The Pamir plateau may have been a westward continuation of Tibet plateau.Meanwhile,the Rushan-Pshart suture is correlative to the Bangong-Nujiang suture of Tibet,and the Central Pamir is the lateral equivalent of the ...The Pamir plateau may have been a westward continuation of Tibet plateau.Meanwhile,the Rushan-Pshart suture is correlative to the Bangong-Nujiang suture of Tibet,and the Central Pamir is the lateral equivalent of the Qiangtang Block.We present the first detailed LA-ICPMS zircon U-Pb chronology,major and trace element,and Lu-Hf isotope geochemistry of Taxkorgan two-mica monzogranite to illuminate the Tethys evolution in central Pamir.LA-ICPMS zircon U-Pb dating shows that two-mica monzogranite is emplaced in the Cretaceous(118 Ma).Its geochemical features are similar to S-type granite,with enrichment in LREEs and negative Ba,Sr,Zr and Ti anomalies.All the samples show negative zirconεHf(t)values ranging from 17.0 to 12.5(mean 14.5),corresponding to crustal Hf model(TDM2)ages of 1906 to 2169 Ma.It is inferred that these granitoids are derived from partial melting of peliticmetasedimentary rocks analogous to the Paleoproterozoic Bulunkuole Group,predominantly with muscovite schists component.Based on the petrological and geochemical data presented above,together with the regional geology,this work provides new insights that Bangong Nujiang Ocean closed in Early Cretaceous(120114 Ma).展开更多
The Alpine zone of Central Pamir is elongated in sublatitudinal direction between the Hercynians of Northern Pamir and the Cimmerians of Southern Pamir south of the Vanch\|Akbaital thrust. Its western continuation is ...The Alpine zone of Central Pamir is elongated in sublatitudinal direction between the Hercynians of Northern Pamir and the Cimmerians of Southern Pamir south of the Vanch\|Akbaital thrust. Its western continuation is overthrusted by the Herat fault and its eastern continuation is cut by the Karakoram strike\|slip fault.. The Central Pamir is a mainly S\|vergent (at the southern part N\|vergent) Alpine nappe stack then folding in antiform. It comprises deposits from Vendian to Neogene which have a thickness of 10km. Paleozoic and Mesozoic tectonic activity was poorly displaied in its limits. Rifting took place in Early and probably Upper Paleozoic. Pre\|Upper Cretaceous unconformity is known only in southern (autochthonous) part of the Zone as a result of closing of Bangong\|Nu Jiang ocean. In northern (allochthonous) part of the zone the sequence of Mesozoic and Paleogene rocks has no unconformities. Alpine endogenous processes were developed very intensively. They implied nappes and imbricate structures, linear folding, different igneous activity, zonal metamorphism. Slices of pyroxenites and gabbroids occured. Calc\|alkaline lavas and tuffs constitutes the major part of Paleocene to Miocene sequence (andesites\|ryolites\|in Paleogene, alkaline basalts in Oligocene—Miocene). Oligocene—Miocene zonal metamorphic belt of the intermediate type of high pressure including series of granitegneiss domes can be traced along the Central Pamir. Cores of domes include migmatites and remobilized bodies of the Early Paleozoic gneissic granites. The decompression took place at a later stage and rocks were overprinted by the andalusite\|sillimanite type metamorphism.. Syenite and leucogranite bodies, pegmatite and aplite veins were emplaced.展开更多
