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USER MANUAL SD9500 IFM
Operating instructions
Flow meter compressed air
SDx5xx
SDx6xx
SDx8xx
Contents
1 Preliminary note.... 4
1.1 Symbols used.... 4
1.2 Warnings.... 4
2 Safety instructions 5
3 Intended use 6
3.1 Application area 6
4 Function 7
4.1 Output OUT1 selection options 7
4.2 Output OUT2 selection options 7
4.3 IO-Link 7
5 Mounting 9
5.1 Installation location.... 9
5.2 Installation position.... 9
5.3 Interference.... 10
5.4 Process connection.... 10
6 Electrical connection 11
7 Operating and display elements.... 13
8 Menu.... 14
8.1 Menu overview.... 14
8.2 Main menu and submenus 14
9 Set-up 22
10 Parameter setting 23
10.1 Parameter setting via the unit keys 23
10.2 Parameter setting via IO-Link 23
10.3 Output configuration 24
10.3.1 Switching signal 24
10.3.2 Analogue signal.... 26
10.3.3 Consumed quantity monitoring (totaliser function) 28
10.3.3.1 Pulse signal totaliser 28
10.3.3.2 Switching signal totaliser 29
10.3.4 Output off 30
10.4 Application configuration 31
10.4.1 Standard unit of measurement 31
10.4.2 Damping 31
10.4.3 Output polarity of the switching outputs.... 32
10.4.4 Medium.... 32
10.4.5 Process value for OUT1 and OUT2 32
10.4.6 Low flow cut-off 33
10.4.7 Standard conditions 34
10.4.8 Zero calibration 34
10.4.9 Switching delay 35
10.4.10 Error behaviour of the outputs 35
10.4.11 Totaliser reset 36
10.4.12 Lock / unlock 37
10.4.13 Device reset 38
10.5 Display 38
10.5.1 Display layout 38
10.5.2 Display update rate 39
10.5.3 Display rotation 39
10.5.4 Display brightness 40
10.5.5 Display colour setting 40
10.6 Diagnosis 42
10.6.1 Read totaliser values 42
10.6.2 Memory 42
10.7 Service functions.... 43
10.7.1 Simulation 43
10.7.2 Optical localisation 44
10.7.3 Device information 44
11 Troubleshooting.... 46
11.1 Warning messages.... 46
11.2 Error messages 46
12 Maintenance, repair and disposal 48
13 Factory settings.... 49
1 Preliminary note
You will find instructions, technical data, approvals and further information using the QR code on the unit / packaging or at documentation.ifm.com.
1.1 Symbols used
√ Requirement
Instruction
Reaction, result
bold Designation of keys, buttons or indications
→ Cross-reference without link
→ Cross-reference with link

Important note
Non-compliance may result in malfunction or interference

Information
Supplementary note
1.2 Warnings
Warnings indicate the possibility of personal injury and damage to property. This enables safe product handling. Warnings are graded as follows:

WARNING
Warning of serious personal injury
▷ If the warning is not observed, fatal and serious injuries are possible.

CAUTION
Warning of minor to moderate personal injury
▷ If the warning is not observed, minor to moderate injuries are possible.

ATTENTION
Warning of damage to property
▷ If the warning is not observed, damage to property is possible.
2 Safety instructions
- The unit described is a subcomponent for integration into a system.
- The system architect is responsible for the safety of the system.
-
The system architect undertakes to perform a risk assessment and to create documentation in accordance with legal and normative requirements to be provided to the operator and user of the system. This documentation must contain all necessary information and safety instructions for the operator, the user and, if applicable, for any service personnel authorised by the architect of the system.
-
Read this document before setting up the product and keep it during the entire service life.
- The product must be suitable for the corresponding applications and environmental conditions without any restrictions.
- Only use the product for its intended purpose (→ Intended use).
- Only use the product for permissible media.
- If the operating instructions or the technical data are not adhered to, personal injury and/or damage to property may occur.
- The manufacturer assumes no liability or warranty for any consequences caused by tampering with the product or incorrect use by the operator.
- Installation, electrical connection, set-up, operation and maintenance of the product must be carried out by qualified personnel authorised by the machine operator.
- Protect units and cables against damage.
3 Intended use
The device monitors the standard volume flow of compressed air in industrial use and / or technical gases. The device measures the flow velocity, the volume flow (consumed quantity / time), the consumed quantity, the medium temperature and the pressure.
3.1 Application area
The unit is designed for use in compressed air systems in industrial use.
SDx5xx
- Compressed air
SDx6xx
- Compressed air
- Argon (Ar)
- Carbon dioxide (CO2)
- Nitrogen (N2)
Selection of the medium to be monitored: Medium ➕ 32
SDx8xx
- Helium (He)
All indications apply to standard volume flow to DIN ISO 2533, i.e. volume flow at 1013 mbar (101.3 kPa), 15 °C and 0 % relative air humidity. The unit can be set to different standard conditions.

Electromagnetic compatibility (EMC):
This is a class A product. This product may cause radio interference in domestic areas:
▶ If required, take appropriate EMC screening measures.

Pressure Equipment Directive (PED):
The devices comply with the Pressure Equipment Directive and are designed for stable gases of fluid group 2 and manufactured in accordance with the sound engineering practice.
4 Function
- The unit detects flow based on the calorimetric measuring principle.
- As additional process values the unit also detects the medium temperature and the pressure.
• The unit has an IO-Link interface. - The unit displays the current process values.
• The unit has many self-diagnostic options. - A simulation mode allows simplified set-up of the sensor.
- The unit generates two output signals according to the parameter setting.
4.1 Output OUT1 selection options
- Switching signal flow
- Switching signal temperature
- Switching signal pressure
- Switching signal totaliser
- Pulse signal totaliser
- IO-Link
• OFF (output switched to high impedance)
4.2 Output OUT2 selection options
- Switching signal flow
- Switching signal temperature
- Switching signal pressure
- Switching signal totaliser
- Pulse signal totaliser
- Analogue signal flow
• Analogue signal temperature
• Analogue signal pressure
• Input for external totaliser reset
• OFF (output switched to high impedance)
4.3 IO-Link
IO-Link is a communication system for connecting intelligent sensors and actuators to automation systems. IO-Link is standardised in the IEC 61131-9 standard.

General information on IO-Link at io-link.ifm

Input Output Device Description (IODD) with all parameters, process data and detailed descriptions of the device at documentation.ifm.com
IO-Link offers the following advantages:
• Interference-free transmission of all data and process values
• Parameter setting in the running process or presetting outside the application
- Parameters for identifying the connected devices in the system
• Additional parameters and diagnostic functions
• Automatic backup and restore of parameter sets in case of device replacement (data storage) - Logging of parameter sets, process values and events
• Device description file (IODD - Input Output Device Description) for easy project planning
• Standardised electrical connection - Remote maintenance
5 Mounting

CAUTION
If the medium temperature is above 50\ °C ( 122\ °F ), parts of the housing can increase in temperature to over 65\ °C ( 149\ °F ).
▷ Risk of burns.
▶ Protect the housing against contact with flammable substances and unintentional contact.
▶ Apply the supplied warning label to the sensor cable.

