Article(id=1149769462921998667, tenantId=1146029695717560320, journalId=1146123166801305609, issueId=1149769458706723113, articleNumber=null, orderNo=null, doi=10.12404/j.issn.1671-1815.2404220, pmid=null, cstr=null, oa=null, hot=null, price=null, onlineType=0, articleFormat=0, articleType=null, articleTypeStr=null, receivedDate=1717603200000, receivedDateStr=2024-06-06, revisedDate=1740067200000, revisedDateStr=2025-02-21, acceptedDate=null, acceptedDateStr=null, onlineDate=1752056001644, onlineDateStr=2025-07-09, pubDate=1747497600000, pubDateStr=2025-05-18, doiRegisterDate=null, doiRegisterDateStr=null, onlineIssueDate=1752056001644, onlineIssueDateStr=2025-07-09, onlineJustAcceptDate=null, onlineJustAcceptDateStr=null, onlineFirstDate=null, onlineFirstDateStr=null, sourceXml=null, magXml=null, createTime=1752056001644, creator=13701087609, updateTime=1752056001644, updator=13701087609, issue=Issue{id=1149769458706723113, tenantId=1146029695717560320, journalId=1146123166801305609, year='2025', volume='25', issue='14', pageStart='5705', pageEnd='6154', issueExtLink='null', onlineDate='null', pubDate='null', beforeIssueId=null, nextIssueId=null, price=null, status=1, issueComplete=1, articleOrder=1, issueType=-1, specialIssue=0, createTime=1752056000638, creator=13701087609, updateTime=1768456798957, updator=13701087609, preIssue=null, nextIssue=null, ext={EN=IssueExt(id=1218559392753041779, tenantId=1146029695717560320, journalId=1146123166801305609, issueId=1149769458706723113, language=EN, specialIssueTitle=, coverIllustrator=, specialIssueEditor=, specialIssueAbout=), CN=IssueExt(id=1218559392753041780, tenantId=1146029695717560320, journalId=1146123166801305609, issueId=1149769458706723113, language=CN, specialIssueTitle=, coverIllustrator=, specialIssueEditor=, specialIssueAbout=)}, issueFiles=null}, startPage=5756, endPage=5766, ext={EN=ArticleExt(id=1149769463098159439, articleId=1149769462921998667, tenantId=1146029695717560320, journalId=1146123166801305609, language=EN, title=Geochronology, Petrochemistry and Geological Significance of the Kezirto Pluton in Southwestern Tianshan Mountain, columnId=1156262729351549255, journalTitle=Science Technology and Engineering, columnName=Papers·Astronomy and Geosciences, runingTitle=null, highlight=null, articleAbstract=

The Kezirto pluton is located in the alkaline intrusive rock belt on the northern margin of the Tarim Basin. The lithology is alkaline granite. The petrogeochemical characteristics were studied in detail. The U-Pb isotope age of the pluton was measured by LA-ICP-MS method, which provides a basis for the study of the characteristics, age, genesis and formation environment of the pluton. At the same time, the nature of late Paleozoic magmatic activities and their tectonic settings in the area were studied, which can better guide the exploration work in the area and have important theoretical and practical significance. The Kezirto granite pluton was divided into two parts, north and south. The total rare earth element content is relatively high. The ∑REE of the northern pluton was 261.723×10-6~834.783×10-6, and the ∑REE of the southern pluton is 422.174×10-6~575.86×10-6. HFSE(high field strength elements) are obviously enriched relative to LILE(large ion lithophile elements), and elements such as Ba, Sr, P, and Ti are obviously depleted, with obvious negative Eu anomalies. The chondrite-normalized rare earth element diagram shows a slightly right-inclined seagull-like shape, and light rare earth elements are slightly enriched compared to heavy rare earth elements. The Kezirto pluton is A1-type granite. The LA-ICP-MS U-Pb isotope ages of the north and south plutons are (273.8±2.9) Ma and (274.8±1.8) Ma, which are contemporaneous plutons. The formation of the Kezirto pluton is due to the underplating of mantle-derived magma, which leads to the remelting of ancient rocks in the lower crust. After that, it undergoes fractional crystallization. During the formation process, it is contaminated by the crust to different degrees. The pluton has experienced the tectonic environment of deep mantle plume and intracontinental rift.

