IP Library › Granted Patent US 12,748,136
Granted Patent B2
US 12,748,136 · App. 18/723,367 · Granted Sep 29, 2026

Current sensor with high and low current ranges

Inventors: Mingfeng Liu (Zhangjiagang, CN); Ran Shi (Zhangjiagang, CN); Songsheng Xue (Zhangjiagang, CN)
Assignee: MultiDimension Technology Co., Ltd.
G01R19/0092G01R33/091
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Quick Facts
Patent No.
US 12,748,136
App. No.
18/723,367
Granted
Sep 29, 2026
Kind
B2
Abstract

Provided is a current sensor. An input module thereof comprises a differential copper bar and a current shunting copper bar connected in parallel. A current to be measured flows through the differential copper bar and the current shunting copper bar and generates a magnetic field at the positions of high and low current detection modules. In the high current detection module, a first magnetic induction module is secured on a circuit board and placed in an internal gap of the input module. The first magnetic induction module at least comprises a first and a second magnetic sensing units. The first and second magnetic sensing units differentially sense a magnetic field of the input module and form an out signal through a first signal output module. In the low current detection module, a second magnetic induction module is secured on a circuit board and placed outside the input module. The second magnetic induction module at least comprises a third and fourth magnetic sensing units. The third and fourth magnetic sensing units differentially sense the magnetic field of input module and form an output signal through a second signal output module. The current measurement range can be increased.

Claims (56)

1 . A current sensor, comprising: an input module, a high current detection module, a low current detection module, a switching module, and a circuit board, wherein

the input module comprises a differential copper bar and a current shunting copper bar connected in parallel, and a current to be measured flows perpendicularly to a cross section of the differential copper bar and the current shunting copper bar, and generates a magnetic field at the positions of the high current detection module and the low current detection module;

the high current detection module comprises a first magnetic induction module and a first signal output module, the first magnetic induction module is secured on the circuit board and placed in an internal gap of the input module, the first magnetic induction module at least comprises a first magnetic sensing unit and a second magnetic sensing unit therein, and the first magnetic sensing unit and the second magnetic sensing unit differentially sense the magnetic field of the input module, and form an output signal through the first signal output module; and

the low current detection module comprises a second magnetic induction module and a second signal output module, the second magnetic induction module is secured on the circuit board and placed outside the input module, the second magnetic induction module at least comprises a third magnetic sensing unit and a fourth magnetic sensing unit therein, and the third magnetic sensing unit and the fourth magnetic sensing unit differentially sense the magnetic field of the input module, and form an output signal through the second signal output module;

wherein the switching module selects to switch to the high current detection module or the low current detection module according to a range of the current to be measured; and the input module, the high current detection module, the low current detection module, and the switching module are electrically isolated from each other.

2 . The current sensor according to claim 1 , wherein the first magnetic sensing unit is located above the differential copper bar, and a sensitivity direction of the first magnetic sensing unit is the same as or opposite to a direction of the magnetic field generated by the differential copper bar at the first magnetic sensing unit, and is along a direction in a plane of the first magnetic induction module and perpendicular to a direction of the current to be measured; and

a sensitivity direction of the second magnetic sensing unit is the same as that of the first magnetic sensing unit, and a distance between the second magnetic sensing unit and the differential copper bar is greater than a distance between the first magnetic sensing unit and the differential copper bar.

3 . The current sensor according to claim 1 , wherein the differential copper bar is in a step shape near the first magnetic induction module, and at least comprises a first step and a second step;

the-first magnetic sensing unit is located above the first step, and the second magnetic sensing unit is located above the second step;

a sensitivity direction of the first magnetic sensing unit is the same as or opposite to a direction of a magnetic field generated by the differential copper bar at the first magnetic sensing unit, and is along a direction in a plane of the first magnetic induction module and perpendicular to a direction of the current to be measured; and

a sensitivity direction of the second magnetic sensing unit is the same as or opposite to a direction of the magnetic field generated by the differential copper bar at the second magnetic sensing unit, and is along a direction in a plane of the second magnetic induction module and perpendicular to a direction of the current to be measured.

