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1.
Abstract: Permafrost (perennially frozen ground) appears widely in the Golmud-Lhasa section of the Qinghai-Tibet railway and is characterized by high ground temperature (≥ ?1°C) and massive ground ice. Under the scenarios of global warming and human activity, the permafrost under the railway will gradually thaw and the massive ground ice will slowly melt, resulting in some thaw settlement hazards, which mainly include longitudinal and lateral cracks, and slope failure. The crushed rock layer has a thermal semiconductor effect under the periodic fluctuation of natural air. It can be used to lower the temperature of the underlying permafrost along the Qinghai-Tibet railway, and mitigate the thaw settlement hazards of the subgrade. In the present paper, the daily and annual changes in the thermal characteristics of the embankment with crushed rock side slope (ECRSS) were quantitatively simulated using the numerical method to study the cooling effect of the crushed rock layer and its mitigative ability. The results showed that the ECRSS absorbed some heat in the daytime in summer, but part of it was released at night, which accounted for approximately 20% of that absorbed. Within a year, it removed more heat from the railway subgrade in winter than that absorbed in summer. It can store approximately 20% of the “cold” energy in subgrade. Therefore, ECRSS is a better measure to mitigate thaw settlement hazards to the railway.  相似文献   

2.
应用冷却路基原理建设青藏铁路   总被引:3,自引:6,他引:3  
More than half of the total length of the Qinghai-Tibet Railroad (QTR) traverses warm (0 to-1℃) permafrost areas, and about 40% of its total length is in ice-rich permafrost areas. Thc construction of the QTR also must consider the impacts of climatic warming along the QTR during the next 50~100 years. The latest projection indicates a warming of 2.2 to 2.6℃ on the Qinghai-Tibet Plateau (QTP) by the year 2050. Therefore, the key to the successful construction of the QTR is to protect permafrost from being thawed. Although railroad construction in permafrost areas has had a history of more than 100 years, the troubled sections of the railroads in permafrost areas have been greater than 30% of their total length. Based on the experiences and lessons learned from the road construction in permafrost areas, both in China and abroad, the author proposes that the principle of “active cooling” of railroad roadbed by lowering permafrost temperatures should be used in designing QTR, rather than that of “passive protection” of permafrost through increasing thermal resistance of roadway, such as increasing fill thickness and/or using insulative materials. This is especially important for the road sections in warm, ice-rich permafrost. In addition, this paper proposes several methods for “cooling the roadbcd” by controlling radiation, convection and conduction through modifying roadway structure and using different fill materials.  相似文献   

3.
The distribution of permafrost and taliks is very complex in the Tuotuo River Basin(TRB), which is located in interior of the Qinghai-Tibet Plateau. Characterizing the spatial distribution and the thermal stability of permafrost and taliks is of great significance to community activities and engineering construction in TRB. Based on the zonation of permafrost and talik distribution around TRB conducted in the 1980s, the soil temperature and its variation process of permafrost and taliks in the south and north banks of the Tuotuo River were analyzed by using the observation data of five boreholes(N1~N5)along the Qinghai-Tibet Railway in the north bank and five boreholes(S1~S5)on the first terrace in the south bank. The results showed that, under the climate warming, permafrost and taliks in the north banks experienced significant degradation and warming process. From 2005 to 2020, the permafrost at the N1 borehole has undergone a significant down-draw degradation process, from extremely unstable and high-temperature permafrost to thawed zone. From 2005 to 2013, the annual average ground temperature of the talik at N2 increased at a rate of 0. 3~0. 4 °C·(10a)-1. At Maqutang on the south bank, permafrost prevails from the first-class terrace to the gentle slope of the Kaixinling Mountain, with both through and non-through taliks on the first-class terrace. The spatial distribution and the thermal stability of permafrost and talik in the TRB are further promoted by analyzing the changes in temperatures at boreholes in the basin. However, to meet the requirements of mapping and engineering construction of permafrost and taliks in the TRB, it is still necessary to carry out geological investigation with multiple methods and in-depth research on development mechanism of taliks in the future. © 2022 Nanjing Forestry University. All rights reserved.  相似文献   

