论文

部分SCI收录论文:
[1] Enhancing the Reliability of Marine Pipeline Transportation Systems: A Flow Safety Monitoring Method for Sand-Carrying Churn Flows via Multi-Migration Collision Behavioral Responses, Ocean Engineering, 342, 2025, 122942.
[2] Quantitative assessment of sand particulates in gas-water slug flow using deep learning. SPE Journal, 2024, 28 (02): 697-714.
[3] Measuring solid particles in sand-carrying gas flow using multiscale vibration response statistics and deep learning algorithms, Mechanical Systems and Signal Processing, 209 (2024) 111103.
[4] Sand particle characterization and identification in annular multiphase flow using an intelligent method, Physics of Fluids, 36 (2024) 013306.
[5] Analysis of the particle characteristics of solid-liquid turbulent flow by triaxial vibration statistic and machine learning methods, Powder Technology, 2024, 436:119464.
[6] Solid particle size characterization by a high-frequency collision response in pneumatic particulate flow, Particuology, 86 (2024) 39-54.
[7] A sand particle characterization method for water-bearing high-production gas wells based on a multifrequency collision response, Natural Gas Industry B, 11 (2024)154-169.
[8] Triaxial vibration response performance characteristics of solid particles in elbows under slurry flow conditions, IEEE Transactions on Instrumentation & Measurement, 72(2023)1004215.
[9] The fusion of deep learning and acoustic emission response methods for identifying solid particles in annular multiphase flows, Geoenergy Science and Engineering, 225 (2023) 211685.
[10] Experimentally Investigating Sand Particle Characteristics Under Annular Multiphase Flow Conditions Using a Triaxial Vibration Method, SPE Journal, 28 (2023) 697-714.
[11] Tripability Analysis of Casing Strings in Directional Wells Using the Continuous Beam-Col umn and Buckling Theory, Geofluids, (2022) 1-15.
[12] Multi-scale characterization and identification of dilute solid particles impacting walls within an oil-conveying flow with an experimental evaluation by dual vibration sensors, Chemical Engineering Journal, 416 (2021) 129173.
[13] Multi-frequency characterization of particle-wall interactions in a solid-liquid dispersion conveying pipe flow using a non-intrusive vibration detection method, Chemical Engineering Journal, 413 (2021) 127526.
[14] A leakage particle–wall impingement based vibro-acoustic characterization of the leaked sand–gas pipe flow, Particuology, 55 (2021) 84-93.
[15] Experimental Investigations of Offshore Sand Production Monitoring Based on the Analysis of Vibration in Response to Weak Shocks, Geofluids, (2021) 1-17.
[16] Experimental evaluation of rock disintegration detection in drilling by a new acoustic sensor method, Journal of Petroleum Science and Engineering, 195 (2020) 107853.
[17] Study of the optical properties of a square polycapillary slice, Optics Communications, 430 (2019) 139-142.
[18] An investigation of the detection of acoustic sand signals from the flow of solid particles in pipelines, Chemical Engineering Research and Design, 144 (2019) 272-284.
[19] Identification and characterization of solids in sand-water two-phase flows via vibration multi-sensor approaches, Advanced Powder Technology, 30 (2019) 2240-2250.
[20] Vibration multisensor fusion method for the identification and characterization of sand particles in dispersions of oil in water flow, Powder Technology, 352 (2019) 227-239.
[21] Non-intrusive characterization of sand particles dispersed in gas–water bubbly flow using straight and bent pipes with vibration sensing, Powder Technology, 344 (2019) 598-610.
[22] Vibration sensor approaches for experimental studies of sand detection carried in gas and droplets, Powder Technology, 352 (2019) 386-396.
[23] Vibration and acoustic signal characteristics of solid particles carried in sand-water two-phase flows, Powder Technology, 345 (2019) 159-168.
[24] Experimental evaluation of sand particle identification in oil–water–gas multiphase flows based on vibration signal analysis, Chemical Engineering Research and Design, 151 (2019) 79-90.
[25] Vibration sensor method for the identification of solid particle leakage from gas pipe flow based on particle-wall interaction, Powder Technology, (2019).
[26] Simulation of X-ray transmission and spatial imaging of polycapillary lenses with square cross-sections, Optics Communications, 420 (2018) 205-210.
