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1.
对大别造山带双河超高压榴辉岩和片麻岩Sm-Nd和Rb-Sr等时线矿物进行了O同位素地质测温。尽管Sm-Nd等时线给出一致的三叠纪年龄(213~238 Ma),同一样品Rb-Sr等时线却给出侏罗纪年龄(171~174 Ma)。片麻岩、榴辉岩和榴闪岩矿物对O同位素测温得到600~720℃和420~550℃两组温度,分别对应于约225±5 Ma榴辉岩相变质和约175±5 Ma角闪岩相退变质条件下停止同位素扩散交换的温度。同一样品三叠纪Sm-Nd等时线年龄的保存、侏罗纪Rb-Sr等时线年龄的出现以及有规律的O同位素温度,表明在角闪岩相退变质过程中,Sr和O在含水矿物(如黑云母和角闪石)中的扩散速率在手标本尺度上比石榴石Nd和多硅白云母Sr的扩散速率快。  相似文献   

2.
对于变质岩 Sm-Nd 和 Rh-Sr 同位素年代学来说,其中一个重要问题是等时线矿物之间在一特定的变质事件过程中是否达到并在随后保持同位素平衡。矿物 O 同位素地质测温也是如此。由于许多情况下 Nd、Sr 和 O 在变质矿物中的扩散速率具有可比性,变质矿物之间 O 同位素平衡状况能够为矿物 Sm-Nd 和 Rb-Sr 内部等时线定年结果的有效性提供制约。为了验证其适用性,本文对大别造山带双河超高压榴辉岩和片麻岩 Sm-Nd 和 Rh-Sr 等时线矿物进行了 O 同位素地质测温。尽管Sm-Nd 等时线给出一致的三叠纪年龄(213~238Ma),同一样品 Rb-Sr 等时线却给出侏罗纪年龄(171~174Ma)。片麻岩、榴辉岩和榴闪岩矿物对 O 同位素测温得到600~720℃和420~550℃两组温度,分别对应于约225±5Ma 榴辉岩相变质和约 175±5Ma 角闪岩相退变质条件下停止同位素扩散交换的温度。同一样品三叠纪 Sm-Nd 等时线年龄的保存、侏罗纪 Rh-Sr 等时线年龄的出现以及有规律的 O 同位素温度,表明在角闪岩相退变质过程中,Sr 和 O 在含水矿物(如黑云母和角闪石)中的扩散速率在手标本尺度上比石榴石 Nd 和多硅白云母 Sr 的扩散速率快。在退变质作用过程中,等时线矿物之间的初始同位素比值均一化速率主要受扩散速率慢的矿物控制,而矿物等时线时钟的启动主要受具有高母/子体比值的矿物控制。只有当高母/子体比值矿物具有快的放射成因同位素扩散速率时,才能够应用合理的矿物等时线确定变质再造的时间。  相似文献   

3.
对苏鲁超高压变质带内诸城桃行地区榴辉岩及其花岗片麻岩围岩进行了单矿物氧同位素组成分析和锆石U-Pb定年。氧同位素组成显示出不均一亏损~(18)O的特征。石英-石榴石等高温矿物对的氧同位素温度为600~950℃,指示它们在榴辉岩相变质条件下达到并保存了氧同位素平衡。而部分石英-长石和白云母-金红石等矿物对的氧同位素温度为350~570℃,指示它们在峰期变质之后的角闪岩相退变质过程中达到并保存了同位素退化交换再平衡。锆石氧同位素组成低达-1.3‰~4.2‰,对这种低δ~(18)O值进行锆石U-Pb定年,分别得到762~834Ma的原岩年龄和202~249Ma的变质年龄。因此,桃行低δ~(18)O值锆石形成于新元古代(700~800Ma)的低δ~(18)O值岩浆。这种低δ~(18)O值岩浆是由于变质岩原岩经历新元古代高温大气降水热液蚀变后再部分熔融所形成。对于在角闪岩相退变质之后保存了封闭体系的花岗片麻岩样品(石英-长石矿物对温度为355~405℃),石榴石在榴辉岩相变质温度下达到并保存了氧同位素平衡(石英-石榴石矿物对温度为685℃),指示石榴石中Sm-Nd体系在同样的变质务件下也达到了平衡。因此,花岗片麻岩中石榴石-斜长石-全岩的Sm-Nd等时线年龄215±11Ma与锆石变质边的三叠纪年龄(202~249Ma)一样,代表了榴辉岩相峰期变质后的冷却年龄。而花岗片麻岩中石英-钾长石和石英-斜长石矿物对处于氧同位素不平衡状态,同时钾长石和斜长石相对于样品中其它矿物异常亏损~(18)O,指示在角闪岩相退变质之后体系曾经开放,岩石受到低~(18)O流体在低温和中温下(200~400℃)的热液蚀变。这种奈件下矿物氧同位素的退化交换是由表面反应机制控制,与Nd的扩散机制不同,因此氧同位素平衡无法制约Sm-Nd矿物等时线的有效性。  相似文献   

