Panel Meters for Resistance in Ohms (Ohmmeter) P/N L41116R4

Panel Meters for Resistance in Ohms (Ohmmeter)

Price: $737.00
  • P/NL41116R4
- +

Features

  • Five jumper-selectable resistance ranges of 20.000 ohm to 200.00 kohm
  • Three fixed factory-special ranges of 2.0000 ohm, 2.0000 Mohm, 20.000 Mohm
  • Accuracy at 25°C ±0.01%  of reading ± 2 counts
  • 0.1 milliohm resolution on 2 ohm scale for contact resistance measurements
  • 2, 3 or 4-wire connection with lead resistance compensation
  • 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
  • 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 to linearize and scale
    nonlinear resistance sources

The Laureate™ 1/8 DIN Panel Meters, Ohmmeter for resistance in Ohms

is ideal for high-speed, high-accuracy resistance measurements in a production environment, such as contact resistance measurements. It is factory calibrated for five jumper selectable resistance ranges from 20.000 ohm to 200.00 kohm. Fixed, factory-special ranges of 2.0000 ohm, 2.0000 Mohm and 20.000 Mohm are also available. Accuracy is an exceptional ±0.01%  of reading ± 2 counts. Resolution is one part in 20,000. In the 2 ohm range, resolution is 0.1 milliohm, making the panel meters suitable for contact resistance measurements.

The optional extended Laureate computer board enhances Laureate Panel Meters 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 panel meters for precise operation.

Panel meters connections can be via 2, 3 or 4 wires. With 4-wire hookup, 2 wires are used for excitation and two separate wires are used to sense the voltage across the resistance to be measured, thereby eliminating any lead resistance effects. With 3-wire hookup, the panel meters sense the combined voltage drop across the resistance to be measured plus two excitation leads. It also senses the voltage drop across one excitation lead, and then subtracts twice this voltage from the combined total. This technique effectively subtracts lead resistance if the excitation leads are the same.

All resistance 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 panel meters. 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.

Laureate Panel Meters are 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.

High read rate of up to 50 or 60 conversions per second, the Laureate™ Panel Meters use 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. This causes the current weight, which is normally the empty weight of the container to be stored in memory as an offset. In manual tare, the tare value can be entered manually via the front panel or a computer using Laurel's free Instrument Setup Software. For instance, the tare value may be the stated empty weight of a truck or rail car. Pressing the Reset button on the front panel toggles the display between gross weight (total weight on the scale) and net weight (gross weight with tare subtracted). 

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.

Resistance Measurement with Excitation & Lead Compensation

Ohmmeter hookup can be via 2, 3 or 4 wires to the J5 connector. The panel meters apply a fixed excitation current for each resistance range.
4-wire connection to resistance signal condidioner In 4-wire hookup, different pairs of leads are used to apply the excitation current and sense the voltage drop across the unknown resistance, so that the IR drop across the excitation leads is not a factor.
3-wire connection to resistance signal condidioner In 3-wire hookup, the panel meters sense the combined voltage drop across the unknown resistance plus two excitation leads. It also senses the voltage drop across one excitation lead, and then subtracts twice this voltage from the combined total. This technique effectively subtracts all lead resistance and compensates for ambient temperature changes if the two excitation leads are identical.
2-wire connection to resistance signal condidioner In 2-wire hookup, the panel meters sense the combined voltage drop across the unknown resistance and both lead wires. The voltage drop across the lead wires can be measured by shorting out the resistance during meter setup, and this voltage is then automatically subtracted from the combined total. However, changing resistance of the lead wires due to ambient temperature changes will not be compensated.

QA Application with Relay Option in Passband Mode

Deviation mode relay operation for digital panel meters and counters
A deviation limit (50 mohm in this example) is set up around both sides of a setpoint. The relay closes (or opens) when the reading falls within the deviation band, and opens (or closes) when the reading falls outside of this band. This mode sets up a passband around the setpoint and can be used for contact resistance testing.

