Full-Range Accuracy | Gill Instruments Skip to content
Wind sensor accuracy | Across the full operating range

Accuracy you can specify with confidence

Six Gill wind measurement products state accuracy across their full operating range: WindSonic 60, WindSonic 75, WindObserver 65, WindObserver 70, MaxiMet and WindUltra.

Rather than a single accuracy figure at one reference wind speed, the published data shows measurement performance across the operating range of each product. The figures are established by testing at independent wind tunnel facilities, using a statistically significant sample of each product type, and published in the datasheet for each product.

King's Award for Enterprise, International Trade
6
Products with full-range accuracy
360°
Rotation tested at each wind speed
0 to 75 m/s
Measurement range covered
40+
Years of ultrasonic measurement
Why the range matters

12 m/s tells you one point.
The application needs the curve.

Gill has historically stated wind-speed and direction accuracy at 12 m/s, providing a consistent reference point for comparing sensor performance. It represents a moderately strong breeze and sits above average wind speeds across the UK and Europe, so it has been a useful reference for many applications.

But an anemometer does not operate at one wind speed.

Applications now span a much wider range of operating conditions. Sensors are deployed in exposed infrastructure, offshore environments, aviation, mobile platforms and other installations where the wind can vary substantially. Customers are also increasingly asking for accuracy data beyond the traditional 12 m/s reference point, particularly where the sensor's specified operating range extends significantly higher.

A single reference figure tells you how the sensor performs at that point. It does not tell you what happens across the rest of the operating range.

The testing behind the numbers

We tested the range. Then published what we found.

Full-range accuracy needs evidence across the range. Gill established these figures through testing at independent wind tunnel facilities, using a statistically significant sample of each product type.

At each wind speed, the sensor was rotated through 360° and its measurements compared with the reference. RMSE was then calculated from the complete set of readings.

The resulting accuracy figures are published in the relevant product datasheets and manuals.

  • Independent wind tunnel facilities
  • Statistically significant samples of each product type
  • 360° rotation at every tested wind speed
  • RMSE calculated from the complete measurement set
  • Published accuracy figures in the relevant product documentation

The data is there to inspect, not simply to take on trust.

The data

Six products. Six operating ranges.
One clearer picture of performance

01 / WindSonic 60

Proven ultrasonic measurement for general-purpose applications

WindSonic 60 provides low-power, solid-state wind speed and direction measurement across a 0 to 60 m/s range. Its compact polycarbonate construction, IP66 protection and absence of moving parts make it suited to general meteorological monitoring, building management and OEM integration where dependable wind data is required without unnecessary complexity.

Full-range accuracy
Wind speed, 0 to 20 m/s<2% RMSE or 0.2 m/s RMSE, whichever is greater
Wind speed, 20 to 60 m/s<3% RMSE
Direction, 0 to 60 m/s<2° RMSE
  • Wind speed range0 to 60 m/s
  • ConstructionCorrosion-free polycarbonate, 0.5 kg
  • Environment-35°C to +70°C, IP66
  • Typical applicationsMeteorology, building management, solar, OEM integration
02 / WindSonic 75

Extended wind-speed range for exposed installations

WindSonic 75 retains the compact, low-power, solid-state architecture of the WindSonic range while extending measurement to 75 m/s. It provides an option for applications where higher wind speeds form part of the credible operating environment, including exposed infrastructure, bridges and traffic systems.

Full-range accuracy
Wind speed, 0 to 20 m/s<2% RMSE or 0.2 m/s RMSE, whichever is greater
Wind speed, 20 to 60 m/s<3% RMSE
Wind speed, 60 to 75 m/s<5% RMSE
Direction, 0 to 75 m/s<2° RMSE
  • Wind speed range0 to 75 m/s
  • ConstructionCorrosion-free polycarbonate, 0.5 kg
  • Environment-35°C to +70°C, IP66
  • Typical applicationsBridges, traffic systems, exposed infrastructure
03 / WindObserver 65

Heated stainless-steel measurement for demanding environments

WindObserver 65 combines ultrasonic wind measurement with a 316 stainless-steel construction and integrated heating, providing a robust solution for marine, offshore, coastal and wind-energy applications where environmental exposure and year-round availability are significant considerations. With measurement to 65 m/s, output rates up to 10 Hz and Lloyd's Register Type Approval, it is designed for applications where the environmental specification extends well beyond the measurement itself.

Full-range accuracy
Wind speed, 0 to 65 m/s<2% RMSE or 0.2 m/s RMSE, whichever is greater
Direction, 0 to 65 m/s<2° RMSE
  • Wind speed range0 to 65 m/s
  • ConstructionStainless steel 316, heated, IP66
  • ApprovalsLloyd's Register Type Approved
  • Typical applicationsMarine, offshore, wind energy, coastal
04 / WindObserver 70

Approved wind measurement for aviation and other critical applications

WindObserver 70 provides heated, stainless-steel ultrasonic wind measurement across a 0 to 70 m/s range for applications where measurement performance, environmental protection and formal approvals all form part of the specification. It is accepted by the FAA and CAA for AWOS surface wind reporting and is also Lloyd's Register Type Approved, making it suitable for aviation, marine and other applications where continuous availability and compliance requirements are fundamental to the installation.