4.
常用于测定榴辉岩形成温度的有石榴石-绿辉石Fe-Mg配分温度计和石英-矿物对氧同位素温度计。最近的自然观察和实验测定发现,金红石中的Zr含量与温度之间存在线性关系,因此能够用于变质岩测温。本文首次将这三种温度计用于同一产地榴辉岩及其中的石英脉。对大别造山带黄镇低温超高压榴辉岩中金红石Zr含量的温度计算得到,产于矿物内部金红石Zr含量温度明显地高于粒间金红石Zr含量温度,产于矿物石榴石、绿辉石和黝帘石内部金红石Zr含量温度主要集中在528~589℃之间,而产于粒间金红石的温度主要集中在465~528℃之间。榴辉岩中金红石Zr含量最高的产于石榴石中,但是所计算的温度503~589℃仍然不同程度地低于榴辉岩形成温度670℃。石英脉中金红石Zr含量温度主要集中在465~528℃之间。石英-耐熔矿物对氧同位素温度主要集中在650~695℃之间,表明耐熔矿物石榴石、锆石和蓝晶石在该区榴辉岩中相对其它矿物来说保存最好,退变质作用最弱,因此其氧同位素温度与峰期超高压榴辉岩相变质奈件基本一致。而石英.易熔矿物对温度主要集中在450~510℃之间,与易熔矿物绿辉石、钠云母、斜黝帘石/黝帘石在榴辉岩中蚀变强烈一致,反映了角闪岩相退变质阶段的流体活动。石榴石-单斜辉石Fe-Mg配分温度结果分为三组:795~863℃、629~679℃和468~572℃,其中后两组与金红石Zr含量和石英-矿物对氧同位素测温结果具有可比较性,指示了榴辉岩相变质和角闪岩相退变质过程中的Fe-Mg交换平衡,而第一组温度明显高于已知的榴辉岩相变质温度,表明绿辉石后成合晶导致了部分石榴石与单斜辉石之间的Fe-Mg不平衡。榴辉岩折返过程中的流体活动可能是导致矿物之间元素和同位素扩散交换再平衡或不平衡的基本原因。粒内金红石Zr含量温度仍然不同程度地低于榴辉岩形成温度,可能说明其在进变质过程中形成后相对“孤立”,即使在峰期榴辉岩相条件下也不能与锆石之间达到Zr配分再平衡。粒间金红石Zr含量降低可能与金红石重结晶有关,结果导致它们与锆石之间的Zr配分平衡遭到破坏。  相似文献   

5.
胶南榴辉岩矿物氧同位素平衡及其Sm-Nd年代学制约   总被引:2,自引:4,他引:2  
对苏鲁地体中的胶南榴辉岩进行了矿物氧同位素分析,并与同一手标本矿物的Sm-Nd内部等时线定年和Nd-Sr同位素分布进行了对比。研究表明,石榴子石与绿辉石之间的氧同位素平衡与否能够对矿物Sm-Nd同位素体系的平衡状况和内部等时线定年结果的有效性给予直接制约。合理的石榴子石+绿辉石Sm-Nd内部等时线年龄产于两矿物之间达到并在峰变质条件下保持氧同位素平衡的样品中,而两矿物之间处于氧同位素不平衡的样品不能给出正确的Sm-Nd内部等时线年龄。同一矿物在手标本尺度出现显著的O-Nd-Sr同位素不均一性,据此对这些元素在石榴子石和绿辉石中的扩散速率顺序进行了估计,不仅得到了与实验扩散系数相吻合的结果,而且由此估计出在峰变质条件下达到矿物内部同位素均一化所需要的时间应大于10Ma。  相似文献   

