专利摘要:
The invention refers to amorphous and nanocrystalline magnetic glass-covered wires and to a process for their production. The wires consist of a metallic amorphous or nanocrystalline core with diameters by the order of 10−6 m having compositions based on transition metal-metalloids and other additional metals and a glass cover having a thickness of the wall by the same order of magnitude. The wires present high or medium saturation induction, positive, negative or nearly zero magnetostriction and values of the coercive field and of the magnetic permeability in function of the requested applications. The amorphous and nanocrystalline glass-covered wires are utilized in electronics and electrotechnics to achieve sensors, transducers, inductive coils, transformers, magnetic shields, devices working on the basis of the correlation between the magnetic properties of the metallic core and the optical properties of the glass cover.
公开号:US20010001397A1
申请号:US09/101,006
申请日:1996-11-12
公开日:2001-05-24
发明作者:Horia Chiriac;Firuta Barariu;Adrian Tibor Ovari;Gheorghe Pop
申请人:INSTITUTUL DE FIZICA TEHNICA;
IPC主号:H01F1-15391
专利说明:
[0001] The invention refers to amorphous and nanocrystalline magnetic glass-covered wires with applications in electrotechnics and electronics and to a process for their production. [0001] BACKGROUND ART
[0002] There are known ribbon and wire shaped amorphous magnetic materials obtained by rapid quenching from the melt and nanocrystalline magnetic materials obtained by thermal treatment of amorphous ones with adequate compositions (U.S. Pat. Nos. 4,501,316/Feb. 26, 1985 and 4,523,626/Jun. 18, 1985). Thus, amorphous magnetic wires with diameters ranging from 60 μm . . . 180 μm are obtained by the in-rotating-water spinning method and nanocrystalline magnetic wires are obtained by controlled thermal treatments of the above mentioned amorphous ones with adequate compositions. The disadvantage of these wires consists in the fact that they can not be obtained directly from the melt in amorphous state with diameters less than 60 μm. Amorphous magnetic wires having diameters of minimum 30 μm are obtained by successive cold-drawings of the above mentioned amorphous magnetic wires followed by stress relief thermal treatments. The disadvantage of these wires consists in the fact that by repeated drawings and annealing stages they can be obtained amorphous magnetic wires having no less than 30 μm in diameter and also in the fact that their magnetic and mechanical properties are unfavorably affected by the mechanical treatments. [0002]
[0003] There are also known metallic glass-covered wires in crystalline state as well as some glass-covered amorphous alloys obtained by the glass-coated melt spinning method (T. Goto, T. Toyama, “The preparation of ductile high strength Fe-base filaments using the methods of glass-coated melt spinning”, [0003] Journal of Materials Science 20 (1985) pp. 1883-1888). The disadvantage of these wires consists in the fact that they do not present appropriate magnetic properties and behavior for applications in electronics and electrotechnics to achieve magnetic sensors and actuators, but only properties that makes them useful as metallic catalysts, composite materials, electrical conductors.
[0004] There are known amorphous magnetic glass-coverd wires having the compositions Fe[0004] 65B15Si15C15, Fe60B15Si15Cr10 and Fe40Ni40P14B6 (H. Chiriac et al., “Magnetic behavior of the amorphous wires covered by glass”, Journal of Applied Physics 75 (10), (1994), pp. 6949-6951) with diameters of the metallic core ranging between 5 and 30 μm, coercive fields between 239 and 462 A/m, and magnetization between 0.16 to 0.32 T. It is also mentioned a method for their obtaining based on the Taylor method, indicating as steps: the sealing of the glass tube, the heating of the seal and the drawing of a fibre from the heated end.
