Packaging Structure of a Magnetic Device
20210125767 · 2021-04-29
Inventors
- Chun-Tiao Liu (Hsinchu City, TW)
- Lan-Chin Hsieh (Kaohsiung City, TW)
- TSUNG-CHAN WU (Hsinchu County, TW)
- Chi-Hsun Lee (Taipei City, TW)
- Chih-Siang Chuang (Hsinchu City, TW)
Cpc classification
H01F17/045
ELECTRICITY
H01F27/29
ELECTRICITY
International classification
Abstract
An inductor is disclosed, the inductor comprising: a T-shaped magnetic core, being made of a material comprising an annealed soft magnetic metal material and having a base and a pillar integrally formed with the base, wherein μC×Hsat≥1800, where μC is a permeability of the T-shaped magnetic core, and Hsat (Oe) is a strength of the magnetic field at 80% of μC0, where μC0 is the permeability of the T-shaped magnetic core when the strength of the magnetic field is 0.
Claims
1. A magnetic device, comprising: a T-shaped magnetic core, comprising a magnetic powder, wherein the T-shaped magnetic core comprises a base and a pillar, wherein the base comprises a top side and a bottom side opposite to the top side, and the pillar is located on the top side of the base; a coil, wound on the pillar; and a magnetic body, encapsulating the pillar and the coil, wherein the magnetic body and a bottom surface of the base form an outer surface of the magnetic device; wherein μC×Hsat(Oe)≥1800, where μC is a permeability of the T-shaped magnetic core, and Hsat(Oe) is a strength of the magnetic field at 80% of μC0, where μC0 is the permeability of the T-shaped magnetic core when the strength of the magnetic field is 0.
2. The magnetic device of claim 1, wherein the wherein μC×Hsat≥2250.
3. The magnetic device of claim 1, wherein the wherein μC×Hsat≥2520.
4. The magnetic device of claim 1, wherein the magnetic device is an inductor.
5. The magnetic device of claim 1, wherein the magnetic powder comprises Fe—Si alloy powder, wherein the permeability of the T-shaped magnetic core is between 48 and 108.
6. The magnetic device of claim 1, wherein the magnetic powder comprises Fe—Si—Al alloy powder, wherein the permeability of the T-shaped magnetic core is between 48 and 150.
7. The magnetic device of claim 1, wherein a volume V1 of the base and a volume V2 of the pillar satisfies: V1/V2≤2.533, and the total core loss of the inductor is not greater than 695.02 mW.
8. The magnetic device of claim 1, wherein μB×Hsat_B(Oe)≥2250, where μB is a permeability of the magnetic body, and Hsat_B(Oe) is a strength of the magnetic field at 80% of μB0, where μB0 is the permeability of the magnetic body when the strength of the magnetic field is 0.
9. The magnetic device of claim 1, wherein the magnetic device is a choke.
10. The magnetic device of claim 1, wherein two electrodes are embedded in the base, said two electrodes being electrically connected to two leads of the coil, wherein the base has two recesses respectively located on two lateral sides of the base, the two recesses respectively receiving said two leads of the coil so that the two leads are respectively in contact with the two electrodes via the two recesses.
11. A magnetic device comprising: a T-shaped magnetic core, comprising a magnetic powder, wherein the T-shaped magnetic core comprises a base and a pillar, the base having a first surface and a second surface opposite to the first surface, the pillar being located on the first surface of the base, the second surface of the base being exposed to outer environment as an outer surface of the magnetic device, a core loss P (mW/cm) of the T-shaped magnetic core satisfying: 0.64×f.sup.0.95×B.sub.m.sup.2.20≤P.sub.CL≤7.26×f.sup.1.41×B.sub.m.sup.1.08, where f (kHz) represents a frequency of a magnetic field applied to the T-shaped magnetic core, and Bm (kGauss) represents the operating magnetic flux density of the magnetic field at the frequency; a wire coil surrounding the pillar, the wire coil having two leads; and a magnetic body fully covering the pillar, any part of the base that is located above the second surface of the base, and any part of the wire coil that is located directly above the first surface of the base, wherein a volume V1 of the base and a volume V2 of the pillar satisfies: V1/V2≤2.093.
