FIELD
[0001] Arrangements described herein generally relate to a magnetic material, a permanent
magnet, a rotary electrical machine, and a vehicle.
BACKGROUND
[0002] Permanent magnets are used for products in a wide field including rotary electrical
machines such as a motor and a power generator, electrical apparatuses such as a speaker
and a measuring device, and vehicles such as an automobile and a railroad vehicle.
In recent years, reduction in size of the above-described products has been demanded,
and high-performance permanent magnets with high magnetization and high coercive force
have been desired.
[0003] As examples of high-performance permanent magnets, there can be cited rare-earth
magnets such as Sm-Co based magnets and Nd-Fe-B based magnets, for example. In these
magnets, Fe and Co contribute to increase in saturation magnetization. Further, these
magnets contain rare-earth elements such as Nd and Sm, which brings about a large
magnetic anisotropy which is derived from a behavior of 4f electrons of the rare-earth
elements in a crystal field. Consequently, it is possible to obtain a large coercive
force.
RELEVANT REFERENCES
Patent Reference
Non-patent Reference
[0005]
Reference 8: T. Kuno et al., AIP ADVANCES 6, 025221, 2016
Reference 9: S. Suzuki et al., J. Magn. Magn. Mater. 401, 259, 2016
Reference 10: E. P. Yelsukov et al., J. Magn. Magn. Mater. 115, 271, 1992
Reference 11: G Pourroy et al., J. Alloys Compd. 244, 90, 1996
BRIEF DESCRIPTION OF THE DRAWINGS
[0006]
Fig. 1 is a diagram illustrating an example of an X-ray diffraction pattern of a magnetic
material expressed by a composition formula: (SM0.82Y0.18)7.7(Fe0.70Co0.30)88.4Ti3.9.
Fig. 2 is a diagram illustrating an example of an X-ray diffraction pattern of a magnetic
material expressed by a composition formula: (Sm0.68Zr0.32)7.8(Fe0.70Co0.30)88.2Ti4.0.
Fig. 3 is an example of an X-ray diffraction pattern having a peak corresponding to
a Nd3(Fe, Ti)29 type crystal phase.
Fig. 4 is a diagram illustrating a permanent magnet motor.
Fig. 5 is a diagram illustrating a variable magnetic flux motor.
Fig. 6 is a diagram illustrating a power generator.
Fig. 7 is a schematic diagram illustrating a configuration example of a railroad vehicle.
Fig. 8 is a schematic diagram illustrating a configuration example of an automobile.
DETAILED DESCRIPTION
[0007] A problem to be solved by the present disclosure is to increase saturation magnetization
of the magnetic material.
[0008] A magnetic material of an arrangement is expressed by a composition formula 1: (R
1-xY
x)
aM
bT
c (in the formula, R is a rare-earth element of one kind or more, T is at least one
element selected from the group consisting of Ti, V, Nb, Ta, Mo, and W, M is Fe or
Fe and Co, x is a number satisfying 0.01 ≤ x ≤ 0.8, a is a number satisfying 4 ≤ a
≤ 20 atomic percent, b is a number satisfying b =100 - a - c atomic percent, and c
is a number satisfying 0 < c < 7 atomic percent). The magnetic material includes a
main phase formed of a ThMn
12 type crystal phase. 30 atomic percent or more of the element M in the composition
formula 1 is Fe.
[0009] Hereinafter, arrangements will be described while referring to the drawings. The
drawings are schematically illustrated, and, for example, a relationship between a
thickness and a plane dimension, a ratio of thicknesses of respective layers, and
the like, are sometimes different from actual ones. Further, in the arrangements,
substantially the same components are denoted by the same reference numerals, and
explanation thereof will be omitted.
(First Arrangement)
[0010] A magnetic material of the present arrangement contains a rare-earth element and
an element M (M is Fe or Fe and Co). The magnetic material includes a metal structure
having a crystal phase as a main phase, and by increasing a concentration of the element
M in the main phase, it is possible to improve saturation magnetization. The main
phase has the highest volume occupancy ratio among respective crystal phases and an
amorphous phase in the magnetic material.
[0011] Examples of a crystal phase containing the element M of high concentration include
a ThMn
12 type crystal phase. The ThMn
12 type crystal phase has a crystal structure of tetragonal system. The magnetic material
having the ThMn
12 type crystal phase as its main phase has a high concentration of the element M to
lead precipitation of an α-(Fe, Co) phase. If a hetero-phase such as the α-(Fe, Co)
phase precipitates, the concentration of the element M in the main phase reduces,
which causes reduction in saturation magnetization of the main phase. Further, the
precipitation of the α-(Fe, Co) phase causes reduction in coercive force of the permanent
magnet. Accordingly, in the magnetic material of the present arrangement, the reduction
in the saturation magnetization is suppressed by reducing the α-(Fe, Co) phase to
improve the concentration of the element M in the main phase, while forming a stabilized
ThMn
12 type crystal phase by controlling concentrations of respective elements contained
in the main phase.
[0012] The magnetic material of the present arrangement has a composition expressed by a
composition formula 1: (R
1-xY
x)
aM
bT
c (in the formula, R is a rare-earth element of one kind or more, T is at least one
element selected from the group consisting of Ti, V, Nb, Ta, Mo, and W, M is Fe or
Fe and Co, x is a number satisfying 0.01 ≤ x ≤ 0.8, a is a number satisfying 4 ≤ a
≤ 20 atomic percent, b is a number satisfying b = 100 - a - c atomic percent, and
c is a number satisfying 0 < c < 7 atomic percent). The magnetic material may also
contain inevitable impurities.
[0013] Yttrium (Y) is an element effective for stabilization of the ThMn
12 type crystal phase. Specifically, the element Y can mainly increase stability of
the ThMn
12 type crystal phase through reduction in a crystal lattice caused when it is replaced
with the element R in the main phase, and the like. When an addition amount of the
element Y is too small, it is not possible to sufficiently achieve an effect of increasing
the stability of the ThMn
12 type crystal phase. When the addition amount of Y is too large, an anisotropic magnetic
field of the magnetic material significantly lowers. It is preferable that x is a
number satisfying 0.01 ≤ x ≤ 0.8, it is more preferable that x is a number satisfying
0.05 ≤ x < 0.5, and it is still more preferable that x is a number satisfying 0.1
≤ x ≤ 0.4.
[0014] 50 atomic percent or less of the element Y may be replaced with at least one element
selected from the group consisting of zirconium (Zr) and hafnium (Hf). The element
Zr and the element Hf are elements capable of realizing exhibition of large coercive
force in a composition of high Fe concentration. When the element Y is replaced with
the element Zr and the element Hf, it is possible to increase the coercive force.
[0015] The element R is a rare-earth element, and an element capable of providing large
magnetic anisotropy to the magnetic material, and giving high coercive force to a
permanent magnet. The element R is, concretely, at least one element selected from
the group consisting of lanthanum (La), cerium (Ce), praseodymium (Pr), neodymium
(Nd), promethium (Pr), samarium (Sm), europium (Eu), gadolinium (Gd), terbium (Tb),
dysprosium (Dy), holmium (Ho), erbium (Er), thulium (Tm), ytterbium (Yb), and lutetium
(Lu), and it is preferable to use Sm, in particular. For example, when a plurality
of elements including Sm are used as the element R, by setting the Sm concentration
to 50 atomic percent or more of all of the elements capable of being applied as the
element R, it is possible to increase the performance, for example, the coercive force
of the magnetic material.