6.
南苏鲁中国大陆科学钻探主孔CCSD-MH及地表的榴辉岩Sm—Nd同位素年龄测试结果显示,每件样品中全岩(Wr)与石榴石(Grt)和绿辉石(Omp)点均在一条直线上。除样品B210R186以外,其余5件榴辉岩均给出十分相近的Sm—Nd等时线年龄,位于202.6-219Ma之间,这与榴辉岩围岩——片麻岩锆石边缘记录的近等温减压退变质年龄(200-220Ma)十分接近,表明测试的榴辉岩中石榴石的Sm—Nd同位素体系有可能在近等温减压退变质时重置,并在向角闪岩相退变质过渡时封闭。因此,笔者测定的202.6-219Ma的Sm-Nd全岩-矿物等时线年龄,应代表了南苏鲁榴辉岩在构造折返过程中近等温减压阶段的退变质年龄,而不能代表苏鲁地体的超高压变质年龄。  相似文献   

7.
一产于大别山北部铙钹寨面理化橄榄岩中的强变形榴辉岩的石榴子石具有退变质环带 ,表现为边部CaO含量下降和MnO含量升高 ,指示Ca和Mn在石榴子石具有较快的扩散速率。该榴辉岩中石榴子石 +绿辉石连线给出的Sm Nd年龄为 187± 5Ma ,显著小于大别山南部超高压榴辉岩及北部榴辉岩的Sm Nd年龄 (分别为 2 2 1± 5~ 2 2 8± 3Ma和 2 10± 6~ 2 14± 6Ma)。这一偏低的Sm Nd年龄可能是由于石榴子石退变质环带引起14 3 Nd/ 14 4 Nd降低所造成的。对该样品石榴子石、绿辉石和石英的δ18O测定表明 ,这些矿物之间的实测分馏值小于它们在 5 0 0~ 90 0℃条件下的平衡分馏值 ,从而证明它们之间存在氧同位素不平衡。榴辉岩中石榴子石的退变质环带也可造成绿辉石与石榴子石之间显著的Nd同位素和氧同位素不平衡现象。  相似文献   

8.
北大别洪庙榴辉岩相岩石Sm-Nd年龄:峰期变质时代   总被引:1,自引:1,他引:0  
前人工作认为北大别榴辉岩在榴辉岩相变质后,经历了麻粒岩相退变质作用,因此获得的Sm-Nd矿物等时线年龄代表了麻粒岩相变质时代.本文对北大别安徽洪庙百丈岩榴辉岩相岩石(辉石石榴石岩)的研究表明,该岩石经历了三叠纪超高压变质作用,经历了角闪岩相退变质.所研究样品在峰期变质之后是否经历了麻粒岩相退变质尚不能明确界定.结合矿物氧同位素体系平衡判据,辉石石榴石岩在峰期变质时达到了Sm-Nd同位素体系的均一化和平衡,并且在后期角闪岩相退变质中该同位素体系未出现明显的扰动,因此其Sm-Nd矿物等时线年龄[(225±14)Ma和(229±13)Ma]代表了榴辉岩相变质时代.同时,样品中矿物的同位素组成表明,在俯冲板块折返和退变质过程中,岩石受到外来和内部流体的不均匀作用,造成退变的单斜辉石在同位素组成上的不均一.  相似文献   