[0005] There are also known amorphous glass-covered wires of compositions (Fe[0005] 80Co20)75B15Si10 and Fe65B15Si15C15 like in the above mentioned in Prior Art (A. P. Zhukov et al., “The remagnetization process in thin and ultra-thin Fe-rich amorphous wires”, JMMM 151 (1995), pp. 132-138) having diameters of the metallic core of 10 and 15 μm respectively, thickness of the glass-cover of 2.5 μm, and coercive fields of 65 and 140 A/m respectively. DISCLOSURE OF INVENTION
[0006] Technical problem resolved by this invention consists in the obtaining, directly by rapid quenching from the melt, of the glass-covered magnetic amorphous wires having controlled dimensional and compositional characteristics and in the obtaining, by thermal treatments, of the nanocrystalline magnetic wires with adequate magnetic properties for different application categories. [0006]
[0007] The amorphous magnetic wires, according to the invention, are characterized in the fact that they consist in an amorphous metallic inner core with diameters ranging between 1 μm and 50 μm and a glass cover in the shape of a glass coat with a thickness ranging between 0.5 μm and 20 μm, the metallic core having compositions chosen so to allow to obtain wires in amorphous state, at cooling rates that can be technically obtained and with adequate magnetic properties for different application categories. The amorphous magnetic wires, according to the invention, consists of an amorphous metallic inner core of compositions based on transition metals (Fe, Co, and/or Ni) 60 . . . 80 atomic %, 40 . . . 15 atomic % metalloid (B, Si, C and/or P) as well as 25 atomic % or less additional metals such as Cr, Ta, Nb, V, Cu, Al, Mo, Mn, W, Zr, Hf, having diameters ranging between 1 and 50 μm and a glass cover with thickness ranging between 0.5 and 20 μm. The amount of the transition metals and metalloids is chosen so to obtain alloys with high saturation magnetization, positive, negative or nearly zero magnetostriction, coercive field and magnetic permeability having adequate values in function of the requested applications. The total amount and the number of the additional elements are chosen so to facilitate the amorphism-forming ability. [0007]
[0008] For applications in sensors and transducers in which a rapid variation of the magnetization as function of external factors (magnetic field, tensile stress, torsion) is required, they are adequate amorphous magnetic glass-covered wires, according to the invention, having high positive magnetostriction, 5 up to 25 μm diameter of the metallic core and 1 up to 15 μm thickness of the glass cover, of compositions based on Fe containing 20 atomic % or less Si, 7 up to 35 atomic % B and 25 atomic % or less from one or more metals selected from the group Co, Ni, Cr, Ta, Nb, V, Cu, Al, Mo, Mn, W, Zr, Hf. [0008]
[0009] For applications in sensors and transducers that require a variation of the magnetization as function of external factors (magnetic field, tensile stress, torsion), whose value must be controlled with a high sensitivity, as well as for applications based on the giant magneto-impedance effect involving high values of the magnetic permeability and reduced values of the coercive field, they are adequate amorphous magnetic glass-covered wires, according to the invention, having negative or almost zero magnetostriction, with diameters of the metallic core ranging between 5 and 25 μm and thickness of the glass cover ranging between 1 and 15 μm of compositions based on Co containing 20 atomic % or less Si, 7 up to 35 atomic % B and 25 atomic % or less from one or more metals selected from the group Fe, Ni, Cr, Ta, Nb, V, Cu, Al, Mo, Mn, W, Zr, Hf. [0009]
[0010] For applications as minitransformers and inductive coils, that implies high values of the saturation magnetization and of the magnetic permeability they are adequate nanocrystalline magnetic glass-covered wires according to the invention with diameters of the metallic core ranging between 5 and 25 μm and thickness of the glass cover ranging between 1 and 15 μm of compositions based on Fe containing 20 atomic % or less Si, 7 up to 35 atomic % B and 25 atomic % or less from one or more metals selected from the group Cu, Nb, V, Ta, W, Zr, Hf. [0010]
[0011] For applications in devices working on the base of the correlation between the magnetic properties of the amorphous metallic core with positive or nearly zero magnetostriction or of the nanocrystalline metallic core having nearly zero magnetostriction and the optical properties of the glass cover, properties that are related to the optical transmission of the information, they are adequate amorphous and nanocrystalline glass-covered wires according to the invention, with diameters of the metallic core ranging between 10 and 20 μm and thickness of the glass cover ranging between 10 and 20 μm of compositions based on Fe or Co containing 20 atomic % or less Si, 7 up to 35 atomic % B and 25 atomic % or less from one or more metals selected from the group Ni, Cr, Ta, Nb, V, Cu, Al, Mo, Mn, W, Zr, Hf. [0011]
[0012] The process of producing amorphous magnetic glass-covered wires, according to the invention, allows to obtain wires with the above mentioned dimensional and compositional characteristics directly by rapid quenching from the melt and consists in melting the metallic alloy which is introduced in a glass tube till the glass becomes soft, drawing the glass tube together with the molten alloy which is stretched to form a glass-coated metallic filament which is coiled on a winding drum ensuring a high cooling rate necessary to obtain the metallic wire in amorphous state in the following conditions: [0012]
[0013] the temperature of the molten metal ranging between 900° C. and 1500° C.; [0013]
[0014] the diameter of the glass tube ranging between 3 and 15 mm and the thickness of the glass wall ranging between 0.1 and 2 mm; [0014]
[0015] the glass tube, containing the molten alloy, moves down with a uniform feed-in speed ranging between 5×10[0015] −6 and 170×10−6 m/s;
[0016] the vacuum or the inert gas atmosphere level in the glass tube, above the molten alloy, ranging between 50 and 200 N/m[0016] 2;
[0017] the drawing speed of the wire ranging between 0.5 and 10 m/s; [0017]
[0018] the flow capacity of the cooling liquid through which the wire passes ranging between 10[0018] −5 and 2×10−5 m3/s.
