Digital Panel Meter for Process and Ratiometric Applications P/N L2111FP1

Digital Panel Meter for Process and Ratiometric Applications

Price: $870.00
  • P/NL2111FP1

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Features

  • Reads process signals from ±200 mV to ±600V or ±2 mA to ±5A full scale
  • Accuracy ±0.01%  of reading ± 2 counts 
  • Absolute and ratiometric mode for bridges and potentiometers
  • Error less than 0.01%  of full scale for absolute ranges, less than 0.01%  of reading for ratiometric measurements
  • All input ranges are user selectable and factory calibrated
  • Up to 60 conversions per second, Ideal for peak or valley capture
  • Digital span adjust from 0 to ±99,999, zero adjust from -99,999 to +99,999
  • Front panel scalable to ±99,999 for use with current shunts
  • 1/8 DIN size with bright red or green 0.56" (14.2mm), high LED digits
  • Transducer excitation output, 5, 10, 12, or 24 Vdc (isolated)
  • Power 85-264 Vac / 90-300 Vdc or 10-48 Vdc / 12-32 Vac (isolated)
  • Operating temperature from -40°C to 70°C  (-40°F to 158°F)
  • Wide choice of Plug-in-Play options:
    - 2 or 4 relays, mechanical or solid state, for alarm or control (isolated)
    - 1 or 2 Analog output, 4-20 mA, 0-20 mA, 0-10V, or -10V to +10V (isolated)
    - Communications: Ethernet, WiFi, USB, RS232, RS485 (isolated)
    - Extended DPM allows up to 180 data points for custom curve linearization
    and a rate derived from consecutive readings

Laureate™ 1/8 DIN Digital Panel Meter for digital process

 are a cost-effective solution for process signals such as 4-20 mA, 0-10V, or 0-5V. Full-scale voltage input ranges from ±200 mV to ±600V and current ranges from ±2 mA to ±5 A are jumper selectable. All ranges are precalibrated at the factory, so that recalibration is not needed when changing ranges or signal conditioners. The 200.00 mV and 2.000 V ranges provide a high input impedance of 1 Gohm to minimize the load on the voltage signal.

The digital panel meter can be set to absolute and ratiometric (or potentiometer follower) mode by making a software selection. In this mode, the digital panel meter tracks a ratio of the applied excitation voltage and is unaffected by changes in the excitation voltage. Ratiometric measurements provide an exceptional accuracy of 0.01%  of reading ± 2 counts. This capability is used with the meter's 5V or 10V excitation output for load cells and Wheatstone bridges, and with the meter's 5V excitation output for potentiometers which track wiper position.

All signal conditioner board ranges are factory-calibrated, with calibration factors for each range securely stored in an onboard EEPROM. These factors can be scaled via software to accommodate external shunts, enabling field replacement of signal conditioner boards without necessitating recalibration of the associated digital panel meter. For optimal accuracy, factory recalibration is recommended annually. All Laurel Electronics instruments undergo factory calibration using the industry-leading Fluke calibrators, which are recalibrated yearly and certified traceable to national standards, ensuring the highest level of precision and reliability.

The optional extended Laureate computer board enhances the Laureate Digital Panel Meter by displaying rates derived from successive readings and enabling highly accurate custom curve linearization. For example, it can calculate liquid volume or flow rate in a horizontal cylindrical tank using levels from a 4-20 mA transmitter. Setup is straightforward: users input up to 180 data points into a spreadsheet or text file, and the computer calculates spline-fit segments, which are then downloaded to the digital panel meter for precise operation.

The Laureate Digital Panel Meter is easily programmed with Laurel’s free Instrument Setup Software, downloadable from our website and compatible with Windows PCs, requiring a data interface board for setup.

Scaling is from -99,999 to +99,999 (five full digits) with any decimal point to display readings in engineering units, such as PSI. Three scaling methods are user selectable: scale and offset, two-point method, and system-level calibration using actual transducer signals.

High read rate of up to 50 or 60 conversions per second, the Laureate™ Digital Panel Meter uses Concurrent Slope (US Pat. 5,262,780) analog-to-digital conversion to integrate signals over a full power line cycle (50 Hz or 60 Hz). This read rate enables peak and valley capture, real-time computer interfacing, and control applications. Peak and valley values are automatically captured and can be viewed using Laurel’s free Instrument Setup Software (compatible with Windows PCs) or transmitted as serial data.

Digital signal filtering modes can be selected to ensure stable readings in electrically noisy environments.
  • An unfiltered selection provides true peak and valley readings and aids in control applications.
  • A batch average filter selection averages each 16 conversions.
  • An adaptive moving average filter selection provides a choice of 8 time constants from 80 ms to 9.6 seconds. When a significant change in signal level occurs, the filter adapts by briefly switching to the shortest time to follow the change, then reverts back to its selected time constant. An Auto setting selects the time constant selection based on signal noise.

Two tare functions: auto-tare and manual tare. In auto-tare, an input line is grounded by an external pushbutton. In manual tare, the tare value can be entered manually via a control input pushbutton or using Laurel's free Instrument Setup Software.  

Peak and valley values are automatically captured. These may be displayed via a front panel pushbutton command or control signal at the rear connector, or be transmitted as serial data.

Two rear panel control Inputs (CMOS/TTL levels, logic 0 = tied to digital ground, logic 1 = open) or dry contacts that can be set to control / activate 14 meter commands.

An (isolated) 5, 10, 12, or 24 Vdc excitation output is standard to power transducers or two-wire transmitters. Ratiometric operation, which automatically compensates for changes in the applied excitation, is jumper selectable for applications, such as bridges, where the signal to be measured is proportional to the excitation level.

