How to Select a Pressure Gauge: 7 Key Factors Including Fill Fluid

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Process Instrumentation
How to Select a Pressure Gauge: 7 Key Factors Including Fill Fluid

Selecting a pressure gauge correctly means matching seven parameters to the process: range, accuracy class, dial size, process connection, wetted material, element type, and fill fluid.

Get any one wrong and the gauge fails prematurely, reads inaccurately, or becomes a safety hazard.

This guide covers all seven selection factors with practical decision rules, tips from field experience, and a working range checker.

Bourdon Tube vs Diaphragm ASME B40.100 Accuracy Glycerine vs Silicone Fill 25 to 75% Working Range

The most common mistake is choosing a range too close to maximum process pressure. A gauge operating continuously above 75% of full scale suffers metal fatigue and zero drift within months. Always keep normal operating pressure between 25% and 75% of the full-scale value.

pressure gauge

Pressure Gauge Selection: Why All 7 Factors Must Match

Hello! Today we are going through the complete pressure gauge selection process: seven factors, in order, with real field tips. A pressure gauge looks simple from the outside. Inside, it contains a precision-formed elastic element, a mechanical movement, and wetted materials that must all survive the process conditions for years. Taking ten minutes to get the selection right saves weeks of troubleshooting and potential safety incidents later.
25 to 75%
Recommended working pressure range as a percentage of pressure gauge full-scale value
±1%
Accuracy of a Grade 2A pressure gauge (ASME B40.100) across the middle 80% of scale
Glycerine
Most common pressure gauge fill fluid: dampens vibration, protects the movement, compatible with most process fluids
316 SS
Standard wetted material for most industrial pressure gauge applications involving corrosive or aggressive process fluids
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7 Factors for Pressure Gauge Selection

1
Pressure Range

Select a range where normal operating pressure falls between 25% and 75% of full scale. For pulsating applications (pump discharge, compressor outlets), limit to 50%.

For steady-state service with no pulsation, up to 75% is acceptable.

Standard IEC series: 1, 1.6, 2.5, 4, 6, 10, 16, 25, 40, 60, 100, 160, 250, 400, 600 bar. Avoid non-standard ranges: mid-range accuracy is best and over-ranging accelerates Bourdon tube fatigue.

Tip: If normal process pressure is 8 bar and max allowable is 10 bar, a 0 to 16 bar range is correct (8 bar = 50% of scale). A 0 to 10 bar gauge runs at 80% continuously and will fail early.
Did You Know? Operating a pressure gauge above 75% of full scale for extended periods causes permanent set in the Bourdon tube: the pointer no longer returns to zero after the pressure is removed. This is called zero shift and is irreversible without recalibration or element replacement. See the zero shift guide and the 4-20 mA signal guide for how this same effect appears in electronic transmitters.
2
Accuracy Class (Grade)

ASME B40.100 defines four accuracy grades for pressure gauges. Most industrial process measurements use Grade 2A (plus or minus 1%). Laboratory and calibration applications use Grade 4A (plus or minus 0.1%). Grade 1A (plus or minus 2%) is acceptable for utility services.

ASME GradeAccuracyApplies ToTypical Application
4A±0.1%Full scaleDead weight testers, laboratory reference gauges
3A±0.25%Full scalePrecision process measurement, calibration gauges
2A±1%Middle 80% of scaleStandard industrial process gauges
1A±2%Middle 50% of scaleUtility services, general indication only
Tip: Note that Grade 2A accuracy of ±1% applies only across the middle 80% of scale. At the bottom and top 10% of scale, accuracy degrades. This is another reason to operate in the 25 to 75% range: it keeps the reading in the accurate middle band.
Did You Know? Most plant pressure gauges are purchased to Grade 2A (plus or minus 1%) but installed without any verification. A new gauge from a reputable manufacturer will normally be within spec. However, a gauge that has been in service for two or more years and subjected to pulsation or vibration may have drifted by 2 to 5% without any visible indication. Regular comparison against a calibrated reference gauge is the only way to detect this drift.
3
Dial Size

ASME B40.100 recommends: 63 mm dial for viewing within 1 metre, 100 mm for up to 3 metres, 150 mm for up to 6 metres. Larger dials carry more scale graduations and improve reading resolution.