12. The magnetic device of claim 11, wherein the magnetic device is an inductor.
13. The magnetic device of claim 11, wherein wherein μB×Hsat_B(Oe)≥2250, where μB is a permeability of the magnetic body, and Hsat_B(Oe) is a strength of the magnetic field at 80% of μB0, where μB0 is the permeability of the magnetic body when the strength of the magnetic field is 0.
14. The magnetic device of claim 11, wherein the magnetic powder comprises Fe—Si alloy powder, wherein the permeability of the T-shaped magnetic core is between 48 and 108.
15. The magnetic device of claim 11, wherein the magnetic powder comprises Fe—Si—Al alloy powder, wherein the permeability of the T-shaped magnetic core is between 48 and 150.
16. A magnetic device, comprising: a T-shaped magnetic core, comprising a magnetic powder, wherein the T-shaped magnetic core comprises a base and a pillar integrally formed with the base, the base having a top side and a bottom side opposite to the top side, the pillar being located on the top side of the base; a coil wound on the pillar; and a magnetic body, encapsulating the pillar, the coil and a portion of the base with a bottom surface of the base being not covered by the magnetic body, wherein the magnetic body and the bottom surface of the base form an outer surface of the magnetic device; wherein a core loss P.sub.CL (mW/cm.sup.3) of the T-shaped magnetic core satisfying: 0.64×f.sup.0.95×B.sub.m.sup.2.20≤P.sub.CL≤7.26×f.sup.1.41×B.sub.m.sup.1.08, where f (kHz) represents a frequency of a magnetic field applied to the T-shaped magnetic core, and Bm (kGauss) represents the operating magnetic flux density of the magnetic field at the frequency; and wherein a permeability of the magnetic body is equal to or larger than 4.8, and the core loss P.sub.BL (mW/cm.sup.3) of the magnetic body satisfies: 2×f.sup.1.29×Bm.sup.2.2≤P.sub.BL≤14.03×f.sup.1.29×B.sub.m.sup.1.08.
17. The magnetic device of claim 16, wherein μB×Hsat_B(Oe)≥2250, where μB is a permeability of the magnetic body, and Hsat_B(Oe) is a strength of the magnetic field at 80% of μB0, where μB0 is the permeability of the magnetic body when the strength of the magnetic field is 0.
18. The magnetic device of claim 16, wherein the magnetic device is an inductor.
19. The magnetic device of claim 16, wherein a volume V1 of the base and a volume V2 of the pillar satisfies: V1/V2≤2.533, and the total core loss of the inductor is not greater than 695.02 mW.
20. The magnetic device of claim 16, wherein a volume V1 of the base and a volume V2 of the pillar satisfies: V1/V2≤2.093, and the total core loss of the inductor is not greater than 483.24 mW.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] The present invention will become more fully understood from the detailed description given hereinbelow and the accompanying drawings which are given by way of illustration only, and thus are not limitative of the present invention, and wherein:
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
DETAILED DESCRIPTION OF THE ILLUSTRATED EMBODIMENTS
[0024] The present invention will now be described in detail with reference to the accompanying drawings, wherein the same reference numerals will be used to identify the same or similar elements throughout the several views. It should be noted that the drawings should be viewed in the direction of orientation of the reference numerals.
[0025]
[0026] In an embodiment of the present invention, the T-shaped magnetic core 2 is made of an annealed soft magnetic metal material. In particular, a soft magnetic metal material selected from the group consisting of Fe—Si alloy powder, Fe—Si—Al alloy powder, Fe—Ni alloy powder, Fe—Ni—Mo alloy powder, and a combination of two or more thereof is first pressed to form the T-shaped structure (i.e., base+pillar) of the T-shaped magnetic core 2. After the T-shaped structure is formed, an annealing process is performed on the T-shaped structure to obtain the annealed T-shaped magnetic core 2 with low core loss.