[0019] To ensure the continuity of the process and also to obtain continuous glass-covered wires of good quality and having the requested dimensions it is necessary that the employed materials and the process parameters to fulfill the following conditions: [0019]
[0020] the high purity alloy is prepared in an arc furnace or in an induction furnace using pure components (at least 99% purity) bulk shaped or powders bond together by pressing and than heating in vacuum or inert atmosphere (depending on the reactivity of the employed components), [0020]
[0021] during the glass-coated melt spinning process an inert gas is introduced in the glass tube to avoid the oxidation of the alloy; [0021]
[0022] the employed glass must be compatible with the metal or the alloy at the drawing temperature in order to avoid the process of glass-metal diffusion; [0022]
[0023] the thermal expansion coefficient of the glass must be equal or slightly smaller than that of the employed metal or alloy to avoid the fragmentation of the alloy during the solidification process due to the internal stresses. [0023]
[0024] By performing special heat treatments of the glass-covered amorphous magnetic wires having compositions which are adequate to obtain the nanocrystalline state, in an electric furnace, in vacuum or in inert atmosphere, at annealing temperatures smaller than the crystallization temperature of the amorphous alloy, of values ranging between 480° C. and 550° C. for a given period of time ranging between 10 seconds and 10[0024] 5 seconds one obtains magnetic glass-covered wires having a nanocrystalline structure, almost zero magnetostriction and high values of the saturation magnetization and magnetic permeability.
[0025] The advantages of the wires, according to the invention consist in the following: [0025]
[0026] they can be used into a large field of applications based on their magnetic properties and behavior; [0026]
[0027] they present the switching of the magnetization (large Barkhausen effect) for very short length, down to 1 mm, as compared to the amorphous magnetic wires obtained by the in-rotating-water spinning method that present the switching of the magnetization for lengths of minimum 5-7 cm or to the cold-drawn ones that present this effect for lengths of minimum 3 cm; in this way they permit the miniaturization of the devices in which they are used; [0027]
[0028] they can be used in devices based on the correlation between the magnetic properties of the metallic core and the optical properties of the glass cover, this application being facilitated by the intimate contact between the metallic core and the glass cover; [0028]
[0029] they can be used in devices which involve suitable magnetic properties of the metallic core together with corrosion resistance, and the electrical insulation offered by the glass cover. [0029]
[0030] The advantages of the producing process, according to the invention, are as follows: [0030]
[0031] allow the achievement of nanocrystalline magnetic materials in the shape of glass-covered wires having very small diameters; [0031]
[0032] allow to obtain at low costs amorphous and nanocrystalline magnetic glass-covered wires having very small diameters of the magnetic core. [0032] BEST MODE FOR CARRYING OUT THE INVENTION
[0033] In order to more completely understand the present invention, the following 6 examples are presented: [0033] EXAMPLE 1
[0034] A quantity of 100 g Fe[0034] 77B15Si8 alloy is prepared by induction melting in vacuum pure components in the shape of powders bond together by pressing and heating in vacuum. About 10 g of the as prepared alloy are introduced in a Pyrex® tube, closed at the bottom end, having 12 mm external diameter, 0.8 mm thickness of the glass wall and 60 cm in length. The upper end of the tube is connected at a vacuum device which provide a vacuum of 104 N/m2 and allow to introduce an inert gas at a pressure level of 100 N/m2 The bottom end of the tube which contains the alloy is placed into an induction coil in the shape of a single spiral of a certain profile which is feed by a medium frequency generator. The metal is induction heated up to the melting point and overheated up to 1200±50° C. At this temperature, at which the glass tube becomes soft, a glass capillary in which a metallic core is entrapped is drawn and winded on a winding drum. Maintaining constant values of the process parameters: 70×10−6 m/s feed-in speed of the glass tube, 1.2 m/s peripheral speed of the winding drum, and 15× 10−6 m3/s flow capacity of the cooling liquid one obtains a high positive magnetostrictive glass-covered amorphous wire of composition Fe77B15Si8, having 15 μm diameter of the metallic core, 7 μm thickness of the glass cover, that present the following magnetic characteristics.