▶ Ensure that the system is free of pressure during installation.
▶ The rules and regulations for the installation and operation of compressed air equipment must be observed.
5.1 Installation location
▶ Install the unit downstream of the cold dryer.
▶ Install the unit near the load.
▶ The unit can be installed downstream of a maintenance unit.
▶ If oil is used for the loads: Install the unit upstream of the oiler.
5.2 Installation position
1


2

3

4

Fig. 1: Orientation of the pipe length and the device
1: Pipe length vertical, any device position
2: Pipe length horizontal, device vertical
3: Pipe length right (with plug facing the front), device on side
4: Avoid: pipe length left (with plug facing the front), device on side
F: Direction of flow
5.3 Interference
Structures in the pipe, bends, valves, reducing pieces and the like affect the function of the unit.
▶ Adhere to the distances between sensor and interference.
| Interference | Distance to the sensor | ||
![]() | changes to the pipe diameter | 10 x pipe diameter | |
![]() | 90° elbow | 10 x pipe diameter | |
![]() | two 90° elbows, one plane | 15 x pipe diameter | |
![]() | two 90° elbows, two planes | 25 x pipe diameter | |
![]() | valve, slide | 40 x pipe diameter | |

Shut-off valves and control devices are not allowed directly in front of the unit.
▶ Avoid diameter changes between the inlet pipe length and the unit. If a diameter change cannot be avoided, make sure that the diameter of the inlet pipe length is greater than the diameter at the unit.
5.4 Process connection
▶ Fit the unit in the pipe in accordance with the flow direction (arrow on the unit):

▶ Tighten both adapters in opposite direction by applying the defined tightening torque:
| Type | Tightening torque |
| SD5xxx | 50 Nm |
| SD6xxx | 100 Nm |
| SD2xxx, SD9xxx | 150 Nm |
6 Electrical connection

The unit must be connected by a qualified electrician.
Observe the national and international regulations for the installation of electrical equipment.
Voltage supply according to SELV, PELV.
▶ Disconnect power.
▶ Connect the unit as follows:


Fig. 2: Wiring diagram
| Pin | Assignment |
| 1 | L+ |
| 3 | L- |
| 4 (OUT1) | Switching signal flow Switching signal temperature Switching signal pressure Switching signal totaliser Pulse signal totaliserIO-LinkOFF (output switched to high impedance) |
| 2 (OUT2/InD) | Switching signal flow Switching signal temperature Switching signal pressure Switching signal totaliser Pulse signal totaliser Analogue signal flow Analogue signal temperature Analogue signal pressure Input for external totaliser resetOFF (output switched to high impedance) |




Fig. 3: Circuit examples
1: 2 x positive switching
2: 2 x negative switching
3: 1 x positive switching / 1 x analogue
4: 1 x negative switching / 1 x analogue
7 Operating and display elements

Fig. 4: Operating and display elements
1: Switching status LED for OUT1
2: Switching status LED for OUT2
3: TFT display
4: Keys for changing the displays and parameter setting

If the unit measures a high internal temperature, the display brightness is automatically adjusted:
Internal temperature of the unit > 70 °C: brightness is reduced to 25%.
Internal temperature of the unit ≥ 100 ° C: display is automatically switched off.
Switching between display screens:
It is possible to switch between different process value indications during operation:
▶ Press ▲ or ▼.
▷ The display changes between the standard indication with set standard unit of measurement and other views.
▷ After 30 s, the unit returns to the standard display.

1: Standard display as set under diS. L and uni.x
2: Overview of all process values
3: Overview totaliser values
Reading the parameter setting:
▶ Briefly press ●.
▶ Press ▼ to select the parameter.
▶ Briefly press ●.
▷ The currently set value is displayed for 30 s. Then the device returns to the process value display.
8 Menu
8.1 Menu overview
Use the operating keys to navigate from the process value display to the main menu and from there to the submenus.

Fig. 5: Menu overview
8.2 Main menu and submenus
The figures in which the menus are displayed show the parameters that can be set on the unit by key input. These parameters and other functions are also available via the IO-Link interface.

The displayed parameters change when the factory setting is changed. The following menu displays show the maximum available parameters.
Main menu:

| Parameter | Explanation |
| SPx | Switch point for switching output OUTx with hysteresis function |
| rPx | Reset point for switching output OUTx with hysteresis function |
| FHx | Upper limit for switching signal OUTx with window function |
| FLx | Lower limit for switching signal OUTx with window function |
| ImPSx | Pulse value (= flow value at which 1 pulse is provided) |
| ImPRx | Totaliser function: pulse signal (lmPR = YES) or switching signal (lmPR = NO) |
| ASP2 | Analogue start point for OUT2 = process value at which the output signal is 4 mA. |
| AEP2 | Analogue end point for OUT2 = process value at which the output signal is 20 mA. |
| DIn2 | Reset signal for external totaliser reset |
| EF | Change to the EF (extended functions) submenu |
Menu extended functions EF:

| Parameter | Explanation |
| rES | Reset to factory settings |
| rTo | Setting of the totaliser reset (manually or time-controlled) |
| Info | Display of the device information |
| OUT1 | Change to submenu OUT1 (output configuration of output 1) |
| OUT2 | Change to submenu OUT2 (output configuration of output 2) |
| CFG | Change to the submenu CFG (basic settings) |
| MEM | Change to the MEM (memory) submenu |
| DIS | Change to the DIS (display) submenu. |
| COLR | Change to the submenu COLR (colour settings) |
| SIM | Change to the submenu SIM (simulation) |
Output 1 menu OUT1:

| Parameter | Explanation |
| SEL1 | Process value for output OUT1 |
| ou1 | Output function for output OUT1 |
| SP1 | Setpoint for switching output OUT1 with hysteresis function |
| rP1 | Reset point for switching output OUT1 with hysteresis function |
| FH1 | Upper limit value for switching signal OUT1 with window function |
| FL1 | Lower limit value for switching signal OUT1 with window function |
| ImPS1 | Pulse value (= flow value at which 1 pulse is provided) |
| ImPR1 | Totaliser function: pulse signal (ImPR1 = YES) or switching signal (ImPR1 = NO) |
| dS1 | Switch-on delay for switching output OUT1 in seconds |
| dr1 | Switch-off delay for switching output OUT1 in seconds |
| FOU1 | Behaviour of output OUT1 in case of an error |
Output 2 menu OUT2:

| Parameter | Explanation |
| SEL2 | Process value for output OUT2 |
| ou2 | Output function for output OUT2 |
| ASP2 | Analogue start point for OUT2 = process value at which the output signal is 4 mA. |
| AEP2 | Analogue end point for OUT2 = process value at which the output signal is 20 mA. |
| SP2 | Setpoint for switching output OUT2 with hysteresis function |
| rP2 | Reset point for switching output OUT2 with hysteresis function |
| FH2 | Upper limit value for switching signal OUT2 with window function |
| FL2 | Lower limit value for switching signal OUT2 with window function |
| ImPS2 | Pulse value (= flow value at which 1 pulse is provided) |
| ImPR2 | Totaliser function: pulse signal (ImPR2 = YES) or switching signal (ImPR2 = NO) |
| DIn2 | Reset signal for external totaliser reset |
| dS2 | Switch-on delay for switching output OUT2 in seconds |
| dr2 | Switch-off delay for switching output OUT2 in seconds |
| FOU2 | Behaviour of output OUT2 in case of error |
Basic settings menu CFG:

* only available for device type SDx6xx
| Parameter | Explanation |
| uni. F | Standard unit of measurement for flow |
| uni. T | Standard unit of measurement for temperature |
| uni. P | Standard unit of measurement for pressure |
| dAP. F | Damping constant in seconds for flow (63 % rise time τ) |
| dAP. P | Damping constant in seconds for pressure (63 % rise time τ) |
| P-n | Output polarity for the switching outputs |
| MEdi | Selection of the medium to be monitored |
| LFC | Low flow cut-off (= flow value below which flow is evaluated as standstill) |
| rEF. P | Standard pressure as environmental condition |
| rEF. T | Standard temperature as environmental condition |
| cOF | Correction factor for zero point calibration pressure |
Memory MEM and simulation SIM menus:

| Parameter | Explanation |
| Lo. F | Lowest flow value measured |
| Hi. F | Highest flow value measured |
| Lo. T | Minimum measured temperature value |
| Hi. T | Maximum temperature value measured |
| Lo. P | Lowest pressure value measured |
| Hi. P | Maximum pressure value measured |
| S. FLW | Simulated flow value in simulation mode |
| S. TMP | Simulated temperature value in simulation mode |
| S. PRS | Simulated pressure value in simulation mode |
| S. Tim | Duration of the simulation in minutes |
| S. On | Starts the simulation mode |
Display DIS and colour settings COLRmenus:

| Parameter | Explanation |
| diS. L | Display layout |
| diS. U | Update rate of the display |
| diS. R | Orientation of the display |
| diS. B | Brightness of the display |
| coL. F | Font colour for flow |
| cFH. F | Upper limit value for colour change (flow) |
| cFL. F | Lower limit value for colour change (flow) |
| col. T | Font colour for temperature |
| cFH. T | Upper limit value for colour change (temperature) |
| cFL. T | Lower limit value for colour change (temperature) |
| col. P | Font colour for pressure |
| cFH. P | Upper limit value for colour change (pressure) |
| cFL. P | Lower limit value for colour change (pressure) |
| col. V | Font colour for totaliser indication |
9 Set-up
After power-on and expiry of the power-on delay time of approx. 1 s, the unit is in the normal operating mode. It carries out its measurement and evaluation functions and generates output signals according to the set parameters.
- During the power-on delay time the outputs are switched as programmed:
- ON with normally open function (Hno / Fno)
– OFF with normally closed function (Hnc / Fnc).
– OFF for consumed quantity monitoring (ImP)
- If output 2 is configured as analogue output, the output signal is at 20 mA during the power-on delay time.
10 Parameter setting
Parameter setting can be carried out via the IO-Link interface or via the operating elements on the unit.
Parameters can be set before installation or during operation.

If you change parameters during operation, this will influence the function of the plant.
▶ Ensure that there will be no malfunctions in your plant.
During parameter setting the unit remains in the operating mode. It continues to monitor with the existing parameter until the parameter setting has been completed.

Depending on the parameter setting, the parameters available in the menu may change.
10.1 Parameter setting via the unit keys

CAUTION
If the medium temperature is above 50\ °C ( 122\ °F ), parts of the housing can increase in temperature to over 65\ °C ( 149\ °F ).
▷ Risk of burns
▶ Do not touch the device with your hands.
▶ Use another object (e.g. a ballpoint pen) to carry out settings on the unit.
Parameter setting process in general:
| Intention | Action |
| Change from the process value display to the main menu | ● |
| Change to the submenu | Use ▼ to navigate to the submenu, e.g. EF, then ● |
| Select the required parameter | ▲ or ▼ |
| Change to the setting mode | ● |
| Modify the parameter value | ▲ or ▼ > 1 s |
| Apply the set parameter | ● |
| Exit parameter setting without saving | ▲ + ▼ |
| Return to the next higher menu level (repeat several times to reach process value display) | ▲ + ▼ |
| Return to the process value display | >30 seconds (timeout) |

If Loc is displayed when attempting to change a parameter value, the device keys are locked ➞ Lock / Unlock.

If S. Loc is displayed, the sensor is permanently locked via software. This locking can only be removed with a parameter setting software.
10.2 Parameter setting via IO-Link
The device parameters can be set via the IO-Link interface in the following ways, for example:
- Parameter setting via a suitable parameter setting software, e.g. ifm moneo|configure
• Parameter setting via a PLC
• Parameter setting via an IIoT application
Requirements for parameter setting via the IO-Link interface:
√ The Input Output Device Description (IODD) for the device in case of parameter setting via a parameter setting software, see documentation.ifm.com
√ The IO-Link interface description (PDF) for the device in case of parameter setting via a PLC or IIoT application, see documentation.ifm.com
√ An IO-Link master
▶ Connect the IO-Link master to the parameter setting software, the PLC or the IIoT application.
▶ Connect the device to a suitable free port of the IO-Link master.
▶ Set the port of the IO-Link master to the IO-Link operating mode.
▷ The device changes to the IO-Link mode.
▶ Change the parameter settings in the software.
▶ Write the parameter settings to the device.

Support for system integration and parameter setting via IO-Link:
→ Manual of the parameter setting software (e.g. moneo)
Explanations and startup packages at ifm.com/cnt/io-link-system-integration.
10.3 Output configuration
10.3.1 Switching signal
OUTx changes its switching status if it is above or below the set switching limits. Hysteresis or window function can be selected.

Fig. 6: Hysteresis function
1: Process value
t: Time
SP: Set point
rP: Reset point
HY: Hysteresis
Hno: Hysteresis function NO (normally open)
Hnc: Hysteresis function NC (normally closed)

When the hysteresis function is set, the switch point SP and the reset point rP are defined. rP must have a lower value than SP. If only the switch point is changed, the reset point is changed automatically; the difference remains constant.

1: Process value
t: Time
FH: Upper limit value
FL: Lower limit value
HY: Hysteresis
FE: Window area
Fno: Window function NO (normally open)
Fnc: Window function NC (normally closed)
Fig. 7: Window function

When set to the window function the upper limit value SP and the lower limit value rP are defined. SP and rP have a fixed hysteresis of 0.25 % of the final value of the measuring range. This keeps the switching status of the output stable if the volumetric flow varies slightly.
Parameter setting via unit keys: Switching signal
√ The standard unit of measurement is selected: EF > CFG > uni.x.
√ The process value is selected: EF > OUTx > SELx.
▶ Go to EF > OUTx to configure the output OUTx.
Hysteresis function:
▶ Select ou and set the switching signal: Hno or Hnc.
▶ Select SPx and set the measured value at which the output switches.
▶ Select rPx and set the measured value at which the output switches back.
Window function:
▶ Select ou and set the switching signal: Fno or Fnc.
▶ Select FHx and set the upper limit of the window.
▶ Select FLx and set the lower limit of the window.

