API 5CT Casing And Tubing Supplier
API 5CT casing and tubing are standardized steel pipes used in well repair and production operations in the oil and gas industry. API 5CT casing is designed to provide structural integrity to the wellbore. It is usually larger in diameter and thicker in wall compared to tubing. API 5CT casing and tubing are manufactured from high-quality steel and undergo rigorous testing and inspection to ensure strength, durability and compliance with industry standards. They are available in a variety of sizes, grades and specifications to suit different wellbore conditions and operational requirements.
API 5CT Steel Pipe Grades For Sale
The classification of steel grades in API 5CT is divided into several grades based primarily on pressure, corrosion and heat resistance. Below are some of the common steel grades in API 5CT.Gnee Steel Pipe is an experienced API 5CT manufacturer. We supply to customers worldwide at factory price. If you have any questions, please ask us!

API 5CT Q125

API 5CT L80

API 5CT N80

API 5CT J55

API 5CT P110

API 5CT R95

API 5CT K55

API 5CT H40
Below you will find API 5CT Specifications, API 5CT Chart, API 5CT Wall Thicknesses, API 5CT Piping Standards, API 5CT Casing, API 5CT tubing, and for your convenience we have divided the piping standards into four categories:
General Parameters Of API 5CT Steel Casing And Tubing
| Product | API 5CT Steel Casing Pipe |
| Standard | API 5CT |
| O. D | 26.67-508mm |
| W. T | 2.87-16.13mm |
| Length | R1(5.49-6.71m),R2(8.23-9.14m),R3(11.58-13.72m) |
| Surface | 1. Black Painted 2. With oil 3. Bared or as per customers’ requirement |
| Origin | China |
| Monthly Output | 20 million-30 million pieces per month |
| Applications | Tube for conveying gas, water, and oil in both and natural gas industries, etc. |
| Thread type | SC(Short round thread), LC(Long round thread), BC(Buttress thread) |
| Test And Inspection | API 5CT Hydrostatic Test, API 5CT Bend Test, API 5CT Flattening Test, API 5CT CVN Impact Test, etc. |
| Ending Processing | Pipe Flat End Machining, API 5CT Non-Threaded Connection, Threaded Connection, Special Threaded Connections, etc. |
API 5CT Tubing Color Code
| Name | P 110 | K 55 | J 55 | N 80 1 | N 80 Q | L 80 1 |
| Coupling | white coupling | green coupling | green coupling/ white band | red coupling | red coupling/ green band | red coupling/ brown band |
| Casing | white band | Two bright green bands | bright green band | Bright red band | Bright red band/ green band | red band/ brown band |
API 5CT Dimensional Deviation
| Items | Allowable Deviation | |