Full-range accuracy
Wind speed, 0 to 70 m/s<2% RMSE or 0.2 m/s RMSE, whichever is greater
Direction, 0 to 70 m/s<2° RMSE
  • Wind speed range0 to 70 m/s
  • ConstructionStainless steel 316, heated, IP66
  • ApprovalsFAA, CAA, Lloyd's Register Type Approved
  • Typical applicationsAirports and AWOS, marine and naval applications, extreme wind
05 / MaxiMet

Full-range accuracy across the compact weather station range

MaxiMet combines wind measurement with temperature, humidity, pressure and other parameters in a single compact station. Wind accuracy has been stated across the operating range for some time, so the same basis for specification already applies.

Full-range accuracy
Wind speed, 0 to 10 m/s0.3 m/s RMSE
Wind speed, 10 to 40 m/s3% RMSE
Wind speed, 40 to 60 m/s5% RMSE
Direction, 0.5 to 40 m/s±3°
Direction, 40 to 60 m/s±5°
  • Wind speed range0 to 60 m/s
  • Typical applicationsMeteorology, marine, heat stress, transport, research
06 / WindUltra

Compact measurement to 75 m/s for mobile and harsh environments

WindUltra is the compact, lightweight sensor for UAV, USV and other mobile or severely exposed installations. Its accuracy has been stated across the operating range for some time, and it holds the tightest direction figure at low wind speeds of any sensor on this page.

Full-range accuracy
Wind speed, 0 to 20 m/s<2% RMSE or 0.1 m/s RMSE, whichever is greater
Wind speed, above 20 m/s<3% RMSE
Direction, 0 to 20 m/s<1° RMSE
Direction, above 20 m/s<2° RMSE
  • Wind speed range0 to 75 m/s
  • Typical applicationsUAV, USV, mobile and harsh environments

Can’t find the instrument you’re looking for? Ask an engineer about full technical specifications across our product range.

Selection

The sensor range is only the envelope. The performance across it is the specification.

Maximum wind speed tells you the operating envelope. Full-range accuracy shows how the sensor performs within it. Specify the wind speeds you need to measure, then consider accuracy across that range, environmental exposure, integration and any approvals required.

ApplicationRelevant sensorWhy
General meteorology, building management, OEM integrationWindSonic 600 to 60 m/s measurement, low power and compact solid-state construction
Exposed infrastructure, bridges and traffic systemsWindSonic 75Extended measurement to 75 m/s in the same compact architecture
Marine, offshore, coastal and wind energyWindObserver 65316 stainless steel, heating, 10 Hz output and Lloyd's Register Type Approval
Airports and AWOSWindObserver 70FAA and CAA acceptance, heating and 70 m/s measurement range
Integrated weather monitoring where wind is one of several parametersMaxiMet0 to 60 m/s with temperature, humidity, pressure and more in one compact station
UAV, USV and other mobile or severely exposed installationsWindUltra0 to 75 m/s in a compact, lightweight body, with the tightest low-speed direction figure of the six

Not sure which specification fits your application? Talk to a Gill engineer

Specification guide

Five decisions that shape the specification

01

Measurement range

Start with the wind speeds the application actually needs to measure. Include credible extremes, not just the conditions the site sees most often. The sensor needs to perform across the range that matters to the application.

02

Accuracy across the range

Accuracy at one reference speed tells you one point in the sensor's performance. Where conditions vary, look at how accuracy changes across the operating range, not just the headline figure.

03

Low-wind performance

Some applications depend on detecting very small changes in air movement. Resolution and starting threshold become important here, particularly where low wind speeds affect the decision being made.

04

Output and integration

The measurement is only useful if the receiving system can use it. Specify the communications protocol, output rate, power requirements and interfaces alongside the sensor.

05

Environmental exposure

Temperature, icing, corrosion and water ingress all place different demands on an anemometer. Specify the instrument against the conditions it will actually encounter, including the extremes.

Need help choosing?

The conditions decide the specification.

Tell us the wind speeds you need to measure, where the sensor will be installed and what the wider system needs from it. A Gill engineer can help narrow the range and confirm the appropriate configuration.

FAQ

Full-range accuracy, explained

What is full-range accuracy?

Full-range accuracy describes measurement performance across a product's operating wind-speed range rather than at a single reference wind speed. Gill publishes this data for six products: WindSonic 60, WindSonic 75, WindObserver 65, WindObserver 70, MaxiMet and WindUltra. The figures are published in the datasheet and manual for each product.

Does anemometer accuracy change with wind speed?

Yes. It is normal for accuracy to change with wind speed. Higher speeds increase turbulence around the anemometer structure, which can naturally lead to a more variable response and so reduce accuracy.