Range Ohms Resolution Accuracy Excitation Current ***
R0** 0-2.0000 Ω 0.1 mΩ ±0.01% of reading
± 2 counts
5 mA
R1* 0-20.000 Ω 1 mΩ 5 mA
R2* 0-200.00 Ω 10 mΩ 500 µA
R3* 0-2000.0 Ω 100 mΩ 50 µA
R4* 0-20000 Ω 1 Ω 5 µA
R5* 0-200.00 kΩ 10 Ω 500 nA
R6** 0-2.0000 MΩ 100 Ω 500 nA
R7** 0-20.0000 MΩ 1000 Ω 80 nA
*    Jumper-selectable, precalibrated range.
**   Factory-set fixed range.
*** The applied excitation current is sensed by the meter, which operates in a ratiometric mode and automatically compensates for any changes in excitation.
Recalibration: All ranges are calibrated at the factory. Recalibration is recommended every 12 months.
Display
Readout 5 LED digits, 7-segment, 14.2 mm (.56")
Color Red or green LED
Indicators 2 red LED lamps
Accuracy
Accuracy at 25°C ±0.01% of reading ± 2 counts
Span tempco ±0.003% of reading/°C
Electrical
Connection 2, 3 or 4-wire
Max applied voltage 100 mV
Overvoltage protection 125 Vac
Open sensor indication Flashes full-scale
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
Power Supply Boards (one required)
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
Analog Output Board (one 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 (one optional)
Dual magnetic relays 2 Form C, 10A max, 440Vac or 125Vdc max, 2500VA or 300W
Quad magnetic relays 4 Form A (NO), 10A max, 440Vac or 125Vdc max, 2500VA or 300W
Dual solid state relays 2 Form A (NO), AC or DC, 0V - 400V, 120Ma, 35Ohms (max at On-State)
Quad solid state relays 4 Form A (NO), AC or DC, 0V - 400V, 120Ma, 35Ohms (max at On-State)
Relay commons Isolated commons for dual relays or each pair of quad relays
Relay isolation 250V rms working, 2.3 kV rms per 1 minute test
Step function response 30 ms (typ) for contact relays, 25 ms (typ) for solid state relays
Relay latching modes Latching or non-latching
Relay active modes Active on or off, active high or low
Hysteresis modes QA passband mode, split hysteresis, span hysteresis
Communication Boards (one optional)
Board selections RS232RS485 with dual RJ11 connectors, RS485 with dual RJ45 connectors, USB, Ethernet, USB-to-RS485 gatewayEthernet-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
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.

 

 

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 Panel Meters.

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 panel meters 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 Panel Meters to a Local Area Network (LAN)

Up to 30 Laureate Panel Meters 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 Panel Meters

Laureate Panel Meters 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: L41116R4
Price as Configured: $737.00

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)
$116.00
$81.00
$81.00
$81.00
$81.00
$81.00
$116.00
$116.00
Part Number as Configured:
L41116R4
Price as Configured:
$737.00
Quantity:
- +
Extended Price:
$737.00

Understanding the Laureate™ 1/8 DIN Panel Meters, Ohmmeter for Resistance in Ohms

The Laureate™ 1/8 DIN Panel Meters Ohmmeter is ideal for high-speed, high-accuracy resistance measurements in a production environment, such as contact resistance measurements. It is factory calibrated for five jumper-selectable resistance ranges from 20.000 ohm to 200.00 kohm, plus three fixed factory-special ranges: 2.0000 ohm, 2.0000 Mohm, and 20.000 Mohm. Accuracy is ±0.01% of reading ± 2 counts. Resolution is one part in 20,000 — in the 2 ohm range, that works out to 0.1 milliohm resolution, making the meter well suited to contact resistance measurement.

Excitation Current by Range

Excitation current is fixed per range and scales inversely with resistance — from 5 mA on the 2Ω and 20Ω ranges down to 500 µA on the 200Ω range, 50 µA on the 2kΩ range, 5 µA on the 20kΩ range, 500 nA on both the 200kΩ and 2MΩ ranges, and 80 nA on the 20MΩ range. The applied excitation current is sensed by the meter, which operates ratiometrically and automatically compensates for any changes in that excitation.

Maximum Applied Voltage

Maximum applied voltage across the unknown resistance is 100 mV, with overvoltage protection rated to 125 Vac. If a sensor is open, the display flashes full-scale.

2, 3, or 4-Wire Connection

In 4-wire hookup, separate lead pairs apply excitation current and sense the voltage drop across the unknown resistance, eliminating IR drop across the excitation leads as a factor. In 3-wire hookup, the meter senses the combined voltage drop across the resistance plus two excitation leads, separately senses the drop across one excitation lead, and subtracts twice that value — effectively canceling lead resistance and compensating for ambient temperature changes if both excitation leads are identical. In 2-wire hookup, lead resistance is measured once by shorting the unknown resistance during setup and subtracted from all subsequent readings, but changes in lead resistance due to ambient temperature afterward won't be compensated.

QA Passband Mode for Contact Resistance Testing

A deviation limit (such as 50 mΩ) can be set on both sides of a setpoint. The relay closes (or opens) when the reading falls within that deviation band, and opens (or closes) when the reading falls outside it — setting up a passband around the setpoint specifically suited to contact resistance testing.

