METHOD FOR EVALUATING ULTIMATE DEMAGNETIZATION TEMPERATURE OF MAGNET
20210333338 · 2021-10-28
Inventors
Cpc classification
G01R33/007
PHYSICS
H04R31/00
ELECTRICITY
G01R33/0064
PHYSICS
G06F30/23
PHYSICS
International classification
Abstract
A method for evaluating ultimate demagnetization temperature of magnet includes displaying a workspace interface. The workspace interface at least includes an operation area, a model view displaying area, and a demagnetization curve displaying area. A geometric model view of a geometric model file to be solved is displayed in the model view displaying area. Information input is received through the operation area and the model view displaying area, and performance parameters and designing variables to be solved and formulas are imported accordingly. Through calculating, a demagnetization curve with post-treatment for the magnet is obtained and displayed in the demagnetization curve displaying area.
Claims
1. A method for evaluating ultimate demagnetization temperature of a magnet in a loudspeaker system, comprising: providing a workspace interface; receiving information input through the workspace interface so as to import a corresponding performance parameter of the magnet; establishing a finite element model according to the imported performance parameter of the magnet; calculating a BH curve, a loadline slope, and an ultimate demagnetization temperature according to the finite element model; and obtaining a demagnetization curve of the magnet based on the calculated BH curve, the loadline slope, and the ultimate demagnetization temperature.
2. The method for evaluating ultimate demagnetization temperature of a magnet as claimed in claim 1, further comprising loading a geometric model file of the loudspeaker system, wherein the geometric model file includes a plurality of part domains representing parts of the loudspeaker system, and at least one part domain represent the magnet of the loudspeaker system.
3. The method for evaluating ultimate demagnetization temperature of a magnet as claimed in claim 2, further comprising displaying a geometric model view corresponding to the geometric model file in the model view displaying area.
4. The method for evaluating ultimate demagnetization temperature of a magnet as claimed in claim 3, further comprising designing formulas and variables to be solved for the magnet of the loudspeaker system according to information input through the workspace interface, wherein the performance parameter of the magnet includes a magnetic remanence Br of magnet, a remanence tolerance DiffBr, a temperature coefficient of remanence α, an intrinsic coercivity Hcj of magnet, an intrinsic coercivity tolerance DiffHcj, a temperature coefficient of intrinsic coercivity β, a recoil permeability Pm of magnet and an inflection point gap parameter Xc, wherein the remanence Br and intrinsic coercivity Hcj of magnet is measured at 20° C., wherein the variables to be solved include a coordinate (Hn, Bn) of the operation point under 20° C. on the BH curve, the loadline slope (Pc), the ultimate temperature rise Tm and the ultimate demagnetization temperature Tlim, and wherein the formulas include:
5. The method for evaluating ultimate demagnetization temperature of a magnet as claimed in claim 1, wherein the workspace interface comprises: an operation area; and a demagnetization curve displaying area, wherein the operation area comprises: a soft iron core domain selection field; a magnet domain selection field; at least one material selection field; a voice coil domain selection field; a turns of the voice coil input field; and a start button, and wherein receiving information input through workspace interface comprises: receiving, through the soft iron core domain selection field and the model view displaying area, a selection of a soft iron core domain corresponding to a soft iron core of the loudspeaker system; receiving, through the magnet domain selection field and the model view displaying area, a selection of the magnet domain corresponding to the magnet of the loudspeaker system; receiving, through the at least one material selection field, a selection of at least one material of the magnet of the loudspeaker system; receiving, through the voice coil domain selection field and the model view displaying area, a selection of the voice coil domain corresponding to a voice coil of the loudspeaker system; receiving, through the voice coil domain selection field turns of the voice coil the loudspeaker system; and upon the start button being clicked, extracting the performance parameter and the designing variables to be solved, and formulas according to the information input through the operation area and the model view displaying area.
