Systems and methods for generating and measuring electrical signals
The system integrates a digital-to-analog converter and measurement modules within a compact platform to address the limitations of SMUs, enabling efficient generation and measurement of multiple electrical signals with reduced complexity and cost.
Patent Information
- Application Number
- JP2023506003
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-07-27
- Filing Date
- 2021-07-26
- Publication Date
- 2026-01-16
- Estimated Expiration
- 2041-07-26
AI Technical Summary
Existing source measure units (SMUs) are limited in their ability to handle the number of signals required for applications like photonic integrated circuits, necessitating multiple devices that increase cost and complexity, and require significant space.
A system with a digital-to-analog converter module, buffer circuits, and measurement systems for each channel, allowing independent control and measurement of voltage and current, integrated into a compact platform for generating and measuring electrical signals.
Enables efficient, compact, and cost-effective generation and measurement of multiple electrical signals with unipolar, bipolar, and differential modes, reducing the need for multiple devices and simplifying control.
Smart Images

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Abstract
Description
[Technical Field]
[0001] Technical Field The present invention relates to a method and system for generating and measuring electrical signals. [Background technology]
[0002] background A source measure unit (SMU), also known as a source / measure unit, is an electronic device configured to simultaneously source and measure an electrical signal whose characteristics can be set or changed using the SMU's controls. SMUs are commonly used in industrial and laboratory environments to test electronic components and accurately monitor the current and voltage supplied to electrical circuits.
[0003] A typical SMU is a standalone benchtop device powered by either a mains supply or a battery and with one to four output ports. However, the number of signals required to source and measure a particular application exceeds the capacity of a typical SMU. For example, a photonic integrated circuit may contain dozens or even hundreds of active electronic elements with different power and sensing requirements.
[0004] Such applications require multiple SMUs, or if these are not available, a combination of multiple sensors and signal generators or power supplies, to separately source and measure the required number of electrical signals. However, these solutions typically involve higher costs and space requirements, making them resource-limited. Furthermore, the complexity of controlling multiple SMUs or multiple sensors, signal generators, and power supplies increases rapidly with the number of these devices.
[0005] It would be desirable to address or ameliorate one or more of the disadvantages or limitations associated with the prior art, or at least provide a useful alternative.
[0006] Reference in this specification to any prior publication (or information derived therefrom) or any known matter is not, and should not be construed as, an acknowledgment or admission, or any form of suggestion, that the prior publication (or information derived therefrom) or known matter forms part of the common general knowledge in the field of endeavor to which this specification pertains. Summary of the Invention [Means for solving the problem]
[0007] overview According to an exemplary aspect, a system for generating and measuring electrical signals is provided. The system includes a digital-to-analog converter module configured to generate one or more analog signals based on a control signal and one or more channels. Each channel includes an output terminal configured to be electrically connected to an electrical device, and a buffer circuit configured to receive one of the one or more analog signals and provide a voltage at the output terminal based on the voltage of the received analog signal, the buffer circuit being electrically connected to a current source and further configured to allow a current to flow between the current source and the output terminal. The system further includes a voltage measurement system, for each channel, configured to measure a voltage indicative of the voltage at the output terminal of the channel, and a current measurement system, for each channel, measuring a current flowing at the output terminal of the channel.
[0008] In certain embodiments, the digital-to-analog converter module is a voltage source digital-to-analog converter module configured to control the voltage of the one or more analog signals based on a digital control signal and a voltage or power signal received from the power source. In certain embodiments, the one or more analog signals are one or more voltage signals, the control signal is a first control signal, and the current source is a current source digital-to-analog converter module configured to generate one or more current signals based on a second control signal, and for each of one or more of the channels, the buffer circuit is configured to receive one of the one or more current signals and provide the current signal to an output terminal of the channel.
[0009] In certain embodiments, the digital-to-analog converter module is configured to control the polarity of one or more analog signals. In certain embodiments, the digital-to-analog converter module comprises a first terminal configured to receive a first voltage that is a reference voltage, a second terminal configured to receive a second voltage different from the reference voltage, and a third terminal. In certain embodiments, the system further comprises a switch module operably connected to the digital-to-analog converter module, the switch module being switchable between a first state in which the third terminal is electrically connected to the first terminal to receive the reference voltage and a second state in which the third terminal is electrically disconnected from the first terminal and configured to receive a third voltage, wherein the third voltage and the second voltage have opposite polarities.
[0010] In certain embodiments, for each of one or more of the channels, the buffer circuit is configured to enable the current source to source current to the output terminal when the electrical device draws current from the output terminal, and to enable the current source to receive current from the output terminal when the electrical device supplies current to the output terminal.
[0011] In certain embodiments, for each of one or more of the channels, the channel further comprises a current limiter configured to limit a flow of current between the current source and the output terminal. In certain embodiments, the current limiter is further configured to determine a current supplied to the output terminal by the current source, compare the determined current to a reference value, and limit the current supplied to the output terminal by the current source if the determined current is greater than the reference value. In certain embodiments, the current limiter is configured to determine the current supplied to the output terminal by the current source by measuring a voltage across a resistor electrically connected between the buffer circuit and the output terminal.
[0012] In certain embodiments, for each of one or more of the channels, the buffer circuit is configured to interrupt or block current flow between the digital-to-analog converter module and the output terminal. In certain embodiments, for each of one or more of the channels, the buffer circuit presents a higher impedance to the digital-to-analog converter module than it presents to the output terminal. In certain embodiments, for each of one or more of the channels, the buffer circuit presents a higher impedance to the digital-to-analog converter module than it presents to the current source.
[0013] In a particular embodiment, for each of one or more of the channels, the buffer circuit comprises a current source digital-to-analog converter configured to generate the current signal based on a further control signal.
[0014] In certain embodiments, for each of one or more of the channels, the buffer circuit comprises a buffer amplifier. In certain embodiments, the buffer amplifier is a voltage buffer. In certain embodiments, the buffer amplifier comprises an operational amplifier. In certain embodiments, the buffer amplifier comprises a voltage follower.
[0015] In certain embodiments, for each channel of one or more of the channels, the output terminal is a first output terminal, the channel further comprises a second output terminal configured to be electrically connected to the same electrical device as the first output terminal, the buffer circuit is configured to provide a differential voltage at the first output terminal and the second output terminal corresponding to a voltage of the received analog signal, and is further configured to allow a current to flow between the current source and the second output terminal. In certain embodiments, the buffer circuit comprises a single-ended-to-differential converter configured to supply a first voltage to the first output terminal and a second voltage to the second output terminal, the difference between the first voltage and the second voltage corresponding to the voltage of the received analog signal.
[0016] In a particular embodiment, the voltage measurement system is configured to measure, for each of one or more of said channels, a reduced voltage that is a fraction of the voltage at the output terminal of the channel, the reduced voltage being generated by a voltage divider.
[0017] In certain embodiments, the system further comprises a measurement reading processing system configured to receive, from the voltage measurement system, voltage data indicative of a measured voltage for each channel, receive, from the current measurement system, current data indicative of a measured current for each channel, determine, for each channel, a voltage at the output terminal based on the received voltage data, and determine, for each channel, a current flowing through the output terminal based on the received current data.
[0018] In certain embodiments, the voltage measurement system includes a voltage measurement analog-to-digital converter module configured to receive, from each channel, an analog voltage indicative of the voltage at the channel's output terminal, and to generate, for each channel, a voltage measurement signal representative of the analog voltage received from the channel, the voltage measurement signal being a digital signal. In certain embodiments, the voltage measurement analog-to-digital converter module is electrically connected to each channel through a voltage divider.
[0019] In certain embodiments, the current measurement system includes one or more current sensors, each configured to sense a current flowing through an output terminal of one of the one or more channels, and a current measurement analog-to-digital converter module configured to receive, from each current sensor, an analog signal indicative of the current sensed by the current sensor and to generate, for each channel, a current measurement signal representative of the analog signal received from the current sensor associated with the channel, wherein the current measurement signal is a digital signal.
[0020] In certain embodiments, the system further comprises a measurement reading processing system configured to receive a voltage measurement signal and a current measurement signal for each channel, determine for each channel a voltage at an output terminal of the channel based on the received voltage measurement signal, and determine for each channel a current flowing through the output terminal of the channel based on the received current measurement signal. In certain embodiments, the measurement reading processing system is configured to receive a voltage measurement signal and a current measurement signal for each channel based on the received current measurement signal. 2 C to communicate with the voltage measurement analog-to-digital converter module and the current measurement analog-to-digital converter module.
[0021] In certain embodiments, the system further comprises a communications module configured to receive, from the measurement reading processing system, the determined voltage value and the determined current value for each channel of the one or more channels, and to transmit the received voltage and current values to a remote receiver.
[0022] In certain embodiments, the system further comprises a configuration control processing system configured to generate one or more control signals, and the digital-to-analog converter module is configured to receive the control signals from the configuration control processing system. In certain embodiments, the configuration control processing system is a serial peripheral interface (SPI) or I / O. 2C. In certain embodiments, the configuration control processing system and the measurement reading processing system are the same processing system.
