1 / 46

Lubricant Selection Using Circumferential Displacement of Sucker Rods

2. Goals of this project. Phase 1 - Testing of lubricants. Phase 2 - Verifying and reestablishing the API displacement values for D

onella
Download Presentation

Lubricant Selection Using Circumferential Displacement of Sucker Rods

An Image/Link below is provided (as is) to download presentation Download Policy: Content on the Website is provided to you AS IS for your information and personal use and may not be sold / licensed / shared on other websites without getting consent from its author. Content is provided to you AS IS for your information and personal use only. Download presentation by click this link. While downloading, if for some reason you are not able to download a presentation, the publisher may have deleted the file from their server. During download, if you can't get a presentation, the file might be deleted by the publisher.

E N D

Presentation Transcript


    1. 1

    2. 2 Goals of this project Phase 1 - Testing of lubricants. Phase 2 - Verifying and reestablishing the API displacement values for D & HS grade sucker rods. Phase 3 – Analyzing the effect of applying lubricant on the face of coupling and sucker rod. Phase 4 – Studying the decay that might happen after the rod has been used on multiple occasions.

    3. 3 Synopsis of the paper Why did UPCO decide to take on the testing of displacement? What are our goals? Core Engineering concepts involved in this project. The displacement testing. What was measured during the test? The eight critical parameters 6) The results of UPCO displacement testing. Summary

    4. 4 1. Why did UPCO perform this project? Customer feedback indicated failures due to lack of, loss of and over displacement. As a result of this, there were numerous questions which we at UPCO could not answer with adequate proof. Some of the questions which were raised and led us into this project are as follows: Were displacement values correct? What affected these values? What type of lubricant is the correct choice for sucker rod – coupling make up?

    5. 5 2. Core Engineering concepts involved in this project The core engineering concepts used in this project are as follows: A. Forces acting on a sucker rod coupling make up B. Circumferential displacement C. Stress D. Strain (Shear & Normal Strain) E. Modulus of Elasticity

    6. 6 Forces acting in a sucker rod coupling make up

    7. 7 Circumferential Displacement

    8. 8 Stress What is Stress? Stress is the load applied per unit area of cross section. There are 2 types of stress, namely normal and shear stress. Stress = Load / Area of cross section Example: The area of cross section for a ľ” sucker rod is 0.44 Sq.In Units: PSI (Pounds per square inch)

    9. 9 Strain Strain is the elongation of the specimen when it is subjected to a load. In our case, it will be the stretch of the sucker rod pin during the process of make up. Two types strain – Normal and Shear Shear & Normal Strain can be measured by strain gauges. Strain

    10. 10 Strain Gauge The pictures depicted below show examples of shear and normal strain gauges (both positive and negative).

    11. 11 Modulus of Elasticity (MOE) MOE = Stress / Strain (Elastic region of the curve) Units = PSI

    12. 12 3. Displacement testing The test The overall test can be broken down to four sub tests a) Subtest 1: Testing of new rod and new coupling with new rod displacement values (maximum and minimum). b) Subtest 2: Testing of old rod and new coupling with re-run displacement values (maximum and minimum). c) Subtest 3: Testing of old rod and old coupling with re-run displacement values (maximum and minimum). d) Subtest 4: Testing of old rod and old coupling with re-run displacement values (maximum and minimum). Note: In subtest 4, after hitting the maximum mark and then relieved, the rod is made up until failure.

    13. 13 Displacement Testing Machine (DTM) Displacement testing machine – A brief overview The machine can produce sufficient amount of torque to shear a 1 1/8 ” sucker rod pin. The gear ratio is slow enough to perform a test in 30 seconds. It has a 1 HP DC drive with variable drive capability. The machine is coupled with a data acquisition system which has the capability to sample 10000 data points per second.

    14. 14 A pictorial explanation of the DTM

    15. 15 Samples for testing Samples for testing A total of 13 test were conducted. 12 lubricant tests and one no lube test. The lubricant was applied only on the threads of the sucker rod. No lube on the faces. All sucker rod samples were ľ” CD with the same heat number. All couplings were ľ” full size with same heat number.