[0016] The concentration a of the element R and the element Y is preferably a number satisfying
4 ≤ a ≤ 20 atomic percent, for example. When the concentration a is less than 4 atomic
percent, a large amount of the α-(Fe, Co) phase precipitates, which reduces the coercive
force. When the concentration a exceeds 20 atomic percent, a gain boundary phase increases,
which reduces the saturation magnetization. The concentration a of the element R and
the element Y is more preferably a number satisfying 5 ≤ a ≤ 18 atomic percent, and
still more preferably a number satisfying 7 ≤ a ≤ 15 atomic percent.
[0017] The element M is Fe or Fe and Co, and is an element responsible for high saturation
magnetization of the magnetic material. When compared between Fe and Co, Fe causes
higher magnetization, so that Fe is an essential element, and in the magnet of the
present arrangement, 30 atomic percent or more of the element M is Fe. By making the
element M contain Co, the Curie temperature of the magnetic material increases, resulting
in that the reduction in the saturation magnetization in a high-temperature region
can be suppressed. Further, by adding a small amount of Co, the saturation magnetization
can be further increased, when compared to a case where Fe is solely used. On the
other hand, if a Co ratio is increased, the reduction in the anisotropic magnetic
field is caused. Further, if the Co ratio is too high, the reduction in the saturation
magnetization is also caused. For this reason, by appropriately controlling the ratio
between Fe and Co, it is possible to simultaneously realize high saturation magnetization,
high anisotropic magnetic field, and high Curie temperature. When M in the composition
formula 1 is represented as (Fe
1-yCo
y), a desirable value of y is 0.01 ≤ x < 0.7, the value is more preferably 0.01 ≤ y
< 0.5, and is still more preferably 0.01 ≤ y ≤ 0.3. 20 atomic percent or less of the
element M may be replaced with at least one element selected from the group consisting
of aluminum (Al), silicon (Si), chromium (Cr), manganese (Mn), nickel (Ni), copper
(Cu), and gallium (Ga). The above-described elements contribute to growth of crystal
grains which form the main phase, for example.
[0018] The element T is at least one element selected from the group consisting of titanium
(Ti), vanadium (V), niobium (Nb), tantalum (Ta), molybdenum (Mo), and tungsten (W),
for example. By adding the element T, it is possible to stabilize the ThMn
12 type crystal phase. However, by the introduction of the element T, the concentration
of the element M reduces, resulting in that the saturation magnetization of the magnetic
material easily reduces. In order to increase the concentration of the element M,
it is only required to reduce the addition amount of T, but, in such a case, the stability
of the ThMn
12 type crystal phase is lost, and the α-(Fe, Co) phase precipitates, which leads to
reduction in the coercive force of the magnetic material. The addition amount c of
the element T is preferably a number satisfying 0 < c < 7 atomic percent. Consequently,
it is possible to stabilize the ThMn
12 type crystal phase while suppressing the precipitation of the α-(Fe, Co) phase. It
is more preferable that 50 atomic percent or more of the element T is Ti or Nb. By
using Ti or Nb, even if the content of the element T is reduced, it is possible to
greatly reduce the precipitation amount of the α-(Fe, Co) phase while stabilizing
the ThMn
12 type crystal phase.
[0019] In order to increase the saturation magnetization of the magnetic material, it is
preferably to reduce the amount of the element T. However, the reduction of the amount
of the element T may cause the precipitation of a Nd
3(Fe, Ti)
29 type crystal phase and thus reduction of the saturation magnetization. In order to
suppress the precipitation of the Nd
3(Fe, Ti)
29 type crystal phase with the reduction of the amount of the element T, it is effective
to increase the amount of Y. This enables an increase of the saturation magnetization.
If the addition amount c of the element T is a number satisfying 0 < c < 4.5 atomic
percent, x is preferably a number satisfying 0.1 < x < 0.6. If c is a number satisfying
1.5 < c < 4 atomic percent, x is preferably a number satisfying 0.15 < x ≤ 0.55. If
c is a number satisfying 3 < c ≤ 3.8 atomic percent, x is preferably a number satisfying
0.3 < x ≤ 0.5.
[0020] The magnetic material of the present arrangement may further contain an element A.
At this time, a composition of the magnetic material is expressed by a composition
formula 2: (R
1.xY
x)
aM
bT
cA
d (in the formula, R is a rare-earth element of one kind or more, T is at least one
element selected from the group consisting of Ti, V, Nb, Ta, Mo, and W, M is Fe or
Fe and Co, A is at least one element selected from the group consisting of N, C, B,
H, and P, x is a number satisfying 0.01 ≤ x ≤ 0.8, a is a number satisfying 4 ≤ 20
atomic percent, c is a number satisfying 0 < c < 7 atomic percent, b is a number satisfying
b =100 - a - c - d atomic percent, and d is a number satisfying 0 < d ≤ 18 atomic
percent).
[0021] The element A is at least one element selected from the group consisting of nitrogen
(N), carbon (C), boron (B), hydrogen (H), and phosphorus (P). The element A has a
function of entering a crystal lattice of the ThMn
12 type crystal phase to cause at least one of enlargement of the crystal lattice and
change in electronic structure, for example. Consequently, it is possible to change
the Curie temperature, the magnetic anisotropy, and the saturation magnetization.
The element A does not always have to be added, except for inevitable impurities.
[0022] When 50 atomic percent or more of the element R is Sm (when a main component of the
element R is Sm), the magnetic anisotropy of the ThMn
12 type crystal phase changes from a c axis direction to a direction oriented in a plane
perpendicular to the c axis due to the entrance of the element A, which reduces the
coercive force. For this reason, it is preferable that the element A is not added
except for inevitable impurities. On the contrary, when 50 atomic percent or more
of the element R is at least one element selected from the group consisting of Ce,
Pr, Nd, Tb, and Dy (when the main component of the element R is at least one element
selected from the group consisting of Ce, Pr, Nd, Tb, and Dy), the magnetic anisotropy
of the ThMn
12 type crystal phase changes from the direction oriented in the plane perpendicular
to the c axis to the c axis direction due to the entrance of the element A, which
enables to increase the coercive force. For this reason, the element A is preferably
added. When the element A is added, the concentration d of the element A is preferably
a number satisfying 0 < d ≤ 18 atomic percent. When the concentration d exceeds 18
atomic percent, the stability of the ThMn
12 type crystal phase reduces. The concentration d of the element A is more preferably
a number satisfying 0 < d ≤ 14 atomic percent.
[0023] Fig. 1 is a diagram illustrating an example of an X-ray diffraction pattern of a
magnetic material expressed by a composition formula: (S
0.82Y
0.18)
7.7(Fe
0.70Co
0.30)
88.4Ti
3.9, and Fig. 2 is a diagram illustrating an example of an X-ray diffraction pattern
of a magnetic material expressed by a composition formula: (Sm
0.68Zr
0.32)
7.8(Fe
0.70Co
0.30)
88.2Ti
4.0. The X-ray diffraction patterns illustrated in Fig. 1 and Fig. 2 can be obtained
by performing X-ray diffraction (XRD) measurement on the magnetic materials. From
the X-ray diffraction patterns illustrated in Fig. 1 and Fig. 2, it can be understood
that each of the magnetic materials includes a metal structure having a ThMn
12 type crystal phase as its main phase.