9.
对变质岩经历的进变质和退变质作用定年并构建其p-T-t轨迹是观测地壳运动过程的重要途径。全岩等时线和矿物等时线是变质岩Rb-Sr和Sm-Nd定年的两个基本方法。在变质过程中同位素均一化尺度是影响全岩等时线定年的主要因素。在一般情况下,变质过程中Rb-Sr同位素体系的均一化尺度远大于Sm-Nd体系,从而Rb-Sr全岩等时线可以给出有意义的变质年龄,而Sm-Nd数据不能。然而,对于低级变质作用,因其较高级变质作用有更丰富的流体,其Nd同位素均一化尺度可能变,从而使得一些全岩Sm-Nd等时线给出和Rb-Sr年龄一致的有意义变质年龄。对于矿物等时线定年,在变质作用时矿物之间能否达到同位素平衡则是关键。已经证明,超高压变质(UHPM)岩的退变质作用是开放体系,然而UHPM矿物的Sr-Nd同位素体系仍保持封闭。已观测到UHPM矿物和退变质矿物之间的Sr-Nd同位素不平衡,因此,高压矿物(如石榴石、多硅白云母)和退变质矿物或全岩的连线将会给出没有意义的偏老的Sm-Nd年龄和偏年轻的Rb-Sr年龄。由3个以上很好分开的矿物确定的等时线的良好线性、不同定年方法获得的年龄的一致性以及确定等时线矿物之间的氧同位素平衡可用于判定矿物间Nd同位素达到平衡。由于石榴石具有高Sm/Nd和Lu/Hf比,因此石榴石是榴辉岩或石榴辉石岩Sm-Nd或Lu-Hf定年最重要的矿物。然而由于石榴石非常宽的p-T稳定范围,石榴石可以在高级变质岩的前进变质和退变质作用中生长,从而具有复杂的环带结构。因此,如何从具有复杂结构的石榴石不同部位取样和分析并判断其成因就成为榴辉岩或石榴辉石岩Sm-Nd或LuHf矿物等时线定年的一个挑战。这需要今后做更进一步的研究。  相似文献   

10.
喻星星  张建新 《岩石学报》2016,32(5):1437-1451
榴辉岩相变沉积岩普遍分布在北祁连HP/LT变质带中,在HP/LT变质带的西段香子沟地区,变质沉积岩的矿物组合为石英+多硅白云母+石榴子石+绿帘石±蓝闪石±绿辉石(+金红石+锆石)。利用石榴子石-绿辉石-多硅白云母地质温压计获得变沉积岩的峰期变质温度为448~467℃,压力为2.0~2.2GPa。锆石SHRIMP和LA-ICPMS U-Pb测试结果显示,碎屑锆石核的年龄分布在532~2700Ma之间,大部分集中在中元古代和晚古元古代之间,显示原岩的碎屑物质主要来源于中-古元古代岩石。2个样品的变质锆石边获得的206Pb/238U加权平均年龄分别为495±7Ma(MSWD=0.63)和496±7Ma(MSWD=5.6),代表了榴辉岩相变质年龄。结合前人研究成果和锆石Hf同位素特征,表明榴辉岩相变沉积岩的原岩形成于以陆缘碎屑为主的活动大陆边缘或弧前环境,在早古生代洋壳俯冲过程中,通过俯冲剥蚀作用被卷入到俯冲带深部,与所包裹的基性岩(榴辉岩的原岩)一起发生榴辉岩相变质作用,并快速折返至浅部。  相似文献   

11.
This paper first reports a high precision U–Pb age of 218±1.2 Ma for rutile in coesite-bearing eclogite from Jinheqiao in the Dabie Mounteins, east–central China. This work shows that the U–Pb mineral (rutile+omphacite) isochron age of 218±2.5 Ma and conventional rutile U–Pb concordia age of 218±1.2 Ma obtained by common Pb correction based on the Pb isotopic composition of omphacite in the same eclogite sample are consistent, proving that the omphacite with low U/Pb ratio (μ=2.8) can be used for common Pb correction in U–Pb dating of rutile. Oxygen isotope analysis of rutile aliquots gave the consistent δ18O values of −6.1±0.1%, demonstrating oxygen isotope homogenization in the rutile of different grains as inclusion in garnet and grain in matrix. Oxygen isotope thermometry yields temperatures of 695±35 and 460±15 °C for quartz–garnet and quartz–rutile pairs, respectively. These oxygen isotopic observations suggest that the diffusion of oxygen in rutile as inclusion in garnet is not controlled by garnet. According to field-based thermochronological studies of rutile, an estimate of the Tc of about 460 °C for U–Pb system in rutile under rapid cooling conditions (20 °C/Ma) was advised. Based on this U–Pb age as well as the reported chronological data with their corresponding metamorphic and/or closure temperature, an improved Tt path has been constructed. The Tt path confirms that the UHPM rocks in South Dabie experienced a rapid cooling following the peak metamorphism before 220 Ma and a long isothermal stage from 213 to 180 Ma around 425 °C.  相似文献   

