Simulation study of drilling fluid cooling in long horizontal wells based on phase change heat absorption

Jie Zhang, Jiaohao Xie, Xin Li, Runze Li, Wenqing Ye, Gezhen Mao
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A calculation model of temperature field of drilling fluid containing PCM was established, the cooling characteristics of PCM under the influence of different parameters were simulated, and the cooling effect of PCM integrated with drilling fluid on ultra-deep and high-temperature Wells was analyzed. The investigated PCM has a phase change temperature range of 120 ~ 130°C and a latent heat of 264.15 ~ 265.53 kJ/kg. Our results showed that the cooling impact of PCM exhibits an upward trend as the quantity of PCM utilized increases. Assuming the drilling temperature limit is 135°C, after adding 5% PCM to the drilling fluid, the drilling length of the horizontal section increased by approximately 500 m. With 15% PCM added, the horizontal section could be extended by about 1000 m. We conducted a simulation analysis on a well in southern Sichuan, and found that adding 12% PCM had the best cooling effect, reducing the bottom hole temperature by 12.3°C and extending the horizontal section by 700 m. Compared with conventional drilling fluid cooling methods, incorporating PCM as cooling agents within the drilling fluids provided better cooling effects. It effectively addressed the problem of excessive bottom-hole temperatures in deep wells, extended the drilling length of horizontal sections, and prolonged the service life of downhole instruments. Our research lays the groundwork for the future investigation of cooling techniques for high-temperature deep well drilling fluids.KEYWORDS: Drilling fluidtemperature distributionPCM (phase change material)long horizontal wellshigh temperature well cooling Nomenclature c=specific heat capacity, J/(kg·℃)t=time, sz=well depth, mh=Convective heat transfer coefficient, W/(m2·℃)L=latent heat of phase transition, kJ/kgq=volume flow rate of drilling fluid, m3/sQm=internal heat source, W/m3Qa=heat source inside the drill string, W/m3r=radius, mT=temperature,°CTm=phase transition temperature,°CΔT=Phase transition temperature interval,°CGreek Symbols=λ=thermal conductivity, W/(m·℃)ρ=density, kg/m3Subscripts=0.1.2.3.4.i=regions of fluid in drill string, drill string wall, fluid in annulus, borehole wall and formation, respectivelyi=i th layer in the radial directionj=j th layer in the axial directiong=before phase transformation f=at phase transitiony=after phase transformationz=at z positionDisclosure statementThe authors declare that they have no known competing financial interests or personal relationships that could have influenced the work reported in this paper.Additional informationNotes on contributorsJie ZhangJie Zhang is currently a professor in the Department of Petroleum and Natural Gas at Southwest Petroleum University in China. In 2005, he graduated from Southwest Petroleum Institute with a PhD in Oil and Gas Well Engineering. Jie Zhang's interestsinclude multiphase-flow modeling, heat and mass transfer, drilling oil and gas well, and refrigeration.Jiaohao XieJiaohao Xie is currently a master's candidate in the Department of Petroleum and Natural Gas, Southwest Petroleum University, China. His main focus is on drilling multi-phase flow, heat and mass transfer, and high-temperature drilling.Xin LiXin Li is currently a Ph.D candidate at Petroleum Engineering School of Southwest Petroleum University, Chengdu, Sichuan, China. He holds a master degree in petroleum engineering from Southwest Petroleum University in China since 2020. He is very active in petroleum engineering research and has published many research articles from petroleum engineering. Xin's interest include wellbore fluid mechanics and pressure control, wellbore heat transfer and temperature control, as well as wellbore damage mechanics and abandoned well renovation.","PeriodicalId":11580,"journal":{"name":"Energy Sources, Part A: Recovery, Utilization, and Environmental Effects","volume":"2023 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2023-10-02","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Energy Sources, Part A: Recovery, Utilization, and Environmental Effects","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.1080/15567036.2023.2268585","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
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Abstract

