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EP 2 065 478 B1 |
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EUROPEAN PATENT SPECIFICATION |
| (45) |
Mention of the grant of the patent: |
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13.02.2019 Bulletin 2019/07 |
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Date of filing: 28.11.2008 |
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International Patent Classification (IPC):
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A ZR-BASED AMORPHOUS ALLOY AND A PREPARATION METHOD THEREOF
ZR-BASIERTE AMORPHE LEGIERUNG UND HERSTELLUNGSVERFAHREN DAFÜR
ALLIAGE AMORPHE À BASE DE ZR ET SON PROCÉDÉ DE PRÉPARATION
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Designated Contracting States: |
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AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MT NL NO PL
PT RO SE SI SK TR |
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Priority: |
30.11.2007 CN 200710187786
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Date of publication of application: |
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03.06.2009 Bulletin 2009/23 |
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Proprietor: Byd Company Limited |
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Shenzhen 518118 (CN) |
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| (72) |
Inventors: |
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- Lu, Kun
Shenzhen 518118 (CN)
- Jiang, Linlin
Shenzhen 518118 (CN)
- Zhang, Faliang
Shenzhen 518118 (CN)
- Gong, Qing
Shenzhen 518118 (CN)
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| (74) |
Representative: Epping - Hermann - Fischer |
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Patentanwaltsgesellschaft mbH
Schloßschmidstraße 5 80639 München 80639 München (DE) |
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References cited: :
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- ZHAO, DEQIAN; WANG, WEIHUA; ZHUANG, YANXIN; PAN MINGXIANG; JI, YINGFEI; MA, XUEMING:
"FORMATION AND PERFORMANCE OF NEW ZR-TI-CU-NI-BE-FE BULD AMORPHOUS ALLOY" SCIENCE
IN CHINA (SERIES A), [Online] vol. 43, no. 3, 1 March 2000 (2000-03-01), pages 307-311,
XP002512309 ISSN: 1862-2763 Retrieved from the Internet: URL:http://www.springerlink.com/content/62
188vn764568505/> [retrieved on 2009-01-27]
- SUN,JIAN-FEI;SHEN,JUN;GAO,YUI-LAI: "Effect of Sn addition on thermal stability of
(Zr52.5Ti5Al10Ni14.6Cu17.9)(100-x)Snx alloys" TRANS. NONFERROUS MET. SOC. CHINA, vol.
13, May 2003 (2003-05), pages 64-67, XP008101301
- JOHNSON W L: "Fundamental aspects of bulk metallic glass formation in multicomponent
alloy" MATERIALS SCIENCE FORUM, AEDERMANNSFDORF, CH, vol. 225-227, 1 January 1996
(1996-01-01), pages 35-50, XP008100967 ISSN: 0255-5476
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Remarks: |
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The file contains technical information submitted after the application was filed
and not included in this specification |
|
| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
FIELD OF THE DISCLOSURE
[0001] The present disclosure relates to a Zr-based amorphous alloy and a preparing method
thereof.
BACKGROUND OF THE DISCLOSURE
[0002] Amorphous metallic alloys are disordered in the long range but ordered in the short
range. They have desirable physical and chemical properties, such as high strength,
high hardness, high wearing resistance, high corrosion resistance, relatively wide
elastic range, high electric resistance, good superconductivity, and low magnetic
loss. Amorphous metallic alloys have huge potential when used as structural materials.
They are widely used in many fields such as mechanics, IT electronics, the military
industry and so on.
[0003] However, some characteristics of the amorphous metallic alloys limit their applications.
For example, it is difficult to manufacture large size amorphous alloys. To obtain
the disordered structure in the long range, atoms' spontaneous movement in the freezing
process shall be restrained. The higher the cooling speed is, the lower the possibility
is for the atoms to form orderly arrayed crystalline materials via spontaneous movement.
But as product size increases, the internal cooling speed within the product is declining.
Thus, the internal amorphous degree is low in the long range and it is difficult to
form large size amorphous structures.
[0004] Also, it is difficult to effectively improve the plasticity characteristics of the
amorphous materials. Due to their particular structure, while under stress, the amorphous
alloy materials do not have the internal deformation mechanism as crystalline materials
do in order to resist deformation. So when the stress reaches a certain degree, the
amorphous alloy material may break suddenly, which may lead to catastrophic accidents.
Thus, the applications of the amorphous alloy materials as structural materials are
limited.
[0005] Zhao et al. discloses a Zr-Ti-Cu-Ni-Be-Fe bulk amorphous alloy and its preparing
method (
Forming And Performance of The Zr-Ti-Cu-Ni-Be-Fe Bulk Amorphous Alloy And Amorphous-Based
Nano-Composite, Zhao De Qian, Zhang Yong, Pan Ming Xiang, Meng Li Qin, Wang Wei Hua,
Acta Metallurgica Sinica, March, 2000). The method comprises adding 2-10 atomic percent of Fe to form a nano crystalline
composite material in order to change the magnetic susceptibility of the material.
