Cermets for magnetic sensors
10796827 ยท 2020-10-06
Assignee
Inventors
Cpc classification
B22F2998/10
PERFORMING OPERATIONS; TRANSPORTING
B22F2998/10
PERFORMING OPERATIONS; TRANSPORTING
B22F3/1017
PERFORMING OPERATIONS; TRANSPORTING
C22C29/06
CHEMISTRY; METALLURGY
B22F3/1017
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Disclosed are cermets for magnetic sensors. The disclosed cermets for magnetic sensors may include at least six carbides and at least one refractory metal. The carbides are selected from TiC, VC, ZrC, HfC, WC, NbC and TaC, the refractory metal is tungsten, the cermets for magnetic sensors operate in 1003000 K, the magnetic precision is between 99.699.9%, such that the cermets for magnetic sensors are suitable for the magnetic sensors to operate at high temperatures.
Claims
1. Cermets for magnetic sensors, comprising at least six carbides and at least one refractory metal, wherein the carbides are selected from TiC, VC, ZrC, HfC, WC, NbC and TaC, the refractory metal is tungsten, the cermets for magnetic sensors operates in 1003000 K, and the magnetic precision is between 99.699.9%.
2. The cermets for magnetic sensors according to claim 1, wherein a transition point of the cermets for magnetic sensors between para-magnetism and diamagnetism is greater than 0 K.
3. The cermets for magnetic sensors according to claim 1, wherein the carbides comprise TiC, ZrC, HfC, WC, NbC and TaC, and when an operation temperature of the cermet for magnetic sensors is higher than 2300 K, the cermet for magnetic sensors transform from para-magnetic to diamagnetic states.
4. The cermet for magnetic sensors according to claim 1, wherein the carbides comprise TiC, VC, ZrC, HfC, WC, NbC and TaC, and when an operation temperature of the cermet for magnetic sensors is higher than 2800 K, the cermet for magnetic sensors transforms from para-magnetic to diamagnetic.
5. The cermet for magnetic sensors according to claim 1, wherein when the magnetic susceptibility of the cermet for magnetic sensors is closer to the transition point between para-magnetism and diamagnetism, the correlation of magnetic susceptibility to temperature is linear.
6. The cermet for magnetic sensors according to claim 1, wherein the paramagnetic Curie point of the cermet for magnetic sensors is higher than the ferromagnetic Curie point of the cermet for magnetic sensors.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(14) The technical solutions, features and effects of the disclosure can be clearly described in the description of preferred embodiments with reference to the drawings.
(15) Referring to
(16) (1) According to the disclosure, carbide powders (TiC, VC, ZrC, HfC, WC, NbC and TaC) are mixed properly and then the mixed is further mixed with the tungsten metal based on the designed composition ratio, and then the resulting product is disposed in a groove of a water-cooled copper mold of a vacuum arc smelting furnace (101);
(17) (2) After the pressure of the vacuum arc smelting furnace is reduced to vacuum (the pressure of the furnace is reduced to 2.410.sup.2 torr), pure argon (Ar) is incorporated until the pressure is elevated to about 8.0 torr, and then the pressure is reduced to vacuum again (reduced to 2.410.sup.2 torr). The process of incorporating Ar and then reducing the pressure is called purge. The above process is repeated for several times, and then argon is incorporated until the pressure is back to about 8.0 torr and smelting is performed (102); and
(18) (3) After smelting and after the specimen is cooled, the specimen is turned upside down and is smelted again. This process is repeated for several times for ensuring the uniformity of the specimen, finally after it is cooled completely, the pressure of the furnace is elevated to 1 atm, and the formed specimen of the cermet for magnetic sensors is obtained (103).
(19) According to the disclosure, the correlation between magnetic susceptibility and temperature is:
.sup.1=TC.sup.1+.sub.0.sup.1b(T.sub.p).sup.1
(20) Wherein is magnetic susceptibility, C is the Curie diamagnetic coefficient, .sub.0 is the Pauli paramagnetic coefficient, b is lattice diamagnetic coefficient, T is absolute temperature, and .sub.p is paramagnetic Curie point.