4.
Using the long-term ground temperature monitoring data of the permafrost zone along the Qinghai-Tibet Railway from 2006 to 2020,three types of typical roadbed structures were analyzed. Traditional embankment(TE),U-shaped crushed rock embankment(UCRE)and crushed rock revetment embankment(CRRE)were included the three types of typical roadbed,which were selected to the long-term monitoring sections within the warm permafrost zones. The evolution of ground temperature field,mean annual ground temperature (MAGT)and annual maximum ground temperature(AMGT)in the depth range of 20 m under the embankment were analyzed and studied since 15 years of operation. The monitoring and analysis results show that:the growth rate of MAGT under the left and right shoulders of the TE is always higher than that of the same depth in the natural site. The MAGT under the UCRE is always lower than the natural site and always maintains a certain difference,whereas,the difference in ground temperature under the left and right shoulders is also not negligible. The MAGT of the left shoulder in the CRRE is not much different from that of the natural hole,while the MAGT of the right shoulder is always lower than that of the natural hole,and the differ in ground temperature between the left and right shoulders is smaller than that of the UCRE. The artificial permafrost table(APT)under the TE is always lower than that of in the natural site. Both the UCRE and CRRE,the APT in the left and right shoulders of them has been elevated into the embankment,and the differ of APT between the left and right shoulders is about 1. 0~1. 5 m. the differ of APT between the left and right shoulders in the CRRE is slightly lower than that of UCRE. Overall,because of the influence of thermal disturbance about engineering and climate warming,the TE in the warm permafrost zones cannot keep the thermal stability of permafrost under the embankment. Some active-cooling and reinforcement measures need to be taken. Both of the UCRE and CRRE,have a certain active-cooling effect on the permafrost under embankment,but the differ in ground temperature between the left and right shoulders still needs to be taken seriously. © 2022 Science Press (China).  相似文献   

5.
The 6^th International Symposium on Permafrost Engineering was successfully held in China in September 2004. About 150 scientists and engineers from 7 countries attended the symposium in Lanzhou on 5~7 September, and about 35 people from 6 countries participated in the field trip along the QinghaiTibet Highway/Railway on 8~13 September and the seminar in Lhasa on 14 September 2004. During the Symposium, the latest progress on permafrost engineering and the surveys, design and construction of the Qinghai-Tibet Railway were exchanged and inspected. Fifty-eight technical papers in English from the Symposium were published in the first volume of the Proceedings of the Symposium, as a supplement of the Journal of Glaciology and Geocryology, before the symposium. About 6 papers from the symposium are published in the second volume in the volume 27(1) of the Journal of the Glaciology and Geocryology, after the symposium. The Qinghai-Tibet Railway (QTR) under construction will traverse 632 km of permafrost, and the engineers are facing unprecedented engineering and environmental challenges. With the QTR under construction and to be completed in 2007, permafrost engineering has become the research focus of permafrost scientists and engineers in China. Many encouraging and promising achievements in permafrost engineering have been obtained during the past three years. However, there are still numerous engineering and environmental problems needing to be solved or resolved. In the discussions, some experts pointed out that methods, such as removal of snow cover on the embankments and toe areas, light-color embankments and side slope surfaces, awnings for shading the solar radiation, hairpin or tilted thermosyphons, could be applied to actively cool the roadbed of the QTR. Some new ideas on utilization of the natural cold reserves were proposed to protect the QTR permafrost roadbed from thawing. Many questions and answers on the survey, design, construction, operations, maintenance and environmental protection were exchanged in situ and in the Lhasa seminar with participation by some major railway designers, regulators and administrators.  相似文献   