12.
东昆仑东端扎那合惹地区元古宙蛇绿岩   总被引:5,自引:0,他引:5  
扎那合惹地区元古宙蛇绿岩由超镁铁质堆晶岩组成,堆晶岩岩石化学成分、矿物组成变化较大。痕量元素、稀土元素表现出富集不相容元素的特征,而Nd同位素地球化学特征显示其源于亏损的地幔源区。超镁铁质堆晶岩Sm-Nd等时线年龄为1480±3Ma,与之紧密伴生的榴闪岩40Ar/39Ar坪年龄为(881.8±4.7)Ma(石榴石)和(852.2±1.0)Ma(角闪石),分别代表了古昆中洋扩张及俯冲消减的时限。  相似文献   

13.
Sm-Nd and oxygen isotope analyses were carried out for mineral separates of ultrahigh pressure eclogites from the Sulu terrane in eastern China. The results show a direct correspondence in equilibrium or disequilibrium state between the oxygen and Sm-Nd isotope systems of eclogite minerals. The omphacite-garnet pairs of oxygen isotope equilibrium at eclogite-facies conditions yield meaningful Triassic Sm-Nd isochron ages, whereas those of oxygen isotope disequilibrium give non-Triassic ages of geological meaninglessness. This can be reasonably interpreted by the fact that the rates of oxygen diffusion in garnet and pyroxene are lower than, or close to, those of Nd diffusion, and thus attainment of isotopic equilibrium in the omphacite-garnet O system suggests achievement of Nd isotope equilibrium in the same mineral pairs. The presence or absence of fluid in the eclogite protoliths is a major rate-controlling factor for isotopic equilibration during high-grade metamorphism. It appears that the state of oxygen isotope equilibrium between cogenetic minerals can provide a critical test for the validity of the Sm-Nd mineral chronometer. In addition, the exact timing of the ultrahigh pressure metamorphism in the Dabie-Sulu terranes is constrained at Early Triassic rather than Late Triassic.  相似文献   

14.
Diffusion rates of Sr and O in minerals are often comparable while Nd has a lower diffusion rate during thermal overprint(s); thus, the O isotope systems between metamorphic minerals can serve as an indicator to evaluate whether equilibrium of Rb–Sr and Sm–Nd systems has been preserved in the metamorphic minerals that experienced retrograde metamorphism. This study presents a combination of investigation on Sm–Nd, Rb–Sr, and O isotopic compositions of minerals separated from ultrahigh-pressure eclogite and gneiss that were collected from the main hole of the Chinese Continental Scientific Drilling project located in the Sulu orogen, eastern China. Oxygen isotopic compositions of minerals from gneiss and eclogite yield two temperature groups of 620–740 and 460–590°C, representing diffusion cessation of isotopic exchange during the eclogite-facies recrystallization and later amphibolite-facies retrograde overprint. Rb–Sr mineral regressions of two eclogite samples give consistent Triassic ages of 244 Ma, corresponding to eclogite-facies metamorphism, while the same minerals do not yield meaningful Sm–Nd isochron ages. This phenomenon likely suggests that Rb–Sr isotopic equilibrium was achieved during eclogite-facies metamorphism and preserved during late amphibolite-facies retrogression. In contrast, Sm–Nd isotopic equilibrium between the minerals of eclogite was not achieved under UHP metamorphic conditions. Regressions of epidote and biotite of one gneiss sample give a Triassic Sm–Nd age of 243 ± 34 Ma, corresponding to the time of the eclogite-facies metamorphism, and a Jurassic mineral Rb–Sr age of 187.5 ± 1.8 Ma. These results imply that fluids have played an important role to achievement of the Sm–Nd isotopic equilibrium during eclogite-facies metamorphism and re-equilibration of the Rb–Sr isotopic system during later retrograde overprint.  相似文献   