[0035] large Barkhausen jump (M[0035] r/Ms=0.96);
[0036] high saturation induction (B[0036] s=1.6 T);
[0037] high positive saturation magnetostriction (λ[0037] s=+35×10−6);
[0038] switching field (H*=67 A/m). [0038]
[0039] These wires are used for sensors measuring torque, magnetic field, current, force, displacement etc. [0039] EXAMPLE 2
[0040] A glass-covered wire was produced in the same manner as in Example 1, using an alloy of composition Co[0040] 40Fe40B12Si8 which was prepared in vacuum from bulk pure components. The glass tube has 10 mm external diameter, 1 mm thickness of the glass wall and 50 cm in length. In the glass tube they are introduced and melted 5 g of the mentioned alloy, the melt temperature being 1250±50° C. The process parameters are maintained at constant values of: 5×10−6 m/s feed-in speed of the glass tube, 0.5 m/s peripheral speed of the winding drum, and 20×10−6 m3/s flow capacity of the cooling liquid. The resulted positive magnetostrictive amorphous magnetic glass-covered wire of composition Co40Fe40B12Si8 having 25 μm diameter of the metallic core and 1 μm thickness of the glass cover present the following magnetic characteristics:
[0041] large Barkhausen jump (M[0041] r/Ms=0.70);
[0042] high saturation induction (B[0042] s=1.4 T);
[0043] medium positive saturation magnetostriction (λ[0043] s=+23×10−6);
[0044] switching field (H*=1500 A/m). [0044]
[0045] These wires are used for magnetic sensors, transducers, and actuators measuring mechanical quantities. [0045] EXAMPLE 3
[0046] A glass-covered wire was produced in the same manner as in Example 1, using an alloy of composition Co[0046] 75B15Si10. The glass tube has 10 mm external diameter, 0.9 mm thickness of the glass wall and 55 cm in length. In the glass tube they are introduced and melted 5 g of the mentioned alloy, the melt temperature being 1225± 50° C. The process parameters are maintained at constant values of: 100×10−6 m/s feed-in speed of the glass tube, 8 m/s peripheral speed of the winding drum, and 12×10−6 m3/s flow capacity of the cooling liquid. The resulted negative magnetostrictive amorphous magnetic glass-covered wire of composition Co75B15Si10 having 5 μm diameter of the metallic core and 6.5 μm thickness of the glass cover present the following magnetic characteristics:
[0047] does not present large Barkhausen jump; [0047]
[0048] small saturation induction (B[0048] s=0.72 T);
[0049] small negative saturation magnetostriction (λ[0049] s=−3×10−6).
[0050] These wires are used for magneto-inductive sensors measuring magnetic fields of small values. [0050] EXAMPLE 4
[0051] A glass-covered wire was produced in the same manner as in Example 1, using an alloy of composition Co[0051] 70Fe5B15Si10. The glass tube has 11 mm external diameter, 0.8 mm thickness of the glass wall and 45 cm in length. In the glass tube they are introduced and melted 12 g of the mentioned alloy, the melt temperature being 1200±50° C. The process parameters are maintained at constant values of: 50×10−6 m3/s feed-in speed of the glass tube, 2 m/s peripheral speed of the winding drum, and 17×10−6 m3/s flow capacity of the cooling liquid. The resulted amorphous magnetic glass-covered wire of composition Co70Fe5B15Si10 having nearly zero magnetostriction, 16 μm diameter of the metallic core and 5 μm thickness of the glass cover present the following magnetic characteristics:
[0052] does not present large Barkhausen jump; [0052]
[0053] small saturation induction (B[0053] s=0.81 T);
[0054] almost zero saturation magnetostriction (λ[0054] s=−0.1×10−6);
[0055] high relative magnetic permeability (μ[0055] r=10 000).