Deformation during the uplift of Pamir Since the Himalayan movement, the Punjab block of Indian plate has intruded into the interior of Eurasian plate, produced a protrusive Pamir knot in eastern Tethys. The Pamir kno...Deformation during the uplift of Pamir Since the Himalayan movement, the Punjab block of Indian plate has intruded into the interior of Eurasian plate, produced a protrusive Pamir knot in eastern Tethys. The Pamir knot is where crustal shortening is most intensive in Tethys. After India\|Eurasia collision, giant relief resulted from fast uplifting of Karakorum due to the convergence and underplating in northern and southern margins of Karakorum, the uplifting rates changed with times, and thrusting would be one of the most important factors controlling the uplifting. At the same time, large scale strike\|slip faulting could produced large vertical offsets, so that the exhumation of the rocks from middle and lower crust has drawn much attention. The post\|collisional deformation and evolution of Karakorum would involve the processes of continental escape, crustal shortening and thickening, and orogenic collapse in extensional regime. The thrusting started in late Jurassic and early Cretaceous, but two peaks occurred in late Cretaceous and Eocene, respectively. A large amount of klippen produced by thrusting from north to south have been discovered in the northern slope of the Kungai in front of Pamir. Molnar and Tapponnier noted that the mount of crustal shortening in Pamir would be up to 2000km in the past 40~45Ma, and Coward proposed that 300~400km shortening has happened only in southern Pamir to northern Pakistan. In western Pamir from Kabul of Afghanistan to Quatta of Pakistan, the Chaman left\|lateral strike\|slip fault system extends 1000km long. Multiple structural superposition in eastern Pamir, due to the effects of the uplifting of Qinghai\|Tibet plateau, resulted in complex deformation patterns.展开更多
The geological, geographic and seismicity data indicate that three arc tectonic belt developed on the northeast Pamir, which was the south Pamir arc, the north Pamir arc and the external Pamir arc from south to north....The geological, geographic and seismicity data indicate that three arc tectonic belt developed on the northeast Pamir, which was the south Pamir arc, the north Pamir arc and the external Pamir arc from south to north. In addition to these three belts, there are two nascent arc tectonic belts developed in its fore\|deep depression, the Kashi depression in the northwest Tarim basin, which is the northward propagation of the arc tectonics of northeast Pamir.The south Pamir is an ancient folded belt, composed of the Proterozoic metamorphic layers and igneous complex. It was pushed northward since the collision between the India and Asia, and uplifted since the end of the early Tertiary. The elevation of the Plateau is 4800~5300m, and several intermontane basins distributed in the plateau. At its northeast boundary is the Kalakorum right lateral strike slip fault. Strong strike slip earthquakes occurred along this fault. In the hinterland of the plateau, several normal faulting earthquakes occurred,which are consistent with the extensional dynamic environment of the south Pamir. Deep earthquakes occurred under the 70km depth crust of south Pamir. The N—S cross section of the focal depth show that the earthquake occurred within the south Pamir crust are lower than 70km, and the deep earthquakes with depth of 100~200km occurred in the crystal basement of Tarim basin which are under\|thrusting southward into the root of the south Pamir.展开更多
We want to talk about the geohazards in Pamir mountains,in Tajikistan,using different materials and researches about it.Also we are trying to look deeply into this problem,and want to research how about