[0023] According to another exemplary aspect, a system for generating and measuring electrical signals is provided. The system includes a voltage source digital-to-analog converter module configured to generate one or more voltage signals based on a first control signal, a current source digital-to-analog converter module configured to generate one or more current signals based on a second control signal, and one or more channels. Each channel includes an output terminal configured to be electrically connected to an electrical device, and a buffer circuit configured to receive one of the one or more voltage signals and one of the one or more current signals and provide the received voltage signal and the received current signal to the output terminal. The system further includes a voltage measurement system configured to measure, for each channel, a voltage indicative of a voltage at the output terminal of the channel, and a current measurement system for each channel to measure a current flowing at the output terminal of the channel.
[0024] In certain embodiments, for at least one of the one or more of the channels, the buffer circuit is configured to amplify the received current signal.
[0025] According to another exemplary aspect, a system for generating and measuring electrical signals is provided, the system including one or more current sources configured to generate one or more current signals based on a control signal, one or more channels, each channel having an output terminal configured to be electrically connected to an electrical device, each channel configured to receive one of the one or more current signals and provide a current signal to the channel's output terminal, a voltage measurement system configured, for each channel, to measure a voltage indicative of a voltage at the channel's output terminal, and a current measurement system configured, for each channel, to measure a current flowing through the channel's output terminal.
[0026] In certain embodiments, the one or more current sources form part of a current source digital-to-analog converter module, hi certain embodiments, each current source is configured to control the current of one or more current signals based on a control signal and / or power received from a power source.
[0027] In certain embodiments, any of the aforementioned systems is a source-measure unit.
[0028] According to another exemplary aspect, a system for monitoring electrical consumption is provided, the system comprising one or more systems for generating and measuring electrical signals as described above, and a data center configured to receive data representing voltages and currents determined by the voltage measurement system and the current measurement system of each of the one or more systems for generating and measuring electrical signals.
[0029] According to another exemplary aspect, there is provided an electricity meter comprising: a system for generating and measuring electrical signals as described above; a switch module configured to electrically connect the system for generating and measuring electrical signals to a power source to power active components of the system for generating and measuring electrical signals; and a processing system configured to receive data representing voltages and currents determined by the voltage measurement system and the current measurement system of the system for generating and measuring electrical signals, and to operate a display device to display the received data.
[0030] According to another exemplary aspect, a system for monitoring a plurality of independent signal generators is provided, the system comprising: a plurality of systems for generating and measuring electrical signals as described above; a power distribution unit configured to receive power from a power source and distribute the received power to each of the plurality of systems for generating and measuring electrical signals; and a processing system configured to receive data representing the voltage and current determined by the voltage measurement system and the current measurement system of each of the plurality of systems for generating and measuring electrical signals and to control operating parameters of each of the plurality of systems for generating and measuring electrical signals.
[0031] According to another exemplary aspect, a method for generating and measuring electrical signals is provided, the method including generating one or more voltage signals based on a first control signal, generating one or more current signals based on a second control signal, providing, for each voltage signal and each current signal, the voltage signal and the current signal through a buffer circuit of one or more buffer circuits to an output terminal of one or more output terminals, measuring, for each output terminal, a voltage indicative of the voltage at the output terminal, and measuring, for each output terminal, a current indicative of a flow through the output terminal.
[0032] In certain embodiments, each buffer circuit presents a higher impedance to the voltage signals than it presents to the current signals. In certain embodiments, the method further includes amplifying one or more of the current signals.
[0033] According to another exemplary aspect, there is provided a source-measure system comprising one or more processing systems configured to generate one or more control signals, and one or more digital-to-analog converters and analog-to-digital converters operably coupled to the one or more processing systems, wherein the source-measure units are configured to receive one of the one or more control signals, measure electrical signal inputs and outputs, and generate a plurality of output electrical signals using the received control signals.
[0034] In certain embodiments, the source measure unit includes a central data processing unit, digital-to-analog and analog-to-digital converters, and sensors configured to convert the accumulated electrical signals. In certain embodiments, the control signals are analog signals or digital signals. In certain embodiments, the digital-to-analog converters have multi-range outputs, and the multiple output signals are analog signals having unipolar, bipolar, or differential mode configurations.
[0035] According to another exemplary aspect, a source-measure system is provided. The source-measure system includes one or more processing systems configured to measure, analyze, and generate electrical signals. The one or more processing systems are configured to communicate and accumulate reading data and also configure output signal generation. The source-measure units are configured to provide and read multiple outputs, including bipolar, unipolar, and differential electrical signals.
[0036] BRIEF DESCRIPTION OF THE DRAWINGS Some embodiments of the present invention will now be described, by way of example only, with reference to the accompanying drawings, in which: [Brief explanation of the drawings]
[0037] [Figure 1] FIG. 1 is a diagram of an exemplary system for generating and measuring an electrical signal having a single-ended output. [Figure 2] FIG. 1 is a diagram of another exemplary system for generating and measuring an electrical signal having a differential output. [Figure 3] FIG. 10 is a diagram of an exemplary connection configuration for supplying unipolar power to a digital-to-analog converter module. [Figure 4] FIG. 10 is a diagram of an exemplary connection configuration for supplying bipolar power to a digital-to-analog converter module. [Figure 5] FIG. 2 is a diagram of another exemplary system for generating and measuring an electrical signal. [Figure 6] FIG. 2 is a diagram of another exemplary system for generating and measuring an electrical signal. [Figure 7] FIG. 2 is a diagram of another exemplary system for generating and measuring an electrical signal. [Figure 8] FIG. 2 is a diagram of another exemplary system for generating and measuring an electrical signal. [Figure 9] FIG. 2 is a diagram of another exemplary system for generating and measuring an electrical signal. [Figure 10] FIG. 1 is a diagram of an exemplary system for monitoring power consumption. [Figure 11] 1 is a diagram of an exemplary electricity meter. [Figure 12] FIG. 1 is a diagram of an exemplary system for monitoring multiple independent source measure units. [Figure 13] 1 is a flow diagram of an exemplary method for generating and measuring an electrical signal. DETAILED DESCRIPTION OF THE INVENTION
[0038] Detailed Description Described herein are systems and methods for providing, measuring, and / or controlling one or more electrical signals.
[0039] An embodiment of the present invention provides a system, such as a source-measure unit or source / measure unit (SMU), for generating and measuring electrical signals. The system includes a digital-to-analog converter (DAC) module configured to generate one or more analog or electrical signals based on a control signal, such as a digital control signal. The system further includes one or more channels, which may be known as power conditioning channels or power channels. Each channel includes an output terminal or load terminal configured to be electrically connected to an electrical device and a buffer circuit. The buffer circuit of the channel is configured to receive an analog signal of the one or more analog signals and provide a voltage and / or current to the output terminal that may be based on the voltage and / or current of the received analog signal. The buffer circuit of the channel may further be configured to be electrically connected to a power source, such as a current source, to amplify, boost, complement, or otherwise control the voltage and / or current provided by the buffer circuit to the channel's output terminal. The system further includes a voltage measurement system or device and a current measurement system or device. The voltage measurement system is configured to measure, for each channel, a voltage indicative of the voltage at the channel's output terminal. The current measurement system is configured to measure, for each channel, a current flowing through the channel's output terminal.
[0040] A channel may be an electrical circuit in which the electrical characteristics (e.g., voltage and / or current) of an analog signal are regulated, controlled, or adjusted. Each channel (including its respective components) can operate independently of other channels. Thus, the voltage and / or current provided at the output terminal of a channel can be controlled independently of the voltage and / or current provided at the output terminals of other channels in the system.
[0041] Each channel may include one or more output terminals configured to be electrically connected to an electrical device, such as an electrical load or a device under test. Accordingly, each output terminal may include one or more electrical connectors, ports, or pins. The electrical device may be an active or passive device. Each output terminal is configured to transfer voltage and / or current between the channel and the electrical device connected to it.
[0042] Each buffer circuit can provide electrical impedance transformation to allow voltages and currents generated by the system to drive or power electrical devices connected to the output terminals. Each buffer circuit can present a high impedance to an input voltage signal and a low output impedance. Each buffer circuit can also present a low impedance to an input current signal. In some examples, the impedance of the buffer circuit isolates or separates the input stage from the output stage of the system. Exemplary buffer circuits include, but are not limited to, a buffer amplifier, a voltage buffer, a current buffer, and a current source DAC (e.g., the LTC2662).
[0043] Each control signal may be a digital signal. Each analog signal may be an electrical signal including a voltage and / or a current. A voltage signal may be an analog signal whose voltage value can be set, predetermined, or controlled. A current signal may be an analog signal whose current value can be set, predetermined, or controlled. The voltage and / or current of each analog signal may vary over time or may be constant.
[0044] The voltage and current measured by the voltage and current measurement systems, respectively, may indicate or represent the voltage or current at the output terminal of the channel (i.e., an indirect measurement by measuring a voltage or current that has a known relationship to the voltage or current at the output terminal), or in other examples, may be the voltage or current at the output terminal (i.e., a direct measurement). The voltage measurement system and current measurement system may enable real-time determination of the voltage and current provided by each output terminal or channel to an electrical device connected to it.