| Out Diameter | D ≤ 101.60mm | ± 0.79mm |
| D ≥ 114.30mm | + 1.0%, -0.5% | |
| Wall Thickness | -12.50% | |
| Mass (Single Lengths) | +6.5%, -3.5% | |
Length Range Of API 5CT Tube & Casing Table
| Length | |||
| Item | Scope 1 | Scope 2 | Scope 3 |
| Tubing | 6.10-7.32m | 8.53-9.75m | – |
| Casing | 4.88-7.62m | 7.62-10.36m | 10.36-14.63m |
More information About API 5CT Steel Casing tube
| Chemical Composition of API 5CT,Mass Fraction(%) | |||||||||||||||
| Group | Grade | Type | C | Mn | Mo | Cr | Ni | Cu | P | S | Si | ||||
| min. | max. | min. | max. | min. | max. | min. | max. | max. | max. | max. | max. | max. | |||
| 1 | H40 | — | — | — | — | — | — | — | — | — | — | — | 0.03 | 0.03 | — |
| J55 | — | — | — | — | — | — | — | — | — | — | — | 0.03 | 0.03 | — | |
| K55 | — | — | — | — | — | — | — | — | — | — | — | 0.03 | 0.03 | — | |
| N80 | 1 | — | — | — | — | — | — | — | — | — | — | 0.03 | 0.03 | — | |
| N80 | Q | — | — | — | — | — | — | — | — | — | — | 0.03 | 0.03 | — | |
| R95 | — | — | 0.45 | — | 1.9 | — | — | — | — | — | — | 0.03 | 0.03 | 0.45 | |
| 2 | M65 | — | — | — | — | — | — | — | — | — | — | — | 0.03 | 0.03 | — |
| L80 | 1 | — | 0.43 | — | 1.9 | — | — | — | — | 0.25 | 0.35 | 0.03 | 0.03 | 0.45 | |
| L80 | 9Cr | — | 0.15 | 0.3 | 0.6 | 0.9 | 1.1 | 8 | 10 | 0.5 | 0.25 | 0.02 | 0.01 | 1 | |
| L81 | 13Cr | 0.15 | 0.22 | 0.25 | 1 | — | — | 12 | 14 | 0.5 | 0.25 | 0.02 | 0.01 | 1 | |
| C90 | 1 | — | 0.35 | — | 1.2 | 0.25 | 0.85 | — | 1.5 | 0.99 | — | 0.02 | 0.01 | — | |
| T95 | 1 | — | 0.35 | — | 1.2 | 0.25 | 0.85 | 0.4 | 1.5 | 0.99 | — | 0.02 | 0.01 | — | |
| C110 | — | — | 0.35 | — | 1.2 | 0.25 | 1 | 0.4 | 1.5 | 0.99 | — | 0.02 | 0.005 | — | |
| 3 | P110 | — | — | — | — | — | — | — | — | — | — | — | 0.03 | 0.03 | — |
| 4 | Q125 | 1 | — | 0.35 | — | 1.35 | — | 0.85 | — | 1.5 | 0.99 | — | 0.02 | 0.01 | — |
| a. The carbon content for L80 may be increased up to 0, 50 % maximum if the product is oil-quenched. | |||||||||||||||
| b. The molybdenum content for Grade C90 Type 1 has no minimum tolerance if the WT is less than 17, 78 mm. | |||||||||||||||
| c. The carbon content for R95 may be increased up to 0, 55 % maximum if the product is oil-quenched. | |||||||||||||||
| d. The molybdenum content for T95 Type 1 may be decreased to 0, 15 % minimum if the WT is less than 17, 78 mm. | |||||||||||||||
| e. For EW Grade P110, the phosphorus content shall be 0,020 % maximum and the sulfur content 0,010 % maximum | |||||||||||||||
| NL = no limit. Elements shown shall be reported in product analysis. | |||||||||||||||
| Mechanical Properties | ||||||||
| Group | Grade | Type | Total | Yield Strength (Mpa) | Tensile | Hardness max | ||