Tip: In hazardous area installations where the gauge is behind a barrier or in a glass-fronted enclosure, increase the dial size by one step. A 150 mm gauge seen through a scratched polycarbonate panel at 2 metres is harder to read than a 100 mm gauge at 0.5 metres in open air.
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4
Process Connection Size and Location

Bottom entry (lower mount) suits panel and bracket installations. Back entry (back mount) is used where the gauge connects directly to a pipe nozzle and the face reads forward.

Common sizes are 1/4 inch and 1/2 inch NPT, and G 1/4 or G 1/2 BSP. Always match thread type and size to the existing fitting. Mixing NPT and BSP causes a leak path even if the fitting physically makes up.

Did You Know? NPT (National Pipe Taper) and BSP (British Standard Pipe) tapers have different taper angles: NPT uses 1 in 16 taper (3.576°), BSP uses 1 in 16 taper too, but the thread pitch and form angle differ (NPT: 60°, BSP: 55°). The threads will appear to engage but will not seal correctly. Never mix them without a converting fitting.
5
Sensing Element and Wetted Material

The Bourdon tube (C-type or helical) is standard for 0.5 to over 1000 bar. The diaphragm element suits low pressures (below 6 bar), viscous fluids, and slurries where a Bourdon tube would plug.

Capsule elements suit very low pressures (0 to 25 mbar range) such as gas burner controls and draught measurement.

Wetted materials must be compatible with the process fluid. For compatibility, always cross-check against a chemical resistance chart for the exact fluid at the actual process temperature.

MaterialCompatible WithAvoid For
Brass (Cu-Zn alloy)Water, oil, air, non-corrosive gases, steam to 150°CAmmonia, acetylene, chlorine, strong acids (dezincification risk)
316 Stainless SteelMost acids, caustic solutions, food fluids, most hydrocarbonsChloride-rich environments above 60°C (SCC risk), hydrofluoric acid
Hastelloy C276Oxidising and reducing acids, chlorides, seawater, phosphoric acidHigh-temperature strongly oxidising acids
Monel (Ni-Cu alloy)Hydrofluoric acid, alkaline solutions, seawater, fluorineOxidising acids, nitric acid
TitaniumWet chlorine, chlorides, seawater, strong oxidising acidsDry chlorine, red fuming nitric acid, hydrofluoric acid
Tip: Stress corrosion cracking (SCC) in 316 SS Bourdon tubes is a well-known failure mode in chloride-containing process streams above 60°C. Even low chloride concentrations (above 100 ppm) can initiate cracking in a sensitised weld zone. For cooling water or seawater service, specify Duplex 2205 SS or Hastelloy C276 wetted parts, not standard 316 SS.
Did You Know? A Bourdon tube pressure gauge works on the same principle as an unfurling party horn: a curved tube with an oval cross-section tends to straighten as internal pressure increases. The cross-section changes from oval toward circular under pressure, and this shape change drives the mechanical linkage to the pointer. This principle was patented by Eugène Bourdon in 1852 and remains unchanged in modern gauges.
6
Fill Fluid

A liquid-filled gauge has its case filled with glycerine or silicone oil. Fill fluid dampens pointer oscillation from pulsation and vibration, lubricates the movement, and prevents condensation.

A dry gauge (air-filled case) is used only in clean, vibration-free, temperature-stable environments.

Glycerine (Glycerol)

Mineral-free glycerine is the most common fill fluid. Excellent vibration damping. Compatible with most process fluid leaks. Temperature range: minus 20°C to plus 60°C. Avoid where freezing is possible. Turns milky on water ingress (useful indicator of seal failure).

Silicone Oil (PDMS)

Wider temperature range than glycerine: minus 40°C to plus 200°C. Lower viscosity at low temperatures (better pointer response in cold climates). More expensive. Required for high-temperature or cryogenic service where glycerine would freeze or decompose.

Halocarbon (Fluorolube)

Required for oxygen service and strong oxidising acids (nitric acid, hydrogen peroxide). Silicone and glycerine are flammable in contact with liquid oxygen or concentrated oxidisers. Never use a glycerine-filled gauge on an oxygen line.

Food-Grade (NSF H1)

White mineral oil or food-grade propylene glycol fill. Mandatory for food, beverage, and pharmaceutical applications where incidental contact with the product is possible. Specified to NSF/ANSI 61 or 3-A standards.