[0045] Systems for generating and measuring electrical signals can be compact and can provide a wide signal output range. In some examples, the systems are integrated systems configured to output unipolar, bipolar, and / or differential mode power ranges within the same platform using digital control or with software programming. In some examples, the systems provide integrated individual digital and analog current reading outputs and can be configured with any type of sensor.
[0046] Thus, the system for generating and measuring electrical signals can function as a power supply (providing voltage and current) and / or signal generator (providing time-varying voltage and / or current) with multi-range capabilities, including unipolar, bipolar, single-ended, and differential outputs, controllable through software. The type of signal (e.g., sawtooth, pulse, sine wave) and output range provided to each output terminal of the system can be controlled through software, such as a processing system. Examples of bipolar and unipolar ranges for each output terminal of the system include, but are not limited to, ±2.5 V, ±5 V, ±10 V, ±20 V, 0 V to 5 V, 0 V to 10 V, 0 V to 20 V, or 0 V to 40 V, and differential output mode.
[0047]
[0010] Embodiments of the present invention further provide an SMU comprising one or more DAC circuits, a first power source configured to generate a first power level for the processing system, and a second power source configured to generate a second power level for the one or more buffer circuits. The SMU further comprises one or more sensors operably coupled to one or more analog-to-digital converter (ADC) circuits. Each DAC circuit and each ADC circuit is configured to receive one of the one or more control signals and a portion of a buffer power input and a processing power input.
[0048] Each DAC circuit and each ADC circuit can include a module configured to convert a control signal into a plurality of intermediate signals. The control signal may be a digital signal or an analog signal. In some examples, the plurality of intermediate signals are analog signals. In some examples, the SMU further includes a switching module configured to route each intermediate signal of the plurality of intermediate signals to one of the plurality of signal conditioners. In some examples, the processing system is further configured to monitor a plurality of output electrical signals at the one or more digital-to-analog converter outputs and the voltage divider output, and adjust operating parameters of the one or more digital-to-analog converters to modify values of each of the plurality of output electrical signals. In some examples, the SMU further includes a current limiter circuit configured to receive an additional portion of power from a second power source. In some examples, the SMU further includes a memory configured to store a boot loader for the processing system. In some examples, the memory is external to the processing system. In some examples, the first power source is a unipolar DC power supply. In some examples, the second power source is a bipolar DC power supply. In some examples, the first power source and / or the second power source is one of a battery, a fuel cell, and a solar cell. In some examples, the output channels of the SMU are spatially arranged into a bipolar, unipolar, or differential signal output.
[0049]
[0009] Embodiments of the present invention further provide an SMU system comprising a multi-channel DAC, a first power source configured to generate a first power level for a processing system, and a second power source configured to generate a second power level for one or more buffer circuits. The SMU system further comprises one or more sensors operably coupled to one or more analog-to-digital converter (ADC) circuits. Each DAC circuit and each ADC circuit is configured to receive one of the one or more control signals and a portion of the buffer power input and the processing power input. The SMU system further comprises a programming device in communication with the processing system, the programming device configured to set operational settings of the processing system. In some examples, the first power source and / or the second power source is an AC power source, and the SMU system further comprises an AC-DC converter configured to convert the input power from AC power to unipolar or bipolar DC power before providing the input power to the SMU system.
[0050] In some examples, the SMU further comprises a sensor operably coupled to the analog-to-digital converter, the sensor configured to measure an environmental characteristic of an environment proximate the source measure unit and provide a signal indicative of the measured environmental characteristic to the processing system. In particular embodiments, the processing system is further configured to adjust operating parameters of the one or more SMUs in response to receiving the signal indicative of the measured environmental characteristic to modify values of the respective plurality of output electrical signals. In some examples, the sensor is powered by a power supply shared with the processor power input. In some examples, the sensor is one of a current sensor, a voltage sensor, a power sensor, an infrared sensor, a temperature sensor, a humidity sensor, and a speed sensor.
[0051] It will be understood that the term "processing system" can refer to any electronic processing device or system, or computing device or system, or combination thereof (e.g., a computer, web server, smartphone, laptop, microcontroller, etc.), and can include a cloud computing system. A processing system may also be a distributed system. Generally, processing / computing systems can include one or more processors (e.g., CPUs, GPUs), memory components, and input / output interfaces connected by at least one bus. They can further include input / output devices (e.g., keyboards, displays, etc.). It will also be understood that processing / computing systems are typically configured to execute instructions stored in memory and process data (i.e., they are programmable via software to perform operations on data).
[0052] FIG. 1 shows an exemplary system 100 for generating and measuring electrical signals. The system 100 includes a voltage output or voltage source DAC module 110 configured to generate one or more voltages or voltage signals based on a control signal.
[0053] The DAC module 110 may include one or more input terminals or channels for receiving one or more control signals and one or more output terminals or channels for outputting one or more voltage signals. The DAC module 110 may be configured to generate one voltage signal or multiple voltage signals, such as 4, 8, 16, or any other number, and therefore may have a corresponding number of output terminals. The DAC module 110 may include one or more DACs. Each DAC of the DAC module 110 may be a single-channel or multi-channel DAC.
[0054] Each voltage signal may be an analog signal having a voltage, and in some examples, a current. The control signal may be a digital signal. The DAC module 110 may be configured to receive or obtain the control signal from the processing system 120 of the system 100. Thus, the DAC module 110 may enable digitally controlled adjustment of one or more analog voltages.
[0055] The voltage of each voltage signal may depend, at least in part, on a control signal. The voltage of each voltage signal may further depend, at least in part, on a voltage supplied to the DAC module 110 by a power supply (not shown) electrically connected to the DAC module 110. Thus, the voltage of each voltage signal may be controlled via a control signal and / or via a power supply voltage.
[0056] Each voltage signal can be controllable independently of the other voltage signals (e.g., DAC module 110 can include a multiplexer to allow a control signal to select one or more voltage signals to control.) In other examples, DAC module 110 is configured to generate one or more voltages or voltage signals based on one or more control signals.
[0057] The output voltage range or span of DAC module 110 may be software configurable or electronically controllable, for example, through a second digital control signal received or obtained from processing system 120. For example, the output voltage range of DAC module 110 may be switchable between a first range ranging from 0 V to 5 V, a second range ranging from 0 V to 10 V, and a third range ranging from 0 V to 20 V. Each voltage range may have the same or similar resolution, such as 16 bits.
[0058] The voltage signals generated by the DAC module 110 may be either positive or negative signals (i.e., signals having positive or negative voltages). The DAC module 110 may further be configured to control the polarity of one or more voltage signals. The DAC module 110 may be configured to be supplied with a reference voltage (e.g., ground voltage), a positive voltage higher than the reference voltage, and a negative voltage lower than the reference voltage. The voltages may be generated by a power supply, such as a bipolar power supply. In another example, the DAC module 110 is configured to be supplied with either a positive voltage or a negative voltage.
[0059] The voltage regulator 130 may be electrically connected to the power input terminals of the DAC module 110 (e.g., to the positive supply terminal and the reference terminal) to reduce fluctuations in the power or voltage supplied to the DAC module 110 and, therefore, in the voltage of one or more voltage signals generated by the DAC module 110.
[0060] In some examples, the DAC module 110 can be configured to switch between unipolar and bipolar operation without having to manually change its connection to the power source, as described below with reference to Figures 3 and 4.
[0061] System 100 further comprises one or more channels. For purposes of illustration, only channel 140, comprising buffer circuit 142 and output terminal 150, is shown in FIG. 1, but it should be understood that any description made with respect to channel 140 or its components may also apply to each of the other channels and their components in system 100. Each channel comprises a buffer circuit, such as buffer circuit 142, and an output terminal, such as output terminal 150.
[0062] In some examples, a separate channel may be provided for and associated with each voltage signal generated by DAC module 110 such that there are as many channels as there are voltage signals. In other examples, system 100 may include any number of channels.
[0063] The buffer circuit 142 is a voltage buffer including an operational amplifier (opamp) 144 with a voltage follower architecture, also known as a unity-gain buffer amplifier. A first input terminal of the buffer circuit 142, corresponding to a non-inverting input terminal of the opamp 144, is electrically connected to the DAC module 110 to receive or acquire one of the voltage signals generated by the DAC module 110. An output terminal of the buffer circuit 142, corresponding to an output terminal of the opamp 144, is electrically connected to an output terminal 150. The buffer circuit 142 further includes two power supply terminals (VDD and VSS) configured to be electrically connected to a current source (not shown).
[0064] In some examples, the current source may form part of a power supply, such as the same power supply or a different power supply as the power supply that powers the DAC module 110. In other examples, the current source forms part of a current-output digital-to-analog converter. The buffer circuits of two or more channels of the system 100 may be configured to be electrically connected to the same current source or different current sources.