(21) According to the disclosure, the variation of the magnetic field is measured by superconducting quantum interference device (SUQID) under the external magnetic field of 1000 Oe. The experimental result is fitted with the correlation between magnetic susceptibility and temperature. In the disclosure, eight embodiments are disclosed, the correlation between magnetic susceptibility and temperature is solved and fitted by the software simulation results.
(1) First Embodiment (C7M1)
(22) The composition is [(TiC)(ZrC)(HfC)(VC)(NbC)(TaC)(WC)].sub.0.6W.sub.0.4, wherein the carbides include TiC, VC, ZrC, HfC, WC, NbC and TaC, and the refractory metal is tungsten. As shown in
(2) Second Embodiment (TiC)
(23) The composition is [(ZrC)(HfC)(VC)(NbC)(TaC)(WC)].sub.0.6W.sub.0.4, wherein the carbides include VC, ZrC, HfC, WC, NbC and TaC, and the refractory metal is tungsten. As shown in
(3) Third Embodiment (ZrC)
(24) The composition is [(TiC)(HfC)(VC)(NbC)(TaC)(WC)].sub.0.6W.sub.0.4, wherein the carbides include TiC, VC, HfC, WC, NbC and TaC, and the refractory metal is tungsten. As shown in
(4) Fourth Embodiment (HfC)
(25) The composition is [(TiC)(ZrC)(VC)(NbC)(TaC)(WC)].sub.0.6W.sub.0.4, wherein the carbides include TiC, VC, ZrC, WC, NbC and TaC, and the refractory metal is tungsten. As shown in
(5) Fifth Embodiment (VC)
(26) The composition is [(ZrC)(HfC)(VC)(NbC)(TaC)(WC)].sub.0.6W.sub.0.4, wherein the carbides include VC, ZrC, HfC, WC, NbC and TaC, and the refractory metal is tungsten. As shown in
(6) Sixth Embodiment (NbC)
(27) The composition is [(TiC)(ZrC)(HfC)(VC)(TaC)(WC)].sub.0.6W.sub.0.4 wherein the carbides include TiC, VC, ZrC, HfC, WC and TaC, and the refractory metal is tungsten. As shown in
(7) Seventh Embodiment (TaC)
(28) The composition is [(TiC)(ZrC)(HfC)(VC)(NbC)(WC)].sub.0.6W.sub.0.4, wherein the carbides include TiC, VC, ZrC, HfC, WC and NbC, and the refractory metal is tungsten. As shown in
(8) Eighth Embodiment (TiC)
(29) The composition is [(TiC)(ZrC)(HfC)(VC)(NbC)(TaC)].sub.0.6W.sub.0.4, wherein the carbides include TiC, VC, ZrC, HfC, NbC and TaC, and the refractory metal is tungsten. As shown in
(9) Ninth Embodiment (W)
(30) The magnetic field variation of tungsten measured is under the external magnetic field of 1000 Oe, and the precision between the magnetic susceptibility data and the fitting curve is 99.7%.
(31) In the above embodiments, the precisions are all higher than 99%, such that it is assumed that .sup.1 is zero and ferromagnetic Curie point .sub.f based on the correlation between magnetic susceptibility and temperature is solved. Afterwards, based on the correlation the temperature range extended is to 10000 K for studying the trend of magnetization of the composite at high temperatures. In the disclosure, the properties between para-magnetism and dimagnetism are studied (the transition point is C/.sub.0, a singular point), and the descriptions are as the followings:
1. First Embodiment (C7M1)
(32) When the cermet for magnetic sensors operate in 1003000 K, the magnetic precision is 99.975%, and when the magnetic susceptibility is closer to the transition point (2735 K) between para-magnetism and diamagnetism, the correlation of magnetic susceptibility to temperature is linear.
2. Second Embodiment (TiC)
(33) When the cermet for magnetic sensors operate in 1003000 K, as the magnetic susceptibility is closer to the transition point (10443 K) between para-magnetism and diamagnetism, the correlation of magnetic susceptibility to temperature is linear.
3. Third Embodiment (ZrC)
(34) When the cermet for magnetic sensors operate in 1003000 K, as the magnetic susceptibility is closer to the transition point (4521 K) between para-magnetism and diamagnetism, the correlation of magnetic susceptibility to temperature is linear.
