
Pant-y-ffynnon Quarry in South Wales yielded a rich cache of fossils in the early 1950s, including articulated specimens of new species (the small sauropodomorph dinosaur Pantydraco caducus and the crocodylomorph Terrestrisuchus gracilis), but no substantial study of the wider fauna of the Pant-y-ffynnon fissure systems has been published. Here, our overview of existing specimens, a few described but mostly undescribed, as well as freshly processed material, provides a comprehensive picture of the Pant-y-ffynnon palaeo-island of the Late Triassic. This was an island with a relatively impoverished fauna dominated by small clevosaurs (rhynchocephalians), including a new species, Clevosaurus cambrica, described here from a partially articulated specimen and isolated bones. The new species has a dental morphology that is intermediate between the Late Triassic Clevosaurus hudsoni, from Cromhall Quarry to the east, and the younger C. convallis from Pant Quarry to the west, suggesting adaptive radiation of clevosaurs in the palaeo-archipelago. The larger reptiles on the palaeo-island do not exceed 1.5?m in length, including a small carnivorous crocodylomorph, Terrestrisuchus, and a possible example of insular dwarfism in the basal dinosaur Pantydraco.  相似文献   

12.
Lithostratigraphy, physicochemical stratigraphy, biostratigraphy, and geochronology of the 77–70 Ma old series bracketing the Campanian–Maastrichtian boundary have been investigated by 70 experts. For the first time, direct relationships between macro- and microfossils have been established, as well as direct and indirect relationships between chemo-physical and biostratigraphical tools. A combination of criteria for selecting the boundary level, duration estimates, uncertainties on durations and on the location of biohorizons have been considered; new chronostratigraphic units are proposed. The geological site at Tercis is accepted by the Commission on Stratigraphy as the international reference for the stratigraphy of the studied interval. To cite this article: G.S. Odin, C. R. Geoscience 334 (2002) 409–414.  相似文献   

13.
Robert L. Linnen   《Lithos》2005,80(1-4):267-280
The solubilities of columbite, tantalite, wolframite, rutile, zircon and hafnon were determined as a function of the water contents in peralkaline and subaluminous granite melts. All experiments were conducted at 1035 °C and 2 kbar and the water contents of the melts ranged from nominally dry to approximately 6 wt.% H2O. Accessory phase solubilities are not affected by the water content of the peralkaline melt. By contrast, solubilities are affected by the water content of the subaluminous melt, where the solubilities of all the accessory phases examined increase with the water content of the melt, up to 2 wt.% H2O. At higher water contents, solubilities are nearly constant. It can be concluded that water is not an important control of accessory phase solubility, although the water content will affect diffusivities of components in the melt, thus whether or not accessory phases will be present as restite material. The solubility behaviour in the subaluminous and peralkaline melts supports previous spectroscopic studies, which have observed differences in the coordination of high field strength elements in dry vs. wet subaluminous granitic glasses, but not for peralkaline granitic glasses. Lastly, the fact that wolframite solubility increases with increasing water content in the subaluminous melt suggests that tungsten dissolved as a hexavalent species.  相似文献   

14.
Some olistolites reworked in a Tertiary flysch of Mount Parnon (Peloponnesus, Greece) exhibit a Late Permian assemblage, dominated by Paradunbarula (Shindella) shindensis, Hemigordiopsis cf. luquensis and Colaniella aff. minima. This association corresponds to the Late Wuchiapingian (=Late Dzhulfian), a substage whose algae and foraminifera are generally little known. Contemporaneous limestones crop out in the middle part of the Episkopi Formation in Hydra, but they are rather commonly reworked in Mesozoic and Cainozoic sequences. The palaeobiogeographical affinities shared by the foraminiferal markers of Greece, southeastern Pamir, and southern China, are very strong (up to the specific level), and are congruent with the Pangea B reconstructions. To cite this article: E. Skourtsos et al., C. R. Geoscience 334 (2002) 925–931.  相似文献   

15.
PALEONTOLOGY     
正20141596 Liu Yunhuan(School of Earth Sciences and Resources,Chang’an University,Xi’an 710054,China);Shao Tiequan Early Cambrian Quadrapyrgites Fossils of Xixiang Boita in Southern Shaanxi Province(Journal of Earth Sciences and Environment,ISSN1672-6561,CN61-1423/P,35(3),2013,p.39-43,3 illus.,20 refs.)  相似文献   

16.
正20141719 Chen Zhijun(State Key Laboratory of Geological Processes and Mineral Resources,China University of Geosciences,Wuhan 430074,China);Chen Jianguo Automated Batch Mapping Solution for Serial Maps:A Case Study of Exploration Geochemistry Maps(Journal of Geology,ISSN1674-3636,CN32-1796/P,37(3),2013,p.456-464,2 illus.,2 tables,10 refs.)  相似文献   

17.
正20140962 Chen Fenning(Xi’an Institute of Geology and Mineral Resources,Xi’an710054,China);Chen Ruiming Late Miocene-Early Pleistocene Ostracoda Fauna of Gyirong Basin,Southern Tibet(Acta Geologica Sinica,ISSN0001-5717,CN11-1951/P,87(6),2013,p.872-886,6illus.,56refs.)  相似文献   

18.
PETROLOGY     
正1.IGNEOUS PETROLOGY20142008Cai Jinhui(Wuhan Center,China Geological Survey,Wuhan 430205,China);Liu Wei Zircon U-Pb Geochronology and Mineralization Significance of Granodiorites from Fuzichong Pb-Zn Deposit,Guangxi,South China(Geology and Mineral Resources of South China,ISSN1007-3701,CN42-1417/P,29(4),2013,p.271-281,7illus.,  相似文献   

19.
正20141205Cheng Weiming(State Key Laboratory of Resources and Environmental Information System,Institute of Geographic Sciences and Natural Resources Research,CAS,Beijing 100101,China);Xia Yao Regional Hazard Assessment of Disaster Environment for Debris Flows:Taking Jundu Mountain,Beijing as an  相似文献   

20.
正20141266Fan Chaoyan(Guangdong Provincial Key Laboratory of Mineral Resources and Geological Processes,Guangzhou 510275,China);Wang Zhenghai On Error Analysis and Correction Method of Measured Strata Section with Wire Projection Method(Journal of  相似文献   

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