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西南天山克孜尔托岩体位于塔北缘碱性侵入岩带上,主要岩石类型为碱性花岗岩。对该岩体的岩石地球化学特征进行了详细研究,运用高精度等离子体质谱-激光探针法(LA-ICP-MS)测得岩体U-Pb同位素年龄,为岩体特征、时代、成因及形成环境研究提供了依据。同时,研究了区内晚古生代岩浆活动的性质及其构造背景能较好地指导区内的勘探工作,具有重要的理论和现实意义。克孜尔托花岗岩岩体分为南北两部分,总稀土元素含量较高,北部岩体∑REE为261.723×10-6~834.783×10-6,南部岩体∑REE为422.174×10-6~575.86×10-6;高场强元素(high field strength elements,HFSE)相对于大离子亲石元素(large ion lithophile elements,LILE)均具有明显的富集,明显亏损Ba、Sr、P、Ti元素,具有明显的负Eu异常。稀土元素球粒陨石标准化图解呈现轻微右倾的海鸥式形态,轻稀土较重稀土元素轻微富集。克孜尔托岩体为A1型花岗岩。南北岩体LA-ICP-MS U-Pb同位素年龄分别为(273.8±2.9) Ma和(274.8±1.8) Ma,为同期岩体。克孜尔托岩体的形成是由于幔源岩浆的底侵导致下地壳古老的岩石重熔,之后又经历分离结晶作用形成,在形成的过程中遭受了不同程度的地壳混染。岩体经历了深部地幔柱和陆内裂谷的构造环境。

, correspAuthors=蔡厚安, authorNote=null, correspAuthorsNote=null, copyrightStatement=null, copyrightOwner=null, extLink=null, articleAbsUrl=null, sourceXml=mjDn2IVcevtCdbnuYOHQKQ==, magXml=45oaKAdN7+GDS8JtqBz5kg==, pdfUrl=null, pdf=CPoTjPd1EbK0YS5RdJTGPw==, pdfFileSize=null, pdfExtLink=null, richHtmlUrl=null, mobilePdfUrl=null, reviewReport=null, pdfFirstPage=null, abstractGraph=null, abstractGraphContent=null, abstractVideo=null, citation=null, cebUrl=null, magXmlContent=j+1pu2zghDmyaTrB6fdh+g==, mapNumber=null, authorCompany=null, fund=null, authors=

蔡厚安(1981—), 男,汉族,河南信阳人,博士后,正高级工程师。研究方向:有色金属成矿规律。E-mail:

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蔡厚安(1981—), 男,汉族,河南信阳人,博士后,正高级工程师。研究方向:有色金属成矿规律。E-mail:

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蔡厚安(1981—), 男,汉族,河南信阳人,博士后,正高级工程师。研究方向:有色金属成矿规律。E-mail:

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Journal of Petrology, 1984, 25(4): 956-983., articleTitle=Trace element discrimination diagrams for the tectonic interpretation of granitic rocks, refAbstract=null)], funds=[Fund(id=1172929809438097598, tenantId=1146029695717560320, journalId=1146123166801305609, articleId=1149769462921998667, awardId=DD20160001, language=CN, fundingSource=中国地质调查局项目(DD20160001), fundOrder=null, country=null)], companyList=[AuthorCompany(id=1172929805524811911, tenantId=1146029695717560320, journalId=1146123166801305609, articleId=1149769462921998667, xref=null, ext=[AuthorCompanyExt(id=1172929805529006216, tenantId=1146029695717560320, journalId=1146123166801305609, articleId=1149769462921998667, companyId=1172929805524811911, language=EN, country=null, province=null, city=null, postcode=null, companyName=null, departmentName=null, remark=China Non-ferrous Metals Resource Geological Survey, Beijing 100012, China), AuthorCompanyExt(id=1172929805566754953, tenantId=1146029695717560320, journalId=1146123166801305609, articleId=1149769462921998667, companyId=1172929805524811911, language=CN, country=null, province=null, city=null, postcode=null, companyName=null, departmentName=null, remark=有色金属矿产地质调查中心, 北京 100012)])], figs=[ArticleFig(id=1172929807470969004, tenantId=1146029695717560320, journalId=1146123166801305609, articleId=1149769462921998667, language=EN, label=Fig.1, caption=The geological map of the western Tianshan orogen and geological map of Kezirto block, figureFileSmall=MWyHjAwZ99wq7VszWfWB+Q==, figureFileBig=ypzLvI87hgkU6MnBK7vUEQ==, tableContent=null), ArticleFig(id=1172929807529689261, tenantId=1146029695717560320, journalId=1146123166801305609, articleId=1149769462921998667, language=CN, label=图1, caption=西天山造山带地质图和克孜尔托一带地质图, figureFileSmall=MWyHjAwZ99wq7VszWfWB+Q==, figureFileBig=ypzLvI87hgkU6MnBK7vUEQ==, tableContent=null), ArticleFig(id=1172929807605186734, tenantId=1146029695717560320, journalId=1146123166801305609, articleId=1149769462921998667, language=EN, label=Fig.2, caption=Hand specimens and microscopic photographs of Kezirto pluton, figureFileSmall=v1u3LE5g4CgjViRw88CjXg==, figureFileBig=eWZDZwIQaGQhSEpO191LfA==, tableContent=null), ArticleFig(id=1172929807718432943, tenantId=1146029695717560320, journalId=1146123166801305609, articleId=1149769462921998667, language=CN, label=图2, caption=克孜尔托岩体手标本和镜下照片