[0024] A maximum value I
α-(Fe, Co) of a peak intensity brought by an α-(Fe, Co) phase in the X-ray diffraction pattern
illustrated in Fig. 1, is smaller than a maximum value I
α-(Fe,Co) of a peak intensity brought by an α-(Fe, Co) phase in the X-ray diffraction pattern
illustrated in Fig. 2. This indicates that the magnetic material of the present arrangement
has a small precipitation amount of the α-(Fe, Co) phase. In the X-ray diffraction
pattern of the magnetic material of the present arrangement, a ratio of a maximum
value I
α-(Fe,Co) of a peak intensity brought by the α-(Fe, Co) phase to a sum of a maximum value I
ThMn12 of a peak intensity brought by the ThMn
12 type crystal phase and the maximum value I
α-(Fe, Co) of the peak intensity brought by the α-(Fe, Co) phase (I
α-(Fe, Co) / (I
α-(Fe, Co) + I
ThMn12)) is preferably less than 0.20, more preferably less than 0.15, and still more preferably
less than 0.10.
[0025] Fig. 3 is an example of an X-ray diffraction pattern having a peak corresponding
to the Nd
3(Fe, Ti)
29 type crystal phase. Fig.3 shows that the precipitation of the Nd
3(Fe, Ti)
29 type crystal phase is determined by a peak at diffraction angles 2θ of 39 to 40 degrees
of the X-ray diffraction pattern. In the X-ray diffraction pattern, the precipitation
amount of the Nd
3(Fe, Ti)
29 type crystal phase is defined by a ratio of a maximum value I
3-29 of a peak intensity brought by the Nd
3(Fe, Ti)
29 type crystal phase to a sum of a maximum value I
ThMn12 of a peak intensity brought by the ThMn
12 type crystal phase and the maximum value I
3-29 of the peak intensity brought by the Nd
3(Fe, Ti)
29 type crystal phase (I
3-29/(I
3-29 + I
ThMn12)). I
3-29 / (I
3-29 + I
ThMn12) is preferably 0.070 or less, more preferably less than 0.050, and still more preferably
less than 0.040.
[0026] In the magnetic material of the present arrangement, as the concentration of the
element M in the main phase becomes high, the saturation magnetization of the magnetic
material can be increased. The concentration of the element M in the main phase of
the magnetic material is preferably 85 atomic percent or more, more preferably 87.4
atomic percent or more, still more preferably 87.6 atomic percent or more, and yet
more preferably 88.0 atomic percent or more of the total amount of the elements except
for the element A (the element R, the element Y, the element M, and the element T)
in the main phase.
[0027] In the magnetic material of the present arrangement, by setting the concentration
of the element M in the main phase to 87.4 atomic percent or more of the total amount
of the elements except for the element A (the element R, the element Y, the element
M, and the element T) in the main phase. Therefore, it is possible to provide the
magnetic material having the saturation magnetization higher than the conventional
saturation magnetization. The saturation magnetization of the entire magnetic material
is preferably higher than 1.48 T, and more preferably 1.52 T or higher, for example.
Further, the saturation magnetization of the main phase except for the contribution
of saturation magnetization of the α-(Fe, Co) phase is preferably higher than 1.41
T, and more preferably 1.50 T or higher, for example. Magnetic physical properties
such as the saturation magnetization are calculated by using a vibrating sample magnetometer
(VSM), for example.
[0028] The composition of the magnetic material is measured through, for example, ICP-AES
(Inductively Coupled Plasma-Atomic Emission Spectroscopy), SEM-EDX (Scanning Electron
Microscope-Energy Dispersive X-ray Spectroscopy), TEM-EDX (Transmission Electron Microscope-Energy
Dispersive X-ray Spectroscopy), or the like. The volume ratios of the respective phases
are determined in a comprehensive manner by using both of observation with an electron
microscope or an optical microscope, and the X-ray diffraction or the like.
[0029] The concentrations of the respective elements of the main phase are measured by using
the SEM-EDX, for example. For example, the main phase can be specified by an observation
image obtained through the SEM and a mapping image of each element of a measurement
sample of the magnetic material obtained through the SEM-EDX.
[0030] Next, an example of manufacturing method of the magnetic material of the present
arrangement will be described. First, an alloy containing predetermined elements required
for the magnetic material is manufactured. The alloy can be manufactured by using,
for example, an arc melting method, a high-frequency melting method, a metal mold
casting method, a mechanical alloying method, a mechanical grinding method, a gas
atomizing method, a reduction diffusion method, or the like. When the α-(Fe, Co) phase
is generated in the manufactured alloy, this leads to reduction in the coercive force
of the permanent magnet manufactured from this alloy.
[0031] Further, the above-described alloy is melted to be subjected to rapid cooling. This
enables to reduce the precipitation amount of the α-(Fe, Co) phase. The melted alloy
is subjected to rapid cooling by using a strip cast method, for example. In the strip
cast method, the alloy molten metal is tiltingly injected to a chill roll, to thereby
manufacture an alloy thin strip. At this time, by controlling a rotation speed of
the roll, a cooling rate of the molten metal can be controlled. The roll may be one
of either a single-roll type or a twin-roll type.
[0032] Heat treatment may also be performed on the above-described alloy thin strip. This
enables to homogenize the material. For example, heating is performed at 800 to 1300°C
for 2 to 120 hours. Consequently, it becomes possible to increase the stability of
the ThMn
12 type crystal phase to further improve both properties of the saturation magnetization
and the anisotropic magnetic field.
[0033] It is also possible to make the element A enter the above-described alloy thin strip.
It is preferable that the alloy is pulverized into a powder before the process of
making the element A enter the alloy. When the element A is nitrogen, by heating the
alloy thin strip for 1 to 100 hours in an atmosphere of nitrogen gas, ammonia gas,
or the like of about 0.1 to 100 atmospheric pressure, in a temperature range of 200
to 700°C, it is possible to nitride the alloy thin strip to make the element N enter
the alloy thin strip. When the element A is carbon, by heating the alloy thin strip
for 1 to 100 hours in an atmosphere of C
2H
2, CH
4, C
3H
8, or Co gas of about 0.1 to 100 atmospheric pressure or thermal decomposition gas
of methanol in a temperature range of 300 to 900°C, it is possible to carbonize the
alloy thin strip to make the element C enter the alloy thin strip. When the element
A is hydrogen, by heating the alloy thin strip for 1 to 100 hours in an atmosphere
of hydrogen gas, ammonia gas, or the like of about 0.1 to 100 atmospheric pressure,
in a temperature range of 200 to 700°C, it is possible to hydrogenate the alloy thin
strip to make the element H enter the alloy thin strip. When the element A is boron,
by making a raw material contain boron when manufacturing the alloy, it is possible
to make boron to be contained in the alloy thin strip. When the element A is phosphorus,
by phosphorizing the alloy thin strip, it is possible to make the element P enter
the alloy thin strip.
[0034] The magnetic material is manufactured through the above-described process. Further,
the permanent magnet is manufactured by using the aforementioned magnetic material.
For example, by pulverizing the aforementioned magnetic material and then performing
heat treatment such as sintering, a sintered magnet including a sintered compact of
the aforementioned magnetic material is manufactured. Further, by pulverizing the
aforementioned magnetic material and then performing solidification using a resin
or the like, a bond magnet including the aforementioned magnetic material is manufactured.
