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1.
卞跃跃  赵丹 《地球学报》2018,39(4):491-497
康定地热田位于四川盆地西缘山地和青藏高原的过渡地带,属于高热流背景上的深循环高温地热系统。本文以康定地热田地下热水为研究对象,通过采集地热田内的主要两个热显示区(榆林河和雅拉河地区)的温泉和地热井的地下热水样,进行水化学和稳定同位素测试分析,研究其地下热水的补给来源和热储温度。雅拉河地下热水的水化学类型主要为HCO_3-Na型水,榆林河地下热水的水化学类型主要为HCO_3·Cl-Na型水,均显示了深部地下热水沿断裂上涌与浅部冷水混合的特点。根据地下热水同位素的结果分析计算,康定地热田地下热水的起源均来自大气降水,雅拉河地下热水的补给高程为5 600~5 900 m,榆林河地下热水的补给高程为5 300~6 300 m,来源于南部的贡嘎山的可能性较大。榆林河地下热水具有明显的氧-18漂移现象,其原因为较高的热储温度,二氧化硅温标和阳离子温标的结果证明了这个判断,雅拉河地下热水的热储温度为172~188℃,榆林河地下热水的热储温度为192~288℃。  相似文献   

2.
为探究柴达木盆地北缘的大柴旦地热田的水化学特征及成因模式,本文对研究区14组地下热水进行了水化学组分和同位素(δD,δ18O,87Sr/86Sr,3H)分析。结果表明,大柴旦地下热水出露温度为52~74℃,溶解性总固体浓度(TDS)为959.8~1451.3 mg/L。地下热水的水化学类型为Cl-Na型,区内地下热水的水化学成分主要来源于蒸发岩和硅酸盐矿物的溶解;氢、氧稳定同位素特征表明,大气降水及冰雪融水是地下热水主要补给来源,且部分温泉有岩浆水的补给,估算的补给高程为3591~4374 m。3H测年结果表明,区内地下热水主要由1952年之前的古水补给、蒸发作用和水-岩反应增强导致。XSWQ-06和XSWQ-07样品有明显的氧漂移。基于SiO2地热温标、多矿物平衡法和硅焓模型估算出的地下热水的热储温度为171~227℃,循环深度为4.7~6.9 km。该地区地热资源具有较大的开发利用潜力。  相似文献   

3.
云南腾冲热海热田的热储特性   总被引:1,自引:0,他引:1       下载免费PDF全文
云南腾冲县热海热田是我国西南的一个重要高温水热对流系统。本文根据热田地质、地表显示、热泉水化学和同位素组分等资料,推断热储岩体是块状花岗岩体;对比多种地球化学温标认定热储温度为230℃;推算了热储内部未发生沸腾前的热储流体化学和同位素组分;讨论了热水和冷水的混合与稀释状况;发现地下沸腾带接近地表,肯定热田为一高温热水系统,从而有可能估算热储内部的压力。最后,对水岩平衡作了推测。  相似文献   

4.
根据武汉城市圈岩溶热储地热田的地下热水水化学数据,总结了岩溶热水的水化学类型,分析了岩溶热水中主要组分随温度的变化特征,重点研究了水—岩作用程度和作用时间的关系,系统分析了热水中主要离子的水化学作用过程。研究结果表明,热水中主要组分含量受温度和水岩作用过程控制,TDS含量随水岩作用时间的增加而增加,随着TDS含量的增加,水岩作用受碳酸盐溶解控制逐渐转变为受硫酸盐溶解控制,高TDS时,盐岩溶解作用加强;浪口、五洪山、蛇屋山地热田属同一个岩溶水流系统,汤池地热田、马口地热井属同一个水流系统,其他地热田属各自独立的水流系统。  相似文献   