As a result of the addition of Fe in increasing amount, sharp diffraction peaks begin
to appear in the XRD diagram, indicating crystallization. It shows that the addition
of relatively large amount of iron is effective in affecting the amorphous alloy forming
ability. Zhao et al. however does not address the issues of large size amorphous alloy
manufacturing and the plasticity of the amorphous alloy materials.
Zhao et al. "Formation and Performance of New Zr-Ti-Cu-Ni-Be-Fe Bulk Amorphous Alloy"
Science in China (series A) vol. 43, no. 3, pages 307 to 311 reports the formation of the new Zr-Ti-Cu-Ni-Be-Fe bulk amorphous alloy with high
strength.
SUMMARY OF THE DISCLOSURE
[0006] The present invention provides a Zr-based amorphous alloy according to claim 1 and
a method for the preparation thereof according to claim 6. Preferred embodiments are
set forth in the subclaims.
DESCRIPTION OF THE DRAWINGS
[0007]
Fig. 1 is the quasi-three component phase diagram (Zr, Ti, Sn)-(Cu, Ni)-(Be, Fe) of
the amorphous alloy.
Fig. 2 is the stress-strain diagram of the amorphous alloy prepared in Example 1 and
Control 1.
Fig. 3 is the XRD diagram of the amorphous alloy prepared in the Examples 1-5 and
Control 1.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0008] According to one embodiment of the present disclosure, a Zr-based amorphous alloy
as defined in claim 1 is provided. Preferred embodiments are set forth in the subclaims.
[0009] Referring to Fig. 1, the quasi-three component phase diagram of the amorphous alloy
composition is shown. The large parallelogram area is the amorphous alloy forming
area, the boundary of which is determined by the composition range of the amorphous
alloy according to one embodiment of the present disclosure. The small parallelogram
area is the preferred amorphous alloy forming area, the boundary of which is determined
by the preferred composition range of the amorphous alloy according to one embodiment
of the present disclosure. The three vertexes of the quasi-three component phase diagram
respectively represent the elements in the amorphous alloy. The alloy in Fig. 1 does
not include ETM and LTM. The numbers on each axis represent the atomic percentages
of the elements in the alloy.
[0010] According to another embodiment of the present disclosure, a method for preparing
a Zr-based amorphous alloy as defined in claim 6 is provided. The method comprises
vacuum melting an amorphous alloy material and cooling the amorphous alloy material
to form an amorphous alloy, both under inert gas.
[0011] The material for preparing the Zr-based amorphous alloy comprises Zr, Ti, Cu, Ni,
Fe, and Be. The material for preparing the Zr-based amorphous alloy also comprises
Sn, and optionally ETM and LTM.
[0012] The amount of each element added should be adjusted such that the elements in the
raw material have the following formula: (Zr
xTi
ySn
z)
a : ETM
b : (Cu
mNi
n)
c : Fe
d : LTM
e : Be
f, wherein a, b, c, d, e and f, x, y and z, m and n, ETM, and LTM are as defined above.
[0013] In a preparing method for a Zr-based amorphous alloy, any suitable melting method
can be used. For example, the melted raw materials should be mixed first, and then
cooled to form ingots. In this step, the raw materials can be melted in an electric
arc melting equipment or an induction melting equipment. The melting temperature and
time differ to some extent according to the heating process selected. Usually, the
melting temperature can be about 1000-2700°C, preferably about 1500-2000°C. The melting
time is about 5-20 minutes. The vacuum level is not higher than about 200 Pa, preferably
about 0.01-5 Pa.
[0014] As a pre-process before molding, the ingots were crushed as if the molding process
need. The ingots then can be re-melted and molding.. Electric arc melting, induction
melting, and resistance melting are commonly used in the re-melting process. The re-melting
temperature can be about 1000-2300°C, preferably about 1000-1500°C. The vacuum level
is not higher than about 200 Pa, preferably about 0.01-5 Pa. Any suitable molding
method can be used to form the amorphous alloy. For example, melt-spinning, copper
mold casting, suction casting, die casting, jetting molding, or water quenching can
be used. The cooling speed of the molding process can be about 10-10
4 K/s. Since the critical dimensions differ among different components, different molding
methods can be selected. The inert gas can be one or more elements selected from the
SF
6 gas and Group Zero elements of the Element Periodic Table.
Example 1
[0015] A preparation method of a Zr-based amorphous alloy is illustrated in this example.
[0016] Raw materials Zr, Ti, Sn, Cu, Ni, Fe, Be (about 25 grams) were added to an electric
arc melting equipment (Shen Yang Scientific Instrument Manufacturing Company Limited).
