Description
Providing direct current control and precise pulse timing for high-speed industrial vision systems, the Beckhoff EL2596-0010 is a highly specialized EtherCAT Terminal engineered for LED illumination control. This high-density module operates up to 48 V DC and delivers up to 3 A in pulsed mode, allowing direct synchronization with industrial cameras. By utilizing Distributed Clocks, the terminal achieves trigger and synchronization precision of less than 1 microsecond, making it ideal for fast-moving inspection lines. It supports multiple operating modes including constant voltage, constant current, and pulse-width modulation (PWM), alongside built-in trigger inputs and outputs to streamline camera-to-light interfacing without external controller lag.
Features
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1-Channel LED Output: Delivers flexible illumination control with continuous or high-intensity pulsed modes.
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Integrated Synchronization: Built-in Distributed Clocks provide synchronization precision down to less than 1 microsecond.
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Flexible Control Modes: Configurable via CoE (CoE - CAN over EtherCAT) for constant current, constant voltage, or high-frequency PWM operation.
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Direct Camera Triggering: Features 1 electrically isolated trigger input (from camera) and 1 electrically isolated trigger output (to camera) to eliminate external delay stages.
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Compact HD Housing: High-density 12 mm wide polycarbonate enclosure with integrated signal LEDs for channel state diagnostics.
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Real-Time Diagnostics: Extensive diagnostic monitoring parameters available over EtherCAT, checking for voltage limits, open circuits, and overtemperature faults.
Applications
- High-speed industrial machine vision systems
- Automated optical inspection (AOI) units
- Semiconductor manufacturing wafer scanning
- RGB and common-anode LED lighting control
- Synchronized multi-angle camera inspection stations
Technical Specifications
| Parameter |
Specification Value |
| Manufacturer |
Beckhoff |
| Model Number |
EL2596-0010 |
| Output Type |
1-channel LED output |
| Connection Technology |
2-wire |
| Input Voltage Range |
48 V DC (-15% / +20%) |
| Output Voltage Range |
0 to (Input Voltage - 2 V) |
| Max. Output Current (Continuous) |
0 to 1.2 A |
| Max. Output Current (Pulsed Mode) |
0 to 3 A (depending on output voltage and duty cycle) |
| Distributed Clocks (DC) |
Yes, precision less than 1 microsecond |
| Switching Times |
Typical TON: less than 1 us, TOFF: less than 1 us |
| Pulse Duration Range |
25 microseconds to 10 seconds |
| Trigger Output (To Camera) |
1 electrically isolated, max. 10 mA push-pull, 10 to 24 V DC |
| Trigger Input (From Camera) |
1 electrically isolated, typ. 3 mA, 4 to 24 V DC |
| E-bus Current Consumption |
Typical 265 mA |
| Power Contact Current Load |
Max. 10 A |
| Electrical Isolation |
500 V (E-bus / field potential) |
| Protection Rating |
IP20 |
| Operating / Storage Temp |
0 to +55 degC / -25 to +85 degC |
| Material |
Polycarbonate |
| Dimensions (W x H x D) |
12 mm x 100 mm x 68 mm |
| Net Unit Weight |
55 g |
| Shipping Weight (Calculated) |
2.0 kg (including secure export packaging) |
Wiring & Connection Terminals
| Conductor Type |
Cross-Section (Metric) |
Cross-Section (AWG) |
| Solid Wire (s) |
0.08 to 1.5 mm² |
AWG 28 to 16 |
| Stranded Wire (st) |
0.25 to 1.5 mm² |
AWG 22 to 16 |
| Flexible with Ferrule (f) |
0.14 to 0.75 mm² |
AWG 26 to 19 |
| Stripping Length |
8 to 9 mm |
Empirical Engineering Insights
Alternative Models & Compatibility
The EL2596-0010 operates within standard EtherCAT networks and requires a compatible Beckhoff Coupler (such as EK1100 or EK1200) or an Embedded PC. When migrating from legacy analog output cards or PWM modules used for light dimming (such as EL2502), the EL2596-0010 provides highly superior response times and dedicated hardware camera triggering lines, making external pulse generators redundant. Ensure your TwinCAT version is up to date (TwinCAT 3.1 or higher is recommended) to fully leverage the XML device description files for the CoE configurations.
Application Pitfalls & Engineering Notes
While the module can deliver up to 3 A in pulsed mode, engineers must tightly calculate the thermal profile and duty cycle. Exceeding the maximum allowed duty cycle at high currents can cause thermal shutdown faults. When configuring the LED output, verify if your illumination source requires constant current or constant voltage; choosing the incorrect mode in the CoE directory can over-drive and damage sensitive LED arrays. Additionally, when drawing full 10 A continuous currents across the power contacts, ensure appropriate ventilation inside the enclosure.
Commissioning & Wiring Tips
To prevent high-frequency EMI noise from interfering with the camera's triggering signals, always use shielded twisted-pair (STP) wiring for the trigger input and trigger output loops. Keep the cable length to the camera trigger under 10 meters if operating at maximum frequency. When wiring the solid or stranded conductors into the push-in High-Density terminal connections, utilize a dedicated flat-blade terminal screwdriver to depress the spring mechanism gently. This prevents damage to the internal clamp assembly.
Installation Guidelines
CRITICAL WARNING: Ensure that the entire control cabinet and all field power supplies feeding the EtherCAT terminal segment are fully de-energized before mounting, removing, or wiring the EL2596-0010. Hot-swapping modules or live-wiring the 48 V DC input can lead to destructive electrical arcing, irreparable module damage, or immediate hardware failure.
1
Mount the terminal onto a 35 mm DIN rail conforming to EN 60715. Align the side-by-side slot-and-key connection and push firmly until the locking mechanism clicks securely.
2
Establish the E-bus connections by sliding the module horizontally against the adjacent EtherCAT terminal until the contacts touch fully.
3
Connect the 48 V DC field power supply to the terminal inputs, taking care to respect nominal voltage tolerances (-15% / +20%).
4
Wire the LED output lines and camera trigger lines using correct stripping lengths (8 to 9 mm) and shield terminations to prevent electromagnetic coupling.