Disclosure of Invention
The invention aims to solve the technical problem that in the prior art, the Curie temperature and the coercive force of an R-T-B series permanent magnetic material are improved by adding Co, and the Co has the defect of high price, and provides an R-T-B series permanent magnetic material, a raw material composition, a preparation method and application thereof. According to the invention, trace Co content is not added or controlled, and the content of Al and Zr elements is controlled, so that the obtained R-T-B series permanent magnetic material has the advantages of good squareness, good high-temperature performance and excellent mechanical performance.
The invention provides a raw material composition of an R-T-B series permanent magnetic material, which comprises the following components in percentage by mass:
29.5 to 32 percent of R, wherein the R is a rare earth element at least containing Nd, and the content of Pr is 0 to 17 percent;
Zr,0.15-0.50%;
Al,0.45-1.0%;
Co,0-0.3%;
0-3% of M, wherein M is one or more of Ga, Cu, Ti, Nb, Hf, Si, Sn, Ge, Ag, Au, Bi and Mn;
B,0.95-1.05%;
Fe,64-70%;
the percentage is that each component accounts for the total mass of the raw material composition of the R-T-B series permanent magnetic material, and the sum of the contents of the components is 100%.
In the raw material composition of the R-T-B series permanent magnet material, R can be a rare earth element added in a smelting process and/or a diffusion process, for example, the rare earth element added in the smelting process.
In the raw material composition of the R-T-B series permanent magnet material, the content of the R is 29.5%, 30%, 30.1%, 30.5%, 31% or 32%, wherein the percentage is the percentage of the total mass of the raw material composition of the R-T-B series permanent magnet material.
The Nd content in the raw material composition of the R-T-B based permanent magnetic material may be conventional in the art, and is preferably 21.9 to 30.1%, for example, 21.7%, 21.8%, 24.2%, 25.5%, 27.2%, 29.6%, and 30.4%, wherein the percentage is a percentage of the total mass of the raw material composition of the R-T-B based permanent magnetic material.
In the raw material composition of the R-T-B system permanent magnetic material, the addition form of Nd in the R can be conventional in the art, for example, in the form of PrNd, or in the form of pure Nd, or in the form of a mixture of pure Pr and Nd, or in combination of PrNd, pure Pr and Nd. When added as PrNd, the mass ratio of Pr to Nd in PrNd is preferably 25:75, 20: 80 or 10: 90.
in the raw material composition of the R-T-B permanent magnet material, the content of Pr is preferably 0 to 10%, and more preferably 0 to 8%, for example, 0, 3.2%, 5%, 7.6%, 7.7%, or 8.0%, where the percentage is the percentage of the total mass of the raw material composition of the R-T-B permanent magnet material.
In the raw material composition of the R-T-B based permanent magnetic material, when the R contains Pr, the addition form of Pr may be conventional in the art, for example, in the form of PrNd, or in the form of pure Pr, or in the form of a mixture of pure Pr and Nd, or in combination of PrNd, pure Pr, and Nd. When added as PrNd, the mass ratio of Pr to Nd in PrNd is preferably 25:75, 20: 80 or 10: 90.
in the raw material composition of the R-T-B series permanent magnetic material, the R can also comprise heavy rare earth elements. The heavy rare earth element can be a heavy rare earth element added in a smelting process and/or a diffusion process, and preferably, the heavy rare earth element is a heavy rare earth element added in the smelting process.
In the raw material composition of the R-T-B based permanent magnetic material, the heavy rare earth element may be a heavy rare earth species conventional in the art, such as one or more of Dy, Tb, Gd, and Ho.
In the raw material composition of the R-T-B based permanent magnetic material, when the R includes a heavy rare earth element, the content of the heavy rare earth element may be conventional in the art, and is preferably 0 to 7% (excluding 0), and is further preferably 0.1 to 0.9%, for example, 0.1%, 0.2%, 0.3%, 0.4%, 0.6%, 0.7%, or 0.9%, where the percentage is a percentage of the total mass of the raw material composition of the R-T-B based permanent magnetic material.