[0027] A relationship can be used describe the core losses of the magnetic material. This relationship takes the following form:
P.sub.L=C×f.sup.a×B.sub.m.sup.b,
[0028] In this relationship, PL is the core loss per unit volume (mW/cm.sup.3), f (kHz) represents a frequency of a magnetic field applied to the magnetic material, and Bm (kGauss, and is usually less than one (1)) represents the operating magnetic flux density of the magnetic field at the frequency. In addition, the coefficients C, a and b are based on factors such as the permeability of the magnetic materials.
[0029] TABLES 1-4 illustrate the coefficients C, a and b when different soft magnetic metal materials with different permeabilities are used to form the annealed T-shaped magnetic core 2.
TABLE-US-00001 TABLE 1 Fe—Ni—Mo alloy powder (MPP) Permeability μ.sub.CC C a b 14 2.33 1.31 2.19 26 1.39 1.28 1.29 60 0.64 1.41 2.20 125 1.02 1.40 2.03 147 1.08 1.40 2.04 160 1.08 1.40 2.04 173, 200 1.08 1.40 2.04
TABLE-US-00002 TABLE 2 Fe—Ni alloy powder (High Flux) Permeability μ.sub.CC C a b 14 7.26 0.95 1.91 26 3.19 1.22 1.08 60 3.65 1.15 2.16 125 1.62 1.32 2.20 147 1.74 1.32 2.10 160 1.74 1.32 2.10
TABLE-US-00003 TABLE 3 Fe—Si—Al alloy powder (Sendust) Permeability μ.sub.CC C a b 14 3.18 1.21 2.09 26 2.27 1.26 2.08 60, 75, 90, 125 2.00 1.31 2.16
TABLE-US-00004 TABLE 4 Fe—Si alloy powder (Power Flux) Permeability μ.sub.CC C a b 60, 90 4.79 1.25 2.05
[0030] In view of the above, in accordance with some embodiments of the present invention, the core loss P.sub.CL (mW/cm.sup.3) of the annealed T-shaped magnetic core 2 satisfies:
0.64×f.sup.0.95×B.sub.m.sup.2.20≤P.sub.CL≤7.26×f.sup.1.41×B.sub.m.sup.1.08.
[0031] In some embodiments of the present invention, the permeability μ.sub.C of the annealed T-shaped magnetic core 2 has the average permeability μ.sub.CC with ±20% deviation, and the average permeability μ.sub.CC is equal or larger than 60. For example, the annealed T-shaped magnetic core 2 is an annealed T-shaped structure made from soft magnetic metal material such as Fe—Si alloy powder with the average permeability μ.sub.CC of the annealed T-shaped magnetic core 2 between 60 and 90 (i.e., permeability μ.sub.C is between 48 (i.e., 80% of 60) and 108 (120% of 90)), Fe—Si—Al alloy powder with the average permeability μ.sub.CC of the annealed T-shaped magnetic core 2 between 60 and 125 (i.e., permeability μ.sub.C is between 48 (i.e., 80% of 60) and 150 (120% of 125)), Fe—Ni alloy powder with the average permeability μ.sub.CC of the annealed T-shaped magnetic core 2 between 60 and 160 (i.e., permeability μ.sub.C is between 48 (i.e., 80% of 60) and 192 (120% of 160)), or Fe—Ni—Mo alloy powder with the average permeability μ.sub.CC of the annealed T-shaped magnetic core 2 between 60 and 200 (i.e., permeability μ.sub.C is between 48 (i.e., 80% of 60) and 240 (120% of 200)), and the core loss P.sub.CL (mW/cm.sup.3) of the annealed T-shaped magnetic core 2 satisfies:
0.64×f.sup.1.15×B.sub.m.sup.2.20≤P.sub.CL≤4.79×f.sup.1.41×B.sub.m.sup.1.08.