(Second Arrangement)
[0035] The permanent magnet including the sintered compact of the magnetic material of the
first arrangement can be used for various motors and power generators. Further, it
is possible to use the permanent magnet as a stationary magnet or a variable magnet
of a variable magnetic flux motor or a variable magnetic flux power generator. Various
motors and power generators are formed by using the permanent magnet of the first
arrangement. When the permanent magnet of the first arrangement is applied to a variable
magnetic flux motor, techniques disclosed in Japanese Patent Application Laid-open
No.
2008-29148 or Japanese Patent Application Laid-open No.
2008-43172 can be applied to a configuration and a drive system of the variable magnetic flux
motor.
[0036] Next, a motor and a power generator including the above-described permanent magnet
will be described with reference to the drawings. Fig. 4 is a diagram illustrating
a permanent magnet motor. In a permanent magnet motor 1 illustrated in Fig. 4, a rotor
3 is disposed in a stator 2. In an iron core 4 of the rotor 3, permanent magnets 5
being the permanent magnets of the first arrangement are disposed. By using the permanent
magnets of the first arrangement, high efficiency, reduction in size, cost reduction
and the like of the permanent magnet motor 1 can be achieved based on properties and
the like of the respective permanent magnets.
[0037] Fig. 5 is a diagram illustrating a variable magnetic flux motor. In a variable magnetic
flux motor 11 illustrated in Fig. 5, a rotor 13 is disposed in a stator 12. In an
iron core 14 of the rotor 13, the permanent magnet of the first arrangement is disposed
as stationary magnets 15 and variable magnets 16. A magnetic flux density (magnetic
flux amount) of the variable magnets 16 is variable. A magnetization direction of
the variable magnets 16 is orthogonal to a Q-axis direction, and thus the magnets
are not affected by a Q-axis current, and can be magnetized by a D-axis current. A
magnetization winding (not illustrated) is provided on the rotor 13. It is structured
such that by passing a current through the magnetization winding from a magnetizing
circuit, a magnetic field thereof operates directly on the variable magnets 16.
[0038] According to the permanent magnet of the first arrangement, it is possible to obtain
the coercive force suitable for the stationary magnets 15. When the permanent magnet
of the first arrangement is applied to the variable magnets 16, it is only required
to control the coercive force, for example, to fall within a range of not less than
100 kA/m nor more than 500 kA/m by changing the manufacturing conditions. In the variable
magnetic flux motor 11 illustrated in Fig. 5, the permanent magnet of the first arrangement
can be used for both of the stationary magnets 15 and the variable magnets 16, but,
it is also possible to use the permanent magnet of the first arrangement for either
of the magnets. The variable magnetic flux motor 11 is capable of outputting a large
torque from a small device size, and thus is preferred for a motor of a hybrid vehicle,
electric vehicle, or the like required to have high output power and small size of
the motor.
[0039] Fig. 6 illustrates a power generator. A power generator 21 illustrated in Fig. 6
includes a stator 22 using the above-described permanent magnet. A rotor 23 disposed
inside the stator 22 is connected via a shaft 25 to a turbine 24 provided at one end
of the power generator 21. The turbine 24 is rotated by an externally supplied fluid,
for example. Instead of the turbine 24 rotated by the fluid, the shaft 25 can also
be rotated by transmitting dynamic rotation such as regenerative energy of an automobile.
To the stator 22 and the rotor 23, various publicly-known configurations can be adopted.
[0040] The shaft 25 is in contact with a commutator (not illustrated) disposed on the opposite
side of the turbine 24 with respect to the rotor 23, and electromotive force generated
by rotations of the rotor 23 is increased in voltage to a system voltage and transmitted
as output of the power generator 21 via isolated phase buses and a main transformer
(not illustrated). The power generator 21 may be either of an ordinary power generator
and a variable magnetic flux power generator. A static electricity from the turbine
24 or charges by an axial current accompanying power generation occur on the rotor
23. For this reason, the power generator 21 includes a brush 26 for discharging the
charges of the rotor 23.
[0041] An use of the above-described permanent magnet to the power generator enable effects
such as high efficiency, reduction in size, and cost reduction.
[0042] The above-described rotary electrical machine may be mounted on a railroad vehicle
(one example of vehicle) used in railway traffic, for example. Fig. 7 is a diagram
illustrating one example of a railroad vehicle 100 including a rotary electrical machine
101. As the rotary electrical machine 101, the motor in Fig. 4 or Fig. 5, the power
generator in Fig.6 described above, or the like. When the above-described rotary electrical
machine is mounted as the rotary electrical machine 101, the rotary electrical machine
101 may be used as an electric motor (motor) which outputs a driving force by utilizing
electric power supplied from a power transmission line or electric power supplied
from a secondary battery mounted on the railroad vehicle 100, for example, or it may
also be used as a power generator (generator) which converts kinetic energy into electric
power and supplies the electric power to various loads in the railroad vehicle 100.
By utilizing a highly efficient rotary electric machine such as the rotary electrical
machine of the arrangement, it is possible to make the railroad vehicle travel while
saving energy.
[0043] The aforementioned rotary electrical machine may also be mounted on an automobile
(another example of vehicle) such as a hybrid vehicle or an electric vehicle. Fig.
8 is a diagram illustrating one example of an automobile 200 including a rotary electrical
machine 201. As the rotary electrical machine 201, the motor in Fig. 4 or Fig. 5,
the power generator in Fig.6 described above, or the like. When the above-described
rotary electrical machine is mounted as the rotary electrical machine 201, the rotary
electrical machine 201 may be used as an electric motor which outputs a driving force
of the automobile 200, or it may also be used as a power generator which converts
kinetic energy at the time of traveling the automobile 200 into electric power.
EXAMPLES
(Examples 1 to 38)
[0044] Appropriate amounts of raw materials were weighed to produce alloys by using the
arc melting method. Next, each of the alloys was melted, and the obtained molten metal
was subjected to rapid cooling by using the strip cast method, to thereby produce
an alloy thin strip. The above-described alloy thin strips were heated for 4 hours
at 1100°C under an Ar atmosphere. Thereafter, compositions of the alloy thin strips
after being subjected to the heating were analyzed by using the ICP-AES. The compositions
of the magnetic materials obtained by using the ICP-AES are presented in Table 1.
[0045] Next, each of the alloy thin strips was pulverized in a mortar to produce an alloy
powder. Thereafter, a crystal structure of the aforementioned alloy powder was analyzed
through the XRD measurement in which CuKα was set as a radiation source. Fig. 1 illustrates
an X-ray diffraction pattern of the magnetic material of an example 1. As a result
of the XRD measurement, it was confirmed that the alloy powder includes a metal structure
having the ThMn
12 type crystal phase as its main phase. Further, by calculating I
α-(Fe, Co) / (I
a-(Fe, Co) + I
ThMn12), a precipitation amount of the α-(Fe, Co) phase was evaluated. In addition, by calculating
I
3-29/(I
3-29 + I
ThMn12), a precipitation of the Nd
3(Fe, Ti)
29 type crystal phase was evaluated.
[0046] Further, the VSM device was used to evaluate the magnetic physical properties of
the magnetic material. A magnetic field of 5.0 T was applied in an in-plane direction
of each of the alloy thin strips, and the magnetic field was then swept to -5.0 T,
thereby measuring a magnetic field H and magnetization M. By applying a saturation
asymptotic law expressed by the following formula (1) with respect to tetragon, to
a relationship between the magnetization M and the magnetic field intensity H during
when the applied magnetic field was lowered from 5.0 T to 4.5 T, saturation magnetization
Ms of the entire magnetic material was calculated.