| % | min. | max. | MPa | HRC | HBW | |||
| 1 | H40 | — | 0.5 | 276 | 552 | 414 | — | — |
| J55 | — | 0.5 | 379 | 552 | 517 | — | — | |
| K55 | — | 0.5 | 379 | 552 | 655 | — | — | |
| N80 | 1 | 0.5 | 552 | 758 | 689 | — | — | |
| N80 | Q | 0.5 | 552 | 758 | 689 | — | — | |
| R95 | — | 0.5 | 655 | 758 | 724 | — | — | |
| 2 | M65 | — | 0.5 | 445 | 586 | 586 | 22 | 235 |
| L80 | 1 | 0.5 | 552 | 655 | 655 | 23 | 241 | |
| L80 | 9Cr | 0.5 | 552 | 655 | 655 | 23 | 241 | |
| L81 | 13Cr | 0.5 | 552 | 655 | 655 | 23 | 241 | |
| C90 | 1 | 0.5 | 621 | 724 | 689 | 25.4 | 255 | |
| T95 | 1 | 0.5 | 655 | 758 | 724 | 25.4 | 255 | |
| C110 | — | 0.7 | 758 | 828 | 793 | 30 | 286 | |
| 3 | P110 | — | 0.6 | 758 | 965 | 862 | — | — |
| 4 | Q125 | 1 | 0.65 | 862 | 1034 | 931 | — | — |
| a. In case of dispute, laboratory Rockwell C hardness testing shall be used as the referee method. | ||||||||
| b. No hardness limits, but the maximum variation is controlled by manufacturer acc API 5CT. | ||||||||
Dimensions And Sizes Of API 5CT Casing And Tubing Chart
| DN | O. D. | Weight | W. T. | End Processing | |||||||||
| Non-upset coupling-thread | Upset coupling-thread | Steel Grade | |||||||||||
| Inch | mm | lb./ft. | lb./ft. | Inch | mm | H40 | J55 | L80 | N80 | C90 | T95 | P110 | |
| 2 3/8 | 2.375 | 60.32 | 4 | – | 0.167 | 4.24 | PU | PN | PN | PN | PN | PN | – |
| 4.6 | 4.7 | 0.19 | 4.83 | PNU | PNU | PNU | PNU | PNU | PNU | PNU | |||
| 5.8 | 5.95 | 0.254 | 6.45 | – | – | PNU | PNU | PNU | PNU | PNU | |||
| 6.6 | – | 0.295 | 7.49 | – | – | P | – | P | P | – | |||
| 7.35 | 7.45 | 0.336 | 8.53 | – | – | PU | – | PU | PU | – | |||
| 2 7/8 | 2.875 | 73.02 | 6.4 | 6.5 | 0.217 | 5.51 | PNU | PNU | – | – | – | – | – |
| 7.8 | 7.9 | 0.276 | 7.01 | – | – | – | – | – | – | – | |||
| 8.6 | 8.7 | 0.308 | 7.82 | – | – | PLB | PLB | PLBE | – | PLB | |||
| 9.35 | 9.45 | 0.34 | 8.64 | – | – | PLB | PLB | PLBE | – | PLB | |||
| 10.5 | – | 0.392 | 9.96 | – | – | PLB | PLB | PLB | – | PLB | |||
| 11.5 | – | 0.44 | 11.18 | – | – | – | – | PLB | – | ||||
| 3 1/2 | 3.5 | 88.9 | 7.7 | – | 0.216 | 5.49 | PN | PN | PN | PN | PN | PN | – |
| 9.2 | 9.3 | 0.254 | 6.45 | PNU | PNU | PNU | PNU | PNU | PNU | PNU | |||
| 10.2 | – | 0.289 | 7.34 | PN | PN | PN | PN | PN | PN | – | |||
| 12.7 | 12.95 | 0.375 | 9.52 | – | – | PNU | PNU | PNU | PNU | PNU | |||
| 14.3 | – | 0.43 | 10.92 | – | – | P | – | P | P | – | |||
| 15.5 | – | 0.476 | 12.09 | – | – | P | – | P | P | – | |||
| 17 | – | 0.53 | 13.46 | – | – | P | – | P | P | – | |||
| 4 | 4 | 101.6 | 9.5 | – | 0.226 | 5.74 | PN | PN | PN | PN | PN | PN | – |
