DS3800HLNC1A1A GE

¥999.00

The DS3800HLNC1A1A is a General Electric Mark IV Speedtronic turbine control board, a high-speed discrete output module with a suffix code indicating: 16 high-speed output channels (1), firmware revision A1 (A1), and basic environmental protection (A = single-layer conformal coating). The “HLN” designation denotes a high-speed logic output module for critical turbine protection applications, offering ultra-fast output response (<0.5ms). The A1 firmware provides standard high-speed logic processing, while the A-grade coating offers basic moisture resistance for standard indoor applications. This variant is ideal for applications requiring a high number of critical protection outputs with basic environmental protection.

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Description

Parameters

  • Output Type: 24V DC discrete (transistor, sourcing or sinking configurable)

  • Output Channels: 16 channels (higher density than HLNA’s 8)

  • Output Voltage: 24V DC (nominal), 10–30V DC range

  • Output Current: 0.5A per channel (short-circuit protected)

  • Response Time: <0.5ms (hardware-accelerated)

  • Isolation: 2500V RMS optical isolation (channel-to-backplane)

  • Power: +5V DC @ 0.9A, +24V DC @ 0.35A (field power)

  • Diagnostics: LED status per channel, short-circuit protection, and open-wire detection

  • Coating: Basic conformal coating (suffix A) – single-layer acrylic

  • Temp Range: 0°C to +60°C

  • Mounting: 6U VME Eurocard, single-slot

  • Compatibility: Mark IV backplanes and some VIe systems (with adapter)

Advantages & Features

  • Higher channel density – 16 high-speed outputs on a single board, more than HLNA’s 8 channels

  • Ultra-fast output response (<0.5ms) – designed for critical trip and protection logic

  • Flexible output configuration – channels can be set as sourcing or sinking via jumpers

  • Short-circuit protected outputs prevent damage from field wiring faults

  • Isolated channels protect the backplane from field wiring faults and surges

  • Basic A-grade coating provides light moisture and dust protection for clean indoor installations

  • Front-panel LEDs for per-channel status, fault, and output state indication

  • Compatible with Mark IV backplanes and some VIe systems (with adapter)

Application Cases

  • Overspeed trip outputs – high-speed solenoid actuation for turbine overspeed protection with multiple trip channels

  • Flame detection outputs – fast fuel trip valve actuation for burner management systems across multiple zones

  • Emergency trip systems (ETS) – critical output actuation for emergency shutdown with high channel count

  • Turbine start-up sequencing – fast-response output for starter, purge, and auxiliary valves

  • Retrofit projects replacing multiple lower-density high-speed output boards with a single higher-density solution

Competitor Comparison

  • vs. DS3800HLNA (standard A variant): More output channels (16 vs. 8) – HLNC1A1A offers higher density, otherwise similar A1 firmware and A coating

  • vs. DS3800HLNA1D1A (D1/A variant): HLNC1A1A offers more channels (16 vs. 8) but lacks D1 firmware features – choose based on channel count vs. advanced diagnostics

  • vs. DS3800HLNC (standard C variant): Similar specifications; A1 firmware may offer slightly improved response compared to standard

  • vs. DS3800HHTB1D1D (relay output): HLNC1A1A offers significantly faster response (<0.5ms vs. 12ms) – better for high-speed protection

  • vs. DS3800HLCB (hybrid high-speed I/O): HLNC1A1A is output-only with faster response than HLCB’s output response (<1.2ms) – better for critical protection outputs

  • vs. DS3800HLIA (high-speed input): HLNC1A1A is the output counterpart – use both for complete protection I/O

  • vs. ABB DSDI series: Similar high-speed discrete capability, but GE offers faster output response and higher density

  • vs. Siemens 6ES7 series: Similar functionality, but GE offers faster response and higher channel density

  • vs. Woodward 5437 modules: GE offers faster response and higher output density

Selection Suggestions

  • Critical: Confirm output configuration (sourcing vs. sinking) – jumper settings must match your field devices (solenoids, valves, relays)

  • Critical: Confirm output load current – do not exceed 0.5A per output channel

  • Verify your backplane provides both +5V and +24V field power with sufficient current capacity (+24V @ 0.35A)

  • Assess channel count – 16 outputs cover larger actuation applications with multiple high-speed outputs

  • Evaluate environmental conditions – A coating is suitable for clean, dry indoor installations; upgrade to B/C/D/G/H if needed

  • Order mating front connector (p/n may vary – confirm with GE)

  • For critical protection applications, consider used/refurbished units with 90-day warranty or new-old-stock with calibration certificate

Precautions

  • Critical: Do not exceed 30V DC or 0.5A per output channel – overvoltage or overcurrent may damage the output transistors

  • Critical: Do not short-circuit output channels – outputs are protected but prolonged shorts may cause damage

  • Critical: High-speed outputs are sensitive to inductive kickback from solenoids – use flyback diodes or surge suppressors across inductive loads to prevent damage

  • Ensure field power supply (+24V DC) is stable and within 10–30V DC range

  • Use properly sized wiring for output currents – undersized wires may cause voltage drop and overheating

  • A1 firmware is a baseline revision – verify it supports your specific output configuration requirements

  • Basic A coating does not protect against humidity or corrosive gases – upgrade to B/C/D/G/H if your environment has moisture or chemicals

  • Allow 30-minute warm-up before commissioning

  • Store in ESD-safe packaging – edge connector is static-sensitive

  • Periodically verify output operation every 6 months (critical protection circuits require frequent testing)

  • Do not hot-swap – Mark IV backplanes require power-off for insertion/removal

  • If replacing multiple lower-density boards, verify wiring and pinout compatibility – HLNC may differ from HLNA in pin assignments

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