METHOD OF MANUFACTURING PRESS FORMED PRODUCT
20190010570 ยท 2019-01-10
Assignee
Inventors
- Yasutaka SUZUKI (Ota-shi, JP)
- Tadashi IWANUMA (Isesaki-shi, JP)
- Ken-ichiro MORI (Takarazuka-shi, JP)
- Yuki NAKAGAWA (Toyohashi-shi, JP)
Cpc classification
B21D22/022
PERFORMING OPERATIONS; TRANSPORTING
B23K26/08
PERFORMING OPERATIONS; TRANSPORTING
B21D22/208
PERFORMING OPERATIONS; TRANSPORTING
B23K2101/34
PERFORMING OPERATIONS; TRANSPORTING
C22F1/043
CHEMISTRY; METALLURGY
International classification
C22F1/043
CHEMISTRY; METALLURGY
Abstract
The invention provides manufacturing a partially reinforced press formed product with high corrosion resistance and weldability. First and second steel plates having aluminum-based plating films are heated to an austenite range temperature by first and second furnaces, respectively, to transform the bodies of the first and second steel plates into austenite and form FeAl alloy layers on the surfaces of the first and second steel plates. Hot press forming is then performed to the first and second steel plates formed with the FeAl alloy layers, the first and second steel plates being superposed. The first and second steel plates, which are hot press formed, are then welded.
Claims
1. A method of manufacturing a press formed product, comprising: heating first and second steel plates each having aluminum-based plating films to an austenite range temperature while the first and second steel plates are not superposed, to transform bodies of the first and second steel plates into austenite and alloy the aluminum-based plating films so as to form FeAl alloy layers; performing hot press forming to the first and second steel plates on which the FeAl alloy layers are formed while the first and second steel plates are superposed but not welded; and welding the first and second steel plates which are hot press formed.
2. The method of claim 1, wherein the first and second steel plates are heated by first and second furnaces, respectively.
3. The method of claim 1, wherein the welding comprises laser welding.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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[0014]
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DETAILED DESCRIPTION OF THE INVENTION
[0018] An embodiment of the invention will be described referring to figures. First, as shown in
[0019] At this time, as shown in
[0020] The austenite range temperature TO is, for example, about 900 C., although it differs depending on the carbon contents of the first and second steel plates 1, 2. The aluminum-based plating film is an aluminum plating film containing 10% Si, for example.
[0021] In the described heating process, it is preferable to obtain the FeAl alloy layer 5 having a five-layered structure by controlling the heating amounts of the first and second steel plates 1, 2 properly in order to obtain high weldability thereafter. From a FeAlSi phase diagram, etc., this five-layered structure is supposed to contain Fe.sub.2Al.sub.5 in the first and third layers from the front surface, a mixed layer of Fe.sub.2Al.sub.5, FeAl, and Fe.sub.3Si.sub.2Al.sub.3 in the second layer, FeAl in the fourth layer, and Al ferrite solid solution in the fifth layer. The five-layered structure is described for example, in an article, the Journal of the Japan Welding Society, pp. 23-30, no. 6, vol. 78 (2009).
[0022] As described, since the first and second steel plates 1, 2 are heated by the first and second furnaces 3, 4, respectively, without being superposed, the heating amounts are optimized to realize the transformation of the first and second steel plates 1, 2 into austenite, and the FeAl alloy layers 5 with high corrosion resistance and weldability are formed on the surfaces of these plates 1, 2.
[0023] When the heating amounts of the first and second steel plates 1, 2 are in excess, the layer structure of the FeAl alloy layer 5 turns to a two-layered structure instead of a five-layered structure, degrading the weldability. However, since the embodiment employs a process of heating the first and second steel plates 1, 2 which are not superposed, the heating amounts of the steel plates are respectively optimized to realize both the austenitizing of the steel plates and the formation of the FeAl alloy layers 5 having the five-layered structure. Furthermore, the first and second steel plates 1, 2 may be heated by one furnace as long as these are not superposed.
[0024] Next, the first and second steel plates 1, 2 are taken out from the first and second furnaces 3, 4 simultaneously, and the second steel plate 2 is superposed on the first steel plate 1 in a region to be reinforced, as shown in
[0025] Then, as shown in
[0026] Since the first and second steel plates 1, 2 are rapidly cooled from the austenite range temperature, martensite transformation occurs and quenching is achieved.
[0027] The dies are then opened, and a press formed product 8 shown in
[0028] The first steel plate 1 and second steel plate 2 forming the press formed product 8 are then welded. In this case, since the press formed product 8 often has a complex three-dimensional shape such as a U-shape cross-section, for example, it is preferable to use laser welding which has more flexibility in welding portions rather than spot welding.
[0029] In the case of laser welding, as shown in
[0030] As described above, the manufacturing method of the embodiment enables manufacturing the partially reinforced press formed product 8 with high corrosion resistance and weldability. Furthermore, the first and second steel plates 1, 2 are superposed but not spot welded in hot press forming, and the welding is performed after the hot press forming. This prevents a problem that the steel plates shear near a welded portion due to sliding stress by hot press forming.