5.
通过对地热流体水化学、同位素以及热储岩石热物性测试,分析了延庆地热田大地热流特征、地热流体补给来源、年龄、循环深度以及热储温度等,从源、通、储和盖四方面系统总结了地热田成因。结果显示:延庆地热田属于由正常大地热流加热的非火山型地热系统,热田内大地热流值为75.6m W/m~2,地热流体补给来源于延庆西北部山区的大气降水。热田内三个主要热储中的地热流体年龄和循环深度存在一定区别。燕山期花岗岩、白垩系砂岩和蓟县系白云岩热储中地热水年龄分别为15~21ka、28ka、48ka。花岗岩和砂岩热储中地热流体循环深度约2500m。白云岩热储中流体循环深度为2900~3600m,热储温度分布范围为80.5~98.3℃,平均热储温度90.6℃。  相似文献   

6.
腾冲热海地热田热储结构与岩浆热源的温度   总被引:16,自引:4,他引:12  
腾冲热海地区是一个由幔源岩浆侵入形成的地热田, 地热流体排放受深浅不同的三组活动断裂控制, 具多层地热储结构特征。气体、 同位素、 水化学地球化学温标显示, 深层热储的温度约为250±7℃、中、浅层地热储温度的变化范围分别为241~190℃和195~154℃。根据岩浆来源CO  相似文献   

7.
结合石林盆地地热异常及地热钻孔资料,对石林盆地地热田的热储构造条件、地热地质特征及地下水化学特征进行研究,该地热田热储层为元古界震旦系白云岩、白云质灰岩,热水径流特征和地温场特征受九乡石垭口断裂、牛头山古陆控制。钻孔资料显示,地温梯度为(1.5~4.8)℃/100 m,地热类型为深循环层状地热田,地下热水水化学类型为HCO3-Ca。从水文地质条件看,地下热水补给有限,应控制地热水的开发利用。  相似文献   

8.
南宁市地热田为隐伏大型中低温地热田,文章依据地热田内7眼地热井(孔)地下热水的水化学资料,在分析地热田的水文地球化学特征的基础上,采用SiO2和K/Mg地热温标,对地热田的热储温度及深度进行估算.  相似文献   

9.
浙江武义盆地地热水同位素地球化学研究   总被引:8,自引:1,他引:8  
武义盆地位于浙江中部,其中有一个长约25km 、宽约5km 的地热田。为了评估热能潜力和开发前景,本文对该地热田进行了水化学和同位素示踪研究。根据地热水的水化学分析,应用SiO2 和Na/K 地球化学温标估算出热储温度大致为80 ~110 ℃,热储深度大致为900 ~1200m 。这组资料与该地热田中Sr 和S同位素示踪所得结果相一致。H、O 同位素示踪及T( 氚) 同位素测年表明,地热水的来源与现代大气降水有关,但不是区内当地的地表水,而是该地热田外围较高山区( 相对高程> 300m) 的大气降水。它们  相似文献   

10.
本文阐述了福州地下热水的赋存规律;地球化学特征,并从地球化学角度来论述福州地下热水的成因及其热储模式。通过氢氧稳定同位素的研究,建立了福州地区的雨水线,其线性方程为:δD(‰)=8.8δ18O(‰)+18.1,并论证福州地下热水的成因是由大气降水补给,经深循环加热形成的,其循环深度约3500米。通过地球化学温标计算,认为热储温度最高只能在150℃左右。根据放射性同位素氘分析成果计算,确定福州地下热水形成时间在40年以上。同时在综合资料的基础上,建立了福州地热田的热储模式。  相似文献   

11.
A geochemical study on thermal water has been carried out in Tianshui and its adjacent area, Gansu province, China. Chemical and isotopic contents were employed in the investigation on the origin and evolution of thermal water and the evaluation of reservoir temperature in the geothermal systems. Thermal waters in Wushan and Tianshui are characterized by outlet temperatures from 15 to 38°C and low TDS (226?C255?mg/L), defined as bicarbonate water. Its origin may be attributed to the interaction between meteoric rain, biotite plagioclase gneiss and carbonate reservoir rocks. In contrast, thermal waters in Tongwei and Qingshui have higher outlet temperatures of 25?C54.2°C and a moderate TDS of 915?C1,793?mg/L, regarded as sulfate waters. These sulfate waters may arise from the interaction between meteoric water, granite and amphogneiss. Isotopic data presented here suggest that thermal waters in the study area have a meteoric origin without being significantly effected by water?Crock isotope exchange. Chemical geothermometry indicates the existence of a deep geothermal reservoir of low-to-medium enthalpy (70?C111°C) in the Tianshui study area.  相似文献   

