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1.
碳酸钙-水体系氧同位素平衡及稳态分馏的低温实验研究   总被引:1,自引:0,他引:1  
采用“一步”和“两步”的直接沉淀法和附晶生长法在 5 0℃和 70℃分别合成碳钡矿和文石 ,测定不同条件下合成矿物与水之间的氧同位素分馏 ,结果显示 ,文石—水体系氧同位素分馏机理分两步 :(1) [CO3 ]2 - 与H2 O的氧同位素交换和平衡 ,此过程是文石 水氧同位素平衡的决速率步骤 ;(2 )与H2 O平衡以后的 [CO3 ]2 - 与Ca2 +]结合生成文石 ,此过程体现矿物形成过程中氧同位素分馏的结构效应。在此基础上 ,采用缓慢沉淀法和“两步”的附晶生长法获得了 0~ 70℃的文石 水体系氧同位素平衡分馏方程。采用“一步”和“两步”的附晶生长法在 5 0℃和 70℃合成文石 ,文石在溶液中经同质多象转变成次生方解石 ;结合文献数据 ,获得 0~ 70℃范围内的方解石 水体系稳态氧同位素分馏方程。  相似文献   

2.
周根陶  郑永飞 《地质学报》2001,75(2):267-276
本文通过“一步法”和“两步法”的“附晶生长法”分别合成了碳酸钙矿物,对其进行了同质多象转变过程中的氧同位素分馏行为的研究。同时通过真空条件下的同质多象转变实验,对文石和方解石的酸分馏系数的差异进行了实验验证。结果发现:①在50℃和70℃下,如果文石与水之间的氧同位素分馏未达到平衡,由母体文石经过同质多象转变生成的次生方解石完全继承的母体矿物的氧同位素组成。如果文石与水之间的氧同位素分馏达到平衡,由互过同质多象转变生成的次生方解石部分继承母体文石的氧同位素组成,并且次生方解石相对于母体文石富集^18O。②在0℃和25℃下,“一步法”的“附晶生长法”的实验结果表明,由六方方解石经过同质多象转变生成的次生方解石也完全继承母体矿物的氧同位素组成,并且在该温度下,矿物与水之间的氧同位素分馏与温度无关。  相似文献   

3.
文石—水体系氧同位素分馏机理的实验研究   总被引:4,自引:1,他引:3  
周根陶  郑永飞 《地球化学》1999,28(6):521-533
采用“附晶生长法”分别在50和70℃下合成文石下矿物,获得了两种不同的文石与水之间的氧同位素分馏关系。结果证明,文石与水之间氧同位素分馏的化学动力学机 为两步:(1)碳酸根与水之间进行氧同位素交换和平衡,即:「C^16O3」^^3-+2H2^18O=「C^18O3^16O」^2-+2H2O16O;(2)与水平衡以后的「CO2」^2-离子与Ca^2+结合生成文石,即:Ca^2++_「C^18O2^1  相似文献   

4.
温度为180—550℃,盐度(wt.%)分别为0、5、25和40条件下,在高压釜内完成了由硅胶合成石英的氧同位素分馏作用实验研究,目的是了解:①盐同位素效应;②△t值对同位素分馏的影响;③温度与同位素分馏系数的关系。研究资料表明:低温条件下矿物和纯水之间同位素平衡作用不可能发生;影响含氧矿物(初)之间氧同位素平衡速率的因素包括盐度、△t值大小和温度等;我们的研究还表明,盐度对同位素分馏作用同系数无影响,即不存在所谓的“同位素盐效应”。在180—550℃温度范围内,不同盐度条件下获得的石英-水氧同位素分馏实验方程为:10001nα_(石英-水)=3.306×10~5T~(-2)—2.71。  相似文献   

