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1.
河北雄县地热田钻井地温测量及地温场特征   总被引:6,自引:0,他引:6       下载免费PDF全文
根据研究区22口井的实测井温资料及前人的研究成果,开展了雄县地区地温场分析,对雄县地热田地温场的特点取得了以下认识:雄县地热田的盖层以传导热传递方式为主,热储层中源于供暖期热水生产和回灌引起的地下水受迫对流的影响,以对流热传递为主,不同静井时间的重复测温结果显示,静井时间的长短和井内流体的运移方式(抽水或回灌)控制了井内温度的分布及井内温度的动态变化:静井时间增加则测得的温度在中性点上下呈反向变化,生产井和回灌井的测温曲线存在明显不同,雄县热田第四系底部的温度为32.8 ℃~48 ℃,容城凸起为28 ℃~35 ℃,雄县热田第三系底部温度为64.5 ℃~81.3 ℃,容城凸起为45 ℃~60 ℃。雄县地热田盖层内的地温梯度为43.9~72.2 ℃/km之间,平均为51 ℃/km,容城凸起的井地温梯度为31.4~41.1 ℃/km,平均为37.1 ℃/km。雄县地热田内盖层导热流值变化为80.61~113.86 mW/m2 的范围。  相似文献   

2.
毛小平  汪新伟  李克文  郭少斌 《地球科学》2018,43(11):4256-4266
地热能越来越受到重视,但地热田的形成机制和热量的来源仍存在争议,多数学者认为岩浆囊可以为地热田直接供热.以二维热传导正演模拟为手段得出,盖层是形成地热田的必要条件;在浅部存在高热传导层时,地温剖面会出现镜像倒影形态,温度在垂向上分为高梯度段、低梯度段和低温段,侵位较浅(< 10 km)的岩浆囊散热和进入热平衡时间小于20~50万a.结合大量地热田温度资料分析认为,地热田的热量不是因为存在异常热源(如岩浆囊),而是来源于正常的基底热流.当深部热量传递到地表时,由于近地表物质的热传导能力的差异引起温度场发生变化,即地热田之下存在高热传导层快速地将基底热量传递到浅层而形成异常高温.   相似文献   

3.
长白山火山区地壳热结构尚未建立,目前基于地球物理探测手段获得的天池火山浅部岩浆房赋存深度存在差异.通过对天池火山北坡CZK07钻孔测温情况的研究,在资料评价与地温梯度计算的基础上,结合全新世岩浆房温度资料,估算了北坡浅部岩浆房的赋存深度.CZK07钻孔位于地球物理探测所推测的浅部岩浆房正上方,靠近历史时期火山喷发火口,在孔深约610 m处地温较高且稳定(102.5~106.8℃).连续测温资料显示,钻孔地温随深度呈一次正相关变化,地温梯度主要变化于134~178℃/km之间(平均为153℃/km),可大致代表浅部岩浆房上覆地壳的地温梯度.基于前人浅部岩浆房的温度研究,本次定量估算的天池火山北坡浅部岩浆房的赋存深度,为天池水面下5.25~7.21 km,与地球物理探测的反演结果相近.  相似文献   

4.
基于黔西补作勘查区32口钻孔的简易测温资料,分析了勘查区浅部地温场的基本特征。研究发现,区内地温梯度在0.98~3.25℃/100m,平均2.07℃/100m,总体上属于正常地温场范畴;平面上变化较大,局部存在低温异常,在垂向上随着孔底深度增大,各钻孔地温梯度总体上趋于增高,但与埋深之间关系相对离散,钻孔温度曲线表现为两种基本形式。研究认为,断层构造控制了地温场的分布,地温异常带的展布方向反映区域构造的基本轮廓;地下水动力场微弱,对地温场影响不甚明显;地层岩性及埋深影响地温场的垂向分布。  相似文献   

5.
河北汤泉地热田地温场分布及其控制因素研究   总被引:5,自引:4,他引:1       下载免费PDF全文
汤泉位于河北省遵化市西北部,为山前丘陵地貌,地热资源丰富。本文对汤泉地热田内分布的诸多基岩热水井进行了钻孔测温,利用测温结果对该地热田地温场分布特征及控制因素进行了研究。研究发现:钻孔温度明显受地下水流的影响,绝大部分测温井表现为对流传热特征,个别表现为传导为主的传热特征;地温异常区域位于汤泉福泉宫和疗养院一带,异常中心呈两极分布,地热异常中心50 m埋深水温为51~54℃,100 m埋深水温可达60~67℃;该地热系统中地热水系地下水在深循环过程中,在正常的大地热流背景下被围岩逐渐加热所致;由花岗岩隔水底板构造形态所形成的隐伏盆地,构成了福泉宫至疗养院一带的蓄水构造;由于断裂构造切割花岗岩体,造成深部的热流沿断裂上升,混合并加热赋存于福泉宫至疗养院一带蓄水构造中的片麻岩裂隙水,形成该地段的地热异常现象;福泉宫地区和疗养院地区片麻岩含水层裂隙发育,使得深部热量能够快速到达浅部地层,并在浅部出现局部异常高温;汤泉地热田片麻岩热储层地热流体属于含岩盐地层溶滤的陆相沉积水,主要来源于大气降水。  相似文献   