6. The method for evaluating ultimate demagnetization temperature of a magnet as claimed in claim 5, wherein the magnet domain selection field comprises: a main magnet domain selection field; and a bucking magnet domain selection domain, wherein the at least one material selection field comprises: a main magnet material selection field; and a bucking magnet material selection field, and wherein the magnet of the loudspeaker system comprises: a main magnet; and a bucking magnet, wherein receiving the selection of the at least one material of the magnet of the loudspeaker system includes: receiving, through the main magnet domain selection field, a selection of a main magnet domain corresponding to the main magnet of the loudspeaker system; and receiving, through the bucking magnet domain selection field, a selection of a bucking magnet domain corresponding to the bucking magnet of the loudspeaker system, and wherein receiving the selection of the at least one material of the magnet of the loudspeaker system includes: receiving, through the main magnet material selection field, a selection of a main magnet material of the magnet of the loudspeaker system; and receiving, through the bucking magnet material selection field, a selection of a bucking magnet material of the magnet of the loudspeaker system.
7. The method for evaluating ultimate demagnetization temperature of a magnet as claimed in claim 6, wherein the operation area further includes a checkbox for determining whether the main magnet and the bucking magnet are located two side of the voice coil.
8. The method for evaluating ultimate demagnetization temperature of a magnet as claimed in claim 6, wherein the demagnetization curve displaying area further comprises: a first demagnetization curve displaying sub-area; and a second demagnetization curve displaying sub-area, wherein the demagnetization curve comprises: a main magnet demagnetization curve corresponding to the main magnet; and a bucking magnet demagnetization curve corresponding to the bucking magnet, and wherein the main magnet demagnetization curve and the bucking magnet demagnetization curve are respectively displayed in the first demagnetization curve displaying sub-area and the second demagnetization curve displaying sub-area.
9. The method for evaluating ultimate demagnetization temperature of a magnet as claimed in claim 5, wherein the operation area further comprises: a file selection field; and a geometry input button, and wherein loading a geometric model filed of a loudspeaker system includes: receiving, through the geometric model filed, a selection of the file selection field; and loading, upon the geometry input button being clicked, the geometric model file.
10. The method for evaluating ultimate demagnetization temperature of magnet as claimed in claim 4, wherein the remanence of magnet under the ultimate demagnetization temperature Tlim is Br(Tlim)=Br+Br*α*Tm; the intrinsic coercivity of magnet under the ultimate demagnetization temperature Tlim is Hcj (Tlim)=Hcj+Hcj*β*Tm.
11. The method for evaluating ultimate demagnetization temperature of magnet as claimed in claim 4, wherein the value of the inflection point gap parameter Xc is in a range from 300 to 1500.
12. The method for evaluating ultimate demagnetization temperature of magnet as claimed in claim 1, wherein the finite element model is provided for a magnetic loop system including a 2D axisymmetric magnetic loop system, a non-2D axisymmetric magnetic loop system, or a multi-magnetic-steel magnetic loop system.
13. The method for evaluating ultimate demagnetization temperature of magnet as claimed in claim 1, wherein the magnet includes an NdFeB magnet or a ferrite magnet.
14. A computer-readable storage medium storing instructions that, when executed by a computing system, cause the computing system to perform a process comprising: providing a workspace interface; receiving information input through the workspace interface so as to import corresponding performance parameter of the magnet; establishing a finite element model according to the imported performance parameter of the magnet; calculating for a BH curve, a loadline slope, and an ultimate demagnetization temperature according to the finite element model; and obtaining a demagnetization curve of the magnet based on the calculated BH curve, the loadline slope, and the ultimate demagnetization temperature.
15. The computer-readable storage medium claimed in claim 14, the process further comprising loading a geometric model file of a loudspeaker system, wherein the geometric model file includes a plurality of part domains representing parts of the loudspeaker system, and at least one part domain represent the magnet of the loudspeaker system.
16. The computer-readable storage medium claimed in claim 15, the process further comprising displaying a geometric model view corresponding to the geometric model file in the model view displaying area.