DC Voltage

DC Voltage Range Resolution Input Resistance Error at 25°C
±200.00 10 µV 1 GΩ 0.01% of FS ± 2 cts
±2.0000 100 µV 1 GΩ 0.01% of FS ± 2 cts
±20.000 1 mV 10 MΩ 0.01% of FS ± 2 cts
±200.00 10 mV 10 MΩ 0.01% of FS ± 2 cts
±300.00 0.1 V 10 MΩ 0.01% of FS ± 2 cts
±600.00* 0.1 V 10 MΩ ± 0.4 V
* ±600.00V range not ETL certified.
Recalibration: All ranges are calibrated at the factory. Recalibration is recommended every 12 months.

DC Current

DC Current Range Resolution Input Resistance Error at 25°C
±2.0000 mA 0.1 µA 100 Ω 0.01% FS ± 2 cts
±20.000 mA 1.0 µA 10 Ω 0.01% FS ± 2 cts
±200.00 mA 10 µA 1 Ω 0.01% FS ± 2 cts
±5.000 A 1 mA 0.01Ω ± 10 mA

DC Voltage & Current

Display
Readout 5 LED digits, 7-segment, 14.2 mm (.56"), red or green.
Range -99999 to 99999 or -99990 to 99990 (count by 10)
Indicators Minus sign, 2 red LED lamps
A-to-D Conversion
Technique Concurrent Slope™ (Pat 5,262,780)
A-to-D rate 60/s at 60 Hz, 50/s at 50 Hz
Output update rate 56/s at 60 Hz, 47/s at 50 Hz
Display update rate 3.5/s at 60 Hz, 3/s at 50 Hz
Reading Accuracy
Error at 25°C 0.01% of full scale ± 2 counts (except 5A range) for absolute measurements.
0.01% of reading ± 2 counts for ratiometric measurements.
Span tempco 0.003% of reading/°C
Zero tempco 0.1 count/°C
Noise Rejection
CMR, DC to 60 Hz 130 dB
NMR at 50/60 Hz 90 dB with min filtering
Maximum Signal
Max applied voltage 600 Vac for 20, 200 and 300 V ranges, 125 Vac for other ranges
Overcurrent protection
25x for 2 mA, 8x for 20 mA, 2.5x for 200 mA, 1x for 5 A
Power
Voltage, standard 85-264 Vac or 90-300 Vdc
Voltage, optional 12-32 Vac or 10-48 Vdc
Frequency DC or 47-63 Hz
Power  consumption (typical, base meter) 1.2W @ 120 Vac, 1.5W @ 240 Vac, 1.3W @ 10 Vdc, 1.4W @ 20 Vdc, 1.55W @ 30 Vdc, 1.8W @ 40 Vdc, 2.15W @ 48 Vdc
Power Isolation 250V rms working, 2.3 kV rms per 1 min test
Excitation Output (standard)
5 Vdc 5 Vdc ± 5%, 100 mA (jumper selectable)
10 Vdc 10 Vdc ± 5%, 120 mA (jumper selectable)
12 Vdc 12 Vdc ± 5%, 100 mA (jumper selectable)
24 Vdc 24 Vdc ± 5%, 50 mA (jumper selectable)
Output Isolation 50 Vdc from signal ground
Ratiometric operation 5 Vdc or 10 Vdc for bridge circuits, 5 Vdc for potentiometers
Analog Output Board (optional)
Output levels 4-20 mA, 0-20 mA, 0-10V, -10 to +10V (jumper selectable)
Current compliance 2 mA at 10V ( > 5 kΩ load)
Voltage compliance 12V at 20 mA (< 600 Ω load)
Scaling Zero and full scale adjustable from -99999 to +99999
Resolution 16 bits (0.0015% of full scale)
Step function response 80 ms to 99% of final value (typ)
Isolation 250V rms working, 2.3 kV rms per 1 min test
Relay Output Boards (optional)
Relay types 2 Form C contact relays or 4 Form A contact relays (NO) 2 or 4 Form A, AC/DC solid state relays (NO)
Current tatings 8A at 250 Vac or 24 Vdc for contact relays 120 mA at 140 Vac or 180 Vdc for solid state relays
Output common Isolated commons for dual relays or each pair of quad relays
Isolation 250V rms working, 2.3 kV rms per 1 min tes
Communication Boards (optional)
Board Selections RS232RS485 with dual RJ11 connectors, RS485 with dual RJ45 connectors, USB, High-Speed Ethernet, USB-to-RS485 gatewayHigh-Speed Ethernet-to-RS485 gateway, WiFi with built-in antenna plus USB & RS485, WiFi with external antenna plus USB & RS485
Protocols Laurel Custom ASCII (serial), Modbus RTU (serial), Modbus TCP (Ethernet or WiFi)
Digital addresses 247 (Modbus), 31 (Laurel ASCII),
Isolation 250V rms working, 2.3 kV rms per 1 min test
Signal Connections
process meter electrical connections
Environmental
Operating temperature -40°C to 70°C (-40°F to 158°F)
Storage temperature. -40°C to 85°C (-40°F to 185°F)
Relative humidity 95% at 40°C, non-condensing
Protection NEMA-4X (IP-65) when panel mounted
Mechanical
Enclosure 1/8 DIN, high impact plastic, UL 94V-0, color: black
Mounting 1/8 DIN panel cutout required: 3.622" x 1.772" (92 mm x 45 mm).
Dimensions 4.68" x 2.45" x 5.64" (119 mm x 62 mm x 143 mm) (W x H x D)
Maximum panel thickness 4.5 mm (0.18")
Tightening Torque - Connectors Screw terminal connectors: 5 lb-in (0.56 Nm)
Tightening Torque - Pawls Digital Panel Meter Case Pawls: 5 lb-in (0.56 Nm)
Weight of base meter 210 g (7.4 oz) typical (DPM, counter, timer, 6-digit remote display)
Weight of option boards 30 g (1.0 oz) typical per board (analog output, relay output, communications)
General
Programming Methods Four front panel buttons or via Laurel's free Instrument Setup Software, which runs on a PC under MS Windows. 
Security Lockout options include using the front panel buttons, the free Instrument Setup Software, or a hardware jumper.
Warranty 3 years parts & labor
Recalibration: All ranges are calibrated at the factory. Recalibration is recommended every 12 months.