5.
本文分别以3种不同的可溶性三价铁盐作为Fe~(3+)源物质的强迫水解法和以针铁矿和四方纤铁矿为起始物质的溶液转化法,在90~315℃范围内合成赤铁矿,测定了赤铁矿与水之间的氧同位素分馏。矿物合成实验和氧同位素分析结果显示,在90~225℃范围内,实验获得的赤铁矿与水之间氧同位素分馏为亚稳态分馏,并且不同合成实验方法得到不同的分馏关系,前者相对于后者富集(18)O约为2‰,即:10~31nα_(赤铁矿-水)=1.17±0.02×10~6/T~2-9.14±0.20(强迫水解法);10~31nα_(赤铁矿-水)=1.46±0.18×10~6/T~2-14.52±0.03(溶液转化法)。但温度在315℃以下,无论强迫水解法还是溶液转化法,在实验误差范围内实验测定的分馏值几乎不可区分,并且与增量方法的理论预测相近,表明该温度下获得的赤铁矿与水之间氧同位素分馏代表了赤铁矿-水体系氧同位素平衡分馏。此外,两种不同方法获得了不同的分馏关系,显示低温下赤铁矿-水体系氧同位素分馏不仅依赖于赤铁矿形成的温度,而且取决于赤铁矿的成因机制,因此对应于不同形成环境下的动力学亚稳态平衡,这对解释低温环境中赤铁矿的氧同位素数据具有重要意义。  相似文献   

6.
碳酸盐矿物氧同位素分馏的理论研究   总被引:13,自引:2,他引:13  
应用增量方法系统地计算了碳酸盐矿物的同位素分馏系数,得到不同结构和成分的碳酸盐矿物的18O富集顺序为:菱铁矿〉铁白云石〉菱镁矿≥白云石≥方解石〉文石〉菱锶矿〉白铅矿〉碳钡矿。在0℃~1200℃范围内获得了一组内部一致的碳酸盐-水体系的理论分馏系数,这些计算结果与已知的实验和/或经验数据之间存在良好的一致性,因此本文对碳酸盐矿物氧同位素分馏系数的理论校准不仅可应用于共生矿物组合形成温度的确定,而且能够应用于其形成机理的示踪。 计算结果表明,白云石的氧同位素分馏行为与方解石相似,在25℃下白云石与方解石之间的平衡分馏为0.56‰ 。理论预测文石相对于方解石显著地亏损 δ18O,在25℃时方解石与文石之问的平衡分馏为4.47‰ 。文石向方解石的同质多相转变可能是通过一种没有同位素再造的惰性氧结构单元[CO3]2- 进行的,即只涉及Ca2+ 与[C03]2- 基团之间键的断裂和再组台而未出现[CO3]2- 基团内部C-O键的断裂和再组合。结果在自然界和实验室实验中,文石中氧同位索配分的温度关系能够传递副方解石中来。这种在同质多相转变形成方解石过程中的氧同位素继承性对于了解白云石-方解石-水体系分馏的难题至关重要。理论预测也能够用来解释对方解石分馏的经验估算与实验测定之间的分歧。  相似文献   

7.
徐宝龙  郑永飞 《地质学报》1997,71(4):340-349
在15—120℃的低温范围内分别应用氮化镁法、氯化镁法和氧化镁法3种化学合成方法,对水镁石-水体系氧同位素分馏系数进行了实验测定。所有合成样品的晶体结构均由XRD测定,其形貌特征则由SEM确定。应用3种不同合成方法得到了一致的水镁石—水体系氧同位素分馏系数,证明同位素平衡分馏已经达到。在实验温度范围内,水镁石—水体系氧同位素分馏系数主要决定于温度,而溶液的酸碱度、化学组分和陈化时间的影响不明显。由实验数据得到的氧同位素分馏曲线方程为:10~3Inα=1.59×10~6/T~2-14.10(r=0.9921)。结合前人对三水铝石—水体系和针铁矿—水体系氧同位素分馏系数的低温实验测定,可以得到氢氧化物中金属M—OH键的~(18)O富集顺序:Al~(3+)-OH>Fe~(3+)-OH>Mg~(2+)-OH。应用化学合成方法实验测定低温条件下水镁石—水体系氧同位素分馏系数,不仅克服了同位素交换反应实验的一些缺陷(如交换速率缓慢、仪器设备复杂昂贵等),而且可以应用不同的化学合成反应机理来检验同位素平衡是否达到,这为研究低温地球化学过程作用提供了有价值的基本参数。  相似文献   

