WO2008045258A2 - Two-wire process control loop diagnostics - Google Patents

Two-wire process control loop diagnostics Download PDF

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Publication number
WO2008045258A2
WO2008045258A2 PCT/US2007/021242 US2007021242W WO2008045258A2 WO 2008045258 A2 WO2008045258 A2 WO 2008045258A2 US 2007021242 W US2007021242 W US 2007021242W WO 2008045258 A2 WO2008045258 A2 WO 2008045258A2
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WO
WIPO (PCT)
Prior art keywords
process control
control loop
analog signal
wire process
diagnostic
Prior art date
Application number
PCT/US2007/021242
Other languages
French (fr)
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WO2008045258B1 (en
WO2008045258A3 (en
Inventor
Garrie D. Huisenga
Randy J. Longsdorf
Donald R. Lattimer
Original Assignee
Rosemount Inc.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Rosemount Inc. filed Critical Rosemount Inc.
Priority to EP07852513.6A priority Critical patent/EP2067088B1/en
Priority to JP2009531438A priority patent/JP5068822B2/en
Publication of WO2008045258A2 publication Critical patent/WO2008045258A2/en
Publication of WO2008045258A3 publication Critical patent/WO2008045258A3/en
Publication of WO2008045258B1 publication Critical patent/WO2008045258B1/en

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/24Testing correct operation
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/24Testing correct operation
    • H04L1/242Testing correct operation by comparing a transmitted test signal with a locally generated replica
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/24Testing correct operation
    • H04L1/245Testing correct operation by using the properties of transmission codes

