Title of Invention

LOW NICKEL CONTAINING CHROMIUM-NICKEL MANGANESE-COPPER AUSTENITIC STANILESS STEEL.

Abstract An austenitic stainless steel includes (a) 0.03wt% to 0.12wt% of C, (b) 0.2wt% to 1.0wt% of Si, (c) 7.5wt% to 10.5wt% of Mn, (d) 14.0wt% to 16.0wt% of Cr, (e) 1.0wt% to 5.0wt% of Ni, (f) 0.04wt% to 0.25wt% of N, (g) 1.0wt% to 3.5wt% of Cu, (h) trace amount of Mo, and the balance being Fe and incidental impurities. The austenitic stainless steel has a d -ferrite content less than 8.5 and equal to 6.77[(d) + (h)+1.5(b) ]-4.85 [ (e)+30(a)+30(f)+0.5(c)+0.3 (g) ] -52.75.
Full Text LOW NICKEL CONTAINING CHROMIUM-NICKEL-MANGANESE-COPPER
AUSTENITIC STANINLESS STEEL
This application claims priority of Taiwanese
patent Application No. 091124567, filed on October 23,
2002 .
This invention relates to an austenitic
stainless steel, more particularly to a low nickel
containing chromium-nickel-manganese-copper
austenitic stainless steel.
Conventional low nickel containing chromium-
nickel -manganese - copper austenitic stainless steel
has a reduced nickel content and acceptable
metallographic structure, mechanical strength,
corrosion resistance and workability, and contains
at least 16.5% by weight of chromium so as to provide
acceptable corrosion resistance. However, the
chromium content should not exceed 17.5% by weight
so as to prevent undesired formation of delta ferrite
( d -ferrite) during hot working and impairment to hot
workability. The aforesaid austenitic stainless
steel further contains at least 2.5% by weight of
nickel so as to improve cold workability and so as
to inhibit transformation of austenite into
martensite. However, nickel content should not exceed
5% by weight due to the relatively high price thereof.
Although the aforesaid austenitic stainless
steel is capable of providing acceptable corrosion
resistance and cold or hot workability, the chromium
content thereof is still high (previous investigation
has shown that at least 17% by weight of chromium is
necessary to provide minimum levels of corrosion
resistance), which can impair stability of the
austenitic stainless steel and which can cause
cracking during hot rolling.
Therefore, it is an object of the present
invention to provide a low nickel containing
chromium-nickel-manganese-copper austenitic
stainless steel that is capable of overcoming the
aforesaid drawbacks of the prior art.
According to this invention, there is provided
an austenitic stainless steel that comprises: (a)
0.03wt% to 0.12wt% of C; (b) 0.2wt% to 1.0wt% of Si;
(c) 7.5wt% to 10.5wt% of Mn; (d) 14.0wt% to 16.0wt%
of Cr; (e) 1.0wt% to 5.0wt% of Ni; (f) 0.04wt% to
0.25wt% of N; (g) 1.0wt% to 3.5wt% of Cu; (h) trace
amount of Mo; and the balance being Fe and incidental
impurities. The austenitic stainless steel has a 5
-ferrite content that is less than 8.5 and that
satisfies the following formula
d-ferrite = 6.77[(d) + (h)+1.5(b)] -4.85 [(e)+30(a)+30(f)+0.5(c)+0.3 (g)] -52.75.
DETAILED DESCRIPTION OF THE ACCOMPANYING DRAWINGS