| – | 11 | 0.262 | 6.65 | PU | PU | PU | PU | PU | PU | – | |||
| 13.2 | – | 0.33 | 8.38 | – | – | P | – | P | P | – | |||
| 16.1 | – | 0.415 | 10.54 | – | – | P | – | P | P | – | |||
| 18.9 | – | 0.5 | 12.7 | – | – | P | – | P | P | – | |||
| 22.2 | – | 0.61 | 15.49 | – | – | P | – | P | P | – | |||
| 4 1/2 | 4.5 | 114.3 | 12.6 | 12.75 | 0.271 | 6.88 | PNU | PNU | PNU | PNU | PNU | PNU | – |
| 15.2 | – | 0.337 | 8.56 | – | – | P | – | P | P | – | |||
| 17 | – | 0.38 | 9.65 | – | – | P | – | P | P | – | |||
| 18.9 | – | 0.43 | 10.92 | – | – | P | – | P | P | PLB | |||
| 21.5 | – | 0.5 | 12.7 | – | – | P | – | P | P | PLB | |||
| 23.7 | – | 0.56 | 14.22 | – | – | P | – | P | P | PLB | |||
| 26.1 | – | 0.63 | 16 | – | – | P | – | P | P | PLB | |||
| P——Plain;N—— Non-upset coupling-thread;U—— Upset coupling-thread; L——Integral | |||||||||||||
| DN | O. D. | Weight | W. T. | End Machining Form | ||||||||
| Steel Grade | ||||||||||||
| Inch | mm | lb/ft | kg/m | Inch | mm | H40 | J55 | L80 | N80 | C90 | P110 | |
| K55 | T95 | |||||||||||
| 4 1/2 | 4.5 | 114.3 | 9.5 | 14.14 | 0.205 | 5.21 | PS | PS | – | – | – | – |
| 10.5 | 15.63 | 0.224 | 5.69 | – | PSB | – | – | – | – | |||
| 11.6 | 17.26 | 0.25 | 6.35 | – | PSLB | PLB | PLB | PLB | PLB | |||
| 13.5 | 20.09 | 0.29 | 7.37 | – | – | PLB | PLB | PLB | PLB | |||
| 15.1 | 22.47 | 0.337 | 9.56 | – | – | – | – | – | PLB | |||
| 5 | 5 | 127 | 11.5 | 17.11 | 0.22 | 5.59 | – | PS | – | – | – | – |
| 13 | 19.35 | 0.253 | 6.43 | – | PSLB | – | – | – | – | |||
| 15 | 22.32 | 0.296 | 7.52 | – | PSLB | PLB | PLB | PLBE | PLB | |||
| 18 | 26.79 | 0.362 | 9.19 | – | – | PLB | PLB | PLBE | PLB | |||
| 21.4 | 31.85 | 0.437 | 11.1 | – | – | PLB | PLB | PLB | PLB | |||
| 23.2 | 34.53 | 0.478 | 12.14 | – | – | – | – | PLB | – | |||
| 24.1 | 35.86 | 0.5 | 12.7 | – | – | – | – | PLB | – | |||
| 5 1/2 | 5.5 | 139.7 | 14 | 20.83 | 0.244 | 6.2 | PS | PS | – | – | – | – |
| 15.5 | 23.07 | 0.275 | 6.98 | – | PSLB | – | – | – | – | |||
| 17 | 25.3 | 0.304 | 7.72 | – | PSLB | PLB | PLB | PLBE | PLB | |||
| 20 | 29.76 | 0.361 | 9.17 | – | – | PLB | PLB | PLBE | PLB | |||
| 23 | 34.23 | 0.415 | 10.54 | – | – | PLB | PLB | PLBE | PLB | |||
| 26.8 | 39.88 | 0.5 | 12.7 | – | – | – | – | – | – | |||
| 29.7 | 44.2 | 0.562 | 14.27 | – | – | – | – | – | – | |||
| 32.6 | 48.51 | 0.625 | 15.88 | – | – | – | – | – | – | |||
| 35.3 | 52.53 | 0.687 | 17.45 | – | – | – | – | – | – | |||
| 38 | 56.55 | 0.75 | 19.05 | – | – | – | – | – | – | |||
| 40.5 | 60.27 | 0.812 | 20.62 | – | – | – | – | – | – | |||
| 43.1 | 64.14 | 0.875 | 22.22 | – | – | – | – | – | – | |||