6.
应用"天然冷"维护寒区环境   总被引:3,自引:1,他引:2  
崔广心 《冰川冻土》2004,26(Z1):231-236
The changes of frozen ground caused by the rising temperature will destroy the heat balance of frozen ground and then damage the roadbeds and foundations in cold area. It is a new idea to collect and store the "natural cold" as a resource and apply it to keep the frozen ground frozen permanently and regulate the summer temperature in cities. This paper introduces the principles and systems used in collecting, storing and transmitting the natural cold , analyses the techniques which keep the frozen ground unchanged and protect the roadbed. The paper also studies the systems and techniques by which the natural cold is used for temperature regulation in cities. And the theories involved in this subject and the prospect of industrializing those techniques are presented as well by the author.  相似文献   

7.
李国玉  李宁  全晓娟 《冰川冻土》2004,26(Z1):108-114
Finite Element Method has been used to operate the numerical analysis and comparison between the traditional ventilated embankment and the adjustable ventilated embankment adopted in Qinghai-Tibet Railway construction. The numerical results show that: 1) The adjustable ventilated embankments can prevent the thermal entry from air into ducts during summer from thawing the permafrost beneath the embankments; 2) The cooling effects of the adjustable ventilated embankments on permafrost is much better than the traditional ventilated embankments although two kinds of embankments can generate the thawing bulbs at the beginning of finishing construction; 3) The drop of the mean temperature of permafrost under the adjustable ventilated embankments keeps faster than that of the mean temperature of permafrost under the traditional ventilated embankments. It is clear that the adjustable ventilated embankments can keep the embankment more stable than the traditional ventilated embankments.  相似文献   

8.
董西好  叶万军  刘帅 《冰川冻土》2022,44(6):1853-1862
At present,artificial freezing method has become one of the effective methods for coal mine shaft to pass through water-rich soft rock strata,which can stop the movement of groundwater and limit the deformation of surrounding rock. In order to study the frost heaving characteristics of sandstone under different freezing conditions,frost heaving tests of saturated and dry Cretaceous red sandstone samples under different freezing rates (10 ℃·h-1,5 ℃·h-1,2 ℃·h-1,1 ℃·h-1)and different confining pressures(5 MPa,10 MPa,15 MPa,20 MPa,25 MPa)were carried out by using GCTS(Geotechnical Consulting & Testing Systems)servo-controlled low temperature and high pressure triaxial rock testing system. In this paper,based on the existing theory of physical and mechanical properties of frozen soil,we studied the frost heaving law of sandstone under different freezing conditions and explored the frost heaving mechanism. The result shows that in the process of cooling,the dry rock sample always produce cold shrinkage deformation,while the saturated rock sample first produce cold shrinkage deformation,then produce frost deformation,and finally the deformation tends to be stable. The deformation of saturated rock samples is much larger than that of dry rock samples. The larger the stress level of rock samples at the same temperature is,the smaller the frost deformation is,which shows a linear negative correlation,mainly because the high confining pressure limits the volume expansion of the water phase in the pore inside the rock samples when it becomes ice. The frost deformation of rock samples is mainly affected by confining pressure and water content,while the frost heaving rate is mainly affected by cooling rate. Under this test condition,the higher the cooling rate of sandstone is,the higher the frost heaving rate is,and the relationship between them is approximately linear. For saturated rock samples,the confining pressure reduces the rock frost heaving by limiting the expansion during the phase transformation of ice water,and the temperature affects the rock frost heaving by affecting the freezing rate of pore water and the thermal expansion and cold contraction of rock skeleton. For dry rock samples,the deformation is mainly due to the volume contraction of rock mineral particles caused by thermal expansion and cold contraction effect,and the greater the temperature change,the greater the deformation. Based on the experimental results and theoretical analysis method,a calculation formula of rock frost heaving considering the influence of confining pressure was established. By calculating the frost heave of sandstone samples under different confining pressures,it is found that the calculated values are in good agreement with the experimental results. Moreover,according to the calculation formula of frost heaving,the influence factors of rock frost heaving during freezing can be divided into two categories:internal cause and external cause. The internal cause includes porosity,saturation,volume modulus of ice and rock skeleton,and the external cause includes temperature and confining pressure. For saturated rock,the frost heaving is mainly affected by factors such as confining pressure,temperature and porosity. When the saturation,porosity and freezing rate are low,the rock may only produce shrinkage deformation,because these indicators determine whether the rock produces frost heave or freeze shrinkage. The mechanism of rock frost heaving is very complicated due to the interaction and restriction between the internal and external factors and the dynamic changes of rock micro-structure and mechanical properties during the process of frost heaving. The research results can provide theoretical reference for freezing construction scheme design of deep coal seam mine construction,and also provide a theoretical basis for the study of physical and mechanical properties and engineering application of soft rock in frozen soil area. © 2022 Science Press (China).  相似文献   