[0056] These wires are used for magnetic field sensors, transducers, magnetic shields and devices operating on the basis of the giant magneto-impedance effect. [0056] EXAMPLE 5
[0057] A glass-covered wire was produced in the same manner as in Example 1, using an alloy of composition Fe[0057] 73.5Cu1Nb3B9Si13.5 prepared in argon atmosphere from pure components in the shape of powders bond by pressing and heating in vacuum. The glass tube has 10 mm external diameter, 0.6 mm thickness of the glass wall and 50 cm in length. In the glass tube they are introduced and melted 10 g of the mentioned alloy, the melt temperature being 1200±50° C. The process parameters are maintained at constant values of: 6.5×10−6 m/s feed-in speed of the glass tube, 0.8 m/s peripheral speed of the winding drum, and 18×10−6 m3/s flow capacity of the cooling liquid. The resulted positive magnetostrictive amorphous magnetic glass-covered wire of composition Fe73.5Cu1Nb3B9Si13.5 having 22 μm diameter of the metallic core and 4 μm thickness of the glass cover present the following magnetic characteristics:
[0058] large Barkhausen jump (M[0058] r/Ms=0.80);
[0059] saturation induction (B[0059] s=1.11 T);
[0060] positive saturation magnetostriction (λ[0060] s=+4×10−6);
[0061] switching field (H*=137 A/m). [0061]
[0062] These wires are used for magnetic sensors measuring mechanical quantities and also as precursors for nanocrystalline glass-covered wires. [0062] EXAMPLE 6
[0063] A special thermal treatment is applied to an amorphous magnetic wire of composition Fe[0063] 73 5Cu1N3B9Si13 5 obtained in the same manner as in Example 5. The special character of the thermal treatment refers to the strict correlation between the temperature and the duration of the thermal treatment. The magnetic amorphous glass-covered wire having the above mentioned composition is introduced into an electric furnace, in argon atmosphere and is thermally treated at 550° C. for 1 hour. In this way one obtains a magnetic glass-covered wire having nanocrystalline structure that present the following magnetic characteristics:
[0064] does not present large Barkhausen jump (M[0064] r/Ms=0.2);
[0065] saturation induction (B[0065] s=1.25 T);
[0066] almost zero saturation magnetostriction (λ[0066] s=−0.1×10−6);
[0067] These wires are used in inductive coils, mini-transformers, and magnetic shields. [0067]
[0068] The magnetic measurements were performed using a fluxmetric method and the amorphous state was checked by X-ray diffraction. [0068]
权利要求:
Claims (7)
[1" id="US-20010001397-A1-CLM-00001] 1. Amorphous magnetic glass-covered wires having as core an alloy like Fe65B15Si15C15, Fe60B15Si15Cr10, Fe40Ni40P14B6, and (Fe80Co20)75B15Si10 characterized in the fact that they consist of a metallic amorphous core with diameters ranging between 1 and 50 μm of compositions based on 60 . . . 80 atomic % transition metals, namely Fe, Co, and/or Ni, 40 . . . 15 atomic % metalloid, namely B, Si, C and/or P as well as 25 atomic % or less additional metals such as Cr, Ta, Nb, V, Cu, Al, Mo, Mn, W, Zr and/or Hf, having 0.4 up to 1.6 T saturation induction, positive, negative or nearly zero magnetostriction ranging between +40×10−6 and −6×10−6, coercive field ranging to between 20 and 6000 A/m and relative magnetic permeability ranging between 100 and 12000 in function of the requested applications, and a glass cover with thickness ranging between 0.5 and 20 μm.
[2" id="US-20010001397-A1-CLM-00002] 2. Amorphous magnetic wires, according to
claim 1 , characterized in the fact that they consist of a metallic amorphous core with diameters ranging between 5 and 25 μm of compositions based on Fe containing 20 atomic % or less Si, 7 up to 35 atomic % B and 25 atomic % or less of one or more metals selected from the group Co, Ni, Cr, Ta, Nb, V, Cu, Al, Mo, Mn, W, Zr, Hf and a glass cover with the thickness ranging between 1 and 15 μm, having 0.7 up to 1.6 T saturation induction, positive magnetostriction ranging between +40×10−6 and +5×10−6, coercive field from 40 up to 4500 A/m, and presenting large Barkhausen jump.
[3" id="US-20010001397-A1-CLM-00003] 3. Amorphous magnetic wires, according to
claim 1 , characterized in the fact that they consist of a metallic amorphous core with diameters ranging between 5 and 25 μm of compositions based on Co containing 20 atomic % or less Si, 7 up to 35 atomic % B and 25 atomic % or less of one or more metals selected from the group Fe, Ni, Cr, Ta, Nb, V, Cu, Al, Mo, Mn, W, Zr, Hf and a glass cover with the thickness ranging between 1 and 15 μm, having 0.6 up to 0.85 T saturation magnetization, negative or nearly zero magnetostriction ranging between −6×10−6 and −0.1×10−6, coercive field from 20 up to 500 A/m, and relative magnetic permeability ranging between 100 and 12000 in function of the requested applications.