[27] Analysis of signal characteristics from rock drilling based on vibration and acoustic sensor approaches, Applied Acoustics, 140 (2018) 275-282.
[28] Investigation of anodic plasma electrolytic carbonitriding on medium carbon steel, Surface and Coatings Technology, 313 (2017) 288-293.
[29] Acoustic sensor approaches for sand detection in sand–water two-phase flows, Powder Technology, 320 (2017) 739-747.
[30] The surface morphology analysis based on progressive approximation method using confocal three-dimensional micro X-ray fluorescence, Spectrochimica Acta Part B: Atomic Spectroscopy, 122 (2016) 127-131.
[31] The three-dimensional elemental distribution based on the surface topography by confocal 3D-XRF analysis, Applied Physics A, 122 (2016).
[32] Combining depth analysis with surface morphology analysis to analyse the prehistoric painted pottery from Majiayao Culture by confocal 3D-XRF, Applied Physics A, 122 (2016).
[33] Vibration sensor approaches for the sand detection in gas–sand two phases flow, Powder Technology, 288 (2016) 221-227.
[34] Property of slice square polycapillary x-ray optics, Chinese Physics B, 25 (2016) 024102.
[35] A new background subtraction method for energy dispersive X-ray fluorescence spectra using a cubic spline interpolation, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 775 (2015) 12-14.
[36] Vibration Sensor Approaches for the Monitoring of Sand Production in Bohai Bay, Shock and Vibration, 2015 (2015) 1-6.
[37] Vibration sensor approaches for sand detection in oil–water–sand multiphase flow, Powder Technology, 276 (2015) 183-192.
[38] Numerical Simulation of Polycapillary X-ray Lens, Acta Optica Sinica, 35 (2015) 0234001.
[39] Simulation of transmitted X-rays in a polycapillary X-ray lens, Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment, 795 (2015) 186-191.
专利

发明专利(第一发明人):
[1] 基于多传感器的管道含砂量检测装置,ZL202010103895.7,2022.10.21.
[2] 气井出砂检测实验装置,ZL111257177A,2022.06.07
[3] 油气管道出砂量监测实验装置及监测方法,ZL2017105795460,2020.07.03
[4] 深水油气井水下出砂监测装置及监测方法,CN111305814A,2020.06.19
[5] 一种用于采油井的套管漏点深度检测方法和装置, ZL201611135961.9,2019.11.26.
[6] 一种丛式井井间距离测量方法, ZL201710674338.9,2019.05.17.
[7] 一种非植入式稠油油井出砂量监测系统及其方法, ZL201610047626.7,2018.12.28.
[8] 多相流管道泥砂颗粒含量与冲蚀监测预警装置及方法,CN 202211095966.9, 2022.09.08.
[9] 水下井口输气管道砂粒粒径分布检测系统及方法, CN202211062146.X,2022.09.01.
[10] —种气井出砂信息智能识别和预测方法,CN202311153876.5, 2023.09.08.
[11] 一种深水钻井密闭环空内温压无线传输装置及方法,CN202510203346.X, 2025.02.24.
[12] 一种水下生产井密闭环空内无线信号传输装置及方法,CN 202510203533.8, 2025.02.24.
[13] 一种井下出砂监控装置及其方法,CN 202510442952.7, 2025.04.10.
软件著作权:
[1] 海上丛式井表层段套管柱下入挂碰分析软件,2024SR1774850,2024
[2] 复合材料储氢瓶结构完整性与安全实时监测软件,2024SR0077209,2024
[3] 微型芯片封装体缺陷智能监测与识别软件,2024SR0077228,2024
[4] 自适应热位移重载调节平台控制与监测软件,2024SR0077185,2024
[5] 深水气井出砂监测软件,2023R11L084293, 2023
[6] 气-液两相流输运管道泥砂颗粒含量检测软件,2020SR1793580,2020.
[7] 颗粒高速冲击平板诱发的振动响应监测软件,2020SR1793579,2020.
[8] 生产井出砂在线检测软件,2020SR0168730,2019.
[9] 海上油田适度出砂监测软件,2015SR194011,2015.
[10] 海上油田从式井网整体加密调整多平台钻井趋近井筒监测软件,2015SR099291,2015.