Free Instrument Setup Software for Series 2 Laureates

Digital Panel Meter Laurel Electronics Digital Transmitters
1/8 DIN Digital Panel Meters DIN Rail Transmitters

Free Downloadable Windows-based Instrument Setup (IS) software (Data Interface Board Required) for use with our programmable Digital Panel Meters, Scale Meters, Counters, Timers, Remote Displays, and Transmitters, are an easy method to set up Laureate 1/8 DIN digital panel meters, counters, timers, remote displays, and DIN-rail transmitters, as explained in the Instrument Setup Software Manual. Laureate 1/8 DIN instruments can also be set up from the front panel, as explained in their respective Owners Manuals. Instrument Setup software is of benefit whether or not the PC is connected to the instrument.

  • When the PC is connected to the instrument, Instrument Setup software can retrieve the setup file from the instrument or open a default setup file or previously saved setup file from disk View Setup, then provides graphical user interface (GUI) screens with pull-down menus applicable to input, display, scaling, filtering, alarms, communications, analog output, and front panel lockouts. Fields that are not applicable to the instrument as configured are either left out or grayed out. Clicking on any item will bring up a detailed Help screen for that item. After editing, the setup file can be downloaded, uploaded to the instrument, or saved to a disk. The same setup file can then be downloaded into multiple instruments.
  • When the PC is not connected to the instrument, the above GUI screens can be used to set up a virtual instrument. The setup file can then be saved to disk. Switching toView Menu then brings up a screen with the required front panel programming steps. This view can be printed out for use at the instrument site and to serve as a hard copy record.

    Download Free Instrument Setup Software


Installation

Set User Account Control (UAC) of MS Windows to "Never notifiy me" so that Instrument Setup Software can create directories. The UAC change screen can be reached as follows:

  • Under Windows 7, click on the Windows Start button in the lower left of the desktop and enter "UAC" in the search field.
  • Under Windows 8, navigate to Control Panel, then to the "User Accounts and Family Safety" section, and click on "Change User Account Control Settings."
  • Under Windows 10, click on the Windows Start button in the lower left of the desktop, then on "Settings", and enter "UAC" in the search field.
  • Reboot your computer for the changed UAC setting to take effect.
Meter board with USB Type-B connector

RJ11-to-DB9 cable with rear view of DB9 connector to PC

Laurel USB cable, P/N CBL05

RS232 cable, meter to PC, P/N CBL01

Laureate 1/8 DIN Laureate instruments must be equipped with a serial communications board and be connected to the computer via a serial communications cable. The connection can be via RS232, RS485, USB or Ethernet. Following setup, the serial communications board may be removed from the instrument if desired. The wiring of the RS232 cable is illustrated above with end views of the two connectors.

Laureate LT Series transmitters come standard with a 3-wire serial interface, which can be jumpered for RS232 or RS485.
Laureate LTE Series transmitters come standard with an Ethernet interface.

Meter Setup Screens

Click on any of the reduced screens below for a full-size screen view, then click on the Back button of your browser to return to this page. The screens examples below are for a fully-loaded Series 2 Digital Panel Meter (DPM), which is connected to the PC via RS232. If the meter is a Series 1 meter (pre-2007), this is sensed by the software, and somewhat different screens are brought up. Please see Series 1 setup screens.

Laurel Dual Channel Pulse Input Rate Meter
Welcome Screen
From the computer desktop, click on Start > Programs > IS2 > IS2. Or click on the IS icon on your desktop. This splash screen will be displayed for three seconds. The software revision number is in the lower right.
more
Setup Screen 02s for Digital Panel Meters and Digital Transmitters
Communications Selection Screen
Specify your desired communication protocol and the serial communications bus type, which should match the jumper setup of the instrument. Select None if the PC is not connected to the instrument.
more
Setup Screen 3 for Digital Panel Meters and Digital Transmitters
Establish Communications Screen
If you selected RS-232, you will be asked to specify the PC Com Port and Baud Rate, which should match the jumper setup of the instrument. Click on Establish. With the right settings, the Communications Established field will light up in green, and the Meter Type will be recognized. If so, click onMain Menu.
more
Setup Screen 4 for Digital Panel Meters and Digital Transmitters
Main Menu Screen
Click on File > Default Setup to retrieve the default setup file from disk for your type of meter. Click on File > Open Setupto retrieve a previously saved setup file from disk or on File > Save Setup to save your edited setup file to disk. Click onDPM > Get Setup to retrieve the setup file from your meter or on DPM > Put Setup to download your edited setup file into the meter.
more
Setup Screen 5 for Digital Panel Meters and Digital Transmitters
DPM Input + Display Setup Screen
From the Main Menu, click on View > Setup, then on theInput+Display tab. You can now specify the meter hardware, signal type, display mode, and functions of control inputs A and B. Clicking on any item brings up a pull-down menu with the available choices.
more
Setup Screen 6 for Digital Panel Meters and Digital Transmitters
DPM Scaling Setup Screen
Click on the Scaling tab, which provides three scaling methods to relate the signal to the displayed reading: 1) Scale and Offset method, 2) Coordinates of two points method, and 3) Reading Coordinates of Two Points method. The last method uses actual high and low signals, and the computer will prompt you.
more
Setup Screen 7 for Digital Panel Meters and Digital Transmitters
DPM Filter Setup Screen
Click on the Filter tab, which allows you to specify the digital filter time constant (if any), the adaptive filter threshold, and whether Peak / Valley values are filtered or unfiltered. As for all setup screens, clicking on the F1 key while an item is highlighted brings up a Help screen for that item, as illustrated.
more
Setup Screen 8 for Digital Panel Meters and Digital Transmitters
DPM Relay Alarms Setup Screen
Click on the Relay Alarms tab, which allows you to set up Alarms 1 and 2 for the optional dual relay output board. Clicking on any of the four numeric fields changes these to green and brings up a special field to enter the desired numeric value, which is tied to the displayed reading.
more
Setup Screen 9 for Digital Panel Meters and Digital Transmitters
DPM Communications Setup Screen
Click on the Communications tab so set up serial communications. In particular, you can special the Serial Protocol and the meter address if multiple meters are to be addressed on the same serial data line.
more
Setup Screen 10 for Digital Panel Meters and Digital Transmitters
DPM Analog Output Setup Screen
Click on the Analog Out tab so set up the optional analog output board. Three output ranges are selectable, the endpoints of which can be tied to user-specified High and Low readings.
more
Setup Screen 11 for Digital Panel Meters and Digital Transmitters
DPM Lockouts Setup Screen
Click on the Lockouts tab to check off menu items which will no longer be accessible from the front panel of the meter. This will simplify meter operation and prevent unintended setup changes.
more