    16. 16 4. What was measured directly from the test? The three main measurements needed for this project were Torque applied Shear Strain Normal Strain The torque applied (positive & negative) during the displacement process was measured using a load cell with a 12” moment arm.

    17. 17 5. The eight critical parameters 1. Average Maximum Torque 2. Total Energy Absorbed 3. Overall minimum % of design yield 4. Overall maximum % of design yield 5. Overall maximum % of actual shear 6. Overall difference index with torque 7. Overall difference index without torque 8. Overall relief index

    18. 18 Sample graph with data

    19. 19 Average Maximum Torque This is the average maximum torque of all four tests on one sample. The final result is the average for all samples of one type of lubricant. The average maximum torque was rated as the smallest value being the best and the largest value being the worst. Units: ft-lb

    20. 20 Average Maximum Torque

    21. 21 Average Maximum Torque – Results Table

    22. 22 Total amount of energy absorbed This is the total amount of energy absorbed for all four tests on one sample. This value includes the energy required for maximum displacement and it also includes the energy to break the joint for all four tests. The total amount of energy absorbed was rated as the smallest value being the best and the largest value being the worst. Units: ft-lb

    23. 23

    24. 24 Total amount of energy absorbed – Results Table

    25. 25 Overall Minimum % of Design Yield This is the average normal stress in the stress relief at the minimum displacement divided by API design stress (85000 PSI). The overall minimum % of design yield was rated as the smallest value being the worst and the largest value being the best. Note: Values above 100 % are unacceptable. Units: %

    26. 26 Overall Minimum % of Design Yield

    27. 27 Overall Minimum % of Design Yield

    28. 28 Overall Maximum % of Design Yield This is the average normal stress in the stress relief at the maximum displacement divided by API design stress (85000 PSI). The overall maximum % of design yield was rated as the smallest value being the worst and the largest value being the best. Units: %

    29. 29 Overall Maximum % of Design Yield

    30. 30 Overall Maximum % of Design Yield

    31. 31 Overall Maximum % of Actual Shear This is the average shear stress in the stress relief at the maximum displacement with torque applied divided by the actual measured shear force. The overall maximum % of actual shear was rated as the smallest value being the best and the largest value being the worst. Units: %

    32. 32 Overall Maximum % of Actual Shear

    33. 33 Overall Maximum % of Actual Shear

    34. 34 Overall Difference Index with Torque This is the average difference between the normal and shear stress in the stress relief at the maximum and minimum displacement positions with the torque applied. The overall difference index with torque was rated as the smallest value being the worst and the largest value being the best. Units: PSI (Pounds per square inch)

    35. 35 Overall Difference Index with Torque

    36. 36 Overall Difference Index with Torque

    37. 37 Overall Difference Index without Torque This is the average difference between the normal and shear stress in the stress relief at maximum and minimum displacement positions with the torque backed off to zero. The overall difference index without torque was rated as the smallest value being the worst and the largest value being the best. Units: PSI

    38. 38 Overall Difference Index without Torque

    39. 39 Overall Difference Index without Torque

    40. 40 Overall Relief Index Overall relief index is the relative amount of relaxation the system undergoes when the torque is released. From our tests, it has been proven that this value represents a conversion of shear stress to normal stress . The overall relief index was rated as the smallest value being the worst and the largest value being the best. Units: PSI (Pounds per square inch)

    41. 41 Overall Relief Index

    42. 42 Overall Relief Index

    43. 43 6. Results of UPCO Displacement Testing The following graph shows the test data for ALB 2983

    44. 44 Lube 12 – Medium performance lubricant The following graph shows the test data for Lube 12 (medium performance lubricant)

    45. 45 Results of no lube test The following graph shows the test data from dry face testing (no lube)

    46. 46 Ranking & Final Results of lubricants

    47. 47 The actual test results Considering all the data and other critical factors, ALB 2983 showed the best performance among all lubricants for Sucker rod – Coupling make up. Any conclusions should be verified by field application or trials. All test related data is available for further scrutiny.

More Related