15.
Sm–Nd, Lu–Hf, Rb–Sr and SIMS U–Pb data are presented for meta‐gabbroic eclogites from the eclogite type‐locality ( Haüy, 1822 ) Kupplerbrunn–Prickler Halt and other areas of the Saualpe (SE Austria) and Pohorje Mountains (Slovenia). Mg‐rich eclogites derived from early gabbroic cumulates are kyanite‐ and zoisite rich, whereas eclogites with lower Mg contents contain clinozoisite ± kyanite. Calculated PT conditions at the final stages of high‐pressure metamorphism are 2.2 ± 0.2 GPa at 630–740 °C. Kyanite‐rich eclogites did not yield geologically meaningful Sm–Nd ages due to incomplete Nd isotope equilibration, whereas Sm–Nd multifraction garnet–omphacite regression for a low‐Mg eclogite from Kupplerbrunn yields an age of 91.1 ± 1.3 Ma. The Sm–Nd age of 94.1 ± 0.8 Ma obtained from the Fe‐rich core fraction of this garnet dates the initial stages of garnet growth. Zircon that also crystallized at eclogite facies conditions gives a weighted mean U–Pb SIMS age of 88.4 ± 8.1 Ma. Lu–Hf isotope analysis of a kyanite–eclogite from Kupplerbrunn yields 88.4 ± 4.7 Ma for the garnet–omphacite pair. Two low‐Mg eclogites from the Gertrusk locality of the Saualpe yield a multimineral Sm–Nd age of 90.6 ± 1.0 Ma. A low‐Mg eclogite from the Pohorje Mountains (70 km to the SE) gives a garnet–whole‐rock Lu–Hf age of 93.3 ± 2.8 Ma. These new age data and published Sm–Nd ages of metasedimentary host rocks constrain the final stages of the eo‐Alpine high‐pressure event in the Saualpe–Pohorje part of the south‐easternmost Austroalpine nappe system suggesting that garnet growth in the high‐pressure assemblages started at c. 95–94 Ma and ceased at c. 90–88 Ma, probably at the final pressure peak. Zircon and amphibole crystallization was still possible during incipient isothermal decompression. Rapid exhumation of the high‐pressure rocks was induced by collision of the northern Apulian plate with parts of the Austroalpine microplate, following Jurassic closure of the Permo‐Triassic Meliata back‐arc basin.  相似文献   

16.
深刻理解同位素在超高压变质及退变质过程中的地球化学行为对获得超高压变质岩准确并有明确意义的年龄值是非常重要的。对 Sm-Nd,Rb-Sr 同位素体系,只有变质矿物同位素体系达到平衡才能给出精确有意义的等时线年龄。研究表明,与副变质岩互层的细粒榴辉岩的高压变质矿物之间,或者强退变质岩石的退变质矿物之间,其 Nd,Sr 同位素可以达到平衡;然而高压变质矿物与退变质矿物之间 Nd,Sr 同位素不平衡。由于全岩样品总是含有数量不等的退变质矿物,因此石榴石 全岩 Sm-Nd 法或多硅白云母 全岩 Rh-Sr 法将有可能给出无地质意义的年龄。通常低温榴辉岩的高压变质矿物之间存在Nd 同位素不平衡。超高压变质岩多硅白云母所含过剩 Ar 主要源于榴辉岩原岩中角闪石在变质分解时释放出来的放射成因 Ar。因此,不含榴辉岩的花岗片麻岩多硅白云母基本不含过剩 Ar。对变质锆石成因的准确判断是正确理解锆石 U-Ph 年龄意义的关键。本文对不同成因锆石的判别标志及年龄意义做了总结,并指出将阴极发光图形,锆石痕量元素组成及矿物包裹体鉴定相结合是进行锆石成因鉴定的有效方法。高压变质或退变质增生锆石组成单一,是理想变质定年对象。然而变质重结晶锆石域常是重结晶锆石和继承晶质锆石的混合区,因而给出混合年龄。只有完全变质重结晶锆石才能给出准确变质时代。  相似文献   