The parameter settings for SP, rP, FH and FL can be changed subsequently in the main menu.
Parameter setting via IO-Link: Switching signal
√ The standard unit of measurement is selected: Parameter > Setting of the sensor display > uni.x.
√ The process value is selected: Parameter > Output configuration > SELx.
▶ Go to Parameter > Output configuration.
Hysteresis function:
▶ Select oux and set the switching signal: Hno or Hnc.
▶ Call up Parameters > Digital Output x.
▶ Go to Flow, Temperature or Pressure.
▶ Select SPx(FHx)-FLOW or SPx(FHx)-TEMP or SPx(FHx)-PRES and set the measured value at which the output switches.
▶ Select rPx(FLx)-FLOW or rPx(FLx)-TEMP or rPx(FLx)-PRES and set the measured value at which the output switches off.
Window function:
▶ Select oux and set the switching signal: Fno or Fnc.
▶ Call up Parameters > Digital Output x.
▶ Go to Flow, Temperature or Pressure.
▶ Select SPx(FHx)-FLOW or SPx(FHx)-TEMP or SPx(FHx)-PRES and set the upper limit for the switching signal.
▶ Select rPx(FLx)-FLOW or rPx(FLx)-TEMP or rPx(FLx)-PRES and set the lower limit for the switching signal.
10.3.2 Analogue signal
The unit provides an analogue signal of 4...20 mA proportional to the process value.
The measuring range is scalable:
- ASP determines at which measured value the output signal is 4mA.
• AEP determines at which measured value the output signal is 20mA.

Minimum distance between ASP and AEP = 20 % of the final value of the measuring range.
If the measured value is outside the measuring range or in the event of an internal error, the current signal indicated in the following figure is provided.
For measured values outside the display range or in case of an error, messages are displayed (cr. UL, UL, OL, cr. OL, Err).
The analogue signal in case of a fault can be set via the parameter FOU.

Fig. 8: Characteristics of the analogue output according to the standard IEC 60947-5-7
| A: | Analogue signal |
| B: | Process value |
| 1: | Detection zone |
| 2: | Display range |
| 3: | Measuring range |
| 4: | Scaled measuring range |
| Q: | Flow |
| T: | Temperature |
| MAW: | Initial value of the measuring range (with setting of low flow cut-off for Q: signal output starting at MAW + LFC) |
| MEW: | Final value of the measuring range |
| ASP: | Analogue start point |
| AEP: | Analogue end point |
| UL: | Below the display range |
| OL: | Above the display range |
| cr. UL: | Below the detection zone (error) |
| cr. OL: | Above the detection zone (error) |
| FOU: | Error behaviour of the analogue output: FOU = On: In case of a fault the analogue signal goes to the upper end stop value. FOU = OFF: In case of a fault the analogue signal goes to the lower end stop value. |
Parameter setting via the device keys: Analogue signal
√ The standard unit of measurement is selected: EF > CFG > uni.x.
√ The process value is selected: EF > OUT2 > SEL2.
▶ Go to EF > OUT2 to configure the output OUT2.
▶ Select ou2 and set the function: I (analogue signal 4...20 mA.).
▶ Select ASP2 and set the measurement value at which the output signal is 4 mA.
▶ Select AEP2 and set the measurement value at which the output signal is 20 mA.
Parameter setting via IO-Link: Analogue signal
√ The standard unit of measurement is selected: Parameter > Setting of the sensor display > uni.x.
√ The process value is selected: Parameter > Output configuration > SEL2.
▶ Go to Parameter > Output configuration.
▶ Select ou2 and set the function: I (analogue signal 4...20 mA.).
▶ Select Parameter > Analog output 2.
▶ Go to Flow, Temperature or Pressure.
▶ Select ASP2-FLOW or ASP2-TEMP or ASP2-PRES and set the measurement value at which the output signal is 4 mA.
▶ Select AEP2-FLOW or AEP2-TEMP or ASP2-PRES and set the measurement value at which the output signal is 20 mA.
10.3.3 Consumed quantity monitoring (totaliser function)
The unit has an internal totaliser. The totaliser continuously sums up the consumed quantity and provides this process value both on the display and via the IO-Link interface.
In addition to the current consumed quantity, the value before the last reset is saved. This value and the time since the last reset can also be displayed.

The totaliser saves the totalled volumetric flow quantity every 10 minutes. After a power failure this value is available as the current meter reading. If a time-controlled reset is set, the elapsed time of the set reset interval is also saved. This means that the possible data loss can be maximum 10 minutes.
Indication of the consumed quantity in the display: Operating and display elements.
See also: Totaliser reset ➕ 36.
Pulse signals or a switching signal can be used to monitor the consumed quantity.
The accuracy of the consumed quantity measurement depends on the accuracy of the volumetric flow measurement.
OUT1 and OUT2 cannot be used simultaneously for the consumed quantity monitoring.
10.3.3.1 Pulse signal totaliser
Pulse signals can be provided for consumed quantity monitoring.
Every time the volumetric flow quantity (pulse value) set under ImPS has been reached, the output provides a pulse signal.
The pulse signal consists of a short switching on and off of the output. The switching status LEDs on the unit do not display the switching operation.

Pulse signals are not available via the IO-Link interface.
Parameter setting via unit keys: Pulse signal totaliser
√ The standard unit of measurement is selected: EF > CFG > uni. F.
√ The process value is selected: EF > OUTx > SELx = FLOW.
▶ Go to EF > OUTx to configure the output OUTx.
▶ Select oux and set ImP.
▶ Select ImPSx and set the volumetric flow quantity at which 1 pulse is provided (pulse value).
- Press ▲ or ▼ to select the setting range.
- Briefly press • to confirm the setting range.
- Press ▲ or ▼ to set the requested numeric value.
- Briefly press • to apply the value.
▶ Select ImPRx and set Yes.

The parameter settings for ImPS and ImPR can be changed subsequently in the main menu.
Parameter setting via IO-Link: Pulse signal totaliser
√ The standard unit of measurement is selected: Parameter > Setting of the sensor display > uni. F.
√ The process value is selected: Parameter > Output configuration > SELx = FLOW.
▶ Go to Parameter > Output configuration.
▶ Select oux and set ImP.
▶ Select Parameter > Impulse output x.
▶ Select ImPSx and set the volumetric flow quantity at which 1 pulse is provided (pulse value).
▶ Select ImPRx and set Yes.
10.3.3.2 Switching signal totaliser
A switching signal can be provided for consumed quantity monitoring.
When the volumetric flow quantity set under ImPS has been reached, the output provides a switching signal. The output remains switched until a reset is carried out. When the totaliser has been reset, metering starts again.
By setting rTo it is defined when the output switches and when the totaliser is reset:
| [rTo] | Output | Totaliser reset |
| OFF | The output switches when the volumetric flow quantity set under ImPS is reached. | ▸ ▶ Carry out a manual reset.• Automatic reset when the maximum display range is exceeded. |
| 1, 2,... h1, 2,... d1, 2,... w | The output switches only if the volumetric flow quantity set under ImPS is reached within the set time. | When the output is not switched:• Time-controlled reset (the time set under rTo is exceeded). When the output is switched:▸ Carry out a manual reset.• Automatic reset when the maximum display range is exceeded. |

The maximum display range is reached at a consumed quantity of 100 000 000 m 3 .
Parameter setting via the device keys: Switching signal totaliser
√ The standard unit of measurement is selected: EF > CFG > uni. F.
√ The process value is selected: EF > OUTx > SELx = FLOW.
▶ Go to EF > OUTx to configure the output OUTx.
▶ Select oux and set ImP.
▶ Select ImPSx and set the volumetric flow quantity at which the output switches.
- Press ▲ or ▼ to select the setting range.
- Briefly press • to confirm the setting range.
- Press ▲ or ▼ to set the requested numeric value.
- Briefly press • to apply the value.
▶ Select ImPRx and set No.