8.
郑永飞 《地质科学》1995,30(1):1-11
利用增量方法和同位素交换技术,对角闪石族矿物的氧同位素分馏进行了理论计算和实验测定。理论结果表明,不同化学成分的角闪石之间存在一定的氧同位素分馏,其13O富集顺序为:钠闪石>蓝闪石>铁闪石>阳起石=镁铁门石≥直闪石≥透闪石>普通角闪石>铝直闪石>韭闪石。高温条件下(>500℃),角闪石相对于水亏损18O达1‰至3‰。实验进行在有少量流体存在的条件下,温度为520℃至680℃。所确定的方解石-透闪石氧同位素分馏系数与理论计算值在误差范围内完全一致。理论和实验确定的石英-透闪石分馏曲线均显着低于已知的经验校准曲线,反映了变质岩中含角闪石矿物集合体内部的退化同位素再平衡。  相似文献   

9.
氢氧化物族矿物的氧同位素分馏   总被引:2,自引:0,他引:2  
郑永飞  徐宝龙 《地球化学》1998,27(2):141-152
应用增量方法计算了氢氧化物族矿物的氧同位素分馏,得到常见氢氧化物的18O富集顺序为:褐铁矿>三水铝石>针铁矿>水镁石>硬水铝石。氢氧化物与其对应的氧化物相比显著地富集18O。三价阳离子的氢氧化物和氧化物的18O富集顺序为:M(OH)3>MO(OH)>M2O3。Al(OH)3同质多象变体之间也存在一定的分馏。对于石英-氢氧化物、方解石-氢氧化物和氢氧化物-水体系,本文计算提供了在0-1200℃温度范围内三组内部一致的分馏系数方程。这些理论校准与合成实验结果和/或地表温度下的天然样品相吻合,特别针铁矿、勃姆石和硬水铝石与水之间的氧同位素分馏关系能够满足地质测温的要求。因此,对氢氧化物-水体系的氧同位素分析可望提供表生环境下可靠的地质温度计。  相似文献   

10.
石英—锡石—水体系氧同位素分馏作用实验研究   总被引:1,自引:0,他引:1  
张理刚  刘敬秀 《地质与勘探》1990,26(5):31-37,17
本文在400~500℃及250~370℃温度范围内,盐度为0~15wt%,压力约0.3~0.6kbar条件下,分别在水溶液中完成了由硅胶及非晶质SnO_2合成石英-锡石矿物对以及由非晶质SnO_2等合成的锡石与水之间氧同位素分馏的实验研究,获得了石英-锡石-水体系氧同位素分馏作用系数与温度的关系方程:1000lna_(石英-锡石)=3.11×10~6T~(-2)+1.63(400~500℃),1000lna_(石锡-水)=2.60×10~6T~(-2)-9.91(250~370℃±),1000lna_(锡石-水)=0.20×10~6T~(-2)-4.34(370±~500℃).  相似文献   

11.
To determine oxygen isotope fractionation between aragonite and water, aragonite was slowly precipitated from Ca(HCO3)2 solution at 0 to 50°C in the presence of Mg2+ or SO42−. The phase compositions and morphologies of synthetic minerals were detected by X-ray diffraction (XRD) and scanning electron microscopy (SEM) techniques. The effects of aragonite precipitation rate and excess dissolved CO2 gas in the initial Ca(HCO3)2 solution on oxygen isotope fractionation between aragonite and water were investigated. For the CaCO3 minerals slowly precipitated by the CaCO3 or NaHCO3 dissolution method at 0 to 50°C, the XRD and SEM analyses show that the rate of aragonite precipitation increased with temperature. Correspondingly, oxygen isotope fractionations between aragonite and water deviated progressively farther from equilibrium. Additionally, an excess of dissolved CO2 gas in the initial Ca(HCO3)2 solution results in an increase in apparent oxygen isotope fractionations. As a consequence, the experimentally determined oxygen isotope fractionations at 50°C indicate disequilibrium, whereas the relatively lower fractionation values obtained at 0 and 25°C from the solution with less dissolved CO2 gas and low precipitation rates indicate a closer approach to equilibrium. Combining the lower values at 0 and 25°C with previous data derived from a two-step overgrowth technique at 50 and 70°C, a fractionation equation for the aragonite-water system at 0 to 70°C is obtained as follows:
  相似文献   

