Turns ratio and deviation
Compare measured voltage relationship with the expected or entered value across the required phases and taps.
Ratio evidence without guesswork
Compare TTR testers for turns ratio, ratio deviation, phase angle, vector group and tap-position checks. Select around the transformer connection, field workflow and records your team must produce—not a model name alone.
Four outputs, one equipment decision
A wide ratio range is useful, but it is not the whole specification. Procurement should begin with the transformer design and the evidence required by the approved test procedure.
Compare measured voltage relationship with the expected or entered value across the required phases and taps.
Choose angle measurement when the connection relationship or phase-shifting design makes displacement part of the decision.
Automatic group recognition can reduce manual interpretation for three-phase and selected special transformer configurations.
Plan a repeatable sequence so every result remains attached to the correct tap, phase, connection and transformer identity.
Current Wrindu TTR routes
Both products publish a ratio range of 0.9–10000. Their strongest differences appear in transformer coverage, angle functions, power arrangement and field operating style.
RDB-III
For ratio, angle and automatic vector-group work where three-phase output and broader special-transformer coverage matter.
RDB-IIHX
For compact field work requiring automatic ratio and group tests, sunlight-readable display, rechargeable power and portable records.
Choose by operating route
Prioritize automatic vector-group recognition, angle measurement and efficient phase handling.
Prioritize battery endurance, readable display, compact transport and practical data transfer.
Confirm the tester and test method support the exact winding arrangement before relying on automatic recognition.
Product comparison matrix
Use this matrix for an early shortlist. Request the current technical sheet and confirm the final configuration before procurement.
| Selection field | RDB-III | RDB-IIHX | Why it matters |
|---|---|---|---|
| Published ratio range | 0.9–10000 | 0.9–10000 | Must cover expected ratios with suitable accuracy and resolution across the working band. |
| Angle / vector information | 0–360°; ±0.2° angle accuracy; groups 0–11 | Automatic ratio and group measurement; confirm required angle output | Separates a basic ratio check from connection and phase-displacement evidence. |
| Transformer coverage | Conventional and multiple special transformer types published | Conventional, Z-type, PT samples; CT ratio and polarity also published | Automatic functions are useful only when the exact winding design is supported. |
| Power arrangement | Confirm current AC supply configuration | Rechargeable lithium battery and adaptive AC charger | Battery operation can improve mobility where dependable mains power is unavailable. |
| Field interface | Automatic calculation and product-specific data functions | 5.6-inch high-brightness LCD; USB and RS232; optional external printer | Screen readability and report transfer affect throughput across many taps and assets. |
| Best starting route | Three-phase / special-transformer analysis | Portable field ratio and group work | Final selection still depends on transformer drawings, procedure and required report fields. |
Tap-by-tap evidence workflow
Collect rated HV/LV values, phases, vector diagram, tap range, tap step and special winding information.
State whether the approved procedure requires ratio, deviation, polarity, angle, vector group, current or another result.
Prepare the tap sequence, phase labels, connection plan, lead access and criteria for retesting an unexpected value.
Store asset identity, tap, phase, test configuration, raw reading, calculated result, operator and review status.
Interpret within the right boundary
A ratio tester can reveal an unexpected voltage relationship, connection, group or tap result. It does not replace DC winding-resistance measurement, insulation assessment, SFRA or the project authority's diagnostic process. An unexpected result should first trigger controlled checks of identity, test leads, connection, phase labels, tap position and entered nameplate data.
Prepare a useful inquiry
Transformer ratio tester FAQ
Transformer ratio test equipment applies a controlled low test voltage and evaluates the voltage relationship between windings. Depending on the model, it may calculate turns ratio, ratio deviation, phase angle, vector group, polarity, tap position and excitation current. Confirm the exact outputs required by the approved test procedure.
Both publish a ratio range of 0.9–10000. RDB-III is positioned for three-phase ratio, angle and automatic vector-group work across conventional and selected special transformers. RDB-IIHX emphasizes portable battery-powered field testing, a high-brightness screen, automatic ratio/group measurement, USB/RS232 interfaces and CT ratio/polarity capability. The transformer design and report requirement determine the better fit.