| 6 5/8 | 6.625 | 168.28 | 20 | 29.76 | 0.288 | 7.32 | PS | PSLB | – | – | – | – |
| 24 | 35.72 | 0.352 | 8.94 | – | PSLB | PLB | PLB | PLBE | PLB | |||
| 28 | 41.67 | 0.417 | 10.59 | – | – | PLB | PLB | PLBE | PLB | |||
| 32 | 47.62 | 0.475 | 12.06 | – | – | PLB | PLB | PLBE | PLB | |||
| 7 | 7 | 177.8 | 17 | 25.3 | 0.231 | 5.87 | PS | – | – | – | – | – |
| 20 | 29.76 | 0.272 | 6.91 | PS | PS | – | – | – | – | |||
| 23 | 34.23 | 0.317 | 8.05 | – | PSLB | PLB | PLB | PLBE | – | |||
| 26 | 38.69 | 0.362 | 9.19 | – | PSLB | PLB | PLB | PLBE | PLB | |||
| 29 | 43.16 | 0.408 | 10.36 | – | – | PLB | PLB | PLBE | PLB | |||
| 32 | 47.62 | 0.453 | 11.51 | – | – | PLB | PLB | PLBE | PLB | |||
| 35 | 52.09 | 0.498 | 12.65 | – | – | PLB | PLB | PLBE | PLB | |||
| 38 | 56.55 | 0.54 | 13.72 | – | – | PLB | PLB | PLBE | PLB | |||
| 42.7 | 63.54 | 0.625 | 15.88 | – | – | – | – | – | – | |||
| 46.4 | 69.05 | 0.687 | 17.45 | – | – | – | – | – | – | |||
| 50.1 | 74.56 | 0.75 | 19.05 | – | – | – | – | – | – | |||
| 53.6 | 79.77 | 0.812 | 20.62 | – | – | – | – | – | – | |||
| 57.1 | 84.97 | 0.875 | 22.22 | – | – | – | – | – | – | |||
| 7 5/8 | 7.625 | 193.68 | 24 | 35.72 | 0.3 | 7.62 | PS | – | – | – | – | – |
| 26.4 | 39.29 | 0.328 | 8.33 | – | PSLB | PLB | PLB | PLBE | PLB | |||
| 29.7 | 44.2 | 0.375 | 9.52 | – | – | PLB | PLB | PLBE | PLB | |||
| 33.7 | 50.15 | 0.43 | 10.92 | – | – | PLB | PLB | PLBE | PLB | |||
| 39 | 58.05 | 0.5 | 12.7 | – | – | PLB | PLB | PLBE | PLB | |||
| 42.8 | 63.69 | 0.562 | 14.27 | – | – | PLB | PLB | PLB | PLB | |||
| 45.3 | 67.41 | 0.595 | 15.11 | – | – | PLB | PLB | PLB | PLB | |||
| 47.1 | 70.09 | 0.625 | 15.88 | – | – | PLB | PLB | PLB | PLB | |||
| 51.2 | 76.19 | 0.687 | 17.45 | – | – | – | – | – | – | |||
| 55.3 | 80.3 | 0.75 | 19.05 | – | – | – | – | – | – | |||
| 8 5/8 | 8.625 | 219.08 | 24 | 35.72 | 0.264 | 6.71 | – | PS | – | – | – | – |
| 28 | 41.62 | 0.304 | 7.72 | PS | – | – | – | – | – | |||
| 32 | 47.62 | 0.352 | 8.94 | PS | PSLB | – | – | – | – | |||
| 36 | 53.57 | 0.4 | 10.16 | – | PSLB | PLB | PLB | PLBE | PLB | |||
| 40 | 59.53 | 0.45 | 11.43 | – | – | PLB | PLB | PLBE | PLB | |||
| 44 | 65.48 | 0.5 | 12.7 | – | – | PLB | PLB | PLBE | PLB | |||
| 49 | 72.92 | 0.557 | 14.15 | – | – | PLB | PLB | PLBE | PLB | |||
| 9 5/8 | 9.625 | 244.48 | 32.3 | 48.07 | 0.312 | 7.92 | PS | – | – | – | – | – |
| 36 | 53.57 | 0.352 | 8.94 | PS | PSLB | – | – | – | – | |||
| 40 | 59.53 | 0.395 | 10.03 | – | PSLB | PLB | PLB | PLBE | – | |||
| 43.5 | 64.73 | 0.435 | 11.05 | – | – | PLB | PLB | PLBE | PLB | |||
| 47 | 69.94 | 0.472 | 11.99 | – | – | PLB | PLB | PLBE | PLB | |||