17. The computer-readable storage medium claimed in claim 16, the process further comprising designing formulas and variables to be solved for the magnet of the loudspeaker system according to information input through the workspace interface, wherein the performance parameter of the magnet includes a magnetic remanence Br of magnet, a remanence tolerance DiffBr, a temperature coefficient of remanence α, an intrinsic coercivity Hcj of magnet, an intrinsic coercivity tolerance DiffHcj, a temperature coefficient of intrinsic coercivity β, a recoil permeability Pm of magnet and an inflection point gap parameter Xc, wherein the remanence Br and intrinsic coercivity Hcj of magnet is measured at 20° C., wherein the variables to be solved include a coordinate (Hn, Bn) of the operation point under 20° C. on the BH curve, the loadline slope (Pc), the ultimate temperature rise Tm and the ultimate demagnetization temperature Tlim, and wherein the formulas include:
18. The computer-readable storage medium claimed in claim 14, wherein the workspace interface includes an operation area and a demagnetization curve displaying area, wherein the operation area includes a soft iron core domain selection field, magnet domain selection field, at least one material selection field, a voice coil domain selection field, a turns of the voice coil input field, and a start button, and wherein receiving information input through workspace interface comprises: receiving, through the soft iron core domain selection field and the model view displaying area, a selection of a soft iron core domain corresponding to a soft iron core of the loudspeaker system; receiving, through the magnet domain selection field and the model view displaying area, a selection of magnet domain corresponding to the magnet of the loudspeaker system; receiving, through the at least one material selection field, a selection of at least one material of the magnet of the loudspeaker system; receiving, through the voice coil domain selection field and the model view displaying area, a selection of the voice coil domain corresponding to a voice coil of the loudspeaker system; receiving, through the voice coil domain selection field turns of the voice coil the loudspeaker system; and upon the start button being clicked, extracting the performance parameter and the designing variables to be solved, and formulas according to the information input through the operation area and the model view displaying area.
19. The computer-readable storage medium claimed in claim 18, wherein the magnet domain selection field comprises: a main magnet domain selection field; and a bucking magnet domain selection domain, wherein the at least one material selection field comprises: a main magnet material selection field; and a bucking magnet material selection field, and wherein the magnet of the loudspeaker system includes a main magnet and a bucking magnet, wherein receiving the selection of the at least one material of the magnet of the loudspeaker system comprises: receiving, through the main magnet domain selection field, a selection of a main magnet domain corresponding to the main magnet of the loudspeaker system; and receiving, through the bucking magnet domain selection field, a selection of a bucking magnet domain corresponding to the bucking magnet of the loudspeaker system; and wherein receiving the selection of the at least one material of the magnet of the loudspeaker system comprises: receiving, through the main magnet material selection field, a selection of a main magnet material of the magnet of the loudspeaker system; and receiving, through the bucking magnet material selection field, a selection of a bucking magnet material of the magnet of the loudspeaker system.
20. The computer-readable storage medium claimed in claim 18, wherein the demagnetization curve displaying area further comprises: a first demagnetization curve displaying sub-area; and a second demagnetization curve displaying sub-area, wherein the demagnetization curve comprises: a main magnet demagnetization curve corresponding to the main magnet; and a bucking magnet demagnetization curve corresponding to the bucking magnet, and wherein the main magnet demagnetization curve and the bucking magnet demagnetization curve are respectively displayed in the first demagnetization curve displaying sub-area and the second demagnetization curve displaying sub-area.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0024] This disclosure will become more fully understood from the detailed description given herein below for illustration only, and thus not limitative of this disclosure, wherein:
[0025]
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[0033]
DETAILED DESCRIPTION
[0034] To facilitate understanding, the invention will be described in detail in combination with drawings and the specific embodiments. The drawings illustrate preferred embodiments of the present invention. However, the present invention can be embodied in many different forms, and is not limited to the embodiments described herein. Rather, the purpose of providing these embodiments is to make the disclosure of the present invention more comprehensively understood.