[0047] Based on the peak intensity brought by the α-(Fe, Co) phase in the X-ray diffraction
pattern, the contribution of the α-(Fe, Co) phase with respect to the saturation magnetization
was evaluated, and this was subtracted from the saturation magnetization of the entire
magnetic material, to thereby determine the saturation magnetization of the main phase.
Concretely, a powder sample having no peak intensity brought by the α-(Fe, Co) phase
in the X-ray diffraction pattern was produced, and to the power sample, a powder sample
having the α-(Fe, Co) phase was added and sufficiently mixed, to thereby produce a
plurality of samples. A mass fraction of the powder sample having the α-(Fe, Co) phase
in each of the plurality of samples is different within a range of not less than 0
mass% nor more than 21 mass%. When a crystal structure of each of the samples was
analyzed through the XRD measurement, a ratio between the mass fraction of the powder
sample having the α-(Fe, Co) phase and a maximum value of the peak intensity I
α-(Fe, Co) / (I
α-(Fe, Co) + I
ThMn12) was confirmed to have a linear relationship. Based on this, a mass fraction of the
α-(Fe, Co) phase was determined from the peak intensity of the α-(Fe, Co) phase in
the X-ray diffraction pattern, and the mass fraction was converted into the contribution
of the α-(Fe, Co) phase to the saturation magnetization.
[0048] Next, concentrations of elements in the main phase were measured at five points,
respectively, in three observation visual fields through the SEM-EDX measurement,
and by calculating simple average at 15 points above, the concentration of the element
M in the main phase was calculated. As the measurement point, a point where the α-(Fe,
Co) phase does not exist within a radius of 5 µm in a SEM image was selected. In the
SEM observation, the observation was performed at an acceleration voltage of 30 kV
by using SU8020 manufactured by Hitachi High-Technologies Corporation. Further, in
the SEM-EDX measurement, the measurement was conducted by using Octane-super (semiconductor
element size: 60 mm
2) manufactured by EDAX, with a working distance set to 15 mm and a live time set to
100 seconds. In the calculation of the concentrations of the elements, only the constituent
elements of the respective samples were set as calculation targets, in which Lα radiation
was applied to Sm, Zr, and Y, and Kα radiation was applied to Fe, Co, and Ti.
(Examples 39 to 41)
[0049] Appropriate amounts of raw materials were weighed to produce alloys by using the
arc melting method. Next, each of the alloys was melted, and the obtained molten metal
was subjected to rapid cooling by using the strip cast method, to thereby produce
an alloy thin strip. The above-described alloy thin strips were heated for 4 hours
at 1100°C under an Ar atmosphere. Thereafter, each of the alloy thin strips was pulverized
in a mortar, and the obtained powder was heated for 4 hours at 450°C in a nitrogen
gas atmosphere. After that, compositions of the alloy powders were analyzed by using
the ICP-AES. The compositions of the magnetic materials obtained by using the ICP-AES
are presented in Table 1.
[0050] Next, a crystal structure of the aforementioned alloy powder was analyzed through
the XRD measurement in which the CuKα was set as a radiation source. As a result of
the XRD measurement, it was confirmed that the alloy powder includes a metal structure
having the ThMn
12 type crystal phase as its main phase. Further, by calculating I
α-(Fe, Co) / (I
α-(Fe, Co) + I
ThMn12), a precipitation amount of the α-(Fe, Co) phase was evaluated. In addition, by calculating
I
3-29 / (I
3-29 + I
ThMn12), a precipitation of the Nd
3(Fe, Ti)
29 type crystal phase was evaluated.
[0051] Further, the alloy powder was solidified in an acrylic square-shaped cell by using
paraffin, and the VSM was used to evaluate the magnetic physical properties of the
magnetic materials. The measurement condition and the method of calculating the saturation
magnetization are similar to those in the examples 1 to 30.
[0052] Next, concentrations of respective elements in the main phase were measured at five
points, respectively, in three observation visual fields through the SEM-EDX measurement,
and by calculating simple average at 15 points above, the concentration of the element
M in the main phase was calculated.
(Examples 42, 43)
[0053] Appropriate amounts of raw materials were weighed to produce alloys by using the
arc melting method. Next, each of the alloys was melted, and the obtained molten metal
was subjected to rapid cooling by using the strip cast method, to thereby produce
an alloy thin strip. The above-described alloy thin strips were heated for 4 hours
at 1100°C under an Ar atmosphere. Thereafter, compositions of the alloy thin strips
after being subjected to the heating were analyzed by using the ICP-AES. The compositions
of the magnetic materials obtained by using the ICP-AES are presented in Table 1.
[0054] Next, each of the alloy thin strips was pulverized in a mortar to produce an alloy
powder. Thereafter, a crystal structure of the aforementioned alloy powder was analyzed
through the X-ray diffraction measurement in which CuKα was set as a radiation source.
As a result of the XRD measurement, it was confirmed that the alloy powder includes
a metal structure having the ThMn
12 type crystal phase as its main phase. Further, by calculating I
α-(Fe, Co)/(I
α-(Fe, Co) + I
ThMn12), a precipitation amount of the α-(Fe, Co) phase was evaluated. In addition, by calculating
I
3-29 / (I
3-29 + I
ThMn12), a precipitation of the Nd
3(Fe, Ti)
29 type crystal phase was evaluated.
[0055] Further, the VSM was used to evaluate the magnetic physical properties of the magnetic
materials. The measurement condition and the method of calculating the saturation
magnetization are similar to those in the examples 1 to 41.
[0056] Next, concentrations of respective elements in the main phase were measured at five
points, respectively, in three observation visual fields through the SEM-EDX measurement,
and by calculating simple average at 15 points above, the concentration of the element
M in the main phase was calculated.
(Comparative Examples 1 to 5)
[0057] Appropriate amounts of raw materials were weighed to produce alloys by using the
arc melting method. Next, each of the alloys was heated for 4 hours at 1100°C under
an Ar atmosphere, without being subjected to melting and rapid cooling. Thereafter,
compositions of the alloys after being subjected to the heating were analyzed by using
the ICP-AES. The compositions of the magnetic materials obtained by using the ICP-AES
are presented in Table 1.
[0058] Next, each of the alloy thin strips was pulverized in a mortar to produce an alloy
powder. Thereafter, a crystal structure of the aforementioned alloy powder was analyzed
through the X-ray diffraction measurement in which CuKα was set as a radiation source.
Fig. 2 illustrates an X-ray diffraction pattern of the magnetic material of the comparative
example 1. As a result of the XRD measurement, it was confirmed that the alloy powder
includes a metal structure having the ThMn
12 type crystal phase as its main phase. Further, by calculating I
α-(Fe,
Co)/(I
α-(Fe, co) + I
ThMn12), a precipitation amount of the α-(Fe, Co) phase was evaluated. In addition, by calculating
I
3-29 (I
3-29 + I
ThMn12), a precipitation of the Nd
3(Fe, Ti)
29 type crystal phase was evaluated.
[0059] Further, the VSM was used to evaluate the magnetic physical properties of the magnetic
materials. The measurement condition and the method of calculating the saturation
magnetization are similar to those in the examples 1 to 43.