Custom Curve Linearization

The optional Extended main board allows up to 180 data points to linearize and scale nonlinear resistance sources — useful for resistance-based sensors (such as thermistors) whose resistance-to-parameter relationship isn't linear.

Factory-Calibrated Accuracy

All resistance ranges are factory-calibrated, with calibration factors stored in EEPROM that can be scaled via software to accommodate external shunts, enabling field replacement of the signal conditioner board without recalibrating the meter. Factory recalibration is recommended annually.

Where Ohmmeter Panel Meters Are Used

  • Connector & Cable Assembly QA — contact resistance and low-level circuit resistance (LLCR) testing on production lines, using the 2Ω range's 0.1 mΩ resolution and the QA passband relay mode.
  • Relay & Switch Manufacturing — go/no-go contact resistance screening against a setpoint band during 100% or sampled production testing.
  • Bonding & Grounding Verification — earth bond and static-dissipative resistance checks in aerospace, electronics, and cleanroom manufacturing.
  • Winding & Coil Testing — resistance measurement of motor windings, transformers, and solenoids for quality control and fault detection.
  • Cable & Harness Testing — continuity and resistance verification across long production or field cable runs using 3- or 4-wire compensation.
  • Insulation & High-Resistance Monitoring — megohm-range measurement of insulation resistance or high-value sensing elements using the fixed 2MΩ/20MΩ ranges.
  • Thermistor & Resistance-Sensor Readout — linearized display of nonlinear resistance sensors via the Extended board's custom curve capability.

Ohmmeter Panel Meter Frequently Asked Questions

Why does maximum applied voltage matter for a resistance measurement, and why is it capped at 100 mV?

Keeping the voltage applied across the unknown resistance low is specifically important for measuring delicate or contaminated contact surfaces — a higher applied voltage risks breaking down thin oxide or contamination films on a contact surface, which would give an artificially low reading that doesn't represent the contact's true resting resistance. The 100 mV ceiling keeps the meter suitable for this kind of sensitive contact measurement.

Why does excitation current drop so dramatically between the lowest range (5 mA) and the highest range (80 nA)?

Since the meter is measuring a voltage developed across the unknown resistance at a fixed maximum voltage ceiling, a much higher resistance requires proportionally less current to develop a comparable, accurately measurable voltage — using the same higher current on a high-resistance range would either exceed the 100 mV limit or require the meter to handle a much larger voltage range than its front end is designed for.

What's the difference between the jumper-selectable ranges and the "special fixed" ranges like R0, R6, and R7?

The five standard ranges (R1-R5) can be jumper-selected and reconfigured by the user across a single ordered meter, while the three special ranges (R0 at 2Ω, R6 at 2MΩ, R7 at 20MΩ) are factory-set and fixed at time of order — reflecting that these three ranges likely require different internal circuitry optimizations (very high resolution at 2Ω, very high impedance handling at 20MΩ) that aren't practical to combine with simple jumper selection across the whole family.

How does the QA passband mode actually differ from a standard high/low alarm setpoint?

A standard high or low alarm triggers when a reading crosses a single threshold in one direction. Passband mode instead defines a band around a setpoint on both sides — the relay is active specifically while the reading stays within that band, and changes state when the reading moves outside it in either direction — which is specifically suited to contact resistance QA, where both "too high" (poor contact) and unexpectedly low or unstable readings can both be worth flagging.

Can this meter's custom curve linearization correct for a thermistor's nonlinear resistance-to-temperature relationship?

Yes — this is specifically documented as an application of the Extended board's 180-point linearization capability, which was originally illustrated for tank volume calculations but applies generally to any nonlinear resistance source, including thermistors, letting the displayed reading track the sensor's actual nonlinear behavior rather than a simple linear approximation.

Does "one part in 20,000" resolution mean the same absolute precision on every range?

No — it's a relative (ratiometric) resolution figure, so the actual absolute resolution scales with the range itself: 0.1 mΩ on the 2Ω range but 1000Ω on the 20MΩ range, since one part in 20,000 of a much larger full-scale value is itself a much larger absolute increment.

Is 3-wire connection a reasonable compromise for contact resistance testing, or should it always be 4-wire?

3-wire compensation works well specifically when both excitation leads have matched resistance, since the technique relies on doubling one measured lead's drop to cancel both — for very precise contact resistance work where lead matching can't be guaranteed, true 4-wire connection removes this dependency entirely and is the more robust choice.

Can the meter's analog output retransmit a resistance reading as a 4-20 mA signal for a PLC or SCADA system?