In the raw material composition of the R-T-B permanent magnet material, the Zr content is, for example, 0.15%, 0.2%, 0.3%, 0.35% or 0.50%, wherein the percentage is the percentage of the total mass of the raw material composition of the R-T-B permanent magnet material.
In the raw material composition of the R-T-B series permanent magnet material, the content of the Al is, for example, 0.45%, 0.5%, 0.54%, 0.55%, 0.6%, 0.65% or 1%, wherein the percentage is the percentage of the total mass of the raw material composition of the R-T-B series permanent magnet material.
In the raw material composition of the R-T-B series permanent magnet material, the content of the Co is 0, 0.1% or 0.3%, wherein the percentage is the percentage of the total mass of the raw material composition of the R-T-B series permanent magnet material.
In the raw material composition of the R-T-B series permanent magnet material, the content of B is 0.95%, 0.98%, 1.01% or 1.05%, wherein the percentage is the percentage of the total mass of the raw material composition of the R-T-B series permanent magnet material.
In the raw material composition of the R-T-B series permanent magnet material, the type of M is preferably one or more of Ga, Cu, Ti, Nb and Hf.
In the raw material composition of the R-T-B-based permanent magnetic material, the content of M is preferably 0 to 2%, for example, 0, 0.15%, 0.19%, 0.2%, 0.25%, 0.45%, or 0.9%, wherein the percentage is a percentage of the total mass of the raw material composition of the R-T-B-based permanent magnetic material.
In the raw material composition of the R-T-B based permanent magnetic material, when the M contains Ga, the content of the Ga is preferably 0 to 1% (excluding 0), for example, 0.05%, 0.1%, 0.2%, 0.4%, or 0.5%, where the percentage is a percentage of the total mass of the raw material composition of the R-T-B based permanent magnetic material.
In the raw material composition of the R-T-B based permanent magnetic material, when the M contains Cu, the content of Cu is preferably 0 to 0.55% (excluding 0), for example, 0.06%, 0.15%, or 0.4%, where the percentage is a percentage of the total mass of the raw material composition of the R-T-B based permanent magnetic material.
In the raw material composition of the R-T-B based permanent magnet material, when the M contains Ti, the content of Ti is preferably 0.05 to 0.2% (excluding 0), for example, 0.05%, 0.08%, or 0.15%, where the percentage is a percentage of the total mass of the raw material composition of the R-T-B based permanent magnet material.
In the raw material composition of the R-T-B-based permanent magnet material, when the M contains Nb, the content of Nb is preferably 0 to 0.2% (excluding 0), for example, 0.05% or 0.1%, where the percentage is a percentage based on the total mass of the raw material composition of the R-T-B-based permanent magnet material.
In the raw material composition of the R-T-B based permanent magnetic material, when the M contains Hf, the content of Hf is preferably 0 to 0.2% (excluding 0), for example, 0.05%, where the percentage is a percentage of the total mass of the raw material composition of the R-T-B based permanent magnetic material.
In one embodiment, in the raw material composition of the R-T-B series permanent magnet material, the definitions of some components may be as follows, and the definitions of the remaining components are as described in any one of the above embodiments: the R does not contain Tb.
In one embodiment, in the raw material composition of the R-T-B based permanent magnetic material, the definitions of some components may be as follows, and the definitions of the remaining components are as described in any one of the above embodiments: the R does not contain heavy rare earth elements except Dy and Tb.
In one embodiment, in the raw material composition of the R-T-B based permanent magnetic material, the definitions of some components may be as follows, and the definitions of the remaining components are as described in any one of the above embodiments: the R does not comprise Ho.
In one embodiment, in the raw material composition of the R-T-B based permanent magnetic material, the definitions of some components may be as follows, and the definitions of the remaining components are as described in any one of the above embodiments: the R does not contain rare earth metals other than Nd and Pr, except for unavoidable impurities.
In one embodiment, in the raw material composition of the R-T-B based permanent magnetic material, the definitions of some components may be as follows, and the definitions of the remaining components are as described in any one of the above embodiments: the content of Co is 0.