[0060] Next, concentrations of respective elements in the main phase were measured at five
points, respectively, in three observation visual fields through the SEM-EDX measurement,
and by calculating simple average at 15 points above, the concentration of the element
M in the main phase was calculated.
[Table 1]
| |
Composition of Magnet Material |
Saturation Magnetization of Magnet Material (T) |
Concentration of Element M in Main Phase (atomic percent) |
Iα-(Fe, Co)/ (Iα(Fe, Co)+IThMn12) |
I3-29/ (I3-29+IThMn12) |
Saturation Magnetization of Main Phase (T) |
Anisotropic Magnetic Field of Magnet Material (MA/m) |
| Example 1 |
(Sm0.82Y0.18)7.7(Fe0.70Co0.30)88.4Ti3.9 |
1.55 |
87.8 |
0.099 |
0.025 |
1.50 |
6.0 |
| Example 2 |
(Sm0.71Y0.29)7.5(Fe0.70Co0.30)88.9Nb3.6 |
1.54 |
88.0 |
0.106 |
0.029 |
1.51 |
5.5 |
| Example 3 |
(Sm0.72Y0.28)7.5Fe88.5Ti4.0 |
1.53 |
87.8 |
0.131 |
0.025 |
1.49 |
7.8 |
| Example 4 |
(Sm0.71Y0.29)7.5Fe88.9Ti3.6 |
1.52 |
88.0 |
0.143 |
0.030 |
1.48 |
7.6 |
| Example 5 |
(Sm0.71Y0.29)7.5(Fe0.70Co0.30)88.9V3.6 |
1.53 |
87.6 |
0.132 |
0.031 |
1.49 |
5.2 |
| Example 6 |
(Sm0.71Y0.29)7.5(Fe0.70Co0.30)88.9Ta3.6 |
1.52 |
87.7 |
0.136 |
0.031 |
1.48 |
5.4 |
| Example 7 |
(Sm0.71Y0.29)7.5(Fe0.70Co0.30)88.9Mo3.6 |
1.53 |
87.6 |
0.140 |
0.031 |
1.49 |
5.1 |
| Example 8 |
(Sm0.71Y0.29)7.5(Fe0.70Co0.30)88.9W3.6 |
1.52 |
87.6 |
0.139 |
0.030 |
1.48 |
5.3 |
| Example 9 |
(Sm0.72Y0.14Zr0.14)7.5(Fe0.70Co0.30)88.5Ti4.0 |
1.52 |
87.6 |
0.137 |
0.026 |
1.48 |
5.4 |
| Example 10 |
(Sm0.71Y0.19Zr0.10)7.5(Fe0.70Co0.30)88.9Nb3.6 |
1.53 |
87.7 |
0.132 |
0.031 |
1.49 |
5.4 |
| Example 11 |
(Sm0.71Y0.19Hf0.10)7.5(Fe0.70Co0.30)88.9Nb3.6 |
1.52 |
87.6 |
0.129 |
0.030 |
1.48 |
5.2 |
| Example 12 |
(Sm0.71Y0.19Zr0.06Hf0.04)7.5(Fe0.70Co0.30)88.9Nb3.6 |
1.52 |
87.7 |
0.136 |
0.030 |
1.48 |
5.1 |
| Example 13 |
(Sm0.72Y0.28)7.5(Fe0.70Co0.30)88.5Nb2.5Ti1.5 |
1.54 |
87.6 |
0.109 |
0.025 |
1.51 |
5.4 |
| Example 14 |
(Sm0.71Y0.29)7.5(Fe0.70Co0.29Al0.01)88.9Nb3.6 |
1.53 |
87.6 |
0.106 |
0.032 |
1.50 |
5.0 |
| Example 15 |
(Sm0.71Y0.29)7.5(Fe0.70Co0.29Si0.01)88.9Nb3.6 |
1.54 |
87.7 |
0.107 |
0.032 |
1.51 |
4.9 |
| Example 16 |
(Sm0.71Y0.29)7.5(Fe0.70Co0.29Cr0.01)88.9Nb3.6 |
1.54 |
87.6 |
0.105 |
0.032 |
1.51 |
5.0 |
| Example 17 |
(Sm0.71Y0.29)7.5(Fe0.70Co0.29Mn0.01)88.9Nb3.6 |
1.53 |
87.8 |
0.106 |
0.033 |
1.50 |
5.0 |
| Example 18 |
(Sm0.71Y0.29)7.5(Fe0.70Co0.29Ni0.01)88.9Nb3.6 |
1.54 |
87.6 |
0.107 |
0.032 |
1.51 |
4.8 |
| Example 19 |
(Sm0.71Y0.29)7.5(Fe0.70Co0.29Cu0.01)88.9Nb3.6 |
1.53 |
87.9 |
0.108 |
0.033 |
1.50 |
4.9 |
| Example 20 |
(Sm0.71Y0.29)7.5(Fe0.70Co0.29Ga0.01)88.9Nb3.6 |
1.54 |
87.6 |
0.106 |
0.033 |
1.51 |
5.0 |
| Example 21 |
(Sm0.75Y0.25)7.6(Fe0.80Co0.20)88.5Ti3.9 |
1.55 |
88.3 |
0.066 |
0.025 |
1.53 |
6.7 |
| Example 22 |
(Sm0.83Y0.17)7.6(Fe0.82Co0.18)88.8Nb3.6 |
1.52 |
87.5 |
0.131 |
0.028 |
1.48 |
7.5 |
| Example 23 |
(Sm0.81Y0.19)7.5(Fe0.85Co0.15)88.5Ti4.0 |
1.52 |
88.1 |
0.074 |
0.024 |
1.50 |
7.4 |
| Example 24 |
(Sm0.71Y0.29)7.5(Fe0.90Co0.10)88.5Ti4.0 |
1.50 |
87.9 |
0.077 |
0.024 |
1.48 |
7.4 |
| Example 25 |
(Sm0.85Y0.15)7.5(Fe0.79Co0.21)88.5Ti4.0 |
1.55 |
88.2 |
0.072 |
0.025 |
1.53 |
7.4 |
| Example 26 |
(Sm0.58Y0.42)7.5(Fe0.80Co0.20)88.6Ti3.9 |
1.52 |
88.0 |
0.071 |
0.025 |
1.50 |
6.0 |
| Example 27 |
(Sm0.71Y0.29)7.7(Fe0.70Co0.40)88.7Ti3.6 |
1.54 |
87.6 |
0.108 |
0.034 |
1.51 |
4.5 |
| Example 28 |
(Sm0.75Y0.25)7.8(Fe0.80Co0.20)89.2Ti3.0 |
1.52 |
86.8 |
0.197 |
0.060 |
1.46 |
6.3 |
| Example 29 |
(Sm0.93Y0.07)7.7(Fe0.85Co0.15)88.7Ti3.6 |
1.50 |
86.3 |
0.201 |
0.036 |
1.44 |
7.5 |
| Example 30 |
(Sm0.90Y0.10)7.7(Fe0.48Co0.52)88.7Ti3.6 |
1.49 |
86.7 |
0.199 |
0.040 |
1.43 |
3.5 |
| Example 31 |
(Sm0.6Y0.4)7.8(Fe0.80Co0.20)88.6Ti3.6 |
1.58 |
88.3 |
0.080 |
0.025 |
1.56 |
5.8 |
| Example 32 |
(Sm0.65Y0.35)7.8(Fe0.80Co0.20)88.9Ti3.3 |
1.56 |
88.1 |
0.092 |
0.027 |
1.54 |
6.1 |
| Example 33 |
(Sm0.55Y0.45)7.8(Fe0.80Co0.20)88.8Ti3.4 |
1.57 |
88.0 |
0.082 |
0.030 |
1.55 |
5.3 |
| Example 34 |
(Sm0.6Y0.4)7.8(Fe0.80Co0.20)88.6Nb3.6 |
1.56 |
88.2 |
0.075 |
0.024 |
1.55 |
5.9 |
| Example 35 |
(Sm0.65Y0.35)7.8(Fe0.80Co0.20)88.9Nb3.3 |
1.54 |
88.1 |
0.081 |
0.026 |
1.52 |
5.5 |
| Example 36 |
(Sm0.55Y0.45)7.8(Fe0.80Co0.20)88.8Nb3.4 |
1.55 |
88.3 |
0.078 |
0.028 |
1.54 |
5.3 |
| Example 37 |
(Sm0.4Y0.06)7.8(Fe0.80Co0.20)88.7Ti3.5 |
1.55 |
88.2 |
0.078 |
0.027 |
1.54 |
4.7 |
| Example 38 |
(Sm0.6Y0.4)7.8(Fe0.80Co0.20)89.7Ti2.5 |
1.42 |
86.7 |
0.201 |
0.070 |
1.38 |
4.0 |
| Example 39 |
(Nd0.72Y0.28)7.2(Fe0.70Co0.30)81.9Ti3.8N7.1 |
1.52 |
87.7 |
0.138 |
0.025 |
1.48 |
6.5 |
| Example 40 |
(Nd0.72Y0.28)7.5(Fe0.70Co0.30)82.2Nb3.5N6.8 |
1.53 |
87.8 |
0.123 |
0.027 |
1.49 |
6.7 |
| Example 41 |
(Sm0.65Nd0.1Y0.25)7.4(Fe0.79Co0.21)82.4Nb3.9N6.3 |
1.52 |
87.7 |
0.112 |
0.026 |
1.49 |
6.2 |
| Example 42 |
(Sm0.72Y0.28)7.5(Fe0.70Co0.30)88.5Ti4.0 |
1.47 |