The formulars of the raw materials were as follows: (Zr
0.74Ti
0.25Sn
0.01)
55.34(Cu
0.56Ni
0.44)
20.65Fe
1.96Be
22.05. The equipment was vacuumized to about 5 Pa. The raw material was melted at about
2000 °C under Ar protection for about 6 minutes. The molten master alloy was mixed
sufficiently, and then cooled into an ingot. The ingot was re-melted at about 1500
°C using electric arc melting, and then cooled in a copper mold casting process with
a cooling speed of about 10
2 k/s to obtain the Zr-based amorphous alloy sample C1.
Example 2
[0017] Another preparation method of a Zr-based amorphous alloy is illustrated in this example.
[0018] Raw materials Zr, Ti, Sn, Cu, Ni, Fe, Be (about 200 kg) were added to an induction
melting equipment (Zhongbei Technology). The formulars of the raw materials were as
follows: (Zr
0.74Ti
0.25Sn
0.01)
55.34(Cu
0.56Ni
0.44)
20.65Fe
1.96Be
22.05. The equipment was vacuumized to about 5 Pa. The raw materials were melted at about
1800 °C under Ar protection for about 10 minutes. The molten master alloy was mixed
sufficiently, and then cooled into an ingot. The ingot was re-melted at about 1200
°C using resistance heating, and then cooled in a die-casting process with a cooling
speed of about 10
4 k/s to obtain the Zr-based amorphous alloy sample C2.
Example 3
[0019] Yet another preparation method of a Zr-based amorphous alloy is illustrated in this
example.
[0020] Raw materials Zr, Ti, Sn, Cu, Ni, Fe, Be (about 20 g) were added to a quartz tube
(Zhongbei Technology). The formulars of the raw materials were as follows: (Zr
0.80Ti
0.17Sn
0.03)
40Y
5Nb
5(Cu
0.64Ni
0.36)
25Fe
5Be
20. The tube was vacuumized to about 200 Pa. The raw materials were melted at about
2000 °C by induction heating under Ar protection for about 5 minutes. The molten master
alloy was mixed sufficiently, and then cooled into an ingot. The ingot was re-melted
at about 1500 °C by induction heating, and then cooled in a water quenching process
with a cooling speed of about 10
3 k/s to obtain the Zr-based amorphous alloy sample C3.
Example 4
[0021] Still another preparation method of a Zr-based amorphous alloy is illustrated in
this example.
[0022] Raw materials Zr, Ti, Sn, Cu, Ni, Fe, Be (about 200 kg) were added into an induction
melting equipment. The formulas of the raw materials were as follows: (Zr
0.65Ti
0.29Sn
0.06)
50(Cu
0.5Ni
0.5)
20Co
10Fe
3Be
17. The equipment was vacuumized to about 5 Pa. The raw materials were induction melted
at about 1800 °C under Ar protection for about 10 minutes. The molten master alloy
was mixed sufficiently, and then cooled it into an ingot. The ingot was re-melted
at about 1000 °C by resistance heating, and then was melt-spinned with a cooling speed
of about 10
4 k/s to obtain the Zr-based amorphous alloy sample C4.
Example 5
[0023] Yet still another preparation method of a Zr-based amorphous alloy is illustrated
in this example.
[0024] Raw materials Zr, Ti, Sn, Cu, Ni, Fe, Be (about 20 g) were added into a quartz tube
(Middle North Technology). The formulas of the raw materials were as follows: (Zr
0.75Ti
0.24Sn
0.01)
60W
3(Cu
0.55Ni
0.45)
15Pd
2Zn
1Fe
4Be
15. The tube was vacuumized to about 2×10
-2 Pa. The raw materials were induction melted at about 2000 °C under Ar protection
for about 5 minutes. The molten master alloy was mixed sufficiently, and then cooled
into an ingot. The ingot was re-melted at about 1500 °C by induction heating, and
then cooled in a water quenching process with a cooling speed of about 10
4 k/s to obtain the Zr-based amorphous alloy sample C5.
Control 1
[0025] The control illustrates an amorphous material prepared according to the present art.
[0026] Raw materials Zr, Ti, Cu, Ni, Be, Fe (about 25 grams) were added into an electric
arc melting equipment (Shen Yang Technical Instruments Manufacture Company Limited).
The formulas of the raw materials were as follows: Zr
41Ti
14Cu
11Ni
9.5Fe
2Be
22.5. The equipment was vacuumized to about 5 Pa. The starting materials were melted at
about 2000 °C under Ar protection for about 6 minutes. The molten master alloy was
mixed sufficiently, and then cooled into an ingot. The ingot was re-melted at about
1500 °C by electric arc melting, and then was copper mold cast with a cooling speed
of about 10
2 k/s to obtain the Zr-based amorphous alloy sample D1.