The parameter settings for ImPS and ImPR can be changed subsequently in the main menu.
▶ Set the parameter rTo for the totaliser reset:
See Totaliser reset ➕ 36.
Parameter setting via IO-Link: Switching signal totaliser
√ The standard unit of measurement is selected: Parameter > Setting of the sensor display > uni. F.
√ The process value is selected: Parameter > Output configuration > SELx = FLOW.
▶ Go to Parameter > Output configuration.
▶ Select oux and set ImP.
▶ Select Parameter > Impulse output x.
▶ Select ImPSx and set the volumetric flow quantity at which the output switches.
▶ Select ImPRx and set No.
▶ Set the parameter rTo for the totaliser reset:
See Totaliser reset ➞ 36.
10.3.4 Output off
The output signal can be deactivated. The output then goes to high impedance.
Communication via the IO-Link interface on OUT1 remains active.
Parameter setting via unit keys: output off
▶ Go to EF > OUTx for configuration.
▶ Select oux and set OFF.
Parameter setting via IO-Link: output off
▶ Call up Parameters > Output Configuration.
▶ Select oux and set OFF.
10.4 Application configuration
10.4.1 Standard unit of measurement
A unit of measurement can be selected with which the process value is shown in the display by default. All further parameter settings are based on this unit.
Selectable values:
• Flow: m3/h ; l/min; m/s; ft3/h ; ft3/min ; ft/s
• Temperature: °C; °F
• Pressure: kPa; bar; psi
Parameter setting via device buttons: Standard unit of measurement
▶ Call up the menu EF > CFG.
▶ Select uni.x and set the unit of measurement.
Parameter setting via IO-Link: Standard unit of measurement
▶ Call up Parameters > Display Setting.
▶ Select uni.x and set the unit of measurement.
10.4.2 Damping
The set damping constant stabilises the output signals. Abrupt changes in the physical process values are smoothed out.
This concerns the outputs, the display and the process value transmission via the IO-Link interface.
The damping constant is added to the response time of the sensor (→ Technical data).
The UL and OL signals are defined under consideration of the damping time.

The measured value damping has an effect on the process values flow and pressure.
Selectable values:
- dAP. F = Damping constant in seconds for flow (63 % rise time τ ).
- dAP. P = Damping constant in seconds for pressure (63 % rise time τ ).
Parameter setting via device buttons: Damping
▶ Call up the menu EF > CFG.
▶ SelectdAP.x and set the damping time for the switching signal of process value x.
Parameter setting via IO-Link: Damping
▶ Call up Parameters > Damping.
▶ SelectdAP.x and set the damping time for the switching signal of process value x.
10.4.3 Output polarity of the switching outputs
The output polarity is set via the parameter P-n.
The setting affects both switching outputs.
- PnP: The switching output is positive switching.
- nPn: The switching output is negative switching.
Parameter setting via unit keys: Output polarity
▶ Call up the menu EF > CFG.
▶ Select P-n and set PnP or nPn.
Parameter setting via IO-Link: Output polarity
▶ Call up Parameters > Output Configuration.
▶ Select P-n and set PnP or nPn.
10.4.4 Medium

This function is only available for the SDx6xx devices.
The sensor provides various characteristic curves for the respective media. They can be selected via the MEdl parameter.
Selectable values:
- Ar: Argon
• AIR: Compressed air
• CO2: Carbon dioxide
• N2: Nitrogen
Parameter setting via the device keys: Medium
▶ Call up the menu EF > CFG.
▶ Select MEdI and set the medium.
Parameter setting via IO-Link: Medium
▶ Select Parameter > Medium
▶ Select MEdl and set the medium.
10.4.5 Process value for OUT1 and OUT2
For both outputs, you can select which process value is to be monitored. All further parameter settings are based on this selection.
Selectable values:
- FLOW: Flow
• TEMP: Temperature
- PRES: Pressure
Parameter setting via unit keys: process values OUT1 and OUT2
▶ Go to the EF > OUTx menu.
▶ Select SELx and set process value for output OUTx.
Parameter setting via IO-Link: Process value OUT1 and OUT2
▶ Call up Parameters > Output Configuration.
▶ Select SELx and set process value for output OUTx.
10.4.6 Low flow cut-off
Low flow quantities can be ignored using the parameter LFC (Low flow cut-off). Flow below the LFC value is evaluated by the sensor as standstill (Q = 0).
The LFC value influences:
• the process value for flow shown on the display
• the digital switching signal for flow
• the analogue signal for flow
• the consumed quantity monitoring (switching or pulse signal for flow)
• the memory values for minimum and maximum flow

Fig. 9: Low flow cut-off
+LFC: Minimum flow in positive flow direction
-LFC: Minimum flow in negative flow direction
1: Flow which is evaluated as standstill

The unit of the minimum flow rate corresponds to the selection under uni. F.

The accuracy indicated in the data sheet applies to the factory-set LFC value. If a lower LFC value is set, the accuracy of the sensor will decrease.
Parameter setting via unit keys: low flow cut-off
▶ Call up the menu EF > CFG.
▶ Select LFC and set the limit below which a flow is evaluated as standstill.
Parameter setting via IO-Link: low flow cut-off
▶ Call upParameters > Basic settings > Flow.
▶ Select LFC and set the limit below which a flow is evaluated as standstill.
10.4.7 Standard conditions
The values indicated in the data sheet of the device depend on the environmental conditions of the application.
All indications apply to standard volume flow to DIN ISO 2533, i.e. volume flow at 1013 mbar (101.3 kPa), 15 °C and 0 % relative air humidity. The unit can be set to different standard conditions.
Parameter setting via the device keys: Standard conditions
▶ Call up the menu EF > CFG.
▶ Select rEF. P and enter the reference pressure.
▶ Select rEF. T and enter the standard temperature.
Parameter setting via IO-Link: Standard conditions
▶ Call up Parameters > Basic settings > Pressure.
▶ Select rEF. P and enter the reference pressure.
▶ Call up Parameters > Basic settings > Temperature.
▶ Select rEF. T and enter the standard temperature.
10.4.8 Zero calibration
If there is a systematic deviation between the measured value and the actual process value, this measurement inaccuracy can be corrected using the correction factor cOF.
▷ The internal zero point is shifted by the set value.
The correction factor coF only refers to the pressure measurement.
The unit for coF corresponds to the set standard unit of measurement for the corresponding process value.
Parameter setting via unit keys: Zero calibration
▶ Call up the menu EF > CFG.
▶ Select cOF and set the value.
▷ The internal zero point is shifted by the set value.
Parameter setting via IO-Link: Zero calibration
▶ Call upParameters > Calibration.
▶ Select cOF and set the value.
The internal zero point is shifted by the set value.
10.4.9 Switching delay
For the switching output, a separate delay time can be set for the output to switch and to be reset.
Parameter setting via the device keys: Switching delay
▶ Go to the EF > OUTx menu.
▶ Select dSx and set the delay for switching OUTx in seconds.
▶ Select drx and set the delay for resetting OUTx in seconds.