[0032] In some embodiments of the present invention, the annealed T-shaped magnetic core 2 is an annealed T-shaped structure made from soft magnetic metal material such as Fe—Si—Al alloy powder with the average permeability μ.sub.CC of the annealed T-shaped magnetic core 2 between 60 and 125 (i.e., permeability μ.sub.C is between 48 (i.e., 80% of 60) and 150 (120% of 125)), Fe—Ni alloy powder with the average permeability μ.sub.CC of the annealed T-shaped magnetic core 2 between 60 and 160 (i.e., permeability μ.sub.C is between 48 (i.e., 80% of 60) and 192 (120% of 160)), or Fe—Ni—Mo alloy powder with the average permeability μ.sub.CC of the annealed T-shaped magnetic core 2 between 60 and 200 (i.e., 80% of 60) and 240 (120% of 200)), and the core loss P.sub.CL (mW/cm.sup.3) of the annealed T-shaped magnetic core 2 satisfies:
0.64×f.sup.1.31×B.sub.m.sup.2.20≤P.sub.CL≤2.0×f.sup.1.41×B.sub.m.sup.1.08
[0033] In addition, the value of μ.sub.CC×Hsat is a major bottleneck for the current tolerance of a choke, where Hsat (Oe) is a strength of the magnetic field at 80% of μ.sub.C0, and μ.sub.C0 is the permeability of the T-shaped magnetic core 2 when the strength of the magnetic field is 0. TABLE 5 illustrates the value of μ.sub.CC×Hsat when different annealed soft magnetic metal materials with different permeabilities are used to form the annealed T-shaped magnetic core 2.
TABLE-US-00005 TABLE 5 Core Fe—Si alloy powder Material Fe—Si—Al alloy powder (Sendust) (Power Flux) μcc 60 75 90 125 60 90 Hsat (Oe) 42 32 29 18 70 48 μcc × Hsat 2520 2400 2610 2250 4200 4320 Core Material Fe—Ni—Mo alloy powder (MPP) μcc 60 125 147 160 173 200 Hsat (Oe) 60 30 28 23 21 16 μcc × Hsat 3600 3750 4116 3680 3633 3200 Core Material Fe—Ni alloy powder (High Flux) μcc 60 125 147 160 Hsat (Oe) 105 42 39 32 μcc × Hsat 6300 5250 5733 5120
[0034] In view of the above, in accordance with the embodiments of the present invention, the following requirement is also satisfied:
μ.sub.CC×Hsat≤2250
[0035] In an embodiment of the present invention, the two electrodes 5, 6 are located at the bottom of the base 21, as show in
[0036] In another embodiment of the present invention, as shown in
[0037] In an embodiment of the present invention, the base 21 is a rectangular (including a square) base with four right-angled corners or four curved corners (see
[0038] In an embodiment of the present invention, the magnetic body 4 is made by mixing a thermal setting material (such as resin) and a material selected from the group consisting of iron-based amorphous powder, Fe—Si—Al alloy powder, permalloy powder, ferro-Si alloy powder, nanocrystalline alloy powder, and a combination of two or more thereof, and the mixture is then hot-pressed into a thermal setting mold where the T-shaped magnetic core 2 with the wire coil 3 thereon is located. Therefore, the hot-pressed mixture (i.e., the magnetic body 4) fully covers the pillar 22, any part of the base 21 that is located above the second/bottom surface of the base 21, and any part of the wire coil 3 that is located above the first/top surface of the base 21 as shown in
[0039] In an embodiment of the present invention, the permeability μ.sub.B of the magnetic body has ±20% deviation from an average permeability μ.sub.BC of the magnetic body 4, the average permeability μ.sub.BC is equal to or larger than 6, and the core loss P.sub.BL (mW/cm.sup.3) of the magnetic body 4 satisfies:
2×f.sup.1.29×Bm.sup.2.2≤P.sub.BL≤14.03×f.sup.1.29×B.sub.m.sup.1.08
[0040] In another embodiment of the present invention, the permeability μ.sub.B of the magnetic body 4 satisfies: 9.85≤μ.sub.B≤64.74, and the core loss P.sub.BL (mW/cm.sup.3) of the magnetic body further satisfies:
2×f.sup.1.29×Bm.sup.2.2≤P.sub.BL≤11.23×f.sup.1.29×B.sub.m.sup.1.08
[0041] In another embodiment of the present invention, the permeability μ.sub.B of the magnetic body 4 satisfies: 20≤μ.sub.B≤40, and the core loss P.sub.BL (mW/cm.sup.3) of the magnetic body further satisfies:
2×f.sup.1.29×Bm.sup.2.2≤P.sub.BL≤3.74×f.sup.1.29×B.sub.m.sup.1.08
[0042] In addition, in an embodiment of the present invention, the following requirement is also satisfied:
μ.sub.BC×Hsat≤2250,
[0043] where Hsat (Oe) is a strength of the magnetic field at 80% of μ.sub.B0, where μ.sub.B0 is the permeability of the magnetic body 4 when the strength of the magnetic field is 0.