Experimental:
Testing methods
(1) Compression test
[0027] The samples were tested on a XinSansi CMT5000 series testing machine with a measuring
range of 30KN and a loading speed of about 0.5 mm/minute. The stress-strain conditions
of the sample C1 and D1 were tested. The test results are showed in Fig 2.
(2) Hardness test
[0028] The samples were tested on a Micro Hardness Text Hv1000 Vickers Hardness Testing
Machine. The weight of the pressure head was about 200 g, and the loading time was
about 10 seconds. Datas of three test points were obtained for each sample to calculate
the arithmetic average value. The results are showed in Table 1.
(3) XRD analysis
[0029] XRD analyzes the physical phase of an alloy material in order to estimate whether
the alloy is amorphous. The samples were made into powder for test on a Model D-MAX2200PC
X-ray Powder Diffractometer. Using a Cu Kα radiation. The incidence wave length λ
was about 1.54060 Å. The accelerating voltage was about 40 kV. The current was about
20 mA. Step scan was used with a step size of about 0.04 degree. The test results
are showed in Fig 3.
(4) The test of critical dimensions
[0030] A wedged sample formed in the copper mold casting process was cut from the top by
a thickness of about 1 mm. The cross section after cutting was analyzed by XRD. The
structure type was determined. If the structure type was an amorphous alloy, then
the cutting process was continued until the structure was no longer an amorphous alloy.
The total cutting thickness was recorded. The critical dimension was the total cutting
thickness minus 1 mm. The results are showed in Table 1.
Table 1
| Serial No. |
C1 |
C2 |
C3 |
C4 |
C5 |
D1 |
| Critical Dimension (mm) |
>14 |
>14 |
14 |
12 |
12 |
8 |
| Average Hardness (Hv) |
553 |
553 |
547 |
539 |
548 |
537 |
[0031] From the results showed in Table 1, the Zr-based amorphous alloys provided according
to embodiments of the present disclosure have critical dimensions larger than about
1 centimeter. Meanwhile, they have relatively higher hardness. As shown in Fig. 3,
there are no sharp diffraction peaks in the XRD diagrams of Sample C1, C2, C3, C4,
C5 and D1, which indicates the alloys have a high degree of amorphization. As shown
in Fig. 2, the Zr-based amorphous alloy C1 provided according to one embodiment of
the present disclosure and the Zr-based amorphous alloy D1 provided according to the
prior art assume substantially overlapping curves in the low stress area when identical
stresses were applied. However, as the stresses increased, D1 could only sustain a
relatively low strain, and would break easily. Meanwhile, the curve representing the
C1 alloy was bending, which indicates that the strain capacity of the C1 alloy is
much better than D1, that is, the Zr-based amorphous alloy according to embodiments
of the present disclosure has better plasticity.
1. A Zr-based amorphous alloy, consisting of
40-75 atomic percent of (ZrxTiySnz),
10-35 atomic percent of (CumNin),
0.5-5 atomic percent of Fe,
15-25 atomic percent of Be,
0-10 atomic percent of ETM, and
0-10 atomic percent of LTM,
wherein x, y and z are atomic fractions, and x+y+z equals to 1;
wherein x is 0.6-0.85, and z is in the range of 0.01x - 0.1x;
wherein m and n are atomic fractions, and m+n equals to 1; and
wherein m is 0.5-0.65
wherein ETM comprises at least one element selected from Group IIIB, Group IVB, Group
VB and Group VIB of the Element Periodic Table, provided that ETM is not Zr or Ti,
and
wherein LTM comprises at least one element selected from Group IB, Group IIB, Group
VIIB, Group VIIIB of the Element Periodic Table, provided that LTM is not Cu, Ni or
Fe.
2. The amorphous alloy according to claim 1, wherein ETM is one or two elements selected
from the Group consisting of Sc, Y, La, Ce, Pr, Nd, Hf, V, Nb, Ta, Cr, Mo, and W,
and wherein LTM is one or two elements selected from the Group consisting of Mn, Tc,
Re, Ru, Os, Co, Rh, Ir, Pd, Pt, Ag, Au, Zn, Cd, and Hg, preferably ETM and LTM together
comprises 1-3 elements.
3. The amorphous alloy according to claim 1 or 2, which consists of 40-60 atomic percent
of (ZrxTiySnz), and 15-25 atomic percent of (CumNin).
4. The amorphous alloy according to any one of claims 1 to 3, the critical dimension
of which is large than 1cm.