Meter Setup Utilities

Setup Screen 12 for Digital Panel Meters and Digital Transmitters
DPM Front Panel Setup Screen
As an aid to programming the meter from the front panel when a serial connection is not available, you can return to the Main Menu and click on View > Menu. The required sequence of front panel screens will then be displayed. Click on any step in the sequence for the meaning of each digit, as illustrated for the FILtEr step. For a hardcopy, simply press on Print.
more
Setup Screen 13 for Digital Panel Meters and Digital Transmitters
DPM Jumper Setup Screen
Specify your desired communication protocol and the serial communications bus type, which should match the jumper setup of the instrument. Select None if the PC is not connected to the instrument.
more
Setup Screen 14 for Digital Panel Meters and Digital Transmitters
DPM Jumper Setup Screens
Click on any of the displayed plug-in boards, and you will be presented with the jumper positions and electrical connections for your selected board. This minimizes the need to refer to the printed manual.
more
Setup Screen 15 for Digital Panel Meters and Digital Transmitters
DPM Commands Screen
This page allows you set up external input, serial communications, an analog output proportional to the display (optional), and lockouts for Laureate digital counters. The grayed out area at the top right of the screen applies to Laureate remote displays.
more
Graphical Output Screens (not available with Ethernet)

From the Main Menu, click on Readings if your PC is connected to the meter. A pull-down menu then offers three choices: ListPlot and Graph.

  • List presents the latest readings in a 20-row by 10-column table. Press Pause at any time to freeze the display. This is one method to capture peak readings.   
  • Plot generates a plot of readings vs. time in seconds. It effectively turns the DPM-PC combination into a printing digital oscilloscope.
    more 
  • Graph generates a histogram where the horizontal axis is the reading and the vertical axis is the number of occurrences of readings. The display continually resizes itself as the number of readings increases.
    more
Setup Screen 18 for Digital Panel Meters and Digital Transmitters
DPM Calibration Screens
Click on the Scaling tab, which provides three scalClick on the Scaling tab, which provides three scaling methods to relate the signal to the displayed reading: 1) Scale and Offset method, 2) Coordinates of two points method, and 3) Reading Coordinates of Two Points method. The last method uses actual high and low signals, and the computer will prompt you.
more
Setup Screen 19 for Digital Panel Meters and Digital Transmitters
Frequency Meter Calibration Screen
Calibration of the quartz crystal of the Laureate frequency meter requires the input of a known frequency from a calibrator. Apply the frequency, then enter the frequency in Hertz. Calibration will be automatic, with storage of the calibration factor stored in non-volatile memory.
more

 

Laureate™ 1/8 DIN Case For Laureate Digital Panel Meters, Counters, Timers & Remote Displays

Laurel panel meter case

Key Features

  • Meets 1/8 DIN Standard.
  • Installs from front of panel.
  • Short depth behind the panel: only 4" (102 mm) plus connectors.
  • Understated 0.157" (4 mm) thick bezel.
  • Meets NEMA 4X (IP-65) for high-pressure wawshdon when panel mounted.
  • Screw clamps connectors meet VDE / IEC / UL / CSA safety standards.
  • Rugged GE Lexan® housing material.
  • Safety certified per EN 61010-1.
CE CertifiedRoHs CertifiedETL Certified

Dimensions

Mechanical specifications of Laureate digital panel meters and electronic counters

Maximum panel thickness: 4.5 mm (0.18")
Weight of base meter:
210 g (7.4 oz) typical (DPM, counter, timer, 6-digit remote display)
Weight of option boards: 30 g (1.0 oz) typical per board (analog output, relay output, communications)
Tightening Torque - Connectors: Screw terminal connectors: 5 lb-in (0.56 Nm)
Tightening Torque - Pawls: Digital Panel Meter Case Pawls: 5 lb-in (0.56 Nm)
Dimensioned CAD assembly drawings in EPRT, STEP, x_t. dwg, pdf file formats: Laureate-meter-case.zip (zipping prevents browser from opening CAD files as text files).

Panel Mounting

Mechanical Panel Mounting GuideSlide the meter into a 45 x 92 mm 1/8 DIN panel cutout. Ensure that the provided gasket is in place between the front of the panel and the back of the meter bezel. The meter is secured by two pawls, each held by a screw, as illustrated. Turning each screw counterclockwise extends the pawl outward from the case and behind the panel. Turning each screw clockwise further tightens it against the panel to secure the meter.

