Understanding the Laureate™ 1/8 DIN Panel Meter Ohmmeter for Resistance in Ohms
The Laureate™ 1/8 DIN Panel Meter Ohmmeter is built for high-speed, high-accuracy resistance measurements in a production environment, such as contact resistance testing. It is factory calibrated for five jumper-selectable resistance ranges spanning 20.000 ohm to 200.00 kohm, plus three fixed factory-special ranges of 2.0000 ohm, 2.0000 Mohm, and 20.000 Mohm. Accuracy is ±0.01% of reading ± 2 counts, with resolution of one part in 20,000 — on the 2 ohm range specifically, resolution is 0.1 milliohm, making the meter suitable for contact resistance measurements.
2, 3, or 4-Wire Connections With Lead Resistance Compensation
Connections can be made via 2, 3, or 4 wires. In a 4-wire hookup, separate lead pairs apply excitation current and sense the voltage drop across the unknown resistance, so IR drop across the excitation leads is not a factor. In a 3-wire hookup, the meter senses the combined voltage drop across the unknown resistance plus two excitation leads, separately senses the drop across one excitation lead, and subtracts twice that value from the combined total — effectively canceling lead resistance if the two excitation leads are identical. In a 2-wire hookup, lead resistance is measured by shorting the resistance during meter setup and subtracted from the combined reading, though this method won't compensate for lead resistance that changes with ambient temperature after setup.
Range-Specific Excitation Currents
The meter applies a fixed excitation current sized to each range: 5 mA on the 2Ω and 20Ω ranges, 500 µA on the 200Ω range, 50 µA on the 2 kΩ range, 5 µA on the 20 kΩ range, 500 nA on the 200 kΩ and 2 MΩ ranges, and 80 nA on the 20 MΩ range. Because the meter operates ratiometrically, it automatically compensates for any change in the applied excitation level itself. Maximum applied voltage across the unknown resistance is limited to 100 mV.
Factory-Calibrated Accuracy
All resistance ranges are factory-calibrated, with calibration factors for each range stored in an onboard EEPROM. These factors 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, using Laurel's Fluke-based calibration equipment, itself recalibrated yearly and traceable to national standards.
QA Passband Mode for Contact Resistance Testing
With the relay output option, a deviation limit can be set on both sides of a target setpoint — for example, 50 milliohms in either direction — creating a passband. The relay closes (or opens) when the reading falls within that band and opens (or closes) when the reading falls outside it, which is a common configuration for pass/fail contact resistance testing on a production line.
Extended DPM: Custom Curve Linearization
The optional extended computer board adds the ability to display rates derived from successive readings and to apply highly accurate custom curve linearization — for example, calculating liquid volume or flow rate in a horizontal cylindrical tank from level readings. Up to 180 data points can be entered into a spreadsheet or text file, spline-fit segments are calculated, and the result is downloaded into the meter.
Where Is This Panel Meter Used?
- Contact Resistance Testing — switches, relays, and connectors, using the 2 ohm range's 0.1 milliohm resolution.
- Motor Winding Testing — stator and rotor winding resistance checks to detect shorted turns or insulation breakdown.
- Power Distribution Systems — busbar joint and grounding system resistance monitoring in substations and control rooms.
- Quality Control and Production Testing — resistor, coil, and wire assembly verification against IPC, UL, or MIL-SPEC tolerances.
- Heating Element Monitoring — tracking resistance drift in industrial ovens and furnaces as an early warning of element degradation.
- Battery Manufacturing — internal resistance measurement of cells, modules, and packs as a health indicator.
- Renewable Energy Systems — solar bypass diode, inverter connection, and battery interconnect resistance monitoring.
Ohmmeter Panel Meter Frequently Asked Questions
Are the resistance ranges auto-ranging, or do I need to select one?
The five standard ranges (20Ω, 200Ω, 2kΩ, 20kΩ, 200kΩ) are jumper-selectable and factory precalibrated — the meter doesn't auto-switch between them during operation. Three additional fixed factory-special ranges (2Ω, 2MΩ, 20MΩ) are also available but must be specified at time of order rather than selected in the field.
Why is the 2 ohm range specifically called out for contact resistance testing?
The 2 ohm range provides 0.1 milliohm resolution, which is fine enough to meaningfully distinguish good contacts from marginal or failing ones — contact resistance testing typically deals with very small resistance values where coarser resolution wouldn't reveal a meaningful difference.
Why does the excitation current change depending on which range is selected?
Excitation current is sized per range to keep the voltage developed across the unknown resistance within a sensible measurement window — higher current (5 mA) on the low-resistance ranges and progressively lower current (down to 80 nA) on the high-resistance ranges, since a fixed high current on a very high resistance range would develop excessive voltage. The meter's maximum applied voltage is capped at 100 mV regardless of range.
Can I swap the signal conditioner board without recalibrating the whole meter?
Yes. Calibration factors are stored in EEPROM on the signal conditioner board and can be scaled via software to accommodate external shunts, which is specifically what allows a board to be field-replaced without a full meter recalibration.