In one embodiment, in the raw material composition of the R-T-B based permanent magnetic material, the definitions of some components may be as follows, and the definitions of the remaining components are as described in any one of the above embodiments: the content of Co is 0-0.3% (excluding 0), for example, 0.1% or 0.3%, wherein the percentage is the percentage of the total mass of the raw material composition of the R-T-B series permanent magnet material.
In one embodiment, in the raw material composition of the R-T-B based permanent magnetic material, the definitions of some components may be as follows, and the definitions of the remaining components are as described in any one of the above embodiments:
the content of the Al is 0.55-1%; the M is one or more of Ga, Cu, Ti, Nb and Hf; the percentage is the mass percentage of the total mass of the raw material composition of the R-T-B series permanent magnet material.
In one embodiment, in the raw material composition of the R-T-B based permanent magnetic material, the definitions of some components may be as follows, and the definitions of the remaining components are as described in any one of the above embodiments:
the R does not contain Tb; the content of the Al is 0.45-0.54%; the M is one or more of Ga, Cu, Ti, Nb and Hf; the content of Ga is less than 0.2%; the percentage is the mass percentage of the total mass of the raw material composition of the R-T-B series permanent magnet material.
In one embodiment, in the raw material composition of the R-T-B based permanent magnetic material, the definitions of some components may be as follows, and the definitions of the remaining components are as described in any one of the above embodiments:
said R comprises Tb; the content of the Al is 0.45-0.54%; the M is one or more of Ga, Cu, Ti, Nb and Hf; the content of Ga is less than 0.2%; and Al + Cu is more than or equal to 0.55 percent; the percentage is the mass percentage of the total mass of the raw material composition of the R-T-B series permanent magnet material.
In one embodiment, in the raw material composition of the R-T-B based permanent magnetic material, the definitions of some components may be as follows, and the definitions of the remaining components are as described in any one of the above embodiments:
the content of the Al is 0.45-0.54%; the content of Zr is 0.35-0.5%; the M is one or more of Ga, Cu, Ti, Nb and Hf; the content of Ga is 0.2-0.25%; the percentage is the mass percentage of the total mass of the raw material composition of the R-T-B series permanent magnet material.
In one embodiment, in the raw material composition of the R-T-B based permanent magnetic material, the definitions of some components may be as follows, and the definitions of the remaining components are as described in any one of the above embodiments:
the content of the Al is 0.45-0.54%; the M is one or more of Ga, Cu, Ti, Nb and Hf; the content of Ga is > 0.25%; the content of Ti is less than 0.15% or more than 0.28%; the Cu is less than 0.07 percent or more than or equal to 0.25 percent; the percentage is the mass percentage of the total mass of the raw material composition of the R-T-B series permanent magnet material.
In a certain scheme, the raw material composition of the R-T-B series permanent magnet material comprises the following components in percentage by mass:
29.5 to 32 percent of R, wherein the R is a rare earth element at least containing Nd, and the content of Pr is 0 to 17 percent;
Zr,0.15-0.50%;
Al,0.45-1.0%;
Co,0-0.3%;
0-3% of M, wherein M is one or more of Al, Cu, Ti, Nb and Hf;
B,0.95-1.05%;
Fe,64-70%;
the percentage is that each component accounts for the total mass of the raw material composition of the R-T-B series permanent magnetic material, and the sum of the contents of the components is 100%.
In a certain scheme, the raw material composition of the R-T-B series permanent magnetic material can be any one of the following numbers 1-10, wherein the percentage is the mass percentage of each component in the total mass of the raw material composition of the R-T-B series permanent magnetic material, the sum of the contents of the components is 100%,
"/" means that the element is not included.
The invention also provides a preparation method of the R-T-B series permanent magnet material, which comprises the steps of smelting, pulverizing, molding, sintering and aging the raw material composition of the R-T-B series permanent magnet material.
In the preparation method of the R-T-B system permanent magnetic material, the melting operation and conditions may be a conventional melting process in the art, and generally, the raw material composition of the R-T-B system permanent magnetic material is melted and cast by an ingot casting process and a rapid hardening sheet process to obtain an alloy sheet.
