Optimum Design for Inserted Tooth Slips Setting Process Based on the Furrow Effect
Abstract
:1. Introduction
2. The Structure and Working Principle of the Inserted Tooth Slip Sidetracking Packer
3. The Effect of Furrow Action
4. Numerical Simulation Analysis Based on Furrow Effect
4.1. Finite Element Simulation Model
4.2. Taking No Account of the Furrow Effect
4.3. Considering the Furrow Effect and Adhesion Effect
5. Orthogonal Optimization Analysis of Slip Structure and Experiment Study
5.1. Orthogonal Optimization Analysis of Slip Structure
5.2. Experiment Study
6. Conclusions
- (1)
- In the FEA and calculation of the setting process of inserted tooth-type slip, it is not only necessary to consider the furrow friction coefficient fp, but also the effect of the ridge on the furrow friction coefficient fp, which requires the introduction of correction factor kp.
- (2)
- The corresponding furrow friction coefficient fp varies according to the different furrow effects occurring on the casing surface caused by the various types of teeth inserted on the packer slips. The furrow effect is related to the sharpness of the tooth tips of the slips. The sharper the tooth tips are, the more obvious the furrow effect is.
- (3)
- Under the dual effects of the furrow effect and the adhesion effect, the teeth of the slip feed into the casing wall to produce a uniform and distinct indentation, and the disconnection of the maximum stress area of each indentation, as well as the safety and reliability of all carbide teeth, realize the reliable setting of the packer.
- (4)
- Through orthogonal experiments, the optimal combination parameters of the slips were obtained by taking the optimal bite depth uniformity as the objective function: slip tooth installation spacing L = 10 mm, slip tooth installation angle α = 80°, slip tooth diameter d = 10 mm, and slip wedge angle β = 6°. The standard deviation of bite depth uniformity of the optimized slip teeth is 74.45% lower than that before optimization.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Nomenclature
A1 | is the projected area of the normal setting load support surface |
A2 | is the projected area of the furrow groove, as shown in Figure 3 |
P | is the normal setting load |
FP | is the furrow friction resistance |
σs | is the yield strength |
fp | is the furrow friction coefficient |
θ | is the half-cone angle |
kp | is the correction factor |
fa | is the adhesive friction coefficient |
T | is the setting load of each slip |
F | is the axial load borne by each slip |
f | is the total friction coefficient |
L | is slip tooth installation spacing, as shown in Figure 16 |
α | is the slip tooth installation angle |
d | is the slip tooth diameter |
β | is the slip wedge angle |
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Material | Tungsten | Steel | Copper | Tin | Iron | Lead |
---|---|---|---|---|---|---|
kp | 1.55 | 1.35–1.70 | 1.55 | 2.40 | 1.90 | 2.90 |
Tooth Number | 1 | 2 | 3 | 4 | 5 | 6 | 7 | 8 | 9 |
Bending stress/MPa | 2192 | 1933 | 2056 | 2073 | 2173 | 1963 | 1996 | 1992 | 2473 |
Tooth number | 10 | 11 | 12 | 13 | 14 | 15 | 16 | 17 | — |
Bending stress/MPa | 2578 | 2067 | 2108 | 2050 | 1915 | 1925 | 2364 | 2347 | — |
Test Number | Test Factor | |||
---|---|---|---|---|
L/mm | α/° | d/mm | β/° | |
1 | 10 | 75 | 7 | 6 |
2 | 10 | 80 | 10 | 8 |
3 | 10 | 85 | 12 | 10 |
4 | 15 | 75 | 10 | 10 |
5 | 15 | 80 | 12 | 6 |
6 | 15 | 85 | 7 | 8 |
7 | 20 | 75 | 12 | 8 |
8 | 20 | 80 | 7 | 10 |
9 | 20 | 85 | 10 | 6 |
Test Number | Test Criteria | ||
---|---|---|---|
Maximum Stress of Slip Tooth /MPa | Maximum Bite Depth /mm | Bite Depth Uniformity of Each Tooth | |
1 | 3263 | 0.4523 | 0.0444 |
2 | 3138 | 0.3881 | 0.0308 |
3 | 3462 | 0.4602 | 0.0476 |
4 | 3876 | 0.6673 | 0.0738 |
5 | 3356 | 0.5196 | 0.0580 |
6 | 3637 | 0.4959 | 0.0540 |
7 | 3789 | 0.5821 | 0.0665 |
8 | 3532 | 0.4463 | 0.0453 |
9 | 3208 | 0.4137 | 0.0381 |
Parameters | Maximum Stress of Slip Tooth/MPa | |||
---|---|---|---|---|
A | B | C | D | |
K1 | 3287.7 | 3642.7 | 3477.3 | 3275.7 |
K2 | 3623.0 | 3342.0 | 3407.3 | 3521.3 |
K3 | 3509.7 | 3435.7 | 3535.7 | 3623.3 |
Range R | 335.3 | 300.7 | 128.4 | 347.6 |
Parameters | Maximum Bite Depth/mm | |||
---|---|---|---|---|
A | B | C | D | |
K1 | 0.4335 | 0.5672 | 0.4648 | 0.4619 |
K2 | 0.5609 | 0.4513 | 0.4897 | 0.4887 |
K3 | 0.4807 | 0.4566 | 0.5206 | 0.5246 |
Range R | 0.1274 | 0.1159 | 0.0558 | 0.0627 |
Parameters | Bite Depth Uniformity | |||
---|---|---|---|---|
A | B | C | D | |
K1 | 0.04093 | 0.06157 | 0.0479 | 0.04683 |
K2 | 0.06193 | 0.0447 | 0.04757 | 0.05043 |
K3 | 0.04997 | 0.04657 | 0.05737 | 0.05557 |
Range R | 0.021 | 0.01687 | 0.0098 | 0.00873 |
Optimization Objective | Parameters | |||
---|---|---|---|---|
A | B | C | D | |
Optimal stress of slip tooth | 1 | 2 | 2 | 1 |
Optimal bite depth | 2 | 1 | 3 | 3 |
Optimal uniformity of bite depth | 1 | 2 | 2 | 1 |
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Wang, Q.; Kong, C.; Tang, R.; Feng, W.; Li, Y.; Yang, M. Optimum Design for Inserted Tooth Slips Setting Process Based on the Furrow Effect. Processes 2023, 11, 573. https://doi.org/10.3390/pr11020573
Wang Q, Kong C, Tang R, Feng W, Li Y, Yang M. Optimum Design for Inserted Tooth Slips Setting Process Based on the Furrow Effect. Processes. 2023; 11(2):573. https://doi.org/10.3390/pr11020573
Chicago/Turabian StyleWang, Qixin, Chunyan Kong, Ruihuan Tang, Wenrong Feng, Yang Li, and Mingkun Yang. 2023. "Optimum Design for Inserted Tooth Slips Setting Process Based on the Furrow Effect" Processes 11, no. 2: 573. https://doi.org/10.3390/pr11020573
APA StyleWang, Q., Kong, C., Tang, R., Feng, W., Li, Y., & Yang, M. (2023). Optimum Design for Inserted Tooth Slips Setting Process Based on the Furrow Effect. Processes, 11(2), 573. https://doi.org/10.3390/pr11020573