ABSTRACTThe shale gas resources found in deep formations are abundant and represent a crucial area for current and future shale gas development. However, as shale gas exploration and development intensify in China, an increasing number of high-temperature formations are being encountered during drilling, presenting significant challenges to drilling engineering and severely constraining the development of deep shale gas exploration. In this study, the stability of PCM (phase change material) combined with drilling fluid as a coolant was discussed, and the influence of PCM on wellbore temperature field in drilling fluid was considered. A calculation model of temperature field of drilling fluid containing PCM was established, the cooling characteristics of PCM under the influence of different parameters were simulated, and the cooling effect of PCM integrated with drilling fluid on ultra-deep and high-temperature Wells was analyzed. The investigated PCM has a phase change temperature range of 120 ~ 130°C and a latent heat of 264.15 ~ 265.53 kJ/kg. Our results showed that the cooling impact of PCM exhibits an upward trend as the quantity of PCM utilized increases. Assuming the drilling temperature limit is 135°C, after adding 5% PCM to the drilling fluid, the drilling length of the horizontal section increased by approximately 500 m. With 15% PCM added, the horizontal section could be extended by about 1000 m. We conducted a simulation analysis on a well in southern Sichuan, and found that adding 12% PCM had the best cooling effect, reducing the bottom hole temperature by 12.3°C and extending the horizontal section by 700 m. Compared with conventional drilling fluid cooling methods, incorporating PCM as cooling agents within the drilling fluids provided better cooling effects. It effectively addressed the problem of excessive bottom-hole temperatures in deep wells, extended the drilling length of horizontal sections, and prolonged the service life of downhole instruments. Our research lays the groundwork for the future investigation of cooling techniques for high-temperature deep well drilling fluids.KEYWORDS: Drilling fluidtemperature distributionPCM (phase change material)long horizontal wellshigh temperature well cooling Nomenclature c=specific heat capacity, J/(kg·℃)t=time, sz=well depth, mh=Convective heat transfer coefficient, W/(m2·℃)L=latent heat of phase transition, kJ/kgq=volume flow rate of drilling fluid, m3/sQm=internal heat source, W/m3Qa=heat source inside the drill string, W/m3r=radius, mT=temperature,°CTm=phase transition temperature,°CΔT=Phase transition temperature interval,°CGreek Symbols=λ=thermal conductivity, W/(m·℃)ρ=density, kg/m3Subscripts=0.1.2.3.4.i=regions of fluid in drill string, drill string wall, fluid in annulus, borehole wall and formation, respectivelyi=i th layer in the radial directionj=j th layer in the axial directiong=before phase transformation f=at phase transitiony=after phase transformationz=at z positionDisclosure statementThe authors declare that they have no known competing financial interests or personal relationships that could have influenced the work reported in this paper.Additional informationNotes on contributorsJie ZhangJie Zhang is currently a professor in the Department of Petroleum and Natural Gas at Southwest Petroleum University in China. In 2005, he graduated from Southwest Petroleum Institute with a PhD in Oil and Gas Well Engineering. Jie Zhang's interestsinclude multiphase-flow modeling, heat and mass transfer, drilling oil and gas well, and refrigeration.Jiaohao XieJiaohao Xie is currently a master's candidate in the Department of Petroleum and Natural Gas, Southwest Petroleum University, China. His main focus is on drilling multi-phase flow, heat and mass transfer, and high-temperature drilling.Xin LiXin Li is currently a Ph.D candidate at Petroleum Engineering School of Southwest Petroleum University, Chengdu, Sichuan, China. He holds a master degree in petroleum engineering from Southwest Petroleum University in China since 2020. He is very active in petroleum engineering research and has published many research articles from petroleum engineering. Xin's interest include wellbore fluid mechanics and pressure control, wellbore heat transfer and temperature control, as well as wellbore damage mechanics and abandoned well renovation.
基于相变吸热的长水平井钻井液冷却模拟研究
摘要深层页岩气资源丰富,是当前和未来页岩气开发的重要领域。然而,随着中国页岩气勘探开发力度的加大,钻井过程中遇到的高温地层越来越多,给钻井工程带来了重大挑战,严重制约了深层页岩气勘探的发展。本研究讨论了相变材料(PCM)与钻井液结合作为冷却剂的稳定性,并考虑了PCM对钻井液井筒温度场的影响。建立了含PCM钻井液温度场计算模型,模拟了不同参数影响下PCM的冷却特性,分析了PCM与钻井液结合对超深井和高温井的冷却效果。相变温度范围为120 ~ 130℃,潜热范围为264.15 ~ 265.53 kJ/kg。结果表明,随着PCM用量的增加,PCM的冷却影响呈上升趋势。假设钻井温度极限为135℃,在钻井液中加入5%的PCM后,水平段的钻井长度增加了约500 m。添加15%的PCM后,水平段可延长约1000米。通过对川南某井的模拟分析,发现添加12%的PCM冷却效果最好,可使井底温度降低12.3℃,水平段延长700 m。与传统的钻井液冷却方法相比,在钻井液中加入PCM作为冷却剂具有更好的冷却效果。有效解决了深井井底温度过高的问题,延长了水平井段的钻进长度,延长了井下仪器的使用寿命。本研究为高温深井钻井液冷却技术的进一步研究奠定了基础。关键词:pcm(相变材料)长水平井高温井冷却术语c=比热容,J/(kg·℃)t=时间,sz=井深,mh=对流换热系数,W/(m2·℃)L=相变潜热,kJ/kgq=钻井液体积流速,m3/sQm=内部热源,W/m3Qa=钻柱内部热源,W/m3r=半径mT=温度,°CTm=相变温度,°CΔT=相变温度区间,°c希腊符号=λ=导热系数,W/(m·℃)ρ=密度,kg/m3下标=0.1.2.3.4。i=钻柱、钻柱壁、环空、井壁和地层中的流体区域,分别为i=径向层j=轴向层j=相变前f=相变后z=在z位置披露声明作者声明,他们没有已知的可能影响本文工作的相互竞争的经济利益或个人关系。作者简介张杰,现任西南石油大学石油与天然气系教授。2005年毕业于西南石油学院油气井工程专业,获博士学位。张杰的研究兴趣包括多相流建模、传热传质、油气钻井和制冷。谢焦浩,西南石油大学石油与天然气系硕士研究生。他的主要研究方向是钻井多相流、传热传质和高温钻井。李昕,现任西南石油大学石油工程学院博士研究生。他于2020年获得中国西南石油大学石油工程硕士学位。他在石油工程研究方面非常活跃,并发表了许多石油工程方面的研究论文。Xin的研究兴趣包括井筒流体力学和压力控制、井筒传热和温度控制、井筒损伤力学和废弃井改造。
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