dSx and drx are only available if a switching signal (Hno, Hnc, Fno, Fnc) is selected for OUTx.
Parameter setting via IO-Link: Switching delay
▶ Call up Parameters > Digital Output x.
▶ Select dSx and set the delay for switching OUTx in seconds.
▶ Select drx and set the delay for resetting OUTx in seconds.

dSx and drx are only available if a switching signal (Hno, Hnc, Fno, Fnc) is selected for OUTx.
10.4.10 Error behaviour of the outputs
The response of the OUTx output in case of a fault can be set via the parameter FOUx. Depending on the selected output function, the following signals are provided in case of a fault:
- Switching signal:
- On: the output switches ON in case of a fault.
– OFF: the output switches OFF in case of a fault. -
OU: the output switches irrespective of the fault as defined with the parameters.
-
Analogue signal:
- On: the analogue signal goes to the upper end stop value.
- OFF: the analogue signal goes to the lower end stop value.
- OU: the analogue signal still corresponds to the measured value.

FOUx is not available for consumed quantity monitoring: Even in case of a fault, a switching or pulse signal is emitted when the set flow quantity is reached.
Parameter setting via unit keys: Error behaviour of the outputs
▶ Go to the EF > OUTx menu.
▶ Select FOUx and set the error behaviour for OUTx: On, OFF, OU.
Parameter setting via IO-Link: Error behaviour of the outputs
▶ Call up Parameters > Error Configuration Output x.
▶ Select FOUx and set the error behaviour for OUTx: On, OFF, OU.
10.4.11 Totaliser reset
There are different ways to reset the totaliser:
- Manual reset
• Time-controlled reset - Reset via external signal
- Reset via the IO-Link interface
If the totaliser is not reset by applying one of the above-mentioned methods, an automatic reset is made when the maximum display range is exceeded.
Parameter setting via unit keys: Totaliser reset
1. Manual reset:
▶ Select the EF menu.
▶ Select rTo and set rES. T.
▷ The totaliser is reset.
2. Time-controlled reset:
▶ Select the EF menu.
▶ Select rTox, then set time in weeks (w), days (d) or hours (h).
▷ The totaliser is automatically reset after the set time.
3. Reset via external signal:
▶ Go to the EF > OUT2 menu.
▶ Select ou2 and set digital input: In. D.
▶ Select DIn2 and set the reset signal:
• HIGH: reset for high signal
- LOW: reset for low signal
• +EDG: reset for rising edge
- -EDG: reset for falling edge
4. Reset via overflow:
▶ Select the EF menu.
▶ Select rTox and set OFF.
▷ The totaliser is reset as soon as the maximum display range is exceeded.
Parameter setting via IO-Link: totaliser reset
1. Manual reset:
▶ Go to Parameter > Memory > Flow.
▶ Execute command: totaliser reset.
2. Time-controlled reset:
▶ Call upParameters > Basic settings > Flow.
▶ Select rTox, then set time in weeks (w), days (d) or hours (h).
▷ The totaliser is automatically reset after the set time.
3. Reset via external signal:
▶ Call up Parameters > Output Configuration.
▶ Select ou2 and set digital input: In. D.
▶ Select Parameters > Digital input 2.
▶ Select DIn2 and set the reset signal:
• HIGH: reset for high signal
- LOW: reset for low signal
• +EDG: reset for rising edge
- -EDG: reset for falling edge
4. Reset via overflow:
▶ Call upParameters > Basic settings > Flow.
▶ Select rTox and set OFF.
▷ The totaliser is reset as soon as the maximum display range is exceeded.
10.4.12 Lock / unlock
The unit can be locked electronically to prevent unauthorised setting.
This lock prevents the settings from being changed via the keys on the unit.
Factory setting: not locked.
Parameter setting via unit keys: lock / unlock
Locking:
▶ Make sure that the unit is in the normal operating mode.
▶ Press▲ and ▼ simultaneously for 10 seconds until the progress bar in the title bar has reached the end.
▷ The device is locked for parameter setting via the device keys. When trying to change a parameter value, the symbol ☐ appears in the display.

The locking can only be removed via the device keys. Changing the parameter setting is still possible via the IO-Link interface.
Unlocking:
▶ Make sure that the unit is in the normal operating mode.
▶ Press▲ and ▼ simultaneously for 10 seconds until the progress bar in the title bar has reached the end.
▷ The locking of the device keys is removed.
Parameter setting via IO-Link: lock / unlock
▶ Make sure that the unit is in the normal operating mode.
▶ Call up Parameters > Display Setting.
▶ Select Loc and set the lock.
▷ The device is locked for parameter setting via the device keys. When trying to change a parameter value, the symbol 🔒 appears in the display.

The locking can be removed via the IO-Link parameter uLoc or via the device keys.
- or -
▶ Select Parameters > Setup.
▶ Select Device Access Locks. Local User Interface and set Locked.
▷ The device is locked for parameter setting via the device keys. When trying to change a parameter value, the symbol 🔒 appears in the display.

The locking can be removed via the IO-Link parameter Unlocked.
10.4.13 Device reset
The unit can be reset to factory settings.