The Pamirs—Himalaya region possessing a complex tectonic structure and high seismic activity is located at the central part of the Alpine—Himalayan fold belt. During long\|term geodynamical studies we revealed new f...The Pamirs—Himalaya region possessing a complex tectonic structure and high seismic activity is located at the central part of the Alpine—Himalayan fold belt. During long\|term geodynamical studies we revealed new features of its modern structural plan steadily traced at different deep levels. The reconstruction of paleostresses by analyzing fracture patterns of Mesozoic—Cenozoic sedimentary rocks has been carried out in order to establish geodynamic regularities of the region under study and to propose a model of its development. Unlike traditional approaches to the problem of paleostress reconstruction from orientation of systems of rock joints, approaches which are based usually on the local strength criteria, we consider the formation of joint sets as a rheological instability manifesting in localized form. The systems of layers of localized plastic deformation are formed during lithification of sedimentary rocks and evolve with time into joint sets. The corresponding method of reconstruction of paleostress axes was developed. It was tested for some tectonically active regions: Central Asia, the Caucasus, the Crimea, Cuba, Iran, and others. The method was found to be useful for reconstruction of both history and spatial distribution of paleostress axes in active crustal blocks and near large geological structures. In the Pamirs—Himalaya region the fracturing of rocks has been investigated in about 1000 outcrops. By analyzing the Mesozoic—Cenozoic paleostress history it was confirmed that the structural features of the region (including an arc\|like shape of the Pamirs—Tian Shan junction zone) are caused by movement of the Hindustan mobile plate towards the rather stable Eurasian plate during the Alpine cycle of development.展开更多
We present kinematic constraints on the direction of Quaternary extension within the tectonically thickened crust of the Pamir,based on seismicity and fault\|slip data.The Pamir mountain belt of Central Asia is a dire...We present kinematic constraints on the direction of Quaternary extension within the tectonically thickened crust of the Pamir,based on seismicity and fault\|slip data.The Pamir mountain belt of Central Asia is a direct consequence of the collision of the NW\|corner of the Indian indenter with Asia.It comprises Asian crust that is wedged between two opposite\|dipping continental subduction zones in the N and S,laterally blunted by strike\|slip and transgressive fault zones,and locally more than 70km thick (e.g.,Burtman and Molnar,1993).Active deformation in the Pamir is concentrated on compression and transgression along its margins.However,recently published seismic and neotectonic data also presented evidence for approximately E—W directed extension,roughly parallel to the main structural trends within the Pamir,along a N—S trending belt within the high terrain in the interior of the orogen (Strecker et al.,1995).or the central and southern portions of this N—S belt,preliminary kinematic analyses of seismic data from the Harvard moment tensor catalog indicate an extension direction of about 74=B0.This direction is based on presently available focal mechanisms for shallow earthquakes,weighted by their seismic moment;the extension directions calculated for the individual earthquakes vary between 52=B0 and 92=B0=46 or the northern most portion of this belt,earthquake focal mechanisms are not available.展开更多
基于遥感和GIS技术,获取2000—2021年中塔公路沿线地区冰川变化与冰川灾害时空分布特征,并利用极差变换法和熵权法开展了冰川灾害暴露度评估。结果表明:(1)2000年以来,中塔公路沿线地区冰川面积萎缩速率为0.20%·a^(-1)±0.06%&...基于遥感和GIS技术,获取2000—2021年中塔公路沿线地区冰川变化与冰川灾害时空分布特征,并利用极差变换法和熵权法开展了冰川灾害暴露度评估。结果表明:(1)2000年以来,中塔公路沿线地区冰川面积萎缩速率为0.20%·a^(-1)±0.06%·a^(-1),物质平衡为-0.25±0.04 m w.e.·a^(-1),1992年以来的冰湖面积扩张速率为0.45%·a^(-1),均为帕米尔高原整体水平的数倍。(2)冰川不稳定性的增强直接导致中塔公路沿线地区冰川灾害风险普遍凸显,其中灾害发生的中高风险区域主要集中在公路西段。(3)中塔公路沿线地区冰川灾害暴露度宏观格局主要与致灾因子和承灾体分布密度、地形与地质环境复杂程度,以及气候暖湿化趋势的空间差异等因素有关。研究结果初步揭示了中塔公路沿线地区冰川灾害暴露度的宏观格局,可为灾害脆弱性、影响力和情景预测研究等提供参考。展开更多