Turning each screw counterclockwise loosens the pawl and retracts it into its well. This position allows installed meter to be removed from their panel, or new meters to be installed in a panel. Do not remove the screws from their pawls. Doing so would cause the screw and pawl to fall off and likely get lost. Do not overtighten so as not to damage the plastic parts.

 

Process Signal and Ratiometric Meter Frequently Asked Technical Questions

Laureate DC meters and process meters are the same and are covered by the same Section 11 of the Laureate DPM user manual. The term “DC meter” is used for any meter that displays units of DC voltage or DC current. The term “process meter” is typically used for a DC meter that accepts an industry standard 4-20 mA or 0-10V DC signal and converts that signal to engineering units using scale and offset adjustment, also called zero and span adjustment.  All Laureate DC meters are user scalable regardless of range. The ±20.000 mA DC range is used for the 4-20 mA process range.
Also called a “potentiometer follower meter,” a ratiometric metric displays the ratio of a signal voltage to an applied excitation voltage. The typical sending device is a potentiometer where a DC excitation voltage is applied across a resistive element and the signal to be measures is picked off by a contact that slides along the length of that element. Linear potentiometers are used to measure linear displacement in inches or mm. Rotary potentiometer are used to measure angular displacement in degrees or radians. For use as ratiometric meters, Laureate process meters need to be jumpered for 5 Vdc excitation and be programmed for ratiometric operation.
Laureate process meters whose model number ends with P or P1 and load cell meters whose model number end with WM1 can be used with the same types of load cells and can scale millivolt signals for display in engineering units. Limitations of the Laureate process meter compared to the load cell meter are that its resolution is limited to 10 microvolts, not 1 microvolt, and load cell connections are limited to 4 wires, not 6 wires. The slightly more expensive load cell meter is recommended for higher resolution readings.
Both signal types have been popular analog output standards for transducers and transmitters for decades. Both signals are electrically safe. 0-10V is commonly used in labs and test stations where cable runs are short and electrical noise is not a problem. 4-20 mA is used in industrial environments and for long cable runs since the current signal is active and is not affected by cable resistance or electrical noise pickup. Also, 4 mA serves as an active zero to indicate normal operation, while 0 mA would indicate a cable break or other electrical failure.
Yes they can. Laureate process meters can be jumpered for an electrically floating 24 Vdc up to 50 mA excitation output, which is electrically floating and can be used to power the transducer or transmitter that controls the 4-20 mA current signal. Please see the  2-wire wiring diagram on page 6 of the Laureate DPM user manual.
A count is a unit of resolution. For the Laureate DC and process meter, each input range is ±20,000 counts. The 0-10V process range is 0-10,000 counts using the ±20.000 Vdc range. The 4-20 mA process range is 4,000-20,000 counts using the ±20.000 mAdc range. Display counts, also called output counts, are the values to be displayed as readings. For example, a reading of 2465.7 lbs is 24657 output counts. The decimal point is set separately as a decoration.
Process meter scaling is the process of converting the meter’s input counts to a reading in engineering units, which are display or output counts. For example, if a Laureate process meter with a model number ending in P is set to the factory default input rang of 4.000-20.000 mA, scaling would allow this range to be displayed as 0-100.0 (PSI).
Under the front panel menu item “Setup,” select the “Coordinates of 2 points scaling method.” Enter Lo In, Lo Rd, and Hi In, Hi Rd. For the above example, enter 4.000 for Lo In, 0.0 for Lo Rd, and 20.000 for Hi In, 100.0 for Hi Rd.
If the process meter model number has a P suffix, this indicates that that it came with factory default scaling, which is a 4-20 mA input scaled to display 0.00 to 100.00 (%). If the process meter model meter has a P1 suffix, this means that it was ordered with custom factory scaling, which was specified as Lo In, Lo Rd, and Hi In, Hi Rd. Both the factory default P scaling and factory special P1 scaling can easily be changed by the user by selecting one of the meter’s 5 jumper selectable  DC voltage ranges or 4 jumper selectable DC current ranges, and scaling the meter from the front panel, as explained in the Laureate DPM user manual.
Laureate process cell meters are modular with slots for an analog output board, a choice of relay boards, and a choice of communication boards, as illustrated in our Laureates Overview web page. These boards can be ordered installed with a new meter, but they can also be purchased separately later and be simply plugged in. The presence of a new board and the type of board are automatically sensed by the meter’s firmware or by  Instrument Setup (IS) software. If you change boards, also change the model number on the meter label.
Input calibration is the process of setting the process meter in software so that absolute readings in are within specified tolerances of a recognized national standard. Electrical input calibration is required for operation of the process meter as a DC voltmeter or DC ammeter. It is also required when the meter is scaled using the scale and offset method or the coordinates of 2 points method, both of which require correct absolute DC voltage or DC current readings. Electrical input calibration is not required for the reading coordinates of 2 points scaling method, which uses actual weights or other know physical standards for calibration, not known electrical signals.
Annual calibration to NIST standards can be performed by Laurel and by some of its distributors as a service. It can also be performed by the customer using Laurel’s free Windows based  Instrument Setup (IS) software. Open the Main Menu of IS software, click on Calibration in the top menu bar, and follow the prompts. An external DC voltage standard is required. Also required in the meter is a communications board, like the Laureate P/N LUSB USB interface board. Following calibration, that board can be removed and be used in another meter.
Analog output scaling is the process of converting the meter reading to an analog output, which can be user selected as 4-20 mA, 0-20 mA, 0-10V or -10 to +10V. Simply enter the process meter readings for the bottom and tops of the selected analog output range, and the output will be interpolated linearly between these two readings. Please see  Section 17 of the Laureate DPM user manual.
Chances are that your meter is set for the factory default analog output, which is 4-20 mA, and is applying 10V to force a current into an open circuit. To set your meter to a 0-10V or -10 to +10V analog output, set jumpers for unipolar 0-10V or bipolar -10 to +10V operation, select the desired range and scaling, and connect to the correct analog output pins, as explained in Section 17 of the Laureate DPM user manual.