As known to those skilled in the art, since rare earth elements are usually lost in the smelting and sintering processes, in order to ensure the quality of the final product, 0-0.3 wt% of rare earth element (generally Nd element) is generally additionally added to the formulation of the raw material composition during the smelting process, wherein the percentage is the weight percentage of the additionally added rare earth element in the total content of the raw material composition; in addition, the content of the additionally added rare earth elements is not included in the category of the raw material composition.
In the preparation method of the R-T-B series permanent magnet material, the smelting temperature can be 1300-1600 ℃.
In the preparation method of the R-T-B series permanent magnet material, the smelting equipment is generally a high-frequency vacuum smelting furnace and/or a medium-frequency vacuum smelting furnace, and the medium-frequency vacuum smelting furnace is a medium-frequency vacuum induction rapid hardening melt-spinning furnace.
In the preparation method of the R-T-B series permanent magnet material, the operation and conditions for milling can be conventional milling processes in the field, and generally comprise hydrogen milling and/or airflow milling.
The hydrogen pulverized powder generally comprises hydrogen absorption, dehydrogenation and cooling treatment. The temperature of the hydrogen absorption is generally 20 to 200 ℃. The dehydrogenation temperature is typically 400-650 ℃. The pressure of the hydrogen absorption is generally 50 to 600 kPa.
The pressure of the airflow grinding chamber is generally 0.1-2 MPa. The gas flow in the gas flow milled powder can be, for example, nitrogen and/or argon. The efficiency of the jet milled powder may vary depending on the equipment, and may be, for example, 30 to 400kg/h, preferably 200 kg/h.
In the preparation method of the R-T-B series permanent magnet material, the molding operation and conditions can be conventional molding processes in the field. Such as magnetic field molding. The magnetic field intensity of the magnetic field forming method is generally 1.5T or more.
The above-mentionedIn the preparation method of the R-T-B series permanent magnet material, the operation and conditions of the sintering treatment can be sintering processes conventional in the art, such as a vacuum sintering process and/or an inert atmosphere sintering process. The vacuum sintering process or the inert atmosphere sintering process are all conventional operations in the field. When an inert atmosphere sintering process is adopted, the sintering starting stage can be carried out at a vacuum degree of less than 5X 10-1Pa, and the like. The inert atmosphere may be an atmosphere containing an inert gas as is conventional in the art, such as helium, argon.
In the preparation method of the R-T-B series permanent magnet material, the sintering treatment temperature can be 1000-1200 ℃, and preferably 1030-1090 ℃.
In the preparation method of the R-T-B series permanent magnet material, the sintering treatment time can be 0.5-10h, and preferably 2-8 h.
In the preparation method of the R-T-B series permanent magnet material, the temperature of the aging treatment can be 450-600 ℃, for example 480-510 ℃.
In the preparation method of the R-T-B series permanent magnet material, the time of the aging treatment can be 1-4h, such as 1-3 h.
Preferably, after the sintering treatment and before the aging treatment, a grain boundary diffusion treatment is further performed.
The grain boundary diffusion treatment may be performed by a conventional technique in the art, and for example, a Tb-containing substance and/or a Dy-containing substance may be deposited on the surface of the sintered body obtained by the sintering treatment by vapor deposition, coating, or sputtering, and then subjected to diffusion heat treatment.
In the grain boundary diffusion treatment, the Tb-containing substance may be Tb metal, a Tb-containing compound (e.g., Tb-containing fluoride), or an alloy.
In the grain boundary diffusion treatment, the Dy-containing substance may be Dy metal, a Dy-containing compound (e.g., a Dy-containing fluoride), or an alloy.
In the grain boundary diffusion treatment, the temperature of the diffusion heat treatment may be 800-.
In the grain boundary diffusion treatment, the time of the diffusion heat treatment can be 12-48h, such as 24 h.
Besides the preparation method, the raw material composition of the R-T-B series permanent magnet material can also be used for preparing the R-T-B series permanent magnet material by adopting a double-phase alloy process. The dual phase alloy process may be conventional in the art.
The invention also provides the R-T-B series permanent magnetic material prepared by the preparation method.