No. Buyers should also compare accuracy by ratio band, resolution, supported connections, angle and vector-group functions, test-voltage options, tap workflow, lead arrangement, power supply, screen visibility, protection, storage and report export. A range that covers the asset does not prove every required function is available.
No. A TTR tester evaluates voltage ratio and connection relationships using an AC test signal. A winding resistance tester measures DC resistance and has different test-current, stabilization and discharge requirements. The measurements can support the same investigation but answer different technical questions.
Send the transformer nameplate and vector diagram, rated voltages and power, phase configuration, tap range and positions, special winding information, expected ratio range, required measurements, approved procedure, site-power conditions, lead length, data/report format, calibration documents and delivery schedule.
Send Wrindu the nameplate, vector diagram, tap arrangement, required measurements and reporting workflow. The technical team can help compare the RDB-III, RDB-IIHX and suitable accessories.
Technical parameters shown here are based on public HVTesters product information reviewed on 26 August 2026. Confirm the current model, specification, accessories, calibration documents and approved test method before purchase or use.
Technical selection guide
Open this guide when you need to turn a transformer nameplate, vector diagram and tap schedule into a practical TTR tester specification.
A transformer ratio tester—often called a turns ratio tester, TTR tester or transformer ratio meter—evaluates the voltage relationship between transformer windings using a controlled low-voltage AC test signal. The resulting ratio is compared with the expected relationship derived from the transformer design, nameplate and selected tap. Many modern instruments also provide ratio deviation, phase angle, vector-group recognition, polarity and excitation-current information.
This is narrower than the intent of the power transformer testing equipment parent page. That parent must help a buyer navigate winding resistance, insulation, tan delta, SFRA, OLTC, oil and other instrument groups. The ratio page has a different job: it helps a buyer compare TTR equipment after the need for ratio and connection verification has already been established.
Determine whether the measured HV/LV relationship agrees with the expected turns or voltage ratio for the selected tap.
Use phase angle, polarity and vector-group functions when the connection relationship forms part of the required record.
Keep each reading tied to the correct tap, phase, transformer identity, connection and test configuration.
The safest shortlist begins with the transformer rather than the instrument. Ask for the nameplate, vector diagram, rated high- and low-voltage values, phase configuration, rated power, tap changer type, number of tap positions, nominal tap, tap step and any special winding information. These fields reveal whether the project needs only a straightforward ratio comparison or also needs angle, polarity, automatic vector recognition and support for an unusual connection.
The expected ratio may not always be a single fixed number. A tapped transformer has a planned relationship at each tap. Three-phase transformers also require correct phase correspondence and interpretation of the specified vector group. Phase-shifting, rectifier, grounding, Z-type, Scott or other special arrangements may require functions and connection methods beyond those used for a conventional distribution transformer.
| Selection field | Question to ask | Common mistake | Evidence to request |
|---|---|---|---|
| Ratio range | Does the expected ratio at every required tap fall within the supported band? | Checking only the nominal ratio and ignoring extreme taps or a special winding. | Range plus accuracy and resolution by ratio band. |
| Test / excitation voltage | Which selectable or automatic output is appropriate for the transformer and method? | Assuming a higher number is always better without considering current, burden or induced response. | Available outputs, current limits and model-specific application guidance. |
| Phase angle | Is numerical angle output required for the connection or phase-shifting design? | Buying a basic ratio instrument when angle forms part of the acceptance record. | Angle range, resolution, accuracy and supported connection types. |
| Vector group | Can the device recognize or verify the specified group and unknown connections? | Assuming every automatic group mode supports every special transformer. | Published group function and a written confirmation for the exact winding arrangement. |
| Tap workflow | How are expected values, tap positions and results entered, stored and exported? | Recording readings without a reliable link to tap and phase. | Example screen flow, memory structure and sample report. |
| Power and portability | Will work occur near dependable AC power or across multiple field assets? | Selecting battery equipment without checking endurance, charging or cold-weather expectations. | Power input, battery use time, charger, transport case and environmental limits. |
The RDB-III Transformer Ratio Tester publishes a ratio range of 0.9–10000 and an angle range of 0–360°. The published angle accuracy is ±0.2°, with minimum ratio resolution of 0.0001 and angle resolution of 0.01°. Its three-phase output, automatic vector-group recognition from 0 to 11 and stated support for multiple special transformer types make it a logical route when the project needs more than a basic portable ratio reading.
