US2019148050A1PendingUtilityA1

Electronic Device and Manufacturing Method Thereof

Assignee: CYNTEC CO LTDPriority: May 15, 2009Filed: Jan 16, 2019Published: May 16, 2019
Est. expiryMay 15, 2029(~2.8 yrs left)· nominal 20-yr term from priority
H01F 3/08H01F 41/0246B22F 3/12H01F 27/24H01F 17/04B22F 3/16H01F 2017/048H01F 1/22H05K 1/18H01F 27/255H01F 27/32H01F 27/292B22F 5/00B22F 7/08H01F 5/00H01F 27/2823
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Claims

Abstract

A method for manufacturing an electronic device, the method comprising: providing a conducting wire; forming a mixture with the conducting wire buried therein, wherein the mixture comprises: a first magnetic powder and a second magnetic powder, wherein the mean particle diameter of the first magnetic powder is greater than the mean particle diameter of the second magnetic powder, and the Vicker's Hardness of the first magnetic powder is greater than the Vicker's Hardness of the second magnetic powder by a first hardness difference; and performing a molding process on the conducting wire and the mixture, wherein by means of the first hardness difference of the first magnetic powder and the second magnetic powder, the mixture and the conducting wire buried therein are combined to form an integral magnetic body at a temperature lower than the melting point of the conducting wire.

Claims

exact text as granted — not AI-modified
What is claimed is: 
     
         1 . Mixed powders for forming a magnetic body, said mixed powders comprising:
 a first magnetic powder; and   a second magnetic powder, mixed with the first magnetic powder to form a mixture of the first magnetic powder and the second magnetic powder, wherein the mean particle diameter of the first magnetic powder is greater than the mean particle diameter of the second magnetic powder, the hardness of the first magnetic powder is greater than the hardness of the second magnetic powder by a first hardness difference, wherein by means of the first hardness difference of the first magnetic powder and the second magnetic powder, the mixture of the first magnetic powder and the second magnetic powder and an insulated conducting wire buried therein are combined to form an integral magnetic body at a temperature lower than the melting point of the insulated conducting wire.   
     
     
         2 . The mixed powders according to  claim 1 , wherein the insulated conducting wire comprises a plurality of winding turns, wherein at least two adjacent winding turns are in contact with each other. 
     
     
         3 . The mixed powders according to  claim 1 , wherein the mean particle diameter of the first magnetic powder is substantially 10 μm to 40 μm, wherein a material of the first magnetic powder comprises an amorphous alloy, and a material of the second magnetic powder comprises iron. 
     
     
         4 . The mixed powders according to  claim 1 , wherein the Vicker's Hardness of the first magnetic powder is greater than or equal to 250, and the Vicker's Hardness of the second magnetic powder is less than or equal to 80. 
     
     
         5 . The mixed powders according to  claim 1 , wherein the mean particle diameter of the second magnetic powder is less than or equal to 4 μm. 
     
     
         6 . The mixed powders according to  claim 1 , wherein the ratio of the mean particle diameter of the first magnetic powder to the mean particle diameter of the second magnetic powder is greater than 2.5, and the mean particle diameter of the second magnetic powder is less than or equal to 4 μm. 
     
     
         7 . The mixed powders according to  claim 1 , wherein the second magnetic powder comprises Fe. 
     
     
         8 . Mixed powders for forming a magnetic body, said mixed powders comprising:
 a first magnetic powder; and   a second magnetic powder, mixed with the first magnetic powder to form a mixture of the first magnetic powder and the second magnetic powder, wherein the mean particle diameter of the first magnetic powder is greater than the mean particle diameter of the second magnetic powder, the hardness of the first magnetic powder is greater than the hardness of the second magnetic powder by a first hardness difference with a ratio of the hardness of the first magnetic powder to the hardness of the second magnetic powder being greater than 2, wherein by means of the first hardness difference of the first magnetic powder and the second magnetic powder, the mixture of the first magnetic powder and the second magnetic powder and an insulated conducting wire buried therein are combined to form an integral magnetic body at a temperature lower than the melting point of the insulated conducting wire.   
     
     
         9 . The mixed powders according to  claim 8 , wherein the insulated conducting wire comprises a plurality of winding turns, wherein at least two adjacent winding turns are in contact with each other. 
     
     
         10 . The mixed powders according to  claim 8 , wherein the mean particle diameter of the first magnetic powder is substantially 10 μm to 40 μm, wherein a material of the first magnetic powder comprises an amorphous alloy, and a material of the second magnetic powder comprises iron. 
     
     
         11 . The mixed powders according to  claim 8 , wherein the Vicker's Hardness of the first magnetic powder is greater than or equal to 250, and the Vicker's Hardness of the second magnetic powder is less than or equal to 80. 
     
     
         12 . The mixed powders according to  claim 8 , wherein the mean particle diameter of the second magnetic powder is less than or equal to 4 μm. 
     
     
         13 . The mixed powders according to  claim 8 , wherein the ratio of the mean particle diameter of the first magnetic powder to the mean particle diameter of the second magnetic powder is greater than 2.5, and the mean particle diameter of the second magnetic powder is less than or equal to 4 μm. 
     
     
         14 . The mixed powders according to  claim 8 , wherein the second magnetic powder comprises Fe. 
     
     
         15 . Mixed powders for forming a magnetic body, said mixed powders comprising:
 a first magnetic powder; and   a second magnetic powder, mixed with the first magnetic powder to form a mixture of the first magnetic powder and the second magnetic powder, wherein the mean particle diameter of the first magnetic powder is greater than the mean particle diameter of the second magnetic powder, and the hardness of the first magnetic powder is greater than the hardness of the second magnetic powder by a first hardness difference with a ratio of the hardness of the first magnetic powder to the hardness of the second magnetic powder being greater than 2, wherein the mixture of the first magnetic powder and the second magnetic powder and an insulated conducting wire buried therein are combined to form an integral magnetic body at a temperature lower than 300° C.   
     
     
         16 . The mixed powders according to  claim 15 , wherein the insulated conducting wire comprises a plurality of winding turns, wherein at least two adjacent winding turns are in contact with each other. 
     
     
         17 . The mixed powders according to  claim 15 , wherein the mean particle diameter of the first magnetic powder is substantially 10 μm to 40 μm, wherein a material of the first magnetic powder comprises an amorphous alloy, and a material of the second magnetic powder comprises iron. 
     
     
         18 . The mixed powders according to  claim 15 , wherein the Vicker's Hardness of the first magnetic powder is greater than or equal to 250, and the Vicker's Hardness of the second magnetic powder is less than or equal to 80. 
     
     
         19 . The mixed powders according to  claim 15 , wherein the mean particle diameter of the second magnetic powder is less than or equal to 4 μm. 
     
     
         20 . The mixed powders according to  claim 15 , wherein the ratio of the mean particle diameter of the first magnetic powder to the mean particle diameter of the second magnetic powder is greater than 2.5, and the mean particle diameter of the second magnetic powder is less than or equal to 4 μm.

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