 

Ratiometric potentiometer follower application

In this application shown, the signal from a sliding contact voltage divider can be converted to engineering units such as position, level or percentage. By operating in a ratiometric mode, the meter automatically removes any effects caused by variations in the excitation supply. Connect excitation return to signal return, and jumper the excitation output to 5 Vdc.

Ratiometric potentiometer follower application Ratiometric  application

Powering two-wire transmitters

The isolated 24 Vdc, 50 mA excitation output, which is standard with all Laureate meters, is ideal for powering two-wire, 4-20 mA transmitters. The same two wires are used to apply voltage and carry the output current. Inside the meter, the 4-20 mA current is dropped across a 10 ohm resistor and sets up a 40-200 mV voltage, which is then sensed by the meter and scaled to engineering units.

Testing with peak detection

Destructive testing is an ideal application for the Laureate strain meter. Peak readings are automatically captured at rates up to 60 per second, while the display updates at a legible 3.5 readings per second. The peak reading can be recalled at the push of a button or be transmitted via RS-232 or RS-485. The meter provides isolated 10 Vdc power for up to four (4) the strain gauges and can be scaled to read out directly in engineering units from -99,999 to +99,999.
Laureate strain meter Laureate digital strain meter

Custom curve linearization

The Laureate DC meter with the Extended main board option allows exceptionally accurate custom curve linearization. For setup, up to 180 data points can be entered into a spreadsheet. The system then creates multiple non-linear spline-fit segments, which provide much better accuracy than linear segments. Illustrated, is the readout of volume of irregularly shaped tanks based on measured liquid level or pressure. Altimeters and thermistors are further applications.

Rate from successive readings

The Extended computer board allows the display of rate based on successive readings, for instance flow rate based on changes in liquid level or static pressure in a tank. In the above illustration, the meter displays the rate in gallons at which a horizontal tank is being emptied. The input to the meter can be nonlinear, since only the linearized readings are compared for the determination of rate.

 

 

CAL-Analog

Certificate of Calibration

$65.00

DLS-XLOG2

XLog2 Data logging Software

$495.00

IPC

Splashproof Cover

$55.00

CON01

CON01 Connector

$75.00

CBL01

RS232 Cable for Meters

$35.00

CBL02

USB-to-RS232 Adapter Cable

$47.00

CBL04

RS232 Cable for LT Transmitters

$47.00

CBL05

USB Data Cable for Meters

$47.00

CBL06

USB-to-RS485 Adapter Cable

$47.00

CBL07

USB Programming & Data Cable

$47.00

CBL08

RS485 Splitter Cable

$33.00

CBL6

6-foot Power Cable

$41.00

CBL12

12-foot Power Cable

$47.00

Modular Design for Maximum Flexibility at Minimum Cost

All boards are isolated from meter and power grounds. Optional Plug-in-Play boards for communications and control include Ethernet, WiFi, serial communication boardsdual or quad relay boards, and an analog output board. Laureates may be powered from 85-264 Vac or optionally from 12-32 Vac or 10-48 Vdc. The display is available with bright red or green 0.56" (14.2mm) high LED digits. The 1/8 DIN case meets NEMA 4X (IP65) specifications from the front when panel mounted. Any setup functions and front panel keys can be locked out for simplified usage and security. A built-in 5, 10, 12, or 24 Vdc excitation supply can power transducers, eliminating the need for an external power supply. All power and signal connections are via UL / VDE / CSA rated screw clamp plugs.

The Laureate™ Series features modular design with up to 7 isolated plug-in boards, applicable to all Laureate 1/8 DIN Digital Panel Meter.

Schematic for Digital Panel Meter

Modular Hardware

The design of the Laureate™ Series is modular for maximum flexibility at minimum cost. All boards are isolated from meter and power grounds. The base configuration for a digital panel meter or counter consists of a main module (with computer and plug-in display boards), a power supply board, and a signal conditioner board. Optional plug-in-play boards include an isolated setpoint controller board, an isolated analog output board, and an isolated digital interface board. Modular design and a choice of plug-in options allow the Laureate to be customized for a broad range of applications from simple monitoring to control and computer interface. There can be up to five plug-in boards in a 1/8 DIN Laureate.

Dual Board sets

Connecting Laureate Digital Panel Meter to a Local Area Network (LAN)

Up to 30 Laureate Digital Panel Meter and/or LT Transmitters can be configured for RS485 and daisy-chained to an LT Transmitter using Laurel’s High Speed Ethernet-to-RS485 converter board for seamless LAN integration. Alternatively, Laurel LTE series Ethernet transmitters can connect directly to a LAN via an Ethernet cable. Setup for both configurations is streamlined using Laurel’s free Instrument Setup Software, which simplifies node discovery and transmitter configuration.

Flexible Communication Options for Digital Panel Meter

The Laureate Digital Panel Meter can be equipped with Laurel communication boards to support various interfaces and protocols. These include serial interfaces with ASCII or Modbus RTU protocols, and Ethernet interfaces with web access, ASCII, or Modbus TCP/IP protocols, ensuring versatile connectivity for your commercial applications.

