In this study, a hydroforming system was designed, built, and experimentally validated to perform lab-scale warm hydromechanical deep drawing (WHDD) tests and small-scale industrial production with all necessary heating, cooling, control and sealing systems. This manuscript describes the detailed design and fabrication stages of a warm hydroforming test and production system for the first time. In addition, performance of each subsystem is validated through repeated production and/or test runs as well as through part quality measurements. The sealing at high temperatures, the proper insulation and isolation of the press frame from the tooling and synchronized control had to be overcome. Furthermore, in the designed system, the flange area can be heated up to 400 °C using induction heaters in the die and blank holders (BH), whereas the punch can be cooled down to temperatures of around 10 °C. Validation and performance tests were performed to characterize the capacity and limits of the system. As a result of these tests, the fluid pressure, the blank holder force (BHF), the punch position and speed were fine-tuned independent of each other and the desired temperature distribution on the sheet metal was obtained by the heating and cooling systems. Thus, an expanded optimal process window was obtained to enable all or either of increased production/test speed, reduced energy usage and time. Consequently, this study is expected to provide other researchers and manufacturers with a set of design and process guidelines to develop similar systems.

References

1.
Li
,
D.
, and
Ghosh
,
A.
,
2003
, “
Tensile Deformation Behaviour of Aluminium Alloys at Warm Temperatures
,”
Mater. Sci. Eng.
,
A352
, pp.
279
286
.
2.
Kim
,
H. S.
,
Koc
,
M.
, and
Ni
,
J.
,
2004
, “
Determination of Proper Temperature Distribution for Warm Forming of Aluminum Sheet Materials
,”
ASME J. Manuf. Sci. Eng.
,
128
(
3
), pp.
622
633
.
3.
Choi
,
H.
,
Koç
,
M.
, and
Ni
,
J.
,
2008
, “
A Study on Warm Hydroforming of Al and Mg Sheet Materials: Mechanism and Proper Temperature Conditions
,”
ASME J. Manuf. Sci. Eng.
,
130
(
4
), p.
041007
.
4.
Mahabunphachai
,
S.
,
Carsley
,
J.
, and
Koç
,
M.
,
2011
, “
Investigations on Deformation Behavior of Aluminum Alloy 5754 Sheet Under Warm Hydroforming Conditions
,”
ASME J. Manuf. Sci. Eng.
,
133
(
5
), p.
051007
.
5.
Reddy
,
L. K.
,
2001
,
Principles of Engineering Metallurgy
,
New Age International Limited Publishers
,
New Delhi
.
6.
Groche
,
P.
,
Huber
,
R.
,
Dörr
,
J.
, and
Schmoecmel
,
D.
,
2002
, “
Hydromechanical Deep Drawing of Aluminum Alloys at Elevated Temperatures
,”
CIRP Ann. Manuf. Technol.
,
51
(
1
), pp.
215
218
.
7.
Kurz
,
G.
,
2004
, “
Heated Hydro-Mechanical Deep Drawing of Magnesium Sheet Metal
,”
TMS (The Minerals, Metals & Materials Society), Magnesium Technology
, Vol.
62
,
A. A.
Luo
, ed.,
TMS
,
Warrendale, PA
, pp.
67
71
.
8.
Siegert
,
K.
, and
Jager
,
S.
,
2004
, “
Warm Forming of Magnesium Sheet Metal
,”
SAE 2004 World Congress and Exhibition
, Detroit, MI,
SAE
Technical Paper No. 2004-01-1043.
9.
Budai
,
A. F.
,
Achimaş
,
G.
,
Neugebauer
,
R.
, and
Pröhl
,
M.
,
2013
, “
Method and Tool Design for Passive Sheet Metal Hydroforming on Conventional Single Action Presses
,”
ASME J. Manuf. Sci. Eng.
,
135
(
2
), p.
021014
.
10.
Xu
,
Y.
,
Kang
,
D.
, and
Zhang
,
S.
,
2004
, “
Investigation of SUS304 Stainless Steel With Warm Hydro-mechanical Deep Drawing
,”
J. Mater. Sci. Technol.
,
20
(
1
), pp.
92
93
.
11.
Mahabunphachai
,
S.
, and
Koç
,
M.
,
2010
, “
Investigations on Forming of Aluminum 5052 and 6061 Sheet Alloys at Warm Temperatures
,”
Mater. Des.
,
31
(
5
), pp.
2422
2434
.
12.
Koç
,
M.
,
Mahabunphachai
,
S.
, and
Billur
,
E.
,
2011
, “
Forming Characteristics of Austenitic Stainless Steel Sheet Alloys Under Warm Hydroforming Conditions
,”
Int. J. Adv. Manuf. Technol.
,
56
, pp.
97
113
.
13.
Gedikli
,
H.
,
Necati
,
Ö. C.
, and
Koç
,
M.
,
2011
, “
Comparative Investigations on Numerical Modeling for Warm Hydroforming of AA5754-O Aluminum Sheet Alloy
,”
Mater. Des.
,
32
(
5
), pp.
2650
2662
.
14.
Koç
,
M.
,
Agcayazi
,
A.
, and
Carsley
,
J.
,
2011
, “
An Experimental Study on Robustness and Process Capability of the Warm Hydroforming Process
,”
ASME J. Manuf. Sci. Eng.
,
133
(
2
), p.
021008
.
15.
Singh
,
S. K.
,
Mahesh
,
K.
,
Kumar
,
A.
, and
Swathi
,
M.
,
2010
, “
Understanding Formability of Extra-Deep Drawing Steel at Elevated Temperature Using Finite Element Simulation
,”
Mater. Des.
,
31
(
9
), pp.
4478
4484
.
16.
Keigler
,
M.
,
Bauer
,
H.
,
Harrison
,
D.
, and
De Silva
,
A. K. M.
,
2005
, “
Enhancing the Formability of Aluminium Components Via Temperature Controlled Hydroforming
,”
J. Mater. Process. Technol.
,
167
, pp.
363
370
.
17.
Lang
,
L.
,
Liu
,
B.
,
Li
,
T.
,
Zhao
,
X.
, and
Zeng
,
Y.
,
2012
, “
Experimental Investigation on Hydromechanical Deep Drawing of Aluminum Alloy With Heated Media
,”
Steel Res. Int.
,
83
(
3
), pp.
230
237
.
18.
Wagner
,
S. W.
,
Ng
,
K.
,
Emblom
,
W. J.
, and
Camelio
,
J. A.
,
2011
, “
Influence of Continuous Direct Current on the Micro Tube Hydroforming Process
,”
ASME
Paper No. MSEC2011-50257.
19.
Yi
,
H. K.
,
Pavlina
,
E. J.
,
Van Tyne
,
C. J.
, and
Moon
,
Y. H.
,
2008
, “
Application of a Combined Heating System for the Warm Hydroforming of Lightweight Alloy Tubes
,”
J. Mater. Process. Technol.
,
203
, pp.
532
536
.
20.
Superior Sealing Industrial Co., Ltd.
21.
Ge Mao Rubber Industrial Co., Ltd.
22.
“Parker Hannifin Corporation,” www.parker.com
You do not currently have access to this content.