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High-precision relocation of the aftershock sequence of the January 8,2022,M_(S)6.9 Menyuan earthquake 被引量:19
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作者 Liping Fan Boren Li +2 位作者 Shirong Liao Ce Jiang Lihua Fang 《Earthquake Science》 2022年第2期138-145,共8页
The 2022 Menyuan M_(S)6.9 earthquake,which occurred on January 8,is the most destructive earthquake to occur near the Lenglongling(LLL)fault since the 2016 Menyuan M_(S)6.4 earthquake.We relocated the mainshock and af... The 2022 Menyuan M_(S)6.9 earthquake,which occurred on January 8,is the most destructive earthquake to occur near the Lenglongling(LLL)fault since the 2016 Menyuan M_(S)6.4 earthquake.We relocated the mainshock and aftershocks with phase arrival time observations for three days after the mainshock from the Qinghai Seismic Network using the double-difference method.The total length and width of the aftershock sequence are approximately 32 km and 5 km,respectively,and the aftershocks are mainly concentrated at a depth of 7-12 km.The relocated sequence can be divided into 18 km west and 13 km east segments with a boundary approximately 5 km east of the mainshock,where aftershocks are sparse.The east and west fault structures revealed by aftershock locations differ significantly.The west fault strikes EW and inclines to the south at a 71°-90°angle,whereas the east fault strikes 133°and has a smaller dip angle.Elastic strain accumulates at conjunctions of faults with different slip rates where it is prone to large earthquakes.Based on surface traces of faults,the distribution of relocated earthquake sequence and surface ruptures,the mainshock was determined to have occurred at the conjunction of the Tuolaishan(TLS)fault and LLL fault,and the west and east segments of the aftershock sequence were on the TLS fault and LLL fault,respectively.Aftershocks migrate in the early and late stages of the earthquake sequence.In the first 1.5 h after the mainshock,aftershocks expand westward from the mainshock.In the late stage,seismicity on the northeast side of the east fault is higher than that in other regions.The migration rate of the west segment of the aftershock sequence is approximately 4.5 km/decade and the afterslip may exist in the source region. 展开更多
关键词 menyuan earthquake aftershock sequence double-difference relocation Lenglongling fault Tuolaishan fault
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GPS station short-term dynamic characteristics of micro displacement before Menyuan M6.4 earthquake 被引量:4
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作者 Wei Feng Jinwei Ren Zaisen Jiang 《Geodesy and Geodynamics》 2016年第4期237-244,共8页
Continuous observation data from 24 GPS stations are selected in the area (33.0°N-41.0°N, 95.0°E-105.0°E) for this study (the period is from Jan. 1, 2015 to Jan. 20, 2016). Three components, NS... Continuous observation data from 24 GPS stations are selected in the area (33.0°N-41.0°N, 95.0°E-105.0°E) for this study (the period is from Jan. 1, 2015 to Jan. 20, 2016). Three components, NS, EW and UD, of the daily solutions are filtered by the Hilbert-Huang transform (HHT) with frequency band of 5.787×10^-7-7.716 ×10^-8 Hz (20-150 days in period). And short-term dynamic characteristics of micro displacement before Menyuan M6.4 earthquake are studied by using the temporal dependencies and cross spectrum analysis. The results show that before the earthquake the horizontal undulatory motions are higher than the average level in the series data which indicate the disturbance feature of regional stress before the earthquake. Three GPS stations on Qinghai-Tibet Plateau with their setting perpendicular to the seismogenic fault have consistent movement. The increase of amplitude of the horizontal micro motion observed before the quake is conducive to the earthquake occurrence. However, we could not be sure if the undulatory motion triggered the earthquake. It is quite necessary to build more GPS continuous observation stations and optimize the monitoring network so as to improve the understanding of the shortterm dynamic crustal variation before earthquake. 展开更多
关键词 menyuan earthquake Global positioning system (GPS) Undulatory motion Hilbert-Huang transform (HHT) Cross spectrum
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Vertical deformation before and after the 2022 Menyuan Ms6.9 earthquake and analysis of earthquake precursors
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作者 Sixin Zhang Peng Jia +1 位作者 Bowen Hou Ming Hao 《Geodesy and Geodynamics》 EI CSCD 2023年第6期582-588,共7页