5. The Zr-based amorphous alloy of claim 1, wherein said alloy consists of 40-75 atomic
percent of (ZrxTiySnz), 10-35 atomic percent of (CumNin), 0.5-5 atomic percent of Fe, and 15-25 atomic percent of Be,
wherein x, y and z are atomic fractions, and x+y+z equals to 1,
wherein x is 0.6-0.85, and z is in the range of 0.01x - 0.1x;
wherein m and n are atomic fractions, and m+n equals to 1; and
wherein m is 0.5-0.65.
6. A method for preparing a Zr-based amorphous alloy according to any one of claims 1
to 5: melting a raw material comprising Zr, Ti, Cu, Ni, Fe, Be, and Sn under a vacuum
of less than 200 Pa to form an alloy mixture under a vacuum circumstance; and molding
the alloy mixture and cooling to form the amorphous alloy wherein the cooling speed
of the cooling molding process is 10-104 K/s.
7. The method according to claim 6, wherein the raw material further comprises one or
both of ETM and LTM, wherein ETM comprises at least one element selected from Group
IIIB, Group IVB, Group VB and Group VIB of the Element Periodic Table, provided that
ETM is not Zr or Ti, preferably ETM is one or two elements selected from the Group
consisting of Sc, Y, La, Ce, Pr, Nd, Hf, V, Nb, Ta, Cr, Mo, and W, wherein LTM comprises
at least one element selected from Group IB, Group IIB, Group VIIB, Group VIIIB of
the Element Periodic Table, provided that LTM is not Cu, Ni or Fe, preferably LTM
is one or two elements selected from the Group consisting of Mn, Tc, Re, Ru, Os, Co,
Rh, Ir, Pd, Pt, Ag, Au, Zn, Cd, and Hg, more preferably ETM and LTM together comprises
1-3 elements.
8. The method according to claim 6 or 7, wherein the elements in the raw material have
the following formula:
Zr
g : Ti
h : Sn
i : ETM
b : (Cu
k : Ni
l : Fe
d : LTM
e : Be
f,
wherein b, d, e, f, g, h, i, k and 1 are atomic percentages;
wherein g is 24-63.75 %, preferably 24-51 %, h is 2.6-29.55 %, preferably , 2.6-23.64,
i is 0.24-6.375 %, preferably 0.24 - 5.1 %, b is 0-10%, k is 5-22.75%, preferably
7.5-16.25%, 1 is 3.5-17.5%, preferably 5.25-12.5%, d is 0.5-5%, e is 0-10%, and f
is 15-25%,
with the proviso that the amount of Zr, Ti and Sn adds up to 40-75 atomic percent,
the proviso that the atomic amount of Sn is 1% - 10 of the atomic amount of Zr, the
proviso that the amount of Cu and Ni adds up to 10-35 atomic percent, preferably 15-25
atomic percent and the proviso that the atomic amount of Ni is 53.85% - 100% of the
atomic amount of Cu.
9. The method according to any one of claims 6 to 8, wherein the melting step comprises:
melting the raw material to form a molten mixture;
cooling the molten mixture to form at least one ingot; and
re-melting the at least one ingot to form the alloy mixture.
10. The method according to any one of claims 6 to 9, wherein the raw material is melted
under a vacuum of less than 5 Pa.
11. The method according to any one claims 6 to 10, wherein the raw material is melted
at a temperature of 1000 - 2700 °C.
12. The method according to any one of claims 6 to 11, wherein the molding is a cold molding
process.
13. The method according to any one of claims 6 to 12, wherein the molding is a process
selected from a Group consisting of melt-spinning, copper mold casting, suction casting,
die casting, jetting molding, and water quenching.
14. The method according to any one of claims 6 to 13, wherein the raw material is melted
in the presence of an inert gas, preferably in the presence of one or more gases selected
from the Group consisting of SF6 and Group Zero gases.
1. Zr-basierte amorphe Legierung, bestehend aus:
40-75 Atomprozent (ZrxTiySnz)
10-35 Atomprozent (CumNin),
0,5-5 Atomprozent Fe,
15-25 Atomprozent Be,
0-10 Atomprozent eines frühen Übergangsmetalls (ETM), und
0-10 Atomprozent eines späten Übergangsmetalls (LTM),
wobei es sich bei x, y und z um Atombrüche handelt und x+y+z gleich 1 ist;
wobei x 0,6-0,85 beträgt, und z in dem Bereich von 0,01x bis 0,1x liegt;
wobei es sich bei m und n um Atombrüche handelt und m+n gleich 1 ist; und
wobei m 0,5-0,65 beträgt
wobei das ETM zumindest ein Element ausgewählt aus der Gruppe IIIB, Gruppe IVB, Gruppe
VB und Gruppe VIB des Periodensystems der Elemente aufweist, vorausgesetzt bei dem
ETM handelt es sich nicht um Zr oder Ti, und
wobei das LTM zumindest ein Element ausgewählt aus der Gruppe IB, Gruppe IIB, Gruppe
VIIB, Gruppe VIIIB des Periodensystems der Elemente aufweist, vorausgesetzt bei dem
LTM handelt es sich nicht um Cu, Ni oder Fe.