17.
A variety of eclogites from an east-west transect across the North-East Greenland eclogite province have been studied to establish the timing of high pressure (HP) and ultrahigh-pressure (UHP) metamorphism in this northern segment of the Laurentian margin. Garnet + omphacite ± amphibole + whole rock Sm-Nd isochrons from a quartz eclogite, a garnet + omphacite + rutile eclogite and a partially melted zoisite eclogite in the western HP belt are 401±2, 402±9 and 414±18 Ma, respectively. Corresponding sensitive high-resolution ion microprobe (SHRIMP) 206Pb/238U ages of metamorphic zircon in the same samples are 401±7, 414±13, and 393 ±10 Ma. Metamorphic zircon domains were identified using morphology, cathodoluminescence (CL) imaging, U, Th, Th/U and trace element contents. Zircon from the quartz eclogite and the garnet + omphacite + rutile eclogite are typical of eclogite facies zircon with rounded to subhedral shapes, patchy to homogenous CL domains, low U, and very low Th and Th/U. The partially melted eclogite contains euhedral zircons with dark, sector-zoned, higher U, Th and Th/U inherited cores. Three cores give a Paleoproterozoic 207Pb/206Pb age of 1,962±27 Ma, interpreted as the age of the leucogabbroic protolith. CL images of the bright overgrowths show faint oscillatory zoning next to homogenous areas that indicate zircon growth in the presence of a HP melt and later recrystallization. Additional evidence that zircon grew during eclogite facies conditions is the lack of a Eu anomaly in the trace element data for all the samples. These results, combined with additional less precise Sm-Nd ages and our earlier work, point to a Devonian age of HP metamorphism in the western and central portions of the eclogite province. An UHP kyanite eclogite from the eastern part of the transect contains equant metamorphic zircon with homogeneous to patchy zoning in CL and HP inclusions of garnet, omphacite and kyanite. These zircons have slightly higher U, Th and Th/U values than the HP ones, no Eu anomaly, and are thus comparable to UHP zircons in the literature. The 206Pb/238U age of these zircons is 360±5 Ma, much younger than the HP eclogites. The same sample gives a Sm-Nd age of 342±6 Ma. Unlike the HP eclogites, the Sm-Nd age of the UHP rock is ca. 20 Ma younger than the U-Pb zircon age and most likely records slow cooling through the closure temperature, since peak temperatures were in excess of 900°C. Widespread HP metamorphism of both the Laurentian and Baltica continental margins marks the culmination of this continent–continent collision in the Devonian. Carboniferous UHP conditions, though localized in the east, suggest a prolonged collisional history rather than a short-lived Scandian orogeny. The traditional Silurian Scandian orogeny should thus be extended through the Devonian.  相似文献   

18.
报道了大别山北部三个榴辉岩样品的矿物 Sm- Nd等时线年龄,它们分别为 (210± 6) Ma或 (214± 6) Ma、 (208± 38) Ma和 (208± 4) Ma。氧同位素研究表明,这些样品中的石榴子石与绿辉石之间处于氧同位素平衡状态,因此,该 Sm- Nd等时线定年结果可靠。本区榴辉岩的高压麻粒岩相退变质阶段的冷却年龄为 210 Ma左右;榴辉岩的钕同位素初始比ε Nd(t)(两个样品一个为- 10左右,另一个为- 2)基本上表现为陆壳岩石特征,可能类似于南部超高压带中的榴辉岩,为印支期扬子陆壳俯冲变质成因。它们的全岩δ 18O值较低,为+ 2.4‰~+ 3.6‰,可能指示其原岩同大别山南部超高压带中榴辉岩一样,在板块俯冲之前,经受过高温地表水热液蚀变。年代学结果表明,大别山北部榴辉岩在 230~ 210 Ma期间经历的是一等温或升温过程,这与大别山南部含柯石英榴辉岩在这一时期的快速冷却过程形成强烈对比,这对理解俯冲陆壳中不同构造岩片折返过程的差异有重要意义。  相似文献   

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