The invention also provides an R-T-B series permanent magnetic material which comprises the following components in percentage by mass:
29.5 to 32 percent of R, wherein the R is a rare earth element at least containing Nd, and the content of Pr is 0 to 17 percent;
Zr,0.15-0.50%;
Al,0.45-1.0%;
Co,0-0.3%;
0-3% of M, wherein M is one or more of Ga, Cu, Ti, Nb, Hf, Si, Sn, Ge, Ag, Au, Bi and Mn;
B,0.95-1.05%;
Fe,64-70%;
the percentage is that each component accounts for the total mass of the R-T-B series permanent magnet material, and the sum of the contents of each component is 100%.
Al and M in the R-T-B series permanent magnet material are mainly distributed at grain boundaries and replace part of Fe in the grain boundaries. By controlling the content of R, B, Zr and Al, an enriched phase is generated at the grain boundary, and the enriched phase is helpful for optimizing the defects of the grain boundary, so that the coercive force of the magnet is improved, the squareness is improved, and the high-temperature performance is improved. Meanwhile, because the content of trace Co is not added or controlled, Co cannot be enriched in the crystal boundary, thereby inhibiting the crystal fracture and improving the mechanical property. The composition of the enriched phase is Rp-(Zrx,Aly,Mz)q-Fe100-p-qWherein: r is a rare earth element containing at least Nd; m is one or more of Ga, Cu, Ti, Nb, Hf, Si, Sn, Ge, Ag, Au, Bi and Mn; p, q, x, y and z satisfy the following conditions: 15 ≦ p ≦ 25 (at%) (e.g., 20.65); 4 q 12 (at%) (e.g., 5.05); x/(y + z) ═ 1-1.8 (e.g., 1.5), and at% is atomic percent.
In the R-T-B series permanent magnet material, R can be a rare earth element added in a smelting process and/or a diffusion process, for example, the rare earth element added in the smelting process.
In the R-T-B series permanent magnet material, the content of R is 29.5%, 30%, 30.1%, 30.5%, 31% or 32%, wherein the percentage is the percentage of the total mass of the R-T-B series permanent magnet material.
In the R-T-B system permanent magnet material, the Nd content may be conventional in the art, and is preferably 21.9 to 30.1%, for example, 21.7%, 21.8%, 24.2%, 25.5%, 27.2%, 29.6%, and 30.4%, wherein the percentage is a percentage of the total mass of the R-T-B system permanent magnet material.
In the R-T-B based permanent magnetic material, the addition form of Nd in R can be conventional in the art, for example, in the form of PrNd, or in the form of pure Nd, or in the form of a mixture of pure Pr and Nd, or in combination of PrNd, pure Pr and Nd. When added as PrNd, the mass ratio of Pr to Nd in PrNd is preferably 25:75, 20: 80 or 10: 90.
in the R-T-B series permanent magnet material, the content of Pr is preferably 0-10%, more preferably 0-8%, such as 0, 3.2%, 5%, 7.6%, 7.7%, or 8.0%, wherein the percentage is the percentage of the total mass of the R-T-B series permanent magnet material.
In the R-T-B based permanent magnetic material, when R contains Pr, the addition form of Pr may be conventional in the art, for example, in the form of PrNd, or in the form of pure Pr, or in the form of a mixture of pure Pr and Nd, or in combination of PrNd, pure Pr, and Nd. When added as PrNd, the mass ratio of Pr to Nd in PrNd is preferably 25:75, 20: 80 or 10: 90.
in the R-T-B series permanent magnetic material, the R can also comprise heavy rare earth elements. The heavy rare earth element can be a heavy rare earth element added in a smelting process and/or a diffusion process, and preferably, the heavy rare earth element is a heavy rare earth element added in the smelting process.
In the R-T-B based permanent magnetic material, the heavy rare earth element may be a heavy rare earth species conventional in the art, such as one or more of Dy, Tb, Gd, and Ho.
In the R-T-B based permanent magnetic material, when the R includes a heavy rare earth element, the content of the heavy rare earth element may be conventional in the art, and is preferably 0 to 7% (excluding 0), and is further preferably 0.1 to 0.9%, such as 0.1%, 0.2%, 0.3%, 0.4%, 0.6%, 0.7%, or 0.9%, where the percentage is a percentage of the total mass of the R-T-B based permanent magnetic material.
