An Improved Model for Collapse Pressure of Oval Coiled Tubing

1998 ◽  
Author(s):  
Andrew S. Zheng
2021 ◽  
pp. 1-17
Author(s):  
Rida Elgaddafi ◽  
Ramadan Ahmed ◽  
Hamidreza Karami ◽  
Mustafa Nasser ◽  
Ibnelwaleed Hussein

Summary The accumulation of rock cuttings, proppant, and other solid debris in the wellbore caused by inadequate cleanout remarkably impedes field operations. The cuttings removal process becomes a more challenging task as the coiled-tubing techniques are used during drilling and fracturing operations. This article presents a new hole cleaning model, which calculates the critical transport velocity (CTV) in conventional and fibrous water-based fluids. The study is aimed to establish an accurate mechanistic model for optimizing wellbore cleanout in horizontal and inclined wells. The new CTV model is established to predict the initiation of bed particle movement during cleanout operations. The model is formulated considering the impact of fiber using a special drag coefficient (i.e., fiber drag coefficient), which represents the mechanical and hydrodynamic actions of suspended fiber particles and their network. The dominant forces acting on a single bed particle are considered to develop the model. Furthermore, to enhance the precision of the model, recently developed hydraulic correlations are used to compute the average bed shear stress, which is required to determine the CTV. In horizontal and highly deviated wells, the wellbore geometry is often eccentric, resulting in the formation of flow stagnant zones that are difficult to clean. The bed shear stress in these zones is sensitive to the bed thickness. The existing wellbore cleanout models do not account for the variation in bed shear stress. Thus, their accuracy is limited when stagnant zones are formed. The new model addresses this problem by incorporating hydraulic correlations to account for bed shear stress variation with bed height. The accuracy of the new model is validated with published measurements and compared with the precision of an existing model. The use of fiber drag and bed shear stress correlations has improved model accuracy and aided in capturing the contribution of fiber in improving wellbore cleanout. As a result, for fibrous and conventional water-based fluids, the predictions of the new model have demonstrated good agreement with experimental measurements and provided better predictions than the existing model. Model predictions show a noticeable reduction in fluid circulation rate caused by the addition of a small quantity of fiber (0.04% w/w) in the fluid. In addition, results show that the existing model overpredicts the cleaning performance of both conventional and fibrous water-basedmuds.


SPE Journal ◽  
1997 ◽  
Vol 2 (02) ◽  
pp. 177-181 ◽  
Author(s):  
Yong S. Yang

1996 ◽  
Author(s):  
Vladimir Avakov ◽  
Hampton Fowler

2013 ◽  
Vol 135 (3) ◽  
Author(s):  
Yuan Zhang ◽  
Ye Hao ◽  
Robello Samuel

Microhole coiled tubing drilling is a new technology that provides many added advantages but at the same time poses numerous operational challenges. This manifests itself in a number of ways, all of which adversely affect the efficiency of the drilling process. These problems include increased wellbore friction, poor hole-cleaning, tubular failures, and associated problems during tripping operations. Presently conventional torque and drag models are used to calculate drag forces and surface loads during microhole coiled tubing drilling. However, these estimates might be under conservative. Therefore, an improved model and more comprehensive analysis are required. Conditions expected during microhole coiled tubing drilling are completely different from those encountered during conventional drilling. Further complexity is added when the wellbore is undulated. This paper describes a new analytical model for estimating drag forces by assuming that pipe in the horizontal portion follows a sine function wave due to residual bends and snubbing force. In addition, the model takes into account when the wellbore is also tortuous. Fluid viscosity (an important force in the microhole) is also included so we can calculate appropriate surface loads in addition to drag. This study concludes that besides wellbore inclination, curvature, and wellbore torsion, parameters such as wavelength and contact area also influence the results. This paper documents the comparison between the predicted mathematical simulation results with actual data from wells describing the accuracy and applicability of the model. The analysis results and comparison are presented along with three examples (Zhang et al., 2013, “Analytical Model to Estimate the Drag Forces for Microhole Coiled Tubing Drilling,” Society of Petroleum Engineers, Paper No. SPE 163480.).


2019 ◽  
Vol 944 ◽  
pp. 1082-1087
Author(s):  
Yun Liu ◽  
Lin Yun Xian ◽  
Han Yu ◽  
Hong Bin Li ◽  
Feng Wei

CT130 coiled tubing has high strength and high resistance to pressure, it is an important tool and has unique advantages in solving stimulation and stable production problems in ultra-deep and extended reach horizontal well, especially for the multiple stage fracturing and the plug milling in shale gas. In this paper the microstructure, mechanical properties, fatigue resistance of CT130 coiled tubing is studied. The results show that the microstructure of CT130 grade coiled tubing is the side plate ferrite and granular bainate. The properties analysis indicates that CT130 coiled tubing possesses 938MPa yield strength, 1018 MPa tensile strength, and the hardness is less than 333HV0.5,all these properties are met the industry design standard. It also possess superior internal and external pressure resistance. the collapse pressure of tube body is 200.4MPa,and bursting pressure reaches up to 219.1MPa. The fatigue life of Φ50.8×4.8mm CT130 coiled tubing is 31.2 percent higher compared with the same size of CT110 coiled tubing and the running depth increased 18.1 percent at least under the same condition.


CICTP 2017 ◽  
2018 ◽  
Author(s):  
Xinchao Chen ◽  
Si Qin ◽  
Jian Zhang ◽  
Huachun Tan ◽  
Yunxia Xu ◽  
...  

2007 ◽  
Author(s):  
Jennifer Yvonne Julian ◽  
Kirk Charles Forcade ◽  
Taylor L. West ◽  
Kevin yeager ◽  
Robert Lee Mielke ◽  
...  

2016 ◽  
Author(s):  
Ali Al-Ghaithi ◽  
Fahad Alawi ◽  
Ernest Sayapov ◽  
Ehab Ibrahim ◽  
Najet Aouchar ◽  
...  

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