In drawing which illustrates an embodiment of the
invention,
Fig. 1 is a diagram illustrating the relationship
between d -ferrite content of the preferred
embodiment of the austenitic stainless steel of this
invention and hot working temperature.
The preferred embodiment of the low nickel
containing chromium-nickel-manganese-copper
austenitic stainless steel of the present invention
comprises: (a) 0.03wt% to 0.12wt% of C; (b) 0.2wt%
to 1.0wt% of Si; (c) 7.5wt% to 10.5wt% of Mn; (d)
14.0wt% to 16.0wt% of Cr; (e) 1.0wt% to 5.0wt% of Ni ;
(f) 0.04wt% to 0.25wt% of N; (g) 1.0wt% to 3.5wt% of
Cu; (h) trace amount of Mo; and the balance being Fe
and incidental impurities. The austenitic stainless
steel has a 5 -ferrite content that is less than 8.5
and that satisfies the following formula
d-ferrite = 6.77 [(d) + (h)+1.5(b)] -4.85[(e)+30(a)+30(f)+0.5(c)+0.3(g)] -52.75,
wherein (a), (b), (c), (d), (e), (f), (g), (h) in the
formula mean the content of the respective elements
(wt%) .
The austenitic stainless steel can further
comprise 5 to 30 ppm of B so as to improve hot
workability. The contents of harmful impurities, such
as S (sulfur) and P (phosphorous), are as small as
possible. However, due to cost concerns associated
with removal of these impurities, the S content is
limited to 150 ppm, and the P content is limited to
0.06wt%.
Fig. 1 illustrates the relationship between the
d -ferrite content of the preferred embodiment of
the austenitic stainless steel of this invention and
temperature. The results show that when temperature
is raised to above 1250 OC during hot rolling, the
5-ferrite content rises sharply, which results in
the risk of edge cracking of a rolled plate of the
austenitic stainless steel. In addition, a minimum
temperature of 1050°C during hot rolling is required so
as to obtain the requisite mechanical strength.
Examples and Comparative Examples
The following Examples and Comparative Examples
illustrate the unexpectedly better results of this
invention over the prior art.
Table 1 illustrates an edge crack effect test
for different test specimens of the austenitic
stainless steel of Examples 1 to 9 and comparative
Examples 1 to 5, which differ in composition (only
elements Ni , C, Si, Mn, Cr, and Cu are shown) . The
test was conducted by hot rolling at a temperature
ranging from 1050 °C to 1250 °C. The test results show
that each Example of the austenitic stainless steel
of this invention has a d -ferrite content less than
8.5, and that no edge crack was observed for the test
specimens of Examples 1 to 9. Each of the test
specimens of the Comparative Examples 1 to 5 has a
5 -ferrite content greater than 8.5. Edge cracks
were found in each of the test specimens of the
Comparative Examples 1 to 5.
Table 2 illustrates a corrosion resistance test
(ASTM B117) using salt fog for different test
specimens of the austenitic stainless steel of
Examples 10 to 12 and comparative Example 6 (type
304 stainless steel) , which differ in composition
(only elements Ni, C, Si, Mn, Cr, Cu, and Bare shown) .
The test results show that each Example of the
austenitic stainless steel of this invention has a
corrosion rate that is as low as that of the type
304 stainless steel (no more than 0.1%) of the prior
art .
It is noted that the chromium content in each
of the Examples 1 to 12 of the austenitic stainless
steel of this invention is less than 17wt%, which
is a minimum requirement of the prior art for
providing minimum levels of corrosion resistance.
Table 3 illustrates compositions of test
specimens of the austenitic stainless steel of
Examples 13 to 22 and comparative Examples 7 to 10
(only elements Ni , C, Si, Mn, Cr, and Cu are shown) .
Table 4 illustrates a mechanical strength test for
the test specimens of the austenitic stainless steel
of the Examples 13 to 22 and the comparative Examples
7 to 10. The test results show that the austenitic
stainless steel of this invention has an elongation
better than those of type 304 stainless steel of the
prior art. Other mechanical properties, such as
tensile strength, yield strength, and hardness, of
the austenitic stainless steel of this invention are
comparable to those of type 304 stainless steel of
the prior art.
The aforesaid tests show that the austenitic
stainless steel of this invention is capable of
exhibiting excellent mechanical strength, corrosion
resistance, and phase stability during hot or cold
working with a relatively low nickel content and a
low chromium content as compared to those of the prior
art .
WE CLAIM:
1. An austenitic stainless steel characterized by:
(a) 0.03 wt% to 0.12wt% of C.
(b) 0.2 wt% to 1.0 wt% of Si,
(c) 7.5wt% to 10.5 wt% of Mn;
(d) 14.0wt% to 16.0wt% of Cr;
(e) 1.0 wt% to 5.0wt% of Ni;
(f) 0.04wt% to 0.25wt% of N;
(g) 1.0wt% to 3.5wt% of Cu;
(h) trace amount of Mo; and
the balance being Fe and incidental impurities;
wherein said austenitic stainless steel has a 5-ferrite content that is less
than 8.5 and that satisfies the following formula
8-ferrite=6.77[(d)+(h)+1.5(b)]-4.85[(e)+30(a)+30(f)+0.5(c)+0.3(g)]-52.75.
2. The austenitic stainless steel of Claim 1, wherein 5 to 30 ppm of B is
present.
3. The austenitic stainless steel of Claim 1, wherein no more than 150
ppm of S is present.
4. The austenitic stainless steel of Claim 1, wherein no more than 0.06
wt% of P is present.
An austenitic stainless steel includes (a)
0.03wt% to 0.12wt% of C, (b) 0.2wt% to 1.0wt% of Si,
(c) 7.5wt% to 10.5wt% of Mn, (d) 14.0wt% to 16.0wt%
of Cr, (e) 1.0wt% to 5.0wt% of Ni, (f) 0.04wt% to
0.25wt% of N, (g) 1.0wt% to 3.5wt% of Cu, (h) trace
amount of Mo, and the balance being Fe and incidental
impurities. The austenitic stainless steel has a d
-ferrite content less than 8.5 and equal to
6.77[(d) + (h)+1.5(b) ]-4.85 [ (e)+30(a)+30(f)+0.5(c)+0.3 (g) ] -52.75.