Tip: Never install a glycerine-filled gauge on an oxygen or oxidiser service. Glycerine is a fuel and will combust violently if exposed to liquid oxygen or concentrated hydrogen peroxide. All oxygen-service gauges must be cleaned, degreased, and filled with an approved non-flammable fill fluid such as Fluorolube before installation.
Did You Know? A glycerine-filled gauge case is typically filled to about 90% of its volume. The remaining 10% is an air bubble left intentionally. This air space allows the glycerine to expand with temperature without building internal pressure that could distort the case or blow the window seal. If a gauge case is completely full and the temperature rises significantly, the case can crack. Always check for a fill screw or vent plug before topping up a partially empty gauge.
7
Environmental and Safety Requirements

Three additional specifications complete the pressure gauge selection for hazardous or demanding environments.

Overpressure protection: Specify a solid-front gauge or blowout-back case for applications where the element might rupture under overpressure. The solid front directs any overpressure blowout away from the operator. Required by many safety standards for pressures above 25 bar or on hazardous services.

IP rating: Specify minimum IP65 for outdoor or wet locations. Liquid-filled sealed-case gauges achieve this naturally. See the zero and span guide for how water ingress causes zero error drift.

ATEX/IECEx: Gauges in Zone 1 or Zone 2 must carry ATEX or IECEx certification. A mechanical gauge has no ignition source, but a stainless steel case can accumulate static charge. Zone 0 or Zone 1 standards may require an earthing provision.

Tip: In applications with frequent cleaning (CIP, steam cleaning, washdown areas), specify a gauge with an IP69K rating: this certifies resistance to high-pressure, high-temperature water jets at close range (typically 80°C water at 100 bar from 0.1 to 0.15 m distance). A standard IP65 gauge will not survive repeated CIP cycles without water ingress through the pointer shaft seal.
Did You Know? A pressure gauge with a Bourdon tube element also acts as a basic safety device. If process pressure exceeds the gauge range by a large margin (typically 130% of full scale or more), the Bourdon tube will begin to plastically deform rather than return to zero. This is intentional: the gauge sacrifices itself before the pressure builds further, providing a visible warning that something is wrong with the process. A pointer permanently resting at full scale is a maintenance alert, not just a faulty gauge.
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Pressure Gauge Range Selector

Recommended Gauge Range Calculator
Enter operating conditions to find the correct pressure gauge range from the standard IEC series
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Watch: How to Select the Right Pressure Gauge Range

Pressure Gauge Selection Questions

What is the recommended working range for a pressure gauge?
Normal operating pressure: 25 to 75% of full scale. Pulsating applications: limit to 50%. Operating above 75% continuously causes permanent zero shift from Bourdon tube fatigue.
When should I use a liquid-filled pressure gauge instead of a dry gauge?
Use liquid-filled wherever vibration, pulsation, or pressure cycling is present. Fill fluid dampens oscillation, lubricates the movement, and doubles service life. Use dry gauges only in clean, vibration-free, stable-temperature locations.
Can I use a glycerine-filled gauge on an oxygen line?
No. Glycerine is combustible and reacts explosively with liquid oxygen or concentrated oxidisers. Oxygen-service gauges must be degreased and filled with an approved non-flammable fluid such as Fluorolube.
What is the difference between Bourdon tube and diaphragm pressure gauges?
A Bourdon tube is a curved oval-section tube that straightens under pressure, used from 0.5 bar to over 1000 bar. A diaphragm element suits low pressures below 6 bar and viscous or slurry fluids where a Bourdon tube would plug.
How do I choose between glycerine and silicone fill fluid?
Use glycerine for service between minus 20°C and plus 60°C: lower cost, excellent damping, turns milky on water ingress. Use silicone for service below minus 20°C or above 60°C where glycerine would freeze or slow the pointer.

External References

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What We Learn Today

  • Select a range where normal operating pressure is 25 to 75% of full scale. Pulsating service: limit to 50%.
  • Grade 2A (±1%) is standard for industrial process gauges. Never use glycerine fill on oxygen or oxidiser service.
  • Match wetted material to the process fluid: 316 SS for most services, Hastelloy C276 for chlorides and strong acids.
“A pressure gauge does not fail because it is cheap. It fails because it was specified for the wrong range, the wrong material, or the wrong fill fluid for where it was installed.”

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