Arf为钠铁闪石;Bi为黑云母;Or为正长石;Pl为斜长石;Pth为条纹长石;Q为石英;Fe为Ti;Oxide为铁钛氧化物

, figureFileSmall=v1u3LE5g4CgjViRw88CjXg==, figureFileBig=eWZDZwIQaGQhSEpO191LfA==, tableContent=null), ArticleFig(id=1172929807890399408, tenantId=1146029695717560320, journalId=1146123166801305609, articleId=1149769462921998667, language=EN, label=Fig.3, caption=The cathodoluminescence photos, zircon concordance age and mean age of Kezirto pluton, figureFileSmall=SgBNTY5nXGW9c0nzmeMRDA==, figureFileBig=JrR1nFe7o90v7rl2Zsbz1g==, tableContent=null), ArticleFig(id=1172929807961702577, tenantId=1146029695717560320, journalId=1146123166801305609, articleId=1149769462921998667, language=CN, label=图3, caption=克孜尔托岩体部分阴极发光照片、锆石谐和年龄图和平均值图, figureFileSmall=SgBNTY5nXGW9c0nzmeMRDA==, figureFileBig=JrR1nFe7o90v7rl2Zsbz1g==, tableContent=null), ArticleFig(id=1172929808058171570, tenantId=1146029695717560320, journalId=1146123166801305609, articleId=1149769462921998667, language=EN, label=Fig.4, caption=Geochemical diagram of Kezirto pluton, figureFileSmall=u4kY1bjaKY/qFdqSAnBSmA==, 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西南天山克孜尔托岩体年代学、岩石地球化学特征及地质意义
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蔡厚安 , 杨自安 , 侯朝勇 , 薛伟 , 李伟
科学技术与工程 | 论文·天文学、地球科学 2025,25(14): 5756-5766
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科学技术与工程 | 论文·天文学、地球科学 2025, 25(14): 5756-5766
西南天山克孜尔托岩体年代学、岩石地球化学特征及地质意义
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蔡厚安 , 杨自安, 侯朝勇, 薛伟, 李伟
作者信息
  • 有色金属矿产地质调查中心, 北京 100012
  • 蔡厚安(1981—), 男,汉族,河南信阳人,博士后,正高级工程师。研究方向:有色金属成矿规律。E-mail:

Geochronology, Petrochemistry and Geological Significance of the Kezirto Pluton in Southwestern Tianshan Mountain
Hou-an CAI , Zi-an YANG, Chao-yong HOU, Wei XUE, Wei LI
Affiliations
  • China Non-ferrous Metals Resource Geological Survey, Beijing 100012, China
出版时间: 2025-05-18 doi: 10.12404/j.issn.1671-1815.2404220
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西南天山克孜尔托岩体位于塔北缘碱性侵入岩带上,主要岩石类型为碱性花岗岩。对该岩体的岩石地球化学特征进行了详细研究,运用高精度等离子体质谱-激光探针法(LA-ICP-MS)测得岩体U-Pb同位素年龄,为岩体特征、时代、成因及形成环境研究提供了依据。同时,研究了区内晚古生代岩浆活动的性质及其构造背景能较好地指导区内的勘探工作,具有重要的理论和现实意义。克孜尔托花岗岩岩体分为南北两部分,总稀土元素含量较高,北部岩体∑REE为261.723×10-6~834.783×10-6,南部岩体∑REE为422.174×10-6~575.86×10-6;高场强元素(high field strength elements,HFSE)相对于大离子亲石元素(large ion lithophile elements,LILE)均具有明显的富集,明显亏损Ba、Sr、P、Ti元素,具有明显的负Eu异常。稀土元素球粒陨石标准化图解呈现轻微右倾的海鸥式形态,轻稀土较重稀土元素轻微富集。克孜尔托岩体为A1型花岗岩。南北岩体LA-ICP-MS U-Pb同位素年龄分别为(273.8±2.9) Ma和(274.8±1.8) Ma,为同期岩体。克孜尔托岩体的形成是由于幔源岩浆的底侵导致下地壳古老的岩石重熔,之后又经历分离结晶作用形成,在形成的过程中遭受了不同程度的地壳混染。岩体经历了深部地幔柱和陆内裂谷的构造环境。

西南天山  /  克孜尔托  /  岩石地球化学  /  LA-ICP-MS

The Kezirto pluton is located in the alkaline intrusive rock belt on the northern margin of the Tarim Basin. The lithology is alkaline granite. The petrogeochemical characteristics were studied in detail. The U-Pb isotope age of the pluton was measured by LA-ICP-MS method, which provides a basis for the study of the characteristics, age, genesis and formation environment of the pluton. At the same time, the nature of late Paleozoic magmatic activities and their tectonic settings in the area were studied, which can better guide the exploration work in the area and have important theoretical and practical significance. The Kezirto granite pluton was divided into two parts, north and south. The total rare earth element content is relatively high. The ∑REE of the northern pluton was 261.723×10-6~834.783×10-6, and the ∑REE of the southern pluton is 422.174×10-6~575.86×10-6. HFSE(high field strength elements) are obviously enriched relative to LILE(large ion lithophile elements), and elements such as Ba, Sr, P, and Ti are obviously depleted, with obvious negative Eu anomalies. The chondrite-normalized rare earth element diagram shows a slightly right-inclined seagull-like shape, and light rare earth elements are slightly enriched compared to heavy rare earth elements. The Kezirto pluton is A1-type granite. The LA-ICP-MS U-Pb isotope ages of the north and south plutons are (273.8±2.9) Ma and (274.8±1.8) Ma, which are contemporaneous plutons. The formation of the Kezirto pluton is due to the underplating of mantle-derived magma, which leads to the remelting of ancient rocks in the lower crust. After that, it undergoes fractional crystallization. During the formation process, it is contaminated by the crust to different degrees. The pluton has experienced the tectonic environment of deep mantle plume and intracontinental rift.