This study analyzed the vertical deformation before and after the 2022 Menyuan Ms6.9 earthquake in Qinghai Province,China,using leveling profiles across faults measured from Minle County in Gansu Province to Menyuan C... This study analyzed the vertical deformation before and after the 2022 Menyuan Ms6.9 earthquake in Qinghai Province,China,using leveling profiles across faults measured from Minle County in Gansu Province to Menyuan County in Qinghai Province.Our results suggest the following:(1)The amplitude of regional vertical differential motion near the Sunna-Qilian and Lenglongling faults within the Qilian Shan increased before the 2022 Menyuan earthquake.It was accompanied by the emergence of high gradient deformation zones.Deformation at the Tongziba cross-fault leveling site near the Sunan-Qilian fault was considerable.In contrast,deformation at the Daliang cross-fault leveling site near the stepover region(adjacent to the epicenter)between the Lenglongling and Tuolaishan faults was minor.After 2018,vertical deformation at the Tongziba site notably accelerated,while that at the Daliang site was insignificant.(2)After the 2022 Menyuan earthquake,140—150 mm of subsidence deformation occurred near the Daliang site,while the Tongziba site did not experience significant deformation.(3)Vertical deformation before and after the 2022 Menyuan earthquake conforms with the elastic-rebound theory,and the evolution of pre-earthquake deformation was consistent with the strike-slip fault deformation pattern at different seismogenic stages,i.e.,the relative motion near the locked fault in the late seismogenic stage gradually weakened.The characteristics of strain accumulation and release derived from the vertical deformation before and after the Menyuan MS6.9 earthquake help understand the deformation process of earthquake preparation and earthquake precursors. 展开更多
关键词 2022 menyuan earthquake 2016 menyuan earthquake LEVELING Vertical deformation Elastic rebound
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青海门源地区O_3浓度水平及影响因子分析 被引量:6
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作者 王燕丽 窦筱艳 +2 位作者 赵旭东 杨文 白志鹏 《地球与环境》 CAS CSCD 2016年第4期431-436,共6页
为研究高原背景地区O_3的浓度水平,于2013年9月13日至2013年10月14日期间,在国家大气背景站青海门源站开展了为期32天的观测。观测结果显示,门源地区O_3小时浓度均值为115.0±22.6μg/m3,低于《环境空气质量标准》(GB3095-2012)中O_... 为研究高原背景地区O_3的浓度水平,于2013年9月13日至2013年10月14日期间,在国家大气背景站青海门源站开展了为期32天的观测。观测结果显示,门源地区O_3小时浓度均值为115.0±22.6μg/m3,低于《环境空气质量标准》(GB3095-2012)中O_3小时平均浓度限值的一级标准(160μg/m3)。通过分析O_3和NOx实时浓度在一天24小时内随时间变化的特征序列,发现在多数观测天内O_3和NOx呈现此消彼长的变化规律,表明O_3主要来自有NOx参与的光化学反应;另有几天NOx和O_3的浓度出现同峰同谷的现象,推测这种变化主要是大气运动传输造成的。相关性分析表明,臭氧浓度与温度、湿度、风速、SO2、NOx以及CO的浓度都显著相关(P<0.01);多元线性回归分析表明O_3与温度、湿度、气压、风速的关系近似符合Y=0.630T-0.192H-0.004P-0.091W+196.039,拟合结果与真值误差2.88%。综上分析,门源地区O_3浓度水平较低,但在高温低湿、风速较高、NOx浓度较低的情况下,O_3容易积累,O_3浓度主要受光化学反应和大气运动传输过程两个因素影响。 展开更多
关键词 背景站门源 O3浓度 光化学反应 影响因子
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The forecasting efficiency under different selected regions by Pattern Informatics Method and seismic potential estimation in the North-South Seismic Zone
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作者 Weixi Tian Yongxian Zhang 《Earthquake Science》 2024年第4期368-382,共15页
In 2022,four earthquakes with M_(S)≥6.0 including the Menyuan M_(S)6.9 and Luding M_(S)6.8 earthquakes occurred in the North-South Seismic Zone(NSSZ),which demonstrated high and strong seismicity.Pattern Informatics(... In 2022,four earthquakes with M_(S)≥6.0 including the Menyuan M_(S)6.9 and Luding M_(S)6.8 earthquakes occurred in the North-South Seismic Zone(NSSZ),which demonstrated high and strong seismicity.Pattern Informatics(PI)method,as an effective long and medium term earthquake forecasting method,has been applied to the strong earthquake forecasting in Chinese mainland and results have shown the positive performance.The earthquake catalog with magnitude above M_(S)3.0 since 1970 provided by China Earthquake Networks Center was employed in this study and the Receiver Operating Characteristic(ROC)method was applied to test the forecasting efficiency of the PI method in each selected region related to the North-South Seismic Zone systematically.Based on this,we selected the area with the best ROC testing result and analyzed the evolution process of the PI hotspot map reflecting the small seismic activity pattern prior to the Menyuan M_(S)6.9 and Luding M_(S)6.8 earthquakes.A“forward”forecast for the area was carried out to assess seismic risk.The study shows the following.1)PI forecasting has higher forecasting efficiency in the selected study region where the difference of seismicity in any place of the region is smaller.2)In areas with smaller differences of seismicity,the activity pattern of small earthquakes prior to the Menyuan M_(S)6.9 and Luding M_(S)6.8 earthquakes can be obtained by analyzing the spatio-temporal evolution process of the PI hotspot map.3)The hotspot evolution in and around the southern Tazang fault in the study area is similar to that prior to the strong earthquakes,which suggests the possible seismic hazard in the future.This study could provide some ideas to the seismic hazard assessment in other regions with high seismicity,such as Japan,Californi,Turkey,and Indonesia. 展开更多
关键词 Luding M_(S)6.8 and menyuan M_(S)6.9 earthquake Pattern Informatics Method North-South Seismic Zone earthquake forecasting seismic activity pattern.