The buyer should still confirm the exact model version, supported connection, required output voltage, lead set, report method and procedure. Special-transformer compatibility is not a substitute for reviewing the actual vector diagram. The sales inquiry should name the transformer design rather than using the broad phrase “special transformer.”
The RDB-IIHX Portable Transformer Turn Ratio Tester also publishes a ratio range of 0.9–10000. Its positioning emphasizes a compact handheld format, rechargeable lithium power, more than eight hours of published use time, a 5.6-inch high-brightness display, USB and RS232 interfaces and an optional external printer. It automatically performs ratio and group tests without requiring the operator to know the HV/LV connection method in advance.
RDB-IIHX also publishes CT ratio and polarity capability. That extra function does not turn this ratio landing page into a CT/PT analyzer page. A complete instrument-transformer analyzer may need excitation, burden, knee-point, secondary resistance and other dedicated functions. Buyers whose primary objective is CT or PT evaluation should define those measurements separately.
Ratio equipment can generate many readings quickly, but speed does not create traceability by itself. The test team should know the transformer identity, phase, test connection and tap position for every record. A useful pre-test worksheet lists the expected value at each tap, the allowed comparison method from the approved procedure, the actual reading, calculated deviation, status and any retest note.
Use serial number, bay or asset ID, rated voltage, vector group and selected winding designation.
Record which terminals and phases are connected, lead orientation and the instrument mode used.
List the start position, direction of movement and required results before changing the tap.
Define when to stop, inspect leads, confirm tap position, repeat the test or escalate for review.
Keep the measured ratio as well as any deviation, angle, group, current and status generated by the instrument.
Make sure a USB file, printout or software report still identifies asset, tap, phase, configuration and operator.
An unexpected ratio or vector result can have several explanations: incorrect entered nameplate data, swapped leads, wrong terminal identification, an unintended tap position, a connection issue, an unsupported automatic mode or a transformer condition that needs further investigation. The first response should follow the approved procedure and verify controllable test conditions before making a technical conclusion.
A ratio tester and a transformer winding test equipment page belong near each other in the site architecture because both concern winding evidence, but they do not own the same search intent. TTR equipment uses an AC test signal to evaluate the voltage relationship and connection. A DC winding resistance tester evaluates resistance, requiring appropriate current, stabilization, temperature treatment and safe discharge. SFRA, insulation, tan delta and oil tests answer still other questions.
Likewise, ratio measurements appear in several lifecycle stages without making the pages interchangeable. The transformer commissioning equipment page organizes the full pre-energization scope. The transformer maintenance equipment page organizes periodic and condition-driven work on operating assets. This page remains the commercial comparison page for the ratio instrument group.
A concise but technically useful inquiry might read: “We need transformer ratio test equipment for three-phase power transformers with the attached nameplates and vector diagrams. The tap range is ___ to ___ with ___ positions. Our procedure requires ratio, deviation, phase angle and vector-group results at every tap. Field power is ___, the longest required test lead is ___, and the report must include asset ID, phase, tap position and raw result. Please compare RDB-III and RDB-IIHX, confirm supported connections and supply current specifications, accessories, calibration documents and sample reports.”
This format gives Wrindu enough information to discuss measurement fit, workflow and accessories without assuming that the same configuration is suitable for every transformer. Final acceptance criteria and test interpretation remain with the project authority and applicable procedure.