[0065] Buffer circuit 142 is configured to provide a voltage at output terminal 150 that is based on or dependent on the voltage of the voltage signal received by buffer circuit 142 from DAC module 110. Because buffer circuit 142 is a unity-gain buffer amplifier, the voltage provided at output terminal 150 corresponds to or is similar to the voltage of the received voltage signal (any discrepancy is primarily due to voltage drops across components connected between operational amplifier 144 and output terminal 150, as described below). In other examples, buffer circuit 142 comprises any other type of voltage buffer amplifier, including a voltage buffer that amplifies or otherwise alters an input voltage.
[0066] It should be understood that a change in the voltage of the voltage signal received by buffer circuit 142 may result in a corresponding change in the voltage provided by buffer circuit 142 to output terminal 150. Because the voltage signal received by buffer circuit 142 may be controllable through a power supply connected to DAC module 110 (in addition to the control signal), the voltage provided to output terminal 150 may also be said to be controllable through a power supply connected to DAC module 110. Thus, in some examples, the voltage output by a channel of system 100 may be controlled or varied, at least in part, through the power supply input to system 100.
[0067] The value of the voltage at output terminal 150 is specified with reference to the value of the voltage at reference output terminal 152. System 100 may include one or more reference terminals, e.g., one reference terminal for each channel. Each reference terminal may be configured to provide the same reference (e.g., ground) voltage.
[0068] The voltage signal received by buffer circuit 142 is received by the non-inverting input terminal of operational amplifier 144, so that the polarity of the voltage provided by buffer circuit 142 to output terminal 150 corresponds to the polarity of the received voltage signal. In other examples, buffer circuit 142 is configured to invert the polarity of the received voltage signal.
[0069] Buffer circuit 142 is further configured to allow current to flow between the current source and output terminal 150. It should be understood that the direction and value of the current flow may depend on the voltage at output terminal 150 and / or the electrical device electrically connected to output terminal 150 (and reference output terminal 152). When an electrical device connected to output terminal 150 draws current from output terminal 150, buffer circuit 142 may be configured to allow current to flow from the current source to output terminal 150 (i.e., the current source sources or delivers current). When an electrical device supplies current to output terminal 150, buffer circuit 142 may be configured to allow current to flow from output terminal 150 to the current source (i.e., the current source receives or absorbs current). Thus, a current source connected to buffer circuit 142 may function as both a current source and a current sink.
[0070] Due to the electrical characteristics of the operational amplifier 144, the buffer circuit 142 has a high input impedance (i.e., the impedance through the non-inverting terminal of the operational amplifier 144) and a low output impedance (i.e., the impedance through the output terminal of the operational amplifier 144). That is, the buffer circuit 142 provides or presents a higher impedance to the DAC module 110 than the impedance to an electrical device connected to the output terminal 150, providing or increasing isolation between the DAC module 110 and the output terminal 150. In some examples, the buffer circuit 142 is configured to interrupt, impede, or block the flow of current between the DAC module 110 and the output terminal 150.
[0071] Furthermore, because the current supplied to the electrical device connected to output terminal 150 is provided by a current source, system 100 can supply more current to the electrical device than would be possible if the electrical device were connected directly to DAC module 110. This is because one or more DACs forming part of DAC module 110 may be more limited than the current source in the amount of current they can supply.
[0072] Each channel may further comprise a current limiter configured to limit or restrict current flow between the current source and the output terminal of the channel. One or more current limiters may be operatively connected to each buffer circuit.
[0073] In the illustrated example, the current limiter is included in the same integrated circuit as the operational amplifier 144. Such a configuration is provided, for example, by the Texas Instruments OPA548 series operational amplifiers.
[0074] The current limiter may be configured to determine or sense the current flowing between the buffer circuit 142 and the output terminal 150. The current limiter may do so by measuring the voltage across a resistor 146 (e.g., a shunt resistor) electrically connected in series between the buffer circuit 142 and the output terminal 150. In some examples, the resistor 146 is a variable resistor. One terminal of the resistor 146 is electrically connected to pin A2 of the integrated circuit of the operational amplifier 144, while the other terminal of the resistor 146 is electrically connected to pin A3. Pins A2 and A3 are configured to measure or sense the voltage they receive, allowing the voltage across the resistor 146, and therefore the current flowing therethrough, to be determined. The current limiter may then be configured to compare the determined current with a reference value and limit the current supplied by the buffer circuit 142 if the determined current is greater than, or in some examples, equal to, the reference value. The reference value may correspond to the voltage supplied by the DAC module 110 to pin A1 of the integrated circuit of the operational amplifier 144. In some examples, the current limiter limits the current if the voltage across the resistor 146 exceeds 10% of the control voltage applied to pin A1.
[0075] The system 100 further comprises a voltage measurement system or module 160 configured to determine or measure, for each channel, a voltage indicative of the voltage at the output terminal of the channel.
[0076] The voltage measurement system 160 includes a voltage measurement (or first) analog-to-digital converter (ADC) module 162. The ADC module 162 includes one or more input terminals for receiving analog signals and one or more output terminals for outputting digital signals based on the received analog signals. The ADC module 162 may include one or more ADCs. Each ADC in the ADC module 162 may be a single-channel or multi-channel ADC.
[0077] Each input terminal of ADC module 162 is electrically connected to a channel of system 100. The illustrated example shows the input terminal of ADC module 162 electrically connected to the output terminal of buffer circuit 142. In other examples, each input terminal of ADC module 162 is electrically connected to a channel of system 100 at any other point, including an input terminal of the channel's buffer circuit.
[0078] ADC module 162 connects to channel 140 through a voltage divider 164, which includes two resistors connected in series. In another example, a voltage divider is any circuit that generates an output voltage that is a fraction or portion of its input voltage. In this way, the voltage received by the input terminal of ADC module 162 is a small fraction or portion of the voltage output by buffer circuit 142.
[0079] The ADC module 162 is configured to receive an analog voltage from each channel to which it is connected and to generate one or more voltage measurement signals based on or representative of each received analog voltage. Each voltage measurement signal output by the ADC module 162 may be a digital signal. The analog voltage received by the ADC module 162 is related to or indicative of the voltage at the output terminal of the system 100. For example, if the voltage divider 164 includes two resistors with the same resistance, the analog voltage received by the ADC module is approximately half the voltage at the output terminal 150. By reducing the voltage to be determined before input to the ADC module 162 (e.g., via a voltage divider), the range of voltages that can be determined through the ADC module 162 is expanded.
[0080] Thus, the use of a voltage divider can enable voltage measurement system 160 to measure voltages that exceed the input voltage range of ADC module 162. For example, voltage measurement system 160 may be configured to read voltages having a magnitude between 0V and 40V when the input voltage range of ADC module 162 is between 0V and 20V. The voltage measurement signal output by ADC module 162 may then be processed to recover or determine the value of the voltage before it was reduced by the voltage divider, for example. For example, if voltage divider 164 halves the voltage output by buffer circuit 142, the value indicated by the voltage measurement signal may be doubled to determine the voltage being output by the buffer circuit.
[0081] The system 100 further comprises, for each channel, a current measurement system or module 170 configured to determine or measure the current flowing through the output terminal of the channel.
[0082] Current measurement system 170 includes multiple current sensors. Each current sensor is configured to sense a current flowing through an output terminal of a channel of system 100 and generate an analog signal (e.g., an analog voltage) related to or indicative of the sensed current. Channel 140 includes current sensor 172 electrically connected in series between buffer circuit 142 and output terminal 150. Other current sensors may be similarly arranged and configured in other channels of system 100. In other examples, each current sensor may be connected to any other point on the channel to sense the current flowing through the output terminal of the channel.
[0083] The current measurement system 170 includes a current measurement (or second) ADC module 174. The ADC module 174 includes one or more input terminals for receiving analog signals and one or more output terminals for outputting digital signals based on the received analog signals. The ADC module 174 may include one or more ADCs. Each ADC in the ADC module 174 may be a single-channel or multi-channel ADC.
[0084] Each input terminal of ADC module 174 is electrically connected to a current sensor. The illustrated example shows one of the input terminals of ADC module 174 electrically connected to current sensor 172. ADC module 174 is configured to receive or acquire from each current sensor to which it is connected an analog signal (e.g., an analog voltage) related to or indicative of the current sensed by the current sensor, and to generate one or more current measurement signals based on or indicative of the analog signal received from the current sensor. Each current measurement signal output by ADC module 174 may be a digital signal.
[0085] The processing system 120 may be further configured to communicate with and / or control the DAC module 110, the ADC module 162, and / or the ADC module 174. The processing system 120 may be configured to communicate with an SPI or I / O 2C, allowing processing system 120 to simultaneously control or read multiple channels (eg, up to 16 channels) of each module.
[0086] Processing system 120 may be further configured to receive or obtain a voltage measurement signal for each channel of system 100 from ADC module 162 and, based on the channel's voltage measurement signal, determine or calculate a voltage to be provided by the buffer circuit to an output terminal of the channel of system 100. Similarly, processing system 120 may be configured to receive or obtain a voltage measurement signal for each channel of system 100 from ADC module 174 and, based on the channel's current measurement signal, determine or calculate a current flowing through the channel's output terminal.