12.
Based on regional geological setting, stratigraphic distribution and other geological conditions, this paper summarized three types of geothermal reservoirs in the southeast coastal areas of China: Cenozoic sandstone or sandy conglomerate reservoir, Mesozoic granite fissure reservoir and Paleozoic karst reservoir. Cenozoic sandstone or sandy conglomerate reservoirs are mainly located in Cenozoic basins, such as Zhangzhou, Fuzhou, Sanshui and Leiqiong basins. The Tertiary sedimentary basins such as Leiqiong Basin and Sanshui Basin, are controlled by NE-trending faults, while the Quaternary sedimentary such as Zhangzhou and Fuzhou basins are controlled by NW-trending faults. Mesozoic granite fissure reservoirs are mainly distributed in the southeast coastal areas, such as Zhangzhou, Fuzhou, Fengshun, Yangjiang and southern part of Hainan Province. The distribution of good Mesozoic granite fissure reservoir in these areas is mainly controlled by NE-trending faults. Paleozoic carbonate reservoirs are widely distributed in these areas. Most carbonate rocks are from the upper Paleozoic strata, such as those in the area of Huizhou in Guangdong Province. The major types of geothermal systems in the southeast coastal areas of China belong to medium and low-temperature convection. The geothermal resources developed from the ground to-3 000 m underground could be utilized directly for space heating, greenhouse heating, aquaculture pond heating and industrial uses, as well as other purposes. The geothermal resources with a depth of 3 000~6 000 m underground is mainly featured by Hot Dry Rock(HDR) with a temperature ranges from 150 ℃ to 200 ℃, which is conductive to the development of Enhanced Geothermal System(EGS) and can be utilized for power generation.  相似文献   

13.
归纳了新疆塔什库尔干谷地地热地质条件,分析了区内地质构造、地温分布、地热流体化学及同位素特征,研究了地热形成机理,计算了曲曼地热田的地热资源量和可开采量。结果表明: 研究区地热资源受断裂构造控制; 地温变化与盖层、完整基岩、断裂带(热储)表现出明显的一致性,目前实测最高热储温度为161 ℃,深部热储计算温度可达222~268 ℃,地温梯度最高为149.20 ℃/100 m; 地热流体具有深循环特征,与浅表冷水的水化学和同位素特征具有明显的差异; 地热流体来源于大气降水,在断裂及裂隙内储存、运移、富集,在侵入岩体放射性生热和结晶余热的热量供应下,地下流体不断与围岩进行热量及物质交换,在热储围岩和盖层中,热量以传导方式为主,在热储内,热量以对流方式为主; 曲曼地热田储存的热量为55.919×1011 MJ,地热流体可开采量约为12 593 m3/d,产能(热能)约为77.9 MW。因此认为,塔什库尔干谷地热储埋藏深度浅,易开采,具有可观的直接和间接经济价值。  相似文献   

14.
中国典型高温热田热水的锶同位素研究   总被引:6,自引:0,他引:6  
滇藏地热带的热水大多是大气降水成因,大气降水沿断裂带向下渗透,随地温的增加而逐步升温,并不断地与深部岩石发生水岩相互作用,从造岩矿物中淋滤出锶组分。通过测定热水中的锶同位素组成,可以帮助确定热水的深部滞留环境,研究深、浅层热水的内在联系,区分出不同的水热循环系统。西藏羊八井热田深部由多期次花岗岩组成,岩性差别不大,而锶同位素差异比较明显。热田的深、浅层热水有着相似的^87Sr/^86Sr值,并且只与上新世花岗岩的锶同位素组成相接近,反映了深部热储的岩性特征。在热水从升流部位向排泄区运移时,浅层冷水、始新世火山岩和第四系砂砾岩对热水的锶同位素改造作用较小。云南腾冲热海热田是典型的有幔源岩浆囊作为热源的高温热田,热田由东、西两区组成,其气体和热水在化学组成上有一定的差异,^87Sr/^86Sr值也有明显的不同。因此,可以确定东、西两区的水热系统虽具有共同的热源,但两者之间的水力联系比较微弱,而且热水中的锶组分与热田内大面积出露的火山岩没有关联。  相似文献   