Yes, with the optional isolated analog output board — the resistance reading (already scaled if desired) can be output as 4-20 mA, 0-20 mA, 0-10V, or -10 to +10V, letting a separate control system monitor the resistance measurement independently of the meter's own relay-based alarming.

Does span temperature coefficient (±0.003% of reading/°C) matter much for a typical indoor QA testing environment?

In a temperature-stable indoor test environment, this drift is usually a very small contributor to overall measurement uncertainty, but for applications where ambient temperature swings meaningfully (near ovens, outdoor test stations, or unconditioned production floors), this spec becomes more relevant to account for when evaluating overall measurement uncertainty against a tight resistance tolerance.

If I need to measure both very low resistance (contact testing) and very high resistance (insulation testing) applications, do I need two separate meters?

Given the meter's fixed excitation current per range and factory-set special ranges (R0 for 2Ω, R6/R7 for megohm-range), a single meter ordered with a specific range configuration is optimized for one general resistance region — an application genuinely needing both very low and very high resistance measurement with full rated accuracy on each end would typically need two meters configured for their respective ranges, or a meter reconfigured between applications via jumper changes on the standard ranges.

Dry Circuit & Low-Level Contact Resistance Testing Questions From the Field

What is "dry circuit" testing, and why does it specifically matter for contact resistance measurement?

Documented industry standards define a dry circuit as one in which test voltage and current are deliberately limited to levels that can't cause changes in the physical or electrical state of the contact being tested — historically, this term contrasts with older "wetting voltage" practices that intentionally broke down surface films to get a lower reading. A true dry circuit measurement instead reveals the contact's actual resting metal-to-metal resistance, including any films or contamination present.

What are the standard voltage and current limits documented for dry circuit / LLCR testing?

Documented industry specifications (including ASTM standards and MIL-STD-1344 Method 3002.1) commonly stipulate a maximum open-circuit voltage of 20 mV (with 50 mV allowed under some specifications) and a maximum short-circuit current of 100 mA — these limits are specifically chosen to be too low to break down surface films on the contact, ensuring the measurement reflects true resting contact condition rather than an artificially improved reading.

Why is dry circuit testing typically performed using a 4-wire (Kelvin) measurement setup?

Documented testing practice specifically identifies Low Level Circuit Resistance (LLCR) measurements as generally requiring 4-wire Kelvin measurement circuits — since dry circuit test currents are deliberately very low, the resulting voltage drop across the contact under test is correspondingly tiny (often in the microvolt range), and a 4-wire connection is what allows that small voltage to be measured accurately without lead resistance error swamping the true reading.

Why is dry circuit testing typically performed before other electrical tests on a connector or contact?

Documented test sequencing guidance specifically recommends performing dry circuit measurements first, before other electrical tests, because other test methods can themselves cause physical or electrical changes to the contact surface — running a higher-voltage or higher-current test first could alter the very surface condition that the dry circuit test is meant to characterize.

Why is dry circuit testing typically paired specifically with environmental stress testing?

Documented practice notes that dry circuit testing is often performed in conjunction with environmental stress tests intended to deliberately introduce contamination or oxide films on contact surfaces — the dry circuit measurement isn't particularly meaningful until such stresses have actually been applied, since its purpose is specifically to reveal how much those contaminants have degraded the true contact resistance.

Does exceeding the recommended test current during contact resistance testing actually damage the contact being measured?

Yes — documented analysis specifically describes excessive current during testing as capable of causing microscopic heating that softens or melts the contact area, which enlarges the effective contact area and produces an artificially reduced (better-than-real) resistance reading. This is precisely the failure mode dry circuit current limits are documented as designed to prevent.

Does the correct test current for measuring contact resistance depend on the type of contact or application being tested?

Yes — documented guidance specifically distinguishes testing approaches by application: high-power switches and relays are documented as appropriately tested with higher currents that mimic their actual working conditions, while dry circuit connectors specifically require low currents (under 100 mA) to avoid altering delicate contact surfaces — using the wrong test regime for a given contact type can produce a reading that doesn't represent real-world performance.

Is a single universal dry circuit test specification used across all industries, or do requirements vary?

Documented sources show meaningful variation — while ASTM standards and MIL-STD-1344 are commonly cited references, documented guidance specifically notes that MIL-STD-1344 Method 3002.1 is intended for connector manufacturer qualification testing rather than completed cable/harness assembly production testing, and that assemblers wanting to comply typically rely on the connector manufacturer's own confirmation of compliance rather than independently re-running the qualification test — confirming which specific standard and test parameters actually apply to a given testing context is worth verifying rather than assuming one universal specification covers all cases.