DILLIMAX 550 Tough (EN 1.8926)

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Description

DILLIMAX 550 is a high strength quenched and tempered, fine grained structural steel (through sufficient aluminium content) with a minimum yield strength of 550 MPa (80 ksi) in its delivery condition (referring to the lowest thickness range). Its mechanical properties are achieved by water quenching followed by tempering.

Related Standards

Equivalent Materials

This material data has been provided by Dillinger.

"Typical" values were obtained via a literature search. "Predicted" values were imputed via artificial intelligence technology. While we have placed significant efforts in ensuring data accuracy, "typical" and "predicted" data should be considered indicative and verified by appropriate material testing. Please do contact us if additional information on the the predicted data method is required.
All metrics apply to room temperature unless otherwise stated. SI units used unless otherwise stated.
Equivalent standards are similar to one or more standards provided by the supplier. Some equivalent standards may be stricter whereas others may be outside the bounds of the original standard.

Ashby charts

Properties

General

PropertyValueComment

Carbon equivalent (CEV)

0.43 [-]

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auxiliary data for thickness t ≤ 40 mm

0.45 [-]

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max. value for thickness t ≤ 40 mm

0.51 [-]

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auxiliary data for thickness 40 < t ≤ 100 mm

0.54 [-]

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max. value for thickness 40 < t ≤ 100 mm

0.6 [-]

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auxiliary data for thickness 100 < t ≤ 150 mm

0.63 [-]

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max. value for thickness 100 < t ≤ 150 mm

Carbon equivalent note

CEV = C + Mn/6 + (Cr+Mo+V)/5 + (Cu+Ni)/15

Mechanical

PropertyTemperatureValueTesting StandardComment

Charpy impact energy, V-notch

-40 °C

27 J

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EN ISO 148-1

average of 3 tests | transverse specimens

-40 °C

30 J

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EN ISO 148-1

average of 3 tests

-20 °C

30 J

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EN ISO 148-1

average of 3 tests | transverse specimens

-20 °C

40 J

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EN ISO 148-1

average of 3 tests

0 °C

35 J

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EN ISO 148-1

average of 3 tests | transverse specimens

0 °C

50 J

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EN ISO 148-1

average of 3 tests

Elongation

16 %

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EN ISO 6892-1

min. for plate thickness t ≤ 200 mm | transverse specimens, A5

17 %

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ASTM A370

min. for plate thickness t ≤ 200 mm | transverse specimens, A2

Tensile strength

590 - 770 MPa

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EN ISO 6892-1

for plate thickness 100 < t ≤ 150 mm | transverse specimens

640 - 820 MPa

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EN ISO 6892-1

for plate thickness t ≤ 100 mm | transverse specimens

Yield strength

490 MPa

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EN ISO 6892-1

min. ReH for plate thickness 100 < t ≤ 150 mm | transverse specimens

530 MPa

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EN ISO 6892-1

min. ReH for plate thickness 50 < t ≤ 100 mm | transverse specimens

550 MPa

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EN ISO 6892-1

min. ReH for plate thickness t ≤ 50 mm | transverse specimens

Chemical properties

PropertyValueComment

Boron

0.004 %

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max.

Carbon

0.18 %

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max.

Chromium

1 %

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max.

Iron

Balance

Manganese

1.7 %

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max.

Molybdenum

0.6 %

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max.

Nickel

1 %

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max.

Niobium

0.08 %

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max. V+Nb

Phosphorus

0.018 %

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max.

Silicon

0.5 %

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max.

Sulfur

0.005 %

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max.

Vanadium

0.08 %

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max. V+Nb

Technological properties

Property
Application areas

DILLIMAX 550 is preferentially used by the customers for welded steel structures within mechanical constructions, plant constructions, structural steel works and hydropower, such as machines for structural engineering, conveying plants, hoists, cranes, flood gates, bridges, frameworks and penstocks.

Cold Forming

Cold forming means forming below the maximum allowable stress relief temperature (560 °C/1040 °F). DILLIMAX 550 can be cold formed with regard to its high yield strength. Flame cut or sheared edges in the bending area should be ground before cold forming.

Cold forming is related to a hardening of the steel and to a decrease in toughness. This change in the mechani- cal properties can in general be partially recovered through a subsequent stress relief heat treatment. For larger cold forming amounts or if prescribed by regulations, a new quenching and tempering heat treatment may be necessary to restore the original mechanical properties. Depending on the relevant design code this can result in the need of larger bending radiuses than indicated in the chart. For larger cold forming amounts we recommend you to consult the steel producer prior to ordering.

During the processing, the necessary safety measures have to be taken, so that nobody will be exposed to a danger by a possible fracture of the work piece during the forming process.

The following geometries can usually be achieved by cold forming without the formation of surface defects (t is the plate thickness):


Position of bending line to rolling directionMinimum bending radiusMinimum die width
Transverse direction2 t7 t
Longitudinal direction3 t9 t

Delivery condtion

Water quenched and tempered according to EN 10025-6.

Unless otherwise agreed, the general technical delivery requirements in accordance with EN 10021 apply.