Documents:

23-(04-01-2013)-KOL-2003-CORRESPONDENCE.pdf

23-KOL-2003-(02-11-2012)-FORM-27.pdf

23-KOL-2003-FORM-27.pdf

23-kol-2003-granted-abstract.pdf

23-kol-2003-granted-claims.pdf

23-kol-2003-granted-correspondence.pdf

23-kol-2003-granted-description (complete).pdf

23-kol-2003-granted-drawings.pdf

23-kol-2003-granted-examination report.pdf

23-kol-2003-granted-form 1.pdf

23-kol-2003-granted-form 18.pdf

23-kol-2003-granted-form 2.pdf

23-kol-2003-granted-form 26.pdf

23-kol-2003-granted-form 3.pdf

23-kol-2003-granted-form 5.pdf

23-kol-2003-granted-priority document.pdf

23-kol-2003-granted-reply to examination report.pdf

23-kol-2003-granted-specification.pdf

23-kol-2003-granted-translated copy of priority document.pdf

23-KOL-2003.pdf


Patent Number 223848
Indian Patent Application Number 23/KOL/2003
PG Journal Number 39/2008
Publication Date 26-Sep-2008
Grant Date 23-Sep-2008
Date of Filing 21-Jan-2003
Name of Patentee YIEH UNITED STEEL CORP
Applicant Address 600, SHING LOONG ST., JIA HSING LII, KANGSHAN JENN, KAOHSIUNG HSIEN
Inventors:
# Inventor's Name Inventor's Address
1 HSIEH MENG-HSIN 18, ALLEY 10, 548, SEC. 4, PEI ANNAN DIST., TAINAN CITY
2 WU YI-CHENG 10F, 50, LANE 177, KUANG HSING ST., TSO YING DIST., KAOHSIUNG CITY
3 HUANG PEI-TE 6F-4, 123-7, TA PI RD., NIAO SUNG HSIANG, KAOHSIUNG HSIEN
4 LIU HAO-SHANG 2, KANG NING ST., CHIEN CHEN DIST., KAOHSIUNG CITY
PCT International Classification Number C22C 38/58
PCT International Application Number N/A
PCT International Filing date
PCT Conventions:
# PCT Application Number Date of Convention Priority Country
1 091124567 2002-10-23 Chinese Taipei