We recommend documenting your own settings in the chapter Factory setting before carrying out a reset.
Parameter setting via unit keys: Device reset
▶ Select the EF menu.
▶ Select rES.
▶ Keep ▲ or ▼ pressed.
▷ ---- is displayed.
▶ Briefly press ●.
▷ The device carries out a reboot.
Parameter setting via IO-Link: Device reset
▶ Select Parameter > Basic settings.
▶ Click on the system command Restore Factory Settings.
▷ The unit carries out a reboot.
10.5 Display
10.5.1 Display layout
Use the diS. L parameter to choose which process values are shown in the display by default.
Selectable values:
• L1: current process value for flow
• L2. Temp: current process value for flow and temperature
• L2. Pres: current process value for flow and pressure
• L2. Totl: current process value for flow and totaliser
• L3. TP: current process value for flow, temperature and pressure
• L4: current process value for flow, temperature, pressure and totaliser
Parameter setting via unit keys: display layout
▶ Call up the menu EF > DIS.
▶ Select diS. L and set layout.
Parameter setting via IO-Link: display layout
▶ Call up Parameters > Display Setting.
▶ Select diS. L and set layout.
10.5.2 Display update rate
The update rate of the display can be set via the parameter diS. U.
Selectable values:
- d1: fast
- d2: medium
- d3: slow
Parameter setting via unit keys: display update rate
▶ Call up the menu EF > DIS.
▶ Select diS. U and set the update rate.
Parameter setting via IO-Link: display update rate
▶ Call up Parameters > Display Setting.
▶ Select diS. U and set the update rate.
10.5.3 Display rotation
Use the parameter diS. R to rotate the text in the display clockwise for better readability.
Selectable values:
- 0° (not rotated)
• 90°
• 180°
• 270°
Parameter setting via the device keys: Display rotation
▶ Call up the menu EF > DIS.
▶ Select diS. R and set the display rotation.
Parameter setting via IO-Link: Display rotation
▶ Call up Parameters > Display Setting.
▶ Select diS. R and set the display rotation.
10.5.4 Display brightness
The display brightness can be set via the parameter diS. B.
Selectable values:
• 25%
- 50%
• 75%
• 100 %
• OFF: energy-saving mode. The display is switched off in the operating mode.
- The setting takes effect after a delay of 30 seconds.
- Display activation by pressing any key. After 30 s of inactivity, the display is switched off again.

Error messages are displayed via IO-Link and the operating status LED when the display is switched off.

If the unit measures a high internal temperature, the display brightness is automatically adjusted:
Internal temperature of the unit > 64 °C: brightness is reduced to 25%.
Internal temperature of the unit ≥ 90 ° C: display is automatically switched off.
Parameter setting via unit keys: display brightness
▶ Call up the menu EF > DIS.
▶ Select diS. B and set the brightness of the display.
Parameter setting via IO-Link: display brightness
▶ Call up Parameters > Display Setting.
▶ Select diS. B and set the brightness of the display.
10.5.5 Display colour setting
The font colour in the display can be set via the parameter coL.x.
• coL. F: font colour for flow
• coL. T: font colour for temperature
• coL. P: font colour for pressure
• coL. V: font colour for totaliser Vol.1
Permanent font colour
The display font colour for flow, temperature, pressure or totaliser can be set permanently:
| coL. F / coL. T / coL. P / coL. V | Font colour |
| bk/wh | black and white |
| rEd | red |
| GrEn | green |
| yellow | yellow |
Colour change
Alternatively, a colour change can be configured for the displayed flow, temperature and pressure depending on the current process value:
| coL. F / coL. T / coL. P | Font colour |
| r-cF | red = process value inside windowgreen = process value outside window |
| G-cF | green = process value inside windowred = process value outside window |
If “Colour change” is selected, the window limits must be set:
cFL. F: lower limit for flow
cFH. F: upper limit for flow
cFL. T: lower limit for temperature
cFH. T: upper limit for temperature
cFL. P: lower limit for pressure
cFH. P: upper limit for pressure
The limits cFL.x and cFH.x can be freely selected within the measuring range and are independent of the output function set for OUT1 and OUT2.

Fig. 10: Example of the setting coL.x = G-cF
Parameter setting via unit keys: display colour setting
▶ Go to EF > COLR.
Permanent colour setting
▶ Select coL.x and select the font colour for the process value x or the totaliser: bk/wh, red, green or yellow.
Colour change
▶ Select coL.x and select the setting for the colour change depending on the process value x: r-cF or G-cF.
▶ Select cFL.x and set the lower limit for the window.
▶ Select cFH.x and set the upper limit for the window.
Parameter setting via IO-Link: Display colour setting
▶ Call up Parameters > Display Setting.
Permanent colour setting
▶ Select col.x and select the font colour for the process value x or the totaliser: bk/wh, red, green or yellow.
Colour change
▶ Select coL.x and select the setting for the colour change depending on the process value x: r-cF or G-cF.
▶ Call up Parameters > Window for colour change.
▶ Select cFL.x and set the lower limit for the window.
▶ Select cFH.x and set the upper limit for the window.
10.6 Diagnosis
10.6.1 Read totaliser values
For the totaliser, the following values can be read at any time:
- Current flow quantity (= consumed quantity since the last reset).
• Consumed quantity before the last reset.
• Time in minutes since the last reset.
Reading via the device keys: totaliser values
▶ During operation, press the ▲ or ▼ key until the totaliser values are displayed.
▷ After 30 s, the device returns to the standard display.
Reading via IO-Link: totaliser values
▶ Go to Parameter > Memory > Flow.
▶ Read consumption values.
10.6.2 Memory
The unit stores the maximum and minimum measured process values.
The current value can be read from the unit's display or via the IO-Link interface.
Selectable values:
• Lo. F: Minimum value memory for volumetric flow
• Hi. F: Maximum value memory for volumetric flow
• Lo. T: Minimum value memory for temperature
• Hi. T: Maximum value memory for temperature
• Lo. P: minimum value memory for pressure
• Hi. P: maximum value memory for pressure

It makes sense to delete the memories as soon as the unit operates under normal operating conditions for the first time.
Parameter setting via unit keys: Memory
Show memory:
▶ Go to the EF > MEM menu.
▶ Select Lo.x or Hi.x to show the highest or lowest process value measured.
Clear memory:
▶ Go to the EF > MEM menu.
▶ Select Lo.x or Hi.x.
▶ Keep ▲ or ▼ pressed.
▷ ---- is displayed.
▶ Briefly press ●.
Parameter setting via IO-Link: Memory
Show memory:
▶ Select Parameter > Memory > Flow or Temperature or Pressure.
▶ Select Lo.x or Hi.x to show the highest or lowest process value measured.
Clear memory:
▶ Execute command:
- Reset Hi.x and Lo.x memory
- Reset Lo.x memory
- Reset Hi.x memory
10.7 Service functions
10.7.1 Simulation
With this function, process values are simulated and their signal path is checked.
When the parameters cr. UL, UL, OL and cr. OL are set, process values that lead to an error message or warning can be simulated.
When the simulation is started, the values of the totaliser are frozen and the simulated totaliser is set to 0. The simulated flow value then has an effect on the simulated totaliser. When the simulation is ended, the initial totaliser values are restored.
During the simulation:
- The simulation has no effect on the current process values. The outputs operate as previously set.
- The original totaliser value remains saved without any changes even if there is a real flow.
- No error messages of the current application are available. They are suppressed by the simulation.
The following values can be simulated:
Flow, temperature, pressure and meter reading of the totaliser.
Parameter setting via unit keys: simulation
▶ Go to the EF > SIM menu.
▶ SelectS. FLW, S. TMP or S. PRS and set the process value to be simulated:
- Press ▲ or ▼ until the required process value has been reached.
- The warning/error indications OL, crOL, UL and crUL appear when the measuring range is exceeded or not reached.
▶ Select S. Tim and set the time of the simulation in minutes.
▶ Select S. On and set the function:
- On: The simulation starts. The values are simulated for the time set under S. Tim. Abort by pressing any key.
• OFF: The simulation is not active.
Parameter setting via IO-Link: simulation
▶ Select Parameter > Simulation.
▶ Select S. Tim and set the time of the simulation in minutes.
▶ Go to Parameter > Simulation > Flow or Temperature or Pressure.
▶ Select S. FLW, S. TMP or S. PRS and set the process value to be simulated, crUL, UL, OL or crOL.
▶ Select Write to device.
▷ The changed values are transferred to the unit.
▶ Select Parameter > Simulation.
▶ Execute command: Start Simulation.
▷ The simulation starts with the set values.
▶ To end the simulation: Execute command: Stop Simulation.
10.7.2 Optical localisation
The sensor can be located remotely in the system via the IO-Link interface.