4 . The current sensor according to claim 1 , wherein the first magnetic sensing unit and the second magnetic sensing unit in the first magnetic induction module are connected to form any one of a differential half-bridge structure, a differential full-bridge structure, a double push-pull half-bridge differential structure, and a double push-pull full-bridge differential structure;

the third magnetic sensing unit and the fourth magnetic sensing unit in the second magnetic induction module are connected to form any one of a differential half-bridge structure, a differential full-bridge structure, a double push-pull half-bridge differential structure, and a double push-pull full-bridge differential structure;

for the differential half-bridge structure, each magnetic sensing unit comprises a magnetoresistive bridge arm, and two magnetoresistive bridge arms in the same magnetic induction module are electrically differentiated together to form the differential half-bridge structure;

for the differential full-bridge structure, each magnetic sensing unit comprises two magnetoresistive bridge arms, two magnetoresistive bridge arms in the same magnetic sensing unit are located on two opposite bridge arms, two magnetoresistive bridge arms of different magnetic sensing units are located on two adjacent bridge arms to form the differential full-bridge structure, and an output signal of the magnetic induction module is a differential signal of the differential full-bridge structure;

for the double push-pull half-bridge differential structure, two magnetic sensing units in the same magnetic induction module both comprise two magnetoresistive bridge arms, two magnetoresistive bridge arms in each magnetic sensing unit have opposite sensitivity directions, two magnetoresistive bridge arms in the magnetic sensing unit are upper and lower bridge arms and form a push-pull half-bridge structure, sensitivity directions of the upper bridge arms in the two magnetic sensing units are the same and sensitivity directions of the lower bridge arms in the two magnetic sensing units are the same, two magnetic sensing units in the same magnetic induction module form the double push-pull half-bridge differential structure as a whole, and an output signal of the magnetic induction module is a differential signal of the double push-pull half-bridge differential structure;

for the double push-pull full-bridge differential structure, two magnetic sensing units in the same magnetic induction module both comprise four magnetoresistive bridge arms, four magnetoresistive bridge arms of the magnetic sensing unit form a push-pull full-bridge structure, sensitivity directions of two magnetic sensing units in the same magnetic induction module are the same, two magnetic sensing units in the same magnetic induction module form the double push-pull full-bridge differential structure as a whole, and an output signal of the magnetic induction module is a differential signal of the double push-pull full-bridge differential structure; and

the magnetoresistive bridge arm is formed by connecting one or more magnetoresistive sensitive components in series and parallel.

5 . The current sensor according to claim 1 , wherein the first signal output module and the second signal output module respectively comprise an open-loop signal conditioning circuit using an open-loop circuit or a closed-loop signal conditioning circuit using a closed-loop circuit and a feedback coil;

for the open-loop circuit, the first signal output module or the second signal output module uses the open-loop signal conditioning circuit to perform conditioning amplification, temperature compensation, and linearity correction on a differential signal of two magnetic sensing units in the module; the open-loop signal conditioning circuit is one of a printed circuit board (PCB)-level discrete component circuit or an application specific integrated circuit (ASIC);

for the closed-loop circuit, the first signal output module or the second signal output module uses the closed-loop signal conditioning circuit and the feedback coil to perform conditioning amplification, temperature compensation, and linearity correction on a differential signal of two magnetic sensing units in the module; the closed-loop signal conditioning circuit, the feedback coil, and a magnetic sensing unit in the high current detection module or the low current detection module form a closed-loop magnetic field feedback, a differential signal of two magnetic sensing units in the module is amplified, and then a feedback magnetic field is generated through the feedback coil to reversely offset a differential mode magnetic field; when dynamic balance of the magnetic field is reached, two magnetic sensing units in the module operate at equal common mode magnetic field operating points, and a feedback current of the feedback coil is sampled through a sampling resistor to form an output signal of the magnetic induction module;

the closed-loop signal conditioning circuit is one of a PCB-level discrete component circuit or an ASIC; and the feedback coil is integrated in the closed-loop signal conditioning circuit, the circuit board, the magnetic sensing unit, the ASIC, or the magnetic induction module.

6 . The current sensor according to claim 1 , wherein the third magnetic sensing unit and the fourth magnetic sensing unit in the second magnetic induction module are placed in any one of the following two ways:

(1) the third magnetic sensing unit is located above the input module, the fourth magnetic sensing unit is located below or on a side of the input module, and sensitivity directions of the third magnetic sensing unit and the fourth magnetic sensing unit are the same;

(2) the third magnetic sensing unit and the fourth magnetic sensing unit are located on a same side of the input module; the third magnetic sensing unit is located within a vertical projection coverage of the current shunting copper bar or differential copper bar closest to the third magnetic sensing unit, and a sensitivity direction of the third magnetic sensing unit is the same as or opposite to a direction of a magnetic field generated at a position of the third magnetic sensing unit by the current shunting copper bar or differential copper bar closest to the third magnetic sensing unit, and is along a direction in a plane of the second magnetic induction module and perpendicular to a direction of the current to be measured; and the fourth magnetic sensing unit is located outside the vertical projection coverage of the current shunting copper bar and the differential copper bar, and a sensitivity direction of the fourth magnetic sensing unit is the same as that of the third magnetic sensing unit.