Definitions

  • the present invention relates to industrial process control and monitoring systems. More specifically, the present invention relates to diagnostics of industrial process control and monitoring systems which utilize two-wire process control loops to transmit information.
  • Industrial process control and monitoring systems are used in many applications to control and/or monitor operation of an industrial process.
  • an oil refinery, chemical processing plant, or paper manufacturing facility may have numerous processes which must be monitored and controlled.
  • process variables are measured at remote locations across the process.
  • Example process variables include temperature, pressure, flow and the like.
  • This information is transmitted over a two-wire process control loop to a central location, for example, a control room.
  • process variables can be controlled using controllers placed in the process.
  • the controllers receive control information from the two-wire process control loop and responsively control a process variable, for example by opening or closing a valve, heating a process fluid, etc.
  • a more complex communication technique is the HART® communication protocol in which digital information is superimposed onto a 4-20 mA signal. Typically, in such configurations a separate two-wire process control loop is required for each field device.
  • a more complex communication technique used on two-wire process control loops is generally referred to as fieldbus-based protocols, such as
  • FoundationTM fieldbus In a Fieldbus protocol, all information is transmitted digitally and the analog current level on the process control loop is not required to carry information.
  • One advantage of such a configuration is that multiple process variable transmitters or controllers can be coupled in series on a single process control loop. Each device on the loop has an address such that it can identify messages which are addressed to it. Similarly, messages transmitted by a field device can include the address of the device so that the sender can be identified.
  • a diagnostic device for coupling to a process control loop includes digital communication circuitry configured to receive a digital communication signal from the process control loop.
  • the digital communication signal is a digitally modulated analog signal on the process control loop which is modulated to a plurality of discrete analog signal levels representative of digital values.
  • Diagnostic circuitry diagnoses operation of the process control loop based upon the digitally modulated analog signal.
  • FIG. 1 is a simplified diagram of a process control or monitoring installation which includes a two-wire process control loop.
  • FIG. 2 is a simplified block diagram of a process control loop diagnostic device.
  • FIGS. 3 A and 3 B are graphs of loop current I versus time.
  • FIG. 4 is a more detailed diagram showing digital communication circuitry of FIG. 2.
  • FIG. 5 is a more detailed diagram of the process control loop diagnostic device.
  • the present invention is directed to diagnostics in a process control loop including diagnostics of the wiring used in a two-wire process control loop itself, as well as other devices connected to the process control loop.
  • the present invention provides diagnostics including detection of a failed or potentially failing component in a two-wire process control loop operating in accordance with a fieldbus based protocol in which multiple devices can be connected to a single two-wire process control loop.
  • FIG. 1 is a simplified diagram showing a process control or monitoring system 10 including field devices 12 and 14 coupled to process piping 16.
  • Devices 12 and 14 are coupled to a single two- wire process control loop 18 which in turn couples to a control room 20.
  • FIG. 1 also illustrates a two-wire process control loop diagnostic device 22 coupled to loop 18.
  • the loop 18 carries a current I which can be used to provide power to all of the field devices on loop 18 and can be generated at control room 20.
  • Information is transmitted digitally on loop 18 by modulating a digital signal on top of the loop current I.
  • devices 12 and 14 can include unique addresses such that they are able to uniquely identify messages which they transmit, as well as identify which received messages are addressed to them.
  • Devices 12 and 14 can comprise any type of field device including process variable transmitters and controllers.
  • the process control loop 18 terminates at a segment terminator 24.
  • the term "segment" refers to a portion of or all of two-wire process control loop 18.
  • FIG. 2 is a simplified block diagram of a two-wire process control loop diagnostic device 50 in accordance with the present invention, similar to device 22 shown in FIG. 1.
  • Diagnostic device 50 couples to two-wire process control loop 18 and includes digital communication circuitry 52 and diagnostic circuitry 54.
  • Two-wire process control loop diagnostic device 50 can, in some configurations, be implemented in field device 12, field device 14, stand-alone diagnostic device 22 and/or control room 20.
  • digital communication circuitry 52 receives a digital communication signal from the two- wire process control loop 18. This digital communication signal comprises an analog signal which has been digitally modulated. Such modulation is in accordance with known techniques.
  • the loop current I can be caused to vary periodically such that a variation above a certain threshold represents a binary 1 and a variation below a particular threshold represents a binary 0.
  • FIG. 3 A is a graph of the loop current I versus time.
  • the time axis of the graph has been divided into five time periods: t o , tj, t 2 , t 3 and U- During period to, the current level I is undetermined and represents neither a 0 or a 1.
  • the current level I represents a binary 0.
  • the loop current level I represents a binary 1.
  • a binary 1 is represented by the current level being above threshold value during first half of the bit time and below a threshold during the second half.
  • a binary 0 is represented by the first half being below the threshold and the second half being above.
  • the diagnostic circuitry 54 illustrated in FIG. 2 performs diagnostics based upon the digitally modulated analog signal I. More specifically, the diagnostic circuitry 54 performs diagnostics based upon analog properties of the digitally modulated analog signal including signal amplitude, wave shape, current, bit error rate (BERT), segment impedance, or other parameters obtained by monitoring current on loop 18. Further, by monitoring which device transmitted a particular signal, the diagnostic circuitry 54 can identify a particular device on the loop 18 which has failed or may fail in the future.
  • analog properties of the digitally modulated analog signal including signal amplitude, wave shape, current, bit error rate (BERT), segment impedance, or other parameters obtained by monitoring current on loop 18. Further, by monitoring which device transmitted a particular signal, the diagnostic circuitry 54 can identify a particular device on the loop 18 which has failed or may fail in the future.
  • BERT bit error rate
  • FIG. 4 is a more detailed diagram of diagnostic device 50 and illustrates one configuration of digital communication circuitry 52 in greater detail.
  • Digital communication circuitry 52 includes a sense resistor 60 coupled in series with Input/Output (I/O) circuitry 62 and other devices on the two-wire process control loop 18.
  • a signal sense circuit 64 is coupled across sense resistor 60 and provides an output to diagnostic circuitry 54.
  • Diagnostic circuitry 54 optionally connects to I/O circuitry 62.
  • I/O circuitry 62 is configured to digitally communicate over process control loop 18 and, in some configurations, is configured to provide power to diagnostic device circuitry which is generated from the loop current I through loop 18.
  • Signal sense circuitry 64 receives a voltage signal generated across sense resistor 60 which is related to the loop current I.
  • Signal sense circuitry can optionally amplify this signal, digitize this signal, and optionally perform additional preprocessing before providing a digital presentation of the voltage signal to diagnostic circuitry 54.
  • Signal sense circuitry 64 can comprise, for example, a digital signal processing (dsp) integrated circuit and associated hardware.
  • FIG. 5 is a simplified diagram of a diagnostic device configured as a process variable transmitter or process controller.
  • diagnostic circuitry 54 is shown as implemented in a digital controller 70 and memory 72.
  • Controller 70 can comprise, for example, a microprocessor or the like which operates in accordance with programming instructions in memory 72.
  • a process interface 76 can comprise a process variable sensor for sensing a process variable, or can comprise a control element for controlling a process, for example by positioning a valve.
  • element 74 comprises an analog to digital converter and related circuitry which provides a digital signal representation to controller 70.
  • Controller 70 is configured to transmit information related to the sensed process variable over loop 18.
  • element 74 comprises a digital to analog converter and related circuitry which converts a digital signal from controller 70 to an analog value for controlling the process.
  • the diagnostic device can be implemented in any of the example devices illustrated in FIG. 1 including a process variable transmitter or controller, a stand-alone diagnostic device 22, or in control room circuitry 20.
  • an optional display 78 is provided which can be used to display diagnostic information to an operator. The display can provide diagnostic help status, and a local display is an indication of all devices on a loop segment.
  • the diagnostics can be located on the intrinsically safe side of the intrinsic safety barrier thereby providing more detailed and accurate diagnostics, including diagnostics of the intrinsically safe barrier itself.
  • the diagnostics performed by diagnostic circuitry 54 can be tailored to each individual two-wire process control loop segment by having the ability to characterize the segment.
  • the device can analyze the communications from each field device, as each field device performs normal process communications. This information can be saved, for example in memory 72, for future reference conditions for each device individually. This saved data can be used to identify normal operation and provide a baseline for use in subsequent diagnostics. Characterization of each device in this manner allows for more precise diagnostics. Additionally, each device can be compared to standards in accordance with specific communication protocols, such as Fieldbus protocols, to ensure that the device is conforming to appropriate standards.
  • One example measurement performed by a diagnostic circuitry 54 is based on the amplitude of the digitally modulated analog signal from individual field devices.
  • the amplitude can be compared with stored threshold values (or amplitude signatures) and if the amplitude is outside of those thresholds a failure indication can be provided. If a single device is failing the test, this can be an indication of a possible failure of the device that transmitted the signal. On the other hand, if multiple devices are failing such a test, this can indicate a problem with something other than a particular device. For example, wiring within a specific segment of loop 18 or a failure of a power supply located in the control room 20, etc.
  • diagnostics includes the detection of an impending failure in a particular two- wire loop segment prior to its actual failure. This allows the two- wire loop segment to be repaired with minimal down time. Additional diagnostics can include the detection of a clipped wave form which may indicate a possible increase in quiescent current of a field device thereby causing unbalanced modulation. Another potential cause of a clipped signal is inadequate terminal voltage at the field device. This may be due to a power supply voltage or, in an intrinsically safe configuration, a faulty intrinsic safety barrier.
  • the signal sense circuitry 64 digitizes the digitally modulated analog signal such that the complete signal wave shape is available to diagnostic circuitry 54.
  • diagnostic circuitry 54 can perform diagnostics on the complete wave shape such that, for example, the rise and fall times of transitions in the signal can be measured.
  • the communication signal can be characterized over time at a particular installation and used as a reference to continually compare a live signal and detect changes in amplitude over time. By comparing the signals from each device to an initial reference, an indication of component failure or damage to the field device can be detected. A change in rise and fall times can also indicate a change in two- wire process control loop 18.
  • the diagnostic circuitry 54 monitors the current I created in loop 18 using, for example, the sense resistor 60 and an analog to digital converter which measures the voltage drop across the sense resistor 60. By monitoring the DC value of the current I, the diagnostic circuitry 54 can detect improper variations in the DC current. For example, a variation in the DC current can indicate that a device connected to the loop has an increase in its shunt set current which could indicate a pending fault in the media access unit (MAU) circuitry for that particular field device. It may also indicate an electrical short in the two-wire loop wiring. Similarly, a reduction in the segment current can also indicate an impending fault.
  • MAU media access unit
  • the signal sense circuitry 64 and diagnostic circuitry 54 can be implemented in a single component or across a number of components and may share individual components. Preferably, the circuitry should have adequate processing bandwidth to perform the diagnostics in substantially real time. This can be accomplished with a single microprocessor or through the use of a digital signal processor (DSP) or other type of secondary microprocessor.
  • DSP digital signal processor
  • One example of a diagnostic that requires substantial processing bandwidth is monitoring the signal noise on the loop 18 from, for example, the two terminals which are used to connect to loop 18, or between one of the connections to loop 18 and the housing or other electrical ground. With sufficient processing speed, analysis calculations such as a standard deviation, a Root Mean Square (RMS), or a Fast Fourier Transform (FFT) can be performed and used to detect differences in noise characteristics. An increase in noise, for example at 60 Hz from one of the terminals to ground can indicate a possible fault in the electrical grounding.
  • RMS Root Mean Square
  • FFT Fast Fourier Transform
  • Another example diagnostic can be through the monitoring of the bit error rate (BERT) of each device connected to the two-wire loop 18. If a single device on the loop 18 shows a trend towards a higher bit error rate than a baseline for a particular installation, this can be an indication that the device is failing and may require service. Depending upon the rate at which the bit error rate increases, an indication can be provided to an operator as either a warning of degradation or an indication of imminent failure. Prediction of this impending failure allows the device to be repaired at the next scheduled maintenance interval.
  • BERT bit error rate
  • I/O circuitry 62 is configured to apply a high frequency pulse to loop 18.
  • This high frequency pulse can be measured by the signal sense circuitry 64 in another device and used to determine electrical impedance on loop 18 between the two devices.
  • the high frequency pulse can be placed during normal bus communications so as to not disrupt communications over the loop 18. By measuring the rise and fall times in amplitude of the received pulse, an impedance measurement can be performed. A comparison of this measurement to a baseline measurement for the installation can be used to provide diagnostics.
  • the high frequency pulse is generated by a simple device, for example, a device which is included in the terminator 24 for the end of the segment of the loop 18 as shown in FIG. 1. As the total number of devices which can be placed on a segment
  • the circuitry of the present invention operates using techniques to reduce power consumption.
  • the diagnostics can be performed during periods when other circuitry in a particular field device does not require additional power.
  • a Link Active Scheduler is a deterministic, centralized bus scheduler that maintains a list of transmission times for all data buffers in all devices that need to be cyclically transmitted. Only one Link Master (LM) device on an Hl fieldbus Link can be functioning as that link's LAS.
  • a two- wire process control loop includes field devices coupled to the loop in addition to loop wiring.