southwestern Tianshan  /  Kezirto  /  petrogeochemistry  /  LA-ICP-MS
蔡厚安, 杨自安, 侯朝勇, 薛伟, 李伟. 西南天山克孜尔托岩体年代学、岩石地球化学特征及地质意义. 科学技术与工程, 2025 , 25 (14) : 5756 -5766 . DOI: 10.12404/j.issn.1671-1815.2404220
Hou-an CAI, Zi-an YANG, Chao-yong HOU, Wei XUE, Wei LI. Geochronology, Petrochemistry and Geological Significance of the Kezirto Pluton in Southwestern Tianshan Mountain[J]. Science Technology and Engineering, 2025 , 25 (14) : 5756 -5766 . DOI: 10.12404/j.issn.1671-1815.2404220
西南天山分布着一条重要的碱性侵入岩与稀有稀散金属成矿带[1-2]。该成矿带受塔里木板块和南天山板块缝合带的北东东向深大断裂控制[3-7],带内岩性组合为基性-超基性岩、碱性岩和火成碳酸岩[8-11]。其成因认识不一,多认为是由区域大规模热事件将幔源物质通过深大断裂带到了木兹都克过渡带形成[12-17],成岩年龄为270~316 Ma[18-27]。研究区同时还位于塔里木地块西北部,是早二叠世塔里木大火成岩省 (Tarim large igneous province, TLIP)的一部分。前人对TLIP的形成提出了各种模型,其中地幔柱模型[28-30]与现有证据最为一致。作为 TLIP 岩浆过程的最后阶段,A 型花岗岩的成岩作用存在争议。而了解 A 型花岗岩的岩石成因对于阐明后期岩浆过程和地球动力学演化至关重要。研究区区域上分布着大量古元古代A型花岗岩[31-34],包括本文研究的克孜尔托岩体。本文研究对其岩石地球化学特征进行了详细研究,运用高精度等离子体质谱-激光探针法(LA-ICP-MS)测得岩体U-Pb同位素年龄,系统研究了其地质地球化学特征,为岩体特征、时代、成因及形成环境研究提供了依据。
另一方面,与中国西南天山相邻的中亚邻国产出有多个大型—特大型金属矿床,但中国却至今没有重大发现,因此查清二者的地质背景是否相似就显得尤为重要。中国西北塔里木盆地晚古生代以来经历了强烈的岩浆作用和成矿作用[35-37],具有代表性的岩浆活动是TLIP的形成,其年代从晚石炭世到早二叠世[28-30]。研究晚古生代岩浆活动的性质及其构造背景具有重要的理论和现实意义。
现研究克孜尔托A型花岗岩的岩石地球化学特征,测试其U-Pb同位素年龄,分析其成因,挖掘其蕴含的地质意义,以期助力区内TLIP研究和勘探工作。
研究区位于西天山南端[图1(a)],大地构造位置特殊,处于哈萨克斯坦板块南缘和塔里木板块汇聚叠覆区。研究区区域上位于塔北缘杂岩带的西段,区内受深大断裂控制的富碱性小岩体散布,如图1(b)所示。其中,塔北缘断裂带控制着霍什布拉克、克孜尔托等岩体呈北东-南西向展布。皮羌断裂控制着古尔拉勒等岩体呈南北向展布[1]。区域上岩体侵入类型和岩性多样,整体表现出一套由基性-酸性的岩石组合呈岩株、岩墙、岩基、岩脉产出。
克孜尔托岩体位于岩体散布区西南,以北东向隐伏断裂为界分为南北两部分[图1(b)],面积近50 km2。岩体呈岩株状产出,岩性单一;平面形态近椭圆状,空间展布与区域北东东-南西西的构造线方向近乎一致。
克孜尔托北岩体,浅肉红色,中粗粒结构,块状构造[图2(a)]。主要造岩矿物为碱性长石(约50%),灰白色,3~5 mm粒状;石英(约42%),灰白色,粒状,1 mm左右,油脂光泽;黑云母(约2%),板状,1~2 mm;钠铁闪石(约3%),黑色,短柱状,长2 mm左右,玻璃光泽;斜长石(<1%),副矿物含有锆石、磷灰石等,如图2(b)图2(c)所示。
克孜尔托南岩体,浅灰红色,中粗粒结构,块状构造[图2(d)]。主要造岩矿物为碱性长石(约53%),灰白色,3~5 mm粒状;石英(约37%),灰白色,粒状,1 mm左右;黑云母(约3%),板状,1~2 mm;钠铁闪石(约5%),黑色,短柱状,长2 mm左右,玻璃光泽;斜长石(<1%),副矿物含有锆石、铁钛氧化物等,如图2(e)图2(f)所示。