85.9 |
0.213 |
0.025 |
1.40 |
5.4 |
| Example 43 |
(Sm0.71Y0.29)7.5(Fe0.70Co0.30)88.9Nb3.6 |
1.46 |
86.1 |
0.204 |
0.029 |
1.40 |
5.3 |
| comp-Exam 1 |
(Sm0.68Zr0.32)7.8(Fe0.79Co0.30)88.2Ti4.0 |
1.48 |
86.5 |
0.242 |
0.025 |
1.40 |
5.5 |
| Comp. Exam 2 |
(Sm0.64Zr0.36)7.7(Fe0.69Co0.31)88.4Nb3.9 |
1.47 |
85.5 |
0.251 |
0.025 |
1.39 |
5.6 |
| Comp. Exam 3 |
(Sm0.10Y0.90)7.5(Fe0.70Co0.30)88.5Ti4.0 |
1.43 |
86.4 |
0.221 |
0.025 |
1.36 |
3.0 |
| Comp. Exam 4 |
(Sm0.12Y0.88)7.5(Fe0.70Co0.30)88.9Nb3.6 |
1.48 |
86.3 |
0.235 |
0.025 |
1.41 |
3.1 |
| Comp. Exam 5 |
(Sm0.9Y0.1)7.8(Fe0.25Co0.75)89.3Ti2.9 |
1.27 |
86.1 |
0.211 |
0.070 |
1.20 |
1.2 |
[0061] Table 1 shows that 30 atomic percent or more of the element M in each of the magnetic
materials of examples 1 to 43 is Fe, and each of the materials has high saturation
magnetization. The concentration of the element M in the main phase in each of the
magnetic materials of examples 1 to 27, 31 to 37, and 39 to 41 is 87.4 atomic percent
or more of the total amount of the element R, the element Y, the element M, and the
element T, and thereby each of the materials has higher saturation magnetization.
When the element M in each of the magnetic materials of examples 21 to 26, 28, 29,
31 to 38, and 41 is expressed by Fe
1-yCo
y, the value of the y is 0.01 or more and 0.3 or less, each of the materials has higher
anisotropic magnetic field. Further, I
α-(Fe, Co)/ (I
α-(Fe, Co) + I
ThMn12) of the magnetic material in each of the examples 1 to 27, 31 to 37, and 39 to 41
is less than 0.15. I
3-29 / (I
3-29 + I
ThMn12) of the magnetic material in each of the examples 31 to 37 is less than 0.020 and
the saturation magnetization of the main phase thereof is 1.52 T or more. Furthermore,
the saturation magnetization of the main phase of the magnetic material in each of
the examples 1 to 27, 31 to 37, and 39 to 41 is 1.48 T or more, and the anisotropic
magnetic field in each of the examples 1 to 35 is 3 MA/m or more.
[0062] In contract, less than 30 atomic percent of the element M in each of the magnetic
materials of comparative examples 5 is Fe, and each of the materials has low saturation
magnetization and low anisotropic magnetic field. The concentration of the element
Y in each of the comparative examples 1 to 4 is outside the scope of the disclosures,
and the precipitation amount of the α-(Fe, Co) phase of the magnetic material in each
of the comparative examples 1 to 4 is larger than the precipitation amount of the
α-(Fe, Co) phase of the magnetic material in each of the examples 1 to 43.
[0063] Both of the values of the saturation magnetization and the values of the anisotropic
magnetic field in the examples 1 to 43 and the comparative examples 1 to 5 is determined
in accordance with magnetic field used for the evaluation thereof.
[0064] While certain arrangements have been described, these arrangements have been presented
by way of example only, and are not intended to limit the scope of the claims. Indeed,
the magnet described herein may be embodied in a variety of other forms; furthermore,
various omissions, substitutions and changes in the form of the magnet described herein
may be made.
(Numbered Clauses relating to the arrangements)
[0065]
- 1. A magnetic material expressed by a composition formula 1:
(R1-xYx)aMbTc
where R is at least one element selected from the group consisting of rare-earth elements,
T is at least one element selected from the group consisting of Ti, V, Nb, Ta, Mo,
and W, M is Fe or Fe and Co, x is a number satisfying 0.01 ≤ x ≤ 0.8, a is a number
satisfying 4 ≤ a ≤ 20 atomic percent, b is a number satisfying b = 100 - a - c atomic
percent, and c is a number satisfying 0 < c < 7 atomic percent,
the magnetic material comprising:
a main phase consisting of a ThMn12 type crystal phase,
wherein 30 atomic percent or more of the element M in the composition formula 1 is
Fe.
- 2. The magnetic material according to clause 1,
wherein 50 atomic percent or more of the element R in the composition formula 1 is
Sm.
- 3. A magnetic material expressed by a composition formula 2:
(R1-xYx)aMbTcAd
where R is at least one element selected from the group consisting of rare-earth elements,
T is at least one element selected from the group consisting of Ti, V, Nb, Ta, Mo,
and W, M is Fe or Fe and Co, A is at least one element selected from the group consisting
of N, C, B, H, and P, x is a number satisfying 0.01 ≤ x ≤ 0.8, a is a number satisfying
4 ≤ a ≤ 20 atomic percent, c is a number satisfying 0 < c < 7 atomic percent, b is
a number satisfying b = 100 - a - c - d atomic percent, and d is a number satisfying
0 < d ≤ 18 atomic percent,
the magnetic material comprising:
a main phase consisting of a ThMn12 type crystal phase,
wherein 30 atomic percent or more of the element M in the composition formula 2 is
Fe.