Laurel network with Ethernet-to-analog converter board

Ordering Guide
Part Number as Configured: L2111FP1
Price as Configured: $870.00

Click on the Option Board Links for More Product Information

Base Item
$157.00
Display Color
$0.00
$0.00
$33.00
$33.00
Power (Isolated) $75.00
$115.00
Relay Output (Isolated)
$0.00
$101.00
$70.00
$128.00
$96.00
Analog Output (Isolated)
$0.00
$115.00
Data Interface (Isolated)
$0.00
$81.00
$109.00
$135.00
$81.00
$135.00
$237.00
$259.00
$182.00
$204.00
$171.00
$193.00
$204.00
$226.00
Signal Input (Isolated)
$81.00
$156.00
$81.00
$156.00
 

Please enter custom scaling values below

Part Number as Configured:
L2111FP1
Price as Configured:
$870.00
Quantity:
- +
Extended Price:
$870.00

Understanding the Laureate™ Digital Panel Meter for Process and Ratiometric Applications

The Laureate™ Digital Panel Meter for digital process is a cost-effective solution for process signals such as 4-20 mA, 0-10V, or 0-5V. Full-scale voltage input ranges from ±200 mV to ±600V and current ranges from ±2 mA to ±5A are jumper selectable, all precalibrated at the factory so recalibration isn't needed when changing ranges or signal conditioners. The 200.00 mV and 2.000V ranges provide 1 GΩ input impedance to minimize load on the voltage signal.

Absolute and Ratiometric Mode

The meter can be set to absolute or ratiometric (potentiometer follower) mode by software selection. In ratiometric mode, the meter tracks a ratio of the applied excitation voltage and is unaffected by changes in that excitation voltage, providing 0.01% of reading ± 2 counts accuracy. This is used with the 5V or 10V excitation output for load cells and Wheatstone bridges, and the 5V excitation output for potentiometers tracking wiper position — linear potentiometers measure linear displacement in inches or mm; rotary potentiometers measure angular displacement in degrees or radians.

Accuracy and Noise Rejection

Error at 25°C is 0.01% of full scale ± 2 counts (except the 5A range) for absolute measurements, or 0.01% of reading ± 2 counts for ratiometric measurements. Span tempco is 0.003% of reading/°C; zero tempco is 0.1 count/°C. CMR is 130 dB (DC to 60 Hz); NMR is 90 dB at 50/60 Hz with minimum filtering. Maximum applied voltage is 600 Vac for the 20V/200V/300V ranges, 125 Vac for other ranges; overcurrent protection is 25x for 2 mA, 8x for 20 mA, 2.5x for 200 mA, 1x for 5A.

Read Rate and Filtering

Concurrent Slope (Pat. 5,262,780) A/D conversion achieves 60/s (60 Hz) or 50/s (50 Hz) read rates, with output update at 56/s or 47/s and display update at a legible 3.5/s or 3/s. Filtering options include unfiltered (true peak/valley), batch average (16-conversion averaging), and adaptive moving average (8 time constants, 80 ms to 9.6 s, with brief fast-tracking on significant signal changes and an Auto setting).

Extended Board and Real-World Applications

  • Powering Two-Wire Transmitters — the isolated 24 Vdc, 50 mA excitation output powers two-wire, 4-20 mA transmitters over the same two wires; the current is dropped across a 10-ohm resistor internally, producing a 40-200 mV signal the meter scales to engineering units.
  • Testing With Peak Detection — destructive testing captures peak readings at up to 60/sec while the display updates at a legible 3.5/sec; the meter provides isolated 10 Vdc power for up to four strain gauges, scaled from -99,999 to +99,999.
  • Custom Curve Linearization — the Extended main board allows up to 180 data points for spline-fit segments, more accurate than linear segments, illustrated by irregular tank volume readout from level or pressure, with altimeters and thermistors as further applications.
  • Rate From Successive Readings — the Extended board displays rate based on successive readings, such as flow rate from changing tank level; the input can be nonlinear since only the already-linearized readings are compared.

Factory-Calibrated Accuracy

All signal conditioner board ranges are factory-calibrated, with calibration factors stored in EEPROM. Field replacement of the signal conditioner board doesn't require recalibrating the meter. Factory recalibration is recommended annually.

Where Process & Ratiometric Digital Panel Meters Are Used

  • Position & Displacement Sensing — linear or rotary potentiometer follower readout for valve position, gate position, or angular displacement.
  • Destructive & Material Testing — high-speed peak capture for tensile, compression, and stress testing.
  • Irregular Tank Volume & Level Readout — custom curve linearization converting level or pressure signals into accurate volume.
  • Two-Wire Transmitter Instrumentation — loop-powered 4-20 mA process signal readout without a separate power supply.
  • Flow Rate From Level Change — rate-from-successive-readings for tank fill/drain rate monitoring.
  • Bridge Sensor Readout — general-purpose ratiometric display for Wheatstone-bridge-based pressure, torque, or force transducers.
  • Process Retransmission — analog output retransmission of scaled process readings to PLCs or chart recorders.

Process & Ratiometric Digital Panel Meter Frequently Asked Questions

Why does ratiometric mode specifically require using the meter's own excitation output, rather than any external power source?

Ratiometric operation works by using the same excitation voltage that powers the sensor as the reference for the meter's own analog-to-digital converter — this specific pairing is what lets excitation variations cancel out mathematically; an independently-sourced external supply would break that reference relationship and reintroduce excitation-variation error.

Does the same ratiometric follower principle apply equally to a rotary potentiometer measuring angle and a linear potentiometer measuring displacement?

Yes — the underlying measurement technique is identical; the difference is purely in how the meter is scaled (degrees or radians for rotary displacement, versus inches or mm for linear displacement) rather than any difference in the electrical measurement method itself.

Why does peak capture run at up to 60 readings per second while the visible display updates only 3.5 times per second?

A genuinely fast event (such as the instant of failure in destructive testing) needs internal sampling at up to 60 readings/second to be caught reliably, but a display updating that fast would be illegible to a human operator — the meter captures peaks internally at full speed while keeping the visible display at a comfortably readable rate.

Can the isolated 10 Vdc excitation output really power four strain gauges simultaneously without exceeding its rating?

This is documented as a specifically supported configuration for the destructive-testing peak-capture application — the same excitation-sharing arrangement used for multi-load-cell weighing platforms applies here, meaning four gauges can share the excitation output as long as their combined current draw stays within the output's rated capacity.