北岩体18KZET-1样品中分选出来的锆石颗粒呈现出无色透明的晶体,部分锆石颗粒中含有微裂隙和包裹体锆石大多数颗粒为自形的长柱状,大小为100~110 μm×130~320 μm,长宽比为1∶1.1~1∶2.5,阴极发光图像上可见到清晰的振荡环带[图3(a)]。此次共测试30个点,有20个点在207Pb/235U-206Pb/238U的谐和图上(图3)。选用的20颗锆石具有相对高的Th(44.25×10-6~210.27×10-6)含量和相对低的U(104.34×10-6~372.18×10-6)含量,Th/U比值在0.41~0.56,也说明了这些锆石为岩浆成因的锆石[39]206Pb/238U的加权平均年龄为(274.8 ± 1.8) Ma,如图3(c)所示。
南岩体17KZRT-9样品中分选出来的锆石颗粒呈现出无色透明的晶体,锆石特征与北岩体的锆石相似,部分锆石颗粒中含有微裂隙和包裹体锆石大多数颗粒为自形的长柱状,大小为180~210 μm×130~400 μm,长宽比为1∶1.2~1∶3.1,阴极发光图像上可见到清晰的振荡环带。此次共测试30个点,所有点均在207Pb/235U-206Pb/238U的谐和图上,如图3(b)所示。南岩体的锆石具有相对高的Th(23.53×10-6~238.97×10-6)含量和相对低的U(39.42×10-6~651.48×10-6)含量,Th/U比值在0.37~0.61,说明了这些锆石同样也为岩浆成因的锆石[39]206Pb/238U的加权平均年龄为(273.8 ± 2.9) Ma(MSWD=2.9),如图3(d)所示。
北岩体富硅质、碱质、贫钙质、准铝质。SiO2含量为67.94%~76.41%,Na2O含量为3.01%~4.02%,K2O含量为4.77%~5.93%,Na2O+K2O含量为8.08%~9.93%,K2O>Na2O,CaO含量为0.65%~1.25%,MgO含量为0.12%~0.32%,TiO2含量为0.10%~0.34%,Al2O3含量为11.57%~14.49%,TFe2O3含量为1.31%~3.85%。在岩石分类TAS图解中,所有样品均落在花岗岩区域[图4(a)],与矿物组成分类一致。依据岩石类型判别图解,所有样品均落在碱性区域[图4(b)],属于高钾钙碱性到钾玄岩系列岩石[图4(c)]。样品里特曼指数σ的变化范围为:1.95~3.95,属于钙碱性到碱性岩系列。铝饱和指数(A/CNK)的变化范围为0.92~0.99,属于准铝质到过铝质岩石[图4(d)]。
南岩体富硅质、碱质、贫钙质、准铝质-弱过铝质。SiO2含量为71.78%~74.13%,Na2O含量为3.56%~3.90%,K2O含量为4.79%~5.38%,Na2O+K2O含量为8.54%~9.06%,K2O>Na2O,CaO含量为1.06%~1.42%,MgO含量为0.18%~0.25%,TiO2含量为0.22%~0.34%,Al2O3含量为12.84%~13.76%,TFe2O3含量为2.42%~3.57%。在岩石分类TAS图解中,所有样品均落在花岗岩区域[图4(a)],与矿物组成分类一致。依据岩石类型判别图解,所有样品均落在碱性区域[图4(b)],属于高钾钙碱性到钾玄岩系列岩石[图4(c)]。样品里特曼指数σ的变化范围为:2.35~2.80,属于钙碱性系列。铝饱和指数(A/CNK)的变化范围为0.93~0.97,属于准铝质岩石[图4(d)]。
南、北岩体的微量元素特征相似,高场强元素(high field strength elements, HFSE)较大离子亲石元素(large ion lithophile elements, LILE)具有明显的富集(图5),明显亏损Ba、Sr、P、Ti,并且北岩体相较于南岩体更为亏损。北岩体的K轻微亏损,南岩体的K轻微富集。北岩体的Nb/Ta为13.00~18.12,南岩体的Nb/Ta为15.34~18.02,均相对较稳定。
球粒陨石标准化图解呈现轻微右倾的海鸥形态(图5),南北岩体的轻稀土较重稀土元素轻微富集。其中,北岩体的总稀土元素含量较高,∑REE为261.72×10-6~834.78×10-6,LREE/HREE为1.62~3.67,(La/Yb)N为4.30~11.06,δEu为0.11~0.21,具有明显的负Eu异常。南岩体的总稀土元素含量也较高,∑REE为422.17×10-6~575.86×10-6,LREE/HREE为3.25~3.73,(La/Yb)N为9.21~11.35,δEu为0.28~0.39,具有明显的负Eu异常。