Abstract

A diagnostic device (50) for coupling to a process control loop (18) includes digital communication circuitry (52) configured to receive a digital communication signal from the process control loop (18). The digital communication signal is a digitally modulated analog signal on the process control loop (18) which is modulated to a plurality of discrete analog signal levels representative of digital values. Diagnostic circuitry (54) diagnoses operation of the process control loop (18) which may include field devices of the process control loop based upon the digitally modulated analog signal.

Description

TWO-WIRE PROCESS CONTROL LOOP DIAGNOSTICS
BACKGROUND OF THE INVENTION
The present invention relates to industrial process control and monitoring systems. More specifically, the present invention relates to diagnostics of industrial process control and monitoring systems which utilize two-wire process control loops to transmit information.
Industrial process control and monitoring systems are used in many applications to control and/or monitor operation of an industrial process. For example, an oil refinery, chemical processing plant, or paper manufacturing facility may have numerous processes which must be monitored and controlled.
In such industrial processes, process variables are measured at remote locations across the process. Example process variables include temperature, pressure, flow and the like. This information is transmitted over a two-wire process control loop to a central location, for example, a control room. Similarly, process variables can be controlled using controllers placed in the process. The controllers receive control information from the two-wire process control loop and responsively control a process variable, for example by opening or closing a valve, heating a process fluid, etc.
Various protocols have been used to communicate on two-wire process control loops. One protocol uses a 4-20 mA signal to carry information on the loop. The 4 mA signal can represent a zero or low value of a process variable while the 20 mA signal can represent a high or full scale value. The current can be controlled by a process variable transmitter to values between 4 and 20 mA to represent intermediate values of the process variable. A more complex communication technique is the HART® communication protocol in which digital information is superimposed onto a 4-20 mA signal. Typically, in such configurations a separate two-wire process control loop is required for each field device. A more complex communication technique used on two-wire process control loops is generally referred to as fieldbus-based protocols, such as
Foundation™ fieldbus. In a Fieldbus protocol, all information is transmitted digitally and the analog current level on the process control loop is not required to carry information. One advantage of such a configuration is that multiple process variable transmitters or controllers can be coupled in series on a single process control loop. Each device on the loop has an address such that it can identify messages which are addressed to it. Similarly, messages transmitted by a field device can include the address of the device so that the sender can be identified.
SUMMARY
A diagnostic device for coupling to a process control loop includes digital communication circuitry configured to receive a digital communication signal from the process control loop. The digital communication signal is a digitally modulated analog signal on the process control loop which is modulated to a plurality of discrete analog signal levels representative of digital values. Diagnostic circuitry diagnoses operation of the process control loop based upon the digitally modulated analog signal.
BRIEF DESCRIPTION OF THE DRAWINGS FIG. 1 is a simplified diagram of a process control or monitoring installation which includes a two-wire process control loop.
FIG. 2 is a simplified block diagram of a process control loop diagnostic device.
FIGS. 3 A and 3 B are graphs of loop current I versus time. FIG. 4 is a more detailed diagram showing digital communication circuitry of FIG. 2.
FIG. 5 is a more detailed diagram of the process control loop diagnostic device.
DETAILED DESCRIPTION The present invention is directed to diagnostics in a process control loop including diagnostics of the wiring used in a two-wire process control loop itself, as well as other devices connected to the process control loop. In particular, the present invention provides diagnostics including detection of a failed or potentially failing component in a two-wire process control loop operating in accordance with a fieldbus based protocol in which multiple devices can be connected to a single two-wire process control loop.
FIG. 1 is a simplified diagram showing a process control or monitoring system 10 including field devices 12 and 14 coupled to process piping 16. Devices 12 and 14 are coupled to a single two- wire process control loop 18 which in turn couples to a control room 20. FIG. 1 also illustrates a two-wire process control loop diagnostic device 22 coupled to loop 18. The loop 18 carries a current I which can be used to provide power to all of the field devices on loop 18 and can be generated at control room 20. Information is transmitted digitally on loop 18 by modulating a digital signal on top of the loop current I. For example, devices 12 and 14 can include unique addresses such that they are able to uniquely identify messages which they transmit, as well as identify which received messages are addressed to them. Devices 12 and 14 can comprise any type of field device including process variable transmitters and controllers. The process control loop 18 terminates at a segment terminator 24. The term "segment" refers to a portion of or all of two-wire process control loop 18.
FIG. 2 is a simplified block diagram of a two-wire process control loop diagnostic device 50 in accordance with the present invention, similar to device 22 shown in FIG. 1. Diagnostic device 50 couples to two-wire process control loop 18 and includes digital communication circuitry 52 and diagnostic circuitry 54. Two-wire process control loop diagnostic device 50 can, in some configurations, be implemented in field device 12, field device 14, stand-alone diagnostic device 22 and/or control room 20. During operation, digital communication circuitry 52 receives a digital communication signal from the two- wire process control loop 18. This digital communication signal comprises an analog signal which has been digitally modulated. Such modulation is in accordance with known techniques. For example, the loop current I can be caused to vary periodically such that a variation above a certain threshold represents a binary 1 and a variation below a particular threshold represents a binary 0. Such a configuration is illustrated in FIG. 3 A which is a graph of the loop current I versus time. In FIG. 3 A, the time axis of the graph has been divided into five time periods: to, tj, t2, t3 and U- During period to, the current level I is undetermined and represents neither a 0 or a 1. During periods t\ and t4, the current level I represents a binary 0. Similarly, during periods t2 and t3, the loop current level I represents a binary 1. Another data encoding technique could break each bit period into two equal parts as shown in FIG. 3 B. A binary 1 is represented by the current level being above threshold value during first half of the bit time and below a threshold during the second half. A binary 0 is represented by the first half being below the threshold and the second half being above.
The diagnostic circuitry 54 illustrated in FIG. 2 performs diagnostics based upon the digitally modulated analog signal I. More specifically, the diagnostic circuitry 54 performs diagnostics based upon analog properties of the digitally modulated analog signal including signal amplitude, wave shape, current, bit error rate (BERT), segment impedance, or other parameters obtained by monitoring current on loop 18. Further, by monitoring which device transmitted a particular signal, the diagnostic circuitry 54 can identify a particular device on the loop 18 which has failed or may fail in the future.
FIG. 4 is a more detailed diagram of diagnostic device 50 and illustrates one configuration of digital communication circuitry 52 in greater detail. Digital communication circuitry 52 includes a sense resistor 60 coupled in series with Input/Output (I/O) circuitry 62 and other devices on the two-wire process control loop 18. A signal sense circuit 64 is coupled across sense resistor 60 and provides an output to diagnostic circuitry 54. Diagnostic circuitry 54 optionally connects to I/O circuitry 62. I/O circuitry 62 is configured to digitally communicate over process control loop 18 and, in some configurations, is configured to provide power to diagnostic device circuitry which is generated from the loop current I through loop 18. Signal sense circuitry 64 receives a voltage signal generated across sense resistor 60 which is related to the loop current I. Signal sense circuitry can optionally amplify this signal, digitize this signal, and optionally perform additional preprocessing before providing a digital presentation of the voltage signal to diagnostic circuitry 54. Signal sense circuitry 64 can comprise, for example, a digital signal processing (dsp) integrated circuit and associated hardware.