9.
The factor of human project activity is often the immediate cause resulting in soil and water loss. The Baoji-Lanzhou second railway in construction is an example. The soil and water loss law caused by earth and stone mountain railway engineering construction in the northwestern China is studied systematically and that caused possibly by the road bed project, the road moat project, the field project, the tunnel project and the service road project in construction is probed. At the same time, the type, the intensity and influencing factor of soil and water loss in the northwest mountain railway construction are also studied.  相似文献   

10.
Enhanced geothermal system (EGS) is an effective method for developing and utilizing hot dry rock (HDR). The key to the effectiveness of EGS is the construction of an artificial fracture network. The permeability of fractures has severe effects on the heat transfer efficiency and sustainability of geothermal energy. However, the evolution characteristics of hydraulic conductivity under different failure modes have not been adequately studied for HDR. To clarify this, rocks with different failure modes were investigated by conducting thermal triaxial compression experiments, and the fluid seepage related to different rock failure modes was comprehensively investigated. The results showed that the characteristic stresses and crack surface roughness of the rock increased as the confining pressure increased. The permeability in the composited failure mode was the largest (11.4 μm2), followed by that in the Y-shaped shear failure mode (9.7 μm2), and that in the single-shear failure mode was the smallest (7.2 μm2). The confining pressures had an inhibitory effect on permeability. As the confining pressure increased from 5 to 30 MPa, the permeability decreased by 88.8%, 88.4%, and 89.9%, respectively. In contrast, the permeability was significantly enhanced by 128.3%, 94.6%, and 131% as the flow rate increased from 3 to 7 mL/min.  相似文献   

11.
在介绍青藏高原多年冻土退化背景及其工程影响的基础上,通过主要冻土路基现场监测和沿线调查,对青藏铁路冻土路基2002年以来的地温发展过程、热学稳定性及次生冻融灾害进行了分析。结果表明:青藏铁路自2006年通车后冻土路基整体稳定,列车运行速度达100 km/h,达到设计要求,但不同结构路基的热学稳定性不同,采取"主动冷却"方法的路基稳定性显著优于传统普通填土路基。管道通风路基、遮阳棚路基及U型块石路基冷却下伏多年冻土的效果显著,块石基底路基左右侧对称性较差,而处于强烈退化冻土区和高温冻土区的普通路基热稳定性差,需结合路基所在区域局地气候因素予以调整或补强。以热融性、冻胀性及冻融性灾害为主的次生冻融灾害对路基稳定性存在潜在危害,主要表现为路基沉陷、掩埋、侧向热侵蚀等,其中目前最为严重的病害是以路桥过渡段沉降为代表的热融性灾害。  相似文献   