在克孜尔托南岩体采集了4件样品,测试了其Sr-Nd同位素;结合测年结果,计算了其初始Sr同位素比值和εNd(t)值(图6)。岩体εNd(t)值为-1.18~+0.02,全岩Nd两阶段模式年龄tDM2为1.04~1.14 Ga。
特殊类型的岩浆岩或岩石组合能指示其形成时的构造环境。A 型花岗岩具有无水、碱性的特征,并多形成于非造山的构造环境,其常与碰撞后或者弧后的地壳伸展减薄有关[45]。克孜尔托北岩体具有高TFeO/MgO(8.80~12.78)、低CaO(0.65%~1.25%)的特征,全碱含量处于8.08%~9.93%,岩石中还有钠铁闪石,均属于A型花岗岩的特征。克孜尔托南岩体具有高TFeO/MgO(10.57~13.1)、低CaO(1.06%~1.42%)的特征,全碱含量处于8.54%~9.06%,岩石中也还有钠铁闪石,也属于A型花岗岩的特征。克孜尔托岩体高场强元素较大离子亲石元素富集、强烈亏损Ba、Sr、P和Ti、明显的Eu负异常等(图5)均符合A型花岗岩的典型特征。
对花岗质岩石进行了投图分析(图7),结果表明:所有样品均落在A型花岗岩区域。同时Nb-Y-3Ga和Nb-Y-Ce图解中(图8),所有的样品落在A1型花岗岩区域。因此,南、北岩体均属于A1型花岗岩。
另外,本文测试克孜尔托南岩体的二阶段Nd模式年龄tDM2为1.04~1.14 Ga,与塔木岩体的二阶段Nd模式年龄相同。并且在克孜尔托岩体附近的霍什布拉克岩体和克兹勒克兹塔格岩体,它们也具有相同的二阶段Nd模式年龄,tDM2为1.0~1.3 Ga[15],说明了形成克孜尔托北、南岩体的岩浆主要来自古老岩石的部分熔融。此次研究中克孜尔托南岩体的εNd(t)为-1.18~+0.02,塔木岩体的εNd(t)为-1.17~+0.06,克兹勒克兹塔格岩体的εNd(t)为-0.9~+0.6,而霍什布拉克岩体的εNd(t)为-2.8~-2.6[15]。从这些岩体εNd(t)特征可以得出形成哈拉峻地区A1型花岗岩的岩浆来源于具有两种或两种以上Nd同位素储库岩浆的相互作用。
在研究区的东部有形成时间几乎相同的皮羌基性-超基性杂岩体,此岩体具有与OIB相似的地球化学特征,在研究区南部的巴楚地区和瓦吉里塔格地区也有形成时间相同的中酸性、基性-超基性岩体[22],对这些基性-超基性岩体的研究证明其岩浆来源于地幔。因此,皮羌基性-超基性杂岩体等的存在进一步证明研究区花岗质岩浆形成的过程中可能有幔源岩浆的参与。
前人对相邻的哈拉峻地区的A型花岗岩开展了研究,对其成因观点较为一致[14,16,38]。譬如,邹思远[16]认为哈拉峻地区A型花岗岩体是由于底侵于下地壳的镁铁质岩浆分离结晶所产生的中酸性岩浆上升到地壳浅部形成。Huang等[38]认为成因模式为幔源岩浆底侵诱发古老的壳源岩石重熔,后经分离结晶作用所形成。曹俊等[14]对哈拉峻地区的霍什布拉克岩体和克孜尔托北岩体进行了研究,也认为是由底侵于下地壳的镁铁质岩浆分离结晶产生的中酸性岩浆上升到地壳浅部,并伴随有不同程度的地壳混染形成。
从微量元素蛛网图中可以看出,克孜尔托岩体的Ti表现出明显的负异常,可能缘于磁铁矿的结晶。微量元素中的低Sr和稀土元素中的Eu负异常,说明了碱性长石的分离结晶,实验岩石学研究证明碱性长石在A型花岗质岩浆中开始结晶时的温度只比起源温度低70~80 ℃[48],说明在岩浆演化的大部分过程中存在碱性长石的分离结晶[47,49]。同时,Eu的负异常暗示了岩浆源区存在大量斜长石的残留。
因此,克孜尔托岩体的形成是由于幔源岩浆的底侵导致下地壳古老的岩石重熔,之后又经历分离结晶作用形成,在形成的过程中遭受了不同程度的地壳混染。