FIG. 5 is a simplified diagram of a diagnostic device configured as a process variable transmitter or process controller. In FIG. 5, diagnostic circuitry 54 is shown as implemented in a digital controller 70 and memory 72. Controller 70 can comprise, for example, a microprocessor or the like which operates in accordance with programming instructions in memory 72. A process interface 76 can comprise a process variable sensor for sensing a process variable, or can comprise a control element for controlling a process, for example by positioning a valve. When configured as a process variable sensor, element 74 comprises an analog to digital converter and related circuitry which provides a digital signal representation to controller 70. Controller 70 is configured to transmit information related to the sensed process variable over loop 18. Similarly, if process interface 76 is configured as a control element, element 74 comprises a digital to analog converter and related circuitry which converts a digital signal from controller 70 to an analog value for controlling the process. The diagnostic device can be implemented in any of the example devices illustrated in FIG. 1 including a process variable transmitter or controller, a stand-alone diagnostic device 22, or in control room circuitry 20. In one configuration, an optional display 78 is provided which can be used to display diagnostic information to an operator. The display can provide diagnostic help status, and a local display is an indication of all devices on a loop segment. In an intrinsically safe configuration, the diagnostics can be located on the intrinsically safe side of the intrinsic safety barrier thereby providing more detailed and accurate diagnostics, including diagnostics of the intrinsically safe barrier itself.
The diagnostics performed by diagnostic circuitry 54 can be tailored to each individual two-wire process control loop segment by having the ability to characterize the segment. When the diagnostic device is initially installed on a new or existing segment, the device can analyze the communications from each field device, as each field device performs normal process communications. This information can be saved, for example in memory 72, for future reference conditions for each device individually. This saved data can be used to identify normal operation and provide a baseline for use in subsequent diagnostics. Characterization of each device in this manner allows for more precise diagnostics. Additionally, each device can be compared to standards in accordance with specific communication protocols, such as Fieldbus protocols, to ensure that the device is conforming to appropriate standards.
One example measurement performed by a diagnostic circuitry 54 is based on the amplitude of the digitally modulated analog signal from individual field devices. In such a configuration, the amplitude can be compared with stored threshold values (or amplitude signatures) and if the amplitude is outside of those thresholds a failure indication can be provided. If a single device is failing the test, this can be an indication of a possible failure of the device that transmitted the signal. On the other hand, if multiple devices are failing such a test, this can indicate a problem with something other than a particular device. For example, wiring within a specific segment of loop 18 or a failure of a power supply located in the control room 20, etc. The advantage of such diagnostics includes the detection of an impending failure in a particular two- wire loop segment prior to its actual failure. This allows the two- wire loop segment to be repaired with minimal down time. Additional diagnostics can include the detection of a clipped wave form which may indicate a possible increase in quiescent current of a field device thereby causing unbalanced modulation. Another potential cause of a clipped signal is inadequate terminal voltage at the field device. This may be due to a power supply voltage or, in an intrinsically safe configuration, a faulty intrinsic safety barrier.
In another example configuration, the signal sense circuitry 64 digitizes the digitally modulated analog signal such that the complete signal wave shape is available to diagnostic circuitry 54. In such a configuration, diagnostic circuitry 54 can perform diagnostics on the complete wave shape such that, for example, the rise and fall times of transitions in the signal can be measured. Further, the communication signal can be characterized over time at a particular installation and used as a reference to continually compare a live signal and detect changes in amplitude over time. By comparing the signals from each device to an initial reference, an indication of component failure or damage to the field device can be detected. A change in rise and fall times can also indicate a change in two- wire process control loop 18. Using a combination of amplitude and rise/fall times of the individual field devices, in comparison of the changes to all field devices on the segment, allows for a detailed device and bus analysis. On a normally operating segment, if a single device provides a change in amplitude, that device could be flagged as potentially having an impending failure. If a comparison is done to the other devices on the segment, and those other devices all indicate similar changes in amplitude, then a mechanical/wiring fault, power supply or intrinsic safety barrier fault may be indicated.
In another example configuration, the diagnostic circuitry 54 monitors the current I created in loop 18 using, for example, the sense resistor 60 and an analog to digital converter which measures the voltage drop across the sense resistor 60. By monitoring the DC value of the current I, the diagnostic circuitry 54 can detect improper variations in the DC current. For example, a variation in the DC current can indicate that a device connected to the loop has an increase in its shunt set current which could indicate a pending fault in the media access unit (MAU) circuitry for that particular field device. It may also indicate an electrical short in the two-wire loop wiring. Similarly, a reduction in the segment current can also indicate an impending fault.
The signal sense circuitry 64 and diagnostic circuitry 54 can be implemented in a single component or across a number of components and may share individual components. Preferably, the circuitry should have adequate processing bandwidth to perform the diagnostics in substantially real time. This can be accomplished with a single microprocessor or through the use of a digital signal processor (DSP) or other type of secondary microprocessor. One example of a diagnostic that requires substantial processing bandwidth is monitoring the signal noise on the loop 18 from, for example, the two terminals which are used to connect to loop 18, or between one of the connections to loop 18 and the housing or other electrical ground. With sufficient processing speed, analysis calculations such as a standard deviation, a Root Mean Square (RMS), or a Fast Fourier Transform (FFT) can be performed and used to detect differences in noise characteristics. An increase in noise, for example at 60 Hz from one of the terminals to ground can indicate a possible fault in the electrical grounding.
Another example diagnostic can be through the monitoring of the bit error rate (BERT) of each device connected to the two-wire loop 18. If a single device on the loop 18 shows a trend towards a higher bit error rate than a baseline for a particular installation, this can be an indication that the device is failing and may require service. Depending upon the rate at which the bit error rate increases, an indication can be provided to an operator as either a warning of degradation or an indication of imminent failure. Prediction of this impending failure allows the device to be repaired at the next scheduled maintenance interval.
In another example configuration, I/O circuitry 62 is configured to apply a high frequency pulse to loop 18. This high frequency pulse can be measured by the signal sense circuitry 64 in another device and used to determine electrical impedance on loop 18 between the two devices. The high frequency pulse can be placed during normal bus communications so as to not disrupt communications over the loop 18. By measuring the rise and fall times in amplitude of the received pulse, an impedance measurement can be performed. A comparison of this measurement to a baseline measurement for the installation can be used to provide diagnostics. In one configuration, the high frequency pulse is generated by a simple device, for example, a device which is included in the terminator 24 for the end of the segment of the loop 18 as shown in FIG. 1. As the total number of devices which can be placed on a segment
18 is limited by the current consumption of all of the devices coupled to the segment, preferably the circuitry of the present invention operates using techniques to reduce power consumption. For example, the diagnostics can be performed during periods when other circuitry in a particular field device does not require additional power.
Although aspects of the diagnostics of the present invention are illustrated as discrete components, various functions can be implemented by a single component or shared between components. Aspects of the present invention can be implemented in software programming (stored in, for example, memory 72), can be implemented in hardware, or can be shared between hardware and software including a Link Active Scheduler (LAS). A Link Active Scheduler (LAS) is a deterministic, centralized bus scheduler that maintains a list of transmission times for all data buffers in all devices that need to be cyclically transmitted. Only one Link Master (LM) device on an Hl fieldbus Link can be functioning as that link's LAS.
Although the present invention has been described with reference to preferred embodiments, workers skilled in the art will recognize that changes may be made in form and detail without departing from the spirit and scope of the invention. As used herein, a two- wire process control loop includes field devices coupled to the loop in addition to loop wiring.

