st52-3 equivalent
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1.0570 c45
gangsteel produced and exported DIN 1.0570 and ST 52-3 steel plate as common carbon structural steel. Gangsteel supply DIN17100 ST52-3 ST52-3N Steel plate low alloy and high strength steel plate. DIN 17100 ST52-3 steel plate price and stock supplier.ST 52-3 steel plate is one mainly of Carbon structural steel, ST 52-3 is a type of steel sheet under DIN standard which is used to build ship, bridge, belongs to high strength sheet.
If you have any requirement for ST 52-3 structure steel plate,under DIN17100 standard ST 52-3 steel plate, under DIN17100 standard, please contact us.
1.Steel Grade : ST 52-3 (1.0570)
2. Standard: DIN 17100 steels for general structural purposes
3. Approval By Third Party :ABS, DNV, GL, CCS, LR , RINA, KR, TUV, CE
4. Classification: General structural purposes
5. Product form : super heavy steel plate
Applications are available in a wide range of venues such as automobiles, space and civic buildings. For instance, use in automobiles can scale back its weight and improve fuel economic system [1-2]. The mechanical properties of the polymer matrix composites could be improved by reinforcing the particles. These properties may be designed by selecting the suitable matrix and reinforcement material .
The cause behind such a fantastic growth is the big selection of functions they find. Polymer matrix composites are the quickest rising engineering supplies because of their high specific power and particular modulus.
DIN17100 ST52-3 ST52-3N Steel plate Chemical composition of heat analysis:
DIN |
ASTM |
EN |
JIS |
Chemical Composition |
C.E. |
||||||||||
C |
Si |
Mn |
Cr |
Mo |
Ni |
V |
W |
S |
P |
CU |
|||||
17100 St52-3N |
A572-50 |
10025-2:2004 S355J2+N |
G3106 SM490YB |
max 0.22 |
max 0.55 |
max 1.60 |
– |
– |
– |
– |
– |
max 0.035 |
max 0.035 |
– |
max 0.047 |
St52-3 steel data sheet – 2, Chemical composition (product analysis) according to DIN 17100 and DIN EN 10025: 1993.
Chemical Composition (product analysis), %, ≤ |
|||||||||||
Country (Region) |
Standard |
Steel Grade (Steel number) |
C |
Si |
Mn |
P |
S |
N |
Cu |
Thickness (d) (mm) |
Method of deoxidation |
Germany |
DIN 17100: 1980 |
St52-3 (1.0570) |
0.22 |
0.60 |
1.70 |
0.065 |
0.065 |
– |
≤ 30 |
Fully Killded |
|
0.24 |
30 <d ≤100 |
||||||||||
European Union |
EN 10025: 1993 |
S355J2G3 (1.0570) |
0.22 |
0.60 |
1.70 |
0.045 |
0.045 |
– |
≤ 30 |
||
0.24 |
30 <d ≤100 |
||||||||||
EN 10025-2: 2004 |
S355J2 (1.0577) |
0.22 |
0.60 |
1.70 |
0.035 |
0.035 |
– |
0.60 |
≤ 30 |
||
0.24 |
30 <d ≤100 |
St52-3 Steel Properties
Physical Properties
- Material St 52-3 Density: 7.85 g/cm3
- Melting point: 1420-1460 °C (2590-2660 °F)
DIN17100 ST52-3 ST52-3N Steel plate mechanical properties steel plate
Thickness (mm) |
Yield Strength Reh min (N / mm2) |
Tensile Strength Rm min (N / mm2) |
Elongation A5 min (%) |
Impact Values Charpy-V-Notch Longitudinal Average from 3 Speimens Thk. >10<150mm. |
3<thk<100 |
315-355 |
490-630 |
max 22 |
27 Joules at -20 C |
St52-3 steel data sheet – 1, Chemical composition (ladle analysis) according to DIN 17100 and DIN EN 10025: 1993.