[4" id="US-20010001397-A1-CLM-00004] 4. Amorphous magnetic wires, according to
claim 1 , that can be used for the achievement of devices operating on the basis of the correlation between the magnetic properties of the amorphous magnetic inner core and the optical properties of the glass cover, characterized in the fact that they consist of a metallic amorphous core with diameters ranging between 10 and 22 μm of compositions based on Fe and Co containing 20 atomic % or less Si, 7 up to 35 atomic % B and 25 atomic % or less of one or more metals selected from the group Ni, Cr, Ta, Nb, V, Cu, Al, Mo, Mn, W, Zr, Hf and a glass cover with the thickness ranging between 10 and 20 μm, having 0.7 up to 1.6 T saturation induction, positive magnetostriction ranging between +40×10−6 and +6× 10−6, coercive field ranging between 40 and 4500 A/m or with negative or nearly zero magnetostriction ranging between −6×10−6 and −0.1×10−6, coercive field ranging between 20 and 1000 A/m, and relative magnetic permeability ranging between 100 and 12000 in function of the requested applications.
[5" id="US-20010001397-A1-CLM-00005] 5. Nanocrystalline magnetic wires characterized in the fact that they consist of a metallic core with diameters ranging between 3 and 25 μm and a glass cover with the thickness ranging between 1 and 15 μm, the nanocrystalline magnetic wires having compositions based on Fe containing 20 atomic % or less Si, 7 up to 35 atomic % B and 25 atomic % or less of one or more metals selected from the group Co,Ta, Nb, V, Cu, W, Zr, Hf being obtained by special thermal treatments of the amorphous wires having the above mentioned composition, obtained according to
claim 1 , having saturation induction ranging between 0.7 and 1.25 T, almost zero magnetostriction, coercive field between 20 and 2500 A/m and relative magnetic permeability ranging between 100 and 12000 in function of the requested applications.
[6" id="US-20010001397-A1-CLM-00006] 6. A process for producing amorphous magnetic glass-covered wires, according to claims 1-4, by sealing one end of the glass tube in which the master alloy was introduced, heating the end of the tube and drawing a fibre from the heated end characterized in the fact that the metallic alloy having one of the compositions according to claims 1-4 is melt in a glass tube till the glass becomes soft, drawing a metallic wire together with a glass cover, ensuring a high cooling rate necessary to obtain the metal in the amorphous state, the process is taking place between 900° C. and 1500° C. temperature of the molten alloy using a glass tube of 3 to 15 mm external diameter, 0.1 to 2 mm thickness of the glass wall, 5×10−6 m/s to 170×10−6 m/s feed-in speed of the glass tube containing the molten alloy, 50 to 200 N/m2 level of vacuum or pressure of the inert gas in the glass tube, above the melt, 0.5 to 10 m/s peripheral speed of the winding drum, and 10−5 to 2×10−5 m3/s flow capacity of the cooling liquid through which the wire is passed.
[7" id="US-20010001397-A1-CLM-00007] 7. A process of producing magnetic glass-covered wires having nanocrystalline structure characterized in the fact that to obtain the nanocrystalline structure of the metallic core, the magnetic amorphous glass-covered wires produced according to
claim 6 are thermally treated, in vacuum or in inert atmosphere, in an electric furnace at temperatures smaller than the crystallization temperature of the amorphous alloy ranging between 480° C. and 550° C. for a given time ranging between 10 seconds and 105 seconds to result in wires according to
claim 5 .