What is QA passband mode, and how is it different from a standard high/low alarm?
Passband mode sets a deviation limit on both sides of a target setpoint, so the relay responds to the reading falling inside or outside that band around the target — rather than a standard high/low alarm, which triggers on crossing a single upper or lower threshold. This is specifically suited to pass/fail testing where a reading needs to fall within a tolerance window of a nominal value, such as contact resistance QA.
What does the extended DPM's custom curve linearization actually do?
It lets up to 180 user-entered data points be spline-fit and downloaded into the meter, allowing the displayed reading to follow a custom, non-linear relationship to the raw resistance signal — useful for applications like converting a non-linear sensor's resistance output into a directly meaningful engineering value (such as tank volume) rather than a raw resistance number.
How does the meter indicate an open circuit or sensor fault?
The display flashes at full-scale when an open condition is detected, providing an unambiguous fault indication rather than a plausible but incorrect low or zero reading.
What is the maximum voltage the meter will apply across the resistance being measured?
100 mV maximum, which matters for applications measuring sensitive or delicate components where excessive test voltage could affect the measurement or, in some cases, the component itself.
How often should this meter be recalibrated?
Factory recalibration is recommended annually, even though the meter ships factory-calibrated using Fluke calibrators that are themselves recalibrated yearly and traceable to national standards.
Can this meter be used for both very low resistance (contact testing) and very high resistance (insulation-level) measurements?
Yes, across the eight available ranges spanning 2 ohms up to 20 megohms, though the specific range needed has to be selected (via jumper for the standard ranges, or specified at order for the fixed special ranges) rather than the meter automatically covering that entire span on one setting.
Ohmmeter Panel Meter Questions From the Field
Why does my resistance reading change wildly when I'm trying to measure something under 1 ohm on the 2-wire setup?
This is one of the most commonly reported low-resistance measurement problems, and it's almost always traced to lead and contact resistance in the 2-wire connection rather than the component itself, since even a fraction of an ohm of lead resistance becomes a large percentage error at sub-1-ohm values. Switching to 4-wire connection, which senses voltage through separate leads carrying no current, eliminates this source of error.
My 3-wire reading still shows a small residual offset even though I've wired it correctly — why?
3-wire compensation assumes the two excitation leads are electrically identical, and if one lead is a different gauge, length, or has a marginal connection, that assumption breaks down and a small residual offset remains even with correct 3-wire wiring. Confirming both excitation leads are matched in gauge and length is the standard first check.
Does contact contamination affect readings even when the leads themselves look clean?
Yes — even light contamination such as oils, dust, or minor corrosion at a contact point can add measurable resistance or cause readings to shift when leads are flexed, particularly on the low-resistance ranges where every milliohm counts. This is a frequently overlooked cause of inconsistent low-resistance readings unrelated to the meter's own calibration.
Why do repeated measurements of the same low-resistance part give slightly different readings each time?
Small fluctuations from probe contact pressure, minor thermal effects, and connection variability are common even on a properly wired 4-wire setup, so taking multiple readings and averaging is standard practice for precision low-resistance work. Allowing the setup to reach thermal equilibrium before taking a final reading also helps, since temperature changes at contact points introduce their own small voltage offsets.
Should I use the high-resistance ranges (200kΩ, 2MΩ, 20MΩ) with the same wiring approach as the low ranges?
For high-resistance measurements, 2-wire connection is generally adequate, since lead resistance becomes negligible compared to the resistance being measured — the extra wiring complexity of 3- or 4-wire connection is specifically valuable for low-resistance measurements where lead resistance is a meaningful fraction of the reading, not for high-resistance ranges.
Why does my passband relay never seem to close, even when I know the part being tested is good?
This is commonly traced to the deviation limit being set too tight relative to normal part-to-part variation, or the setpoint itself not matching the actual nominal resistance of good parts. Verifying both the setpoint and the deviation band against measurements taken on several known-good reference parts, rather than a single assumed nominal value, resolves most passband configuration issues.
Can I trust a reading taken right after switching resistance ranges, or should I wait?
Since each range applies a different fixed excitation current, switching ranges changes the operating point of the measurement circuit, and it's good practice to allow a moment for the reading to settle before trusting the displayed value, particularly right after a range change on a high-resistance range where the excitation current is very low (down to 80 nA) and the circuit takes longer to stabilize.
My QA passband setup rejects parts that measure fine on a handheld ohmmeter — what's going on?
A common cause of this kind of discrepancy is a difference in test current or applied voltage between the two instruments — a handheld meter and this panel meter's fixed range-specific excitation current don't necessarily stress the part being measured identically, and some components (particularly contacts or connectors) can measure differently depending on the test current used. Confirming both instruments are using comparable test currents for the resistance range in question helps determine whether the discrepancy is a real measurement difference or a setup mismatch.

























Slide 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.


