在塔里木油田测试作业中,出现诸如封隔器胶筒高温碳化失封、“O”密封圈气爆破损渗漏、高压差失封等问题,无法安全优质地完成超深超高压高温气井的测试需要。为提升井下测试工具耐温耐压性能,基于塔里木油田“十三五”以来超深高温高压...在塔里木油田测试作业中,出现诸如封隔器胶筒高温碳化失封、“O”密封圈气爆破损渗漏、高压差失封等问题,无法安全优质地完成超深超高压高温气井的测试需要。为提升井下测试工具耐温耐压性能,基于塔里木油田“十三五”以来超深高温高压井APR测试实践,总结分析了常规高温高压井测试APR测试工具存在的问题,通过提升密封部件材料的耐温等级、优化密封组合形式、改进封隔器胶筒结构等手段,将APR测试工具的耐温耐压差性能由70 MPa/177℃提升至105 MPa/204℃。经室内高温高压评价实验,封隔器设计等级、耐温耐压等关键指标满足设计要求。现场DB×井使用改进型193.675 mm CHAMP-Ⅳ封隔器、MJ×井使用改进型127 mm RTTS封隔器,作业期间井下工具工作正常,测试均取得成功,起出检查测试工具完好。改进的APR测试工具为超深高温高压井高质量勘探开发打下了坚实的基础。展开更多
Deep oil exploration coring technology cannot accurately maintain the in-situ pressure and temperature of samples, which leads to a distortion of deep oil and gas resource reserve evaluations based on conventional cor...Deep oil exploration coring technology cannot accurately maintain the in-situ pressure and temperature of samples, which leads to a distortion of deep oil and gas resource reserve evaluations based on conventional cores and cannot guide the development of deep oil and gas resources on Earth. The fundamental reason is the lack of temperature and pressure control in in-situ coring environments. In this paper, a pressure control method of a coring device is studied. The theory and method of deep intelligent temperature-pressure coupling control are innovatively proposed, and a multifield coupling dynamic sealing model is established. The optimal cardinality three term PID (Proportional-Integral-Differential) intelligent control algorithm of pressure system is developed. The temperature-pressure characteristic of the gas-liquid two-phase cavity is analyzed, and the pressure intelligent control is carried out based on three term PID control algorithms. An in-situ condition-preserved coring (ICP-Coring) device is developed, and an intelligent control system for the temperature and pressure of the coring device is designed and verified by experiments. The results show that the temperature-pressure coupling control system can effectively realize stable sealing under temperature-pressure fields of 140 MPa and 150 °C. The temperature-pressure coupling control method can accurately realize a constant pressure inside the coring device. The maximum working pressure is 140 MPa, and the effective pressure compensation range is 20 MPa. The numerical simulation experiment of pressure system control algorithm is carried out, and the optimal cardinality and three term coefficients are obtained. The pressure steady-state error is less than 0.01%. The method of temperature-pressure coupling control has guiding significance for coring device research, and is also the basis for temperature-pressure decoupling control in ICP-Coring.展开更多
By analyzing and studying a lot of weather charts and the weather condition of several typical cases,some kinds of unconventional high-altitude and ground weather situations whether the ground cold,warm front had the ...By analyzing and studying a lot of weather charts and the weather condition of several typical cases,some kinds of unconventional high-altitude and ground weather situations whether the ground cold,warm front had the precipitation in Jilin area were summarized.The results showed that the temperature field was the main element field which affected the weather variation.The analysis and research on the movement condition of cold,warm air in the different temperature-pressure field configuration in the high-altitude was the key of frontal precipitation weather forecast.展开更多
文摘在塔里木油田测试作业中,出现诸如封隔器胶筒高温碳化失封、“O”密封圈气爆破损渗漏、高压差失封等问题,无法安全优质地完成超深超高压高温气井的测试需要。为提升井下测试工具耐温耐压性能,基于塔里木油田“十三五”以来超深高温高压井APR测试实践,总结分析了常规高温高压井测试APR测试工具存在的问题,通过提升密封部件材料的耐温等级、优化密封组合形式、改进封隔器胶筒结构等手段,将APR测试工具的耐温耐压差性能由70 MPa/177℃提升至105 MPa/204℃。经室内高温高压评价实验,封隔器设计等级、耐温耐压等关键指标满足设计要求。现场DB×井使用改进型193.675 mm CHAMP-Ⅳ封隔器、MJ×井使用改进型127 mm RTTS封隔器,作业期间井下工具工作正常,测试均取得成功,起出检查测试工具完好。改进的APR测试工具为超深高温高压井高质量勘探开发打下了坚实的基础。
基金supported by the National Natural Science Foundation of China(grant numbers 51827901,51805340)funded by the Program for Guangdong Introducing Innovative and Enterpreneurial Teams(No.2019ZT08G315)Shenzhen Basic Research Program(General Program)(No.JCYJ20190808153416970).
文摘Deep oil exploration coring technology cannot accurately maintain the in-situ pressure and temperature of samples, which leads to a distortion of deep oil and gas resource reserve evaluations based on conventional cores and cannot guide the development of deep oil and gas resources on Earth. The fundamental reason is the lack of temperature and pressure control in in-situ coring environments. In this paper, a pressure control method of a coring device is studied. The theory and method of deep intelligent temperature-pressure coupling control are innovatively proposed, and a multifield coupling dynamic sealing model is established. The optimal cardinality three term PID (Proportional-Integral-Differential) intelligent control algorithm of pressure system is developed. The temperature-pressure characteristic of the gas-liquid two-phase cavity is analyzed, and the pressure intelligent control is carried out based on three term PID control algorithms. An in-situ condition-preserved coring (ICP-Coring) device is developed, and an intelligent control system for the temperature and pressure of the coring device is designed and verified by experiments. The results show that the temperature-pressure coupling control system can effectively realize stable sealing under temperature-pressure fields of 140 MPa and 150 °C. The temperature-pressure coupling control method can accurately realize a constant pressure inside the coring device. The maximum working pressure is 140 MPa, and the effective pressure compensation range is 20 MPa. The numerical simulation experiment of pressure system control algorithm is carried out, and the optimal cardinality and three term coefficients are obtained. The pressure steady-state error is less than 0.01%. The method of temperature-pressure coupling control has guiding significance for coring device research, and is also the basis for temperature-pressure decoupling control in ICP-Coring.
基金Supported by The Special Project of Public Welfare Industry Science and Research(GYHY200806014)The Project of Nanjing University of Information Science&Technology(E30JG0730)
文摘By analyzing and studying a lot of weather charts and the weather condition of several typical cases,some kinds of unconventional high-altitude and ground weather situations whether the ground cold,warm front had the precipitation in Jilin area were summarized.The results showed that the temperature field was the main element field which affected the weather variation.The analysis and research on the movement condition of cold,warm air in the different temperature-pressure field configuration in the high-altitude was the key of frontal precipitation weather forecast.