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青海门源M6.9级地震地表破裂特征及区域地震活动趋势分析
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作者 姚生海 盖海龙 +2 位作者 殷翔 李鑫 刘炜 《地质通报》 CAS CSCD 北大核心 2024年第2期340-349,共10页
据中国地震台网正式测定,2022年1月8日1时45分青海海北州门源县发生6.9级地震,震源深度10 km。此次地震是2016年门源M6.4级地震之后冷龙岭地区再次发生强震活动。此次地震的宏观震中位于距门源县城浩门镇西北50 km的冷龙岭硫磺沟地区,... 据中国地震台网正式测定,2022年1月8日1时45分青海海北州门源县发生6.9级地震,震源深度10 km。此次地震是2016年门源M6.4级地震之后冷龙岭地区再次发生强震活动。此次地震的宏观震中位于距门源县城浩门镇西北50 km的冷龙岭硫磺沟地区,并在硫磺沟—大西沟一带形成规模大且连续性较好的地表破裂。地表调查显示,同震地表破裂的总长度约为23 km,整体走向N40°~85°W,地表破裂主要由雁列的地震鼓包、张裂缝、剪切裂缝等形式组合而成,而且地表伴生了较多规模不等的滑坡、崩塌等次生地质灾害。根据地表破裂的规模、走向及破裂特点等,可将其分为3段:东段(硫磺沟段),长约10 km,走向N40°~60°W,破裂规模较小,以伴有重力作用的拉张裂缝为主;中段(道沟段),长约9 km,走向N70°W,破裂规模较大,以发育规模较大的地震鼓包和剪切裂缝为主,而且左旋位移较大;西段(大西沟段),长约4 km,走向N85°W,此段规模最小,以雁列的拉张裂缝为主。其中—东段一起组成了该破裂带的东支,而西段构成了西支,两者都具有明显的左旋走滑特征,并自东向西破裂整体呈左阶展布,在G227国道以东形成了具有拉张特征的左阶阶区。综合分析表明,此次,地震发生在祁连山块体的祁连-海原活动构造带,发震断裂应为海原左旋走滑断裂带的冷龙岭-托莱山断裂段。结合对祁连-海原构造带1900年以来强地震序列及托莱山断裂的初步研究认为,该构造带的历史地震活动整体具有不断向西发展的趋势,但在哈拉湖和托莱山之间存在较明显的地震空区,因而推断托莱山断裂未来的强震危险性有增强的可能。 展开更多
关键词 门源 M6.9级地震 同震地表破裂 祁连块体 海原断裂带 托莱山断裂 地震危险性
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Gravity variations before the Menyuan Ms6.4 earthquake 被引量:3
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作者 Weifeng Liang Guoqing Zhang +5 位作者 Yiqing Zhu Yunma Xu Shusong Guo Yunfeng Zhao Fang Liu Lingqiang Zhao 《Geodesy and Geodynamics》 2016年第4期223-229,共7页
In order to study the relationship between gravity variation and Menyuan Ms6.4 earth- quake, gravity variation characteristics in mid-eastern of Qilian Mountain were analyzed based on the 2012-2015 relative gravity da... In order to study the relationship between gravity variation and Menyuan Ms6.4 earth- quake, gravity variation characteristics in mid-eastern of Qilian Mountain were analyzed based on the 2012-2015 relative gravity datasets. The results indicated that the gravity changes in mid-eastern of Qilian Mountain increased gradually, while gravity changes around Menyuan remarkably. Besides, great positive-negative gravity changing gradients appeared along the Lengiongling Fault which was located at the north of Menyuan, and the 2016 Menyuan Ms6.4 earthquake occurred near the junction of positive and negative gravity changes. 展开更多
关键词 Mid-eastern of Qilian Mountain Gravity changes menyuan Ms6.4 earthquake Lenglongling Fault Hexi
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门源青稞“3414”肥料试验 被引量:5
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作者 陈香正 《青海农林科技》 2010年第1期1-3,共3页
通过"3414"回归最优设计原理设置的青稞肥效试验结果,获得肥料效应函数方程,由此数学模型得出理论氮、磷、钾最佳施肥量,分析出本试验区的最佳施肥量为N:150.45kghm-2,P2O5:105.6kghm-2,K2O:126kghm-2,此时产量可达5328.75kgh... 通过"3414"回归最优设计原理设置的青稞肥效试验结果,获得肥料效应函数方程,由此数学模型得出理论氮、磷、钾最佳施肥量,分析出本试验区的最佳施肥量为N:150.45kghm-2,P2O5:105.6kghm-2,K2O:126kghm-2,此时产量可达5328.75kghm-2。 展开更多
关键词 青稞 3414试验 施肥 门源
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Real-time prediction of earthquake potential damage:A case study for the January 8,2022 M_(S) 6.9 Menyuan earthquake in Qinghai,China
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作者 Jindong Song Jingbao Zhu +2 位作者 Yongxiang Wei Shuilong Li Shanyou Li 《Earthquake Research Advances》 CSCD 2023年第1期52-60,共9页
It is critical to determine whether a site has potential damage in real-time after an earthquake occurs,which is a challenge in earthquake disaster reduction.Here,we propose a real-time Earthquake Potential Damage pre... It is critical to determine whether a site has potential damage in real-time after an earthquake occurs,which is a challenge in earthquake disaster reduction.Here,we propose a real-time Earthquake Potential Damage predictor(EPDor)based on predicting peak ground velocities(PGVs)of sites.The EPDor is composed of three parts:(1)predicting the magnitude of an earthquake and PGVs of triggered stations based on the machine learning prediction models;(2)predicting the PGVs at distant sites based on the empirical ground motion prediction equation;(3)generating the PGV map through predicting the PGV of each grid point based on an interpolation process of weighted average based on the predicted values in(1)and(2).We apply the EPDor to the 2022 M_(S) 6.9 Menyuan earthquake in Qinghai Province,China to predict its potential damage.Within the initial few seconds after the first station is triggered,the EPDor can determine directly whether there is potential damage for some sites to a certain degree.Hence,we infer that the EPDor has potential application for future earthquakes.Meanwhile,it also has potential in Chinese earthquake early warning system. 展开更多
关键词 Earthquake early warning Potential damage Machine learning 2022 M_(S)6.9 menyuan earthquake Magnitude estimation On-site peak ground velocity prediction