12.
To study what dictates oxygen isotope equilibrium fractionation between inorganic carbonate and water during carbonate precipitation from aqueous solutions, a direct precipitation approach was used to synthesize witherite, and an overgrowth technique was used to synthesize aragonite. The experiments were conducted at 50 and 70°C by one- and two-step approaches, respectively, with a difference in the time of oxygen isotope exchange between dissolved carbonate and water before carbonate precipitation. The two-step approach involved sufficient time to achieve oxygen isotope equilibrium between dissolved carbonate and water, whereas the one-step approach did not. The measured witherite-water fractionations are systematically lower than the aragonite-water fractionations regardless of exchange time between dissolved carbonate and water, pointing to cation effect on oxygen isotope partitioning between the barium and calcium carbonates when precipitating them from the solutions. The two-step approach experiments provide the equilibrium fractionations between the precipitated carbonates and water, whereas the one-step experiments do not. The present experiments show that approaching equilibrium oxygen isotope fractionation between precipitated carbonate and water proceeds via the following two processes:
1.
Oxygen isotope exchange between [CO3]2− and H2O:
(1)  相似文献   

13.
Aragonite was precipitated in the laboratory at 0, 5, 10, 25, and 40 °C to determine the temperature dependence of the equilibrium oxygen isotope fractionation between aragonite and water. Forced CO2 degassing, passive CO2 degassing, and constant addition methods were employed to precipitate aragonite from supersaturated solutions, but the resulting aragonite-water oxygen isotope fractionation was independent of the precipitation method. In addition, under the experimental conditions of this study, the effect of precipitation rate on the oxygen isotope fractionation between aragonite and water was almost within the analytical error of ±∼0.13‰ and thus insignificant. Because the presence of Mg2+ ions is required to nucleate and precipitate aragonite from Na-Ca-Cl-HCO3 solutions under these experimental conditions, the influence of the total Mg2+ concentration (up to ∼0.9 molal) on the aragonite-water oxygen isotope fractionation was examined at 25 °C. No significant Mg2+ ion effect, or oxygen isotope salt effect, was detected up to 100 mmolal total Mg2+ but a noticeable isotope salt effect was observed at ∼0.9 molal total Mg2+.On the basis of results of the laboratory synthesis experiments, a new expression for the aragonite-water fractionation is proposed over the temperature range of 0-40 °C:
1000lnαaragonite-water=17.88±0.13(103/T)-31.14±0.46  相似文献   