[0087] Processing system 120 may be further configured to allow a user to operate or communicate with system 100. For example, a user may connect to processing system 120 through an Ethernet connection, a USB connection, or any other communication interface. In some examples, processing system 120 is configured to execute programs or instructions provided by a user-supplied computer program (e.g., a Python program). In some examples, processing system 120 operates a graphical user interface (GUI) that is displayed on a display device. The GUI may allow data (such as measurement data from voltage and current measurement systems 160 and 170) to be displayed to the user. The GUI may further allow the user to input commands to operate system 100 and / or display voltage values, current values, or any other parameters of system 100. For example, commands entered by a user into the GUI may be converted into SPI commands and sent by processing system 120 to DAC module 110, while SPI data received from ADC module 162 or ADC module 174 may be sent by processing system 120 to the GUI. In some examples, the processing system 120 includes a single-board computer.
[0088] System 100 further includes a housing 180 enclosing DAC module 110, processing system 120, voltage regulator 130, channel 140 (and other channels of system 100), voltage measurement system 160, and current measurement system 170. The electrical connectors for each output terminal of system 100 may be exposed or accessible from the exterior of housing 180 to allow electrical devices to connect thereto. In other examples, housing 180 may enclose only some of the listed components of system 100. For example, processing system 120 may be relocated outside of housing 180 while still being able to communicate with and / or control modules located inside housing 180.
[0089] Housing 180 may be disposable or may be mountable within an electrical equipment rack, such as an electrical equipment rack configured to house multiple electrical components. In some examples, system 100 is a stand-alone benchtop device.
[0090] FIG. 2 shows another exemplary system 200 for generating and measuring electrical signals. System 200 is similar to system 100 of FIG. 1, but further includes a channel 210 with a buffer circuit 220 configured to provide a differential voltage to a first (or positive) output terminal 232 and a second (or negative) output terminal 234 of the channel 210.
[0091] 2, it should be understood that system 200 may include any number of channels, such as one or more, configured to provide a differential voltage to two output terminals, and any description made with respect to channel 210 or its components may also apply to each of the other channels of system 200 that are configured to output a differential voltage. In some examples, system 200 includes one or more channels (such as channel 210) that are configured to output a differential voltage and one or more channels (such as channel 140 in FIG. 1) that are configured to output a single-ended voltage.
[0092] The buffer circuit 220 is a single-ended-to-differential converter including a first operational amplifier 222 and a second operational amplifier 224 electrically connected to each other through a resistor network or configuration. A first input terminal of the buffer circuit 220, corresponding to the non-inverting input terminal of the operational amplifier 222, is electrically connected to the DAC module 110 to receive or acquire one of the voltage signals generated by the DAC module 110. A first output terminal of the buffer circuit 220, corresponding to the output terminal of the operational amplifier 222, is electrically connected to an output terminal 232. A second output terminal of the buffer circuit 220, corresponding to the output terminal of the operational amplifier 224, is electrically connected to an output terminal 234. Each of the operational amplifiers 222 and 224 further includes two power supply terminals (VDD and VSS) configured to be electrically connected to a current source (not shown). Both operational amplifiers may be connected to the same current source or different current sources.
[0093] The operational amplifier 222 is configured to provide a first voltage at the output terminal 232, while the operational amplifier 224 is configured to provide a second voltage at the output terminal 234. The first and second voltages output by the buffer circuit 220 are based on or depend on the voltage of the voltage signal received by the buffer circuit 220 from the DAC module 110. The symmetry of the voltages output by the operational amplifiers 222 and 224 may depend on the values of the resistors Ra and Rb. Furthermore, the single-ended to differential gain of the buffer circuit may be expressed as 2×R2 / R1, such that R1 has twice the resistance of R2 to obtain unity gain.
[0094] In some examples, the values of resistors R1, R2, Ra, and Rb are set so that the first and second voltages output by buffer circuit 220 have opposite polarities and equal magnitudes. The difference between the two voltages may correspond to or be similar to the voltage of the voltage signal received by buffer circuit 220. For example, if the voltage signal input to buffer circuit 220 has a voltage of 10 V, the first output voltage of buffer circuit 220 is approximately +5 V and the second output voltage of buffer circuit 220 is approximately −5 V. In other examples, the two output voltages of buffer circuit 220 may have opposite polarities but different magnitudes.
[0095] The differential signaling architecture provided by buffer circuit 220, in which the output voltages are not referenced to a common ground, can reduce or eliminate noise between channels and provide better noise rejection. Noise between the two voltages output by each channel can be filtered out by common-mode rejection.
[0096] Buffer circuit 220 is further configured to allow current to flow between current sources connected to operational amplifiers 222 and 224 and output terminals 232 and 234. Output terminals 232 and 234 may be configured to be connected to the same electrical device to form a complete circuit such that one of output terminals 232 and 234 supplies current to the electrical device while the other of output terminals 232 and 234 draws current from the electrical device.
[0097] Channel 210 further comprises two current limiters, one for each of operational amplifiers 222 and 224, configured to limit or restrict the current flowing between a current source connected to buffer circuit 220 and output terminals 232 and 234. Each current limiter may be configured to determine or sense the current flowing between buffer circuit 220 and one of output terminals 232 and 234, for example, by measuring the voltage across a resistor connected between buffer circuit 220 and the respective output terminal. For example, channel 220 comprises a first resistor 226 electrically connected in series between operational amplifier 222 and output terminal 232, and a second resistor 228 electrically connected in series between operational amplifier 224 and output terminal 234.
[0098] Voltage measurement system 240 is configured to determine or measure a first voltage indicative of the voltage at output terminal 232 and a second voltage indicative of the voltage at output terminal 234. To this end, voltage measurement system 240 includes a voltage measurement ADC module 242 electrically connected to each of output terminals 232 and 234 to receive the voltage at each output terminal. ADC module 242 may include one or more ADCs configured to measure differential signals, such as an AD7606C.
[0099] Because the voltage at each output terminal of channel 210 is half the total output voltage of the channel, further reduction of the voltage sensed by ADC module 242 may not be necessary. In another example, ADC module 242 is electrically connected to channel 210 through one or more voltage dividers to reduce the voltage at the input of ADC module 242, as described above. ADC module 242 may be configured to generate two voltage measurement signals representative of the two output voltages of channel 210. The two voltage measurement signals may then be transmitted to processing system 120, which is configured to determine, for example, the voltage at each of output terminals 232 and 234 and / or the total voltage across both output terminals 232 and 234.
[0100] The current measurement system 170 may be configured to only determine or measure the current flowing through one of the output terminals 232 and 234 of the channel 210. In other examples, the current measurement system 170 is configured to determine or measure the current flowing through both output terminals 232 and 234.
[0101] Thus, system 200 can provide differential signal outputs with adjustable current sourcing and / or sinking capabilities. System 200 can further enable control of the current in each differential signal with smaller space requirements than conventional solutions.
[0102] 3 and 4 show an exemplary DAC module 250, such as DAC module 110 of FIGS. 1 and 2, electrically connected to a power source 260, such as a DC power supply.
[0103] The DAC module 250 includes a reference (or first) input terminal 252, a positive (or second) input terminal 254, and a third (or negative) input terminal 256. The reference terminal 252 is configured to receive a reference voltage from a power supply 260, and the positive terminal 254 is configured to receive a positive voltage from the power supply 260. The voltage received by the negative terminal 256 depends on the state of a switch module 258, which is switchable between two states. In the unipolar operating (or first) state of the switch module 258 shown in FIG. 3, the negative terminal 256 is electrically connected to the reference terminal 252 and is configured not to receive a negative voltage from the power supply 260 (i.e., the negative terminal 256 is electrically disconnected from the negative output terminal 262 of the power supply 260). In the bipolar operating (or second) state of the switch module 258 shown in FIG. 4, the negative terminal 256 is electrically disconnected from the reference terminal 252 and is configured to receive a negative voltage from the power supply 260. Thus, in a unipolar operating state, reference terminal 252 and negative terminal 256 are shorted and configured to receive the same reference voltage, such that DAC module 250 is configured to receive a unipolar positive voltage from power supply 260. Alternatively, in a bipolar operating state, reference terminal 252 and negative terminal 256 are electrically disconnected, and positive terminal 254 and negative terminal 256 receive voltages of opposite polarity, such that DAC module 250 is configured to receive a bipolar (i.e., positive and negative) voltage from power supply 260. In another example, switch module 258 is configured to electrically connect or disconnect positive terminal 254 and reference terminal 252, such that DAC module 250 receives only negative voltages during unipolar operation.
[0104] In some examples, switch module 258 is electrically controllable and includes one or more soft switches operable by a switching signal, such that DAC module 250 can switch between unipolar and bipolar operation under software control. In other examples, switch module 258 is manually controllable and includes one or more hard or physical switches. The switching signals for selecting or changing the state of switch module 258 can be generated by a processing system (e.g., processing system 120) or by user manipulation of hard or soft switches. Switch module 258 may include a three-way switch, two relays, or any other type of switch.