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Synthetic aperture radar interferometry—based coseismic deformation and slip distribution of the 2022 Menyuan MS6.9 earthquake in Qinghai,China
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作者 Qiang Zhao Fengyun Jiang +1 位作者 Liangyu Zhu Jing Xu 《Geodesy and Geodynamics》 EI CSCD 2023年第6期541-550,共10页
On January 8,2022,a 6.9 magnitude earthquake occurred in Menyuan County,Qinghai Province,with the epicenter located at the intersection of the Tuolaishan Fault and the Lenglongling Fault,which are part of the Qilian—... On January 8,2022,a 6.9 magnitude earthquake occurred in Menyuan County,Qinghai Province,with the epicenter located at the intersection of the Tuolaishan Fault and the Lenglongling Fault,which are part of the Qilian—Haiyuan fault zone.This study investigated the sliding characteristics and seismic mechanism of the earthquake to understand the activity and seismic risk of the fault on the northeastern margin of the Qinghai—Tibet Plateau.This paper analyzed Sentinel-1 synthetic aperture radar images to obtain the coseismic deformation field of the earthquake,which was then used to invert the slip distribution of the seismogenic fault and the coseismic Coulomb stress on the surrounding faults caused by the earthquake.It was found that the earthquake was primarily characterized by sinistral strike-slip movement.Along the satellite line of sight,the south wall of the fault had a maximum deformation of 0.62 m,and the north wall had a maximum deformation of 0.48 m.The coseismic slip distribution results indicated that the maximum slip of the earthquake was 4.51 m,and the moment magnitude was MW6.7.The Coulomb stress analysis showed that the 2016 Menyuan earthquake promoted the occurrence of the 2022Menyuan earthquake. 展开更多
关键词 GEODESY Coseismic deformation InSAR technology INVERSION Coulomb stress Lenglongling fault Fault movement menyuan earthquake
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Rupture process of the January 8, 2022, Menyuan M 6.9 earthquake
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作者 Xun Wang Cuiping Zhao 《Earthquake Research Advances》 CSCD 2023年第4期27-32,共6页
After the occurrence of destructively strong earthquakes, rapid acquisition of the source rupture process can provide important reference information for post-earthquake disaster relief and aftershock trend determinat... After the occurrence of destructively strong earthquakes, rapid acquisition of the source rupture process can provide important reference information for post-earthquake disaster relief and aftershock trend determination.An M 6.9 earthquake occurred in Menyuan County, Qinghai Province on January 8, 2022. The epicenter is located in the seismic gap in the middle section of the Haiyuan fault belt. Such a typical strong earthquake was taken as an example to investigate the rupture process of strong earthquakes. Three days after the earthquake, the InSAR(Interferometric Synthetic Aperture Radar) coseismic deformation field was obtained by Sentinel radar, indicating that the surface ruptured obviously. The southern block of the earthquake faces towards the satellite about 95 cm along the LOS(line of sight) direction, and the northern block is away from the satellite by ~ 74 cm, consistent with the characteristic of left-lateral strike-slip motion. In this study, InSAR coseismic deformation data and farfield waveform data were used to jointly invert the earthquake rupture process, and a four-segment finite fault model was constructed by referring to the surface deformation. The inversion results show that the focal depth of the Menyuan earthquake is about 7 km, and the strike of the seismogenic fault is 89.0°, 104.0°, 119.0°and 131.0°from west to east, respectively. It is a high-dip left-lateral strike-slip earthquake event lasting about 14 s. The rupture propagation mode is a bilateral extension. The maximum slip along the fault is about 380 cm, and the seismic moment magnitude is 6.7. The surface rupture length is about 24 km, which is consistent with that measured in the field survey. The detailed seismic source model can provide basic data for the aftershock trend determination and seismic risk analysis of the adjacent active faults. 展开更多
关键词 menyuan earthquake Rupture process INSAR Joint inversion
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Propagation of crust deformation anomalies related to the Menyuan M_(S) 6.9 earthquake
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作者 Anfu Niu Chong Yue +3 位作者 Zhengyi Yuan Jing Zhao Wei Yan Yuan Li 《Earthquake Research Advances》 CSCD 2023年第4期43-48,共6页
