CURRENT SENSING MODULE FOR CURRENT SENSOR AND METHOD FOR MANUFACTURING CURRENT SENSING MODULE
20200072872 ยท 2020-03-05
Inventors
Cpc classification
G01R1/22
PHYSICS
G01R15/12
PHYSICS
International classification
G01R1/22
PHYSICS
G01R15/12
PHYSICS
Abstract
The present invention provides a current sensing module for a current sensor and a method for manufacturing the current sensing module. The current sensing module includes a spacer layer including a through hole and being annular in shape, and a circuit board electrically connected to the current sensor and includes at least two structural layers. The two structural layers cover the spacer layer and each of the structural layers includes at least one metal wire layer insulated from the spacer layer. The two metal wire layers are conducted to form a loop coil surrounding the spacer layer. When a wire is located in the through hole, an external power supply power to the circuit board, such that the circuit board has a detection state in which a sensing current is outputted due to magnetic induction generated by the loop coil during the wire is electrically conducted.
Claims
1. A current sensing module for a current sensor, the current sensing module comprising: at least one spacer layer, being annular in shape, including a through hole at a center thereof for a wire to pass through; and at least one circuit board, electrically connected to the current sensor, the circuit board including at least two structural layers for covering the spacer layer, each of the structural layers comprising an insulation layer and a metal wire layer located on the insulation layer and insulated from the spacer layer, the two metal wire layers mutually electrically connected to form at least one loop coil, the loop coil surrounding the spacer layer; wherein when the wire is located in the through hole and electrically conducted, the circuit board has a detection state in which a sensing current is outputted due to magnetic induction generated by the loop coil.
2. The current sensing module for a current sensor of claim 1, further comprising a magnetic separation layer for covering an external of the circuit board.
3. The current sensing module for a current sensor of claim 2, wherein the circuit board further comprises four of the structural layers, which are a first structural layer, a second structural layer opposite the first structural layer, a third structural layer located between the first structural layer and the second structural layer, and a fourth structural layer located between the third structural layer and the second structural layer; the spacer layer is located between the third structural layer and the fourth structural layer.
4. The current sensing module for a current sensor of claim 3, wherein the spacer layer is selected from a group consisted of a magnetic material and a non-magnetic material.
5. The current sensing module for a current sensor of claim 4, wherein the spacer layer is insulated from the first structural layer and the second structural layer.
6. The current sensing module for a current sensor of claim 3, wherein the first structural layer includes thereon a first metal wire layer, the second structural layer includes thereon a second metal wire layer mutually electrically connected to the first metal wire layer, the third structural layer includes thereon a third metal wire layer, and the fourth structural layer includes thereon a fourth metal wire layer mutually electrically connected to the third metal wire layer.
7. A method for manufacturing a current sensing module, comprising steps of: a spacer layer manufacturing step: providing at least one spacer layer including a through hole and being annular in shape; a structural layer manufacturing step: providing at least two structural layers, each of the structural layers comprising an insulation layer and a metal wire layer; and a combining step: arranging the spacer layer between the two structural layers to insulate the spacer layer from the two metal wire layers through the two insulation layers, mutually combining the two structural layers to fix the spacer layer, mutually electrically connecting the two metal wire layers on the two structural layers to form a circuit board, and the two metal wire layers forming a loop coil for covering the spacer layer; wherein when a wire is located in the through hole and electrically conducted, the circuit board has a detection state in which a sensing current is outputted due to magnetic induction generated by the loop coil.
8. The method for manufacturing a current sensing module of claim 7, further comprising a step of: forming a magnetic separation layer at an external of the circuit board and the magnetic separation layer covering the external of the circuit board.
9. The method for manufacturing a current sensing module of claim 8, wherein the structural layer manufacturing step further comprises four of the structural layers, which are a first structural layer, a second structural layer opposite the first structural layer, a third structural layer located between the first structural layer and the second structural layer, and a fourth structural layer located between the third structural layer and the second structural layer; wherein the spacer layer is located between the third structural layer and the fourth structural layer.
10. The method for manufacturing a current sensing module of claim 9, wherein the spacer layer is selected from a group consisted of a magnetic material and a non-magnetic material.
11. The method for manufacturing a current sensing module of claim 10, wherein the spacer layer is insulated from the first structural layer and the second structural layer.
12. The method for manufacturing a current sensing module of claim 9, wherein the first structural layer includes thereon a first metal wire layer, the second structural layer includes thereon a second metal wire layer mutually electrically connected to the first metal wire layer, the third structural layer includes thereon a third metal wire layer, and the fourth structural layer includes thereon a fourth metal wire layer mutually electrically connected to the third metal wire layer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0041] Details and technical contents of the present invention are given with the accompanying drawings below.
[0042] Referring to
[0043] The spacer layer 40 is made of a magnetic material or a non-magnetic material, appears as an annular shape relative to the detection component 12, and includes at a central part thereof a through hole 41 located concentrically as the detection hole 13. The magnetic material refers to a highly magnetically conductive material, and the non-magnetic material refers to a non-magnetic conductive material such as glass fiber.