[0105] Thus, in some examples, systems 100 and 200 each provide an SMU capable of providing positive and / or negative voltages and delivering and / or absorbing current through one or more channels from a single power source while simultaneously measuring the voltage and / or current provided by each channel. Systems 100 and 200 can reduce the number of components required to provide multiple channels to the SMU, allowing the number of channels to be scaled up as needed (e.g., 8 to 120 channels). Systems 100 and 200 may be able to operate with fewer components than traditional SMUs, reducing costs. In some examples, systems 100 and 200 allow software control of the polarity / direction of the voltage and current they provide, simplifying operation. Additionally, systems 100 and 200 can allow control or selection of output voltage and current ranges. Multiple units of system 100 or system 200 can be daisy-chained, for example, by electrically connecting the output terminal of system 100 or 200 to the power input terminal of the other of system 100 or 200, so that the voltage and / or current output by an SMU becomes the input voltage and / or current of another SMU, thus expanding the total number of channels.
[0106] 5 and 6 show another exemplary system 300 for generating and measuring electrical signals.
[0107] System 300 includes a current-output (or first) DAC module 310 and a voltage-output (or second) DAC module 320. DAC modules 310 and 320 can each be configured to receive a separate digital control signal from a processing system 330 of system 300 and convert the control signal into multiple analog signals (i.e., voltage signals and / or current signals). Each DAC module can operate independently of the other DAC modules of system 300. DAC module 310 is configured to control the current of the analog signal based on one or more control signals received from processing system 330, while DAC module 320 is configured to control the voltage of the analog signal based on one or more control signals received from processing system 330. Thus, the combination of DAC modules 310 and 320 allows for independent control of the current and voltage of the analog signal.
[0108] The system 300 further includes a plurality of buffer circuits 340. In some examples, each buffer circuit 340 is configured to amplify or boost the current of each intermediate analog signal. Each buffer circuit 340 can provide electrical impedance transformation, allowing the voltage and current generated by the DAC modules 310 and 320 to drive or power an electrical device, in some examples, regardless of the electrical characteristics (e.g., impedance) of the electrical device. Each buffer circuit 340 can include a buffer amplifier. In some examples, each buffer circuit 340 “passes” the voltage generated by the DAC module 320 unchanged to the output terminal of the system 300 and further amplifies the power provided to the output terminal by amplifying or boosting the current from the DAC module 310. Thus, each buffer circuit 340 can supply a current greater than the maximum current output limit of the DAC module 310.
[0109] In some examples, as shown in FIG. 5 , the output terminal of the DAC module 310 is electrically connected to the DAC module 320, such that the current signal generated by the DAC module 310 passes through the DAC module 320 before being received by the buffer circuit 340, which outputs the voltage signal it generates and the current signal generated by the DAC module 310. The DAC module 320 can have one or more analog input terminals configured to receive the current signal generated by the DAC module 310, and these analog input terminals may be different from the digital input terminals that receive the digital control signal. In the configuration shown in FIG. 5 , placing the DAC module 310 before the DAC module 320 can be advantageous because the attenuation of the current signal passing through the DAC module 320 can be less than the attenuation of the voltage signal passing through the DAC module 310. In other examples, as shown in FIG. 6 , the current signal generated by the DAC module 310 and the voltage signal generated by the DAC module 320 propagate to the buffer circuit 340 through different electrical paths and may consequently be received by different input channels of the buffer circuit 340.
[0110] The system 300 further includes a voltage measurement system comprising a plurality of voltage dividers 352 and a voltage measurement (or first) ADC module 350. An output terminal of each buffer circuit 340 is electrically connected to an input terminal of the ADC module 350 through a voltage divider 352. The ADC module 350 is configured to convert an analog voltage received from each voltage divider 352 into a digital measurement signal representing the analog voltage value. Each voltage divider 352 scales down or reduces the voltage received from the output terminal of the buffer circuit 340 before providing it to the ADC module 350.
[0111] System 300 further includes a current measurement system including a plurality of current sensors 360 and a current measurement (or second) ADC module 362. Each current sensor 360 may include one or more measurement devices configured to measure the current flowing from or to the output terminal of buffer circuit 340 and generate an analog measurement signal (e.g., a voltage) based on the measured current. ADC module 362 may be configured to convert the analog measurement signal received from each current sensor 360 into a digital measurement signal representative of the measured current value.
[0112] Processing system 330 may be configured to generate one or more control signals and send or provide at least one of the control signals to one or more of DAC module 310, DAC module 320, ADC module 350, ADC module 362, and general-purpose input / output (GPIO) interface 370 of system 300. GPIO interface 370 is configured to allow processing system 330 to communicate with devices external to system 300.
[0113] Processing system 330 may be further configured to monitor the output electrical characteristics of each I / O signal channel of system 300. In some examples, processing system 330 monitors the voltage and / or current output by each buffer circuit 340 based at least in part on measurement signals generated by a voltage and current measurement system of system 300. Processing system 330 may be further configured to receive or acquire sensor signals from any other sensors, including sensors external to system 300, through GPIO interface 370 to monitor any characteristic of system 300 or its surrounding environment (e.g., voltage output, current output, temperature, humidity). In response to acquiring one or more sensor or measurement signals, processing system 330 may be configured to adjust operating parameters of buffer circuit 340, adjust one or more of its control signals, and / or adjust any other operating parameters or signals of system 300. In this manner, processing system 330 provides a feedback mechanism for monitoring, generating, or calculating the signal output of system 300.
[0114] In some examples, the processing system 330 includes a microcontroller, a microprocessor, a graphics processing unit (GPU), a digital signal processor, a system-on-chip, and / or one or more field programmable gate arrays (FPGAs).
[0115] System 300 may be powered by two different power sources: a first power source 302 and a second power source 304. Power source 302 may be a bipolar power source configured to provide bipolar power to buffer circuit 340 and DAC modules 310 and 320. Power source 304 may be a unipolar power source configured to provide unipolar power to processing system 330 and any other processing or digital devices in system 300. Power sources 302 and 304 may include AC-DC power supplies, switching mode power supplies, linear regulators, batteries, fuel cells, solar cells, or any other type of DC power source.
[0116] The power signal provided by power supply 302 to DAC modules 310 and 320 may also affect the current signal generated by DAC module 310 and / or the voltage signal generated by DAC module 320, and thus the voltage and / or current output by each channel of system 300. Thus, the output voltage and / or current of system 300 may be controlled, in part, by controlling the power delivered by power supply 302 to DAC modules 310 and 320.
[0117] In another example, system 300 includes an AC-DC converter electrically connected to a DC-DC converter. The DC-DC converter may be configured to receive DC power output from the AC-DC converter and generate a first power and a second power. The first power and the second power may have different voltage and / or current values. In some examples, the first power is bipolar power and the second power is unipolar power. The first power may be supplied to buffer circuit 340 and DAC modules 310 and 320, and the second power may be supplied to processing system 330 and any other processing or digital devices of system 300.
[0118] FIG. 7 shows another exemplary system 400 for generating and measuring electrical signals. The system 400 includes a processing system 410 configured to communicate with one or more devices external to the system 400, for example, by sending and / or receiving one or more communication signals from the external devices through the GPIO 420. Communication between the system 400 or the processing system 410 and the external devices may be performed using any of a variety of protocols, including RS-232, I / O, and the like. 2The communication may be through any wired or wireless interface, such as IEEE 802.11b, SPI, USB, Wi-Fi, GPRS, Narrowband Internet of Things (NB-IoT), low-power wide area networking protocols (e.g., LoRaWAN™), or LAN. Processing system 410 may be configured to allow a user to set or change operational settings of system 400. Processing system 410 may further be configured to set or change values of output electrical signals generated by system 400. Thus, processing system 410 may be a programming device, such as a personal computer, a laptop, an embedded system, or any other processing system.
[0119] In some examples, the GPIO 420 is connected to a display device, such as a touchscreen device, or any control mechanism, such as a switching mechanism, configured to communicate with the processing system 410 through the GPIO 420 .
[0120] The system 400 further includes a current limiter circuit 430 configured to limit the current output by the buffer circuit 340. The current limiter 430 and the buffer circuit 340 may form part of a circuit having digital controls that allow control of the current limit setting. The current limit imposed by the current limiter 430 may be changed to change the current range of the electrical signal output by the buffer circuit 340.
[0121] In some examples, processing system 410 comprises a microcontroller or microprocessor embedded in system 400, as well as programmable hardware that allows for stand-alone or remote operation by preprogramming processing system 410 and dynamically controlling individual output signals. System 400 may also be programmed in a specific manner, such as by setting individual voltage limits, current limits, and other automated functions. For example, system 400 may be able to control any device required to stabilize its temperature, humidity, position, speed, or current by reading and feeding back the output from external sensors or transducers.