为掌握塔什库尔干县帕米尔牦牛O型口蹄疫(foot and mouth disease,FMD)免疫效果,从辖区10个乡镇560个场(点)随机采集帕米尔牦牛血清共3984份,采用液相阻断ELISA方法检测O型FMD免疫抗体效价。结果显示,2021—2024年塔什库尔干县帕米尔牦...为掌握塔什库尔干县帕米尔牦牛O型口蹄疫(foot and mouth disease,FMD)免疫效果,从辖区10个乡镇560个场(点)随机采集帕米尔牦牛血清共3984份,采用液相阻断ELISA方法检测O型FMD免疫抗体效价。结果显示,2021—2024年塔什库尔干县帕米尔牦牛O型FMD免疫抗体合格率(抗体效价≥1∶128)分别为77.21%、91.21%、86.41%、88.51%,平均免疫抗体合格率为85.72%,均达到农业农村部要求的70%以上的标准。2021—2022年秋季合格率普遍高于春季,2023年后差异不大;2022—2024年免疫抗体合格率相近,均极显著高于2021年(P<0.01)。研究表明,塔什库尔干县2021—2024年帕米尔牦牛FMD免疫工作达到预期效果,但在不同年份和季节,抗体合格率存在一定程度的波动,应继续加强牦牛防疫体系建设,提高牦牛群免疫抗体水平,从而提高免疫效果,为帕米尔牦牛养殖业的持续健康发展提供保障。展开更多
基金Project(41802103)supported by the National Natural Science Foundation of ChinaProject(2017YFC0601403)supported by the National Key R&D Program of China
文摘The Pamir plateau may have been a westward continuation of Tibet plateau.Meanwhile,the Rushan-Pshart suture is correlative to the Bangong-Nujiang suture of Tibet,and the Central Pamir is the lateral equivalent of the Qiangtang Block.We present the first detailed LA-ICPMS zircon U-Pb chronology,major and trace element,and Lu-Hf isotope geochemistry of Taxkorgan two-mica monzogranite to illuminate the Tethys evolution in central Pamir.LA-ICPMS zircon U-Pb dating shows that two-mica monzogranite is emplaced in the Cretaceous(118 Ma).Its geochemical features are similar to S-type granite,with enrichment in LREEs and negative Ba,Sr,Zr and Ti anomalies.All the samples show negative zirconεHf(t)values ranging from 17.0 to 12.5(mean 14.5),corresponding to crustal Hf model(TDM2)ages of 1906 to 2169 Ma.It is inferred that these granitoids are derived from partial melting of peliticmetasedimentary rocks analogous to the Paleoproterozoic Bulunkuole Group,predominantly with muscovite schists component.Based on the petrological and geochemical data presented above,together with the regional geology,this work provides new insights that Bangong Nujiang Ocean closed in Early Cretaceous(120114 Ma).
文摘The Alpine zone of Central Pamir is elongated in sublatitudinal direction between the Hercynians of Northern Pamir and the Cimmerians of Southern Pamir south of the Vanch\|Akbaital thrust. Its western continuation is overthrusted by the Herat fault and its eastern continuation is cut by the Karakoram strike\|slip fault.. The Central Pamir is a mainly S\|vergent (at the southern part N\|vergent) Alpine nappe stack then folding in antiform. It comprises deposits from Vendian to Neogene which have a thickness of 10km. Paleozoic and Mesozoic tectonic activity was poorly displaied in its limits. Rifting took place in Early and probably Upper Paleozoic. Pre\|Upper Cretaceous unconformity is known only in southern (autochthonous) part of the Zone as a result of closing of Bangong\|Nu Jiang ocean. In northern (allochthonous) part of the zone the sequence of Mesozoic and Paleogene rocks has no unconformities. Alpine endogenous processes were developed very intensively. They implied nappes and imbricate structures, linear folding, different igneous activity, zonal metamorphism. Slices of pyroxenites and gabbroids occured. Calc\|alkaline lavas and tuffs constitutes the major part of Paleocene to Miocene sequence (andesites\|ryolites\|in Paleogene, alkaline basalts in Oligocene—Miocene). Oligocene—Miocene zonal metamorphic belt of the intermediate type of high pressure including series of granitegneiss domes can be traced along the Central Pamir. Cores of domes include migmatites and remobilized bodies of the Early Paleozoic gneissic granites. The decompression took place at a later stage and rocks were overprinted by the andalusite\|sillimanite type metamorphism.. Syenite and leucogranite bodies, pegmatite and aplite veins were emplaced.