In the R-T-B series permanent magnet material, the Zr content is 0.15%, 0.2%, 0.3%, 0.35% or 0.50%, wherein the percentage is the percentage of the total mass of the R-T-B series permanent magnet material.
In the R-T-B series permanent magnet material, the content of Al is 0.45%, 0.5%, 0.54%, 0.55%, 0.6%, 0.65% or 1%, wherein the percentage is the percentage of the total mass of the R-T-B series permanent magnet material.
In the R-T-B series permanent magnet material, the content of Co is 0, 0.1% or 0.3%, wherein the percentage is the percentage of the total mass of the R-T-B series permanent magnet material.
In the R-T-B series permanent magnet material, the content of B is 0.95%, 0.98%, 1.01% or 1.05%, wherein the percentage is the percentage of the total mass of the R-T-B series permanent magnet material.
In the R-T-B series permanent magnet material, the type of M is preferably one or more of Ga, Cu, Ti, Nb and Hf.
In the R-T-B series permanent magnet material, the content of M is preferably 0-2%, such as 0, 0.15%, 0.19%, 0.2%, 0.25%, 0.45% or 0.9%, wherein the percentage is the percentage of the total mass of the R-T-B series permanent magnet material.
In the R-T-B based permanent magnetic material, when M contains Ga, the content of Ga is preferably 0 to 1% (excluding 0), for example, 0.05%, 0.1%, 0.2%, 0.4%, or 0.5%, where the percentage is a percentage of the total mass of the R-T-B based permanent magnetic material.
In the R-T-B based permanent magnetic material, when the M contains Cu, the content of Cu is preferably 0 to 0.55% (excluding 0), for example, 0.06%, 0.15%, or 0.4%, where the percentage is a percentage of the total mass of the R-T-B based permanent magnetic material.
In the R-T-B based permanent magnetic material, when the M contains Ti, the content of Ti is preferably 0.05 to 0.2% (excluding 0), for example, 0.05%, 0.08%, or 0.15%, where the percentage is a percentage of the total mass of the R-T-B based permanent magnetic material.
In the R-T-B based permanent magnet material, when the M contains Nb, the content of Nb is preferably 0 to 0.2% (excluding 0), for example, 0.05% or 0.1%, where the percentage is a percentage of the total mass of the R-T-B based permanent magnet material.
In the R-T-B permanent magnet material, when the M contains Hf, the content of Hf is preferably 0-0.2% (excluding 0), for example, 0.05%, where the percentage is the percentage of the total mass of the R-T-B permanent magnet material.
In one embodiment, in the R-T-B series permanent magnet material, some components may be defined as follows, and the rest components may be defined as any one of the above embodiments: the R does not contain Tb.
In one embodiment, in the R-T-B based permanent magnetic material, some components may be defined as follows, and the rest components may be defined as any one of the above embodiments: the R does not contain heavy rare earth elements except Dy and Tb.
In one embodiment, in the R-T-B based permanent magnetic material, some components may be defined as follows, and the rest components may be defined as any one of the above embodiments: the R does not comprise Ho.
In one embodiment, in the R-T-B based permanent magnetic material, some components may be defined as follows, and the rest components may be defined as any one of the above embodiments: the R contains no rare earth metal other than Nd and Pr, except for inevitable impurities.
In one embodiment, in the R-T-B based permanent magnetic material, some components may be defined as follows, and the rest components may be defined as any one of the above embodiments: the content of Co is 0.
In one embodiment, in the R-T-B based permanent magnetic material, some components may be defined as follows, and the rest components may be defined as any one of the above embodiments: the content of Co is 0-0.3% (excluding 0), for example, the content of Co is 0.1% or 0.3%, wherein the percentage is the percentage of the total mass of the R-T-B series permanent magnet material.
In one embodiment, in the R-T-B based permanent magnetic material, some components may be defined as follows, and the rest components may be defined as any one of the above embodiments:
the content of the Al is 0.55-1%; the M is one or more of Ga, Cu, Ti, Nb and Hf; the percentage is the mass percentage of the total mass of the R-T-B series permanent magnet material.