2. Amorphe Legierung nach Anspruch 1, wobei es sich bei dem ETM um ein oder zwei Element(e)
ausgewählt aus der Gruppe bestehend aus Sc, Y, La, Ce, Pr, Nd, Hf, V, Nb, Ta, Cr,
Mo und W handelt, und wobei es sich bei dem LTM um ein oder zwei Element(e) ausgewählt
aus der Gruppe bestehend aus Mn, Tc, Re, Ru, Os, Co, Rh, Ir, Pd, Pt, Ag, Au, Zn, Cd
und Hg handelt, vorzugsweise umfassen das ETM und das LTM zusammen 1-3 Elemente.
3. Amorphe Legierung nach Anspruch 1 oder 2, die aus 40-60 Atomprozent (ZrxTiySnz) und 15-25 Atomprozent (CumNin) besteht.
4. Amorphe Legierung nach einem der Ansprüche 1 bis 3, deren kritische Größe mehr als
1 cm beträgt.
5. Zr-basierte amorphe Legierung nach Anspruch 1, wobei besagte Legierung aus 40-75 Atomprozent
(ZrxTiySnz), 10-35 Atomprozent (CumNin), 0,5-5 Atomprozent Fe und 15-25 Atomprozent Be besteht,
wobei es sich bei x, y und z um Atombrüche handelt und x+y+z gleich 1 ist,
wobei x 0,6-0,85 beträgt, und z in dem Bereich von 0,01x bis 0,1x liegt;
wobei es sich bei m und n um Atombrüche handelt und m+n gleich 1 ist; und
wobei m 0,5-0,65 beträgt.
6. Verfahren zur Herstellung einer Zr-basierten amorphen Legierung nach einem der Ansprüche
1 bis 5: Schmelzen eines Rohstoffs umfassend Zr, Ti, Cu, Ni, Fe, Be und Sn in einem
Vakuum von weniger als 200 Pa zur Bildung eines Legierungsgemisches unter einer Vakuumbedingung;
und Formung des Legierungsgemisches und Kühlung zur Bildung der amorphen Legierung,
wobei die Abkühlgeschwindigkeit des Formkühlungsprozesses 10-104 K/s beträgt.
7. Verfahren nach Anspruch 6, wobei der Rohstoff außerdem eines oder beide von dem ETM
und dem LTM umfasst, wobei das ETM zumindest ein Element ausgewählt aus Gruppe IIIB,
Gruppe IVB, Gruppe VB und Gruppe VIB des Periodensystems der Elemente aufweist, vorausgesetzt
bei dem ETM handelt es sich nicht um Zr oder Ti, vorzugsweise es sich bei dem ETM
um ein oder zwei Element(e) ausgewählt aus der Gruppe bestehend aus Sc, Y, La, Ce,
Pr, Nd, Hf, V, Nb, Ta, Cr, Mo und W handelt, wobei das LTM zumindest ein Element ausgewählt
aus der Gruppe IB, Gruppe IIB, Gruppe VIIB, Gruppe VIIIB des Periodensystems der Elemente
aufweist, vorausgesetzt bei dem LTM handelt es sich nicht um Cu, Ni oder Fe, vorzugsweise
es sich bei dem LTM um ein oder zwei Element(e) ausgewählt aus der Gruppe bestehend
aus Mn, Tc, Re, Ru, Os, Co, Rh, Ir, Pd, Pt, Ag, Au, Zn, Cd und Hg handelt, ferner
bevorzugt das ETM und das LTM zusammen 1-3 Elemente aufweisen.
8. Verfahren nach Anspruch 6 oder 7, wobei die Elemente in dem Rohstoff die folgende
Formel haben:
Zr
g : Ti
h : Sn
i: ETM
b : (Cu
k : Ni
l: Fe
d : LTM
e : Be
f,
wobei es sich bei b, d, e, f, g, h, i, k und l um Atomprozente handelt;
wobei g 24-63,75 % beträgt, vorzugsweise 24-51 %, h 2,6-29,55 % beträgt, vorzugsweise
2,6-23,64, i 0,24-6,375 % beträgt, vorzugsweise 0,24-5,1 %, b 0-10 % beträgt, k 5-22,75
% beträgt, vorzugsweise 7,5-16,25 %, 13,5-17,5 % beträgt, vorzugsweise 5,25-12,5 %,
d 0,5-5 % beträgt, e 0-10 % beträgt und f 15-25 % beträgt,
mit der Maßgabe, dass die Menge von Zr, Ti und Sn 40-75 Atomprozent beträgt, der Maßgabe,
dass die Atommenge von Sn 1 % - 10 der Atommenge von Zr beträgt, der Maßgabe, dass
die Menge von Cu und Ni 10-35 Atomprozent ergibt, vorzugsweise 15-25 Atomprozent,
und der Maßgabe, dass die Atommenge von Ni 53,85 % - 100 % der Atommenge von Cu beträgt.