- 4. The magnetic material according to clause 3,
wherein 50 atomic percent or more of the element R in the composition formula 2 is
at least one element selected from the group consisting of Ce, Pr, Nd, Tb, and Dy.
- 5. The magnetic material according to clause 1 or clause 2,
wherein in an X-ray diffraction pattern of the magnetic material, a ratio of a maximum
value of a peak intensity corresponding to an α-(Fe, Co) phase to a sum of a maximum
value of a peak intensity corresponding to the ThMn12 type crystal phase and the maximum value of the peak intensity corresponding to the
α-(Fe, Co) phase is less than 0.20.
- 6. The magnetic material according to any one of clauses 1 to 5,
wherein 50 atomic percent or less of the element Y in the composition formula 1 or
formula 2 is replaced with at least one element selected from the group consisting
of Zr and Hf.
- 7. The magnetic material according to any one of clauses 1 to 6,
wherein 50 atomic percent or more of the element T in the composition formula 1 or
formula 2 is Ti or Nb.
- 8. The magnetic material according to any one of clauses 1 to 7,
wherein 20 atomic percent or less of the element M in the composition formula 1 or
formula 2 is replaced with at least one element selected from the group consisting
of Al, Si, Cr, Mn, Ni, Cu, and Ga.
- 9. The magnetic material according to any one of clauses 1 to 8,
wherein a concentration of the element M in the main phase is 87.4 atomic percent
or more of a total amount of the element R, the element Y, the element M, and the
element T in the main phase.
- 10. The magnetic material according to any one of clauses 1 to 9,
wherein the M in the composition formula 1 or formula 2 is expressed by Fe1-yCoy,
wherein the y is a number satisfying 0.01 ≤ y ≤ 0.3.
- 11. The magnetic material according to any one of clauses 1 to 10,
wherein the x in the composition formula 1 or formula 2 is a number satisfying 0.3
< x ≤ 0.6, and
wherein the c in the composition formula 1 or formula 2 is a number satisfying 3 <
c ≤ 3.8 atomic percent.
- 12. The magnetic material according to clause 11,
wherein in an X-ray diffraction pattern of the magnetic material, a ratio of a maximum
value of a peak intensity corresponding to a Nd3(Fe, Ti)29 type crystal phase to a sum of a maximum value of a peak intensity corresponding
to the ThMn12 type crystal phase and the maximum value of the peak intensity corresponding to the
Nd3(Fe, Ti)29 type crystal phase is less than 0.04.
- 13. A permanent magnet comprising the magnetic material according to any one of clauses
1 to 12.
- 14. A permanent magnet comprising a sintered compact of the magnetic material according
to any one of clauses 1 to 12.
- 15. A rotary electrical machine, comprising:
a stator; and
a rotor,
wherein the stator or the rotor comprises the permanent magnet according to clause
14.
- 16. The rotary electrical machine according to clause 15,
wherein the rotor is connected to a turbine via a shaft.
- 17. A vehicle, comprising the rotary electrical machine according to clause 15.
- 18. The vehicle according to clause 17,
wherein:
the rotor is connected to a shaft; and
rotation is transmitted to the shaft.
1. A magnetic material expressed by a composition formula:
(R
1-xY
x)
aM
bT
cA
d
where R is at least one element selected from the group consisting of rare-earth elements,
T is at least one element selected from the group consisting of Ti, V, Nb, Ta, Mo,
and W, M is Fe or Fe and Co, A is at least one element selected from the group consisting
of N, C, B, H, and P, x is a number satisfying 0.01 ≤ x ≤ 0.8, a is a number satisfying
4 ≤ a ≤ 20 atomic percent, b is a number satisfying b =100 - a - c - d atomic percent,
c is a number satisfying 0 < c < 7 atomic percent, and d is a number satisfying 0
≤ d ≤ 18 atomic percent,
the magnetic material comprising:
a main phase consisting of a ThMn12 type crystal phase,
wherein 30 atomic percent or more of the element M in the composition formula is Fe.
2. The magnetic material according to claim 1,
wherein the d is a number satisfying d = 0 atomic percent,
wherein 50 atomic percent or more of the element R in the composition formula is Sm.
3. The magnetic material according to claim 1,
wherein the d is a number satisfying 0 < d ≤ 18 atomic percent,
wherein 50 atomic percent or more of the element R in the composition formula is at
least one element selected from the group consisting of Ce, Pr, Nd, Tb, and Dy.
4. The magnetic material according to any one of claims 1 to 3,
wherein in an X-ray diffraction pattern of the magnetic material, a ratio of a maximum
value of a peak intensity corresponding to an α-(Fe, Co) phase to a sum of a maximum
value of a peak intensity corresponding to the ThMn12 type crystal phase and the maximum value of the peak intensity corresponding to an
α-(Fe, Co) phase is less than 0.20.
5. The magnetic material according to any one of claims 1 to 4,
wherein 50 atomic percent or less of the element Y in the composition formula is replaced
with at least one element selected from the group consisting of Zr and Hf.
6. The magnetic material according to any one of claims 1 to 5,
wherein 50 atomic percent or more of the element T in the composition formula is Ti
or Nb.
7. The magnetic material according to any one of claims 1 to 6,
wherein 20 atomic percent or less of the element M in the composition formula is replaced
with at least one element selected from the group consisting of Al, Si, Cr, Mn, Ni,
Cu, and Ga.
8. The magnetic material according to any one of claims 1 to 7,
wherein a concentration of the element M in the main phase is 87.4 atomic percent
or more of a total amount of the element R, the element Y, the element M, and the
element T in the main phase.
9. The magnetic material according to any one of claims 1 to 8,
wherein the M in the composition formula is expressed by Fe1-yCoy,
wherein the y is a number satisfying 0.01 ≤ y ≤ 0.3.
10. The magnetic material according to any one of claims 1 to 9,
wherein the x in the composition formula is a number satisfying 0.3 < x ≤ 0.6, and
wherein the c in the composition formula is a number satisfying 3 < c ≤ 3.8 atomic
percent.
11. The magnetic material according to claim 10,
wherein in an X-ray diffraction pattern of the magnetic material, a ratio of a maximum
value of a peak intensity corresponding to a Nd3(Fe, Ti)29 type crystal phase to a sum of a maximum value of a peak intensity corresponding
to the ThMn12 type crystal phase and the maximum value of the peak intensity corresponding to the
Nd3(Fe, Ti)29 type crystal phase is less than 0.04.
12. A permanent magnet comprising the magnetic material according to any one of claims
1 to 11.
13. A permanent magnet comprising a sintered body of the magnetic material according to
any one of claims 1 to 11.
14. A rotary electrical machine, comprising:
a stator; and
a rotor,
wherein the stator or the rotor comprises the permanent magnet according to claim
13.
15. The rotary electrical machine according to claim 14,
wherein the rotor is connected to a turbine via a shaft.
16. A vehicle, comprising the rotary electrical machine according to claim 14.
17. The vehicle according to claim 16,
wherein:
the rotor is connected to a shaft; and
rotation is transmitted to the shaft.