| 53.5 | 79.62 | 0.545 | 13.84 | – | – | PLB | PLB | PLBE | PLB | |||
| 58.4 | 86.91 | 0.595 | 15.11 | – | – | PLB | PLB | PLB | PLB | |||
| 59.4 | 88.4 | 0.609 | 15.47 | – | – | – | – | – | – | |||
| 64.9 | 96.58 | 0.672 | 17.07 | – | – | – | – | – | – | |||
| 70.3 | 104.62 | 0.734 | 18.64 | – | – | – | – | – | – | |||
| 75.6 | 112.5 | 0.797 | 20.24 | – | – | – | – | – | – | |||
| 10 3/4 | 10.75 | 273.05 | 32.75 | 48.74 | 0.279 | 7.09 | PS | – | – | – | – | – |
| 40.5 | 60.27 | 0.35 | 8.89 | PS | PSB | – | – | – | – | |||
| 15.5 | 67.71 | 0.4 | 10.16 | – | PSB | – | – | – | – | |||
| 51 | 75.9 | 0.45 | 11.43 | – | PSB | PSB | PSB | PSBE | PSB | |||
| 55.5 | 82.59 | 0.495 | 12.57 | – | – | PSB | PSB | PSBE | PSB | |||
| 60.7 | 90.33 | 0.545 | 13.84 | – | – | – | – | PSBE | PSB | |||
| 65.7 | 97.77 | 0.595 | 15.11 | – | – | – | – | PSB | PSB | |||
| 73.2 | 108.93 | 0.672 | 17.07 | – | – | – | – | – | – | |||
| 79.2 | 117.86 | 0.734 | 18.64 | – | – | – | – | – | – | |||
| 85.3 | 126.94 | 0.797 | 20.24 | – | – | – | – | – | – | |||
| 11 3/4 | 11.75 | 42 | 62.5 | 0.333 | 8.46 | PS | – | – | – | – | – | |
| 47 | 69.94 | 0.375 | 20.24 | – | – | – | – | – | – | |||
| 54 | 80.36 | 0.435 | 8.46 | – | – | – | – | – | – | |||
| 60 | 89.29 | 0.489 | 9.53 | – | – | – | – | – | – | |||
| 65 | 96.73 | 0.534 | 11.05 | – | – | – | – | – | – | |||
| 71 | 105.66 | 0.582 | 14.42 | – | – | – | – | – | – | |||
| 13 3/8 | 13.375 | 339.73 | 48 | 71.43 | 0.33 | 8.38 | PS | – | – | – | – | – |
| 54.5 | 81.1 | 0.38 | 9.65 | – | PSB | – | – | – | – | |||
| 61 | 90.78 | 0.43 | 10.92 | – | PSB | – | – | – | – | |||
| 68 | 101.19 | 0.48 | 12.19 | – | PSB | PSB | PSB | PSB | PSB | |||
| 72 | 107.15 | 0.514 | 13.06 | – | – | PSB | PSB | PSB | PSB | |||
| 16 | 16 | 406.4 | 65 | 96.73 | 0.375 | 9.53 | PS | – | – | – | – | – |
| 75 | 111.61 | 0.438 | 11.13 | – | PSB | – | – | – | – | |||
| 84 | 125.01 | 0.495 | 12.57 | – | PSB | – | – | – | – | |||
| 109 | 162.21 | 0.656 | 16.66 | – | P | P | P | – | P | |||
| 18 5/8 | 18.625 | 473.08 | 87.5 | 130.21 | 0.435 | 11.05 | PS | PSB | – | – | – | – |
| 20 | 20 | 508 | 94 | 139.89 | 0.438 | 11.13 | PSL | PSLB | – | – | – | – |
| 106.5 | 158.49 | 0.5 | 12.7 | – | PSLB | – | – | – | – | |||
| 133 | 197.93 | 0.635 | 16.13 | – | PSLB | – | – | – | – | |||
| P——Plain;S——Short-thread;L——Long-thread;B——Buttress thread;E——Extreme thread | ||||||||||||
Excellent Features Of API 5CT Casing Tube
Gnee has been focusing on providing high-quality API 5CT casing pipes with a variety of excellent properties to customers around the world for 15 years. Come and get a quote now.