Claims

WHAT IS CLAIMED IS:
1. A diagnostic device for coupling to a two-wire process control loop of an industrial process control or monitoring system, comprises: digital communication circuitry configured to receive a digital communication signal from the two-wire process control loop, the digital communication signal comprising a digitally modulated analog signal on the two-wire process control loop which is modulated to a plurality of discrete analog signal levels representative of digital values; and diagnostic circuitry configured to diagnose operation of the two- wire process control loop based upon the digitally modulated analog signal.
2. The apparatus of claim 1 wherein the digital communication circuitry includes a sense resistor.
3. The apparatus of claim 1 including an analog to digital convertor configured to digitize the digitally modulated analog signal.
4. The apparatus of claim 1 wherein the diagnostic circuitry monitors amplitude of the digitally modulated analog signal.
5. The apparatus of claim 1 wherein the diagnostic circuitry monitors wave shape of the digitally modulated analog signal.
6. The apparatus of claim 1 wherein the diagnostic circuitry monitors a bit error rate (BERT) of digital transmissions on the two- wire process control loop.
7. The apparatus of claim 1 wherein the diagnostic circuitry monitors impedance of the two-wire process control loop.
8. The apparatus of claim 7 wherein the impedance is monitored by receipt of a high frequency signal on the two- wire process control loop.
9. The apparatus of claim 1 wherein the diagnostic circuitry compares a parameter of the digitally modulated analog signal to a stored value and responsively provides a diagnostic output.
10. The apparatus of claim 1 wherein the diagnostic circuitry correlates diagnostic information based upon the digitally modulated analog signal and a particular device on the two-wire process control loop which transmitted the digitally modulated analog signal.
11. The apparatus of claim 1 wherein the diagnostic circuitry performs diagnostics on a device coupled to the two-wire process control loop.
12. The apparatus of claim 1 wherein the diagnostic circuitry performs diagnostics on wiring of the two- wire process control loop.
13. The apparatus of claim 1 including a display configured to display diagnostic information.
14. The apparatus of claim 1 including a process interface for sensing or controlling a process variable of the process.
15. The apparatus of claim 1 wherein the diagnostic device is configured to mount in the field of the industry process control or monitoring system.
16. The apparatus of claim 1 wherein the digital communication circuitry and the diagnostic circuitry are powered with power received from the two-wire process control loop.
17. The apparatus of claim 1 wherein the diagnostic circuitry diagnoses operation of a process device of the two- wire process control loop.
18. A method for diagnosing a two-wire process control loop of the type used in an industrial process control or monitoring system, comprising: receiving digital communication signals from a plurality of devices coupled to the two-wire process control loop, the digital communication signals comprising a digitally modulated analog signal which is modulated to a plurality of discreet analog signal levels representative of digital values; measuring a property of the digitally modulated analog signal; and diagnosing operation of the two-wire process control loop based upon the measured property of the digitally modulated analog signal.
19. The method of claim 18 wherein measuring a property comprises monitoring amplitude of the digitally modulated analog signal.
20. The method of claim 18 wherein measuring a property comprises monitoring wave shape of the digitally modulated analog signal.
21. The method of claim 18 wherein measuring a property comprises monitoring a bit error rate (BERT) of digital transmissions on the two-wire process control loop.
22. The method of claim 18 wherein measuring a property comprises monitoring impedance of the two-wire process control loop.
23. The method of claim 22 wherein measuring a property comprises monitoring by receiving a high frequency signal on the two-wire process control loop.
24. The method of claim 18 including comparing a parameter of the digitally modulated analog signal to a stored value and responsively providing a diagnostic output.
25. The method of claim 18 includes correlating diagnostic information based upon the digitally modulated analog signal and a particular device on the two- wire process control loop which transmitted the signal.
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Cited By (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN103809570A (en) * 2013-12-25 2014-05-21 浙江图维电力科技有限公司 Underground shaftway multi-data collecting and controlling system
DE102013109237A1 (en) * 2013-08-27 2015-03-05 Endress + Hauser Flowtec Ag Current output circuit, test arrangement with a current output circuit and transmitter
US10270853B2 (en) 2016-07-22 2019-04-23 Fisher-Rosemount Systems, Inc. Process control communication between a portable field maintenance tool and an asset management system
US10374873B2 (en) 2016-07-22 2019-08-06 Fisher-Rosemount Systems, Inc. Process control communication between a portable field maintenance tool and a process control instrument
US10375162B2 (en) 2016-07-22 2019-08-06 Fisher-Rosemount Systems, Inc. Process control communication architecture
US10382312B2 (en) 2016-03-02 2019-08-13 Fisher-Rosemount Systems, Inc. Detecting and locating process control communication line faults from a handheld maintenance tool
US10481627B2 (en) 2016-07-25 2019-11-19 Fisher-Rosemount Systems, Inc. Connection check in field maintenance tool
US10505585B2 (en) 2016-07-25 2019-12-10 Fisher-Rosemount Systems, Inc. Portable field maintenance tool with a bus for powering and communicating with a field device
US10554644B2 (en) 2016-07-20 2020-02-04 Fisher-Rosemount Systems, Inc. Two-factor authentication for user interface devices in a process plant
US10585422B2 (en) 2016-07-22 2020-03-10 Fisher-Rosemount Systems, Inc. Portable field maintenance tool system having interchangeable functional modules
US10599134B2 (en) 2016-07-22 2020-03-24 Fisher-Rosemount Systems, Inc. Portable field maintenance tool configured for multiple process control communication protocols
US10764083B2 (en) 2016-07-25 2020-09-01 Fisher-Rosemount Systems, Inc. Portable field maintenance tool with resistor network for intrinsically safe operation
US11605037B2 (en) 2016-07-20 2023-03-14 Fisher-Rosemount Systems, Inc. Fleet management system for portable maintenance tools