12.
This paper investigates the stability of the earthen roadbed built in the warm and ice-rich permafrost region. The varying thermal regime of the subgrade and the ongoing settlement of the roadbed were observed at field. The temperature data demonstrate that in warm and ice-rich permafrost regions, adoption of earthen roadbed results in warming of the underlying permafrost. It is primarily because the earthen roadbed traps the warm-season absorbed heat in the natural ground. In addition, the carried heat of the earthen roadbed that was constructed in warm season propagates downward to warm the underlying soil. The warming permafrost layer promotes the roadbed settlement, which was mostly linearly developed in the past five service years. A comprehensive analysis for the varying thermal regime and the ongoing settlement shows that the unfrozen water liberated from the warming, undrained layer experiences consolidation. The deformation of the undrained soils is mainly responsible for settlement of the roadbed. In comparison, the temperature variation of this warming permafrost layer is found to be less beneath roadbeds protected by thermosyphons or crushed rock revetments. The installation of thermosyphons into the earthen roadbed is recommended to prevent the further degradation of the underlying permafrost.  相似文献   

13.
青藏铁路路基创造性采用了主动冷却路基的设计理念修建而成,目前铁路已经安全运营超过10年。青藏铁路路基修筑在多年冻土之上,路基下部冻土温度变化是衡量路基是否稳定的关键因素。基于长期(2008—2019年)地温观测资料,对昆仑山垭口南坡青藏铁路K980+000低温多年冻土区块石路基坡脚至坡脚外30 m范围内的冻土上限变化、年际地温变化、季节性地温变化进行分析,研究了路基工程行为对低温多年冻土的长期影响机制。结果表明:冻土地温不断升高,冻土上限逐年下移;与天然孔比较,路基坡脚处地温增温幅度反而较小,主要可能受块石路基冷却效应的影响;冷季与暖季呈现出不对称的增温趋势。冻土路基普遍增温的趋势仍然存在,出于对多年冻土的保护与保证工程稳定性的考虑,应尽量采用冷却路基的思想修建路基。同时,应加强对路基的监测,分析长期增温过程后路基稳定性变化,并对路基下部冻土的变化做出定量研究。  相似文献   

14.
青藏铁路多年冻土斜坡段路基稳定性对铁路长期运营具有潜在的威胁,分析评价当前和未来斜坡路基稳定性可指导路基工程的正确设计和施工,从而保证铁路的安全运营。多年冻土地温变化使斜坡路基稳定性分析不同于普通土路基,其冻融交界面位置是制约斜坡路基稳定性的关键所在。通过对安多试验段3a来的地温监测,分析路基地温变化规律,并预测了未来50a内试验段地温的变化趋势,建立了当前和未来条件下的斜坡路基稳定性模型,计算分析了斜坡路基的稳定性。通过上述研究,取得以下认识和结论:(1)铁路路堤的填筑,引起多年冻土温度场重分布;由于坡向不对称和几何不对称,使得地温场存在不对称;(2)依据冻融界面位置和活动层的地温特征将冻土路基划分为4个不同时期,即冬季严寒期(1~2月)、春夏融化活动期(3~8月)、最大融深期(9~10月)及回冻活动期(11~12月);通过计算对比分析,每年最大融深期的稳定性系数最小;(3)数值分析的预测结果表明,20a以后,安多段试验段路基的多年冻土完全退化,在所预测的第10年最大融深期稳定性系数最小。  相似文献   

15.
碎石层的"热半导体"作用   总被引:9,自引:2,他引:9  
碎石层在冰缘地区有广泛分布.众多文献报道,碎石层具有降低其下地温的作用,根据这些现象,对其致冷形成机理进行了研究.结果表明:对封闭的倾斜碎石层,其致冷机制主要基于Rayleigh-Bènard对流;对开放的倾斜碎石层,其致冷机制包括“烟囱效应”和风引起的强迫对流.并进一步用模型试验、数值模拟和现场的实体试验对致冷机理进行了验证.碎石层己在青藏铁路建设中得到广泛应用,并被证明起到了冷却路基的作用.这一措施效果显著、施工简便、环境友好且成本相对较低,可用于多种冻土工程,以适应全球变暖的影响.  相似文献   