[0035] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art to which this invention pertains. The terminology used herein in the specification of the present invention is for the purpose of describing particular embodiments only and is not intended to limit the invention.
[0036]
[0037] As shown in
[0038] As shown in
[0039] Referring to
[0040] Referring to
[0041] In at least one embodiment, by using the input module 130, the user may, for example, select a geometric model file to be solved in a drop-down menu or a file browser provided within the file selection field B1, such that the computer system 100 receives a selection of the a geometric model file to be solved, and loads the geometric model file to be solved upon the geometry input button B2 being clicked. The geometric model file to be solved can be, but not limited to, loaded from a remote site on the network via a network card 140, the local storage unit 114, or a removable storage medium 150. The user may implement the selection by operating the input module 130, and the input module 130 can be, but not limited to a keyboard, a mouse, or a touch control panel combined with the display device 120. Next, by using the input module 130, the user clicks the geometry input button B2, for example, and then the system loads the geometric model file to be solved.
[0042] As shown in
[0043] As shown in
[0044] As shown in
[0045] By using the input module 130, the user clicks on the MG domain selection field B4, for example, and then selects an MG domain in the geometric model view displayed in the model view displaying area 220, such that the computer system 100 receives a selection of the MG domain (for example, by clicking on section No. 8 in
[0046] By using the input module 130, the user selects a material of the main magnet by click MG material selection field B5 (usually a drop-down menu), for example, such that the computer system 100 receives a selection of a MG material of the main magnet of the loudspeaker system, as shown in step 443.
[0047] By using the input module 130, the user clicks on the VC domain selection field B6, for example, and then selects a VC domain in the geometric model view displayed in the model view displaying area 220, such that the computer system 100 receives a selection of the VC domain (for example, by clicking on section No. 3 in
[0048] By using the input module 130, the user input turns of the VC in to the input field B7, for example, such that the computer system 100 receives the turns of the voice coil the loudspeaker system, as shown in step 445.
[0049] By using the input module 130, the user clicks on the BMG domain selection field B8, and then selects a BMG domain in the geometric model view displayed in the model view displaying area 220, such that the computer system 100 receives a selection of the BMG domain (for example, by clicking on section No. 3 in
[0050] By using the input module 130, the user selects a material of the bucking magnet by click BMG material selection field B9 (usually a drop-down menu), such that the computer system 100 receives a selection of a BMG material of the bucking magnet of the loudspeaker system, as shown in step 447.
[0051] By using the input module 130, the user clicks the checkbox for reverse magnetizing B10 to check or uncheck the checkbox, such that the computer system 100 determines whether the main magnet and the bucking magnet are located two side of the voice coil, as shown in step 448.
[0052] Referring to
[0053] Furthermore, by using the input module 130, the user clicks the start button B11, the performance parameter and the designing variables to be solved, and formulas are extracted by the computer system 100 according to the information input through the operation area 210 and the model view displaying area 220, as shown in step 449. Then the performance parameter and the designing variables (e.g., Pc, Tm, Tlim, etc.) are solved and formulas are imported.
[0054] As shown in
[0055] As shown in
[0056] As shown in
[0057] Please referring to
[0058] The performance parameter of the magnet may be stored in a database, which includes a magnetic remanence Br of magnet, a remanence tolerance DiffBr, a temperature coefficient of remanence α, an intrinsic coercivity Hcj of magnet, an intrinsic coercivity tolerance DiffHcj, a temperature coefficient of intrinsic coercivity β, a recoil permeability Pm of magnet and an inflection point gap parameter Xc.
[0059] In the present embodiment, the room temperature is considered to be 20° C. The above remanence Br and intrinsic coercivity Hcj of magnet is measured at 20° C.
[0060] The above variables designed to be solved include a coordinate (Hn, Bn) of the operation point N under room temperature on BH curve, a loadline slope Pc, an ultimate temperature rise Tm and an ultimate demagnetization temperature Tlim.
