High Carbon Steel Pipe – Carbon Steel Pipe From China
OD (mm)
Wall Thickness (mm)
2
2.5
3
3.5
4
4.5
5
6
6.5-7
7.5-8
8.5-9
9.5-10
11
12
Φ25-Φ28
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●
●
●
●
●
Φ32
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●
●
●
●
●
Φ34-Φ36
●
●
●
●
●
●
Φ38
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●
●
●
●
●
Φ40
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●
●
●
●
Φ42
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●
●
●
●
Φ45
●
●
●
●
●
●
Φ48-Φ60
●
●
●
●
●
●
●
Φ63.5
●
●
●
●
●
●
●
Φ68-Φ73
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●
●
●
●
●
Φ76
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●
●
●
●
●
●
●
●
●
Φ80
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●
Φ83
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●
●
●
●
●
Φ89
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●
●
●
●
●
●
Φ95
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●
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●
●
●
●
●
Φ102
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●
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●
Φ108
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●
●
Φ114
●
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●
●
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●
●
Φ121
●
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●
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●
●
Φ127
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●
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●
●
Φ133
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●
Φ140
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Φ146
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Φ152
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Φ159
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Φ168
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Carbon steel is a widely used Material in various industries due to its durability and strength. One type of carbon steel that stands out is high carbon steel pipe. This article will explore the benefits of high carbon steel pipe in various industries and why it is a popular choice for many applications.
High carbon steel pipe is known for its high carbon content, typically ranging from 0.61% to 1.5%. This high carbon content gives the steel its exceptional strength and Hardness, making it suitable for demanding applications. Industries such as construction, Oil and gas, automotive, and manufacturing rely on high carbon steel pipe for their operations.
In the construction industry, high carbon steel pipe is commonly used for structural purposes. Its strength and durability make it ideal for supporting heavy loads and withstanding harsh environmental conditions. Whether it is for building bridges, skyscrapers, or other infrastructure projects, high carbon steel pipe provides the necessary strength and reliability.
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The automotive industry relies on high carbon steel pipe for various applications. From exhaust systems to chassis components, high carbon steel pipe provides the necessary strength and durability. It can withstand the vibrations and stresses that occur during vehicle operation, ensuring the safety and reliability of automobiles. Additionally, high carbon steel pipe is often used in the manufacturing of engine components, such as crankshafts and connecting rods, due to its excellent Fatigue resistance.
Labels a
Calculated Mass c
Nominal Linear Mass T& C b,c
Wall Thick- ness
em, Mass Gain or Loss Due to End Finishing d
Outside Diameter
Inside Diameter
Drift Diameter
Plain- end
kg
Round Thread
Buttress Thread
wpe
D
kg/m
t
D
mm
kg/m
Short
Long
RC
SCC
mm
mm
mm
1
2
3
4
5
6
7
8
9
10
11
12
13 3/8
48
339.72
71.43
8.38
322.96
318.99
68.48
15.04
—
— 17.91
—
13 3/8
54.5
339.72
81.1
9.65
320.42
316.45
78.55
13.88
—
16.44
—
13 3/8
61
339.72
90.78
10.92
317.88
313.91
88.55
12.74
—
14.97
—
13 3/8
68
339.72
101.19
12.19
315.34
311.37
98.46
11.61
—
14.97
—
13 3/8
68
339.72
101.19
12.19
315.34
311.37
98.46
11.67 f
—
14.33
—
13 3/8
72
339.72
107.15
13.06
313.6
311.15 e
105.21
10.98
—
13.98
—
13 3/8
72
339.72
107.15
13.06
313.6
311.15 e 309.63 309.63
105.21
10.91 f
—
14.33
—
13 3/8
72
339.72
107.15
13.06
313.6
105.21
10.98
—
13.98
—
13 3/8
72
339.72
107.15
13.06
313.6
105.21
10.91 e
—
—
16
65
406.4
96.73
9.53
387.4
382.57
96.73
18.59
—
— 20.13
—
16
75
406.4
111.61
11.13
384.1
379.37
108.49
16.66
—
18.11
—
16
84
406.4
125.01
12.57
381.3
376.48
122.09
14.92
—
—
—
16
109
406.4
162.21
16.66
373.1
368.3
160.13
—
—
—
18 5/8
87.5
473.08
130.21
11.05
450.98
446.22
125.91
33.6
—
39.25
—
20
94
508
139.89
11.13
485.7
480.97
136.38
20.5
27.11
24.78
—
20
94
508
139.89
11.13
485.7
480.97
136.38
20.61
27.26 g 24.27 17.84
24.78
—
20
106.5
508
158.49
12.7
482.6
477.82
155.13
18.22
22
—
20
133
508
197.93
16.13
475.7
470.97
195.66
13.03
16.02
—
NOTE See also Figures D.1, D.2, and D.3.
a Labels are for information and assistance in ordering.
b Nominal linear masses, threaded and coupled (Column 4) are shown for information only.
c The densities of martensitic chromium steels ( L80 Types 9Cr and 13Cr) are less than those of carbon steels; The masses shown are therefore not accurate for martensitic chromium steels; A mass correction factor of 0.989 shall be used.
d Mass gain or loss due to end finishing; See 8.5.
e Drift diameter for most common bit size; This drift diameter shall be specified in the purchase agreement and marked on the pipe; See 8.10 for drift requirements.
Manufacturing processes also benefit from high carbon steel pipe. Whether it is for machining, tooling, or equipment, high carbon steel pipe provides the necessary strength and toughness. It can withstand the high forces and pressures involved in manufacturing operations, ensuring the longevity and efficiency of the equipment. High carbon steel pipe is also used in the production of cutting tools, such as drills and SAW blades, due to its hardness and wear resistance.
a In case of dispute, laboratory Rockwell C hardness testing shall be used as the referee method.
b No hardness limits are specified, but the maximum variation is restricted as a manufacturing control in accordance with 7.8 and 7.9.
c For through-wall hardness tests of Grades L80 (all types), C90, T95 and C110, the requirements stated in HRC scale are for maximum mean hardness number.
In conclusion, high carbon steel pipe offers numerous benefits in various industries. Its exceptional strength, durability, and hardness make it a popular choice for construction, oil and gas, automotive, and manufacturing applications. Whether it is for supporting heavy loads, transporting oil and gas, building vehicles, or manufacturing equipment,