6.
漳州热田温度场   总被引:5,自引:1,他引:4       下载免费PDF全文
漳州热田属对流型地热田,是我国东南沿海地区目前所见温度最高(90m深处121.5℃)的一个。温度场研究表明,热田中心区具有最高温度和最大的地温梯度,此乃漳州盆地的排泄区。在盆地补给区,由于岩体中的热量被冷的地下水“冲刷”带走,该区见到低地温和低的地温梯度。显然,漳州热田温度场与盆地地下水活动密切相关。在分析研究152个钻孔测温资料的基础上,本文着重讨论了地下水的垂向和水平运动对热田温度场的影响。  相似文献   

7.
张伟 《地质与勘探》2020,56(4):802-808
利用新安煤田5个矿区的测温数据,分析了该煤田中深部地温场的分布、热演化、形成机理及其影响因素。经统计分析,整个研究区的地温梯度值介于1.24~3.24℃/hm之间,极小部分属高温异常区,大部分为正常地温区。在纵向上,地层温度与埋深呈现正相关性,且线性关系明显,充分体现出传导型增温特征;地温梯度则大致以400~600 m深度为分界线,该深度以浅的地温梯度值较为分散,且与地层深度呈负相关性,超过该深度以后地温梯度值变化幅度极小。在平面上,研究区地温梯度的整体分布规律为北低南高。分析结果表明,影响研究区地温场分布的主导因素为地质构造,其次为岩性变化及地下水活动。  相似文献   

8.
以LYL井田为例,通过收集邻区地温资料及气象资料,结合井田勘探阶段中的简易测温、近似稳态测温,确定井田内恒温带及中性点的参数。首先应用3个钻孔的近似稳态测温建立区内井温恢复曲线模型,之后利用已建立的模型对不同类型的简易测温钻孔对井底温度进行校正,最后通过恒温点、中性点、校正后的井底恢复温度得出简易测温校正曲线的拟合方程,根据方程对所有简易测温钻孔测温结果进行校正,计算出所有钻孔的煤层底板地温及地温梯度,从而为研究井田内地温分布规律提供第一手资料。   相似文献   

9.
本文通过南海北部主要盆地钻井测试资料,结合砂岩和泥岩样品的高温水热增压模拟实验分析,综合探讨了南海北部高温环境条件下地层温度和地层压力在纵向上的分布特征.认为南海北部琼东南盆地、珠江口盆地深层高温环境存在“高压型地温—地压系统”,地温与地压表现为指数曲线关系.区别于传统意义上的“折线模式”,高温断陷地温—地压系统在纵向上表现出一种“非折线模式”,具体表现在中浅层为静水型地温—地压系统,地温与地压呈直线关系;中深层为高压型地温—地压系统,地温与地压呈指数曲线关系.在该模式中,深层超压流体具有更强的垂向和侧向充注动力,油气可以沿着断层、裂隙和砂体等输导层垂向或侧向运移到相对更浅、更远的圈闭中聚集成藏.该模式的提出,补充完善了地温—地压系统概念,尤其针对高温断陷盆地的油气勘探研究,能够大幅提高油气资源勘探潜力.  相似文献   

10.
本文以渭河盆地地温场为研究对象,在收集补充新地热井资料及分析测试样品的基础上,通过盆地深部结构、构造特征、地温场特征、热储层特征、地热资源量等分析,建立了盆地不同岩性岩石热导率与深度关系图版,确定了盆地地温场变化规律及地热田控制因素,提出了渭河盆地地热田形成模式。评价了盆地地热资源有利区,为盆地后续的开发利用提供了理论支持。研究认为渭河盆地热地温梯度分布在2.34~5.85℃/100m之间,平均地温梯度为3.50℃/100m,代表性大地热流68.33mw/m~2,地温梯度及不同深度地层温度具有东高西低、南高北低的特点。热导率总体上具有随深度的增加,逐渐增大的规律,热导率随深度增加主要受压实程度增强控制。相同深度条件下泥岩热导率最低,砂岩热导率居中、白云岩热导率最高。渭河盆地主要为层状地热田,盆地内地热通过热传导及热对流两种方式进行传递,以热传导为主。渭河盆地地热资源丰富,热储层可分为三种类型:①新生界砂岩孔隙型;②下古生界碳酸盐岩岩溶型;③断裂型。渭河盆地地热资源有利区主要分布于西安凹陷、固市凹陷。盆地地温场及地热田分布与莫霍面、软流圈上隆、岩石圈厚度减薄的深部背景密切相关,主要受地热传导和深大断裂热对流控制,是岩石圈深部结构、盆地构造、基底岩性、储盖组合等多因素共同作用下形成的。最后结合当前渭河盆地地热资源开发利用现状及存在问题,提出了地热开发利用建议。  相似文献   