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引用文献:
公开号 | 申请日 | 公开日 | 申请人 | 专利标题
US20050158545A1|2003-01-02|2005-07-21|Liebermann Howard H.|Engineered glasses for metallic glass-coated wire|
EP1557845A2|2003-10-09|2005-07-27|Micromag 2000, S.L.|Amorphous mircrowire and method for manufacture thereof|
EP1641615A2|2003-07-03|2006-04-05|Demodulation, LLC|Amorphous and nanocrystalline glass-coated articles|
US20060145801A1|2004-12-30|2006-07-06|Amt Ltd|Inductive electro-communication component core from ferro-magnetic wire|
CN100432266C|2005-11-01|2008-11-12|王青松|Amorphous/amorphous nano structured alloy|
EP2114556A1|2007-01-23|2009-11-11|Thermal Solutions, Inc.|Microwire-controlled autoclave and method|
US20100006185A1|2007-04-12|2010-01-14|General Electric Company|Amorphous metal alloy having high tensile strength and electrical resistivity|
CN102925823A|2012-11-29|2013-02-13|浙江大学|Iron cobalt-based magnetically soft alloy with high saturation magnetic flux density and preparation method of iron cobalt-based magnetically soft alloy|
EP2021752A4|2006-05-09|2015-03-18|Thermal Solutions Inc|Magnetic element temperature sensors|
WO2015181422A1|2014-05-27|2015-12-03|Consejo Superior De Investigaciones Científicas |Embedded sensor for the continuous measurement of mechanical resistance in structures made from cementitious material, method for producing the sensor, and system and method for the continuous measurement of mechanical resistance in structures made from cementitious materials|
JP6428884B1|2017-09-11|2018-11-28|愛知製鋼株式会社|Magnetosensitive wire for magnetic sensor and method for manufacturing the same|
US10363548B2|2016-01-22|2019-07-30|University Of North Texas|Aluminum based metallic glass powder for efficient degradation of AZO dye and other toxic organic chemicals|US4482400A|1980-03-25|1984-11-13|Allied Corporation|Low magnetostriction amorphous metal alloys|
US4501316A|1982-05-27|1985-02-26|Allegheny Ludlum Steel Corporation|Method of casting amorphous metals|
JP3233313B2|1993-07-21|2001-11-26|日立金属株式会社|Manufacturing method of nanocrystalline alloy with excellent pulse attenuation characteristics|
JPH07153628A|1993-11-26|1995-06-16|Hitachi Metals Ltd|Choke coil for active filter, active filter circuit and power-supply device using that|
JP3419519B2|1993-11-30|2003-06-23|日本発条株式会社|Pulse generating magnetic wire and method of manufacturing the same|BR9812476A|1997-09-18|2002-05-21|Allied Signal Inc|Magnetic coil-core set|
FR2779266B1|1998-05-28|2000-06-23|Commissariat Energie Atomique|INDUCTIVE TEXTILE AND USE OF SUCH A TEXTILE IN INDUCTIVE DEVICES|
IL131866D0|1999-09-10|2001-03-19|Advanced Coding Systems Ltd|A glass-coated amorphous magnetic microwire marker for article surveillance|
US6747559B2|1999-09-10|2004-06-08|Advanced Coding Systems Ltd.|Glass-coated amorphous magnetic mircowire marker for article surveillance|
FR2805618B1|2000-02-29|2002-04-12|Commissariat Energie Atomique|SYSTEM FOR AUTHENTICATING MANUFACTURED ARTICLES WITH MAGNETIC MARKINGS, AND METHOD FOR MARKING SUCH ARTICLES|
US6689234B2|2000-11-09|2004-02-10|Bechtel Bwxt Idaho, Llc|Method of producing metallic materials|
US6767419B1|2000-11-09|2004-07-27|Bechtel Bwxt Idaho, Llc|Methods of forming hardened surfaces|
US7323071B1|2000-11-09|2008-01-29|Battelle Energy Alliance, Llc|Method for forming a hardened surface on a substrate|
US6556139B2|2000-11-14|2003-04-29|Advanced Coding Systems Ltd.|System for authentication of products and a magnetic tag utilized therein|
GB2374084A|2001-04-03|2002-10-09|Fourwinds Group Inc|Alloys having bistable magnetic behaviour|
US7286868B2|2001-06-15|2007-10-23|Biosense Inc.|Medical device with position sensor having accuracy at high temperatures|
FR2838543B1|2002-04-12|2004-06-04|Cryptic|MAGNETIC MARKING SYSTEM, METHOD AND MACHINE FOR THE PRODUCTION THEREOF|
ES2219159B1|2002-10-02|2005-12-16|Tamag Iberica S L|AMORPH MICROWAVES COVERED WITH INSULATING GLASS COVER TO BE USED AS ELEMENTS OF MAGNETIC SENSORS BASED ON MAGNETIC BISTABILITY AND THE EFFECT OF MAGNETOIMPEDANCE AND AS A MATERIAL FOR THE PROTECTION OF ELECTROMAGNETIC RADIATION.|