Decoding the variation laws of the deformation field before strong earthquakes has long been recognized as an essential issue in earthquake prediction research. In this paper, the temporal and spatial distribution cha... Decoding the variation laws of the deformation field before strong earthquakes has long been recognized as an essential issue in earthquake prediction research. In this paper, the temporal and spatial distribution characteristics of deformation anomalies in the northeastern margin of the Qinghai-Tibetan Plateau before and after the Menyuan M_(S)6.9 earthquake were studied by using the Fisher statistical test method. By analyzing the characteristics of these anomalies, we found that: 1) The deformation anomalies are mainly distributed in the marginal front area of the Qinghai-Tibetan Plateau, where short-term deformation anomalies are prone to occur due to a high gradient of gravity;2) The deformation anomalies along the northeastern margin of the Qinghai-Tibetan Plateau are characterized by spatial propagation, and the migration rate is about 2.4 km/d. The propagation pattern is counterclockwise, consistent with the migration direction of M_(S)≥ 6.0 earthquakes;3) The time and location of the Menyuan earthquake are related to the group migration of earthquakes with M_(S)≥ 6.0. Finally,based on the results of gravity field variation and the theory of crust stress wave, the law of deformation anomaly distribution was discussed. We suggest that both the deformation propagation along the northeastern margin of the Qinghai-Tibetan Plateau and the earthquake migration are possibly associated with the variation of the stress field caused by subsurface mass flow. 展开更多
关键词 Northeastern margin of Qinghai-Tibetan Plateau menyuan M_(S)6.9 earthquake Deformation propagation Earthquake migration Gravity field
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Gravity changes and crustal deformations before the Menyuan,Qinghai Ms6.4 earthquake of 2016 被引量:1
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作者 Shusong Guo Guoqing Zhang Yiqing Zhu 《Geodesy and Geodynamics》 2019年第4期315-320,共6页
In this study, the relative gravity data(2012 e2015), GPS data-derived horizontal deformation(2011 e2014) and the background vertical deformation from the leveling measurements(1970 e2011) in the northeastern margin o... In this study, the relative gravity data(2012 e2015), GPS data-derived horizontal deformation(2011 e2014) and the background vertical deformation from the leveling measurements(1970 e2011) in the northeastern margin of Tibetan Plateau were processed to systematically analysis the mechanism of temporalespatial patterns and the relationship with Menyuan Ms6.4 earthquake. It can be summarized in the following: 1) The regional gravity changes, the GPS and the vertical deformational showed an intense spatial relationship: the gravity increased along with the direction of horizontal movement, and decreased with the crustal uplift and vice versa, which reflected the inherited characteristics of geotectonic activities. 2) The crustal deformations were closely related to the active faults. The contour lines of gravity changes and vertical deformation were generally along with the Qilian-Haiyuan fault(strike is NWW), and the crustal horizontal deformation showed left-lateral strike slip motion near the Qilian-Haiyuan fault. 3) Menyuan Ms6.4 earthquake occurred in the high negative gravity variation area and a high gradient formed in regions, positive and negative variation of gravity amount to 110 m Gal.Specifically, a borderline of positive and negative gravity located in the south of epicenter along the north edge of Qilianshan fault and Lenglongling fault, as well as the vertical and/or horizontal deformation is intensely. The extrusion deformation, surface compression rate and gravity changes were obvious near the epicenter of 2016 Menyuan Earthquake. 展开更多
关键词 NORTHEASTERN edge of the Tibetan plateau Gravity change CRUSTAL deformations menyuan Ms6.4 EARTHQUAKE TECTONIC activity
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Representative value of cross-fault in the northeastern margin of the Qinghai-Tibet block and case analysis of the 2016 Menyuan Ms6.4 earthquake 被引量:1
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作者 Ruisha Li Xi Zhang +2 位作者 Shouwen Gong Hongtao Tang Peng Jia 《Geodesy and Geodynamics》 2016年第4期268-274,共7页