9. Verfahren nach einem der Ansprüche 6 bis 8, wobei der Schmelzschritt umfasst:
Schmelzen des Rohstoffs zur Bildung eines Schmelzegemisches;
Kühlung des Schmelzegemisches zur Bildung zumindest eines Blocks; und
Umschmelzen des zumindest einen Blocks zur Bildung der Legierungsmischung.
10. Verfahren nach einem der Ansprüche 6 bis 9, wobei der Rohstoff in einem Vakuum von
weniger als 5 Pa geschmolzen wird.
11. Verfahren nach einem der Ansprüche 6 bis 10, wobei der Rohstoff bei einer Temperatur
von 1.000 - 2.700 °C geschmolzen wird.
12. Verfahren nach einem der Ansprüche 6 bis 11, wobei es sich bei der Formung um ein
Kaltumformungsverfahren handelt.
13. Verfahren nach einem der Ansprüche 6 bis 12, wobei es sich bei der Formung um einen
Prozess ausgewählt aus einer Gruppe bestehend aus Rascherstarrung, Kupferformgießen,
Sauggießen, Druckgießen, Spritzgießen und Wasserquenchen handelt.
14. Verfahren nach einem der Ansprüche 6 bis 13, wobei der Rohstoff in Gegenwart von einem
Inertgas geschmolzen wird, vorzugsweise in Gegenwart von einem oder mehreren Gas(en)
gewählt aus der Gruppe bestehend aus SF6 und Gasen der Gruppe Null.
1. Alliage amorphe à base de Zr, consistant en :
40-75 en pourcentage atomique de (ZrxTiySnz) ;
10-35 en pourcentage atomique de (CumNin) ;
0,5-5 en pourcentage atomique de Fe ;
15-25 en pourcentage atomique de Be ;
0-10 en pourcentage atomique d'ETM, et
0-10 en pourcentage atomique de LTM ;
dans lequel x, y, et z sont des fractions atomiques, et x+y+z équivaut à 1 ;
dans lequel x est 0,6-0,85, et z est compris dans la plage de 0,01x - 0,1x ;
dans lequel m et n sont des fractions atomiques, et m+n équivaut à 1, et
dans lequel m est 0,5-0,65 ;
dans lequel ETM comprend au moins un élément sélectionné parmi le groupe IIIB, le
groupe IVB, le groupe VB, et le groupe VIB du tableau périodique des éléments, à condition
que ETM ne soit pas Zr ou Ti, et
dans lequel LTM comprend au moins un élément sélectionné parmi le groupe IB, le groupe
IIB, le groupe VIIB, et le groupe VIIIB du tableau périodique des éléments, à condition
que LTM ne soit pas Cu, Ni ou Fe.
2. Alliage amorphe selon la revendication 1, dans lequel ETM est un ou deux éléments
sélectionnés parmi le groupe consistant en Sc, Y, La, Ce, Pr, Nd, Hf, V, Nb, Ta, Cr,
Mo et W, et dans lequel LTM est un ou deux éléments sélectionnés parmi le groupe consistant
en Mn, Tc, Re, Ru, Os, Co, Rh, Ir, Pd, Pt, Ag, Au, Zn, Cd et Hg, et de préférence
ETM et LTM ensemble comprennent de 1 à 3 éléments.
3. Alliage amorphe selon la revendication 1 ou 2, lequel consiste en 40-60 en pourcentage
atomique de (ZrxTiySnz), et en 15-25 en pourcentage atomique de (CumNin).
4. Alliage amorphe selon l'une quelconque des revendications 1 à 3, dont la dimension
critique est supérieure à 1 cm.
5. Alliage amorphe selon la revendication 1, dans lequel ledit alliage consiste en 40-75
en pourcentage atomique de (ZrxTiySnz), 10-35 en pourcentage atomique de (CumNin), 0,5-5 en pourcentage atomique de Fe, et 15-25 en pourcentage atomique de Be ;
dans lequel x, y, et z sont des fractions atomiques, et x+y+z équivaut à 1 ;
dans lequel x est 0,6-0,85, et z est compris dans la plage de 0,01x - 0,1x ;
dans lequel m et n sont des fractions atomiques, et m+n équivaut à 1, et
dans lequel m est 0,5-0,65.