4. Fourth Embodiment (HfC)
(35) When the cermet for magnetic sensors operate in 1003000 K, as the magnetic susceptibility is closer to the transition point (4351 K) between para-magnetism and diamagnetism, the correlation of magnetic susceptibility to temperature is linear.
5. Fifth Embodiment (VC)
(36) When the cermet for magnetic sensors operate in 1003000 K, as the magnetic susceptibility is closer to the transition point (2242 K) between para-magnetism and diamagnetism, the correlation of magnetic susceptibility to temperature is linear.
6. Sixth Embodiment (NbC)
(37) When the cermet for magnetic sensors operate in 1003000 K, as the magnetic susceptibility is closer to the transition point (5860 K) between para-magnetism and diamagnetism, the correlation of magnetic susceptibility to temperature is linear.
7. Seventh Embodiment (TaC)
(38) When the cermet for magnetic sensors operate in 1003000 K, as the magnetic susceptibility is closer to the transition point (6180 K) between para-magnetism and diamagnetism, the correlation of magnetic susceptibility to temperature is linear.
8. Eighth Embodiment (WC)
(39) When the cermet for magnetic sensors operate in 1003000 K, as the magnetic susceptibility is closer to the transition point (4201 K) between para-magnetism and diamagnetism, the correlation of magnetic susceptibility to temperature is linear.
9. Ninth Embodiment (W)
(40) When the cermet for magnetic sensors operate in 1003000 K, as the magnetic susceptibility is closer to the transition point (8609 K) between para-magnetism and diamagnetism, the correlation of magnetic susceptibility to temperature is linear.
(41) In addition, the following table lists parameters of magnetic susceptibility and characteristic temperatures of the cermets for magnetic sensors:
(42) TABLE-US-00001 TABLE 1 Parameters of Magnetic Susceptibility and Temperatures C.sup.1, (K.sup.1) .sub.0.sup.1 C/.sub.0, (K.sup.1) b, (K) .sub.P, (K) .sub.t, (K) C7M1 21.15 5.79 2735 2.52 6.25 1.85 -TiC 2.83 2.95 10443 0.54 3.49 1.67 -ZrC 7.95 3.59 4521 1.86 7.29 2.1 -HfC 9.07 3.98 4351 2.11 7.79 2.49 -VC 30.51 6.79 2242 4.11 6.39 0.35 -NbC 5.47 3.19 5860 0.6 3.32 1.45 -TaC 4.8 2.96 6180 0.79 5.09 2.42 -WC 8.52 3.58 4201 1.09 5.47 2.43 W 1.18 1.02 8609 0.09 1.79 0.88
(43) According to Table 1, the transition point of the cermet for magnetic sensors between para-magnetism and diamagnetism (C/.sub.0) is greater than 0 K, which can also be observed in
(44) According to the disclosure, as compared to traditional technologies, the cermet for magnetic sensors of the disclosure has the following advantages:
(45) 1. According to the disclosure, the material is prepared by smelting, and when the magnetic susceptibility of the smelted material is closer to the transition point between para-magnetism and diamagnetism, the correlation of magnetic susceptibility to temperature is linear, such that the disclosure is suitable for the magnetic sensors operating at high temperatures.
(46) 2. According to the disclosure, certain embodiments have characteristics of superconducting materials between 20003000 K.
(47) 3. According to the smelted cermet for magnetic sensors of the disclosure, the para-magnetic Curie point is higher than the ferromagnetic Curie point while the para-magnetic Curie point is lower than the ferromagnetic Curie point for traditional ferromagnetic materials, which indicates the significant difference between the disclosure and traditional ferromagnetic materials.
(48) 4. According to the smelted cermet for magnetic sensors of the disclosure, C is negative while C of traditional ferromagnetic materials is positive, which indicates the significant difference between the disclosure and traditional ferromagnetic materials.
(49) Note that the specifications relating to the above embodiments should be construed as exemplary rather than as limitative of the present disclosure. The equivalent variations and modifications on the structures or the process by reference to the specification and the drawings of the disclosure, or application to the other relevant technology fields directly or indirectly should be construed similarly as falling within the protection scope of the disclosure.