[0061] In the method for evaluating ultimate demagnetization temperature of magnet of the present invention, solving the variables is key to the present invention. In order to better understand the performance parameter of magnet and the to-be-solved variables,
[0062] B-H curve@ (Tm+20)° C. represents B-H curve under ultimate demagnetization temperature; the intersection point of B-H curve@ (Tm+20)° C. and the vertical coordinate is remanence Br Tlim of the magnet under ultimate demagnetization temperature and the intersection point of B-H curve@ (Tm+20)° C. and the horizontal coordinate is coercivity Hcj(Tlim) of the magnet under ultimate demagnetization temperature, here coercivity Hcb(Tlim) is about equal to intrinsic coercivity Hcj(Tlim).
[0063] When in 20° C. of room temperature, the difference between intrinsic coercivity Hcj and coercivity Hcb is larger and Hcb>Hcj; with the rise of temperature, both Hcj and Hcb becomes larger gradually, but Hcj changes so fast that it gradually closes to Hcb.
[0064] Since coercivity Hcb(Tlim) is about equal to intrinsic coercivity Hcj(Tlim) on B-H curve@ (Tm+20)° C., an inflection point occurs on B-H curve@ (Tm+20)° C.
[0065] Pc is loadline slope, which may not change with the temperature; the intersection of loadline and B-H curve@20° C. is the operation point N of magnet with a coordinate of (Hn, Bn).
[0066] B-H curves of magnet under different temperatures are different, i.e., the operation points are different, but the slope of loadline remains consistent. Pm is recoil permeability of magnet, which also doesn't change with the temperature.
[0067] Xc is inflection point gap parameter. With a further reference to FIG. 7, Xc also represents the difference on X axis between the inflection point and Hcb(Tlim) on B-H curve under ultimate demagnetization temperature Tlim, the value being ranged from 300 to 1500 Oe. The value range of inflection point gap parameter Xc is obtained with a preferential selection by the researchers in experiments. Through researches and comparison, the researchers found that if Xc is not introduced, the Tm obtained by calculation is larger than actual value, i.e., introduction of inflection point gap parameter Xc during calculation and measurement can calculate to obtain the ultimate temperature rise Tm with more accuracy.
[0068] Furthermore, since an intrinsic coercivity Hcj, an intrinsic coercivity tolerance DiffHcj, and an inflection point gap parameter Xc are introduced in the present embodiment, a demagnetization temperature region can be confirmed after adjustment of the value of Xc based on the validation test result.
[0069] In addition, for NdFeB magnets after high temperature demagnetization, both the temperature coefficient α of the remanence and temperature coefficient β of intrinsic coercivity are negative values. Additionally, for ferrite magnets after low temperature demagnetization, the temperature coefficient α of the remanence thereof is a negative value; temperature coefficient β of intrinsic coercivity is a positive value.
[0070] Based on remanence Br, intrinsic coercivity Hcj, temperature coefficient of remanence α, temperature coefficient of intrinsic coercivity β and ultimate temperature rise, it can be acquired that: the remanence of magnet under the ultimate demagnetization temperature Tlim is Br(Tlim)=Br+Br*α*Tm; and the intrinsic coercivity of magnet under the ultimate demagnetization temperature Tlim is Hcj (Tlim)=Hcj+Hcj*β*Tm.
[0071] The intersection of loadline and B-H curve@(Tm+20)° C. is the operation point D of magnet under such temperature with a coordinate of (Hd, Bd).
[0072] Further, based on above performance parameter of magnet and to-be-solved variables, it can be deduced with relative formulas according to the principle of demagnetization that:
[0073] Ordinary magnetic loop system simulation only focuses on the B value among magnetic gaps, so only the remanence parameter Br of magnet is needed to be imported. But now solving the ultimate demagnetization temperature needs an overall FEA simulation for the magnetic loop system, wherein more performance parameters of magnet are imported to conduct variable-solution and steady-state analysis for a quick solution to obtain a coordinate (Hn, Bn) of operation point N at room temperature (20° C.) on BH curve and a loadline slope Pc, thus obtaining an ultimate demagnetization temperature Tlim after further solution.
