Description
Parameters
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Input Type: 24V DC discrete (sourcing/sinking, configurable)
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Output Type: 24V DC discrete (transistor, 0.5A per channel)
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Input Channels: 4 channels (configurable)
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Output Channels: 12 channels (configurable)
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Input Voltage: 24V DC (nominal), 10–30V DC range
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Input Current: 5mA per channel (typical)
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Output Rating: 24V DC @ 0.5A per channel (short-circuit protected)
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Response Time: <0.8ms (inputs, C1 optimized) / <1.5ms (outputs, C1 optimized)
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Isolation: 2500V RMS optical isolation (channel-to-backplane)
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Power: +5V DC @ 0.8A, +24V DC @ 0.35A (higher due to 12 output channels)
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Filtering: Programmable input debounce filter with adaptive noise rejection (C1 feature)
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Coating: Conformal coating (suffix C) – medium-thickness acrylic with improved humidity and mild chemical resistance
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Temp Range: -10°C to +65°C (extended, enabled by C coating)
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Mounting: 6U VME Eurocard, single-slot
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Diagnostics: Enhanced onboard with per-channel LED status, short-circuit protection, open-wire detection, and fault logging (C1 feature)
Advantages & Features
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Output-heavy hybrid I/O – 12 outputs + 4 inputs on a single board, providing more actuation channels than HLCA (8 in/8 out)
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C1 firmware offers faster response (<0.8ms input, <1.5ms output), adaptive debounce filtering, and enhanced diagnostics including fault logging
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Higher isolation (2500V) protects against ground loops and transient surges
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Flexible input configuration – channels can be set as sourcing or sinking via jumpers
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Short-circuit protected outputs prevent damage from field wiring faults
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C-grade coating provides moderate moisture and dust protection compared to B – suitable for indoor environments with occasional humidity
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Extended temperature range (-10°C to +65°C) offers more flexibility than B variant
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Front-panel LEDs for per-channel status, fault, and output state indication
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Compatible with Mark IV backplanes and some VIe systems (with adapter)
Application Cases
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Multi-actuator control systems – controlling multiple turbine valves (fuel, steam, bypass) with limited feedback inputs requiring fast response in moderately humid environments
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Overspeed protection with multiple trip outputs – high-speed inputs with multiple redundant trip actuator outputs
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Flame detection and burner management – digital signals from flame scanners with multiple output channels for fuel and purge valves
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Valve position control – limit switch inputs with multiple solenoid valve outputs in plants with occasional moisture
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Retrofit projects upgrading from B coating to C coating for better environmental protection
Competitor Comparison
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vs. DS3800HLCB1C1B (B coating): Superior moisture and mild chemical resistance (C vs. B), wider temp range (-10°C vs. 0°C) – otherwise identical specifications
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vs. DS3800HLCB (standard B variant): Improved accuracy (C1 firmware), faster response, enhanced diagnostics, and C coating – significant upgrade
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vs. DS3800HLCA1C1D (A/C1/D variant): More outputs (12 vs. 8) but fewer inputs (4 vs. 8) – HLCB is output-heavy, HLCA is balanced I/O; HLCA has D coating (superior to C)
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vs. DS3800HL0A1EC (input-only high-speed): HLCB1C1C offers both inputs and outputs (4 in/12 out) vs. input-only (16 in) – HLCB provides hybrid I/O but fewer total inputs
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vs. DS3800HHRB1D1D (standard discrete I/O): HLCB1C1C offers faster response (<0.8ms vs. 3ms) and higher output density – significant upgrade for high-speed actuation
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vs. DS3800HHTB1D1D (relay output board): HLCB1C1C offers transistor outputs (faster) vs. relay outputs (slower) – better for high-speed actuation
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vs. ABB DSDI series: Similar high-speed discrete capability, but GE offers better Mark IV integration and C1 diagnostics
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vs. Siemens 6ES7 series: Similar functionality, but GE offers specialized high-speed hybrid I/O with output-heavy configuration and C coating
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vs. Woodward 5437 modules: GE offers faster response and hybrid I/O in a single board with C-grade coating
Selection Suggestions
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Critical: Confirm input type (sourcing vs. sinking) – jumper settings must match your field devices
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Critical: Confirm output load current – do not exceed 0.5A per output channel
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Verify your backplane provides both +5V and +24V field power with sufficient current capacity (+24V @ 0.35A)
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Assess channel mix – this board is ideal for applications requiring more actuator outputs (12) than sensor inputs (4)
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Evaluate if C1’s fault logging and adaptive debounce filtering are beneficial – particularly valuable for critical protection applications
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Evaluate environmental conditions – C coating is suitable for moderate humidity and light chemical exposure; choose D/G/H for more demanding conditions
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Order mating front connector (p/n may vary – confirm with GE)
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For critical protection applications, purchase with a calibration certificate and 12-month warranty
Precautions
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Critical: Do not exceed 30V DC on input or output channels – overvoltage may damage the isolation circuits
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Critical: Do not short-circuit output channels – outputs are protected but prolonged shorts may cause damage
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Critical: High-speed inputs are sensitive to noise – use shielded twisted-pair cables and proper grounding to avoid false triggers; C1’s adaptive filtering helps but is not a substitute for good wiring practices
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Ensure field power supply (+24V DC) is stable and within 10–30V DC range
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C1 firmware offers adaptive debounce filtering – configure settings correctly for your sensor type and application requirements
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C coating provides moderate protection but is not suitable for direct salt spray, heavy chemical exposure, or continuous condensation – upgrade to D/G/H for those conditions
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Allow 30–45 minute warm-up before commissioning (C coating affects thermal equilibrium)
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Store in ESD-safe packaging – edge connector is static-sensitive
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Periodically verify input and output operation every year (high-speed protection circuits require regular testing)
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Do not hot-swap – Mark IV backplanes require power-off for insertion/removal
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If replacing separate input and output boards, verify wiring and pinout compatibility – HLCB may differ from HLCA or standard discrete series in pin assignments
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C coating may make component-level repairs difficult – consider board replacement instead of repair

ABB AI810
A-B 1756-OB32
SEIKO B-F05-FH03 AR501-0002031100


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