Connecting element, reinforcement and use of a connecting element
US-2024151036-A1 · May 9, 2024 · US
US10008324B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10008324-B2 |
| Application number | US-201414760964-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jan 14, 2014 |
| Priority date | Jan 16, 2013 |
| Publication date | Jun 26, 2018 |
| Grant date | Jun 26, 2018 |
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A method for manufacturing a powder magnetic core using a soft magnetic material powder, wherein the method has: a first step of mixing the soft magnetic material powder with a binder, a second step of subjecting a mixture obtained through the first step to pressure forming, and a third step of subjecting a formed body obtained through the second step to heat treatment. The soft magnetic material powder is an Fe—Cr—Al based alloy powder comprising Fe, Cr and Al. An oxide layer is formed on a surface of the soft magnetic material powder by the heat treatment. The oxide layer has a higher ratio by mass of Al to the sum of Fe, Cr and Al than an alloy phase inside the powder.
Opening claim text (preview).
The invention claimed is: 1. A method for manufacturing a powder magnetic core using a soft magnetic material powder, comprising: a first step of mixing the soft magnetic material powder with a binder, a second step of subjecting a mixture obtained through the first step to pressure forming, and a third step of subjecting a formed body obtained through the second step to heat treatment in an atmosphere in which oxygen or water vapor is present, wherein the soft magnetic material powder is an Fe—Cr—Al based alloy powder comprising Fe, Cr and Al, wherein the soft magnetic material powder used in the first step contains 1.0 to 9.0% by mass Cr and 2.0 to 10.0% by mass Al and wherein an oxide layer comprising Fe, Cr and Al is formed on the surface of the soft magnetic material powder by the heat treatment, particles of the soft magnetic material powder are bonded to each other through the oxide layer, the oxide layer has a higher ratio by mass of Al to the sum of Fe, Cr and Al than an alloy phase inside the powder, and the oxide layer is one in which % by mass of Al is larger in content than by mass of Cr, wherein the soft magnetic material powder used in the first step has a median diameter d50 of 30 μm or less, wherein in an image obtained by observing a cross section of the powder magnetic core, the average of the respective maximum particle diameters of the particles of the soft magnetic material powder is 15 μm or less, and the proportion of the number of particles having a maximum diameter of more than 40 μm is less than 1.0%. 2. The method for manufacturing the powder magnetic core according to claim 1 , wherein a forming pressure at the time of the pressure forming is 1.0 GPa or less, and further the space factor of the soft magnetic material powder in the powder magnetic core after the heat treatment is 83% or more. 3. The method for manufacturing the powder magnetic core according to claim 1 , wherein the heat treatment is conducted in air, wherein the oxide layer has a portion in which % by mass Fe is larger in proportion than % by mass Al. 4. The method for manufacturing the powder magnetic core according to claim 1 , wherein the soft magnetic material powder used in the first step contains 2.5 to 7.0% by mass Cr and 3.0 to 7.0% by mass Al. 5. The method for manufacturing the powder magnetic core according to claim 4 , wherein the soft magnetic material powder used in the first step has a total content of Cr and Al that is 6.0% to 14.0% by mass, and the Al content in % by mass in the soft magnetic material powder used in the first step is larger than the Cr content in % by mass therein. 6. The method for manufacturing the powder magnetic core according to claim 1 , wherein the space factor of the soft magnetic material powder in the powder magnetic core after the heat treatment ranges from 83 to 90%, wherein the initial magnetic permeability pi of the powder magnetic core after the heat treatment is 41 to 51, wherein the initial magnetic permeability μi is measured at a frequency of 100 kHz.
containing aluminium · CPC title
Manufacturing of magnetic circuits by moulding or by pressing powder (magnetic cores made by moulding or by pressing powder H01F27/255; soft magnetic particles H01F1/20, H01F1/36) · CPC title
made from particles (H01F27/26 takes precedence) · CPC title
Water or water vapour · CPC title
Ferrous alloys, e.g. steel alloys (cast-iron alloys C22C37/00) · CPC title
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