7 . The current sensor according to claim 1 , further comprising: a third current detection module, the third current detection module comprising a third magnetic induction module and a third signal output module; and

the third magnetic induction module is composed of the first magnetic sensing unit or the second magnetic sensing unit in the first magnetic induction module and the third magnetic sensing unit or the fourth magnetic sensing unit in the second magnetic induction module, and two magnetic sensing units in the third magnetic induction module differentially sense the magnetic field of the input module, and form an output signal of the current sensor through the third signal output module.

8 . The current sensor according to claim 1 , wherein a number of current shunting copper bars is one or more, any current shunting copper bar is located above the first magnetic induction module or below the differential copper bar, and a vertical projection range of any current shunting copper bar covers the first magnetic sensing unit and the second magnetic sensing unit in the first magnetic induction module.

9 . A current sensor, comprising: an input module, a high current detection module, a low current detection module, a third current detection module, and a circuit board, wherein

the input module comprises two or more current shunting copper bars connected in parallel; a current to be measured flows perpendicularly to a cross section of the current shunting copper bars, and generates a magnetic field at the positions of the high current detection module and the low current detection module;

the high current detection module is located in an internal gap of the input module; the high current detection module comprises a first magnetic induction module and a first signal output module which are secured on the circuit board, and the first magnetic induction module comprises a first magnetic sensing unit; the first magnetic sensing unit senses the magnetic field of the input module, and forms an output signal of the current sensor through the first signal output module;

the low current detection module is located outside the input module; the low current detection module comprises a second magnetic induction module and a second signal output module which are secured on the circuit board, and the second magnetic induction module comprises a second magnetic sensing unit; and the second magnetic sensing unit senses the magnetic field of the input module, and forms an output signal of the current sensor through the second signal output module; and

the third current detection module comprises a third magnetic induction module and a third signal output module; and the third magnetic induction module is composed of the first magnetic sensing unit in the first magnetic induction module and the second magnetic sensing unit in the second magnetic induction module, and the first magnetic sensing unit and the second magnetic sensing unit in the third magnetic induction module differentially sense the magnetic field of the input module, and form an output signal of the current sensor through the third signal output module.

10 . The current sensor according to claim 9 , further comprising a switching module, wherein the switching module selects to switch to the high current detection module, the low current detection module, or the third current detection module according to a range of the current to be measured; and the input module, the high current detection module, the low current detection module, the third current detection module, and the switching module are electrically isolated from each other.

11 . The current sensor according to claim 9 , wherein the first magnetic sensing unit and the second magnetic sensing unit each comprise a giant magneto-impedance device with a same sensitivity direction.

12 . The current sensor according to claim 9 , wherein the two or more current shunting copper bars have rectangular cross sections.

13 . A current sensor, comprising: an input module, a high current detection module, a low current detection module, and a circuit board, wherein

the input module comprises a differential copper bar and a current shunting copper bar connected in parallel, and a current to be measured flows perpendicularly to a cross section of the differential copper bar and the current shunting copper bar, and generates a magnetic field at positions of the high current detection module and the low current detection module;

the high current detection module comprises a first magnetic induction module and a first signal output module, the first magnetic induction module is secured on the circuit board and placed in an internal gap of the input module, the first magnetic induction module at least comprises a first magnetic sensing unit and a second magnetic sensing unit therein, and the first magnetic sensing unit and the second magnetic sensing unit differentially sense the magnetic field of the input module, and form an output signal through the first signal output module;

the low current detection module comprises a second magnetic induction module and a second signal output module, the second magnetic induction module is secured on the circuit board and placed outside the input module, the second magnetic induction module at least comprises a third magnetic sensing unit and a fourth magnetic sensing unit therein, and the third magnetic sensing unit and the fourth magnetic sensing unit differentially sense the magnetic field of the input module, and form an output signal through the second signal output module;

wherein the differential copper bar is in a step shape near the first magnetic induction module, and at least comprises a first step and a second step; the first magnetic sensing unit is located above the first step, and the second magnetic sensing unit is located above the second step; a sensitivity direction of the first magnetic sensing unit is the same as or opposite to a direction of a magnetic field generated by the differential copper bar at the first magnetic sensing unit, and is along a direction in a plane of the first magnetic induction module and perpendicular to a direction of the current to be measured; and a sensitivity direction of the second magnetic sensing unit is the same as or opposite to a direction of a magnetic field generated by the differential copper bar at the second magnetic sensing unit, and is along a direction in a plane of the second magnetic induction module and perpendicular to a direction of the current to be measured.