文摘Deformation during the uplift of Pamir Since the Himalayan movement, the Punjab block of Indian plate has intruded into the interior of Eurasian plate, produced a protrusive Pamir knot in eastern Tethys. The Pamir knot is where crustal shortening is most intensive in Tethys. After India\|Eurasia collision, giant relief resulted from fast uplifting of Karakorum due to the convergence and underplating in northern and southern margins of Karakorum, the uplifting rates changed with times, and thrusting would be one of the most important factors controlling the uplifting. At the same time, large scale strike\|slip faulting could produced large vertical offsets, so that the exhumation of the rocks from middle and lower crust has drawn much attention. The post\|collisional deformation and evolution of Karakorum would involve the processes of continental escape, crustal shortening and thickening, and orogenic collapse in extensional regime. The thrusting started in late Jurassic and early Cretaceous, but two peaks occurred in late Cretaceous and Eocene, respectively. A large amount of klippen produced by thrusting from north to south have been discovered in the northern slope of the Kungai in front of Pamir. Molnar and Tapponnier noted that the mount of crustal shortening in Pamir would be up to 2000km in the past 40~45Ma, and Coward proposed that 300~400km shortening has happened only in southern Pamir to northern Pakistan. In western Pamir from Kabul of Afghanistan to Quatta of Pakistan, the Chaman left\|lateral strike\|slip fault system extends 1000km long. Multiple structural superposition in eastern Pamir, due to the effects of the uplifting of Qinghai\|Tibet plateau, resulted in complex deformation patterns.
文摘The geological, geographic and seismicity data indicate that three arc tectonic belt developed on the northeast Pamir, which was the south Pamir arc, the north Pamir arc and the external Pamir arc from south to north. In addition to these three belts, there are two nascent arc tectonic belts developed in its fore\|deep depression, the Kashi depression in the northwest Tarim basin, which is the northward propagation of the arc tectonics of northeast Pamir.The south Pamir is an ancient folded belt, composed of the Proterozoic metamorphic layers and igneous complex. It was pushed northward since the collision between the India and Asia, and uplifted since the end of the early Tertiary. The elevation of the Plateau is 4800~5300m, and several intermontane basins distributed in the plateau. At its northeast boundary is the Kalakorum right lateral strike slip fault. Strong strike slip earthquakes occurred along this fault. In the hinterland of the plateau, several normal faulting earthquakes occurred,which are consistent with the extensional dynamic environment of the south Pamir. Deep earthquakes occurred under the 70km depth crust of south Pamir. The N—S cross section of the focal depth show that the earthquake occurred within the south Pamir crust are lower than 70km, and the deep earthquakes with depth of 100~200km occurred in the crystal basement of Tarim basin which are under\|thrusting southward into the root of the south Pamir.
文摘We want to talk about the geohazards in Pamir mountains,in Tajikistan,using different materials and researches about it.Also we are trying to look deeply into this problem,and want to research how about
文摘The Pamirs—Himalaya region possessing a complex tectonic structure and high seismic activity is located at the central part of the Alpine—Himalayan fold belt. During long\|term geodynamical studies we revealed new features of its modern structural plan steadily traced at different deep levels. The reconstruction of paleostresses by analyzing fracture patterns of Mesozoic—Cenozoic sedimentary rocks has been carried out in order to establish geodynamic regularities of the region under study and to propose a model of its development. Unlike traditional approaches to the problem of paleostress reconstruction from orientation of systems of rock joints, approaches which are based usually on the local strength criteria, we consider the formation of joint sets as a rheological instability manifesting in localized form. The systems of layers of localized plastic deformation are formed during lithification of sedimentary rocks and evolve with time into joint sets. The corresponding method of reconstruction of paleostress axes was developed. It was tested for some tectonically active regions: Central Asia, the Caucasus, the Crimea, Cuba, Iran, and others. The method was found to be useful for reconstruction of both history and spatial distribution of paleostress axes in active crustal blocks and near large geological structures. In the Pamirs—Himalaya region the fracturing of rocks has been investigated in about 1000 outcrops. By analyzing the Mesozoic—Cenozoic paleostress history it was confirmed that the structural features of the region (including an arc\|like shape of the Pamirs—Tian Shan junction zone) are caused by movement of the Hindustan mobile plate towards the rather stable Eurasian plate during the Alpine cycle of development.