The equation for determining cross-fault representative value is calculated based on hanging wall and foot wall reference level surfaces. The cross-fault data reliability are analyzed base on the stability of referenc... The equation for determining cross-fault representative value is calculated based on hanging wall and foot wall reference level surfaces. The cross-fault data reliability are analyzed base on the stability of reference datum and observation points, thereby facili- tating plotting of the representative value curves after removing interference. The spatial and temporal characteristics of fault deformation abnormalities before the 2016 Menyuan Ms6.4 earthquake, as well as the fault-movement characteristics reflected by representa- tive value, are summarized. The results show that many site trends had changed 1-3 years before the Menyuan Ms6.4 earthquake in the Qilian Fault, reflecting certain background abnormalities. The short-term abnormalities centrally had appeared in the 6 months to 1 year period before the earthquake near and in the neighborhood of the source region, demonstrating a significantly increased number of short-term abnormalities. Many sites near and in the neighborhood of the source region had strengthened inverse activities or had changed from positive to inverse activities in the most recent 2-3 years, which reflect stress-field enhancements or adjustment features. 展开更多
关键词 Northeastern margin of Qinghai- Tibet Representative value of cross-faul t menyuan Ms6.4 earthquake Fault activity Precursor Reference datum Stability
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Field source characteristic of gravity variation in Hexi region before Menyuan Ms6.4 earthquake based on the Euler deconvolution
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作者 Fang Liu Yingwei Wang Weifeng Liang 《Geodesy and Geodynamics》 2016年第5期317-322,共6页
This study adopted the Euler deconvolution method to conduct an inversion and interpretation of the depth and spatial distribution pattern of field source that lead to gravity variation. For this purpose, mobile gravi... This study adopted the Euler deconvolution method to conduct an inversion and interpretation of the depth and spatial distribution pattern of field source that lead to gravity variation. For this purpose, mobile gravity data from four periods in the Hexi region between 2011 and 2015 were obtained from an observation network. With a newly established theoretical model, we acquired the optimum inversion parameters and conducted calculation and analysis with the actual data. The results indicate that one is the appropriate value of the structure index for the inversion of the mobile gravity data. The inversion results of the actual data showed a comparable spatial distribution of the field source and a consistent structural trend with observations from the Qilian-Haiyuan Fault zone between 2011 and 2015. The distribution was in a blocking state at the epicenter of the Menyuan earthquake in 2016. Our quantitative study of the field source provides new insights into the inversion and interpretation of signals of mobile gravity variation. 展开更多
关键词 Euler deconvolution Potential field inversion Gravity variation Structural index menyuan Ms6.4 earthquake
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Seismogenic structure of the 2016 Ms6.4 Menyuan earthquake and its effect on the Tianzhu seismic gap
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作者 Yanbao Li Weijun Gan +4 位作者 Yuebing Wang Weitao Chen Shiming Liang Keliang Zhang Yongqi Zhang 《Geodesy and Geodynamics》 2016年第4期230-236,共7页
On January 21, 2016, a strong earthquake with a magnitude of Ms6.4 occurred at Menyuan, Qinghai Province of China. In almost the same region, there was another strong earthquake happened in 1986, with similar magnitud... On January 21, 2016, a strong earthquake with a magnitude of Ms6.4 occurred at Menyuan, Qinghai Province of China. In almost the same region, there was another strong earthquake happened in 1986, with similar magnitude and focal mechanism. Based on comprehensive analysis of regional active faults, focal mechanism solutions, precise locations of aftershocks, as well as GPS crustal deformation, we inferred that the Lenglongiing active fault dips NE rather than SW as suggested by previous studies. Considering the facts that the 2016 and i986 Ms6.4 Menyuan earthquakes are closely located with similar focal mechanisms, both of the quakes are on the north side of the Lenglongling Fault and adjacent to the fault, and the fault is dipping NE direction, we suggest that the fault should be the seismogenic structure of the two events. The Lenglongling Fault, as the western segment of the well-known Tianzhu seismic gap in the Qilian-Haiyuan active fault system, is in a relatively active state with frequent earthquakes in recent years, implying a high level of strain accumulation and a high potential of major event. It is also possible that the Lengiongiing Fault and its adjacent fault, the Jinqianghe Fault in the Tianzhu seismic gap, are rupturing simultaneously in the future. 展开更多