Flame cutting and welding

Due to its high yield strength, DILLIMAX 550 requires special care during plate processing. For flame cutting, the following minimum preheating temperatures are recommended: 25 °C (77 °F) for plate thickness up to 20 mm (0.8 in), 50 °C (122 °F) for plate thickness up to 50 mm (2 in), 100 °C (212 °F) for plate thickness up to 100 mm (4 in), 150 °C (302 °F) for plate thickness up to 200 mm (8 in) and 180 °C (356 °F) for thicker plates. For general welding instructions, please consult the EN 1011. In order to ensure that the tensile strength of the weld metal fulfils the requirements of the base metal, the heat input and interpass temperature must be limited during welding. Experience has shown that the welding conditions should be chosen so that the cooling time t8/5 does not exceed 20 seconds. This is applicable when using suitable filler materials of a corresponding yield strength class.

The high yield strength of the base material must be taken into account when choosing the filler materials. It should be considered that increased heat input leads to lower tensile properties in the weld metal. If a stress relieving heat treatment is planned during or after plate processing, this must also be considered when selecting the filler materials. To avoid hydrogen-induced cold cracking, only filler materials, which add very little hydro- gen to the base metal, may be used. Therefore, shielded arc welding should be preferred. For manual arc weld- ing, electrodes with basic coating (type HD < 5 ml/100 g in accordance with ISO 3690) and dried according to the manufacturer’s instructions should be used. With increasing plate thickness, increasing hydrogen charge and restraint of the weld, a soaking for hydrogen effusion immediately after welding is recommended.

General note

If particular requirements, which are not covered in this material data sheet, are to be met by the steel due to its intended use or processing, these requirements are to be agreed before placing the order.

The information in this technical data sheet is a product description. This material data sheet is updated at irregular intervals. The current version is available from the mill or as download at www.dillinger.de.

Heat Treatment

The properties of structural components can be altered by a stress relief heat treatment. A stress relief heat treatment can be performed at a maximum temperature of 560 °C (1040 °F) and maximum holding time of 60 minutes without significant impairment of the properties. It has to be specified prior to ordering if higher stress relieving temperatures or longer holding times have to be applied. The verification of appropriate stress relieving temperatures for a delivered plate may be possible on request.

Hot forming

If the temperature of 560 °C (1040 °F) is exceeded, the initial tempering will be altered so that the mechanical properties are affected. To regain the initial properties new quenching and tempering become necessary. However, water quenching of a formed work piece or component will often be less effective than the original quenching in the plate mill so that the fabricator may not be able to re-establish the properties required and therefore hot forming may not be suitable. In this respect, we recommend you to contact the steel producer prior to ordering in all cases where hot forming is required.

Finally, it is the fabricator’s responsibility to obtain the required values of the steel through an appropriate heat treatment.

Other

DILLIMAX 550 T can be delivered in thicknesses from 6 to 200 mm (1⁄4 to 8 in.). Dimensions, which deviate from the usual dimensional program, may be possible on request.


Identification of plates: Unless otherwise agreed, the marking is carried out with low stress steel stamps with at least the following information:

  • steel grade (DILLIMAX 550 T)
  • heat number
  • number of mother plate and individual plate
  • the manufacturer’s symbol
  • authorized inspection representative's sign

  • Processing methods

    The entire processing and application techniques are of fundamental importance to the reliability of products made from this steel. The user should ensure that his design, construction and processing methods are aligned with the material, correspond to the state-of-the-art that the fabricator has to comply with and are suitable fort he intended use. The customer is responsible for the selection of the material. The recommendations in accordance with EN 1011-2 (welding) und CEN/TR 10347 (forming) should be observed. The national rules regarding job safety are mandatory.

    Detailed instructions for flame cutting, welding, machining and for the structural properties of DILLIMAX are provided in the technical information “MAKE SAVINGS WITH HIGH STRENGTH STEELS – DILLIMAX”.

    Surface condition

    Surface quality: Unless otherwise agreed, the specifications will be in accordance with EN 10163, class A2.

    Testings

    Tensile test at ambient temperature – transverse test specimens

    Tensile test perpendicular to the product surface at ambient temperature Improved deformation properties perpendicular to the product surface according to EN 10164 (quality classes Z15, Z25 or Z35) or corresponding standards can be agreed by order.

    Tensile and impact tests will be performed according to EN 10025-6 once per heat and 40 t. Tests on every heat treated plate may be possible on request.

    The test pieces are taken and prepared according to part 1 and 6 of EN 10025. The tensile test is carried out on specimens of gauge length Lo = 5.65⋅√So respectively Lo = 5·do, in accordance with EN ISO 6892-1. Tensile tests according to ASTM A370 may be agreed.

    The impact test will be carried out on Charpy-V-specimens in accordance with EN ISO 148-1 using a 2-mm striker. Unless otherwise agreed, the test will be performed at the lowest temperature of the corresponding quality on transverse test pieces.

    Unless otherwise agreed, the test results are documented in an inspection certificate 3.1 in accordance with EN 10204.

    Tolerances

    Unless otherwise agreed, the tolerances will be in accordance with EN 10029, with class A for thickness and table 4, steel group H, for the maximum flatness deviation. Smaller flatness deviations may be possible on request prior to order.