15.
Geothermal resources are very rich in Yunnan, China. However, source of dissolved solutes in geothermal water and chemical evolution processes remain unclear. Geochemical and isotopic studies on geothermal springs and river waters were conducted in different petrological-tectonic units of western Yunnan, China. Geothermal waters contain Ca–HCO3, Na–HCO3, and Na (Ca)–SO4 type, and demonstrate strong rock-related trace elemental distributions. Enhanced water–rock interaction increases the concentration of major and trace elements of geothermal waters. The chemical compositions of geothermal waters in the Rehai geothermal field are very complicated and different because of the magma chamber developed at the shallow depth in this area. In this geothermal field, neutral-alkaline geothermal waters with high Cl, B, Li, Rb Cs, As, Sb, and Tl contents and acid–sulfate waters with high Al, Mn, Fe, and Pb contents are both controlled by magma degassing and water–rock interaction. Geothermal waters from metamorphic, granite, and sedimentary regions (except in the Rehai area) exhibit varying B contents ranging from 3.31 mg/L to 4.49 mg/L, 0.23 mg/L to 1.24 mg/L, and <0.07 mg/L, respectively, and their corresponding δ11B values range from −4.95‰ to −9.45‰, −2.57‰ to −8.85‰, and −4.02‰ to +0.06‰. The B contents of these geothermal waters are mainly controlled by leaching host rocks in the reservoir, and their δ11B values usually decrease and achieve further equilibrium with its surrounding rocks, which can also be proven by the positive δ18O-shift. In addition to fluid–rock reactions, the geothermal waters from Rehai hot springs exhibit higher δ11B values (−3.43‰ to +1.54‰) than those yielded from other areas because mixing with the magmatic fluids from the shallow magma. The highest δ11B of steam–heated waters (pH 3.25) from the Zhenzhu spring in Rehai is caused by the fractionation induced by pH and the phase separation of coexisting steam and fluids. Given the strong water–rock interaction, some geothermal springs in western Yunnan show reservoir temperatures higher than 180 °C, which demonstrate potential for electricity generation and direct-use applications. The most potential geothermal field in western Yunnan is located in the Rehai area because of the heat transfer from the shallow magma chamber.  相似文献   

16.
海水补给型地热系统具有补给资源量大,但温度低、水质咸化等特点,查明沿海地热水循环补给条件和成因机制,对东南沿海地热资源的合理开发利用和保护具有重要意义。在泉州官桥盐田地热区分别采集了地热水、地下水和海水样品14个,利用水化学同位素特征分析和地球化学温标法,揭示了官桥盐田地热水循环补给和地热资源成因机制。结果表明:地热水水化学类型为Cl—Na型水,与海水水化学类型一致;H01和H02的溶解性固体总量(TDS)分别为2 610 mg/L和3 090 mg/L,地下水以TDS小于400 mg/L的HCO3—Na型水为主;地热水富集Br-,地下水中Br-未检测,表明盐田地热水存在现代海水或者海相沉积层古海水补给。根据盐田地热田H01和H02地热水Cl-混合模型计算,地热水H01海水混入比为9.13%,H02海水混入比为10.76%,显示H01在出露于第四系地层后混入了更多的地下水。综合分析认为,海水是盐田地热水的重要补给资源,地热水化学组分受海水混合作用影响明显,深层热水上升过程中存在两次或者多次地下水或者海水混入从而形成浅层热储,采用SiO2地热温标和多矿物平衡法估算的浅层热储温度在89~1...  相似文献   