11.
浅层地温能作为可再生能源,已经引起广泛关注。为了有效地监测南京市浅层地温场的时空演化,针对4种温度传感器:DTS、FBG、Pt100和iButton,通过野外和室内试验进行分析对比,从测温精度、适用范围、工作特性等方面展开研究。结合试验结果和目前的实际应用情况,总结出四种传感器在浅层地温场监测方面的优缺点和特性,并制定出一套较为完善的监测方案,为浅层地温场的长期时空监测提供参考:在所有钻孔中埋设分布式测温光纤,并根据地温钻孔的土层分布和所获取的地温分布数据,选取两个较为典型的地温钻孔布设FBG测温串;在所有钻孔点距地表5 cm处布设iButton,并使用Pt100监测地表以下25 m内的精确地温。根据已获得的监测数据,可总结出南京地区浅层地温在垂向上的大体分布规律,发现其分布在空间上具有差异性,浅地表地温与地表覆盖层、大气及太阳辐射有关,深部地温受地质构造和水文地质条件等因素控制。  相似文献   

12.
We present new heat flow values and other geothermal data in the upper crystalline crust in the immediate vicinity of the 12.4-km deep Kola super-deep borehole, NW Russia. Our results show a systematic vertical increase in geothermal gradient and heat flow density as deep as we could measure (1.6 km). Our results confirm earlier results on vertical heat flow trends of in the uppermost part of the Kola super-deep hole, and imply that the thermal regime is not in steady-state conductive conditions. In an area of 3-km × 5-km measurements were performed in 1–2-km deep boreholes surrounding the Kola super-deep hole and on core samples from these holes. Temperature logs are available from 36 holes. Core data exists from 23 boreholes with a total length of 11.5 km at a vertical resolution of 10 m. We carried out a very detailed study on thermal conductivity with regard to anisotropy, inhomogeneity and temperature dependence. Tensor components of thermal conductivity were determined on 1375 core samples from 21 boreholes in 3400 measurements. Additionally, we measured specific heat capacity, heat generation rate, density, porosity, and permeability on selected subsets of core samples. Heat flow from 19 boreholes varies between 31 and 45 mW m−2 with an average value of 38 mW m−2. In most boreholes the vertical heat flow profiles show a considerable variation with depth. This is consistent with observations in the upper part of the Kola super-deep borehole. We conclude that this variation is not caused by technical operations but reflects a natural process. It is considered to be due to a combination of advective, structural and paleoclimatic effects. Preliminary 3-D numerical modeling of heat and flow in the study area provides an indication of relative contributions of each of these factors: advective heat transfer turns out to have a major influence on the vertical variation of heat flow, although transient changes in surface temperature may also cause a significant variation. Heterogeneity of the rocks in the study area is less important.  相似文献   

13.
The objectives of this paper are an understanding of the thermal and hydraulic field because of a negative temperature gradient and cold temperatures in the 1-km-deep borehole of the Hawaiian Scientific Drilling Project (HSDP), located near the coast line. The temperature pattern is attributed to a superposition of thermal and hydraulic processes. In the deeper borehole (HSDP-2, depth 3.1 km) detailed temperature monitoring was performed. Temperature measurements reveal two different thermal regimes. The upper part is characterised by cold temperatures and a negative temperature gradient similar to those observed in the shallow pilot borehole. Below 1100 m, increasing temperatures are observed. Different processes, such as topographically driven groundwater flow, ingress of salt water and conductive heat flow are investigated by numerical modeling. A pure conductive scenario fails to match the temperature measurements, implying that both borehole sections are overprinted by advective conditions. Coupled fluid and heat flow modeling with solute transport yield results that agree with observed temperatures. The results of these simulations suggest that meteoric water flow from the mountain range controls the thermal conditions in the upper part of the borehole. Below this level, the thermal regime is additionally affected by circulation of salt water from the nearby ocean. Each of these flow systems has been observed at other locations: topographically driven fresh water at locations with pronounced topography and ingress of salt water is typical for islands or coastal areas. At Hawaii, they coincide and influence each other, resulting in a salt water interface occurring at greater depth than expected.  相似文献   