Families Citing this family (21)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP5312806B2 (en) * 2005-02-28 2013-10-09 ローズマウント インコーポレイテッド Process device diagnostic apparatus and diagnostic method
DE102005041455A1 (en) * 2005-08-31 2007-03-15 Abb Patent Gmbh Automated device e.g. field device and control device, has first program assigned to microcontroller for conversion of data bit stream and second program assigned to microcontroller for recognition of frequency-modulated line signal
US20070068225A1 (en) * 2005-09-29 2007-03-29 Brown Gregory C Leak detector for process valve
US7913566B2 (en) * 2006-05-23 2011-03-29 Rosemount Inc. Industrial process device utilizing magnetic induction
US8898036B2 (en) * 2007-08-06 2014-11-25 Rosemount Inc. Process variable transmitter with acceleration sensor
US9217653B2 (en) * 2007-09-13 2015-12-22 Rosemount Inc. High performance architecture for process transmitters
DE102007054923A1 (en) * 2007-11-15 2009-05-20 Endress + Hauser Process Solutions Ag Method for operating a field device
US8250924B2 (en) * 2008-04-22 2012-08-28 Rosemount Inc. Industrial process device utilizing piezoelectric transducer
US7977924B2 (en) * 2008-11-03 2011-07-12 Rosemount Inc. Industrial process power scavenging device and method of deriving process device power from an industrial process
US8276458B2 (en) 2010-07-12 2012-10-02 Rosemount Inc. Transmitter output with scalable rangeability
CN102288849B (en) * 2011-06-29 2013-10-02 上海工业自动化仪表研究院 Highway addressable remote transducer (HART) loop fault diagnosis instrument and method
US9020768B2 (en) 2011-08-16 2015-04-28 Rosemount Inc. Two-wire process control loop current diagnostics
US9429462B2 (en) 2011-12-22 2016-08-30 Rosemount Inc. Two-wire process variable indicator with microencapsulated electrophoretic display
GB201208019D0 (en) * 2012-05-08 2012-06-20 Kitchener Renato Active physical layer diagnostic system
US20140074303A1 (en) * 2012-09-10 2014-03-13 Kevin M. Haynes Two-wire transmitter terminal power diagnostics
US9222844B2 (en) * 2013-02-25 2015-12-29 Rosemount Inc. Process temperature transmitter with improved sensor diagnostics
US11177997B2 (en) * 2014-02-21 2021-11-16 Commscope Technologies Llc Distributed antenna system transport link quality measurement
DE102015102486B4 (en) * 2015-02-20 2021-01-28 Krohne Messtechnik Gmbh Field device for determining a measured variable and method for communication
US10367612B2 (en) 2015-09-30 2019-07-30 Rosemount Inc. Process variable transmitter with self-learning loop diagnostics
US10937299B2 (en) * 2017-06-08 2021-03-02 Rosemount Inc. Current diagnostics for field devices
JP6863341B2 (en) * 2018-06-28 2021-04-21 横河電機株式会社 Field equipment, field equipment diagnostic methods and diagnostic equipment

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1998014855A1 (en) * 1996-10-04 1998-04-09 Fisher Controls International, Inc. Maintenance interface device for use in a process control network
GB2347232A (en) * 1999-02-22 2000-08-30 Fisher Rosemount Systems Inc Diagnostic tool for process control system
WO2001010107A1 (en) * 1999-07-28 2001-02-08 Legerity, Inc. Telephone equipment terminator capable of testing and configuring a transmission line
WO2001095478A2 (en) * 2000-06-09 2001-12-13 Rosemount Inc. Method and apparatus for demodulating coherent and non-coherent modulated signals
US20060069455A1 (en) * 2004-09-30 2006-03-30 Rosemount Inc. Process device with diagnostic annunciation