4 Common API 5CT Pipe End Processing Methods
The API 5CT specification specifies OCTG pipe and casing end machining methods to ensure pipeline integrity and sealing. The following are some of the API 5CT pipe end machining methods.
Pipe Flat End Machining
First of all, flat end processing is one of the simplest processing methods, cutting the pipe into flat surface, this processing method can effectively prevent the accumulation of materials in the pipeline in the process of conveying, but it can’t form an effective connection, which requires the addition of connectors in the processing.
Threaded Connection
Threaded connections are divided into two ways: external threads and internal threads. Internally threaded fittings receive oil and gas conveyed by externally threaded fittings. Threads are also divided into long threads, short threads, etc., of which the ones with the greatest sealing and load-resistant capacity are armchair threads.
API 5CT Non-Threaded Connection
Non-threaded connections are suitable for scenarios that require frequent and rapid installation and removal.
Special Threaded Connections
In addition to standard threaded connections, TUSPIPE offers special threads. They provide better sealing and safety for pipes that need to work in extreme environments.
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4 Common Tests & Inspection Of API 5CT
API 5CT Hydrostatic Test
The purpose of the hydrostatic test is to check the tightness of the welded joints and the pipe itself. It is an essential step in the pipe manufacturing process. To perform this test, the pipe is filled with water and pressure is applied. If there are any leaks in the pipe, this process will expose them. Hydrostatic testing is an important quality control measure that helps ensure the safety and integrity of the pipeline.
API 5CT Flattening Test
The flattening test is a quality control test used in the manufacture of pipelines. This test is performed to determine the resistance of the pipe material to longitudinal and circumferential cracking, as well as to assess the deformation characteristics of the pipe under stress. The flattening test is an important indicator of the overall quality of the pipe and its ability to withstand stresses during operation. The test results can be used to adjust the manufacturing process to ensure that the pipe produced meets the required standards.

API 5CT Bend Test
The bend test is a critical quality assurance test for welded metal pipes. The test involves taking a sample of the pipe and applying a systematic force to it until it breaks. This helps to ensure that the pipe can withstand the bending stresses without cracking. The results of the bending test can also be used to assess the quality of the weld as well as the overall strength of the metal. This makes it an important test for any company that manufactures or uses welded pipes.
API 5CT CVN Impact Test
In order to ensure the mechanical properties of pipeline steels, impact tests are usually performed. The tests are performed by freezing steel samples to extreme temperatures below 0°C (32°F). The temperature at which the sample breaks is then used to determine the impact strength of the steel. The test consists of three main areas: the pipe body, the weld seam, and the heat-affected zone. By testing these three zones, manufacturers can ensure that their pipes can withstand any conditions they may encounter.
What Are The Applications Of API 5CT Casing And Tubing?
Geothermal Energy
API 5CT casing and tubing are also employed in geothermal energy projects. Geothermal wells use casing and tubing to extract heat from the Earth’s subsurface and transfer it to the surface for electricity generation or direct use in heating and cooling applications.