[0122] FIG. 8 shows another exemplary system 500 for generating and measuring electrical signals. System 500 comprises a configuration control (or first) first processing system 510 and a measurement reading (or second) processing system 520. Processing systems 510 and 520 are operatively coupled to or in communication with a router 530, allowing them to be accessed or communicated with by devices external to system 500.
[0123] The processing system 510 is also operatively coupled to or in communication with each of the DAC module 320 and the limiter circuit 430 to set or control the operational settings of these modules. The processing system 520 is also operatively coupled to or in communication with each of the ADC modules 350 and 362 to receive or obtain measurement signals or data from these modules. The separation between the control of particular modules and the monitoring of other modules between different processing systems can allow these tasks to be performed in parallel, allowing the system 500 to operate more quickly.
[0124] FIG. 9 shows another exemplary system 600 for generating and measuring electrical signals. System 600 includes a current output DAC module 610 that includes one or more current sources configured to generate one or more current signals based on control signals received or obtained from processing system 620. Each current source can be configured to be electrically connected to an electrical device (through an output terminal of system 600). System 600 thus enables control of one or more output currents. It should be understood that as current from a current source flows through an electrical device connected thereto, a voltage can be generated at the output terminal of system 600 depending on the current and the electrical characteristics (e.g., impedance) of the electrical device.
[0125] The power signal supplied by the power supply 302 to the DAC module 610 can also affect the output current from each current source, so that the output current can be controlled in part by controlling the power delivered to the DAC module 610 by the power supply 302.
[0126] Each current source of the DAC module 610 can provide electrical impedance transformation to enable the current generated by the DAC module 610 to drive or power an electrical device, in some examples, regardless of the electrical characteristics (e.g., impedance) of the electrical device. In some examples, each current source of the DAC module 610 comprises a buffer circuit.
[0127] FIG. 10 illustrates an exemplary system 700 for monitoring power consumption. System 700 includes a plurality of SMUs 710, which may be SMUs according to any of the aforementioned systems for generating and measuring electrical signals. Each SMU is configured to power one or more electrical devices and measure or determine the power (i.e., voltage and current) supplied to the one or more electrical devices. The electrical devices may be electrical devices connected to a power distribution unit 712, or they may be electrical equipment typically found in a residential area 714 (e.g., computers, speakers, televisions, lights), industry 716, office 718, or any other location.
[0128] The system 700 further comprises a data center 720 configured to receive power measurement data representing the voltages and currents being supplied and measured by each SMU 710. Each SMU 710 can be configured to transmit the collected power measurement data to a base transceiver station (BTS) 722, which forwards the data to the data center 720.
[0129] The power measurement data in the data center 720 can be accessed by a central power management system 724, such as the central management system of the grid operator that supplies power to the SMUs 710. Thus, each SMU 710 can function as a smart electricity or kWh meter, allowing the grid operator and / or end users to monitor electricity usage and, in some instances, manage their electricity bills.
[0130] 11 shows an exemplary electricity or kWh meter 750 or system for monitoring electricity consumption. In some examples, the electricity meter 750 is an electricity billing system for a residential space, an office space, or an industrial space.
[0131] The electricity meter 750 includes a plurality of SMUs 752, which may be SMUs according to any of the aforementioned systems for generating and measuring electrical signals. The switch module of the electricity meter 750 includes a relay 754 and a circuit breaker 756, such as a miniature circuit breaker. In other examples, the switch module includes one or more switches of any type. The switch module is configured to electrically connect the SMUs 752 to a power source, such as a power grid or utility power, to provide power to the active components of the SMUs 752. In some examples, the electricity meter 750 further includes one or more power converters configured to convert or transform power from the power source to a level suitable for powering the SMUs 752.
[0132] The electricity meter 750 further comprises a processing system 758, such as a microcontroller including memory, configured to receive data representing measurements being performed by the SMU 752 of the voltage and current supplied by the SMU 752 to one or more electrical devices or loads 760 electrically connected to one or more output terminals of the SMU 752. The processing system 758 is further configured to operate a display device 762, such as a touchscreen display of the electricity meter 750, to display the received data or electricity usage information derived from the received data.
[0133] Electric meter 750 further comprises a communications module 764, such as a wireless communications interface, configured to transmit or provide data received by processing system 758, for example, to an electric utility that operates the power source. Thus, electric meter 750 may be configured to enable measurement of electricity usage by an electric utility and to transfer usage data via wireless communications, for example, to a data processing unit of the electric utility.
[0134] The electric meter 750 may further include an energy storage device 766, such as a battery, and a charging module 768 configured to receive electricity from a power source and store the electrical energy in the energy storage device 766. The energy storage device 766 may be configured to provide power to the SMU 752 and any other active components of the electric meter 750 (e.g., the processing system 758, the display device 762, and the communication module 764), for example, in the event of a power outage.
[0135] FIG. 12 shows an exemplary system 800 for monitoring multiple independent SMUs 810, which may be SMUs according to any of the systems for generating and measuring electrical signals described above.
[0136] Each SMU 810 is configured to supply power to and measure or determine the power being supplied to one or more electrical devices or machines 820. Devices 820 may include any electrically powered device, such as devices used in data center management systems, power plants, or any application requiring the operation of multiple electrical loads, such as motors, pumps, chillers, or heaters.
[0137] The system 800 includes a power distribution unit (PDU) 830 configured to receive power from a power source 840, such as another SMU, and distribute the received power to multiple outlets of the PDU 830. Each SMU 810 is electrically connected to an outlet of the PDU 830 to receive a portion of the power distributed by the PDU 830.
[0138] System 800 further comprises a processing or monitoring system 850 configured to receive data representing the voltages and currents determined or measured by each SMU 810 and to control the operating parameters of each SMU 810 (e.g., by generating one or more digital control signals used to control each SMU 810). Processing system 850 may be further configured to read and control the power usage, including current and voltage, of each electrical device 820.
[0139] System 800 further comprises a server 860 configured to manage data regarding short-range communications between different SMUs 810 or sensors of SMUs 810 and act as a buffer for scaling or increasing the number of SMUs 810 in system 800 being monitored by processing system 850. Communications between components of system 800 may use any communication means such as Ethernet, LAN, NBIoT, WiFi, LoRAWAN, GPRS, and / or fiber optic communication methods including line-of-sight communications or via fiber optic lines.
[0140] The server 860 may be a communication server configured to allow different SMUs 810 to communicate with each other, and may further function as a central communication server configured to allow a command station (such as the processing system 850) to communicate with and / or control all devices in the system 800 through wireless or wired connections.
[0141] Thus, the system 800 can provide for a configuration of multiple source measure units 810 that allows for measurement and control of the power delivered to multiple devices or machines 820 .
[0142] FIG. 13 shows a flowchart of an exemplary method 900 for generating and measuring an electrical signal or for operating a source measure unit.
[0143] The method 900 includes generating 910 one or more voltage signals based on a first control signal.
[0144] The method 900 further includes generating 920 one or more current signals based on the second control signal.
[0145] The one or more voltage and current signals may be generated by a voltage or current source DAC, by a current source, by a voltage source, or by a power source.
[0146] The method 900 further includes step 930 of providing, for each voltage signal and each current signal, the voltage signal and the current signal to an output terminal through a buffer circuit. The output terminals may be electrically connected to the buffer circuits. Each combination of voltage signal and current signal may be provided to a separate output terminal through a separate buffer circuit, such that there may be one or more output terminals and one or more buffer circuits (e.g., one for each voltage signal).
[0147] The method 900 further includes, for each output terminal, measuring 940 a voltage indicative of the voltage at the output terminal.
[0148] The method 900 further includes, for each output terminal, measuring 950 a current indicative of a flow through the output terminal.
[0149] The above-described systems and methods may provide several advantageous effects, such as one or more of the following:
[0150] 1) High-resolution control of voltage and current through a combination of a voltage digital-to-analog converter and a current digital-to-analog converter.
[0151] 2) It allows simple switching between bipolar, unipolar, and differential mode settings with digital control including current sources and sinks.
[0152] 3) Integrated buffer circuits can reduce buffer and amplifier requirements for large channel output voltage and current range requirements.
[0153] 4) Multi-ADC for voltage reading can enable real-time reading of voltage from sensors using a simple voltage divider combined with a multi-ADC configuration.
[0154] 5) A parallel configuration of the processing system that separates the voltage / current control and reading in an integrated circuit allows for faster data transfer, control and reading.
[0155] 6) An integrated wireless device configuration can reduce the overall operating system and allow for faster transfer of current and voltage reading data.
[0156] 7) A software span switch can be used to allow the circuit to be configured for different output ranges without reducing the resolution control of voltage and current.
[0157] 8) More accurate and transparent use of electricity data provided to customers by electric utility dealers and suppliers.
[0158] 9) Raising customer awareness of electricity usage. 10) Providing kWh meter location via GPS to locate device via GPRS / NBIot / LoRaWAN.
[0159] 11) Improved customer satisfaction (GPS makes it easier to track customer locations, resulting in faster repairs).
[0160] 12) Control electricity usage by using data to monitor daily demand. 13) Low-cost integrated electrical monitoring system.
