IP Library Granted Patent US 9,274,535
Granted Patent B2
US 9,274,535 · App. 13/876,838 · Granted Mar 1, 2016

Current to voltage converter, arrangement comprising the converter and method for converting an input current to an output voltage

Inventor: Kjetil Zsolt Volent (Trondheim, NO)
Assignee: SIEMENS AKTIENGESELLSCHAFT
G05F1/46G01D21/00
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Quick Facts
Patent No.
US 9,274,535
App. No.
13/876,838
Granted
Mar 1, 2016
Kind
B2
Abstract

A converter for converting an input current to an output voltage may include: a first region; a second region galvanically separated from the first region; an input reference node in the first region, wherein the converter allows a flow of the input current through a device to the input reference node; a circuitry for generating, based on the input current, the output voltage relative to an output reference electric potential, the circuitry including a voltage transfer component for transferring the output voltage from the first region to the second region, wherein the voltage transfer component comprises a first circuit in the first region and a second circuit in the second region, wherein the first circuit is driven by a first electric supply voltage relative to a first supply reference potential; and an output terminal, located in the second region and connected to the second circuit, for outputting the output voltage.

Claims (48)

1. Converter for converting an input current to an output voltage, the converter comprising:

a first region;

a second region galvanically separated from the first region;

an input reference node in the first region, wherein the converter is configured to allow a flow of the input current through a device to the input reference node;

circuitry configured to generate, based on the input current, the output voltage relative to an output reference electric potential, wherein the circuitry comprises a voltage transfer component for transferring the output voltage from the first region to the second region, wherein the voltage transfer component comprises a first circuit in the first region and a second circuit in the second region, and wherein the first circuit is driven by a first electric supply voltage relative to a first supply reference potential;

an output terminal located in the second region and connected to the second circuit for outputting the output voltage;

an electric power provider for providing the first electric supply voltage relative to the first supply reference potential for driving the first circuit; and

a power input terminal in the second region, wherein the electric power provider is adapted to receive electrical energy via the power input terminal.

2. Converter of claim 1 , wherein the first supply reference potential is a ground potential.

3. Converter of claim 1 , wherein the electric power provider comprises a DC power provider.

4. Converter of claim 1 , wherein the electric power provider comprises a first power provider portion in the first region and a second power provider portion in the second region, wherein the first power provider portion is inductively or capacitively coupled to the second power provider portion.

5. Converter of claim 4 , wherein the second power provider portion is configured to receive the electrical energy via the power input terminal, and wherein the first power provider portion and the second power provider portion are configured to transfer the electrical energy from the second power provider portion to the first power provider portion.

6. Converter of claim 1 , wherein the second circuit is configured to receive electric power via the power input terminal, wherein the electric power is supplied employing a second electric supply voltage relative to a ground potential.

7. Converter of claim 1 , wherein the second circuit is inductively, optically, or capacitively coupled to the first circuit.

8. Converter of claim 1 , wherein the converter is adapted to supply electric energy to the device and convert the input current in a predetermined input current range between 0 mA and 20 mA, to an output voltage in a predetermined output voltage range between 0 V and 5 V, relative to a ground potential.

9. Converter of claim 1 , further comprising:

a first input terminal and a second input terminal for connecting the device between the first input terminal and the second input terminal, wherein the first input terminal and the second input terminal are located in the first region, and

wherein the first input terminal and the second input terminal allow a flow of the input current from the first input terminal through the device to the second input terminal and from the second input terminal to the input reference node.

10. Converter of claim 9 , further comprising:

a shunt resistor connected between the second input terminal and the input reference node, wherein the output voltage is based on a voltage drop across the shunt resistor upon flow of the input current through the shunt resistor.

11. Converter of claim 10 , further comprising:

a first amplifier configured to amplify the voltage drop to a preliminary output voltage, wherein the output voltage is based on the preliminary output voltage.

12. Converter of claim 11 , further comprising:

a second amplifier configured to generate the output voltage based on the preliminary output voltage, wherein the second amplifier is adapted to generate the output voltage such that the output voltage is zero, if the input current has a predetermined current value, and wherein the second amplifier is adapted to generate the output voltage to be proportional to a difference of the input current and the predetermined current value.

13. Arrangement, comprising:

a measuring device providing an electric current based on a measuring value of a physical quantity;

a converter for converting an input current to an output voltage, the converter comprising:

a first region;

a second region galvanically separated from the first region;

an input reference node in the first region, wherein the converter is configured to allow a flow of the input current through a device to the input reference node;

circuitry configured to generate, based on the input current, the output voltage relative to an output reference electric potential, wherein the circuitry comprises a voltage transfer component for transferring the output voltage from the first region to the second region, wherein the voltage transfer component comprises a first circuit in the first region and a second circuit in the second region, and wherein the first circuit is driven by a first electric supply voltage relative to a first supply reference potential; and

an output terminal located in the second region and connected to the second circuit for outputting the output voltage,

wherein the measuring device is connected between a first input terminal and a second input terminal of the converter, the first and second input terminals being located in the first region, and

wherein the first input terminal and the second input terminal allow a flow of the input current from the first input terminal through the device to the second input terminal and from the second input terminal to the input reference node; and

a control system for supplying electric energy to the converter via a power input terminal and receiving the output voltage from the converter via the output terminal.

14. The arrangement of claim 13 , wherein the converter further comprises:

a shunt resistor connected between the second input terminal and the input reference node, wherein the output voltage is based on a voltage drop across the shunt resistor upon flow of the input current through the shunt resistor.

15. The arrangement of claim 14 , wherein the converter further comprises:

a first amplifier configured to amplify the voltage drop to a preliminary output voltage, wherein the output voltage is based on the preliminary output voltage.

16. The arrangement of claim 15 , wherein the converter further comprises:

a second amplifier configured to generate the output voltage based on the preliminary output voltage, wherein the second amplifier is adapted to generate the output voltage such that the output voltage is zero, if the input current has a predetermined current value, and wherein the second amplifier is adapted to generate the output voltage to be proportional to a difference of the input current and the predetermined current value.

17. Converter for converting an input current to an output voltage, the converter comprising:

a first region;

a second region galvanically separated from the first region;

an input reference node in the first region, wherein the converter is configured to allow a flow of the input current through a device to the input reference node;

circuitry configured to generate, based on the input current, the output voltage relative to an output reference electric potential, wherein the circuitry comprises a voltage transfer component for transferring the output voltage from the first region to the second region, wherein the voltage transfer component comprises a first circuit in the first region and a second circuit in the second region, and wherein the first circuit is driven by a first electric supply voltage relative to a first supply reference potential;

an output terminal located in the second region and connected to the second circuit for outputting the output voltage;

wherein the converter is adapted to supply electric energy to the device and convert the input current in a predetermined input current range between 0 mA and 20 mA, to an output voltage in a predetermined output voltage range between 0 V and 5 V, relative to a ground potential.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 13, 2021
From: SIEMENS AKTIENGESELLSCHAFT
To: SIEMENS ENERGY AS
Reel/Frame 054975/0655 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 27, 2013
From: VOLENT, KJETIL ZSOLT
To: SIEMENS AS
Reel/Frame 030703/0486 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 27, 2013
From: SIEMENS AS
To: SIEMENS AKTIENGESELLSCHAFT
Reel/Frame 030703/0541 →
Priority Claims (1)
EP 10182045 · Sep 29, 2010 · regional
Continuity (1)
Related Publication 20130181694A1 · Jul 18, 2013