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991.
介绍了梧桐庄矿大口径排水孔钻探成井、固井施工技术。该孔设计孔深646 m,终孔直径520 mm,落点坐标水平位移≯5 m,下入重达90余吨的Φ426 mm套管646 m,水泥固井。由于钻孔直径大,垂直度要求高,施工难度大,预防钻孔超斜、确保顺利安全下入Φ426 mm套管并固井是关键。通过采用小口径先导孔钻进再扩孔成井的施工方法,并采取合理的钻具组合和泥浆,制定有效的防斜技术和下套管措施等,顺利完成了施工任务,施工质量满足设计要求。 相似文献
992.
吉林松辽地区的腰英台、秦家屯十屋、八屋区块以及梨树断陷、长岭断陷的外围中深探井和伏龙泉浅层气井是中石化东北地区的重点区块。自勘探开发以来钻井提速面临重重困难,2010年是中原油田钻井队伍进入该市场以来的提速年,以提速为目标,大胆创新,通过大量的邻井调研分析,针对不同井的特点分别制定了不同的钻井提速措施。在成熟的钻井模式下通过不断地、连续地优化钻头选型,强化钻井参数,推广大功率高温螺杆复合钻进技术,细致的单井钻井方案优选,挖掘提速潜力,创出了有史以来最好的钻探成绩。详细介绍了松辽地区油气勘探优快钻井技术方案及具体措施。 相似文献
993.
994.
天然气水合物是在特定的低温与高压条件下形成的产物。在天然气水合物勘探工作中,低温钻井液是获得天然气水合物真实样品的重要保证条件之一。低温钻井液应具有低的冰点、良好的抵制能力与良好的流动性。结合天然气水合物勘探工作的特点,在试验的基础上,对比分析了PAM、PHPA、PAC-141、Na-CMC与KHm的分子结构、官能团的种类与数量对钻井液的防塌能力和流动性的影响,得出了几种处理剂的耐低温能力大小的顺序为:PAC-141〈PHPA〈PAM〈Na-CMC〈KHm,为天然气水合物勘探中低温钻井液的配制与使用,奠定了重要的基础。 相似文献
995.
根据流体包裹体显微观察,均一温度、盐度测定和激光拉曼分析结果,毛坝气藏储层中存在多种类型包裹体,包括气液H20包裹体、烃一H20包裹体、气相烃包裹体、沥青包裹体和含自然硫气液H20包裹体。在含自然硫气液H20包裹体中,自然硫的特征激光拉曼峰值是151.1cm^1~、217.9em^1和473.3cm^1。根据包裹体的产状、分布以及组合特征,可将本区下三叠统储层流体包裹体划分为3期。晚成岩期方解石中气液H20包裹体均一温度变化范围为104~206°c,盐度为4.03%~19.29%NaCl。温度和盐度呈一定的负相关关系,反映随着成岩环境的埋藏深度增加,地层中孔隙水的温度趋于升高,同时烃类与流体中SO42发生热化学还原反应(TSR),生成H2s和H20,使盐度降低。在区域抬升降温、降压期,由于外来流体的不均匀混合,流体温度、盐度进一步降低(均一温度为31~108℃,盐度为0.35%~4.03%NaCl),在低温及硫主要以H2s形式存在的条件下,02与H2s反应生成大量自然硫。在自然硫形成过程中,随着温度的降低,pH值趋向于升高,lgf(02)趋向于降低。当温度为100℃时,自然硫在pH=2.9~3.4,lgf(02)=-50.61~-49.92的环境中形成;25℃时,自然硫形成于pH=1.9~6.5,lgf(02)=-69.30~-63.11的环境中。 相似文献
996.
以随机函数理论为基础,采用相控-多参数协同的随机建模方法,建立塔河油气田AT1区块凝析气藏三维地质模型,实现气藏精细三维表征。首先,以钻井和岩芯资料为基础构建储层构造模型;然后,以小层界面为控制条件建立储层结构模型;接着,在沉积相、地质条件的约束下,采用序贯指示模拟法来建立砂体骨架模型;随后,在砂体骨架模型内进行优势相计算,形成最终有效砂体骨架模型;最后,以有效砂体骨架模型为约束,采用序贯高斯模拟法建立储层物性参数模型。结果表明:将物性参数变量与微相分布结合的序贯高斯模拟法建立孔隙度等物性参数的分布模型,以及采用地质分析类比、地质统计分析等方法优选最佳模型是有效的地质建模方法;所建地质模型精确细致地表征了塔河油气田AT1区块凝析气藏构造格架及储层、流体三维分布,反映了辫状水道复合连片,东北向展布,储层物性受相控较明显,非均质性较强。 相似文献
997.
