AUTOMOTIVE COMPONENT WITH ENHANCED STRENGTH
20210140021 · 2021-05-13
Inventors
- Georg Frost (Steinheim, DE)
- Andreas FREHN (Delbrueck, DE)
- Karsten Bake (Delbrueck, DE)
- Martin Holzweissig (Paderborn, DE)
- Rainer Lapsien (Bueren-Wewelsburg, DE)
Cpc classification
B21D22/022
PERFORMING OPERATIONS; TRANSPORTING
B60R19/03
PERFORMING OPERATIONS; TRANSPORTING
B21D35/005
PERFORMING OPERATIONS; TRANSPORTING
C22C38/002
CHEMISTRY; METALLURGY
B21D53/88
PERFORMING OPERATIONS; TRANSPORTING
C25D13/22
CHEMISTRY; METALLURGY
International classification
B21D53/88
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An automotive component is produced by hot forming and press hardening a hardenable steel alloy having a tensile strength of at least 1700 MPa. The hardenable steel alloy, in addition to a balance made up of iron and melting-related impurities, has the following alloy elements carbon, niobium, and titanium. The automotive component is coated by a thermal coating process.
Claims
1-10. (canceled)
11. A hot formed and press hardened automotive component, comprising: a steel alloy having a tensile strength of at least 1700 MPa, wherein the steel alloy comprises a composition of the following alloy elements expressed in percent by weight, in addition to a balance of iron and melting-related impurities: TABLE-US-00002 carbon (C): 0.33-0.37, niobium (Nb): 0.02-0.06, titanium (Ti): .sup. 0.005-0.02, and wherein the automotive component has a thermal coating layer coated by a thermal coating process at a temperature of 150° C. to 450° C.
12. The automotive component according to claim 11, wherein the automotive component has a tensile strength Rm of greater than 1800 MPa.
13. The automotive component according to claim 11, wherein the automotive component is a bumper support.
14. The automotive component according to claim 11, wherein a total of a titanium content and a niobium content of the titanium and the niobium alloy elements is between 0.02 and 0.08 wt %, wherein the titanium content is greater than the niobium content by 0.01 wt %.
15. The automotive component according to claim 11, wherein the thermal coating process is implemented as a cathodic e-coat coating process at a temperature of 150° C. and 250° C. in a time of 1 to 30 minutes.
16. The automotive component according to claim 11, wherein at least one of the further alloy elements listed below is contained in the steel alloy, expressed in percent by weight: TABLE-US-00003 silicon (Si) 0.15-0.35 manganese (Mn) 1.1-1.5 phosphorus (P) max. 0.025 sulfur (S) max. 0.005 aluminum (Al) 0.01-0.08 boron (B) 0.001-0.003 chromium (Cr) 0.08-0.35 Cr + Mo 0.08-0.35.
17. The automotive component according to claim 15, wherein the automotive component has a yield strength RP0.2 of 1350-1600 MPa after the cathodic e-coat coating.
18. The automotive component according to claim 11, further comprising first and second skin-decarburized layers, wherein the first skin-decarburized layer is disposed at a first surface of the automotive component and the second skin-decarburized layer is disposed at a second surface of the automotive component.
19. The automotive component according to claim 18, wherein the skin-decarburized layers have a layer thickness of 5 to 70 μm.
20. The automotive component according to claim 18, wherein a carbon content in the skin-decarburized layers is at least 20% lower than in a middle stratum of the automotive component, wherein the middle stratum is disposed between the skin-decarburized layers.
21. The automotive component according to claim 11, wherein the automotive component has a tensile strength Rm of greater than 1850 MPa.
22. The automotive component according to claim 11, wherein the automotive component is a bumper arrangement with crash boxes comprising a weld-assembled component.
23. The automotive component according to claim 11, wherein the thermal coating process is implemented as a cathodic e-coat coating process at a temperature of between 150° C. and 250° C. in a time of 10 to 30 minutes.
24. The automotive component according to claim 11, further comprising a skin-decarburized layer disposed below the thermal coating layer.
25. The automotive component according to claim 18, wherein the skin-decarburized layers have a layer thickness of 10 to 40 μm.
26. The automotive component according to claim 11, wherein the steel alloy comprises the following element expressed in percent by weight: carbon (C): 0.33-0.35
27. The automotive component according to claim 11, wherein the steel alloy comprises the following element expressed in percent by weight: niobium (Nb): 0.03-0.05
28. The automotive component according to claim 11, wherein the steel alloy comprises the following element expressed in percent by weight: titanium (Ti): 0.005-0.015
29. The automotive component according to claim 11, wherein the steel alloy comprises the following element expressed in percent by weight: titanium (Ti): 0.005-0.01
30. A method of forming an automotive component, the method comprising: hot forming and press hardening a hardenable steel alloy to a tensile strength of at least 1700 MPa to obtain the automotive component, wherein the hardenable steel alloy comprises a composition of the following alloy elements expressed in percent by weight, in addition to a balance of iron and melting-related impurities: TABLE-US-00004 carbon (C): 0.33-0.37, niobium (Nb): 0.02-0.06, titanium (Ti): .sup. 0.005-0.02; and coating the automotive component with a thermal coating layer by a thermal coating process at a temperature of 150° C. to 450° C.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0051] The above-stated disclosure is additionally described by the elucidations which follow, and illustrated by the schematic figures, which are intended to serve for easy understanding of the disclosure.
[0052] In the drawings:
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[0059] The figures use the same reference numerals for identical or similar components, even when there is no repeated description on grounds of simplification.
DETAILED DESCRIPTION
[0060]
[0061] First of all, a blank 3 is inserted into a continuous furnace 4. The continuous furnace 4, for adjustment of the furnace atmosphere within the continuous furnace 4, is supplied with ambient air U. The continuous furnace 4 is also supplied with nitrogen N2 of technical-grade purity. The amount of nitrogen N2 of technical-grade purity supplied is adjusted as a function of the percentage proportion by volume of oxygen measured within the furnace atmosphere. For this purpose, for example, multiple measurement sites that measure the percentage proportion by volume of oxygen may be present within the continuous furnace 4. From the measurement sites, an average may then be formed. The blank 5 thus heated has an already skin-decarburized layer at each surface 6, 7. The heated blank 5 is then transferred into a hot-forming and press-hardening mold 8, where it is hot-formed and press-hardened. The automotive component 2 produced is removed from the hot-forming and press-hardening mold 8 and—without further illustration—is sent to the cathodic e-coat coating process.
[0062]
[0063] However, it is possible to produce further automotive components 2, structural automotive components, by the method of the disclosure. These further automotive components 2 are, for example, longitudinal members, cross-members, struts, roof members, sills or similar components of a motor vehicle body, or frame structure parts of a drive battery box.
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[0068] The foregoing description of some embodiments of the disclosure has been presented for purposes of illustration and description. It is not intended to be exhaustive or to limit the disclosure to the precise form disclosed, and modifications and variations are possible in light of the above teachings. The specifically described embodiments explain the principles and practical applications to enable one ordinarily skilled in the art to utilize various embodiments and with various modifications as are suited to the particular use contemplated. It should be understood that various changes, substitutions and alterations can be made hereto without departing from the spirit and scope of the disclosure.