14.
Li  Yasong  Liu  Chunlei  Cao  Shengwei  Miao  Qingzhuang  Dong  Yan  Jiang  Zhenjiao 《Hydrogeology Journal》2021,29(6):2211-2218

Low-to-medium temperature geothermal fluids in the granite regions of southeastern China are an important renewable energy resource, but they are also a source of contamination containing highly toxic elements such as fluoride and arsenic. This study analyzed the origin of the geothermal fluids in a regional-scale hydrogeological unit in the city of Xiamen, China, based on isotope and hydrochemical analyses. The Br/Cl ratios suggested that the inland geothermal fluid is merely recharged by rainwater from the mountain edge, while the coastal geothermal fluid is originally recharged by the seawater and later mixed with rain-derived groundwater. The geothermal water featured high SiO2 and detectable Zn concentrations. The former reflects the significant water–granite interaction along the flow path, and the latter indicates the active hydraulic connection between surface waters, shallow aquifers and deep geothermal fluids. High radon content was detected near the deep conductive fault adjacent to a geothermal well, demonstrating that the fault damage zone acts as a major conduit for upward transport of the deep geothermal fluid. As a result, the fault damage zones developed in the granite are necessary for the formation of geothermal water, which leads to the uneven distribution of geothermal water in the subsurface. High-temperature geothermal water can be found in those regions with fairly sparse fault damage zones. In contrast, in the region with high-density fault activities, the active communication between shallow cool water and deep geothermal fluids can decrease the water temperature.

  相似文献   

15.
The Qinghai Gonghe-Guide Basin together with the alternatively distributed mountainous region shows characteristics that the conductive geothermal resource of the basin has high geothermal gradient, the granite occurs in the bottom of borehole for geothermal exploration, and the convective hot springs in the basin-edge uplift fracture are in zonal distribution and with high-temperature geothermal water. There are still some divergences about the heat source mechanism of the basin. In this paper, queries to the view of mantle-derived heat source have been put forward, coming up with geochemical evidences to prove that the radiogenic heat of granite is the heat source within the mantle. Additionally, temperature curve is drawn based on the geothermal boring and geochemical geothermometer has been adopted for an estimation of the temperature and depth of the geothermal reservoir, it has been found that the surrounding mountains belong to the medium-temperature geothermal system while the area within the basin belongs to the high-temperature geothermal system with the temperature of borehole bottom reaching up to 175-180 ℃. In this paper, discussions on the problems existing in the calculation of geothermal gradient and the differences generated by the geothermal system have been carried out.  相似文献   

16.
《地学前缘(英文版)》2020,11(4):1175-1187
Tho Gudui geothermal field records the highest temperature at equivalent borehole depths among the lainland hydrothermal systems in mainland China.Located about 150 km southeast of Lhasa City,the capital of Tibet,the Gudui geothermal field belongs to the Sangri-Cuona rift belt,also known as the Sangri-Cuona geothermal belt,and is representative of the non-volcanic geothermal systems in the Himalayas.In this study,oxygen-18 and deuterium isotope compositions as well as ~(87)Sr/~(86)Sr ratios of water samples collected from the Gudui geothermal field were characterized to understand the origin and mixing processes of the geothermal fluids at Gudui.Hydrogen and oxygen isotope plots show both,deep and shallow reservoirs in the Gudui geothermal field.Deep geothermal fluids are the mixing product of magmatic and infiltrating snow-melt water.Calculations show that the magma fluid component of the deep geothermal fluids account for about 21.10%-24.04%;magma fluids lay also be a contributing source of lithium.The linear relationship of the ~(87)Sr/~(86)Sr isotopic ratio versus the 1/Sr plot indicates that shallow geothermal fluids form from the mixing of deep geothermal fluids with cold groundwater.Using a binary mixing model with deep geothermal fluid and cold groundwater as two end-members,the nixing ratios of the latter in most surface hot springs samples were calculated to be between 5% and 10%.Combined with basic geological characteristics,hydrogen and oxygen isotope characteristics,strontium concentration,~(87)Sr/(86)Sr ratios,and the binary mixing model,we infer the 6 th-Class Reservoirs Evolution Conceptual Model(6-CRECM) for the Gudui geothermal system.This model represents an idealized summary of the characteristics of the Gudui geothermal field based on our comprehensive understanding of the origin and mixing processes of the geothermal fluid in Gudui.This study may aid in identifying the geothermal and geochemical origin of the Gudui high-temperature hydrothermal systems in remote Tibet of China,whose potential for geothermal development and utilization is enormous and untapped.  相似文献   

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