Does custom curve linearization need to be redone if the tank or sensor it was calibrated against is later modified or replaced?

Since the 180-point linearization is based on calibration data reflecting the actual physical setup it was measured against (such as a specific tank's real geometry), any meaningful change to that physical setup could introduce enough deviation that the linearization should be re-verified, even if the replacement component is nominally the same type.

Why does span tempco use "% of reading" while zero tempco is expressed as "counts per degree" rather than the same units?

These describe different error mechanisms: span tempco (0.003% of reading/°C) scales with the actual signal level, reflecting drift in the meter's gain, while zero tempco (0.1 count/°C) is a fixed baseline offset drift independent of signal level — expressing each in the units natural to its own mechanism is what allows both to be combined correctly into an overall accuracy budget.

Does the "rate from successive readings" feature require the underlying process signal itself to already be linear?

No — since rate is calculated by comparing already-linearized readings against each other, the raw input signal feeding the meter can be nonlinear; the custom curve linearization step (if used) corrects the raw signal first, and the rate calculation simply compares those already-corrected readings.

Why does the two-wire transmitter powering scheme specifically use a 10-ohm resistor to convert the 4-20 mA current into a voltage?

A 10-ohm resistor at 4-20 mA produces a proportional 40-200 mV voltage drop — a value low enough to stay within the meter's sensitive millivolt input ranges while still being large enough to measure accurately, making it a practical middle ground for converting the loop current into a voltage the meter's front end can directly scale.

Does the meter's overvoltage/overcurrent protection differ meaningfully between the ratiometric potentiometer application and a standard absolute DC voltage measurement?

The documented protection specs (max applied voltage and overcurrent multipliers) are tied to the selected range rather than to whether the meter is operating in absolute or ratiometric mode — so a potentiometer follower application using the 20.000V range, for example, carries the same 600 Vac maximum applied voltage rating as an absolute measurement on that same range.

Does the 1 GΩ input impedance on the 200.00 mV and 2.000V ranges matter for a typical ratiometric potentiometer application?

Yes, though less critically than for absolute voltage measurement — a very high input impedance ensures the meter draws negligible current from whatever it's measuring, avoiding a "loading" effect that would otherwise slightly disturb the potentiometer's own output; for the lowest, most sensitive ranges this matters most, since a lower-impedance input could meaningfully affect readings from a high-resistance potentiometer element.

NAMUR NE43 & 4-20mA Fault Signaling Questions From the Field

What is NAMUR NE43, and what problem was it specifically created to solve?

Documented industry background specifically describes NE43 as a recommendation created to standardize how transmitters indicate device failure using the 4-20 mA signal itself, so that a control system can distinguish "the transmitter is broken" from "the process variable is at its normal minimum or maximum" without needing separate digital communication — before this standardization, that distinction wasn't handled consistently across manufacturers.

What specific current levels does NAMUR NE43 define as indicating a genuine transmitter fault, versus a valid but extreme reading?

Documented specification defines the normal valid measurement range as roughly 3.8 to 20.5 mA (with 3.8-4 mA and 20-20.5 mA representing saturation at the edges of calibrated range), while readings below 3.6 mA or above 21 mA are specifically defined as a fault condition — a real device failure, not just an extreme process reading.

Why is there specifically a small gap (3.6 to 3.8 mA) between the fault threshold and the start of the valid saturation range?

Documented explanation specifically ties this gap to the needs of two-wire, loop-powered transmitters — since these devices draw their own operating power from the same loop current, a very low current level immediately below 3.8 mA could affect the transmitter's own operation, so the gap provides margin before declaring an outright hardware fault at 3.6 mA.

Why is "upscale" fault mode (21 mA) generally recommended specifically for 2-wire transmitters rather than "downscale" (3.6 mA)?

Documented guidance specifically explains that loop-powered (2-wire) transmitters require a minimum current to operate their own internal electronics — setting the fault indication to a very low downscale current risks starving the transmitter's own power needs, so upscale mode (21 mA) is the documented safer default specifically for 2-wire devices, while 4-wire (separately powered) transmitters can use either mode without this concern.

Does a NAMUR NE43-compliant fault signal need to persist for some minimum time before a control system treats it as a genuine fault?

Yes — documented guidance specifically recommends the fault signal be present for at least 4 seconds and a minimum of 2 signal scanning cycles before being interpreted as a genuine sensor fault, specifically to avoid false alarms from brief, transient signal excursions that aren't actually indicating a real device failure.

Is trying to force a transmitter's output below 4 mA (such as to 0 mA) an acceptable way to simulate or test a fault condition?

No — documented guidance specifically warns against this, noting that driving the signal below 4 mA isn't the correct method for zero calibration or fault testing; the correct approach is using the transmitter's own self-calibration routine or setting zero at approximately 3.75 mA within the documented NAMUR framework, rather than pushing the signal to an out-of-specification value.

Do all instrument manufacturers implement NAMUR NE43's exact current thresholds consistently, or is there variation worth checking?

Documented sources specifically warn that not all manufacturers follow the NE43 recommendation to the letter — some self-declared "NAMUR compliant" transmitters use deviating threshold values, meaning confirming the actual fault-signal thresholds in a specific transmitter's documentation is worth doing rather than assuming universal adherence to the textbook 3.6/21.0 mA values.

Can a receiving instrument like a panel meter or PLC actually distinguish and act on the different NAMUR NE43 signal zones, or does it just see a single continuous current value?

This depends entirely on configuration — documented guidance specifically notes that receiving devices can interpret the defined current ranges and zones (valid, saturation, fault) only if they've been properly configured to recognize those specific thresholds; without that configuration, a receiving instrument would simply treat the entire signal as a continuous analog value without any special fault-zone recognition.