Chemical Composition (ladle analysis), %, ≤ |
|||||||||||
Country (Region) |
Standard |
Steel Grade (Steel number) |
C |
Si |
Mn |
P |
S |
N |
Cu |
Thickness (d) (mm) |
Method of deoxidation |
Germany |
DIN 17100: 1980 |
St52-3 (1.0570) |
0.20 |
0.55 |
1.60 |
0.040 |
0.040 |
– |
≤ 30 |
Fully Killded |
|
0.22 |
30 <d ≤100 |
||||||||||
European Union |
EN 10025: 1993 |
S355J2G3 (1.0570) |
0.20 |
0.55 |
1.60 |
0.035 |
0.035 |
– |
≤ 30 |
||
0.22 |
30 <d ≤100 |
||||||||||
EN 10025-2: 2004 |
S355J2 (1.0577) |
0.20 |
0.55 |
1.60 |
0.025 |
0.025 |
– |
0.55 |
≤ 30 |
||
0.22 |
30 <d ≤100 |
DIN17100 ST52-3 EQUIVALENT STEEL GRADES
EN 10025 – 2 |
EN 10025+A1 |
?SN |
DIN 17100 |
||
EN10027-1 |
EN10027-2 |
EN10027-1 Grade |
EN10027-2 Grade |
|
|
S235JR2 |
1.0038 |
S235JRG2 |
1.0038 |
11375 |
RSt 37-2 |
S235J0 |
1.0114 |
S235J0 |
1.0114 |
11378 |
St 37-3U |
|
– |
S235J2GR3 |
1.0116 |
11378 |
St 37-3N |
S235J2 |
1.0117 |
S235J2G4 |
1.0117 |
– |
– |
S275JR |
1.0044 |
S275JR |
1.0044 |
11443 |
St 44-2 |
S275J0 |
1.0143 |
S275J0 |
1.0143 |
11445 |
St 44-3U |
|
– |
S275J2GR3 |
1.0144 |
11448 |
St 44-3N |
S275J2 |
1.0145 |
S275J2G4 |
1.0145 |
– |
– |
S355JR |
1.0045 |
S355JR |
1.0045 |
11523 |
St 52-3 |
S355J0 |
1.0553 |
S355J0 |
1.0553 |
11523 |
St 52-3U |
|
– |
S355J2G3 |
1.057 |
11503 |
St 52-3N |
S355J2 |
1.0577 |
S355J2G4 |
1.0577 |
– |
– |
Material St 52-3 Datasheet – 3
Yield strength (≥ N/mm2); Thickness (d) mm |
||||||
Steel (Steel number) |
d≤16 |
16< d ≤40 |
40< d ≤63 |
63< d ≤80 |
80< d ≤100 |
>100 |
St52-3 |
355 |
345 |
335 |
325 |
315 |
by agreement |
Tensile Strength
Material St 52-3 Datasheet – 4
Tensile strength (≥ N/mm2); Thickness (d) mm |
|||
Steel (Steel number) |
d<3 |
3 ≤ d ≤ 100 |
>100 |
St 52-3 |
515-680 |
490-630 |
by agreement |
Note: 1MPa = 1N/mm2
Elongation
Material St 52-3 Datasheet – 5
Elongation (≥, %); Thickness (d), mm |
||||||||
Steel (Steel number) |
0.5 ≤d <1 |
1≤ d <1,5 |
1,5≤ d <2 |
2≤ d <2,5 |
2,5≤ d <3 |
|||
St52-3U |
14 |
15 |
16 |
17 |
18 |
|||
St52-3N |
12 |
13 |
14 |
15 |
16 |
|||
Elongation (≥, %); Thickness (d), mm |
||||||||
Steel (Steel number) |
3 ≤d ≤40 |
40< d ≤63 |
63 < d ≤100 |
>100 |
||||
St52-3 |
22 |
21 |
20 |
by agreement |
||||
St52-3N |
20 |
19 |
18 |
Magnesium alloys have great potential in aerospace, automotive and digital industries due to high particular power and low densities , . Because excessive specific energy and lightweight materials DIN 17100 ST 52-3 are wanted to enhance power efficiency ,. However, magnesium alloys have poor mechanical properties, so this case limits the usage of magnesium in sensible applications.
In basic, the mechanical properties of particle-bolstered polymer composites depend on the form, dimension and distribution of the reinforcement, and likewise on the adhesion between the matrix and the particles . Numerous inorganic fillers corresponding to fly ash, aluminum and silicon carbide are used as reinforcing polymer matrix.
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Samples have been reduce, polished and had been subjected to metallographic examinations with an optical microscope. Three point bending checks have been conducted with a universal mechanical tester having 50 kN capability. It was found by optical microscopy examinations that the Al2O3 particles have been homogenously distributed within the aluminum matrix .
- Aluminum was additionally used to gauge its binding effects on Mg-GNPs composite.
- Powders have been combined using magnetic stirrer which is linked to the vacuum distillation system.
- In this study, graphene nanoplatelets which is an allotrope of carbon is used as a reinforcement materials for magnesium matrix composite.
- Pure Mg, Mg-0.25 wt.% GNPs, Mg-3Al-0.25 wt.% GNPs and Mg- 9Al-0.25 wt.% GNPs composites had been fabricated using semi powder metallurgy method.
Of the micro-scale particles commonly used as fillers / reinforcers, submicron particles have a better particular surface space. This high specific surface space requires excessive floor interplay between the long chain polymer matrix and the reinforcement.
Metallographic examinations show that homogenously distrubitation of silicon carbide in the Al matrix construction was obtained efficiently by mechanically mixing and milling within the turbula system. Therefore, improved mechanical properties such as hardness, transvers rupture energy and put on resistance had been achieved from composite materials in comparition with aluminum powder steel supplies produced under the same circumstances. The outcomes were evaluated primarily based on weight loss in pin-on-disc wear tests. Tests results have shown that the composite has higher wear resistance than aluminum powder metallic half. It has been noticed that by adding silicon carbide into the aluminum, abrasive put on resistance and other mechanical properties elevated.
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