前人对区内的A型花岗岩的构造环境提出了几种地球动力学模型,包括岛弧环境[50]、碰撞后伸展[31]或板内裂谷[38,51-52]。都不能很好地解释克孜尔托岩体的特征。本文研究中测得克孜尔托北岩体的年龄为(274.8±1.8) Ma,克孜尔托南岩体年龄为(273.8±2.9) Ma,与前人测得的克孜尔托北岩体年龄值(273±1) Ma[15]和南岩体年龄值(278±3) Ma[22,25]在误差范围内一致。与邻区霍什布拉克岩体年龄(278±3) Ma[22]、巴什苏洪碱长花岗岩年龄(277.0±2.1) Ma[16]以及皮羌基性-超基性杂岩体年龄(276±4) Ma[22]都为同期,可能为同一期岩浆演化的结果,这也是西南天山地区发生大规模碱性岩浆事件的年代。文献[12,22,38]研究了霍什布拉克岩体、巴楚县麻扎山岩体、塔木岩体,均属产出于非造山环境的A1型花岗岩。同时,Y-Nb和(Y+Nb)-Rb判别图中,所有点均落在板内花岗岩区域(图9)。说明岩体经历了后造山的构造环境。结合克孜尔托岩体和周围侵入体的年龄,认为此阶段的岩浆作用可能与塔里木盆地二叠纪大火成岩省有关[12-13,28,53],构造环境推测为塔里木地幔柱上涌所诱发的陆内裂谷体系。
综上所述,克孜尔托岩体经历了深部地幔柱和陆内裂谷的构造环境,为更好地认识塔里木克拉通的古元古代构造环境提供了新的证据。
克孜尔托岩体所处的碱性岩带是中国重要的稀有稀土矿产地,分布着波孜果尔稀有稀土矿等矿床[2,10]。研究区与相邻新发现的巴什苏洪铌钽矿[35-37]具有相似的成矿地质背景。本次研究尝试性地采集了一个细粒碱长花岗岩捡块样,其Nb+Ta含量达到工业品位,Li和Be也有不同程度的富集[37],具有较好的勘探远景。
(1)克孜尔托岩体地球化学特征为稀土元素和HFSEs富集;负Ba、Sr、P、Ti和Eu异常。岩体为A1型花岗岩。稀土元素整体表现平缓、轻微右倾、呈海鸥式分布模式,轻稀土较重稀土元素轻微富集。
(2)克孜尔托岩体LA-ICP-MS U-Pb同位素年龄分别为(273.8±2.9) Ma和(274.8±1.8) Ma,为同期岩浆演化的结果,也和西南天山地区发生大规模岩浆事件的年代相吻合,属于TLIP晚期岩浆作用产物。
(3)克孜尔托岩体的形成是由于幔源岩浆的底侵导致下地壳古老的岩石重熔,之后又经历分离结晶作用形成,在形成的过程中遭受了不同程度的地壳混染。克孜尔托A型花岗岩是在板内岩浆作用下发育的,与大陆裂谷和塔里木地幔柱上涌引起的岩石圈变薄有关。
  • 中国地质调查局项目(DD20160001)
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doi: 10.12404/j.issn.1671-1815.2404220
  • 接收时间:2024-06-06
  • 首发时间:2025-07-09
  • 出版时间:2025-05-18
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  • 收稿日期:2024-06-06
  • 修回日期:2025-02-21
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中国地质调查局项目(DD20160001)
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    有色金属矿产地质调查中心, 北京 100012
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2种不同金属材料的力学参数

Family
属数
Number of
genus
种数
Number of
species
占总种数比例
Percentage of
total species (%)

Genus
种数
Number of
species
占总种数比例
Percentage of total
species (%)
鹅膏菌科Amanitaceae 2 11 5.26 鹅膏菌属 Amanita 10 4.78
小菇科 Mycenaceae 2 12 5.74 丝盖伞属 Inocybe 5 2.39
多孔菌科 Polyporaceae 8 14 6.70 蜡蘑属 Laccaria 5 2.39
红菇科 Russulaceae 3 23 11.00 小皮伞属 Marasmius 6 2.87
小菇属 Mycena 11 5.26
光柄菇属 Pluteus 5 2.39
红菇属 Russula 17 8.13
栓菌属 Trametes 5 2.39
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