17.
莱芜市冷家庄地热田地热资源类型属层状兼带状,热源为高庄一冷家庄断裂沟通导热,盖层是第四系、古近系、石炭-二叠系。热储层为奥陶纪灰岩,该热储层顶板埋深2100m左右,热储层厚度由南向北逐渐增大,地热流体中富含氟、锶、偏硅酸等微量元素,为结垢非常严重,锅垢很多的腐蚀性水。经计算,奥陶纪热储层单井可采资源量为7.83×10^5m^3/a。  相似文献   

18.
河北保定容城凸起地热田储层属性与资源潜力   总被引:4,自引:0,他引:4       下载免费PDF全文
郭世炎  李小军 《地质科学》2013,48(3):922-931
21世纪人类将面临资源、环境与灾害的严重挑战。地热资源作为绿色新型能源,可减少传统燃料的消耗,实现CO2减排,日益受到人们的青睐。河北保定市容城凸起地热田为我国东部代表性中低温地热田,其热储类型为基岩岩溶裂隙热储(主要为蓟县系雾迷山组及长城系高于庄组),具有储量大,可回灌等特点。根据现有数据和地质资料进行的地热资源潜力评估表明:容城凸起(56 km2研究区范围)基岩(3 000 m以浅)热储地热资源量为416×1016 J, 相当于标准煤239×106 t,折合热能1 320 MW,可采地热资源量为62×1016 J,相当于标准煤36×106 t,折合热能198 MW。  相似文献   

19.
为了研究深层地热能开发对热储层流场造成的影响,选取兰考县深层地热能开发为研究对象,分析研究区新生代以来的地质结构和区域构造特征,调查地区地热开采情况及存在的问题。根据地热能类型分析了第四系Q、新近系明化镇组N2、新近系馆陶组N1等3个热储层特征,利用可控源音频大地电磁测深查明区内的断裂分布、热储层发育、隔水边界等条件,通过现场试验与测试手段查明不同部位热储层的参数指标,分区计算各层的地热资源量。根据开采方式、边界条件、水文地质参数建立数学模型,通过数值模拟预测出2023年Q热储层流场将恢复到原始流场模式,N2热储层流场漏斗效应持续减弱,N1热储层流场漏斗效应明显且分布不规则,为控制地热资源开发对环境造成的影响,提出封闭循环利用地热、同层加压回灌的开采方式及合理布局开采井、综合利用多层地热等措施,为本地及周边地区地热资源开发及环境保护提供参考。   相似文献   

20.
A conceptual model with water samples from ten geothermal fields (?smil, Ilg?n (Çavu?cugöl), Tuzlukçu-Ak?ehir, Seydi?ehir and Kavakköy, Hüyük, Ere?li-Akhüyük, Kad?nhan?, Cihanbeyli, Karap?nar and Bey?ehir) in the province of Konya defined the geothermal system. Carbonates, quartzite and marbles of Paleozoic metamorphics are the reservoir rocks and the heating sources are igneous rock intrusions and geothermal gradient. The variable thermal water (CaMgHCO3, CaSO4, NaSO4, CaHCO3, CaNaHCO3, NaCl and CaNaClHCO3) had EC and temperature between 177.8 and 56,100 μS/cm and between 18.3 and 44 °C, respectively. Ca2+ in geothermal fluids are associated with marble and carbonate rocks and the high chloride shows direct connection with deep geothermal system, and prolonged contact with evaporite rocks. Sulphate originates from dissolution of and oxidation of sulphate and sulphur-bearing minerals. The high As, B, F and Mn concentration in some thermal water samples were determined as 85 μg/l, 148.56 mg/l, 3.01 mg/l and 208.13 mg/l, respectively. Reservoir temperatures computed by Na/K geothermometers were between 85.37–158.89 °C for Ak?ehir thermal waters and 58.78–90.45 °C for Ere?li thermal waters. The maximum reservoir temperature of other geothermal waters was 75 °C by the silica geothermometers.  相似文献   

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