Svend Stouge David A. T. Harper George D. Sevastopulo Darren O'Mahony John Murray 《Geological Journal》2016,51(4):584-599
The Middle Ordovician Rosroe Formation consists of some 1350 m of coarse, mainly siliciclastic to volcaniclastic sedimentary rocks, deposited in a submarine fan environment, and is restricted to the southern limb of the South Mayo Trough, western Ireland. Discrete allochthonous blocks, reaching 5 m in size, are present in the formation at several localities. Conodonts recovered from these blocks, collected from two separate locations, are of late Early and mid Mid Ordovician age. The conodonts have high conodont‐alteration indices (CAI 5) indicative of temperatures as high as 300o to max. 480 °C; some found in the Lough Nafooey area have abnormally high indices (CAI 6), which correspond to temperatures of about 360o to max. 550 °C. The oldest fauna is dominated by Periodon aff. aculeatus and characterized by Oepikodus evae typical of the Oepikodus evae Zone (Floian Stage; Stage Slices Fl2–3, Lower Ordovician). The younger conodont assemblage, characterized by Periodon macrodentatus associated with Oistodella pulchra, is referred to the P. macrodentatus conodont Biozone (lower Darriwilian; Stage Slices Dw1–2). The Rosroe conodont assemblages are of Laurentian affinity; comparable faunas are well known from several locations along the east to south‐eastern platform margin of Laurentia and the Notre Dame subzone of central Newfoundland, Canada. The faunal composition from the limestone blocks suggests a shelf edge to slope (or fringing carbonate) setting. The faunal assemblages are coeval with, respectively, the Tourmakeady Formation (Floian–Dapingian) and Srah Formation (Darriwilian) in the Tourmakeady Volcanic Group in the eastern part of the South Mayo Trough and probably are derived from the same or similar laterally equivalent short‐lived carbonate successions that accumulated at offshore ‘peri‐Laurentian’ islands, close to and along the Laurentian margin. During collapse of the carbonate system in the late Mid Ordovician, the blocks were transported down a steep slope and into deep‐water by debris flows, mixing with other rock types now found in the coarse polymict clastics of the Rosroe Formation. The faunas fill the stratigraphical ‘gap’ between the Lower Ordovician Lough Nafooey Volcanic Group and the upper Middle Ordovician Rosroe Formation in the South Mayo Trough and represent a brief interval conducive to carbonate accumulation in an otherwise siliciclastic‐ and volcaniclastic‐dominated sedimentary environment. Copyright © 2015 John Wiley & Sons, Ltd. 相似文献
998.
Although it has been shown that the potential of tight‐sand gas resources is large, the research into the mechanisms of hydrocarbon charging of tight sandstone reservoirs has been relatively sparse. Researchers have found that there is a force balance during hydrocarbon charging, but discriminant models still have not been established. Based on the force balance conditions observed during gas migration from source rocks to tight sandstone reservoirs, a calculation formula was established. A formula for identifying effective source rocks was developed with the gas expulsion intensity as the discrimination parameter. The critical gas expulsion intensity under conditions of various burial depths, temperatures, and pressures can be obtained using the calculation formula. This method was applied in the Jurassic tight sandstone reservoirs of the eastern Kuqa Depression, Tarim Basin, and it was calculated that the critical expulsion intensity range from 6.05 × 108 m3/km2 to 10.07 × 108 m3/km2. The critical gas charging force first increases with depth and later decreases with greater depths. The distribution range of effective gas source rocks and total expelled gas volume can be determined based on this threshold. This method provides new insight into and method for predicting favourable tight‐sand gas‐bearing regions and estimating their resource potentials. Copyright © 2014 John Wiley & Sons, Ltd. 相似文献
999.
Tao Hu Xiongqi Pang Sa Yu Xulong Wang Hong Pang Jigang Guo Fujie Jiang Weibing Shen Qifeng Wang Jing Xu 《Geological Journal》2016,51(6):880-900
Combined with the actual geological settings, tight oil is the oil that occurs in shale or tight reservoirs, which has permeability less than 1 mD and is interbedded with or close to shale, including tight dolomitic oil and shale oil. The Fengcheng area (FA), at the northwest margin of the Junggar Basin, northwest China, has made significant progress in the tight oil exploration of the Fengcheng (P1f) Formation recently, which indicates that the tight oil resources have good exploration prospects. Whereas the lack of recognition of hydrocarbon generation and expulsion characteristics of Permian P1f source rocks results in the misunderstanding of tight oil resource potential. Based on the comprehensive analysis of geological and geochemical characteristics of wells, seismic inversion, sedimentary facies, tectonic burial depth, etc., the characteristics of P1f source rocks were investigated, and the horizontal distributions of the following aspects were predicted: the thickness of source rocks, abundance and type of organic matter. And on this basis, an improved hydrocarbon generation potential methodology together with basin simulation techniques was applied to unravel the petroleum generation and expulsion characteristics of P1f source rocks in FA. Results show that the P1f source rocks distribute widely (up to 2039 km2), are thick (up to 260 m), have high total organic content (TOC, ranging from 0.15 to 4 wt%), are dominated by type II kerogen and have entered into low mature–mature stage. The modeling results indicate that the source rocks reached hydrocarbon generation threshold and hydrocarbon expulsion threshold at 0.5% Ro and 0.85% Ro and the comprehensive hydrocarbon expulsion efficiency was about 46%. The amount of generation and expulsion from the P1f source rocks was 31.85 × 108 and 15.31 × 108 t, respectively, with a residual amount of 16.54 × 108 t within the source rocks. Volumetrically, the geological resource of shale oil is up to 15.65 × 108 t. Small differences between the amounts calculated by the volumetric method compared with that by hydrocarbon generation potential methodology may be due to other oil accumulations present within interbedded sands associated with the oil shales. Copyright © 2015 John Wiley & Sons, Ltd. 相似文献
1000.