Oil and Gas Wells
API 5CT casing and tubing are essential in oil and gas wells of various types, including conventional wells, unconventional wells (such as shale gas and tight oil wells), and deepwater wells. They serve as conduits for fluid flow and provide mechanical support to the well structure.

Why Choose Gnee As API 5CT Seamless Casing Tubing Distributor?

In addition, our tubes have been successfully exported to more than 60 countries such as Vietnam, Malaysia, Indonesia, Pakistan, UAE, and South Korea, etc. Many regular customers visit our company and factory and make multiple orders.

What Services Does Gnee Provide?
Gnee can provide the following measurement services for pipe:
1. Dimensional measurement: Measure the dimensional parameters such as length, width, and thickness by measuring instruments to ensure the pipe is qualified and meets the design requirements.
2. Surface measurement: Measure parameters such as flatness, unevenness, and surface roughness of pipe surface to help ensure that the quality and surface state of the pipe meet the requirements.
3. Thickness measurement: Use a thickness measuring instrument to accurately measure the thickness of the pipe to ensure that it meets the design requirements.
4. Material measurement: Use material analysis instruments to measure the chemical composition and mechanical properties of the product to ensure that the quality and performance meet the requirements.
5. Bending and Deformation Measurements: The degree of bending and deformation of the steel pipe is measured and monitored by using tools such as bending measuring instruments and displacement sensors to ensure that it is within the allowable range.
Gnee can customize the size and shape of steel pipes for your project according to specific project needs. The custom design of the pipe is carried out by a professional engineer and design team. Based on the requirements and constraints of the project, they will use calculation and simulation tools, combined with experience and technical knowledge, to optimize the steel pipe design to meet the specific needs of your engineering.
● According to the strength requirements of structural design, adjust the thickness, width, and length of pipes.
● The shape of the steel pipe can be designed according to the characteristics of the project.
● If you consider the convenience of installation and maintenance, we can also add openings and passages for easy access and operation in the design for areas that require frequent maintenance.
Purchasing Gnee steel pipe can provide the following deep processing services. We can customize according to the specific needs of customers to meet the requirements.
Cutting service: Pipe can be custom cut to obtain the desired shape and size according to the needs of customers. For example, flame cutting, plasma cutting, laser cutting, etc., can cut steel pipes into required blocks, special-shaped parts.
Bending and forming: Pipes are bent and formed by stress application and appropriate processes to obtain the desired shape.
Welding service: Pipe can be subjected to various types of welding services, including manual arc welding, gas-shielded welding, laser welding, etc.
Turning and machining of holes: Turning and machining of holes in pipes by using machining equipment. These processes produce smooth surfaces, precise holes and threads to meet specific assembly requirements.
Surface treatment: In order to improve the corrosion resistance and aesthetics of the steel pipe, surface treatment can be carried out. This includes methods such as spraying, hot-dip galvanizing, electroplating, etc. to add a protective layer and provide corrosion resistance.
Gnee can provide the following testing services through third-party testing agencies. These third-party testing services can provide independent, objective verification that pipes comply with relevant standards and regulations.
Material chemical composition analysis: Through chemical composition analysis, determine whether the composition of the steel pipe meets the standard requirements.
Mechanical performance test: Mechanical performance test includes tensile test, impact test, bending test, etc., which are used to determine whether the mechanical properties such as strength, toughness and ductility of products meet the specified requirements.
Metallographic testing: Through metallographic testing, check the structure, grain size, non-metallic inclusions, etc. of pipes to evaluate their quality and performance.
Corrosion performance test: Through the corrosion performance test, evaluate the corrosion resistance of pipes, including salt spray corrosion resistance, chemical corrosion resistance, etc.
Hardness test: Hardness test is used to measure the hardness of pipe, and its strength and wear resistance can be evaluated according to the hardness value.
Ultrasonic flaw detection: Ultrasonic flaw detection is used to detect internal defects of pipes, such as cracks, pores, inclusions, etc.





