Family Cites Families (101)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3096434A (en) 1961-11-28 1963-07-02 Daniel Orifice Fitting Company Multiple integration flow computer
US3404264A (en) 1965-07-19 1968-10-01 American Meter Co Telemetering system for determining rate of flow
US3468164A (en) 1966-08-26 1969-09-23 Westinghouse Electric Corp Open thermocouple detection apparatus
GB1224904A (en) 1968-08-09 1971-03-10 John Stewart Simpson Stewart Improvements in and relating to electromedical apparatus
US3590370A (en) 1969-04-09 1971-06-29 Leeds & Northrup Co Method and apparatus for detecting the open-circuit condition of a thermocouple by sending a pulse through the thermocouple and a reactive element in series
US3701280A (en) 1970-03-18 1972-10-31 Daniel Ind Inc Method and apparatus for determining the supercompressibility factor of natural gas
US3691842A (en) 1970-09-08 1972-09-19 Beckman Instruments Inc Differential pressure transducer
US3688190A (en) 1970-09-25 1972-08-29 Beckman Instruments Inc Differential capacitance circuitry for differential pressure measuring instruments
US3849637A (en) 1973-05-22 1974-11-19 Combustion Eng Reactor megawatt demand setter
US3855858A (en) 1973-08-01 1974-12-24 V Cushing Self synchronous noise rejection circuit for fluid velocity meter
USRE29383E (en) 1974-01-10 1977-09-06 Process Systems, Inc. Digital fluid flow rate measurement or control system
US3948098A (en) 1974-04-24 1976-04-06 The Foxboro Company Vortex flow meter transmitter including piezo-electric sensor
US3952759A (en) 1974-08-14 1976-04-27 M & J Valve Company Liquid line break control system and method
US3973184A (en) 1975-01-27 1976-08-03 Leeds & Northrup Company Thermocouple circuit detector for simultaneous analog trend recording and analog to digital conversion
US4058975A (en) 1975-12-08 1977-11-22 General Electric Company Gas turbine temperature sensor validation apparatus and method
US4099413A (en) 1976-06-25 1978-07-11 Yokogawa Electric Works, Ltd. Thermal noise thermometer
US4102199A (en) 1976-08-26 1978-07-25 Megasystems, Inc. RTD measurement system
US4122719A (en) 1977-07-08 1978-10-31 Environmental Systems Corporation System for accurate measurement of temperature
JPS54111050A (en) 1978-02-21 1979-08-31 Toyota Motor Corp Automatic speed changer
US4250490A (en) 1979-01-19 1981-02-10 Rosemount Inc. Two wire transmitter for converting a varying signal from a remote reactance sensor to a DC current signal
US4249164A (en) 1979-05-14 1981-02-03 Tivy Vincent V Flow meter
US4279013A (en) 1979-10-31 1981-07-14 The Valeron Corporation Machine process controller
US4337516A (en) 1980-06-26 1982-06-29 United Technologies Corporation Sensor fault detection by activity monitoring
US4417312A (en) 1981-06-08 1983-11-22 Worcester Controls Corporation Electronic controller for valve actuators
US4459858A (en) 1981-09-18 1984-07-17 Marsh-Mcbirney, Inc. Flow meter having an electromagnetic sensor probe
US4399824A (en) 1981-10-05 1983-08-23 Air-Shields, Inc. Apparatus for detecting probe dislodgement
US4463612A (en) 1981-12-10 1984-08-07 The Babcock & Wilcox Company Electronic circuit using digital techniques for vortex shedding flowmeter signal processing
US4536753A (en) 1982-08-02 1985-08-20 Del Norte Technology, Inc. Self monitoring intruder detecting system of noise-cancelling vibration detectors
US4571689A (en) 1982-10-20 1986-02-18 The United States Of America As Represented By The Secretary Of The Air Force Multiple thermocouple testing device
US4668473A (en) 1983-04-25 1987-05-26 The Babcock & Wilcox Company Control system for ethylene polymerization reactor
US4530234A (en) 1983-06-30 1985-07-23 Mobil Oil Corporation Method and system for measuring properties of fluids
JPH0619666B2 (en) 1983-06-30 1994-03-16 富士通株式会社 Failure diagnosis processing method
US4540468A (en) 1983-09-26 1985-09-10 Board Of Trustees Of The University Of Maine Method for determining the degree of completion and pulp yield
US4707796A (en) 1983-10-19 1987-11-17 Calabro Salvatore R Reliability and maintainability indicator
US4686638A (en) 1983-11-04 1987-08-11 Kabushiki Kaisha Kosumo Keiki Leakage inspection method with object type compensation
EP0158192B1 (en) 1984-03-31 1991-06-05 B a r m a g AG Measurement data acquisition method for a plurality of measurement points
US4517468A (en) 1984-04-30 1985-05-14 Westinghouse Electric Corp. Diagnostic system and method
US4649515A (en) 1984-04-30 1987-03-10 Westinghouse Electric Corp. Methods and apparatus for system fault diagnosis and control
US4644479A (en) 1984-07-31 1987-02-17 Westinghouse Electric Corp. Diagnostic apparatus
US4642782A (en) 1984-07-31 1987-02-10 Westinghouse Electric Corp. Rule based diagnostic system with dynamic alteration capability
US4630265A (en) 1984-09-26 1986-12-16 General Electric Company Method and apparatus for selecting for use between data buses in a redundant bus communication system
JPH0734162B2 (en) 1985-02-06 1995-04-12 株式会社日立製作所 Analogical control method
US4758308A (en) 1985-03-05 1988-07-19 Carr Wayne F System for monitoring contaminants with a detector in a paper pulp stream
US4807151A (en) 1986-04-11 1989-02-21 Purdue Research Foundation Electrical technique for correcting bridge type mass air flow rate sensor errors resulting from ambient temperature variations
GB8611360D0 (en) 1986-05-09 1986-06-18 Eaton Williams Raymond H Air condition monitor unit
US4736367A (en) 1986-12-22 1988-04-05 Chrysler Motors Corporation Smart control and sensor devices single wire bus multiplex system
US5005142A (en) 1987-01-30 1991-04-02 Westinghouse Electric Corp. Smart sensor system for diagnostic monitoring
US4736763A (en) 1987-02-26 1988-04-12 Britton George L Automatic device for the detection and shutoff of unwanted liquid flow in pipes
DE3877873D1 (en) 1987-04-02 1993-03-11 Eftag Entstaubung Foerdertech CIRCUIT ARRANGEMENT FOR EVALUATING THE SIGNALS GENERATED BY A SEMICONDUCTOR GAS SENSOR.
US4988990A (en) 1989-05-09 1991-01-29 Rosemount Inc. Dual master implied token communication system
US5122794A (en) 1987-08-11 1992-06-16 Rosemount Inc. Dual master implied token communication system
US4873655A (en) 1987-08-21 1989-10-10 Board Of Regents, The University Of Texas System Sensor conditioning method and apparatus
US4907167A (en) 1987-09-30 1990-03-06 E. I. Du Pont De Nemours And Company Process control system with action logging
US4831564A (en) 1987-10-22 1989-05-16 Suga Test Instruments Co., Ltd. Apparatus for estimating and displaying remainder of lifetime of xenon lamps
US4818994A (en) 1987-10-22 1989-04-04 Rosemount Inc. Transmitter with internal serial bus
US5274572A (en) 1987-12-02 1993-12-28 Schlumberger Technology Corporation Method and apparatus for knowledge-based signal monitoring and analysis
US5193143A (en) 1988-01-12 1993-03-09 Honeywell Inc. Problem state monitoring
US4841286A (en) 1988-02-08 1989-06-20 Honeywell Inc. Apparatus and method for detection of an open thermocouple in a process control network
US4924418A (en) 1988-02-10 1990-05-08 Dickey-John Corporation Universal monitor
JPH0774961B2 (en) 1988-04-07 1995-08-09 株式会社日立製作所 Auto tuning PID controller
US4926364A (en) 1988-07-25 1990-05-15 Westinghouse Electric Corp. Method and apparatus for determining weighted average of process variable
US4964125A (en) 1988-08-19 1990-10-16 Hughes Aircraft Company Method and apparatus for diagnosing faults
US5197328A (en) 1988-08-25 1993-03-30 Fisher Controls International, Inc. Diagnostic apparatus and method for fluid control valves
US5099436A (en) 1988-11-03 1992-03-24 Allied-Signal Inc. Methods and apparatus for performing system fault diagnosis
US5067099A (en) 1988-11-03 1991-11-19 Allied-Signal Inc. Methods and apparatus for monitoring system performance
EP0369489A3 (en) 1988-11-18 1991-11-27 Omron Corporation Sensor controller system
US5025344A (en) 1988-11-30 1991-06-18 Carnegie Mellon University Built-in current testing of integrated circuits
JP2714091B2 (en) 1989-01-09 1998-02-16 株式会社日立製作所 Field instrument
NL8900050A (en) 1989-01-10 1990-08-01 Philips Nv DEVICE FOR MEASURING A CURRENT CURRENT OF AN INTEGRATED MONOLITIC DIGITAL CIRCUIT, INTEGRATED MONOLITIC DIGITAL CIRCUIT PROVIDED WITH SUCH A DEVICE AND TESTING EQUIPMENT PROVIDED WITH SUCH A DEVICE.
US5098197A (en) 1989-01-30 1992-03-24 The United States Of America As Represented By The United States Department Of Energy Optical Johnson noise thermometry
US5089979A (en) 1989-02-08 1992-02-18 Basic Measuring Instruments Apparatus for digital calibration of detachable transducers
US5081598A (en) 1989-02-21 1992-01-14 Westinghouse Electric Corp. Method for associating text in automatic diagnostic system to produce recommended actions automatically
US4939753A (en) 1989-02-24 1990-07-03 Rosemount Inc. Time synchronization of control networks
US5089984A (en) 1989-05-15 1992-02-18 Allen-Bradley Company, Inc. Adaptive alarm controller changes multiple inputs to industrial controller in order for state word to conform with stored state word
US4934196A (en) 1989-06-02 1990-06-19 Micro Motion, Inc. Coriolis mass flow rate meter having a substantially increased noise immunity
US5269311A (en) 1989-08-29 1993-12-14 Abbott Laboratories Method for compensating errors in a pressure transducer
JPH03166601A (en) 1989-11-27 1991-07-18 Hitachi Ltd Symbolizing device and process controller and control supporting device using the symbolizing device
US5019760A (en) 1989-12-07 1991-05-28 Electric Power Research Institute Thermal life indicator
US5111531A (en) 1990-01-08 1992-05-05 Automation Technology, Inc. Process control using neural network
US5235527A (en) 1990-02-09 1993-08-10 Toyota Jidosha Kabushiki Kaisha Method for diagnosing abnormality of sensor
US5134574A (en) 1990-02-27 1992-07-28 The Foxboro Company Performance control apparatus and method in a processing plant
US5122976A (en) 1990-03-12 1992-06-16 Westinghouse Electric Corp. Method and apparatus for remotely controlling sensor processing algorithms to expert sensor diagnoses
US5053815A (en) 1990-04-09 1991-10-01 Eastman Kodak Company Reproduction apparatus having real time statistical process control
US5150289A (en) 1990-07-30 1992-09-22 The Foxboro Company Method and apparatus for process control
US5167009A (en) 1990-08-03 1992-11-24 E. I. Du Pont De Nemours & Co. (Inc.) On-line process control neural network using data pointers
US5142612A (en) 1990-08-03 1992-08-25 E. I. Du Pont De Nemours & Co. (Inc.) Computer neural network supervisory process control system and method
US5212765A (en) 1990-08-03 1993-05-18 E. I. Du Pont De Nemours & Co., Inc. On-line training neural network system for process control
US5121467A (en) 1990-08-03 1992-06-09 E.I. Du Pont De Nemours & Co., Inc. Neural network/expert system process control system and method
US5224203A (en) 1990-08-03 1993-06-29 E. I. Du Pont De Nemours & Co., Inc. On-line process control neural network using data pointers
US5197114A (en) 1990-08-03 1993-03-23 E. I. Du Pont De Nemours & Co., Inc. Computer neural network regulatory process control system and method
US5175678A (en) 1990-08-15 1992-12-29 Elsag International B.V. Method and procedure for neural control of dynamic processes
US5130936A (en) 1990-09-14 1992-07-14 Arinc Research Corporation Method and apparatus for diagnostic testing including a neural network for determining testing sufficiency
US5265031A (en) 1990-11-26 1993-11-23 Praxair Technology, Inc. Diagnostic gas monitoring process utilizing an expert system
US5214582C1 (en) 1991-01-30 2001-06-26 Edge Diagnostic Systems Interactive diagnostic system for an automobile vehicle and method
US5143452A (en) 1991-02-04 1992-09-01 Rockwell International Corporation System for interfacing a single sensor unit with multiple data processing modules
JP2636527B2 (en) 1991-03-04 1997-07-30 三菱電機株式会社 Insulation degradation prevention and insulation degradation prediction diagnostic equipment for electrical equipment storage equipment
US5137370A (en) 1991-03-25 1992-08-11 Delta M Corporation Thermoresistive sensor system
US5282131A (en) 1992-01-21 1994-01-25 Brown And Root Industrial Services, Inc. Control system for controlling a pulp washing system using a neural network controller
US5228780A (en) 1992-10-30 1993-07-20 Martin Marietta Energy Systems, Inc. Dual-mode self-validating resistance/Johnson noise thermometer system
JPH0799695A (en) * 1993-09-28 1995-04-11 Toshiba Corp Communication equipment
US7018800B2 (en) * 2003-08-07 2006-03-28 Rosemount Inc. Process device with quiescent current diagnostics

