An analytical model for quantitative evaluation of friction drag in directional sliding drilling

Abstract As oil and gas exploration and development gradually expand into complex areas such as deep and ultra-deep, offshore, and unconventional resources, directional drilling and horizontal wells have become the main methods for increasing reserves and production in petroleum engineering. To addr...

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Main Authors: Zhengchao Ma, Hongbao Zhang, Hao Hu, Gensheng Li, Shouceng Tian, Ye Zhang, Tianyu Wang
Format: Article
Language:English
Published: Nature Portfolio 2025-05-01
Series:Scientific Reports
Subjects:
Online Access:https://doi.org/10.1038/s41598-025-03171-9
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author Zhengchao Ma
Hongbao Zhang
Hao Hu
Gensheng Li
Shouceng Tian
Ye Zhang
Tianyu Wang
author_facet Zhengchao Ma
Hongbao Zhang
Hao Hu
Gensheng Li
Shouceng Tian
Ye Zhang
Tianyu Wang
author_sort Zhengchao Ma
collection DOAJ
description Abstract As oil and gas exploration and development gradually expand into complex areas such as deep and ultra-deep, offshore, and unconventional resources, directional drilling and horizontal wells have become the main methods for increasing reserves and production in petroleum engineering. To address the challenging task of quantitatively evaluating downhole weight on bit (DWOB) and friction drag during sliding drilling in these types of wells, this study proposes a novel method for back-calculation by combining the rate of penetration (ROP) equation with sliding drilling footage. Based on the drilling parameters of the composite drilling phase and the rate of penetration, the ROP equation is established, the downhole weight on bit is estimated based on the drilling parameters of the sliding drilling phase and the ROP. In light of the drilling parameters of the composite drilling phase and the rate of penetration, the ROP equation is established through equation fitting by the least squares method. The downhole weight on bit is estimated on the basis of the drilling parameters of the sliding drilling phase and the ROP. Then the axial friction drag of drilling tools is estimated by combining with the surface weight on bit without the need to equip with the measurement of pup joint. This method enables real-time analysis of sliding drilling efficiency and quantitative estimation of friction drag, with the capability to identify friction reversal trends at formation interfaces. Field results demonstrate that it can effectively capture both gradual and abrupt anomalies in friction behavior. Following mitigation measures, the calculated axial friction drag was reduced by 3.86–90.15%, highlighting the method’s sensitivity to complex downhole conditions and its practical value in improving drilling tool performance. It provides dynamic insight into sliding drilling efficiency and quantitative friction assessment, offering theoretical support for optimizing drilling efficiency, enhancing bottom-hole tool loading, and evaluating the effectiveness of friction-reduction technologies.
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spelling doaj-art-34d3c807385a4dd3af6d262f1a598ca82025-08-20T01:53:18ZengNature PortfolioScientific Reports2045-23222025-05-0115111310.1038/s41598-025-03171-9An analytical model for quantitative evaluation of friction drag in directional sliding drillingZhengchao Ma0Hongbao Zhang1Hao Hu2Gensheng Li3Shouceng Tian4Ye Zhang5Tianyu Wang6State Key Laboratory of Petroleum Resources and Engineering, China University of Petroleum (Beijing)Sinopec Research Institute of Petroleum Engineering Co., LtdState Key Laboratory of Petroleum Resources and Engineering, China University of Petroleum (Beijing)State Key Laboratory of Petroleum Resources and Engineering, China University of Petroleum (Beijing)State Key Laboratory of Petroleum Resources and Engineering, China University of Petroleum (Beijing)Key Laboratory of Shale Gas Exploration, Ministry of Natural Resources, Chongqing Institute of Geology and Mineral ResourcesState Key Laboratory of Petroleum Resources and Engineering, China University of Petroleum (Beijing)Abstract As oil and gas exploration and development gradually expand into complex areas such as deep and ultra-deep, offshore, and unconventional resources, directional drilling and horizontal wells have become the main methods for increasing reserves and production in petroleum engineering. To address the challenging task of quantitatively evaluating downhole weight on bit (DWOB) and friction drag during sliding drilling in these types of wells, this study proposes a novel method for back-calculation by combining the rate of penetration (ROP) equation with sliding drilling footage. Based on the drilling parameters of the composite drilling phase and the rate of penetration, the ROP equation is established, the downhole weight on bit is estimated based on the drilling parameters of the sliding drilling phase and the ROP. In light of the drilling parameters of the composite drilling phase and the rate of penetration, the ROP equation is established through equation fitting by the least squares method. The downhole weight on bit is estimated on the basis of the drilling parameters of the sliding drilling phase and the ROP. Then the axial friction drag of drilling tools is estimated by combining with the surface weight on bit without the need to equip with the measurement of pup joint. This method enables real-time analysis of sliding drilling efficiency and quantitative estimation of friction drag, with the capability to identify friction reversal trends at formation interfaces. Field results demonstrate that it can effectively capture both gradual and abrupt anomalies in friction behavior. Following mitigation measures, the calculated axial friction drag was reduced by 3.86–90.15%, highlighting the method’s sensitivity to complex downhole conditions and its practical value in improving drilling tool performance. It provides dynamic insight into sliding drilling efficiency and quantitative friction assessment, offering theoretical support for optimizing drilling efficiency, enhancing bottom-hole tool loading, and evaluating the effectiveness of friction-reduction technologies.https://doi.org/10.1038/s41598-025-03171-9Directional drillingSliding drillingDownhole weight on bit predictionAxial friction dragROP equation
spellingShingle Zhengchao Ma
Hongbao Zhang
Hao Hu
Gensheng Li
Shouceng Tian
Ye Zhang
Tianyu Wang
An analytical model for quantitative evaluation of friction drag in directional sliding drilling
Scientific Reports
Directional drilling
Sliding drilling
Downhole weight on bit prediction
Axial friction drag
ROP equation
title An analytical model for quantitative evaluation of friction drag in directional sliding drilling
title_full An analytical model for quantitative evaluation of friction drag in directional sliding drilling
title_fullStr An analytical model for quantitative evaluation of friction drag in directional sliding drilling
title_full_unstemmed An analytical model for quantitative evaluation of friction drag in directional sliding drilling
title_short An analytical model for quantitative evaluation of friction drag in directional sliding drilling
title_sort analytical model for quantitative evaluation of friction drag in directional sliding drilling
topic Directional drilling
Sliding drilling
Downhole weight on bit prediction
Axial friction drag
ROP equation
url https://doi.org/10.1038/s41598-025-03171-9
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