In one embodiment, in the R-T-B based permanent magnetic material, some components may be defined as follows, and the rest components may be defined as any one of the above embodiments:
the R does not contain Tb; the content of the Al is 0.45-0.54%; the M is one or more of Ga, Cu, Ti, Nb and Hf; the content of Ga is less than 0.2%; the percentage is the mass percentage of the total mass of the R-T-B series permanent magnet material.
In one embodiment, in the R-T-B based permanent magnetic material, some components may be defined as follows, and the rest components may be defined as any one of the above embodiments:
said R comprises Tb; the content of the Al is 0.45-0.54%; the M is one or more of Ga, Cu, Ti, Nb and Hf; the content of Ga is less than 0.2%; and Al + Cu is more than or equal to 0.55 percent; the percentage is the mass percentage of the total mass of the R-T-B series permanent magnet material.
In one embodiment, in the R-T-B based permanent magnetic material, some components may be defined as follows, and the rest components may be defined as any one of the above embodiments:
the content of the Al is 0.45-0.54%; the content of Zr is 0.35-0.5%; the M is one or more of Ga, Cu, Ti, Nb and Hf; the content of Ga is 0.2-0.25%; the percentage is the mass percentage of the total mass of the R-T-B series permanent magnet material.
In one embodiment, in the R-T-B based permanent magnetic material, some components may be defined as follows, and the rest components may be defined as any one of the above embodiments:
the content of the Al is 0.45-0.54%; the M is one or more of Ga, Cu, Ti, Nb and Hf; the content of Ga is > 0.25%; the content of Ti is less than 0.15% or more than 0.28%; the Cu is less than 0.07 percent or more than or equal to 0.25 percent; the percentage is the mass percentage of the total mass of the R-T-B series permanent magnet material.
In a certain scheme, the R-T-B series permanent magnetic material comprises the following components in percentage by mass:
29.5 to 32 percent of R, wherein the R is a rare earth element at least containing Nd, and the content of Pr is 0 to 17 percent;
Zr,0.15-0.50%;
Al,0.45-1.0%;
Co,0-0.3%;
0-3% of M, wherein M is one or more of Al, Cu, Ti, Nb and Hf;
B,0.95-1.05%;
Fe,64-70%;
the percentage is that each component accounts for the total mass of the R-T-B series permanent magnet material, and the sum of the contents of each component is 100%.
In a certain scheme, the R-T-B series permanent magnet material can be any one of the following numbers 1-12, wherein the percentage is the mass percentage of each component in the total mass of the R-T-B series permanent magnet material, the sum of the contents of the components is 100%,
"/" means that the element is not included.
The invention also provides application of the R-T-B series permanent magnetic material as an electronic component.
In the invention, carbon impurities are generally inevitably introduced in the preparation process, the dosage is generally 0-0.15%, and the percentage is the mass percentage of the dosage of the C element in the total amount.
In the present invention, unless otherwise specified, "percentage" refers to mass percent.
The above preferred conditions can be arbitrarily combined to obtain preferred embodiments of the present invention without departing from the common general knowledge in the art.
The reagents and starting materials used in the present invention are commercially available.
The positive progress effects of the invention are as follows: simultaneously controlling the content of Al and Zr elements, and enabling R rich in Zr to exist at the crystal boundaryp-(Zrx,Aly,Mz)q-Fe100-p-qAn enriched phase which is helpful for high-temperature sintering and refining the grain structure, thereby improving the coercive force (H) of the magnetcjNot less than 15.3kOe) and improved squareness (H)k/HcjNot less than 0.98), the high temperature performance is improved (the absolute value of the Hcj temperature coefficient is not more than 0.741 at 80 ℃; the absolute value of the Hcj temperature coefficient is less than or equal to 0.454) at the temperature of 150 ℃. Meanwhile, because the content of trace Co is not added or controlled, Co cannot be enriched in the crystal boundary, thereby inhibiting the crystal fracture and improving the mechanical property (the bending strength is more than or equal to 464 MPa).