

BURKERT Type 8745 Mass Flow Controller (MFC) and Meter (MFM) for gases. Features nominal flow ranges from 20 to 2500 lN/min, high accuracy, and Industrial Ethernet or Modbus RTU communication.

BURKERT Type 8745 is a mass flow controller (MFC) and mass flow meter (MFM) suitable for controlling the mass flow of large gas quantities. Type 8745 can be configured as an MFM or MFC according to demand. Optionally, up to four calibration curves can be stored in the device. The thermal inline sensor located directly in the main gas stream achieves very fast response times with minimal pressure loss. As the actuator, a Bürkert direct-acting proportional valve guarantees high response sensitivity. As an MFC, Type 8745 is available in two variants: with an electromagnetic proportional valve and with an electromotive proportional valve. In addition to an analogue and an Industrial Ethernet variant, a Modbus RTU variant is also available.
| Property | Description |
|---|---|
| Seal Material | FKM or EPDM (depending on gas) |
| Housing Material | PC (polycarbonate) |
| Base Block Material | Aluminium or stainless steel 1.4404/316L |
| Wetted Parts (Sensor) | Stainless steel 1.4404/316L, Al₂O₃, PPS GF40, epoxy resin, silicon, silicon nitride |
| Operating Voltage | 24 V DC (±10% voltage tolerance, ±2% residual ripple) |
| Operating Medium | Neutral, pure gases (others on request) |
| Medium Temperature | -10 °C to +70 °C (-10 °C to +60 °C with oxygen) |
| Ambient Temperature | -10 °C to +50 °C (higher temperatures on request) |
| Degree of Protection | IP20 |
Note on Electromotive Valves
When using the electromotive proportional valve, the minimum medium temperature is 0 °C. The device additionally includes a PEEK valve seat seal (Type 3280 DN 4) or an Al₂O₃ valve seat seal (Type 3285).
The MFC variant uses direct-acting proportional valves of the 287x series. These electromagnetic proportional valves are normally closed and stand for highest measuring accuracy and repeatability with settling times of a few hundred milliseconds.
| Performance Data | Specification |
|---|---|
| Nominal flow range (QN) | MFC: 20...1500 lN/min (N₂) MFM: ≤ 2500 lN/min (N₂) |
| Operating pressure | MFM: max. 25 bar MFC: max. 25 bar |
| Measuring accuracy | ±1.5% MV ±0.3% FS |
| Repeatability | ±0.1% FS |
| Turndown ratio | 1:50 |
| Settling time (t95) | < 500 ms |
| Power consumption | Max. 4 W (as MFM) Max. 12.5...31.5 W (as MFC) |
Type 8745 with an electromotive proportional valve is especially suitable for applications with high inlet pressures of up to 22 bar or high flow rates (at a low pressure drop). The motor’s power consumption to hold a specific opening position is nearly zero, which can reduce the energy consumption of a plant dramatically.
| Performance Data | Specification |
|---|---|
| Nominal flow range (QN) | 20...2500 lN/min (N₂) |
| Operating pressure | MFM: max. 22 bar MFC: depends on medium and nominal valve size |
| Measuring accuracy | ± 2% MV ± 0.5% FS |
| Repeatability | ± 0.5% FS |
| Turndown ratio | 1:50 |
| Settling time (t95) | < 5 s |
| Power consumption | Max. 4 W (as MFM) Max. 12 W (as MFC) |



All values refer to 1013.25 mbar abs and 273.15 K (0 °C).
| Gas | Min. QN [l/min] | Max. QN [l/min] |
|---|---|---|
| Acetylene | 20 | 320 (from 65 l/min with air calibration) |
| Ammonia | 8 | 1000 |
| Argon | 20 | 1600 |
| Carbon dioxide | 20 | 800 |
| Air | 20 | 2500 |
| Methane | 20 | 1200 |
| Propane | 20 | 200 |
| Oxygen | 20 | 2500 |
| Nitrogen | 20 | 2500 |
The diagram shows an example of the pressure loss curves with air flowing through. To determine the pressure loss of other gases, the corresponding air equivalent must first be calculated.

Formula for calculating the pressure loss in an MFM: $\Delta P_{Gas} = \Delta P_{Air} \sqrt{\frac{\rho_{NGas}}{\rho_{NAir}}}$

This sensor works as a hot-film anemometer in the CTA operational mode (Constant Temperature Anemometer). Two resistors with a precisely specified temperature coefficient located directly in the media flow and three further resistors are connected to form a measuring bridge. The first resistor in the gas flow measures the fluid temperature, while the second, low-value resistor is always heated just enough to keep it at a fixed, specified excess temperature with respect to the fluid temperature. The heating current required for this is a measure of the heat dissipation and represents the primary measured variable.

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