14 . The current sensor according to claim 13 , further comprising: a switching module, wherein the switching module selects to switch to the high current detection module or the low current detection module according to a range of the current to be measured; and the input module, the high current detection module, the low current detection module, and the switching module are electrically isolated from each other.

15 . The current sensor according to claim 13 , wherein the first signal output module and the second signal output module respectively comprise an open-loop signal conditioning circuit using an open-loop circuit or a closed-loop signal conditioning circuit using a closed-loop circuit and a feedback coil;

for the open-loop circuit, the first signal output module or the second signal output module uses the open-loop signal conditioning circuit to perform conditioning amplification, temperature compensation, and linearity correction on a differential signal of two magnetic sensing units in the module; the open-loop signal conditioning circuit is one of a printed circuit board (PCB)-level discrete component circuit or an application specific integrated circuit (ASIC);

for the closed-loop circuit, the first signal output module or the second signal output module uses the closed-loop signal conditioning circuit and the feedback coil to perform conditioning amplification, temperature compensation, and linearity correction on a differential signal of two magnetic sensing units in the module; the closed-loop signal conditioning circuit, the feedback coil, and a magnetic sensing unit in the high current detection module or the low current detection module form a closed-loop magnetic field feedback, a differential signal of two magnetic sensing units in the module is amplified, and then a feedback magnetic field is generated through the feedback coil to reversely offset a differential mode magnetic field; when dynamic balance of the magnetic field is reached, two magnetic sensing units in the module operate at equal common mode magnetic field operating points, and a feedback current of the feedback coil is sampled through a sampling resistor to form an output signal of the magnetic induction module; and

the closed-loop signal conditioning circuit is one of a PCB-level discrete component circuit or an ASIC; and the feedback coil is integrated in the closed-loop signal conditioning circuit, the circuit board, the magnetic sensing unit, the ASIC, or the magnetic induction module.

16 . The current sensor according to claim 13 , further comprising:

a third current detection module, the third current detection module comprising a third magnetic induction module and a third signal output module; and

the third magnetic induction module is composed of the first magnetic sensing unit or the second magnetic sensing unit in the first magnetic induction module and the third magnetic sensing unit or the fourth magnetic sensing unit in the second magnetic induction module, and two magnetic sensing units in the third magnetic induction module differentially sense the magnetic field of the input module, and form an output signal of the current sensor through the third signal output module.

17 . The current sensor according to claim 13 , wherein:

the first magnetic sensing unit and the second magnetic sensing unit in the first magnetic induction module are connected to form any one of a differential half-bridge structure, a differential full-bridge structure, a double push-pull half-bridge differential structure, and a double push-pull full-bridge differential structure; and

the third magnetic sensing unit and the fourth magnetic sensing unit in the second magnetic induction module are connected to form any one of a differential half-bridge structure, a differential full-bridge structure, a double push-pull half-bridge differential structure, and a double push-pull full-bridge differential structure.

18 . The current sensor according to claim 13 , wherein the third magnetic sensing unit and the fourth magnetic sensing unit in the second magnetic induction module are placed in any one of the following two ways:

(1) the third magnetic sensing unit is located above the input module, the fourth magnetic sensing unit is located below or on a side of the input module, and sensitivity directions of the third magnetic sensing unit and the fourth magnetic sensing unit are the same; and

(2) the third magnetic sensing unit and the fourth magnetic sensing unit are located on a same side of the input module; the third magnetic sensing unit is located within a vertical projection coverage of the current shunting copper bar or differential copper bar closest to the third magnetic sensing unit, and a sensitivity direction of the third magnetic sensing unit is the same as or opposite to a direction of a magnetic field generated at a position of the third magnetic sensing unit by the current shunting copper bar or differential copper bar closest to the third magnetic sensing unit, and is along a direction in a plane of the second magnetic induction module and perpendicular to a direction of the current to be measured; and the fourth magnetic sensing unit is located outside the vertical projection coverage of the current shunting copper bar and the differential copper bar, and a sensitivity direction of the fourth magnetic sensing unit is the same as that of the third magnetic sensing unit.

19 . The current sensor according to claim 13 , wherein a number of current shunting copper bars is one or more, any current shunting copper bar is located above the first magnetic induction module or below the differential copper bar, and a vertical projection range of any current shunting copper bar covers the first magnetic sensing unit and the second magnetic sensing unit in the first magnetic induction module.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 24, 2024
From: LIU, MINGFENG; SHI, RAN; XUE, SONGSHENG
To: MULTIDIMENSION TECHNOLOGY CO., LTD.
Reel/Frame 067816/0831 →
Priority Claims (1)
CN 202111569964.4 · Dec 21, 2021 · national
Continuity (1)
Related Publication 20250164532A1 · May 22, 2025
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