[0161] 14) Enables early device failure detection to avoid customer power line outages. 15) Track daily and monthly electricity usage via mobile, mobile application, and / or PC.
[0162] 16) Receiving electricity bills via email / phone / application. 17) Online electricity bill payment through payment gateway.
[0163] 18) Allow users to submit complaints and feedback online using their user ID.
[0164] 19) Allow for prepaid and postpaid electrical installations. 20) Sensors for measuring voltage, current, and kWh and periodically transmitting measurement data to a data center via GPRS / NBIoT / LoraWan.
[0165] 21) Low power devices allowing for smaller battery / power backup deployments and longer operation.
[0166] 22) Allows customer power lines to be turned on / off remotely from the kWh meter. 23) Smart kWh meter display shows real-time electricity usage.
[0167] 24) Small devices that comply with electrical standards. 25) GPRS / NBIoT / LoraWAN / GPS device support for communication.
[0168] 26) Enable internal recording via SD card for data backup. Optional embodiments may also be said to broadly include the parts, elements, steps and / or features referred to or shown in this specification, individually or in any combination of two or more of the parts, elements, steps and / or features, where reference is made to a specific integer that has known equivalents in the art to which the invention pertains, such known equivalents are deemed to be incorporated herein as if individually set forth.
[0169] Throughout this specification and the appended claims, unless the context requires otherwise, the word "comprise" and variations such as "comprises" or "comprising" are understood to mean the inclusion of a stated integer or step or group of integers or steps, but not the exclusion of any other integer or step or group of integers or steps.
[0170] Related Applications The original specifications of the following related applications are incorporated herein by reference in their entireties: Australian Provisional Patent Application No. 2020902625, filed July 27, 2020.
Claims
1. 1. A system for generating and measuring an electrical signal, comprising: a digital-to-analog converter module configured to generate two or more analog signals, the voltages of the two or more analog signals being based on a control signal and a voltage received by the digital-to-analog converter module from a power source; Two or more channels, each channel comprising: an output terminal configured to be electrically connected to an electrical device; two or more channels, each channel comprising: a buffer circuit configured to receive one analog signal of the two or more analog signals and to provide a voltage at the output terminal that is based on a voltage of the received analog signal, the buffer circuit being electrically connected to a current source and further configured to allow a current to flow between the current source and the output terminal; a voltage measurement system comprising a first analog-to-digital converter module configured to measure, for each channel, a voltage indicative of a voltage at the output terminal of the channel; a current measurement system comprising, for each channel, a second analog-to-digital converter module configured to measure a current flowing at the output terminal of the channel; Equipped with the first analog-to-digital converter module comprising: configured to receive from each channel an analog voltage indicative of the voltage at the output terminal of the channel, and to generate, for each channel, a voltage measurement signal representative of the analog voltage received from the channel, the voltage measurement signal being a digital signal; The system, wherein the first analog-to-digital converter module is electrically connected to each channel through a voltage divider.
2. 2. The system of claim 1 , wherein the control signal is a first control signal, the current source is a further digital-to-analog converter module configured to generate two or more current signals based on a second control signal, and for each of one or more of the channels, the buffer circuit is configured to receive one current signal of the two or more current signals and provide the current signal to the output terminal of the channel.
3. the digital-to-analog converter module is configured to control the polarity of the two or more analog signals; The digital-to-analog converter module includes: a first terminal configured to receive a first voltage, the first voltage being a reference voltage; a second terminal configured to receive a second voltage different from the reference voltage; a third terminal; The system further comprises a switch module operably connected to the digital-to-analog converter module, the switch module comprising: a first state in which the third terminal is electrically connected to the first terminal for receiving the reference voltage; 2. The system of claim 1, wherein the third terminal is electrically disconnected from the first terminal and configured to receive a third voltage, the third voltage and the second voltage having opposite polarities.
4. For each of one or more of the channels, the buffer circuit enabling the current source to supply current to the output terminal when the electrical device draws current from the output terminal; The system of claim 1 , configured to allow the current source to receive current from the output terminal when the electrical device supplies current to the output terminal.
5. For each of one or more of the channels, the channel further comprises a current limiter configured to limit a flow of current between the current source and the output terminal; The current limiter determining a current provided by the current source to the output terminal; comparing the determined current to a reference value; further configured to limit the current supplied by the current source to the output terminal if the determined current is greater than the reference value; 2. The system of claim 1, wherein the current limiter is configured to determine the current supplied by the current source to the output terminal by measuring a voltage across a resistor electrically connected between the buffer circuit and the output terminal.
6. 2. The system of claim 1, wherein for each of one or more of the channels, the buffer circuit is configured to interrupt or block current flow between the digital-to-analog converter module and the output terminal.
7. 2. The system of claim 1, wherein for each of one or more of the channels, the buffer circuit presents a higher impedance to the digital-to-analog converter module than it presents to the output terminal and the current source.
8. 10. The system of claim 1, wherein for each of one or more of the channels, the buffer circuit comprises a further digital-to-analog converter configured to generate a current signal based on a further control signal.
9. 10. The system of claim 1, wherein for each of one or more of the channels, the buffer circuit comprises a buffer amplifier.
10. The system of claim 9 , wherein the buffer amplifier comprises a voltage follower.
11. The system of claim 1 , wherein for each channel of the one or more channels, the buffer circuit provides an electrical impedance transformation.
12. For each of one or more of the channels, the output terminal is a first output terminal, the channel further comprising a second output terminal configured to be electrically connected to the same electrical device as the first output terminal, the buffer circuit configured to provide a differential voltage at the first output terminal and the second output terminal corresponding to a voltage of the received analog signal, and further configured to allow a current to flow between the current source and the second output terminal; 2. The system of claim 1, wherein the buffer circuit comprises a single-ended to differential converter configured to provide a first voltage at the first output terminal and a second voltage at the second output terminal, a difference between the first voltage and the second voltage corresponding to a voltage of the received analog signal.
13. the current measurement system comprises two or more current sensors each configured to sense a current flowing through the output terminal of one of the two or more channels; the second analog-to-digital converter module comprising: receiving an analog signal from each current sensor indicative of the current sensed by said current sensor; The system of claim 1 , configured to generate, for each channel, a current measurement signal representative of the analog signal received from the current sensor associated with the channel, the current measurement signal being a digital signal.
14. receiving the voltage measurement signal and the current measurement signal for each channel; for each channel, determining a voltage at an output terminal of the channel based on the received voltage measurement signal; a measurement reading processing system configured to determine, for each channel, a current flowing through the output terminal of the channel based on the received current measurement signal; The measurement reading processing system may be a serial peripheral interface (SPI) or 2 14. The system of claim 13, configured to communicate with the first analog-to-digital converter module and the second analog-to-digital converter module through C.
15. receiving the determined voltage value and the determined current value for each channel of the one or more channels from the measurement reading processing system; The system of claim 14 , further comprising a communications module configured to transmit the received voltage and current values to a remote receiver.
16. The system of claim 1 , wherein for at least one of the two or more channels, the buffer circuit is configured to amplify the received current signal.
17. 1. A system for generating and measuring an electrical signal, comprising: a digital-to-analog converter module configured to generate two or more current signals based on the control signal and power received from the power source; two or more channels, each channel comprising an output terminal configured to be electrically connected to an electrical device, each channel configured to receive one of the two or more current signals and provide the current signal to the output terminal of the channel; a voltage measurement system comprising a first analog-to-digital converter module configured to measure, for each channel, a voltage indicative of a voltage at the output terminal of the channel; a current measurement system comprising, for each channel, a second analog-to-digital converter module configured to measure a current flowing through the output terminal of the channel; Equipped with the first analog-to-digital converter module comprising: configured to receive from each channel an analog voltage indicative of the voltage at the output terminal of the channel, and to generate, for each channel, a voltage measurement signal representative of the analog voltage received from the channel, the voltage measurement signal being a digital signal; The system, wherein the first analog-to-digital converter module is electrically connected to each channel through a voltage divider.
18. 1. A method for generating and measuring an electrical signal, comprising: generating two or more voltage signals based on the first control signal and a voltage received from the power source; generating two or more current signals based on a second control signal; for each voltage signal and each current signal, providing the voltage signal and the current signal through one of two or more buffer circuits to one of two or more output terminals; measuring, for each output terminal, a voltage indicative of the voltage at said output terminal using a first analog-to-digital converter module; measuring, for each output terminal, a current indicative of a flow through said output terminal using a second analog-to-digital converter module; Including, Measuring a voltage indicative of a voltage at one of the output terminals includes, for each channel: receiving at the first analog-to-digital converter module an analog voltage indicative of a voltage at the output terminal through a voltage divider electrically connected to the output terminal; generating, with the first analog-to-digital converter module, a voltage measurement signal representative of the received analog voltage, the voltage measurement signal being a digital signal.
19. 20. The method of claim 18, wherein each buffer circuit presents a higher impedance to the voltage signal than it presents to the current signal.
20. 20. The method of claim 19, further comprising amplifying one or more of the current signals.
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