6. Procédé destiné à préparer un alliage amorphe à base de Zr selon l'une quelconque
des revendications 1 à 5, comprenant l'étape pour faire fondre une matière première
comprenant du Zr, Ti, Cu, Ni, Fe, Be et Sn sous un vide inférieur à 200 Pa afin de
former un mélange d'alliage sous une condition de vide, et pour mouler le mélange
d'alliage et refroidir afin de former l'alliage amorphe, dans lequel la vitesse de
refroidissement du processus de moulage et refroidissement est de 10-104 K/s.
7. Procédé selon la revendication 6, dans lequel la matière première comprend en outre
un élément parmi ETM et LTM, ou les deux ; dans lequel ETM comprend au moins un élément
sélectionné parmi le groupe IIIB, le groupe IVB, le groupe VB, et le groupe VIB du
tableau périodique des éléments, à condition que ETM ne soit pas Zr ou Ti ; de préférence
ETM est un ou deux éléments sélectionnés parmi le groupe consistant en Sc, Y, La,
Ce, Pr, Nd, Hf, V, Nb, Ta, Cr, Mo et W, et dans lequel LTM comprend au moins un élément
sélectionné parmi le groupe IB, le groupe IIB, le groupe VIIB, et le groupe VIIIB
du tableau périodique des éléments, à condition que LTM ne soit pas Cu, Ni ou Fe ;
de préférence, LTM est un ou deux éléments sélectionnés parmi le groupe consistant
en Mn, Tc, Re, Ru, Os, Co, Rh, Ir, Pd, Pt, Ag, Au, Zn, Cd et Hg, et de préférence
ETM et LTM comprennent ensemble de 1 à 3 éléments.
8. Procédé selon la revendication 6 ou 7, dans lequel les éléments dans la matière première
présentent la formule suivante :
Zr
g : Ti
h : Sn
i : ETM
b : (Cu
k : Ni
l : Fe
d : LTM
e : Be
f ;
dans lequel b, d, e, f, g, h, i, k et l sont des pourcentages atomiques ;
dans lequel g est 24-63,75 %, et de préférence 24-51 % ; h est 2,6-29,55 %, et de
préférence 2,6-23,64 % ; i est 0,24-6,375 %, et de préférence 0,24-5,1 % ; b est 0-10
% ; k est 5-22,75 %, et de préférence 7,5-16,25 % ; l est 3,5-17,5 %, et de préférence
5,25-12,5 % ; d est 0,5-5 % ; e est 0-10 %, et f est 15-25 % ;
à condition que la quantité de Zr, Ti et Sn soit additionnée de manière à atteindre
40-75 en pourcentage atomique ; à condition que la quantité atomique de Sn soit 1
%-10 de la quantité atomique de Zr ; à condition que la quantité de Cu et Ni soit
additionnée de manière à atteindre 10-35 en pourcentage atomique, et de préférence
15-25 en pourcentage atomique, et à condition que la quantité atomique de Ni soit
53,85 %-100 % de la quantité atomique de Cu.
9. Procédé selon l'une quelconque des revendications 6 à 8, dans lequel l'étape de fusion
comprend les étapes de :
faire fondre la matière première afin de former un mélange fondu ;
refroidir le mélange fondu afin de former au moins un lingot, et
faire fondre à nouveau le au moins un lingot afin de former le mélange d'alliage.
10. Procédé selon l'une quelconque des revendications 6 à 9, dans lequel la matière première
est fondue sous un vide inférieur à 5 Pa.
11. Procédé selon l'une quelconque des revendications 6 à 10, dans lequel la matière première
est fondue à une température de 1000 à 2700 °C.
12. Procédé selon l'une quelconque des revendications 6 à 11, dans lequel le moulage est
un processus de moulage à froid.
13. Procédé selon l'une quelconque des revendications 6 à 12, dans lequel le moulage est
un processus sélectionné parmi un groupe consistant en un filage à l'état fondu, une
coulée en moules de cuivre, une coulée sous vide, une coulée sous pression, un moulage
par jet, et une trempe à l'eau.
14. Procédé selon l'une quelconque des revendications 6 à 13, dans lequel la matière première
est fondue en présence d'un gaz inerte, de préférence en présence d'un ou de plusieurs
gaz sélectionnés parmi le groupe consistant en SF6 et le groupe des gaz à pression zéro.


REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Non-patent literature cited in the description
- ZHAO DE QIANZHANG YONGPAN MING XIANGMENG LI QINWANG WEI HUAForming And Performance of The Zr-Ti-Cu-Ni-Be-Fe Bulk Amorphous Alloy And Amorphous-Based
Nano-CompositeActa Metallurgica Sinica, 2000, [0005]
- ZHAO et al.Formation and Performance of New Zr-Ti-Cu-Ni-Be-Fe Bulk Amorphous AlloyScience in
China (series A), vol. 43, 3307-311 [0005]