[0044] In addition, the dimension of the T-shaped magnetic core 2 will also affect the core loss of the choke. TABLE 6 shows the total core loss of the chokes with different dimensions of the T-shaped magnetic cores, where C is the diameter of the pillar 22, D is the height of the pillar 22, E is the thickness of the base 21, and the T-shaped magnetic cores in TABLE 6 have the same height B (6 mm) and same width A (14.1 mm), as shown in
[0045] In the examples of TABLE 6, the T-shaped magnetic core 2 is made of an annealed Fe—Si—Al alloy powder with permeability of about 60 (Sendust 60), and the magnetic body 4 is made of a hot-pressed mixture of resin and iron-based amorphous powder and has permeability of about 27.5. In addition, the size of the thermal setting mold (and therefore the size of the choke 1) V is 14.5×14.5'7.0=1471.75 mm.sup.3.
TABLE-US-00006 TABLE 6 Size Core Material: Sendust 60 Hot-Pressed Mixture: μ = 27.5 Core Loss 14.5 × 14.5 × 7.0 Total Core Core C D E ΔBm P.sub.CV Volume CoreLoss Loss NO. (mm) (mm) (mm) V1/V2 Part (mT) (kW/m.sup.3) (mm.sup.3) (mW) (mW) Vc/V 1 5.5 5.2 0.8 1.288 T-shaped 59.99 689.01 282.6 194.71 362.97 19.2% Magnetic Core Magnetic 14.79 209.31 803.9 168.26 Body 2 5.0 4.0 2.0 5.065 T-shaped 76.72 1169.26 476.2 556.80 760.52 32.26% Magnetic Core Magnetic 17.14 291.69 698.4 203.72 Body 3 5.0 4.8 1.2 2.533 T-shaped 78.9 1241.86 332.8 413.29 695.02 22.62% Magnetic Core Magnetic 18.22 334.65 841.8 281.73 Body 4 6.5 4.8 1.2 1.4986 T-shaped 50.79 481.70 397.9 191.67 428.10 27.04% Magnetic Core Magnetic 17.51 306.03 772.6 236.43 Body 5 7.5 4.8 1.2 1.1256 T-shaped 38.3 262.56 450.6 118.31 388.46 30.62% Magnetic Core Magnetic 18.98 366.9 736.3 270.15 Body 6 6 4.8 1.2 1.7587 T-shaped 54.95 570.54 373.11 212.87 408.55 25.35% Magnetic Core Magnetic 15.67 238.64 819.96 195.67 Body 7 5.5 4.8 1.2 2.093 T-shaped 65.96 845.01 351.59 297.10 483.24 23.89% Magnetic Core Magnetic 15.35 227.85 816.99 186.15 Body 8 5.7 4.8 1.2 1.9487 T-shaped 60.42 699.78 359.97 251.90 442.22 24.46% Magnetic Core Magnetic 15.64 237.59 801.03 193.20 Body
[0046] As shown in TABLE 6, when the ratio of the volume V1 of the base 21 to the volume V2 of the pillar 22 (V1/V2) is equal to or smaller than 2.533, the total core loss of the choke 1 is 695.02 mW or less (i.e., V1/V2<2.533.fwdarw.total core loss≤695.02 mW). More preferably, when the ratio of the volume V1 of the base 21 to the volume V2 of the pillar 22 (V1/V2) is equal to or smaller than 2.093, the total core loss of the choke 1 is 483.24 mW or less (i.e., V1/V2≤2.093.fwdarw.total core loss≤483.24 mW). As can be seen in TABLE 6, when the size of the choke is set, the smaller the ratio V1/V2, the smaller the total core loss of the choke.