关键词 2016 Ms6.4 menyuan earthquake Seismogenic structure Tianzhu seismic gap Qilian-Haiyuan fault system
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Regional fault deformation characteristics before and after the Menyuan Ms6.4 earthquake
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作者 Ning Li Lingyun Ji Shuangxu Wang 《Geodesy and Geodynamics》 2016年第4期245-252,共8页
This study analyzes data regarding cross-fault deformations within the seismogenic zone of the 2016 Qinghai Menyuan Ms6.4 earthquake and its surrounding area. The results showed that the tendency anomaly sites near th... This study analyzes data regarding cross-fault deformations within the seismogenic zone of the 2016 Qinghai Menyuan Ms6.4 earthquake and its surrounding area. The results showed that the tendency anomaly sites near the epicenter had relatively long anomaly durations prior to the earthquake, while sudden-jumping anomaly sites started to increase in the middle eastern Qilian Mountains approximately a year before the earthquake and continued to increase and migrate towards the vicinity of the epicenter two to six months before the earthquake. Intensive observations a few days after the earthquake indicated that abnormal returns and turns before the earthquake were significant, but all had small amplitudes, and the coseismic effect was generally minor. In addition, the post-seismic tendency analysis of individual cross faults in the Qilian Mountain fault zone revealed an accelerating thrust tendency at all cross-fault sites in the middle Qilian Mountains after the 2008 Wenchuan Ms8.0 earthquake. This indicates that the Wenchuan mega-earthquake exerted a great impact on the dynamic environment of the northeastern margin of the Qinghai-Tibet plate and significantly enhanced the extrusion effect of the Indian plate on the middle Qilian Mountains, generating favorable conditions for the occurrence of Menyuan thrust earthquakes. 展开更多
关键词 menyuan Ms6.4 earthquake Cross-fault level Deformation anomaly Tendency anomaly Qilian Mountain fault zone
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Dynamic evolution of crustal horizontal deformation before the Ms6.4 Menyuan earthquake
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作者 Duxin Cui Shanlan Qin Wenping Wang 《Geodesy and Geodynamics》 2016年第4期253-260,共8页
An Ms6.4 earthquake occurred in the Menyuan county of Qinghai Province on Jan 21, 2016. In order to recognize the development of horizontal deformation and distinguish precursory deformation anomalies, we obtained coo... An Ms6.4 earthquake occurred in the Menyuan county of Qinghai Province on Jan 21, 2016. In order to recognize the development of horizontal deformation and distinguish precursory deformation anomalies, we obtained coordinates time series, velocity and strain model around the seismic zones from processing of continuous observations from 2010 and 6 times of surveying Global Positioning System (GPS) data since 2009. The results show that, before the earthquake, the eastern segmentation of the Qilian tectonic zone where the Lenglongling Fault located is in strong crustal shortening and compressional strain state with dilatational rates of -15 to -25 ppb. The Lenglongling Fault has a strike-slip rate of 3.1 mm/a and a far-field differential orthogonal rate of 7 mm/a, while differential rate is only 1.2 mm/a near the fault, which reflects its locking feature with strain energy accumulation and high seismic risks. Dynamic evolution of deformation model shows that preevent dilatational rates around the seismic zones increases from 15 ppb/a to -20 ppb/a with its center moving to the source areas. Time series of N components of G337 station, which is 13.7 km away from the Lenglongling Fault, exhibit a 5 mm/a acceleration anomaly. Time series of base-station QHME (in Menyuan) displays a reverse acceleration from the end of Sep. to Dec., 2016 when it comes to a largest deviation, and the accumulative displacement is more than 4 mm and the value reverse till the earthquake. In our results, coseismic displacement of N, E, U components in QHME site are 3.0 mm, 3.0 mm, -5.4 mm, respectively. If we profile these values onto the Lenglongling Fault, we can achieve a 1.1 mm of strike slip and 4.1 mm updip slip relative to the hanging wall. 展开更多