文摘We present kinematic constraints on the direction of Quaternary extension within the tectonically thickened crust of the Pamir,based on seismicity and fault\|slip data.The Pamir mountain belt of Central Asia is a direct consequence of the collision of the NW\|corner of the Indian indenter with Asia.It comprises Asian crust that is wedged between two opposite\|dipping continental subduction zones in the N and S,laterally blunted by strike\|slip and transgressive fault zones,and locally more than 70km thick (e.g.,Burtman and Molnar,1993).Active deformation in the Pamir is concentrated on compression and transgression along its margins.However,recently published seismic and neotectonic data also presented evidence for approximately E—W directed extension,roughly parallel to the main structural trends within the Pamir,along a N—S trending belt within the high terrain in the interior of the orogen (Strecker et al.,1995).or the central and southern portions of this N—S belt,preliminary kinematic analyses of seismic data from the Harvard moment tensor catalog indicate an extension direction of about 74=B0.This direction is based on presently available focal mechanisms for shallow earthquakes,weighted by their seismic moment;the extension directions calculated for the individual earthquakes vary between 52=B0 and 92=B0=46 or the northern most portion of this belt,earthquake focal mechanisms are not available.
文摘基于遥感和GIS技术,获取2000—2021年中塔公路沿线地区冰川变化与冰川灾害时空分布特征,并利用极差变换法和熵权法开展了冰川灾害暴露度评估。结果表明:(1)2000年以来,中塔公路沿线地区冰川面积萎缩速率为0.20%·a^(-1)±0.06%·a^(-1),物质平衡为-0.25±0.04 m w.e.·a^(-1),1992年以来的冰湖面积扩张速率为0.45%·a^(-1),均为帕米尔高原整体水平的数倍。(2)冰川不稳定性的增强直接导致中塔公路沿线地区冰川灾害风险普遍凸显,其中灾害发生的中高风险区域主要集中在公路西段。(3)中塔公路沿线地区冰川灾害暴露度宏观格局主要与致灾因子和承灾体分布密度、地形与地质环境复杂程度,以及气候暖湿化趋势的空间差异等因素有关。研究结果初步揭示了中塔公路沿线地区冰川灾害暴露度的宏观格局,可为灾害脆弱性、影响力和情景预测研究等提供参考。
文摘为掌握塔什库尔干县帕米尔牦牛O型口蹄疫(foot and mouth disease,FMD)免疫效果,从辖区10个乡镇560个场(点)随机采集帕米尔牦牛血清共3984份,采用液相阻断ELISA方法检测O型FMD免疫抗体效价。结果显示,2021—2024年塔什库尔干县帕米尔牦牛O型FMD免疫抗体合格率(抗体效价≥1∶128)分别为77.21%、91.21%、86.41%、88.51%,平均免疫抗体合格率为85.72%,均达到农业农村部要求的70%以上的标准。2021—2022年秋季合格率普遍高于春季,2023年后差异不大;2022—2024年免疫抗体合格率相近,均极显著高于2021年(P<0.01)。研究表明,塔什库尔干县2021—2024年帕米尔牦牛FMD免疫工作达到预期效果,但在不同年份和季节,抗体合格率存在一定程度的波动,应继续加强牦牛防疫体系建设,提高牦牛群免疫抗体水平,从而提高免疫效果,为帕米尔牦牛养殖业的持续健康发展提供保障。