[0074] In the present embodiment, values for the imported performance parameter of magnet are shown in Table 1 as below:
TABLE-US-00001 TABLE 1 Imparted performance parameter of magnet (@ 20° C.) and specific values: Name for performance parameter of magnet Value Description Br 12200 Remanence of magnet, Gs DiffBr 200 Remanence tolerance, Gs Hcj −14000 Intrinsic coercivity of magnet, Oe DiffHcj 300 Intrinsic coercivity tolerance, Oe β −0.0063 Temperature coefficient of intrinsic coercivity α −0.0012 Temperature coefficient of remanence Xc 800 Inflection point gap parameter. Pm 1.05 Recoil permeability of magnet
[0075] The above performance parameters of magnet and variables designed to be solved are imported into COMSOL Multiphysics software and a finite element model for magnetic loop system is established; then a solution and a steady-state analysis on the finite element model are conducted for values of variables that are to be solved, then a coordinate (Hn, Bn), a loadline slope Pc value and an ultimate demagnetization temperature value of the operation point under 20° C. on BH curve are obtained after calculation. Then after a series of post-treatments (i.e., data handling for the simulated result and combining the initial data to output figures for improved understanding for technicians):
[0076] (1) Coordinate (Hn, Bn) of operation point N at 20° C. room temperature is imported, the line connecting the coordinate origin of demagnetization curve (with the operation point N being the loadline;
[0077] (2) BH curve at 20° C. room temperature is imported, i.e., the line connecting (0, Br) with (Hcj, 0) is imported;
[0078] (3) BH curve at ultimate demagnetization temperature) Tlim is imported, i.e. The line connecting (0, Br(Tlim)), (Hd, Bd) and (Hcj(Tlim), 0). Among which:
[0079] the remanence of magnet under the ultimate demagnetization temperature Tlim is Br(Tlim)=Br+Br*α*Tm;
[0080] the intrinsic coercivity of magnet under the ultimate demagnetization temperature) Tlim is Hcj (Tlim)=Hcj+Hcj*β*Tm;
[0081] the horizontal coordinate of operation point at ultimate demagnetization temperature Tlim: Hd=Hcj+Hcj*β*Tm+Xc; the vertical coordinate of operation point at ultimate demagnetization temperature Tlim: Bd=(Br+Br*α*Tm)+(Hcj+Hcj*β*Tm+Xc)*Pm.
[0082] After above post-treatments, a treated demagnetization curve shown in
[0083] The method for evaluating ultimate demagnetization temperature of loudspeaker magnet provided by the present invention can be suitable for calculating the ultimate demagnetization temperature of loudspeaker magnet in any shape and structure, including 2D axisymmetric magnetic loop system, a non-2D axisymmetric magnetic loop system and a multi-magnetic-steel magnetic loop system, thereby solving the problem that traditional method for evaluating ultimate demagnetization temperature of loudspeaker magnet cannot be suitable for the opposite magnetic loop system and magnetic loop system of multiple magnets.
[0084] The computer system 100 for evaluating ultimate demagnetization temperature of loudspeaker magnet provided by the present embodiment can be suitable for evaluating the ultimate demagnetization temperature of loudspeaker magnet in various types of demagnetization, which includes the temperature demagnetization of NEO (NdFeB magnet) and the temperature demagnetization of ferrite magnet. This calculation method does not need to introduce the magnetic flux leakage coefficient σ and magnetoresistive coefficient f and also to draw multiple demagnetization curve s at different temperatures. This calculating method is quick in calculation, rapid and has a high effectiveness.
[0085] The foregoing is merely illustrative and illustrative of the structure of the invention, and the description thereof is more specific and detailed, but is not to be construed as limiting the scope of the invention. It should be noted that various modifications and improvements can be made by those skilled in the art without departing from the spirit of the invention, and these obvious alternatives are within the scope of the present invention.