关键词 Ms6.4 menyuan earthquake Global Positioning System (GPS) Crustal horizontal motion Earthquake anomaly Coseismic displacement Horizontal strain Slip rates of Lenglongling fault Hexi-Qilianshan area
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Characteristics of regional crustal deformation before 2016 Menyuan Ms6.4 earthquake
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作者 Weitao Chen Weijun Gan +4 位作者 Genru Xiao Yuebing Wang Weiping Lian Shiming Liang Keliang Zhang 《Geodesy and Geodynamics》 2016年第4期275-283,共9页
On January 21, 2016, a strong earthquake with a magnitude of Ms6.4 happened at Menyuan, Qinghai Province of China. In almost the same place, there was another strong earthquake happened in 1986, with similar magnitude... On January 21, 2016, a strong earthquake with a magnitude of Ms6.4 happened at Menyuan, Qinghai Province of China. In almost the same place, there was another strong earthquake happened in 1986, with similar magnitude and focal mechanism. In this paper, we analyze the characteristics of regional crustal deformation before the 2016 Menyuan Ms6.4 earth- quake by using the data from 10 continuous Global Positioning System (GPS) stations and 74 campaign-mode GPS stations within 200 km of this event: (a) Based on the velocity field from over ten years GPS observations, a regional strain rate field is calculated. The results indicate that the crustal strain rate and seismic moment accumulation rate of the Qilian- Haiyuan active fault, which is the seismogenic tectonics of the event, are significantly higher than the surrounding regions. In a 20 km~ 20 km area around the seismogenic region, the maximum and minimum principal strain rates are 21.5 nanostrain/a (NW-SE extension) and -46.6 nanostrain/a (NE-SW compression), respectively, and the seismic moment accumulation rates is 17.4 Nm/a. The direction of principal compression is consistent with the focal mechanism of this event. (b) Based on the position time series of the continuous GPS stations for a time-span of about 6 years before the event, we calculate the strain time series. The results show that the dilatation of the seismogenic region is continuously reduced with a "non-linear" trend since 2010, which means the seismogenic region has been in a state of compression. However, about 2-3 months before the event, both the dilatation and maximum shear strain show significant inverse trends. These abnormal changes of crustal deformation may reflect the non-linear adjustment of the stress-strain accumulation of the seismogenic region, when the accumulation is approaching the critical value of rupture. 展开更多
关键词 2016 menyuan Ms6.4 earthquake GPS observation Crustal deformation Seismic moment accumulation rate DILATATION Maximum shear strain
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A Study on the Seismic Velocity Changes before and after the 2016 M_S6.4 Menyuan Earthquake Using the Active Source Data in the Qilian Mountain
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作者 Zou Rui Guo Xiao +2 位作者 Zhang Yuansheng Qin Manzhong Yan Wenhua 《Earthquake Research in China》 CSCD 2018年第4期549-559,共11页
The Qilian Mountain active source network data was processed using the methods of stacking, cross-correlation and interpolation, and the airgun travel time variation characteristics of P and S waves around the January... The Qilian Mountain active source network data was processed using the methods of stacking, cross-correlation and interpolation, and the airgun travel time variation characteristics of P and S waves around the January 21,2016 MS6. 4 Menyua,Qinghai earthquake. The results show that about 6 months before the earthquake,the relative travel time of three stations near the epicenter showed a declined change( travel time decrease),and such a change of low value anomaly was recovered about 3 months before the earthquake. The travel time decrease then appeared again, and the earthquake occurred during the recovery process. The maximum decrease of the S-wave travel time was 18 ms,and the change in travel time returned to normal after the earthquake. The variation trend of the 3 stations is consistent,including the S-wave travel time change of station ZDY38,which is nearest to the epicenter and changed obviously,and the variation range of the travel time is smaller at the stations afar. This variation pattern is related to the position of the seismic source. The shorter travel time means the velocity increase,which may be related to the regional stress accumulation. 展开更多
关键词 The menyuan Qinghai MS6.4 EARTHQUAKE Airgun excitation signal TRAVEL time delay Wave velocity variation
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