This function is only available via the IO-Link interface.
When the command is executed via the IO-Link interface, the switching status LEDs flash and the “IO-Link” indication flashes in the display.
▶ Deactivate the function via IO-Link or by pressing any button on the device.
Visual localisation via IO-Link
▶ Select Identification.
▶ Execute command: Flash On.
▶ To end the flashing process: Execute command: Flash Off.
10.7.3 Device information
Unalterable device information is stored on the unit. This includes:
- Product name
- Product family
- Manufacturer
- Manufacturer ID
- Device ID
- Serial number
• Hardware / firmware revision - Description
In addition, further freely definable tags with a maximum length of 32 characters can be assigned to the unit via the IO-Link interface using suitable parameter setting software. This includes:
- application-specific tag
- function tag
- location tag
Reading via the unit keys: device information
▶ Go to EF > Info.
▶ Use ▲ and ▼ to scroll through the views and read device information.
Reading or parameter setting via IO-Link: device information
▶ Select Identification.
▶ Read device information or edit editable parameters.
11 Troubleshooting
The unit has many self-diagnostic options. It monitors itself automatically during operation.
Warnings and error states are displayed even if the display is switched off. Error indications are also available via IO-Link.
The status signals are classified according to NAMUR recommendation NE107.
If several diagnostic events occur simultaneously, only the diagnostic message of the event with the highest priority is displayed.
If a process value fails, the other process values are still available. Exception: If the process value for flow fails, no other process values are output.

Additional diagnostic functions are available via IO-Link ➕ IO-Link interface description at documentation.ifm.com.
11.1 Warning messages
| Display indication | LED display | Problem/remedy |
| • Title line: Short circuit OUT1/OUT2• Process value line: ---- | • LED OUT1 flashes• LED OUT2 flashes | Short circuit OUT1 and OUT2▶ Check switching outputs OUT1 and OUT2 for short circuit or excessive current. |
| • Title line: Short circuit OUT1• Process value line: ---- | • LED OUT1 flashes | Short circuit OUT1▶ Check switching output OUT1 for short circuit or excessive current. |
| • Title line: Short circuit OUT2• Process value line: ---- | • LED OUT2 flashes | Short circuit OUT2▶ Check switching output OUT2 for short circuit or excessive current. |
| • Title line: Over limit• Process value line: OL | ---- | Above the display range▶ Check measuring range. |
| • Title line: Under limit• Process value line: UL | ---- | Below the display range▶ Check measuring range. |
11.2 Error messages
| Display indication | LED display | Problem/remedy |
| • Title line: Flow Error• Process value line: ERROR | ---- | Error in flow measurement▶ Check flow measurement. ▶ Replace the device. |
| • Title line: Temp Error• Process value line: ERROR | ---- | Error in temperature measurement▶ Check temperature measurement. ▶ Replace the device. |
| • Title line: Pressure Error• Process value line: ERROR | ---- | Error in pressure measurement▶ Check pressure measurement. ▶ Replace the device. |
| • Title line: Critical over limit• Process value line: cr. OL | ---- | Above the measuring range▶ Check measuring range. |
| • Title line: Critical under limit• Process value line: cr. UL | ---- | Below the temperature measuring range▶ Check the temperature range. |

In the event of an error, the outputs react according to the setting under FOU.
12 Maintenance, repair and disposal
The operation of the unit is maintenance-free.
Only the manufacturer is allowed to repair the unit.
▶ After use dispose of the device in an environmentally friendly way in accordance with the applicable national regulations.
▶ Define regular calibration intervals according to the process requirements. Recommendation: every 12 months.

Calibration service of ifm ➕ DAkkS calibration certificate at www.ifm.com.
13 Factory settings
| Menu | Parameter | Factory setting | User setting | |
| EF | rTo | OFF | ||
| OUT1 | SEL1 | FLOW | ||
| ou1 | Hno | |||
| SP1 / FH1 | 20 % | |||
| rP1 / FL1 | 19 % | |||
| ImPS1 | SD55xxSD56xxSD65xxSD66xx | 0.0001 m3 (0.005 ft 3 ) | ||
| SD58xx | 0.000005 I | |||
| SD68xx | 0.000010 I | |||
| SD8xxxSD9xxxSD2xxx | 0.001 m3 (0,04 ft 3 ) | |||
| ImPR1 | YES | |||
| dS1 | 0 s | |||
| dr1 | 0 s | |||
| FOU1 | OFF | |||
| OUT2 | SEL2 | FLOW | ||
| ou2 | I | |||
| ASP2 | 0 % | |||
| AEP2 | 100 % | |||
| SP2 / FH2 | 40 % | |||
| rP2 / FL2 | 39 % | |||
| ImPS2 | SD55xxSD56xxSD65xxSD66xx | 0.0001 m3 (0.005 ft 3 ) | ||
| SD58xx | 0.000005 I | |||
| SD68xx | 0.000010 I | |||
| SD8xxxSD9xxxSD2xxx | 0. 001 m3 (0.04 ft 3 ) | |||
| ImPR2 | YES | |||
| Din2 | +EDG | |||
| dS2 | 0 s | |||
| dr2 | 0 s | |||
| FOU2 | OFF | |||
| CFG | uni. F | m3/h | ||
| uni. T | SDxxx0 | °C | ||
| SDxxx1 | °F | |||
| uni. P | SDxxx0 | bar | ||
| SDxxx1 | psi | |||
| dAP. F | 0.6 s | |||
| dAP. P | 0.06 s | |||
| P-n | PnP | |||
| LFC | SD5xxx | 0.02 m3/h (0.7 ft3/h ) | ||
| SD58xx | 0.1 m3/h (4 ft3/h ) | |||
| SD6xxx | 0.1 m3/h (4 ft3/h ) | |||
| SD68xx | 0.2 m3/h (7 ft3/h ) | |||
| SD8xxx | 0.3 m3/h (11 ft3/h ) | |||
| SD9xxx | 0.5 m3/h (18 ft3/h ) | |||
| SD2xxx | 2.0 m3/h (71 ft3/h ) | |||
| rEF. P | 1013 mbar (101.3 kPa) | |||
| rEF. T | 15 °C | |||
| cOF | 0 | |||
| DIS | diS. L | L3. TP | ||
| diS. U | d3 | |||
| diS. R | 0° | |||
| diS. B | 75 % | |||
| COLR | coL. F | bk/wh | ||
| col. T | bk/wh | |||
| col. P | bk/wh | |||
| col. V | bk/wh | |||
The percentage values refer to the final value of the measuring range (MEW).