[0044] The circuit board 50 is for electrically connecting to the detection body 11, and includes at least two structural layers 51 for covering the spacer layer 40. Each of the structural layers 51 includes an insulation layer 52, a metal wire layer 53 located on the insulation layer 52, and a plurality of conductive channels 59. More specifically, the plurality of conductive channels 59 include a first conductive channel 591 and a second conductive channel 592; each of the metal wire layers 53 is distributed with a plurality of conductive wires, which are not yet connected. Further, the plurality of conductive wires need to be connected on other metal wire layers 53 via other conductive channels 59. The connection of the metal wire layers 53 and the conductive channels 59 form a loop coil 54. In this embodiment, four of the structural layers 51 are used as a main implementation form, and are respectively a first structural layer 511, a second structural layer 512 opposite the first structural layer 511, a third structural layer 513 located between the first structural layer 511 and the second structural layer 512, and a fourth structural layer 514 located between the third structural layer 513 and the second structural layer 512. The spacer layer 40 is located between the third structural layer 513 and the fourth structural layer 514. Further, the first structural layer 511 includes a first insulation layer 521 and a first metal wire layer 531 located on the first insulation layer 521, the second structural layer 512 includes a second insulation layer 522 and a second metal wire layer 532 located on the second insulation layer 522, the third structural layer 513 includes a third insulation layer 523 and a third metal wire layer 533 located on the third insulation layer 523, and the fourth structural layer 514 includes a fourth insulation layer 524 and a fourth metal wire layer 534 located on the fourth insulation layer 524. The first metal wire layer 531 is mutually electrically connected to the second metal wire layer 532 via the first conductive channel 591, and the third metal wire layer 533 is mutually electrically connected to the fourth metal wire layer 534 via the second conductive channel 592, such that the first metal wire layer 531, the second metal wire layer 532, the third metal wire layer 533 and the fourth metal wire layer 534 form the loop coil 54, surround an external of the spacer layer 40, and are mutually insulated from the spacer layer 40 through the first insulation layer 521, the second insulation layer 522, the third insulation layer 523 and the fourth insulation layer 524. The circuit board 50 further includes a first electrode contact 55 and a second electrode contact 56, wherein the first electrode contact 55 and the second electrode contact 56 are mutually electrically connected to the metal wire layer 53 and the detection body 11, respectively.
[0045] Accordingly, when the wire 20 is inserted in the detection hole 13 and a current passes through the wire 20, the loop coil 54 formed by the first metal wire layer 531, the second metal wire layer 532, the third metal wire layer 533 and the fourth metal wire layer 534 on the circuit board 50 generates magnetic induction due to the current passing through the wire 20, and hence a sensing current is generated. The sensing current is transmitted to the detection body 11, which then provides the current value at the present time according to the sensing current. In an implementation of the embodiment, when the spacer layer 40 is the magnetic material, a smaller current is detected, wherein the detected current value has a higher resolution. When the spacer layer 40 is a non-magnetic material, a larger current is detected.
[0046] Again referring to
[0047] Again referring to
[0048] In one embodiment, as shown in
[0049] In other words, the loop coil 54 of the circuit board 50 of the present invention may be in an enclosed annular shape as shown in
[0050] Again referring to
[0051] In this embodiment, as shown in
[0052] Again referring to
[0053] In the spacer layer manufacturing step S001, a magnetic material or a non-magnetic material is primarily used to manufacture the annular-shaped spacer layer 40, and the through hole 41 is formed on the spacer layer 40.
[0054] In the structural layer manufacturing step S002, at least two of structural layers 51 for covering the spacer layer 40 are provided. Each of the structural layers 51 includes the metal wire layer 53 formed on the insulation layer 52 via electroplating, coating or printing.
[0055] In the combining step S003, the spacer layer 40 is provided between the two structural layers 51 so as to the two insulation layers 52 insulate the spacer layer 40 from the two metal wire layers 53. The two insulation layers 52 of the two structural layers 51 are mutually combined through adhesion or pressing to fix the spacer layer 40, two of metal wire layers 53 on the two structural layers 51 are mutually electrically connected to form the circuit board 50, and the loop coil 54 for covering the spacer layer 40 is formed by the two metal wire layers 53 and the conductive channels 59. When the wire 20 is located in the through hole 41, the circuit board 50 has a detection state in which a sensing current is outputted due to magnetic induction generated by the loop coil 54 when the wire 20 is electrically conducted.
[0056] In the magnetic separation layer manufacturing step S004, a magnetic separation layer 60 is formed at the external of the circuit board 50 and the magnetic separation layer 60 covers the external of the circuit board 50, thereby the circuit board 50 blocked from the detection component 12 by the magnetic separation layer 60 therebetween.
[0057] It should be noted that, during a manufacturing process of the circuit board 50, the spacer layer 40 of the present invention is arranged between the two structural layers 51 via a pressing process of the two structural layers 51. Further, the two insulation layers 52 of the two structural layers 51 are connected through hot-pressing or adhesion such that the two metal wire layers 53 are insulated from the spacer layer 40 through the two insulation layers 52 Next, using a manufacturing step in the manufacturing process of the circuit board 50, such as drilling, exposure, etching, electroplating, cleaning, applying or printing, the two metal wire layers 53 are electrically connected to form the loop coil 54, allowing the loop coil 54 to surrounded the spacer layer 40 and thus completing the manufacturing of the current sensing module 30.
[0058] Thus, not only the volume of the current sensing module 30 is reduced but also the manufacturing yield rate is increased, making the present invention be better applicable for mass production. Further, the number of turns of the loop coil 54 is able to be increased by increasing the number of the structural layers 51, and the circuit board 50 is manufactured by a multi-layer circuit board process, thus further enhancing a magnetic field sensing amount of the detection body 11. Further, the circuit board 50 provides the loop coil 54 with more uniform wire distribution, such that current interference generated by an external environment is minimized during measurement process. Moreover, the circuit board 50 adopts designs of various shapes to match the shape of the detection component 12, and thus is applied to a greater scope.