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1998014855A1 (en) * 1996-10-04 1998-04-09 Fisher Controls International, Inc. Maintenance interface device for use in a process control network
GB2347232A (en) * 1999-02-22 2000-08-30 Fisher Rosemount Systems Inc Diagnostic tool for process control system
WO2001010107A1 (en) * 1999-07-28 2001-02-08 Legerity, Inc. Telephone equipment terminator capable of testing and configuring a transmission line
WO2001095478A2 (en) * 2000-06-09 2001-12-13 Rosemount Inc. Method and apparatus for demodulating coherent and non-coherent modulated signals
US20060069455A1 (en) * 2004-09-30 2006-03-30 Rosemount Inc. Process device with diagnostic annunciation

Cited By (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE102013109237A1 (en) * 2013-08-27 2015-03-05 Endress + Hauser Flowtec Ag Current output circuit, test arrangement with a current output circuit and transmitter
CN103809570A (en) * 2013-12-25 2014-05-21 浙江图维电力科技有限公司 Underground shaftway multi-data collecting and controlling system
US11368384B2 (en) 2016-03-02 2022-06-21 Fisher-Rosemount Systems, Inc. Detecting and locating process control communication line faults from a handheld maintenance tool
US10382312B2 (en) 2016-03-02 2019-08-13 Fisher-Rosemount Systems, Inc. Detecting and locating process control communication line faults from a handheld maintenance tool
US10554644B2 (en) 2016-07-20 2020-02-04 Fisher-Rosemount Systems, Inc. Two-factor authentication for user interface devices in a process plant
US11605037B2 (en) 2016-07-20 2023-03-14 Fisher-Rosemount Systems, Inc. Fleet management system for portable maintenance tools
US10585422B2 (en) 2016-07-22 2020-03-10 Fisher-Rosemount Systems, Inc. Portable field maintenance tool system having interchangeable functional modules
US10375162B2 (en) 2016-07-22 2019-08-06 Fisher-Rosemount Systems, Inc. Process control communication architecture
US10599134B2 (en) 2016-07-22 2020-03-24 Fisher-Rosemount Systems, Inc. Portable field maintenance tool configured for multiple process control communication protocols
US10374873B2 (en) 2016-07-22 2019-08-06 Fisher-Rosemount Systems, Inc. Process control communication between a portable field maintenance tool and a process control instrument
US10270853B2 (en) 2016-07-22 2019-04-23 Fisher-Rosemount Systems, Inc. Process control communication between a portable field maintenance tool and an asset management system
US10505585B2 (en) 2016-07-25 2019-12-10 Fisher-Rosemount Systems, Inc. Portable field maintenance tool with a bus for powering and communicating with a field device
US10481627B2 (en) 2016-07-25 2019-11-19 Fisher-Rosemount Systems, Inc. Connection check in field maintenance tool
US10764083B2 (en) 2016-07-25 2020-09-01 Fisher-Rosemount Systems, Inc. Portable field maintenance tool with resistor network for intrinsically safe operation

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EP2067088A2 (en) 2009-06-10
CN104618079B (en) 2019-10-22
JP5068822B2 (en) 2012-11-07
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CN104618079A (en) 2015-05-13
CN101523318A (en) 2009-09-02

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