14.
《Geochimica et cosmochimica acta》1999,63(13-14):2009-2018
Oxygen and hydrogen isotope fractionation factors between brucite and water were experimentally determined by chemical synthesis techniques at low temperatures of 15° to 120°C. MgCl2, Mg3N2, and MgO were used as reactants, respectively, to produce brucite in aqueous solutions. All of the synthesis products were identified by x-ray diffraction (XRD) for crystal structure and by scanning electron microscope (SEM) for morphology. It is observed that oxygen isotope fractionations between brucite and water are temperature dependent regardless of variations in aging time, the chemical composition, and pH value of solutions. Brucites derived from three different starting materials yielded consistent fractionations with water at the same temperatures. These suggest that oxygen isotope equilibrium has been achieved between the synthesized brucite and water, resulting in the fractionation equation of 103lnα=1.56×106/T2−14.1. When the present results for the brucite–water system are compared with those for systems of gibbsite–water and goethite–water, it suggests the following sequence of 18O-enrichment in the M−OH bonds of hydroxides: Al3+ − OH > Fe3+ − OH > Mg2+ − OH.Hydrogen isotope fractionations between brucite and water obtained by the different synthesis methods have also achieved equilibrium, resulting in the fractionation equation of 103lnα=−4.88×106/T2−22.5. Because of the pressure effect on hydrogen isotope fractionations between minerals and water, the present calibrations at atmospheric pressure are systematically lower than fractionations extrapolated from hydrothermal exchange experiments at high temperatures of 510° to 100°C and high pressures of 1060 to 1000 bar. Comparison of the present results with existing calibrations involving other low-temperature minerals suggests the following sequence of D-enrichment in hydroxyl-bearing minerals: Al3+ − OH > Mg2+ − OH > Fe3+ − OH.  相似文献   

15.
Aragonite was precipitated in the laboratory at 25 °C in isotopic equilibrium with Na-Ca-Mg-Cl-CO3 solutions at two different pH values (i.e., pH = ∼8.2 and ∼10.8) by the constant addition method. On the basis of the oxygen isotope composition of the aragonite precipitates, it was demonstrated that the equilibrium aragonite-water fractionation factor is independent of the pH of the parent solution and equal to:
1000lnα(aragonite-H2O)=29.12±0.09  相似文献   

16.
Oxygen isotope fractionation factors between calcium carbonates and water have been applied to ancient marine geochemistry principally for the purpose of geothermometry. The problem was encountered, however, with respect to the direction and magnitude of oxygen isotope fractionation between calcite and aragonite at thermodynamic equilibrium. This basically involves sound understanding of both thermodynamics and kinetics of oxygen isotope fractionation between inorganically precipitated carbonate and water at low temperatures. Thus the crucial issues are to acknowledge the processes of chemical reaction and isotopic exchange during precipitation of CaCO3 minerals in solution, the kinetic mechanism of isotope equilibrium or disequilibrium, the effect of polymorphic transition from metastable aragonite to stable calcite under hydrous or anhydrous conditions, and the presence or absence of isotope salt effect on oxygen isotope exchange between carbonate and water in response to the hydrous or anhydrous conditions at thermodynamic equilibrium. Because good agreements exist in carbonate–water oxygen isotope fractionation factors between theoretical calculations and experimental determinations, it is encouraging to applying the thermodynamic and kinetic data to isotopic paleothermometry and geochemical tracing.  相似文献   

17.
碳酸钙-水体系氧同位素分馏系数的低温实验研究   总被引:4,自引:0,他引:4  
周根陶 《地学前缘》2000,7(2):321-338
碳酸钙是古气候和沉积岩稳定同位素地球化学研究中最常用的矿物 ,因此对碳酸钙水体系氧同位素分馏系数的实验校准已成为稳定同位素地球化学诞生以来的热点和前沿课题。但由于碳酸钙在自然界存在 3种同质多象变体 (方解石、文石和六方方解石 ) ,使人们对碳酸钙矿物与水之间氧同位素分馏系数的实验测定结果存在较大差别 ,当应用到同位素地质测温时 ,会给出显著不同的温度值。正确选用合理的方解石水或文石水体系分馏曲线 ,对低温和环境地球化学研究和应用具有重要价值。文章系统总结和评述了碳酸钙水体系氧同位素分馏系数实验校准的历史、方法和结果 ,对前人在表达方式上的不一致进行了统一 ,对氧同位素分馏的盐效应、动力氧同位素分馏效应和同质多象转变过程中的氧同位素继承性进行了讨论。通过对前人大量实验数据的系统处理并与理论计算相比较 ,推荐了热力学上平衡的方解石水体系氧同位素分馏方程 ,而对于文石水体系 ,理论计算结果尚有待于实验证实。  相似文献   