US20050013723A1|2003-02-11|2005-01-20|Branagan Daniel James|Formation of metallic thermal barrier alloys|
US7233249B2|2003-09-12|2007-06-19|Demodulation, Inc.|Multi-bit encoded glass-coated microwire and articles composed thereof|
US7341765B2|2004-01-27|2008-03-11|Battelle Energy Alliance, Llc|Metallic coatings on silicon substrates, and methods of forming metallic coatings on silicon substrates|
US7368166B2|2004-04-06|2008-05-06|Demodulation, Inc.|Polymerase chain reaction using metallic glass-coated microwire|
US20050237197A1|2004-04-23|2005-10-27|Liebermann Howard H|Detection of articles having substantially rectangular cross-sections|
US7071417B2|2004-10-25|2006-07-04|Demodulation, Inc.|Optically encoded glass-coated microwire|
US8628839B2|2005-12-26|2014-01-14|Fuji Xerox Co., Ltd.|Recording medium|
JP4847191B2|2006-04-14|2011-12-28|富士ゼロックス株式会社|Recording sheet|
US20080035548A1|2006-08-01|2008-02-14|Quos, Inc.|Multi-functional filtration and ultra-pure water generator|
CN101484785B|2006-05-09|2011-11-16|热溶体股份有限公司|Magnetic element temperature sensors|
US7794142B2|2006-05-09|2010-09-14|Tsi Technologies Llc|Magnetic element temperature sensors|
US8258441B2|2006-05-09|2012-09-04|Tsi Technologies Llc|Magnetic element temperature sensors|
CN101490407B|2006-05-18|2014-07-16|西北大学|Ignition system|
JP2008020579A|2006-07-12|2008-01-31|Fuji Xerox Co Ltd|Magnetic material wire and recording medium|
JP4916239B2|2006-07-21|2012-04-11|富士ゼロックス株式会社|Recording medium and sheet|
WO2008023079A1|2006-08-25|2008-02-28|Tamag Ibérica, S.L.|Glass-coated ultrafine amorphous wires having a giant magneto-impedanceeffect at high frequencies|
US8192080B2|2007-01-23|2012-06-05|Tsi Technologies Llc|Microwire-controlled autoclave and method|
CA2779225C|2009-10-22|2018-10-16|The Nanosteel Company, Inc.|Process for continuous production of ductile microwires from glass forming systems|
US8717430B2|2010-04-26|2014-05-06|Medtronic Navigation, Inc.|System and method for radio-frequency imaging, registration, and localization|
US20130263973A1|2010-10-20|2013-10-10|Nakayama Steel Works, Ltd.|Ni-Based Amorphous Alloy With High Ductility, High Corrosion Resistance and Excellent Delayed Fracture Resistance|
JP5640702B2|2010-12-02|2014-12-17|富士ゼロックス株式会社|Paper|
US8641817B2|2011-04-07|2014-02-04|Micromag 2000, S.L.|Paint with metallic microwires, process for integrating metallic microwires in paint and process for applying said paint on metallic surfaces|
JP5799566B2|2011-04-26|2015-10-28|富士ゼロックス株式会社|Paper|
US9255920B1|2013-03-15|2016-02-09|Consolidated Nuclear Security, LLC|Wireless sensor|
US8871523B1|2013-03-15|2014-10-28|Consolidated Nuclear Security, LLC|Wireless sensor for detecting explosive material|
US9411069B1|2013-03-15|2016-08-09|Consolidated Nuclear Security, LLC|Wireless radiation sensor|
US9146168B1|2013-03-15|2015-09-29|Consolidated Nuclear Security, LLC|Pressure sensor|
US9915575B1|2013-03-15|2018-03-13|Consolidated Nuclear Security, LLC|Sensor and methods of detecting target materials and situations in closed systems|
RU2698736C1|2018-11-15|2019-08-29|Акционерное общество "Научно-производственное предприятие "Интеграл"|Method of producing amorphous metal fibers|
法律状态:
1998-06-25| AS| Assignment|Owner name: INSTITUTUL DE FIZICA TEHNICA, ROMANIA Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNORS:CHIRIAC, HORIA;BARARIU, FIRUTA;OVARI, ADRIAN TIBOR;AND OTHERS;REEL/FRAME:009434/0802 Effective date: 19980612 |
2001-07-19| STCF| Information on status: patent grant|Free format text: PATENTED CASE |
2004-08-12| FPAY| Fee payment|Year of fee payment: 4 |
2008-12-29| FPAY| Fee payment|Year of fee payment: 8 |
2013-02-05| FPAY| Fee payment|Year of fee payment: 12 |
优先权:
申请号 | 申请日 | 专利标题
RO95-02277A|RO111513B1|1995-12-27|1995-12-27|Amorphous and nano-crystalline magnetic yarns which are covered with glass and preparation process therefor|
RO95-02277||1995-12-27||
PCT/RO1996/000009|WO1997024734A1|1995-12-27|1996-11-12|Amorphous and nanocrystalline glass-covered wires and process for their production|
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