How much it changes varies by sensor. The WindObserver 65 and WindObserver 70 hold the same stated accuracy across their whole measurement range. The WindSonic 60 and WindSonic 75 are stated in bands, with the figure widening at higher wind speeds. Having the full-range information available is what lets you pick the right product for the application.

Why is accuracy specified as RMSE?

The root mean square error (RMSE) is an averaged parameter which shows how far a device typically reads from an expected value. It incorporates both the bias error and variance of the instrument over a range of conditions.

We calculate RMSE from a full 360° rotation of the anemometer at each wind speed. This means that the errors calculated are a fair reflection of how the device might perform through all angles of attack.

How was Gill's full-range accuracy data measured?

The 2026 test programme covered the WindSonic 60, WindSonic 75, WindObserver 65 and WindObserver 70. It was carried out at independent wind tunnel facilities, using a statistically significant sample of each product type, so the resulting accuracy figure reflects the product rather than the behaviour of a single instrument. RMSE is calculated from a full 360° rotation of the anemometer at each wind speed.

Which Gill wind sensors have full-range accuracy data?

Six products: WindSonic 60, WindSonic 75, WindObserver 65, WindObserver 70, MaxiMet and WindUltra. All six are shown on this page with their published figures.

Can’t find the instrument you’re looking for? Ask an engineer about full technical specifications across our product range.

Can I use full-range accuracy data in a tender or design specification?

Yes. The figures are published in the released datasheets and manuals for each product, which makes them citable in a tender response or design specification. They are derived from independent testing across multiple units of each product type, so they can be justified if queried.

What does an anemometer accuracy specification mean?

An anemometer accuracy specification describes how closely the sensor's reported wind speed and direction correspond to the actual conditions being measured. The way accuracy is stated matters because a single value at one reference wind speed does not describe performance across the sensor's complete operating range.

Why is accuracy at 12 m/s commonly quoted for anemometers?

12 m/s is commonly used as a reference condition because it provides a consistent point at which different sensors can be assessed. It also sits above the average wind speed for the UK and Europe and is typical of a moderately strong breeze, so it long described the conditions most instruments encountered. It does not show how measurement performance behaves at other wind speeds, which is why full-range data matters for applications with a wider operating envelope.

How should I specify an anemometer for my application?

Start with the wind speeds the sensor needs to measure, including the lowest and highest credible conditions. Then consider the required accuracy across that range, resolution and starting threshold, environmental conditions, output and communications requirements, power consumption and any approvals or certifications required by the application.

Is a wider wind-speed range always better?

No. A wider measurement range is only valuable if the application needs it. The sensor should be selected according to the credible operating conditions, required measurement performance, environmental requirements and system specification. Specifying capability that the application does not need can add cost without providing a corresponding benefit.

What is the difference between wind-speed range and accuracy?

Wind-speed range defines the conditions within which the sensor is designed to measure wind. Accuracy describes how closely its measurement represents the actual wind speed. A sensor can have a very wide measurement range without necessarily providing the same accuracy across every point within that range, which is why both specifications need to be considered.

Why does low-wind accuracy matter?

Applications such as air-quality monitoring, environmental measurement and some meteorological systems may spend significant periods operating at relatively low wind speeds. Resolution and starting threshold become important in these conditions because the sensor needs to detect and report small amounts of air movement reliably.

Does the environment affect which anemometer I should specify?

Yes. Temperature, icing, corrosion, water ingress, vibration and exposure to severe weather can all influence sensor selection. The required environmental protection and construction should therefore be considered alongside measurement performance rather than treated as a separate specification.

What is the difference between an ultrasonic and mechanical anemometer?

An ultrasonic anemometer measures wind using ultrasonic signals rather than rotating cups and vanes. This removes mechanical components from the wind measurement process, which can reduce mechanical wear and maintenance requirements while also allowing compact sensor designs.

How do I compare the accuracy of different anemometers?

Compare the accuracy specifications under equivalent conditions and, where available, examine performance across the wind-speed range rather than comparing isolated reference-point figures. Also consider resolution, starting threshold, environmental performance, output, sampling rate and any application-specific approvals.

Where should an anemometer be installed for accurate measurement?

The sensor should be positioned so that the measured airflow is representative of the conditions the application is intended to monitor and is not unduly affected by nearby structures or other sources of flow disturbance. The appropriate installation arrangement depends on the application and relevant measurement standards.

Where can I find the full-range accuracy data?

The published data is included in the current released datasheets and manuals for each applicable product. These documents are available from this page and from the individual product pages.

Why has Gill published full-range accuracy data?

Because customers ask for it and tenders increasingly require it. Instruments are being deployed in more extreme conditions and across a wider geographic spread than when the 12 m/s reference point was set, and full-range accuracy statements are now common across the sector. Publishing the data gives engineers a more complete basis for specification and lets products be assessed against the conditions they will actually encounter.

Which accuracy specification do I need for my application?

That depends on the wind range, environment and purpose of the measurement. If accuracy is critical to the application, a Gill engineer can help establish which sensor and performance specification are appropriate.

Talk to a Gill engineer