18.
The apparent inconsistency in calcite-water fractionation does occur between the arithmetic combination of Zhou and Zheng [Zhou G.-T., and Zheng Y.-F. (2003) An experimental study of oxygen isotope fractionation between inorganically precipitated aragonite and water at low temperatures. Geochim. Cosmochim. Acta67, 387-399] and the experimental determination of Zhou and Zheng [Zhou G.-T., and Zheng Y.-F. (2005) Effect of polymorphic transition on oxygen isotope fractionation between aragonite, calcite and water: a low-temperature experimental study. Am. Mineral90, 1121-1130]. To resolve this issue is to acknowledge whether or not the isotope salt effect of dissolved minerals would occur on oxygen isotope exchange between water and the minerals of interest. The question is whether or not a term of mineral-water interaction should be taken into account when calculating mineral-water 103ln α factors by an arithmetic combination between theoretical 103ln β factors for mineral and water, respectively. The hydrothermal experiments of Hu and Clayton [Hu G.-X., and Clayton R.N. (2003) Oxygen isotope salt effects at high pressure and high temperature, and the calibration of oxygen isotope geothermometers. Geochim. Cosmochim. Acta67, 3227-3246] demonstrate the absence of isotope salt effect on the oxygen isotope fractionation between calcite and water, and this abnormal behavior reasonably explains the so-called inconsistency in the calcite-water fractionations of Zhou and Zheng (2003, 2005). We argue that the mineral-water correction is still necessary for calculation of fractionations in mineral-water systems. New experimental data for oxygen isotope fractionations involving dolomite and cerussite are consistent with the calculations of Zheng [Zheng Y.-F. (1999a) Oxygen isotope fractionation in carbonate and sulfate minerals. Geochem. J.33, 109-126], but also shed light on the assumptions used in modifying the increment method. We argue that the modified increment method has developed into a theoretical mean of predictive power for calculation of oxygen isotope fractionation factors for crystalline minerals of geochemical interest.  相似文献   

19.
The influence of NaCl, CaCl2, and dissolved minerals on the oxygen isotope fractionation in mineral-water systems at high pressure and high temperature was studied experimentally. The salt effects of NaCl (up to 37 molal) and 5-molal CaCl2 on the oxygen isotope fractionation between quartz and water and between calcite and water were measured at 5 and 15 kbar at temperatures from 300 to 750°C. CaCl2 has a larger influence than NaCl on the isotopic fractionation between quartz and water. Although NaCl systematically changes the isotopic fractionation between quartz and water, it has no influence on the isotopic fractionation between calcite and water. This difference in the apparent oxygen isotope salt effects of NaCl must relate to the use of different minerals as reference phases. The term oxygen isotope salt effect is expanded here to encompass the effects of dissolved minerals on the fractionations between minerals and aqueous fluids. The oxygen isotope salt effects of dissolved quartz, calcite, and phlogopite at 15 kbar and 750°C were measured in the three-phase systems quartz-calcite-water and phlogopite-calcite-water. Under these conditions, the oxygen isotope salt effects of the three dissolved minerals range from ∼0.7 to 2.1‰. In both three-phase hydrothermal systems, the equilibrium fractionation factors between the pairs of minerals are the same as those obtained by anhydrous direct exchange between each pair of minerals, proving that the use of carbonate as exchange medium provides correct isotopic fractionations for a mineral pair.When the oxygen isotope salt effects of two minerals are different, the use of water as an indirect exchange medium will give erroneous fractionations between the two minerals. The isotope salt effect of a dissolved mineral is also the main reason for the observation that the experimentally calibrated oxygen isotope fractionations between a mineral and water are systematically 1.5 to 2‰ more positive than the results of theoretical calculations. Dissolved minerals greatly affect the isotopic fractionation in mineral-water systems at high pressure and high temperature. If the presence of a solute changes the solubility of a mineral, the real oxygen isotope salt effect of the solute at high pressure and high temperature cannot be correctly derived by using the mineral as reference phase.  相似文献   

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