[0047] In addition, as shown in Example No. 5 in TABLE 6, the equivalent permeability of the choke is 40.73 with ±30% deviation. In other words, the equivalent permeability of the choke is between 28.511 and 52.949. In particular, the equivalent permeability of the choke may be measured by (but not limited to) a vibrating samples magnetometer (VSM) or determined by (but not limited to) measuring the dimension of the choke, the length and diameter of the wire coil, the wiring manner of the wire coil, and the inductance of the choke, applying the above-noted measurement to simulation software such as ANSYS Maxwell, Magnetics Designer, MAGNET, etc.
[0048]
TABLE-US-00007 TABLE 7 100% of Target Inductance & 100% of Permeability μ.sub.C (i.e., μ.sub.C = μ.sub.CC) μ.sub.C μ.sub.B 60 27.5 75 23.98 90 21.66 125 18.93 150 17.94 200 16.80
TABLE-US-00008 TABLE 8 70% of Target Inductance (−30% deviation) & 80% of Permeability μ.sub.C (−20% deviation) μ.sub.C μ.sub.B 48 16.52 60 14.50 72 13.32 100 11.79 120 11.21 160 10.49
TABLE-US-00009 TABLE 9 130% of Target Inductance (+30% deviation) & 80% of Permeability μ.sub.C (−20% deviation) μ.sub.C μ.sub.B 48 64.74 60 47.98 72 39.50 100 31.69 120 28.86 160 25.81
TABLE-US-00010 TABLE 10 70% of Target Inductance (−30% deviation) & 120% of Permeability μ.sub.C (+20% deviation) μ.sub.C μ.sub.B 72 13.32 90 12.21 108 11.52 150 10.61 180 10.26 240 9.85
TABLE-US-00011 TABLE 11 130% of Target Inductance (+30% deviation) & 120% of Permeability μ.sub.C (+20% deviation) μ.sub.C μ.sub.B 72 39.50 90 33.76 108 30.05 150 26.33 180 25.02 240 23.31
[0049] Therefore, as long as the permeability μ.sub.C of the annealed T-shaped magnetic core 2 and the permeability μ.sub.B of the magnetic body 4 are located at any point within the range as shown in
TABLE-US-00012 TABLE 12 μ.sub.C μ.sub.B 48 16.52-64.74 60 14.50-47.98 72 13.32-39.50 90 12.21-33.76 100 11.79-31.69 108 11.52-30.05 120 11.21-28.86 150 10.61-26.33 160 10.49-25.81 180 10.26-25.02 240 9.85-23.31
[0050]
TABLE-US-00013 TABLE 13 Current Power Power (A)@ Loss Loss L.sub.0 DCR L.sub.sat = (mw) @ (mw) @ Dimension (μH) (mΩ) 4.1 μH 2 A 10.5 A Conventional 17 × 17 × 12 6.91 6.35 11.8 485.3 1360.5 Choke with mm.sup.3 (max) Toroidal Core Choke with 14.5 × 14.5 × 7 6.43 5.9 21.8 412.06 1221.8 Annealed mm.sup.3 T-shaped Magnetic Core (Example No. 5 in TABLE 6)
[0051] As can been seen in
[0052] The invention being thus described, it will be obvious that the same may be varied in many ways. Such variations are not to be regarded as a departure from the spirit and scope of the invention, and all such modifications as would be obvious to one skilled in the art are intended to be included within the scope of the following claims.