16.
一般地区路基土体变形主要受土体压密过程控制,青藏铁路冻土路基变形则主要是受土体冷生过程影响和控制。通过对填土路基修筑后土体冷生过程以及工程实测数据分析,指出冻融过程不同阶段冻土路基变形与土体冷生过程有着密切关系。认为控制填土路基冷生过程稳定时间和填土路基地温场形态,是减少冷生过程和铁路长期运营过程中路基变形、保证冻土区路基工程长期稳定性的有效途径。此认识已经在青藏铁路冻土区路基工程建设实践中得到证明。  相似文献   

17.
青藏铁路多年冻土工程的研究与实践   总被引:29,自引:11,他引:18  
孙永福 《冰川冻土》2005,27(2):153-162
青藏铁路建设需穿越高原多年冻土区, 在探明沿线多年冻土分布特征的基础上, 合理确定了青藏铁路线路的走向方案.在多年的冻土研究和工程实践的指导下, 有针对性地开展了5个不同类型冻土工程试验研究, 取得重要科研成果, 指导设计和施工.全面总结4 a来青藏铁路多年冻土工程的研究与实践, 提出了"主动降温, 冷却地基, 保护冻土"的设计思想, 制定了路基、桥涵、隧道成套工程技术措施和先进施工工艺, 对确保多年冻土工程质量发挥了重要作用.  相似文献   

18.
青藏铁路冻土区块石护坡路基热传递特性   总被引:2,自引:0,他引:2  
李国玉  李宁  康佳梅 《冰川冻土》2007,29(2):315-321
块石护坡路基是青藏铁路建设中一种有效的冷却地基保护冻土工程措施.考虑高原夏季夜间冷空气对块石护坡路基温度场的影响,对青藏铁路北麓河块石护坡试验路基夏季某一整天的温度场、热流量和热流密度进行了分析,研究块石护坡路基昼夜间热传递特性.结果表明:块石护坡路基在夏季白天吸收热量,在夜间冷空气的作用下路基释放一部分热量,说明夏季夜间存在一定的降温效果.另外考虑一年内冷暖季块石护坡的热传递差异,对块石护坡路基冷暖季的温度场、热流量和热流密度变化情况进行研究,探讨其冷暖季热传递特性,结果显示:块石护坡路基暖季处于吸热状态,冷季处于放热状态;从一年的热流量变化看,块石护坡路基冷季的放热量大于吸热量,路基储存冷能有利于保护冻土.  相似文献   

19.
青藏铁路普通路基下冻土过程动态评价   总被引:1,自引:0,他引:1  
本文主要利用青藏铁路北麓河厚层地下冰试验段中普通路基下部冻土温度的监测资料,对路基下部冻土温度变化和热收支特征进行了分析,并对修筑普通路基后多年冻土热融蚀敏感性和热稳定性进行了计算。结果表明,修筑普通铁路路基后,虽然多年冻土人为上限有较大幅度抬升,但原天然上限以下多年冻土温度却逐年升高,表现为显著的吸热状态。同时冻土热融蚀敏感性增强,冻土热稳定性下降,对路基热稳定性将产生较大的影响。  相似文献   

20.
路基施工对青藏高原多年冻土的影响   总被引:2,自引:2,他引:0  
青藏高原上施工会扰动其下多年冻土的存在状态. 近些年来, 高原上相继修建的大量的线性工程, 这些大型工程的建设必将进行多年冻土区的开挖和夯填, 从而会引起下伏多年冻土的结构发生很大变化. 研究了路基施工对青藏高原多年冻土的影响, 并以青藏铁路、青藏公路沿线典型实例进行分析. 结果表明: 开挖施工扰动最大, 可引起斜坡失稳滑塌、地表积水和热融湖塘等;填土路堤会引起其下伏多年冻土升温, 路基两侧形成的小气候往往起着提高地面温度的作用;挡水、排水设施施工也会导致多年冻土上限下降, 地表沉陷. 可见, 填土路基、开挖、地表工程扰动都会导致多年冻土发生变化, 这些冻土变化对路基稳定必将构成威胁.  相似文献   

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